Newly Characterized Genes

CHECK HERE FOR DESCRIPTIONS OF NEWLY CHARACTERIZED MAIZE GENES!

With the overwhelming number of genes that are being discovered by phenotypic and sequence analyses, the MaizeGDB staff is missing some that should be included in MaizeGDB. We need your help! Please let us know about new genes that you're working on or have recently read about.

MaizeGDB prefers not to assign formal gene names to gene models based purely on orthology. Known difficulties include inclusivity (there are over 10,000 functionally characterized Arabidopsis genes)* and some likelihood of errors in inferred functions. Unlike gene models, gene names are generally conserved unless differently named genes are found to be allelic. Of particular note, naming priveleges are customarily held by researchers who first confirm function.

We encourage researchers to use the annotation tool on the MaizeGDB gene model pages to add their insights about putative function, especially when not currently part of the Phytozome or Gramene pipelines.

Below is a list of newly reported or newly characterized genes (new reference, new gene product, and/or new variation) with which you may not yet be familiar. The genes are sorted by the last time the gene has been updated. To suggest genes for inclusion in this list, email us and include the gene name, full name, chromosome or bin, and a recent reference.

If you cannot find the gene you would like to recommend in the database, send us an email so that we can add it to the database!

This page is based on our monthly release. The updates are made around 4:00am CST.


         Recommended Genes


Most recent data | Six months | One year | All time

New or updated genes since 2003. The cutoff date is August 1st, 2003.

Last UpdateGeneFull Name : DescriptionChromosome
or Bin
Gene
Model
Recent ReferenceOrthologsUpdate information
todaypfk4 phosphofructose kinase4:
 
   Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: August 12th, 2016
todayrpi2 ribose 5-phosphate isomerase2:
 
   Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: October 21st, 2021
todaycel22 cellulase22:
 
   Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.   LOC_Os04g41970 (MSU/TIGR)
Os04g0497200 (Gramene)
Reference: May 8th, 2024
Gene Product: March 20th, 2023
todaycel20 cellulase20:
 
   Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: March 20th, 2023
todaygpdh3 glucose-6-phosphate dehydrogenase3:
 
   Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
todayagpsl1 ADP glucose pyrophosphorylase small subunit leaf1:
1.07
GRMZM2G163437
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Variation: April 3rd, 2011
Gene Model: June 15th, 2012
todayincw1 cell wall invertase1:
5.04
   Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: June 12th, 2018
Variation: May 27th, 2015
todayss6 starch synthase6:
5.03
   Zhang, H-Y et al. 2024. The relationship between starch synthesis enzyme activity, gene expression, and amylopectin fine structure in waxy maize Cereal Res Commun. :doi: 10.1007/s42976-024-00509-3.     Reference: May 8th, 2024
Gene Product: October 14th, 2016
todaytrps2 trehalose-6-phosphate synthase2:
1.03
GRMZM2G099860
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: October 3rd, 2020
Gene Model: February 11th, 2019
todayaco3 aconitase3:
9.07
GRMZM2G009808
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Gene Model: March 29th, 2015
todayadh2 alcohol dehydrogenase2:
4.03
GRMZM2G098346
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: July 8th, 2009
Variation: September 1st, 2003
Gene Model: May 31st, 2014
todayae1 amylose extender1:
5.04
   Zhang, H-Y et al. 2024. The relationship between starch synthesis enzyme activity, gene expression, and amylopectin fine structure in waxy maize Cereal Res Commun. :doi: 10.1007/s42976-024-00509-3.     Reference: May 8th, 2024
Gene Product: June 6th, 2011
Variation: July 25th, 2022
todaybt2 brittle endosperm2:
4.05
   Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: November 4th, 2014
Variation: May 8th, 2023
todaydu1 dull endosperm1:
10.03
GRMZM2G141399
Zhang, H-Y et al. 2024. The relationship between starch synthesis enzyme activity, gene expression, and amylopectin fine structure in waxy maize Cereal Res Commun. :doi: 10.1007/s42976-024-00509-3.     Reference: May 8th, 2024
Gene Product: October 14th, 2016
Variation: June 29th, 2015
Gene Model: February 28th, 2012
todayfl2 floury2:
4.03
GRMZM2G397687
Niels Johan Christensen 2024. Conformations of a highly expressed Z19 α-zein studied with AlphaFold2 and MD simulations. PLoS One. 19:e0293786.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Variation: October 17th, 2014
Gene Model: December 19th, 2011
todayglu1 beta glucosidase1:
10.03
   Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: June 26th, 2019
Variation: January 9th, 2010
todaygpc3 glyceraldehyde-3-phosphate dehydrogenase3:
4.05 - 4.04
   Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Variation: June 1st, 2014
todayhex2 hexokinase2:
6.04 - 6.05
GRMZM2G432801
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 15th, 2013
Variation: February 15th, 2010
Gene Model: September 15th, 2013
todaymdh3 malate dehydrogenase3:
3.08
GRMZM2G466833
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: September 30th, 2015
todaypdk2 pyruvate, orthophosphate dikinase2:
8.04
GRMZM2G097457
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: July 28th, 2014
Variation: December 19th, 2017
Gene Model: November 21st, 2012
todaypgm1 phosphoglucomutase1:
1.09 - 1.10
GRMZM2G023289
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: November 28th, 2011
todaypgm2 phosphoglucomutase2:
5.01
GRMZM2G109383
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: November 28th, 2011
todaysu1 sugary1:
4.05
   Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: April 21st, 2016
Variation: June 6th, 2016
todaysu2 sugary2:
6.04 - 6.05
   Zhang, H-Y et al. 2024. The relationship between starch synthesis enzyme activity, gene expression, and amylopectin fine structure in waxy maize Cereal Res Commun. :doi: 10.1007/s42976-024-00509-3.     Reference: May 8th, 2024
Gene Product: October 14th, 2016
Variation: October 7th, 2010
todaytpi3 triose phosphate isomerase3:
8.02
GRMZM2G018177
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Variation: January 15th, 2015
Gene Model: January 15th, 2015
todaywx1 waxy1:
9.03
   Zhang, H-Y et al. 2024. The relationship between starch synthesis enzyme activity, gene expression, and amylopectin fine structure in waxy maize Cereal Res Commun. :doi: 10.1007/s42976-024-00509-3.     Reference: May 8th, 2024
Gene Product: June 4th, 2008
Variation: September 9th, 2023
todayzpl2a zein polypeptidesL2a:
4.08
GRMZM2G404459
Niels Johan Christensen 2024. Conformations of a highly expressed Z19 α-zein studied with AlphaFold2 and MD simulations. PLoS One. 19:e0293786.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Variation: January 14th, 2015
Gene Model: January 14th, 2015
todayfdh1 formaldehyde dehydrogenase homolog1:
5.08
GRMZM5G824600
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: November 15th, 2005
Variation: May 27th, 2014
Gene Model: July 27th, 2016
todaygpc4 glyceraldehyde-3-phosphate dehydrogenase4:
5.05
GRMZM2G176307
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Variation: December 13th, 2012
Gene Model: August 12th, 2014
todaypgk1 phosphoglycerate kinase1:
6.06
GRMZM2G089136
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: November 24th, 2020
Gene Model: August 29th, 2018
todaypgk2 phosphoglycerate kinase2:
8.05
GRMZM2G083016
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: November 24th, 2020
Gene Model: November 24th, 2020
todayzpu1 pullulanase-type starch debranching enzyme1:
2.05
GRMZM2G158043
Zhang, H-Y et al. 2024. The relationship between starch synthesis enzyme activity, gene expression, and amylopectin fine structure in waxy maize Cereal Res Commun. :doi: 10.1007/s42976-024-00509-3.     Reference: May 8th, 2024
Gene Product: October 25th, 2011
Variation: June 29th, 2015
Gene Model: November 20th, 2014
todaydla1 dihydrolipoamide S-acetyltransferase1:
5.04
GRMZM2G015132
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Gene Model: May 20th, 2015
todayald1 aldolase1:
8.06
GRMZM2G057823
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Variation: September 16th, 2013
Gene Model: September 15th, 2013
todaysps1 sucrose phosphate synthase1:
8.06
   Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Variation: January 15th, 2015
todaypdk1 pyruvate, orthophosphate dikinase1:
6.05
GRMZM2G306345
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: July 28th, 2014
Variation: April 18th, 2018
Gene Model: November 21st, 2012
todaypdc1 pyruvate decarboxylase1:
8.04
AC197705.4_FG001
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Variation: April 18th, 2005
Gene Model: June 7th, 2012
todaypdh1 pyruvate dehydrogenase1:
4.08
GRMZM2G361693
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: February 14th, 2008
Variation: April 10th, 2015
Gene Model: April 10th, 2015
todaybzr5 BZR-transcription factor 5:
 
   Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.   AT5G45300 (TAIR) Reference: May 8th, 2024
Gene Product: May 4th, 2022
todayzim10 ZIM-transcription factor 10:
 
   Shiyong Zhou et al. 2024. Jasmonic Acid Mediates Maize (Zea mays L.) Roots Response to Soil Nitrogen Heterogeneity J Plant Biol. :doi: 10.1007/s12374-024-09428-6.     Reference: May 8th, 2024
Gene Product: February 24th, 2021
todayzim3 ZIM-transcription factor 3:
 
   Shiyong Zhou et al. 2024. Jasmonic Acid Mediates Maize (Zea mays L.) Roots Response to Soil Nitrogen Heterogeneity J Plant Biol. :doi: 10.1007/s12374-024-09428-6.     Reference: May 8th, 2024
Gene Product: February 24th, 2021
todayexg1 exoglucanase1:
1.10
GRMZM2G147687
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Variation: August 3rd, 2011
Gene Model: November 20th, 2014
todaypho1 starch phosphorylase1:
1.10
GRMZM2G074158
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: March 26th, 2015
Gene Model: March 26th, 2015
todayumc1794  :
9.06
GRMZM2G031447
Shiyong Zhou et al. 2024. Jasmonic Acid Mediates Maize (Zea mays L.) Roots Response to Soil Nitrogen Heterogeneity J Plant Biol. :doi: 10.1007/s12374-024-09428-6.     Reference: May 8th, 2024
Variation: September 1st, 2003
Gene Model: June 26th, 2020
todaysbe1 starch branching enzyme1:
5.03
   Zhang, H-Y et al. 2024. The relationship between starch synthesis enzyme activity, gene expression, and amylopectin fine structure in waxy maize Cereal Res Commun. :doi: 10.1007/s42976-024-00509-3.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Variation: January 5th, 2018
todaycts3 citrate synthase3:
4.09
GRMZM2G063909
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: July 5th, 2019
Variation: September 1st, 2003
Gene Model: January 3rd, 2022
todaytrpp11 trehalose-6-phosphate phosphatase11:
9.01
GRMZM2G080354
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: October 3rd, 2020
Variation: September 1st, 2003
Gene Model: March 2nd, 2018
todaysus1 sucrose synthase1:
9.04
GRMZM2G152908
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: October 25th, 2006
Variation: February 1st, 2020
Gene Model: August 12th, 2014
todayugp1 UDP-glucose pyrophosphorylase1:
2.07
   Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Variation: February 24th, 2015
todaypck1 phosphoenolpyruvate carboxykinase1:
1.03
GRMZM2G001696
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: August 7th, 2014
Variation: September 25th, 2014
Gene Model: July 18th, 2014
todayde30 defective endosperm B30:
7.01 - 7.02
AF546188.1_FG007
Niels Johan Christensen 2024. Conformations of a highly expressed Z19 α-zein studied with AlphaFold2 and MD simulations. PLoS One. 19:e0293786.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Variation: September 15th, 2014
Gene Model: September 14th, 2014
todaypgd1 6-phosphogluconate dehydrogenase1:
6.01
GRMZM2G127798
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: December 16th, 2020
Variation: September 1st, 2003
Gene Model: July 28th, 2016
todayamyb5 beta amylase5:
7.03
   Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: February 26th, 2021
Variation: July 14th, 2012
todayAY109534  :
4.08
   Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Variation: September 25th, 2007
todaytrps7 trehalose-6-phosphate synthase7:
3.07
GRMZM2G123277
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: October 3rd, 2020
Variation: September 25th, 2007
Gene Model: August 20th, 2021
todaymdh13 malate dehydrogenase13:
3.04
GRMZM2G077415
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: June 4th, 2020
Gene Model: April 2nd, 2020
todayaz19D1 alpha zein 19kDa D1:
1.05
AF546187.1_FG001
Niels Johan Christensen 2024. Conformations of a highly expressed Z19 α-zein studied with AlphaFold2 and MD simulations. PLoS One. 19:e0293786.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Gene Model: November 21st, 2014
todayaz19D2 alpha zein 19kDa D2:
1.05
AF546187.1_FG007
Niels Johan Christensen 2024. Conformations of a highly expressed Z19 α-zein studied with AlphaFold2 and MD simulations. PLoS One. 19:e0293786.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Gene Model: November 21st, 2014
todayaz22z3 22kD alpha zein3:
4.01
GRMZM2G044625
Niels Johan Christensen 2024. Conformations of a highly expressed Z19 α-zein studied with AlphaFold2 and MD simulations. PLoS One. 19:e0293786.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Variation: May 31st, 2010
Gene Model: November 21st, 2014
todayaz22z4 22kD alpha zein4:
4.01
GRMZM2G346897
Niels Johan Christensen 2024. Conformations of a highly expressed Z19 α-zein studied with AlphaFold2 and MD simulations. PLoS One. 19:e0293786.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Variation: May 31st, 2010
Gene Model: November 21st, 2014
todayaz22z5 22kD alpha zein5:
4.01
GRMZM2G088365
Niels Johan Christensen 2024. Conformations of a highly expressed Z19 α-zein studied with AlphaFold2 and MD simulations. PLoS One. 19:e0293786.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Variation: May 31st, 2010
Gene Model: November 21st, 2014
todaysu4 sugary4:
6.05
GRMZM2G090905
Zhang, H-Y et al. 2024. The relationship between starch synthesis enzyme activity, gene expression, and amylopectin fine structure in waxy maize Cereal Res Commun. :doi: 10.1007/s42976-024-00509-3.     Reference: May 8th, 2024
Gene Product: October 25th, 2011
Variation: June 3rd, 2011
Gene Model: October 24th, 2011
todaygla3 beta-glucanase3:
5.01
GRMZM2G473711
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Variation: May 9th, 2009
Gene Model: January 5th, 2016
todaytrps1 trehalose-6-phosphate synthase1:
 
GRMZM2G068943
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: October 3rd, 2020
Gene Model: May 28th, 2012
todayhex5 hexokinase5:
 
GRMZM5G856653
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 15th, 2013
Gene Model: September 15th, 2013
todayhex9 hexokinase9:
 
GRMZM2G467069
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 15th, 2013
Gene Model: September 15th, 2013
todaytrpp2 trehalose-6-phosphate phosphatase2:
 
GRMZM2G140078
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: October 3rd, 2020
Gene Model: September 15th, 2013
todaytrpp8 trehalose-6-phosphate phosphatase8:
 
GRMZM2G174396
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: October 3rd, 2020
Gene Model: September 15th, 2013
todaytrps9 trehalose-6-phosphate synthase9:
 
GRMZM2G366659
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: October 3rd, 2020
Gene Model: September 15th, 2013
todaytrps10 trehalose-6-phosphate synthase10:
 
GRMZM2G312521
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: October 3rd, 2020
Variation: March 18th, 2021
Gene Model: September 15th, 2013
todaytrps11 trehalose-6-phosphate synthase11:
 
GRMZM2G122231
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: October 3rd, 2020
Gene Model: September 15th, 2013
todaytrps12 trehalose-6-phosphate synthase12:
 
GRMZM2G001304
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: October 3rd, 2020
Gene Model: September 15th, 2013
todayzp2 zein protein2:
 
AF546188.1_FG005
Niels Johan Christensen 2024. Conformations of a highly expressed Z19 α-zein studied with AlphaFold2 and MD simulations. PLoS One. 19:e0293786.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Gene Model: August 1st, 2016
todayprh5 protein phosphatase homolog5:
 
GRMZM2G010855
Shiyong Zhou et al. 2024. Jasmonic Acid Mediates Maize (Zea mays L.) Roots Response to Soil Nitrogen Heterogeneity J Plant Biol. :doi: 10.1007/s12374-024-09428-6.     Reference: May 8th, 2024
Gene Product: October 25th, 2021
Gene Model: October 18th, 2016
todayimd4 isopropylmalate dehydrogenase4:
 
GRMZM2G120857
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Gene Model: July 27th, 2017
todaytrpp14 trehalose-6-phosphate phosphatase14:
 
   Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: October 3rd, 2020
todayz1A-3 alpha zein 19kDa A-3:
 
GRMZM2G059620
Niels Johan Christensen 2024. Conformations of a highly expressed Z19 α-zein studied with AlphaFold2 and MD simulations. PLoS One. 19:e0293786.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Gene Model: July 3rd, 2019
todayaldh27 aldehyde dehydrogenase27:
 
GRMZM2G155502
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: January 5th, 2024
Gene Model: October 2nd, 2019
todayaldh13 aldehyde dehydrogenase13:
 
GRMZM2G118800
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: January 5th, 2024
Gene Model: October 2nd, 2019
todayscoal1 succinyl-CoA ligase1:
 
GRMZM2G064695
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: December 30th, 2019
Gene Model: December 30th, 2019
todayhak17 potassium high-affinity transporter17:
 
GRMZM2G088964
Limin Wang et al. 2024. ZmHAK17 encodes a Na+-selective transporter that promotes maize seed germination under salt conditions New Crops. :doi: 10.1016/j.ncrops.2024.100024.     Reference: May 8th, 2024
Gene Product: March 12th, 2020
Gene Model: March 12th, 2020
todaysbe4 starch branching enzyme4:
 
GRMZM2G073054
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: June 6th, 2011
Variation: April 29th, 2021
Gene Model: March 20th, 2020
todayZm00001d033937  :
 
   Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: June 4th, 2008
todayogdh1 2-oxoglutarate dehydrogenase1:
 
GRMZM2G142863
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: March 25th, 2020
Gene Model: March 25th, 2020
todayamya2 alpha amylase2:
 
GRMZM2G070172
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Gene Model: July 8th, 2020
todaycel13 cellulase13:
5.08
GRMZM2G538064
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: March 20th, 2023
Gene Model: May 25th, 2020
todaypgk5 phosphoglycerate kinase5:
 
GRMZM2G003724
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: November 24th, 2020
Gene Model: November 24th, 2020
todayidh3 isocitrate dehydrogenase3:
 
GRMZM2G025366
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: October 2nd, 2023
Gene Model: February 16th, 2021
todaymdh7 malate dehydrogenase7:
 
GRMZM2G068455
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Gene Model: March 2nd, 2021
todaygid4 gibberellin-insensitive dwarf protein homolog4:
 
GRMZM2G440543
Shiyong Zhou et al. 2024. Jasmonic Acid Mediates Maize (Zea mays L.) Roots Response to Soil Nitrogen Heterogeneity J Plant Biol. :doi: 10.1007/s12374-024-09428-6.     Reference: May 8th, 2024
Gene Product: April 27th, 2022
Gene Model: June 2nd, 2021
todaysaur45 small auxin up RNA45:
 
GRMZM2G471304
Shiyong Zhou et al. 2024. Jasmonic Acid Mediates Maize (Zea mays L.) Roots Response to Soil Nitrogen Heterogeneity J Plant Biol. :doi: 10.1007/s12374-024-09428-6.     Reference: May 8th, 2024
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
todayaldh17 aldehyde dehydrogenase17:
5.05
GRMZM2G169458
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: January 5th, 2024
Variation: May 26th, 2023
Gene Model: October 2nd, 2019
todaysudh13 succinate dehydrogenase13:
 
GRMZM2G039542
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: October 25th, 2016
Gene Model: March 21st, 2022
todaypco110217  :
5.06
   Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: August 12th, 2016
todayaldr2 aldose reductase2:
9.07
GRMZM2G059306
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 28th, 2020
Gene Model: January 1st, 2020
todayss1 starch synthase I:
9.02
   Zhang, H-Y et al. 2024. The relationship between starch synthesis enzyme activity, gene expression, and amylopectin fine structure in waxy maize Cereal Res Commun. :doi: 10.1007/s42976-024-00509-3.     Reference: May 8th, 2024
Gene Product: October 14th, 2016
Variation: October 7th, 2010
todaypdh2 pyruvate dehydrogenase2:
1.06
GRMZM2G043198
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: February 14th, 2008
Variation: February 25th, 2013
Gene Model: April 10th, 2015
todayIDP1981  :
7.04
GRMZM2G072054
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Variation: March 31st, 2005
Gene Model: February 5th, 2019
todayaco2 aconitase2:
10.04
GRMZM5G858454
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: September 1st, 2003
Variation: September 3rd, 2013
Gene Model: March 29th, 2015
todayamyb4 beta amylase4:
3.00
GRMZM2G175218
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: February 26th, 2021
Variation: February 27th, 2015
Gene Model: February 28th, 2015
todaypho2 starch phoshorylase2:
3.06
GRMZM2G085577
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: March 26th, 2015
Gene Model: March 26th, 2015
todaypco139502b  :
3.08
GRMZM2G152686
Zhao, YQ et al. 2024. Integrated analysis of transcriptomic and metabolomic data reveals how slurry ice treatment affects sugar metabolism in sweet corn (Zea mays L. var saccharata) during cold storage Food Front. :doi: 10.1002/fft2.410.     Reference: May 8th, 2024
Gene Product: April 8th, 2011
Variation: April 17th, 2008
Gene Model: February 25th, 2019
yesterdaya1 anthocyaninless1:
3.09
   Zhongtian Zheng et al. 2024. Integrative transcriptome analysis uncovers common components containing CPS2 regulated by maize lncRNA GARR2 in gibberellin response. Planta. 259:146.     Reference: May 7th, 2024
Gene Product: April 11th, 2013
Variation: August 25th, 2010
yesterdayuck1 UMP/CMP kinase1:
6.01
GRMZM2G141009
Zhongtian Zheng et al. 2024. Integrative transcriptome analysis uncovers common components containing CPS2 regulated by maize lncRNA GARR2 in gibberellin response. Planta. 259:146.     Reference: May 7th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: July 22nd, 2015
yesterdayd3 dwarf plant3:
9.03
GRMZM2G093195
Zhongtian Zheng et al. 2024. Integrative transcriptome analysis uncovers common components containing CPS2 regulated by maize lncRNA GARR2 in gibberellin response. Planta. 259:146.     Reference: May 7th, 2024
Gene Product: August 15th, 2012
Variation: June 5th, 2023
Gene Model: November 8th, 2012
yesterdayd9 dwarf plant9:
5.01
   Li, W; Chen, YD; Wang, YL; Zhao, J; Wang, YJ. 2022. Plant J. 0:doi: 10.1111/tpj.15748     Reference: May 7th, 2024
Gene Product: February 12th, 2007
Variation: January 30th, 2014
yesterdaygln2 glutamine synthetase2:
1.09
   Li, W; Chen, YD; Wang, YL; Zhao, J; Wang, YJ. 2022. Plant J. 0:doi: 10.1111/tpj.15748     Reference: May 7th, 2024
Gene Product: September 1st, 2003
Variation: March 24th, 2021
yesterdaycbl10 calcineurin B-like10:
3.09
GRMZM2G116584
Zhongtian Zheng et al. 2024. Integrative transcriptome analysis uncovers common components containing CPS2 regulated by maize lncRNA GARR2 in gibberellin response. Planta. 259:146.     Reference: May 7th, 2024
Gene Product: October 19th, 2016
Gene Model: April 3rd, 2018
yesterdaykcs13 3-ketoacyl-CoA synthase13:
1.02
GRMZM2G445602
Li, W; Chen, YD; Wang, YL; Zhao, J; Wang, YJ. 2022. Plant J. 0:doi: 10.1111/tpj.15748     Reference: May 7th, 2024
Gene Product: November 1st, 2018
Gene Model: September 2nd, 2018
yesterdayAY103770  :
9.03
GRMZM2G033555
Zhongtian Zheng et al. 2024. Integrative transcriptome analysis uncovers common components containing CPS2 regulated by maize lncRNA GARR2 in gibberellin response. Planta. 259:146.     Reference: May 7th, 2024
Variation: January 2nd, 2022
Gene Model: February 27th, 2018
yesterdayprp7 pathogenesis-related protein7:
1.03
GRMZM2G112524
Li, W; Chen, YD; Wang, YL; Zhao, J; Wang, YJ. 2022. Plant J. 0:doi: 10.1111/tpj.15748     Reference: May 7th, 2024
Gene Product: December 12th, 2022
Gene Model: September 30th, 2017
yesterdayfum1 fumarase1:
1.04
GRMZM2G010823
Li, W; Chen, YD; Wang, YL; Zhao, J; Wang, YJ. 2022. Plant J. 0:doi: 10.1111/tpj.15748     Reference: May 7th, 2024
Gene Product: June 2nd, 2021
Gene Model: April 14th, 2021
yesterdayggps2 geranylgeranyl pyrophosphate synthase2:
 
AC194970.5_FG001
Zhongtian Zheng et al. 2024. Integrative transcriptome analysis uncovers common components containing CPS2 regulated by maize lncRNA GARR2 in gibberellin response. Planta. 259:146.     Reference: May 7th, 2024
Gene Product: April 8th, 2013
Gene Model: April 8th, 2013
yesterdayggps3 geranylgeranyl pyrophosphate synthase3:
 
GRMZM2G102550
Zhongtian Zheng et al. 2024. Integrative transcriptome analysis uncovers common components containing CPS2 regulated by maize lncRNA GARR2 in gibberellin response. Planta. 259:146.     Reference: May 7th, 2024
Gene Product: April 8th, 2013
Gene Model: April 8th, 2013
yesterdayks4 kaurene synthase4:
 
AC214360.3_FG001
Zhongtian Zheng et al. 2024. Integrative transcriptome analysis uncovers common components containing CPS2 regulated by maize lncRNA GARR2 in gibberellin response. Planta. 259:146.     Reference: May 7th, 2024
Gene Product: August 16th, 2012
Gene Model: October 27th, 2014
yesterdayko2 kaurene oxidase2:
 
GRMZM2G161472
Zhongtian Zheng et al. 2024. Integrative transcriptome analysis uncovers common components containing CPS2 regulated by maize lncRNA GARR2 in gibberellin response. Planta. 259:146.     Reference: May 7th, 2024
Gene Product: October 27th, 2014
Gene Model: October 27th, 2014
yesterdayks6 kaurene synthase6:
 
GRMZM2G391312
Zhongtian Zheng et al. 2024. Integrative transcriptome analysis uncovers common components containing CPS2 regulated by maize lncRNA GARR2 in gibberellin response. Planta. 259:146.     Reference: May 7th, 2024
Gene Product: August 16th, 2012
Gene Model: December 2nd, 2015
yesterdaycyp27 cytochrome P-450 27:
 
GRMZM2G164074
Zhongtian Zheng et al. 2024. Integrative transcriptome analysis uncovers common components containing CPS2 regulated by maize lncRNA GARR2 in gibberellin response. Planta. 259:146.     Reference: May 7th, 2024
Gene Product: December 30th, 2022
Gene Model: March 25th, 2019
yesterdayupl12 ubiquitin-protein ligase12:
 
GRMZM2G331368
Li, W; Chen, YD; Wang, YL; Zhao, J; Wang, YJ. 2022. Plant J. 0:doi: 10.1111/tpj.15748     Reference: May 7th, 2024
Gene Product: November 26th, 2019
Gene Model: November 19th, 2019
yesterdaynope1 no perception1 :
 
GRMZM2G176737
Zhongtian Zheng et al. 2024. Integrative transcriptome analysis uncovers common components containing CPS2 regulated by maize lncRNA GARR2 in gibberellin response. Planta. 259:146.   LOC_Os04g01520 (MSU/TIGR) Reference: May 7th, 2024
Gene Product: September 7th, 2020
Variation: November 21st, 2020
Gene Model: September 7th, 2020
yesterdayfomt4 flavonoid O-methyltransferase 4:
 
GRMZM2G423331
Zhongtian Zheng et al. 2024. Integrative transcriptome analysis uncovers common components containing CPS2 regulated by maize lncRNA GARR2 in gibberellin response. Planta. 259:146.     Reference: May 7th, 2024
Gene Product: February 16th, 2011
Gene Model: November 1st, 2021
yesterdaycaat10 cationic amino acid transporter10:
 
GRMZM2G139920
Li, W; Chen, YD; Wang, YL; Zhao, J; Wang, YJ. 2022. Plant J. 0:doi: 10.1111/tpj.15748     Reference: May 7th, 2024
Gene Product: March 29th, 2024
Gene Model: April 4th, 2022
yesterdaygarr2 gibberellin responsive lncRNA2:
 
   Li, W; Chen, YD; Wang, YL; Zhao, J; Wang, YJ. 2022. Plant J. 0:doi: 10.1111/tpj.15748     Reference: May 7th, 2024
Variation: May 7th, 2024
yesterdaycpps2 copalyl diphosphate synthase2:
1.04
GRMZM2G044481
Zhongtian Zheng et al. 2024. Integrative transcriptome analysis uncovers common components containing CPS2 regulated by maize lncRNA GARR2 in gibberellin response. Planta. 259:146.     Reference: May 7th, 2024
Gene Product: August 16th, 2012
Variation: January 22nd, 2018
Gene Model: September 12th, 2011
2 days agoaaa2 adenosylmethionine aminotransferase2:
 
   ZN Shakhov et al. 2024. Features of GABA-transaminase Functioning in Zea mays L. Leaves Under Salinity J Stress Physiol Biochem. 20:34-40.     Reference: May 6th, 2024
Gene Product: May 6th, 2024
2 days agoglu5 beta-glucosidase5:
 
   Li, C et al. 2024. A novel semi-dominant allele of the transmembrane NAC transcription factor ZmNTL2 reduces the size of multiple maize organs Crop J. :doi: 10.1016/j.cj.2024.04.002.     Reference: May 6th, 2024
Gene Product: June 26th, 2019
2 days agoglu9 beta-glucosidase9:
 
   Li, C et al. 2024. A novel semi-dominant allele of the transmembrane NAC transcription factor ZmNTL2 reduces the size of multiple maize organs Crop J. :doi: 10.1016/j.cj.2024.04.002.     Reference: May 6th, 2024
Gene Product: June 26th, 2019
2 days agocyp50 cytochrome P450 50:
 
   Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: December 30th, 2022
2 days agoLOC103638382  :
 
   ZN Shakhov et al. 2024. Features of GABA-transaminase Functioning in Zea mays L. Leaves Under Salinity J Stress Physiol Biochem. 20:34-40.     Reference: May 6th, 2024
Gene Product: May 6th, 2024
2 days agoaasr1 abscisic acid stress ripening1:
10.02
GRMZM2G136910
Yang, Y et al. 2024. ZmASR1 negatively regulates drought stress tolerance in maize Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108684.     Reference: May 6th, 2024
Gene Product: January 2nd, 2019
Variation: December 30th, 2011
Gene Model: November 1st, 2011
2 days agozep1 zeaxanthin epoxidase1:
2.04
GRMZM2G127139
Prakash, NR et al. 2024. Unique genetic architecture of prolificacy in 'Sikkim Primitive' maize unraveled through whole-genome resequencing-based DNA polymorphism. Plant Cell Rep. 43:134.     Reference: May 6th, 2024
Gene Product: December 10th, 2011
Variation: August 29th, 2011
Gene Model: April 8th, 2013
2 days agoan1 anther ear1:
1.08
GRMZM2G081554
Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: August 16th, 2012
Variation: May 13th, 2020
Gene Model: November 7th, 2011
2 days agoc1 colored aleurone1:
9.01
   Dermail, A et al. 2024. Haploid identification in maize Frontiers in Plant Science. 15:1378421.     Reference: May 6th, 2024
Gene Product: June 16th, 2015
Variation: February 9th, 2024
2 days agod8 dwarf plant8:
1.09
GRMZM2G144744
Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: February 12th, 2007
Variation: August 29th, 2007
Gene Model: May 11th, 2011
2 days agodhr2 dhurrinase2:
3.05
GRMZM2G076946
Li, C et al. 2024. A novel semi-dominant allele of the transmembrane NAC transcription factor ZmNTL2 reduces the size of multiple maize organs Crop J. :doi: 10.1016/j.cj.2024.04.002.     Reference: May 6th, 2024
Gene Product: June 26th, 2019
Variation: September 3rd, 2008
Gene Model: July 27th, 2016
2 days agoig1 indeterminate gametophyte1:
3.06 - 3.07
   Dermail, A et al. 2024. Haploid identification in maize Frontiers in Plant Science. 15:1378421.     Reference: May 6th, 2024
Gene Product: July 28th, 2023
Variation: October 19th, 2010
2 days agolg2 liguleless2:
3.06
   Wang, XK, et al. 2022. Plant Physiol. 0:doi: 10.1093/plphys/kiac308     Reference: May 6th, 2024
Gene Product: August 22nd, 2014
Variation: January 22nd, 2024
2 days agolg3 liguleless3:
3.04
   Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: August 22nd, 2014
Variation: March 16th, 2015
2 days agona1 nana plant1:
3.06 - 3.08
GRMZM2G449033
Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: July 24th, 2012
Variation: December 22nd, 2016
Gene Model: December 20th, 2011
2 days agopl1 purple plant1:
6.04
   Dermail, A et al. 2024. Haploid identification in maize Frontiers in Plant Science. 15:1378421.     Reference: May 6th, 2024
Gene Product: June 16th, 2015
Variation: March 28th, 2013
2 days agopro1 proline responding1:
8.04
GRMZM2G375504
Ren, ZZ et al. 2024. Regulatory mechanisms used by ZmMYB39 to enhance drought tolerance in maize (Zea mays) seedlings. Plant Physiol Biochem. 211:108696.     Reference: May 6th, 2024
Gene Product: March 19th, 2015
Variation: June 18th, 2021
Gene Model: June 22nd, 2014
2 days agor1 colored1:
10.06
   Dermail, A et al. 2024. Haploid identification in maize Frontiers in Plant Science. 15:1378421.     Reference: May 6th, 2024
Gene Product: October 13th, 2010
Variation: February 9th, 2024
2 days agora3 ramosa3:
7.06
   Prakash, NR et al. 2024. Unique genetic architecture of prolificacy in 'Sikkim Primitive' maize unraveled through whole-genome resequencing-based DNA polymorphism. Plant Cell Rep. 43:134.     Reference: May 6th, 2024
Gene Product: October 3rd, 2020
Variation: December 3rd, 2010
2 days agors1 rough sheath1:
7.00
GRMZM2G028041
Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: September 30th, 2015
Variation: November 18th, 2013
Gene Model: September 30th, 2015
2 days agomyb39 myb transcription factor39:
 
GRMZM2G127857
Ren, ZZ et al. 2024. Regulatory mechanisms used by ZmMYB39 to enhance drought tolerance in maize (Zea mays) seedlings. Plant Physiol Biochem. 211:108696.     Reference: May 6th, 2024
Gene Product: February 16th, 2011
Variation: May 12th, 2011
Gene Model: July 28th, 2016
2 days agoarftf18 ARF-transcription factor 18:
5.03
GRMZM2G035405
Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: January 29th, 2022
Variation: September 1st, 2003
Gene Model: June 23rd, 2018
2 days agosod2 superoxide dismutase2:
7.05
   Ren, ZZ et al. 2024. Regulatory mechanisms used by ZmMYB39 to enhance drought tolerance in maize (Zea mays) seedlings. Plant Physiol Biochem. 211:108696.     Reference: May 6th, 2024
Gene Product: October 4th, 2021
Variation: August 2nd, 2013
2 days agobzr1 BZR-transcription factor 1:
 
   Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: May 4th, 2022
Variation: June 27th, 2022
2 days agobes1 brassinosteroid insensitive EMS-suppressor homolog1:
 
   Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: May 4th, 2022
Variation: June 27th, 2022
2 days agogras42 GRAS-transcription factor 42:
 
   Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.   AT1G63100 (TAIR) Reference: May 6th, 2024
Variation: May 6th, 2024
2 days agonactf49 NAC-transcription factor 49:
 
   Ren, ZZ et al. 2024. Regulatory mechanisms used by ZmMYB39 to enhance drought tolerance in maize (Zea mays) seedlings. Plant Physiol Biochem. 211:108696.     Reference: May 6th, 2024
Gene Product: July 8th, 2019
Variation: March 3rd, 2017
2 days agowrky40 WRKY-transcription factor 40:
 
   Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Variation: January 22nd, 2024
2 days agoocl4 outer cell layer4:
1.05 - 1.06
   Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: September 1st, 2003
Variation: December 6th, 2019
2 days agockx10 cytokinin oxidase10:
1.07
GRMZM2G348452
Li, C et al. 2024. A novel semi-dominant allele of the transmembrane NAC transcription factor ZmNTL2 reduces the size of multiple maize organs Crop J. :doi: 10.1016/j.cj.2024.04.002.     Reference: May 6th, 2024
Gene Product: April 4th, 2014
Variation: September 1st, 2003
Gene Model: September 18th, 2018
2 days agoereb22 AP2-EREBP-transcription factor 22:
8.03
GRMZM2G006745
Ren, ZZ et al. 2024. Regulatory mechanisms used by ZmMYB39 to enhance drought tolerance in maize (Zea mays) seedlings. Plant Physiol Biochem. 211:108696.     Reference: May 6th, 2024
Variation: July 17th, 2020
Gene Model: September 18th, 2018
2 days agofnr1 ferredoxin NADP reductase1:
1.11
   Ren, ZZ et al. 2024. Regulatory mechanisms used by ZmMYB39 to enhance drought tolerance in maize (Zea mays) seedlings. Plant Physiol Biochem. 211:108696.     Reference: May 6th, 2024
Gene Product: May 11th, 2021
Variation: December 7th, 2012
2 days agoaaa1 adenosylmethionine aminotransferase1:
2.02
GRMZM5G817886
ZN Shakhov et al. 2024. Features of GABA-transaminase Functioning in Zea mays L. Leaves Under Salinity J Stress Physiol Biochem. 20:34-40.     Reference: May 6th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: December 28th, 2016
2 days agopin10 PIN-formed protein10:
 
GRMZM2G126260
Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: April 3rd, 2024
Gene Model: January 24th, 2013
2 days agodwil1 dwarf & irregular leaf1:
 
GRMZM2G013657
Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: July 5th, 2019
Variation: March 18th, 2013
Gene Model: March 12th, 2013
2 days agoga2ox3 gibberellin 2-oxidase3:
 
GRMZM2G022679
Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: October 27th, 2014
Gene Model: October 27th, 2014
2 days agoga2ox9 gibberellin 2-oxidase9:
 
GRMZM2G152354
Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: October 27th, 2014
Gene Model: October 27th, 2014
2 days agoga2ox13 gibberellin 2-oxidase13:
 
GRMZM2G031432
Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: October 27th, 2014
Gene Model: October 30th, 2014
2 days agoyuc6 Yucca6:
 
GRMZM2G019515
Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: June 18th, 2018
Variation: July 9th, 2021
Gene Model: June 17th, 2016
2 days agobx13 benzoxazinone synthesis13:
 
AC148152.3_FG005
Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: June 20th, 2016
Variation: June 20th, 2016
Gene Model: June 20th, 2016
2 days agopld3 phospholipase D3:
 
GRMZM2G043340
Dermail, A et al. 2024. Haploid identification in maize Frontiers in Plant Science. 15:1378421.     Reference: May 6th, 2024
Gene Product: August 9th, 2016
Variation: December 9th, 2021
Gene Model: July 4th, 2019
2 days agomatl1 matrilineal1:
 
GRMZM2G471240
Dermail, A et al. 2024. Haploid identification in maize Frontiers in Plant Science. 15:1378421.     Reference: May 6th, 2024
Gene Product: June 12th, 2020
Variation: February 10th, 2017
Gene Model: January 25th, 2017
2 days agoburp2 BURP domain-containing protein-RD22-like2:
 
GRMZM5G800586
Ren, ZZ et al. 2024. Regulatory mechanisms used by ZmMYB39 to enhance drought tolerance in maize (Zea mays) seedlings. Plant Physiol Biochem. 211:108696.     Reference: May 6th, 2024
Gene Product: August 18th, 2017
Variation: August 18th, 2017
Gene Model: August 18th, 2017
2 days agogid2 gibberellin-insensitive dwarf protein homolog2:
 
GRMZM2G016605
Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: October 6th, 2021
Gene Model: May 29th, 2019
2 days agodmp1 DUF679 domain membrane protein1:
 
GRMZM2G465053
Dermail, A et al. 2024. Haploid identification in maize Frontiers in Plant Science. 15:1378421.   AT5G39650 (TAIR) Reference: May 6th, 2024
Gene Product: June 10th, 2019
Variation: June 10th, 2019
Gene Model: June 10th, 2019
2 days agobak3 brassinosteroid insensitive1-associated receptor kinase like3:
 
GRMZM2G043350
Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.   AT4G18710 (TAIR) Reference: May 6th, 2024
Gene Product: February 22nd, 2022
Gene Model: June 21st, 2019
2 days agotmm1 too many mouths-like1:
 
GRMZM2G011401
Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.   AT1G80080 (TAIR) Reference: May 6th, 2024
Gene Product: February 1st, 2023
Gene Model: July 10th, 2019
2 days agoaas6 auxin amido synthetase6:
 
GRMZM2G061515
Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: October 21st, 2019
Gene Model: October 21st, 2019
2 days agoga2ox14 gibberellin 2-oxidase14:
 
GRMZM2G320167
Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: October 27th, 2014
Gene Model: May 8th, 2021
2 days agogid5 gibberellin-insensitive dwarf protein homolog5:
 
GRMZM2G459166
Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: April 27th, 2022
Gene Model: October 6th, 2021
2 days agoidd14 indeterminate domain14:
 
GRMZM2G141031
Prakash, NR et al. 2024. Unique genetic architecture of prolificacy in 'Sikkim Primitive' maize unraveled through whole-genome resequencing-based DNA polymorphism. Plant Cell Rep. 43:134.   AT1G68130 (TAIR) Reference: May 6th, 2024
Gene Product: November 14th, 2022
Gene Model: August 24th, 2022
2 days agoaas10 auxin amido synthetase10:
8.03
GRMZM2G001421
Li, C et al. 2024. A novel semi-dominant allele of the transmembrane NAC transcription factor ZmNTL2 reduces the size of multiple maize organs Crop J. :doi: 10.1016/j.cj.2024.04.002.     Reference: May 6th, 2024
Gene Product: October 21st, 2019
Gene Model: October 21st, 2019
2 days agoIDP3890  :
9.03
GRMZM2G006973
Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Variation: March 31st, 2005
Gene Model: July 14th, 2021
2 days agocyp11 cytochrome P450 11:
3.09
GRMZM2G129860
Kaur, A et al. 2024. A maize semidwarf mutant reveals a GRAS transcription factor involved in brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae147.     Reference: May 6th, 2024
Gene Product: September 26th, 2016
Variation: January 22nd, 2010
Gene Model: April 30th, 2013
5 days agoZm00001d014917  :
 
   Carolina Bellino et al. 2024. Molecular Evolution of RAMOSA1 (RA1) in Land Plants Biomolecules. 14:550.     Reference: May 3rd, 2024
Gene Product: November 14th, 2022
5 days agobm1 brown midrib1:
5.04
   Tyler Foster et al. 2024. Fine mapping of major QTL qshgd1 for spontaneous haploid genome doubling in maize (Zea mays L.). Theor Appl Genet. 137:117.     Reference: May 3rd, 2024
Gene Product: September 1st, 2003
Variation: November 17th, 2020
5 days agoga1 gametophyte factor1:
4.02 - 4.03
   Zhang, ZG et al. 2018. Nature communications p.3678     Reference: May 3rd, 2024
Variation: June 22nd, 2005
5 days agoga2 gametophyte factor2:
5.04
   Bapat, AR and Scott, MP 2024. Pectin methylesterase activities in reproductive tissues of maize plants with different haplotypes of the Ga1 and Ga2 cross incompatibility systems. Plant Reproduction. :doi: 10.1007/s00497-024-00502-0.     Reference: May 3rd, 2024
Variation: September 29th, 2016
5 days agora1 ramosa1:
7.02
   Carolina Bellino et al. 2024. Molecular Evolution of RAMOSA1 (RA1) in Land Plants Biomolecules. 14:550.     Reference: May 3rd, 2024
Gene Product: April 11th, 2007
Variation: August 20th, 2010
5 days agoumc1283  :
5.04
GRMZM2G094353
Tyler Foster et al. 2024. Fine mapping of major QTL qshgd1 for spontaneous haploid genome doubling in maize (Zea mays L.). Theor Appl Genet. 137:117.     Reference: May 3rd, 2024
Variation: September 1st, 2003
Gene Model: May 15th, 2020
5 days agotcb1 teosinte crossing barrier1:
4.04
   Bapat, AR and Scott, MP 2024. Pectin methylesterase activities in reproductive tissues of maize plants with different haplotypes of the Ga1 and Ga2 cross incompatibility systems. Plant Reproduction. :doi: 10.1007/s00497-024-00502-0.     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
Variation: May 24th, 2019
5 days agodof21 C2C2-Dof-transcription factor 21:
1.02
GRMZM2G162749
Carolina Bellino et al. 2024. Molecular Evolution of RAMOSA1 (RA1) in Land Plants Biomolecules. 14:550.     Reference: May 3rd, 2024
Variation: January 6th, 2017
Gene Model: January 6th, 2017
5 days agommp225  :
10.04
GRMZM2G137736
Carolina Bellino et al. 2024. Molecular Evolution of RAMOSA1 (RA1) in Land Plants Biomolecules. 14:550.     Reference: May 3rd, 2024
Gene Product: November 14th, 2022
Gene Model: December 10th, 2021
5 days agopme36 pectin methylesterase36:
2.03
GRMZM2G162333
Bapat, AR and Scott, MP 2024. Pectin methylesterase activities in reproductive tissues of maize plants with different haplotypes of the Ga1 and Ga2 cross incompatibility systems. Plant Reproduction. :doi: 10.1007/s00497-024-00502-0.     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
5 days agopme31 pectin methylesterase31:
3.09
GRMZM2G004927
Bapat, AR and Scott, MP 2024. Pectin methylesterase activities in reproductive tissues of maize plants with different haplotypes of the Ga1 and Ga2 cross incompatibility systems. Plant Reproduction. :doi: 10.1007/s00497-024-00502-0.     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
5 days agopme3 pectin methylesterase3:
 
   Bapat, AR and Scott, MP 2024. Pectin methylesterase activities in reproductive tissues of maize plants with different haplotypes of the Ga1 and Ga2 cross incompatibility systems. Plant Reproduction. :doi: 10.1007/s00497-024-00502-0.     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
5 days agoZm00001d048936  :
 
GRMZM2G119698
Zhang, ZG et al. 2018. Nature communications p.3678     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
Gene Model: September 10th, 2018
5 days agopme8 pectin methylesterase8:
 
GRMZM2G128549
Zhang, ZG et al. 2018. Nature communications p.3678     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
5 days agopme24 pectin methylesterase24:
 
GRMZM2G404767
Bapat, AR and Scott, MP 2024. Pectin methylesterase activities in reproductive tissues of maize plants with different haplotypes of the Ga1 and Ga2 cross incompatibility systems. Plant Reproduction. :doi: 10.1007/s00497-024-00502-0.     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
5 days agopme26 pectin methylesterase26:
 
GRMZM2G019411
Bapat, AR and Scott, MP 2024. Pectin methylesterase activities in reproductive tissues of maize plants with different haplotypes of the Ga1 and Ga2 cross incompatibility systems. Plant Reproduction. :doi: 10.1007/s00497-024-00502-0.     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
5 days agopme30 pectin methylesterase30:
 
GRMZM2G121278
Bapat, AR and Scott, MP 2024. Pectin methylesterase activities in reproductive tissues of maize plants with different haplotypes of the Ga1 and Ga2 cross incompatibility systems. Plant Reproduction. :doi: 10.1007/s00497-024-00502-0.     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
5 days agopme32 pectin methylesterase32:
 
GRMZM2G318299
Bapat, AR and Scott, MP 2024. Pectin methylesterase activities in reproductive tissues of maize plants with different haplotypes of the Ga1 and Ga2 cross incompatibility systems. Plant Reproduction. :doi: 10.1007/s00497-024-00502-0.     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
5 days agopme33 pectin methylesterase33:
 
GRMZM2G070913
Bapat, AR and Scott, MP 2024. Pectin methylesterase activities in reproductive tissues of maize plants with different haplotypes of the Ga1 and Ga2 cross incompatibility systems. Plant Reproduction. :doi: 10.1007/s00497-024-00502-0.     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
5 days agopme34 pectin methylesterase34:
 
GRMZM2G422631
Bapat, AR and Scott, MP 2024. Pectin methylesterase activities in reproductive tissues of maize plants with different haplotypes of the Ga1 and Ga2 cross incompatibility systems. Plant Reproduction. :doi: 10.1007/s00497-024-00502-0.     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
5 days agopme35 pectin methylesterase35:
 
GRMZM2G455564
Bapat, AR and Scott, MP 2024. Pectin methylesterase activities in reproductive tissues of maize plants with different haplotypes of the Ga1 and Ga2 cross incompatibility systems. Plant Reproduction. :doi: 10.1007/s00497-024-00502-0.     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
5 days agopme37 pectin methylesterase37:
 
GRMZM2G043943
Bapat, AR and Scott, MP 2024. Pectin methylesterase activities in reproductive tissues of maize plants with different haplotypes of the Ga1 and Ga2 cross incompatibility systems. Plant Reproduction. :doi: 10.1007/s00497-024-00502-0.     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
5 days agopme38 pectin methylesterase38:
 
GRMZM2G071339
Bapat, AR and Scott, MP 2024. Pectin methylesterase activities in reproductive tissues of maize plants with different haplotypes of the Ga1 and Ga2 cross incompatibility systems. Plant Reproduction. :doi: 10.1007/s00497-024-00502-0.     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
5 days agopme39 pectin methylesterase39:
 
GRMZM2G120779
Bapat, AR and Scott, MP 2024. Pectin methylesterase activities in reproductive tissues of maize plants with different haplotypes of the Ga1 and Ga2 cross incompatibility systems. Plant Reproduction. :doi: 10.1007/s00497-024-00502-0.     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
5 days agopme40 pectin methylesterase40:
 
GRMZM2G177940
Bapat, AR and Scott, MP 2024. Pectin methylesterase activities in reproductive tissues of maize plants with different haplotypes of the Ga1 and Ga2 cross incompatibility systems. Plant Reproduction. :doi: 10.1007/s00497-024-00502-0.     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
5 days agopme41 pectin methylesterase41:
 
GRMZM2G037411
Bapat, AR and Scott, MP 2024. Pectin methylesterase activities in reproductive tissues of maize plants with different haplotypes of the Ga1 and Ga2 cross incompatibility systems. Plant Reproduction. :doi: 10.1007/s00497-024-00502-0.     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
5 days agopme42 pectin methylesterase42:
 
GRMZM2G382557
Bapat, AR and Scott, MP 2024. Pectin methylesterase activities in reproductive tissues of maize plants with different haplotypes of the Ga1 and Ga2 cross incompatibility systems. Plant Reproduction. :doi: 10.1007/s00497-024-00502-0.     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
5 days agoZm00001d016245  :
 
GRMZM2G071511
Bapat, AR and Scott, MP 2024. Pectin methylesterase activities in reproductive tissues of maize plants with different haplotypes of the Ga1 and Ga2 cross incompatibility systems. Plant Reproduction. :doi: 10.1007/s00497-024-00502-0.     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
Gene Model: April 14th, 2022
5 days agoTRINITY_DN1207_c0_g1 (PG2)  :
 
GRMZM2G410783
Bapat, AR and Scott, MP 2024. Pectin methylesterase activities in reproductive tissues of maize plants with different haplotypes of the Ga1 and Ga2 cross incompatibility systems. Plant Reproduction. :doi: 10.1007/s00497-024-00502-0.     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
Gene Model: April 14th, 2022
5 days agopme43 pectin methylesterase43:
4.00
GRMZM2G431856
Bapat, AR and Scott, MP 2024. Pectin methylesterase activities in reproductive tissues of maize plants with different haplotypes of the Ga1 and Ga2 cross incompatibility systems. Plant Reproduction. :doi: 10.1007/s00497-024-00502-0.     Reference: May 3rd, 2024
Gene Product: September 10th, 2018
Variation: March 31st, 2005
Gene Model: December 28th, 2019
6 days agoms26 male sterile26:
1.02 - 1.02
   Albertsen, MC et al. 2006. Nucleotide sequences mediating plant male fertility and method of using same. Patent US7612251B2     Reference: May 2nd, 2024
Gene Product: September 30th, 2013
Variation: July 8th, 2020
6 days agoaasr2 abscisic acid stress ripening2:
2.05
GRMZM5G854138
Liang, YN et al. 2019. Int J Mol Sci 20:2278     Reference: May 2nd, 2024
Gene Product: December 1st, 2011
Variation: November 22nd, 2011
Gene Model: November 1st, 2011
6 days agoaasr6 abscisic acid stress ripening6:
5.04
GRMZM2G057841
Liang, YN et al. 2019. Int J Mol Sci 20:2278     Reference: May 2nd, 2024
Gene Product: January 2nd, 2019
Variation: November 12th, 2014
Gene Model: November 1st, 2011
6 days agoaasr9 abscisic acid stress ripening9:
3.04
GRMZM2G383699
Liang, YN et al. 2019. Int J Mol Sci 20:2278     Reference: May 2nd, 2024
Gene Product: January 2nd, 2019
Gene Model: November 1st, 2011
6 days agoamya1 alpha amylase1:
 
   MacGregor, AW et al. 1988. Cereal Chem 65:326-333     Reference: May 2nd, 2024
Gene Product: September 1st, 2003
Variation: May 12th, 2005
6 days agosod4 superoxide dismutase4:
1.04
   Xinran Gao et al. 2024. ZmmiR398b negatively regulates maize resistance to sugarcane mosaic virus infection by targeting ZmCSD2/4/9. Mol Plant Pathol. 25:e13462.     Reference: May 2nd, 2024
Gene Product: October 4th, 2021
Variation: April 20th, 2005
6 days agossu1 ribulose bisphosphate carboxylase small subunit1:
4.08
   Kathryn Eshenour et al. 2024. Transgenic Expression of Rubisco Accumulation Factor2 and Rubisco Subunits Increases Photosynthesis and Growth in Maize. J Exp Bot. :doi: 10.1093/jxb/erae186.     Reference: May 2nd, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
6 days agossu2 ribulose bisphosphate carboxylase small subunit2:
2.05
GRMZM2G113033
Wostrikoff, K et al. 2012. Ectopic expression of Rubisco subunits in maize mesophyll cells does not overcome barriers to cell type-specific accumulation. Plant Physiol. 160:419-32.     Reference: May 2nd, 2024
Gene Product: September 1st, 2003
Variation: October 14th, 2014
Gene Model: August 7th, 2014
6 days agobss1 bundle sheath strands specific1:
8.06
GRMZM2G168552
Liang, YN et al. 2019. Int J Mol Sci 20:2278     Reference: May 2nd, 2024
Gene Product: December 1st, 2011
Variation: November 1st, 2011
Gene Model: November 1st, 2011
6 days agoaasr3 abscisic acid stress ripening3:
2.04
GRMZM5G806182
Liang, YN et al. 2019. Int J Mol Sci 20:2278     Reference: May 2nd, 2024
Gene Product: December 1st, 2011
Gene Model: January 2nd, 2019
6 days agosod9 superoxide dismutase9:
9.04
   Xinran Gao et al. 2024. ZmmiR398b negatively regulates maize resistance to sugarcane mosaic virus infection by targeting ZmCSD2/4/9. Mol Plant Pathol. 25:e13462.     Reference: May 2nd, 2024
Gene Product: October 4th, 2021
Variation: January 21st, 2015
6 days agoamya3 alpha amylase3:
2.07
   MacGregor, AW et al. 1988. Cereal Chem 65:326-333     Reference: May 2nd, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
6 days agorbcL (cp) ribulose-1-5-bisphosphate carboxylase-large subunit:
 
   Kathryn Eshenour et al. 2024. Transgenic Expression of Rubisco Accumulation Factor2 and Rubisco Subunits Increases Photosynthesis and Growth in Maize. J Exp Bot. :doi: 10.1093/jxb/erae186.     Reference: May 2nd, 2024
Gene Product: September 1st, 2003
6 days agoaasr5 abscisic acid stress ripening5:
10.04
GRMZM2G052100
Liang, YN et al. 2019. Int J Mol Sci 20:2278     Reference: May 2nd, 2024
Gene Product: November 4th, 2011
Variation: April 14th, 2007
Gene Model: November 1st, 2011
6 days agoraf1 Rubisco Assembly Factor 1:
 
GRMZM2G457621
Kathryn Eshenour et al. 2024. Transgenic Expression of Rubisco Accumulation Factor2 and Rubisco Subunits Increases Photosynthesis and Growth in Maize. J Exp Bot. :doi: 10.1093/jxb/erae186.     Reference: May 2nd, 2024
Gene Product: October 4th, 2014
Variation: October 4th, 2014
Gene Model: October 4th, 2014
6 days agoaasr7 abscisic acid stress ripening7:
 
GRMZM2G014797
Liang, YN et al. 2019. Int J Mol Sci 20:2278     Reference: May 2nd, 2024
Gene Product: January 2nd, 2019
Gene Model: November 1st, 2011
6 days agoaasr8 abscisic acid stress ripening8:
 
GRMZM2G314075
Liang, YN et al. 2019. Int J Mol Sci 20:2278     Reference: May 2nd, 2024
Gene Product: January 2nd, 2019
Gene Model: November 1st, 2011
6 days agoraf2 rubisco accumulation factor2:
 
GRMZM2G139123
Kathryn Eshenour et al. 2024. Transgenic Expression of Rubisco Accumulation Factor2 and Rubisco Subunits Increases Photosynthesis and Growth in Maize. J Exp Bot. :doi: 10.1093/jxb/erae186.     Reference: May 2nd, 2024
Gene Product: December 16th, 2015
Variation: October 4th, 2014
Gene Model: October 4th, 2014
7 days agobhlh166 bHLH-transcription factor 166:
3.09
   Zhenwei Yan et al. 2024. The ZmbHLH47-ZmSnRK2.9 Module Promotes Drought Tolerance in Maize Int J Mol Sci. 25:4957.     Reference: May 1st, 2024
Variation: September 25th, 2007
7 days agobhlh187 bHLH-transcription factor 187:
4.02
GRMZM2G133675
Zhenwei Yan et al. 2024. The ZmbHLH47-ZmSnRK2.9 Module Promotes Drought Tolerance in Maize Int J Mol Sci. 25:4957.     Reference: May 1st, 2024
Gene Product: September 14th, 2016
Gene Model: April 11th, 2020
7 days agosnrkII9 SnRK2 serine threonine protein kinase9:
 
GRMZM2G081915
Zhenwei Yan et al. 2024. The ZmbHLH47-ZmSnRK2.9 Module Promotes Drought Tolerance in Maize Int J Mol Sci. 25:4957.     Reference: May 1st, 2024
Gene Product: April 14th, 2018
Gene Model: April 14th, 2018
8 days agolarp9 la motif-related protein9:
 
   Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: October 28th, 2021
8 days agolarp10 la motif-related protein10:
 
   Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: October 28th, 2021
8 days agolarp11 la motif-related protein11:
 
   Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: October 28th, 2021
8 days agolarp13 la motif-related protein13:
 
   Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: October 28th, 2021
8 days agolarp14 la motif-related protein14:
 
   Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: October 28th, 2021
8 days agolarp8 la motif-related protein8:
5.00
GRMZM5G861064
Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: October 28th, 2021
Variation: September 25th, 2007
Gene Model: August 25th, 2021
8 days agoact1 actin1:
8.03 - 8.04
   Paloma Serra et al. 2024. A maize enzyme from the 2-oxoglutarate-dependent oxygenase family with unique kinetic properties, mediates resistance against pathogens and regulates senescence. Plant Cell Environ. :doi: 10.1111/pce.14929.     Reference: April 30th, 2024
Gene Product: September 1st, 2003
Variation: September 4th, 2013
8 days agogpc1 glyceraldehyde-3-phosphate dehydrogenase1:
4.05
   Paloma Serra et al. 2024. A maize enzyme from the 2-oxoglutarate-dependent oxygenase family with unique kinetic properties, mediates resistance against pathogens and regulates senescence. Plant Cell Environ. :doi: 10.1111/pce.14929.     Reference: April 30th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
8 days agompk1 MAP kinase1:
9.06
GRMZM2G053987
Paloma Serra et al. 2024. A maize enzyme from the 2-oxoglutarate-dependent oxygenase family with unique kinetic properties, mediates resistance against pathogens and regulates senescence. Plant Cell Environ. :doi: 10.1111/pce.14929.     Reference: April 30th, 2024
Gene Product: July 12th, 2013
Variation: January 16th, 2013
Gene Model: July 9th, 2013
8 days agotubtf15 TUB-transcription factor 15:
3.08
GRMZM2G062154
Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: September 29th, 2015
Variation: September 1st, 2003
Gene Model: September 29th, 2015
8 days agolarp12 la motif-related protein12:
7.06 - 7.06
GRMZM2G067383
Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Variation: September 1st, 2003
Gene Model: March 16th, 2021
8 days agomir3 maize insect resistance3:
 
GRMZM2G166281
Paloma Serra et al. 2024. A maize enzyme from the 2-oxoglutarate-dependent oxygenase family with unique kinetic properties, mediates resistance against pathogens and regulates senescence. Plant Cell Environ. :doi: 10.1111/pce.14929.     Reference: April 30th, 2024
Gene Product: October 11th, 2021
Variation: August 1st, 2011
Gene Model: February 12th, 2014
8 days agoprp5 pathogenesis related protein5:
1.06
GRMZM2G402631
Paloma Serra et al. 2024. A maize enzyme from the 2-oxoglutarate-dependent oxygenase family with unique kinetic properties, mediates resistance against pathogens and regulates senescence. Plant Cell Environ. :doi: 10.1111/pce.14929.     Reference: April 30th, 2024
Gene Product: December 12th, 2022
Variation: August 20th, 2011
Gene Model: October 30th, 2015
8 days agosbip2a small basic membrane intrinsic protein2a:
1.04
GRMZM2G175038
Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: January 27th, 2022
Variation: September 1st, 2003
Gene Model: February 2nd, 2015
8 days agolarp5 la motif-related protein5:
2.08
GRMZM2G072339
Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: October 28th, 2021
Gene Model: March 23rd, 2020
8 days agoopr8 12-oxo-phytodienoic acid reductase8:
4.05
GRMZM2G082087
Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: September 3rd, 2010
Variation: December 16th, 2019
Gene Model: November 25th, 2013
8 days agoprp4 pathogenesis related protein4:
7.00
GRMZM2G465226
Paloma Serra et al. 2024. A maize enzyme from the 2-oxoglutarate-dependent oxygenase family with unique kinetic properties, mediates resistance against pathogens and regulates senescence. Plant Cell Environ. :doi: 10.1111/pce.14929.     Reference: April 30th, 2024
Gene Product: December 12th, 2022
Variation: August 29th, 2011
Gene Model: November 20th, 2014
8 days agofls1 flavonol synthase1:
 
GRMZM2G152801
Paloma Serra et al. 2024. A maize enzyme from the 2-oxoglutarate-dependent oxygenase family with unique kinetic properties, mediates resistance against pathogens and regulates senescence. Plant Cell Environ. :doi: 10.1111/pce.14929.     Reference: April 30th, 2024
Gene Product: October 10th, 2012
Variation: October 9th, 2012
Gene Model: October 9th, 2012
8 days agofls2 flavonol synthase2:
 
GRMZM2G069298
Paloma Serra et al. 2024. A maize enzyme from the 2-oxoglutarate-dependent oxygenase family with unique kinetic properties, mediates resistance against pathogens and regulates senescence. Plant Cell Environ. :doi: 10.1111/pce.14929.     Reference: April 30th, 2024
Gene Product: October 10th, 2012
Gene Model: October 9th, 2012
8 days agosweet1b sugars will eventually be exported transporter1b:
 
GRMZM2G153358
Paloma Serra et al. 2024. A maize enzyme from the 2-oxoglutarate-dependent oxygenase family with unique kinetic properties, mediates resistance against pathogens and regulates senescence. Plant Cell Environ. :doi: 10.1111/pce.14929.     Reference: April 30th, 2024
Gene Product: November 4th, 2015
Variation: April 19th, 2019
Gene Model: November 3rd, 2015
8 days agopyl10 pyrabactin resistance-like protein10:
 
GRMZM2G063882
Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: January 31st, 2021
Gene Model: April 21st, 2018
8 days agocoi4 coronatine insensitive4:
 
GRMZM2G079112
Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: November 2nd, 2018
Variation: February 15th, 2022
Gene Model: November 2nd, 2018
8 days agoGRMZM2G050234  :
 
GRMZM2G050234
Paloma Serra et al. 2024. A maize enzyme from the 2-oxoglutarate-dependent oxygenase family with unique kinetic properties, mediates resistance against pathogens and regulates senescence. Plant Cell Environ. :doi: 10.1111/pce.14929.   AT4G10500 (TAIR)
LOC_Os04g49210 (MSU/TIGR)
Reference: April 30th, 2024
Gene Product: April 30th, 2024
Gene Model: November 21st, 2019
8 days agopab2 polyA binding protein2:
 
GRMZM2G102829
Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: August 4th, 2020
Gene Model: August 4th, 2020
8 days agocoi6 coronatine insensitive6:
 
   Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: November 2nd, 2018
Variation: February 15th, 2022
8 days agopyl7 pyrabactin resistance-like protein7:
 
GRMZM2G144224
Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: January 31st, 2021
Gene Model: January 31st, 2021
8 days agopyl13 pyrabactin resistance-like protein13:
 
GRMZM2G048733
Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: January 31st, 2021
Gene Model: January 31st, 2021
8 days agolarp1 la motif-related protein1:
 
GRMZM2G020281
Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: October 28th, 2021
Variation: February 25th, 2021
Gene Model: February 25th, 2021
8 days agostp2 sugar transport2:
 
AC208897.3_FG004
Paloma Serra et al. 2024. A maize enzyme from the 2-oxoglutarate-dependent oxygenase family with unique kinetic properties, mediates resistance against pathogens and regulates senescence. Plant Cell Environ. :doi: 10.1111/pce.14929.     Reference: April 30th, 2024
Gene Product: January 2nd, 2023
Gene Model: March 4th, 2021
8 days agoccp14 cysteine protease14:
 
GRMZM2G045706
Paloma Serra et al. 2024. A maize enzyme from the 2-oxoglutarate-dependent oxygenase family with unique kinetic properties, mediates resistance against pathogens and regulates senescence. Plant Cell Environ. :doi: 10.1111/pce.14929.     Reference: April 30th, 2024
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
8 days agolarp2 la motif-related protein2:
 
GRMZM2G127665
Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: October 28th, 2021
Gene Model: October 28th, 2021
8 days agolarp3 la motif-related protein3:
 
GRMZM2G045503
Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: October 28th, 2021
Gene Model: October 28th, 2021
8 days agolarp6 la motif-related protein6:
 
GRMZM2G411041
Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: October 28th, 2021
Gene Model: October 28th, 2021
8 days agolarp7 la motif-related protein7:
8.01
   Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: October 28th, 2021
8 days agolarp4 la motif-related protein4:
10.03
GRMZM2G171518
Xiaoqin Xiang et al. 2024. Genome-wide investigation of the LARP gene family: focus on functional identification and transcriptome profiling of ZmLARP6c1 in maize pollen. BMC Plant Biology. 24:348.     Reference: April 30th, 2024
Gene Product: October 28th, 2021
Gene Model: November 29th, 2019
9 days agohb67 Homeobox-transcription factor 67:
2.01
   Gregory, J. et al. 2024. Mechanisms Of Meristem Maintenance By Maize Transcriptional Corepressors bioRxiv preprint. :doi: 10.1101/2024.04.26.591374.     Reference: April 29th, 2024
Gene Product: August 25th, 2017
9 days agoct2 compact plant2:
1.01 - 1.02
GRMZM2G064732
Gregory, J. et al. 2024. Mechanisms Of Meristem Maintenance By Maize Transcriptional Corepressors bioRxiv preprint. :doi: 10.1101/2024.04.26.591374.     Reference: April 29th, 2024
Gene Product: September 16th, 2013
Variation: September 20th, 2013
Gene Model: September 16th, 2013
9 days agokn1 knotted1:
1.10
   Gregory, J. et al. 2024. Mechanisms Of Meristem Maintenance By Maize Transcriptional Corepressors bioRxiv preprint. :doi: 10.1101/2024.04.26.591374.     Reference: April 29th, 2024
Variation: December 6th, 2013
9 days agodhn1 dehydrin1:
6.05
   Xinglong Wang et al. 2024. Improving resilience to high temperature in drought: water replenishment enhances sucrose and amino acid metabolisms in maize grain. Plant J.     Reference: April 29th, 2024
Gene Product: September 1st, 2003
Variation: November 20th, 2012
9 days agosh1 shrunken1:
9.01
   Xinglong Wang et al. 2024. Improving resilience to high temperature in drought: water replenishment enhances sucrose and amino acid metabolisms in maize grain. Plant J.     Reference: April 29th, 2024
Gene Product: October 25th, 2006
Variation: June 9th, 2020
9 days agosh2 shrunken2:
3.09
   Xinglong Wang et al. 2024. Improving resilience to high temperature in drought: water replenishment enhances sucrose and amino acid metabolisms in maize grain. Plant J.     Reference: April 29th, 2024
Gene Product: November 4th, 2014
Variation: January 9th, 2019
9 days agotd1 thick tassel dwarf1:
5.03
GRMZM2G300133
Gregory, J. et al. 2024. Mechanisms Of Meristem Maintenance By Maize Transcriptional Corepressors bioRxiv preprint. :doi: 10.1101/2024.04.26.591374.     Reference: April 29th, 2024
Gene Product: October 22nd, 2012
Variation: October 23rd, 2012
Gene Model: October 22nd, 2012
9 days agofrk2 fructokinase2:
6.00
GRMZM2G051677
Xinglong Wang et al. 2024. Improving resilience to high temperature in drought: water replenishment enhances sucrose and amino acid metabolisms in maize grain. Plant J.     Reference: April 29th, 2024
Variation: May 1st, 2010
Gene Model: July 29th, 2016
9 days agorel2 ramosa1 enhancer locus2:
10.03
   Gregory, J. et al. 2024. Mechanisms Of Meristem Maintenance By Maize Transcriptional Corepressors bioRxiv preprint. :doi: 10.1101/2024.04.26.591374.     Reference: April 29th, 2024
Gene Product: October 23rd, 2018
Variation: September 5th, 2019
9 days agohb122 Homeobox-transcription factor 122:
 
   Gregory, J. et al. 2024. Mechanisms Of Meristem Maintenance By Maize Transcriptional Corepressors bioRxiv preprint. :doi: 10.1101/2024.04.26.591374.     Reference: April 29th, 2024
Gene Product: August 25th, 2017
9 days agofea4 fasciated ear4:
 
   Gregory, J. et al. 2024. Mechanisms Of Meristem Maintenance By Maize Transcriptional Corepressors bioRxiv preprint. :doi: 10.1101/2024.04.26.591374.     Reference: April 29th, 2024
Gene Product: August 21st, 2018
Variation: July 7th, 2017
9 days agofea2 fasciated ear2:
4.05
   Gregory, J. et al. 2024. Mechanisms Of Meristem Maintenance By Maize Transcriptional Corepressors bioRxiv preprint. :doi: 10.1101/2024.04.26.591374.     Reference: April 29th, 2024
Gene Product: February 1st, 2023
Variation: November 13th, 2020
9 days agoagpll1 ADP glucose pyrophosphorylase large subunit leaf1AGPL4:
1.10
GRMZM2G391936
Xinglong Wang et al. 2024. Improving resilience to high temperature in drought: water replenishment enhances sucrose and amino acid metabolisms in maize grain. Plant J.     Reference: April 29th, 2024
Gene Product: January 3rd, 2014
Variation: September 22nd, 2017
Gene Model: September 22nd, 2017
9 days agoagp2 ADP glucose pyrophosphorylase2:
6.07 - 6.08
GRMZM2G027955
Xinglong Wang et al. 2024. Improving resilience to high temperature in drought: water replenishment enhances sucrose and amino acid metabolisms in maize grain. Plant J.     Reference: April 29th, 2024
Gene Product: July 22nd, 2015
Variation: June 15th, 2012
Gene Model: June 15th, 2012
9 days agotre1 trehalase1:
 
GRMZM2G162690
Xinglong Wang et al. 2024. Improving resilience to high temperature in drought: water replenishment enhances sucrose and amino acid metabolisms in maize grain. Plant J.     Reference: April 29th, 2024
Gene Product: September 15th, 2013
Gene Model: September 15th, 2013
9 days agotrpp12 trehalose-6-phosphate phosphatase12:
 
GRMZM2G178546
Xinglong Wang et al. 2024. Improving resilience to high temperature in drought: water replenishment enhances sucrose and amino acid metabolisms in maize grain. Plant J.     Reference: April 29th, 2024
Gene Product: October 3rd, 2020
Gene Model: September 15th, 2013
9 days agotrps15 trehalose-6-phosphate synthase15:
 
GRMZM2G118462
Xinglong Wang et al. 2024. Improving resilience to high temperature in drought: water replenishment enhances sucrose and amino acid metabolisms in maize grain. Plant J.     Reference: April 29th, 2024
Gene Product: October 3rd, 2020
Gene Model: September 15th, 2013
9 days agofcp1 fon2-like cle protein1:
 
GRMZM2G165836
Gregory, J. et al. 2024. Mechanisms Of Meristem Maintenance By Maize Transcriptional Corepressors bioRxiv preprint. :doi: 10.1101/2024.04.26.591374.   LOC_Os04g39770 (MSU/TIGR)
Os04g0473800 (Gramene)
Reference: April 29th, 2024
Gene Product: May 21st, 2016
Variation: April 15th, 2019
Gene Model: May 21st, 2016
9 days agocle7 clavata3/esr-related7:
 
GRMZM2G372364
Gregory, J. et al. 2024. Mechanisms Of Meristem Maintenance By Maize Transcriptional Corepressors bioRxiv preprint. :doi: 10.1101/2024.04.26.591374.     Reference: April 29th, 2024
Gene Product: February 22nd, 2021
Variation: March 6th, 2020
Gene Model: September 15th, 2016
9 days agotpl1 topless-related1:
 
GRMZM2G316967
Gregory, J. et al. 2024. Mechanisms Of Meristem Maintenance By Maize Transcriptional Corepressors bioRxiv preprint. :doi: 10.1101/2024.04.26.591374.     Reference: April 29th, 2024
Gene Product: October 23rd, 2018
Variation: April 29th, 2024
Gene Model: December 12th, 2016
9 days agotpl2 topless-related2:
 
GRMZM2G030422
Gregory, J. et al. 2024. Mechanisms Of Meristem Maintenance By Maize Transcriptional Corepressors bioRxiv preprint. :doi: 10.1101/2024.04.26.591374.     Reference: April 29th, 2024
Gene Product: October 23rd, 2018
Gene Model: December 12th, 2016
9 days agocrn1 coryne1:
 
GRMZM2G032132
Gregory, J. et al. 2024. Mechanisms Of Meristem Maintenance By Maize Transcriptional Corepressors bioRxiv preprint. :doi: 10.1101/2024.04.26.591374.   AT5G13290 (TAIR) Reference: April 29th, 2024
Gene Product: July 10th, 2019
Gene Model: May 21st, 2018
9 days agoptox1 plastid terminal oxidase1:
 
GRMZM2G102349
Peng, YX et al. 2024. ZmPTOX1, a plastid terminal oxidase, contributes to redox homeostasis during seed development and germination. Plant J. :doi: 10.1111/tpj.16776.   AT4G22260 (TAIR)
LOC_Os04g57320 (MSU/TIGR)
Reference: April 29th, 2024
Gene Product: June 15th, 2023
Variation: April 29th, 2024
Gene Model: April 27th, 2020
9 days agorelk3 rel2-like3:
9.06
GRMZM2G550865
Gregory, J. et al. 2024. Mechanisms Of Meristem Maintenance By Maize Transcriptional Corepressors bioRxiv preprint. :doi: 10.1101/2024.04.26.591374.     Reference: April 29th, 2024
Gene Product: October 23rd, 2018
Gene Model: October 23rd, 2018
11 days agogsr1 glutathione reductase1:
1.01
   Ildikó Jócsák et al. 2024. Alterations of Photosynthetic and Oxidative Processes Influenced by the Presence of Different Zinc and Cadmium Concentrations in Maize Seedlings: Transition from Essential to Toxic Functions. Plants. 13     Reference: April 27th, 2024
Gene Product: September 1st, 2003
Variation: January 30th, 2015
11 days agogst1 glutathione-S-transferase1:
8.08 - 8.09
   Ildikó Jócsák et al. 2024. Alterations of Photosynthetic and Oxidative Processes Influenced by the Presence of Different Zinc and Cadmium Concentrations in Maize Seedlings: Transition from Essential to Toxic Functions. Plants. 13     Reference: April 27th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
11 days agolox2 lipoxygenase2:
3.06
GRMZM2G156861
Ildikó Jócsák et al. 2024. Alterations of Photosynthetic and Oxidative Processes Influenced by the Presence of Different Zinc and Cadmium Concentrations in Maize Seedlings: Transition from Essential to Toxic Functions. Plants. 13     Reference: April 27th, 2024
Gene Product: January 3rd, 2018
Variation: July 18th, 2017
Gene Model: June 10th, 2014
11 days agoprp11 pathogenesis-related protein11:
4.02
GRMZM2G117971
Xiaoyu Gu et al. 2024. Plant immunity suppression by an β-1,3-glucanase of the maize anthracnose pathogen Colletotrichum graminicola. BMC Plant Biology. 24:339.     Reference: April 27th, 2024
Gene Product: May 31st, 2021
Gene Model: September 16th, 2017
11 days agocals1 callose synthase1:
 
GRMZM2G180951
Xiaoyu Gu et al. 2024. Plant immunity suppression by an β-1,3-glucanase of the maize anthracnose pathogen Colletotrichum graminicola. BMC Plant Biology. 24:339.     Reference: April 27th, 2024
Gene Product: July 5th, 2021
Gene Model: July 5th, 2021
12 days agocdj5 chaperone DNA J5:
 
   Yu, S et al. 2024. Dynamic transcriptome profiling revealed a key gene ZmJMJ20 and pathways associated with cadmium stress in maize Ecotoxicol Environ Safety. 277:116352.     Reference: April 26th, 2024
Gene Product: September 1st, 2003
12 days agoLOC100281141  :
 
   Yu, S et al. 2024. Dynamic transcriptome profiling revealed a key gene ZmJMJ20 and pathways associated with cadmium stress in maize Ecotoxicol Environ Safety. 277:116352.     Reference: April 26th, 2024
Gene Product: February 26th, 2021
12 days agoplt16 phospholipid transfer protein16:
 
   Yu, S et al. 2024. Dynamic transcriptome profiling revealed a key gene ZmJMJ20 and pathways associated with cadmium stress in maize Ecotoxicol Environ Safety. 277:116352.     Reference: April 26th, 2024
Gene Product: September 1st, 2003
12 days agojmj23 JUMONJI-transcription factor 23:
 
   Yu, S et al. 2024. Dynamic transcriptome profiling revealed a key gene ZmJMJ20 and pathways associated with cadmium stress in maize Ecotoxicol Environ Safety. 277:116352.   AT3G20810 (TAIR) Reference: April 26th, 2024
Gene Product: April 3rd, 2019
12 days agoacc2 acetyl-CoA carboxylase2:
2.04
GRMZM5G858094
Zhang, SM et al. 2024. Fatty acid de novo biosynthesis in plastids: Key enzymes and their critical roles for male reproduction and other processes in plants. Plant Physiol Biochem. 210:108654.     Reference: April 26th, 2024
Gene Product: September 29th, 2020
Variation: July 7th, 2012
Gene Model: July 7th, 2012
12 days agoms25 male sterile25:
9.04 - 9.06
GRMZM2G120987
Zhang, SM et al. 2024. Fatty acid de novo biosynthesis in plastids: Key enzymes and their critical roles for male reproduction and other processes in plants. Plant Physiol Biochem. 210:108654.     Reference: April 26th, 2024
Gene Product: December 1st, 2017
Variation: April 2nd, 2021
Gene Model: December 1st, 2017
12 days agofat1 fatty acyl thioesterase1:
9.03
GRMZM2G406603
Zhang, SM et al. 2024. Fatty acid de novo biosynthesis in plastids: Key enzymes and their critical roles for male reproduction and other processes in plants. Plant Physiol Biochem. 210:108654.     Reference: April 26th, 2024
Gene Product: January 3rd, 2023
Variation: May 27th, 2014
Gene Model: July 27th, 2016
12 days agosacd3 stearoyl-acyl-carrier-protein desaturase3:
1.05
   An, XL et al. 2023. CRISPR/Cas9-based genome editing of 14 lipid metabolic genes reveals a sporopollenin metabolon ZmPKSB-ZmTKPR1-1/-2 required for pollen exine formation in maize. Plant Biotechnol J. :doi: 10.1111/pbi.14181.     Reference: April 26th, 2024
Gene Product: October 10th, 2016
Variation: November 3rd, 2017
12 days agomyb84 MYB-transcription factor 84:
10.04
   Zhang, SM et al. 2024. Fatty acid de novo biosynthesis in plastids: Key enzymes and their critical roles for male reproduction and other processes in plants. Plant Physiol Biochem. 210:108654.     Reference: April 26th, 2024
Variation: August 19th, 2022
12 days agoacc1 acetyl-coenzyme A carboxylase1:
10.04
AC197672.3_FG002
Zhang, SM et al. 2024. Fatty acid de novo biosynthesis in plastids: Key enzymes and their critical roles for male reproduction and other processes in plants. Plant Physiol Biochem. 210:108654.     Reference: April 26th, 2024
Gene Product: September 1st, 2003
Variation: July 6th, 2012
Gene Model: July 7th, 2012
12 days agofad15 fatty acid desaturase15:
10.03
GRMZM2G169240
Yu, S et al. 2024. Dynamic transcriptome profiling revealed a key gene ZmJMJ20 and pathways associated with cadmium stress in maize Ecotoxicol Environ Safety. 277:116352.     Reference: April 26th, 2024
Gene Product: January 6th, 2022
Gene Model: July 18th, 2021
12 days agoprp3 pathogenesis-related protein3:
4.02
GRMZM2G117989
Yu, S et al. 2024. Dynamic transcriptome profiling revealed a key gene ZmJMJ20 and pathways associated with cadmium stress in maize Ecotoxicol Environ Safety. 277:116352.     Reference: April 26th, 2024
Gene Product: December 12th, 2022
Gene Model: December 24th, 2015
12 days agocol6 C2C2-CO-like-transcription factor 6:
 
   Yu, S et al. 2024. Dynamic transcriptome profiling revealed a key gene ZmJMJ20 and pathways associated with cadmium stress in maize Ecotoxicol Environ Safety. 277:116352.     Reference: April 26th, 2024
Gene Product: June 18th, 2018
12 days agohsftf1 HSF-transcription factor 1:
 
   Mingxiu Ruan et al. 2024. The complex transcriptional regulation of heat stress response in maize. Stress Biol. 4:24.     Reference: April 26th, 2024
Gene Product: May 15th, 2020
12 days agohsftf12 HSF-transcription factor 12:
 
   Mingxiu Ruan et al. 2024. The complex transcriptional regulation of heat stress response in maize. Stress Biol. 4:24.     Reference: April 26th, 2024
Gene Product: May 15th, 2020
12 days agohsftf13 HSF-transcription factor 13:
 
   Mingxiu Ruan et al. 2024. The complex transcriptional regulation of heat stress response in maize. Stress Biol. 4:24.     Reference: April 26th, 2024
Gene Product: May 15th, 2020
12 days agohsftf20 HSF-transcription factor 20:
 
   Mingxiu Ruan et al. 2024. The complex transcriptional regulation of heat stress response in maize. Stress Biol. 4:24.     Reference: April 26th, 2024
Gene Product: May 15th, 2020
Variation: April 4th, 2024
12 days agohsftf24 HSF-transcription factor 24:
 
   Mingxiu Ruan et al. 2024. The complex transcriptional regulation of heat stress response in maize. Stress Biol. 4:24.     Reference: April 26th, 2024
Gene Product: May 15th, 2020
12 days agohsftf27 HSF-transcription factor 27:
 
   Mingxiu Ruan et al. 2024. The complex transcriptional regulation of heat stress response in maize. Stress Biol. 4:24.     Reference: April 26th, 2024
Gene Product: May 15th, 2020
12 days agohsftf4 HSF-transcription factor 4:
 
   Mingxiu Ruan et al. 2024. The complex transcriptional regulation of heat stress response in maize. Stress Biol. 4:24.     Reference: April 26th, 2024
Gene Product: May 15th, 2020
Variation: April 4th, 2024
12 days agohsftf5 HSF-transcription factor 5:
 
   Mingxiu Ruan et al. 2024. The complex transcriptional regulation of heat stress response in maize. Stress Biol. 4:24.     Reference: April 26th, 2024
Gene Product: May 15th, 2020
12 days agohsftf7 HSF-transcription factor 7:
 
   Mingxiu Ruan et al. 2024. The complex transcriptional regulation of heat stress response in maize. Stress Biol. 4:24.     Reference: April 26th, 2024
Gene Product: May 15th, 2020
12 days agohsftf8 HSF-transcription factor 8:
 
   Mingxiu Ruan et al. 2024. The complex transcriptional regulation of heat stress response in maize. Stress Biol. 4:24.     Reference: April 26th, 2024
Gene Product: May 15th, 2020
12 days agocsu43  :
9.04
GRMZM2G152105
Zhang, SM et al. 2024. Fatty acid de novo biosynthesis in plastids: Key enzymes and their critical roles for male reproduction and other processes in plants. Plant Physiol Biochem. 210:108654.     Reference: April 26th, 2024
Variation: September 1st, 2003
Gene Model: January 14th, 2019
12 days agodfr2 dihydroflavonol-4-reductase2:
1.06
GRMZM2G168893
An, XL et al. 2023. CRISPR/Cas9-based genome editing of 14 lipid metabolic genes reveals a sporopollenin metabolon ZmPKSB-ZmTKPR1-1/-2 required for pollen exine formation in maize. Plant Biotechnol J. :doi: 10.1111/pbi.14181.   AT4G35420 (TAIR) Reference: April 26th, 2024
Gene Product: October 4th, 2023
Gene Model: August 29th, 2017
12 days agohsftf11 HSF-transcription factor 11:
1.11
GRMZM2G132971
Mingxiu Ruan et al. 2024. The complex transcriptional regulation of heat stress response in maize. Stress Biol. 4:24.   AT2G26150 (TAIR) Reference: April 26th, 2024
Gene Product: May 15th, 2020
Variation: March 17th, 2021
Gene Model: October 13th, 2017
12 days agofab1 fatty acid biosynthesis1:
10.04
GRMZM2G099696
Zhang, SM et al. 2024. Fatty acid de novo biosynthesis in plastids: Key enzymes and their critical roles for male reproduction and other processes in plants. Plant Physiol Biochem. 210:108654.     Reference: April 26th, 2024
Gene Product: September 1st, 2003
Variation: December 1st, 2012
Gene Model: July 27th, 2016
12 days agoAI795367  :
10.02
GRMZM2G118286
Zhang, SM et al. 2024. Fatty acid de novo biosynthesis in plastids: Key enzymes and their critical roles for male reproduction and other processes in plants. Plant Physiol Biochem. 210:108654.     Reference: April 26th, 2024
Variation: July 29th, 2004
Gene Model: December 28th, 2017
12 days agoicl1 isocitrate lyase1:
7.03
GRMZM2G056369
Yu, S et al. 2024. Dynamic transcriptome profiling revealed a key gene ZmJMJ20 and pathways associated with cadmium stress in maize Ecotoxicol Environ Safety. 277:116352.     Reference: April 26th, 2024
Gene Product: September 1st, 2003
Variation: July 29th, 2015
Gene Model: July 29th, 2015
12 days agopco121523  :
2.08
GRMZM2G124335
Zhang, SM et al. 2024. Fatty acid de novo biosynthesis in plastids: Key enzymes and their critical roles for male reproduction and other processes in plants. Plant Physiol Biochem. 210:108654.     Reference: April 26th, 2024
Variation: August 15th, 2021
Gene Model: February 22nd, 2018
12 days agoburp6 BURP domain-containing protein-RD22-like6:
 
GRMZM2G113229
An, XL et al. 2023. CRISPR/Cas9-based genome editing of 14 lipid metabolic genes reveals a sporopollenin metabolon ZmPKSB-ZmTKPR1-1/-2 required for pollen exine formation in maize. Plant Biotechnol J. :doi: 10.1111/pbi.14181.     Reference: April 26th, 2024
Gene Product: August 18th, 2017
Variation: August 18th, 2017
Gene Model: August 18th, 2017
12 days agoprp6 pathogenesis-related protein6:
 
GRMZM2G112488
Yu, S et al. 2024. Dynamic transcriptome profiling revealed a key gene ZmJMJ20 and pathways associated with cadmium stress in maize Ecotoxicol Environ Safety. 277:116352.     Reference: April 26th, 2024
Gene Product: December 12th, 2022
Gene Model: September 30th, 2017
12 days agotoc2 timing of cab expression2:
 
GRMZM2G148453
Yu, S et al. 2024. Dynamic transcriptome profiling revealed a key gene ZmJMJ20 and pathways associated with cadmium stress in maize Ecotoxicol Environ Safety. 277:116352.   AT5G61380 (TAIR) Reference: April 26th, 2024
Gene Product: January 11th, 2018
Gene Model: January 11th, 2018
12 days agocl11117_1a  :
5.02
GRMZM2G109561
Yu, S et al. 2024. Dynamic transcriptome profiling revealed a key gene ZmJMJ20 and pathways associated with cadmium stress in maize Ecotoxicol Environ Safety. 277:116352.     Reference: April 26th, 2024
Gene Product: August 31st, 2023
Gene Model: May 7th, 2022
12 days agovq52 VQ motif-transcription factor52:
 
GRMZM2G122447
Yu, S et al. 2024. Dynamic transcriptome profiling revealed a key gene ZmJMJ20 and pathways associated with cadmium stress in maize Ecotoxicol Environ Safety. 277:116352.     Reference: April 26th, 2024
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
12 days agofax1 fatty acid export1:
 
GRMZM2G046529
Zhang, SM et al. 2024. Fatty acid de novo biosynthesis in plastids: Key enzymes and their critical roles for male reproduction and other processes in plants. Plant Physiol Biochem. 210:108654.   At3g57280 (TAIR) Reference: April 26th, 2024
Gene Product: March 14th, 2020
Gene Model: March 14th, 2020
12 days agoacsn1 acyl-CoA synthetase1:
 
GRMZM2G117064
Zhang, SM et al. 2024. Fatty acid de novo biosynthesis in plastids: Key enzymes and their critical roles for male reproduction and other processes in plants. Plant Physiol Biochem. 210:108654.     Reference: April 26th, 2024
Gene Product: December 20th, 2011
Gene Model: November 27th, 2020
12 days agoosm1 osmotin-like protein1:
 
GRMZM2G136372
Yu, S et al. 2024. Dynamic transcriptome profiling revealed a key gene ZmJMJ20 and pathways associated with cadmium stress in maize Ecotoxicol Environ Safety. 277:116352.   AT4G11650 (TAIR) Reference: April 26th, 2024
Gene Product: September 1st, 2003
Gene Model: November 30th, 2020
12 days agompkl5 MAP kinase-like5:
 
GRMZM2G305321
Yu, S et al. 2024. Dynamic transcriptome profiling revealed a key gene ZmJMJ20 and pathways associated with cadmium stress in maize Ecotoxicol Environ Safety. 277:116352.     Reference: April 26th, 2024
Gene Product: May 13th, 2014
Gene Model: March 12th, 2021
12 days agoIDP2138  :
 
GRMZM2G079308
Zhang, SM et al. 2024. Fatty acid de novo biosynthesis in plastids: Key enzymes and their critical roles for male reproduction and other processes in plants. Plant Physiol Biochem. 210:108654.     Reference: April 26th, 2024
Variation: June 30th, 2021
Gene Model: May 15th, 2021
12 days agoprp14 pathogenesis-related protein14:
 
GRMZM2G304442
Yu, S et al. 2024. Dynamic transcriptome profiling revealed a key gene ZmJMJ20 and pathways associated with cadmium stress in maize Ecotoxicol Environ Safety. 277:116352.     Reference: April 26th, 2024
Gene Product: December 12th, 2022
Gene Model: November 19th, 2021
12 days agosaur15 small auxin up RNA15:
 
GRMZM2G365162
Guantong Gong et al. 2024. Genetic analysis and QTL mapping for pericarp thickness in maize (Zea mays L.). BMC Plant Biology. 24:338.     Reference: April 26th, 2024
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
12 days agosaur48 small auxin up RNA48:
 
GRMZM2G332390
Yu, S et al. 2024. Dynamic transcriptome profiling revealed a key gene ZmJMJ20 and pathways associated with cadmium stress in maize Ecotoxicol Environ Safety. 277:116352.     Reference: April 26th, 2024
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
12 days agobzip60 bZIP transcription factor60:
9.03
GRMZM2G025812
Mingxiu Ruan et al. 2024. The complex transcriptional regulation of heat stress response in maize. Stress Biol. 4:24.     Reference: April 26th, 2024
Gene Product: August 21st, 2018
Variation: November 4th, 2022
Gene Model: April 16th, 2013
12 days agodfr1 dihydroflavonoid reductase1:
7.03 - 7.02
GRMZM2G004683
An, XL et al. 2023. CRISPR/Cas9-based genome editing of 14 lipid metabolic genes reveals a sporopollenin metabolon ZmPKSB-ZmTKPR1-1/-2 required for pollen exine formation in maize. Plant Biotechnol J. :doi: 10.1111/pbi.14181.   AT4G35420 (TAIR) Reference: April 26th, 2024
Gene Product: October 4th, 2023
Variation: November 21st, 2012
Gene Model: November 21st, 2012
12 days agoIDP2589  :
2.07
GRMZM2G102878
Zhang, SM et al. 2024. Fatty acid de novo biosynthesis in plastids: Key enzymes and their critical roles for male reproduction and other processes in plants. Plant Physiol Biochem. 210:108654.     Reference: April 26th, 2024
Variation: March 31st, 2005
Gene Model: February 20th, 2019
12 days agocdpk20 calcium dependent protein kinase20:
8.04
GRMZM2G030673
Mingxiu Ruan et al. 2024. The complex transcriptional regulation of heat stress response in maize. Stress Biol. 4:24.     Reference: April 26th, 2024
Gene Product: December 3rd, 2013
Variation: March 31st, 2005
Gene Model: January 10th, 2018
12 days agofat2 fatty acyl-ACP thioesterase2:
9.02
GRMZM5G829544
Zhang, SM et al. 2024. Fatty acid de novo biosynthesis in plastids: Key enzymes and their critical roles for male reproduction and other processes in plants. Plant Physiol Biochem. 210:108654.   AT1G08510 (TAIR) Reference: April 26th, 2024
Gene Product: May 23rd, 2012
Variation: May 6th, 2022
Gene Model: May 23rd, 2012
12 days agokcs32 3-ketoacyl-CoA synthase32:
1.05
GRMZM2G063024
An, XL et al. 2023. CRISPR/Cas9-based genome editing of 14 lipid metabolic genes reveals a sporopollenin metabolon ZmPKSB-ZmTKPR1-1/-2 required for pollen exine formation in maize. Plant Biotechnol J. :doi: 10.1111/pbi.14181.     Reference: April 26th, 2024
Gene Product: November 1st, 2018
Gene Model: February 8th, 2020
13 days agoect21 evolutionarily conserved C-terminal21:
 
   Keli Xu et al. 2024. Genome-Wide Analysis of Maize ECT Family Members and Their Expressions in Response to Abiotic Stresses J Nucl Agric Sci. 38:1035-1047.     Reference: April 25th, 2024
Gene Product: April 25th, 2024
13 days agoc3h59 C3H-transcription factor 59:
 
   Keli Xu et al. 2024. Genome-Wide Analysis of Maize ECT Family Members and Their Expressions in Response to Abiotic Stresses J Nucl Agric Sci. 38:1035-1047.     Reference: April 25th, 2024
Gene Product: November 14th, 2022
13 days agoect1 evolutionarily conserved C-terminal1:
 
   Keli Xu et al. 2024. Genome-Wide Analysis of Maize ECT Family Members and Their Expressions in Response to Abiotic Stresses J Nucl Agric Sci. 38:1035-1047.     Reference: April 25th, 2024
Gene Product: April 25th, 2024
13 days agoect2 evolutionarily conserved C-terminal2:
 
   Keli Xu et al. 2024. Genome-Wide Analysis of Maize ECT Family Members and Their Expressions in Response to Abiotic Stresses J Nucl Agric Sci. 38:1035-1047.     Reference: April 25th, 2024
Gene Product: April 25th, 2024
13 days agoect3 evolutionarily conserved C-terminal3:
 
   Keli Xu et al. 2024. Genome-Wide Analysis of Maize ECT Family Members and Their Expressions in Response to Abiotic Stresses J Nucl Agric Sci. 38:1035-1047.     Reference: April 25th, 2024
Gene Product: April 25th, 2024
13 days agoect5 evolutionarily conserved C-terminal5:
 
   Keli Xu et al. 2024. Genome-Wide Analysis of Maize ECT Family Members and Their Expressions in Response to Abiotic Stresses J Nucl Agric Sci. 38:1035-1047.     Reference: April 25th, 2024
Gene Product: April 25th, 2024
13 days agoect11 evolutionarily conserved C-terminal11:
 
   Keli Xu et al. 2024. Genome-Wide Analysis of Maize ECT Family Members and Their Expressions in Response to Abiotic Stresses J Nucl Agric Sci. 38:1035-1047.     Reference: April 25th, 2024
Gene Product: April 25th, 2024
13 days agoect19 evolutionarily conserved C-terminal19:
 
   Keli Xu et al. 2024. Genome-Wide Analysis of Maize ECT Family Members and Their Expressions in Response to Abiotic Stresses J Nucl Agric Sci. 38:1035-1047.     Reference: April 25th, 2024
Gene Product: April 25th, 2024
13 days agoect20 evolutionarily conserved C-terminal20:
 
   Keli Xu et al. 2024. Genome-Wide Analysis of Maize ECT Family Members and Their Expressions in Response to Abiotic Stresses J Nucl Agric Sci. 38:1035-1047.     Reference: April 25th, 2024
Gene Product: April 25th, 2024
13 days agoect22 evolutionarily conserved C-terminal22:
1.07
GRMZM2G025488
Keli Xu et al. 2024. Genome-Wide Analysis of Maize ECT Family Members and Their Expressions in Response to Abiotic Stresses J Nucl Agric Sci. 38:1035-1047.     Reference: April 25th, 2024
Gene Product: April 25th, 2024
Gene Model: September 6th, 2017
13 days agoect15 evolutionarily conserved C-terminal15:
4.04
GRMZM2G004997
Keli Xu et al. 2024. Genome-Wide Analysis of Maize ECT Family Members and Their Expressions in Response to Abiotic Stresses J Nucl Agric Sci. 38:1035-1047.     Reference: April 25th, 2024
Gene Product: April 25th, 2024
Gene Model: August 22nd, 2021
13 days agoect12 evolutionarily conserved C-terminal12:
1.10
GRMZM2G126338
Keli Xu et al. 2024. Genome-Wide Analysis of Maize ECT Family Members and Their Expressions in Response to Abiotic Stresses J Nucl Agric Sci. 38:1035-1047.     Reference: April 25th, 2024
Gene Product: April 25th, 2024
Variation: August 9th, 2021
Gene Model: August 9th, 2021
13 days agorp1 resistance to Puccinia sorghi1:
10.01
GRMZM2G069382
Jones, JDG et al. 2024. The plant immune system: From discovery to deployment Cell. 187:2095-2116.     Reference: April 25th, 2024
Gene Product: January 17th, 2022
Variation: April 1st, 2015
Gene Model: January 8th, 2018
13 days agoect13 evolutionarily conserved C-terminal13:
2.09
GRMZM2G340130
Keli Xu et al. 2024. Genome-Wide Analysis of Maize ECT Family Members and Their Expressions in Response to Abiotic Stresses J Nucl Agric Sci. 38:1035-1047.     Reference: April 25th, 2024
Gene Product: April 25th, 2024
Variation: November 26th, 2021
Gene Model: November 25th, 2021
13 days agomrp1 Myb related protein1:
8.05
   Gomez, E. 2002. Plant Cell 14:599-610     Reference: April 25th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
13 days agoect7 evolutionarily conserved C-terminal7:
7.01
GRMZM2G144726
Keli Xu et al. 2024. Genome-Wide Analysis of Maize ECT Family Members and Their Expressions in Response to Abiotic Stresses J Nucl Agric Sci. 38:1035-1047.     Reference: April 25th, 2024
Gene Product: April 25th, 2024
Variation: September 1st, 2003
Gene Model: September 4th, 2018
13 days agoocl3 outer cell layer3:
7.03
   Liang, ZJ et al. 2024. A combination of QTL mapping and genome-wide association study revealed the key gene for husk number in maize. Theor Appl Genet. 137:112.     Reference: April 25th, 2024
Gene Product: September 1st, 2003
Variation: February 23rd, 2013
13 days agoect14 evolutionarily conserved C-terminal14:
1.01
GRMZM2G076062
Keli Xu et al. 2024. Genome-Wide Analysis of Maize ECT Family Members and Their Expressions in Response to Abiotic Stresses J Nucl Agric Sci. 38:1035-1047.     Reference: April 25th, 2024
Gene Product: April 25th, 2024
Variation: February 1st, 2017
Gene Model: April 28th, 2016
13 days agoect18 evolutionarily conserved C-terminal18:
2.02
   Keli Xu et al. 2024. Genome-Wide Analysis of Maize ECT Family Members and Their Expressions in Response to Abiotic Stresses J Nucl Agric Sci. 38:1035-1047.     Reference: April 25th, 2024
Gene Product: April 25th, 2024
13 days agoect8 evolutionarily conserved C-terminal8:
4.05
GRMZM2G056573
Keli Xu et al. 2024. Genome-Wide Analysis of Maize ECT Family Members and Their Expressions in Response to Abiotic Stresses J Nucl Agric Sci. 38:1035-1047.     Reference: April 25th, 2024
Gene Product: April 25th, 2024
Gene Model: April 15th, 2020
13 days agoc3h63 C3H-transcription factor 63:
5.03
GRMZM2G126197
Keli Xu et al. 2024. Genome-Wide Analysis of Maize ECT Family Members and Their Expressions in Response to Abiotic Stresses J Nucl Agric Sci. 38:1035-1047.     Reference: April 25th, 2024
Gene Product: November 14th, 2022
Gene Model: May 13th, 2022
13 days agoect16 evolutionarily conserved C-terminal16:
6.00
GRMZM2G098174
Keli Xu et al. 2024. Genome-Wide Analysis of Maize ECT Family Members and Their Expressions in Response to Abiotic Stresses J Nucl Agric Sci. 38:1035-1047.     Reference: April 25th, 2024
Gene Product: April 25th, 2024
Gene Model: December 4th, 2019
13 days agoect4 evolutionarily conserved C-terminal4:
9.07
GRMZM2G330019
Keli Xu et al. 2024. Genome-Wide Analysis of Maize ECT Family Members and Their Expressions in Response to Abiotic Stresses J Nucl Agric Sci. 38:1035-1047.     Reference: April 25th, 2024
Gene Product: April 25th, 2024
Gene Model: September 10th, 2021
13 days agoetc9 evolutionarily conserved C-terminal9:
 
GRMZM2G303312
Keli Xu et al. 2024. Genome-Wide Analysis of Maize ECT Family Members and Their Expressions in Response to Abiotic Stresses J Nucl Agric Sci. 38:1035-1047.     Reference: April 25th, 2024
Gene Product: April 25th, 2024
Gene Model: March 22nd, 2021
15 days agoxth27 xyloglucan endotransglucosylase/hydrolase27:
 
   Yuanming Wu et al. 2024. Phenotypic Investigation and RNA-seq of KN1 Involved in Leaf Angle Formation in Maize (Zea mays L.) Int J Mol Sci. 25:3180.     Reference: April 23rd, 2024
Gene Product: March 23rd, 2024
15 days agotps28 terpene synthase28:
 
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: December 6th, 2023
15 days agoprh134 protein phosphatase homolog134:
 
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: October 25th, 2021
15 days agoGRMZM2G044049  :
 
   Ran Yang et al. 2024. ZmNAC17 Regulates Mesocotyl Elongation by Mediating Auxin and ROS Biosynthetic Pathways in Maize Int J Mol Sci. 25:4585.     Reference: April 23rd, 2024
Gene Product: September 18th, 2015
15 days agoGRMZM2G133434  :
 
   Ran Yang et al. 2024. ZmNAC17 Regulates Mesocotyl Elongation by Mediating Auxin and ROS Biosynthetic Pathways in Maize Int J Mol Sci. 25:4585.     Reference: April 23rd, 2024
Gene Product: September 18th, 2015
15 days agoGRMZM2G171078  :
 
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: September 18th, 2015
15 days agoGRMZM2G451097  :
 
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: September 18th, 2015
15 days agoGRMZM2G043855  :
 
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: September 18th, 2015
15 days agoGRMZM2G117365  :
 
   Ran Yang et al. 2024. ZmNAC17 Regulates Mesocotyl Elongation by Mediating Auxin and ROS Biosynthetic Pathways in Maize Int J Mol Sci. 25:4585.     Reference: April 23rd, 2024
Gene Product: September 18th, 2015
15 days agoGRMZM2G380247  :
 
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: September 18th, 2015
15 days agopx64 peroxidase64:
 
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: September 18th, 2015
15 days agotps20 terpene synthase20:
 
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: December 6th, 2023
15 days agoxth13 xyloglucan endotransglucosylase/hydrolase13:
 
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: March 23rd, 2024
15 days agobx4 benzoxazinone synthesis4:
4.01
GRMZM2G172491
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: October 24th, 2011
Variation: October 27th, 2011
Gene Model: October 24th, 2011
15 days agobsk3 brassinosteroid-signaling kinase3:
9.04
GRMZM2G054634
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: May 13th, 2014
Gene Model: September 9th, 2021
15 days agotraf21 TNF receptor-associated factor 21:
3.03
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: June 30th, 2021
Variation: May 11th, 2017
15 days agobzip129 bZIP-transcription factor 129:
2.06
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: August 21st, 2018
15 days agoprh111 protein phosphatase homolog111:
2.04
GRMZM2G015610
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: April 26th, 2021
15 days agosaur7 small auxin up RNA7:
1.07
GRMZM2G414727
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: November 26th, 2021
Gene Model: April 17th, 2021
15 days agopin9 PIN-formed protein9:
3.06
GRMZM5G859099
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: April 3rd, 2024
Gene Model: January 24th, 2013
15 days agod1 dwarf plant1:
3.03
GRMZM2G036340
Yuanming Wu et al. 2024. Phenotypic Investigation and RNA-seq of KN1 Involved in Leaf Angle Formation in Maize (Zea mays L.) Int J Mol Sci. 25:3180.     Reference: April 23rd, 2024
Gene Product: October 25th, 2014
Variation: October 30th, 2014
Gene Model: October 2nd, 2012
15 days agotps11 terpene synthase11:
10.03
GRMZM2G127087
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: September 3rd, 2008
Variation: September 3rd, 2008
Gene Model: August 22nd, 2012
15 days agolox10 lipoxygenase10:
4.09
GRMZM2G015419
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: January 3rd, 2018
Variation: February 28th, 2020
Gene Model: October 29th, 2015
15 days agobzip7 bZIP-transcription factor 7:
7.03
GRMZM2G006578
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Variation: September 8th, 2018
Gene Model: September 8th, 2018
15 days agonactf36 NAC-transcription factor 36:
2.04
GRMZM2G081930
Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Variation: September 1st, 2003
Gene Model: February 15th, 2018
15 days agocko1 cytokinin oxidase1:
3.02
GRMZM2G146644
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: April 4th, 2014
Variation: September 1st, 2003
Gene Model: March 21st, 2014
15 days agoumc1151  :
5.03
GRMZM2G150893
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Variation: September 1st, 2003
Gene Model: March 12th, 2021
15 days agonactf43 NAC-transcription factor43:
1.05
GRMZM2G082709
Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Variation: September 1st, 2003
Gene Model: November 15th, 2016
15 days agocrr1 cytokinin response regulator1:
2.01 - 2.01
GRMZM2G040736
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: June 30th, 2017
Variation: August 5th, 2021
Gene Model: October 23rd, 2013
15 days agoabi16 ABI3-VP1-transcription factor 16:
 
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: January 29th, 2022
15 days agoabi28 ABI3-VP1-transcription factor 28:
 
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: January 29th, 2022
15 days agoarftf15 ARF-transcription factor 15:
 
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: January 29th, 2022
15 days agoarftf16 ARF-transcription factor 16:
 
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: January 29th, 2022
Variation: January 10th, 2020
15 days agoarftf28 ARF-transcription factor 28:
 
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: January 29th, 2022
Variation: September 6th, 2023
15 days agoarftf34 ARF-transcription factor 34:
 
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: January 29th, 2022
15 days agoarr7 ARR-B-transcription factor 7:
 
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: June 30th, 2017
15 days agonactf108 NAC-transcription factor 108:
 
   Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Gene Product: July 8th, 2019
Variation: May 4th, 2019
15 days agonactf11 NAC-transcription factor 11:
 
   Ran Yang et al. 2024. ZmNAC17 Regulates Mesocotyl Elongation by Mediating Auxin and ROS Biosynthetic Pathways in Maize Int J Mol Sci. 25:4585.     Reference: April 23rd, 2024
Variation: April 23rd, 2024
15 days agonactf127 NAC-transcription factor 127:
 
   Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Gene Product: December 12th, 2022
15 days agonactf129 NAC-transcription factor 129:
 
GRMZM2G027309
Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Gene Product: July 8th, 2019
Gene Model: July 2nd, 2019
15 days agonactf130 NAC-transcription factor 130:
 
   Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Gene Product: July 8th, 2019
15 days agonactf132 NAC-transcription factor 132:
 
   Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Gene Product: July 8th, 2019
Variation: March 3rd, 2017
15 days agonactf25 NAC-transcription factor 25:
 
   Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.   LOC_Os11g03300 (MSU/TIGR) Reference: April 23rd, 2024
Gene Product: July 8th, 2019
Variation: September 22nd, 2015
15 days agonactf46 NAC-transcription factor 46:
 
   Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Gene Product: July 8th, 2019
15 days agonactf6 NAC-transcription factor 6:
 
   Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Gene Product: July 8th, 2019
15 days agonactf60 NAC-transcription factor 60:
 
   Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Gene Product: July 8th, 2019
15 days agonactf69 NAC-transcription factor 69:
 
GRMZM2G078954
Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Gene Product: July 8th, 2019
Gene Model: July 6th, 2019
15 days agonactf70 NAC-transcription factor 70:
 
   Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Gene Product: July 8th, 2019
15 days agonactf78 NAC-transcription factor 78:
 
   Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Variation: December 7th, 2023
15 days agonactf8 NAC-transcription factor 8:
 
   Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Gene Product: July 8th, 2019
15 days agonactf82 NAC-transcription factor 82:
 
   Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Gene Product: July 8th, 2019
Variation: September 30th, 2018
15 days agonactf87 NAC-transcription factor 87:
 
   Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Gene Product: July 8th, 2019
15 days agonactf99 NAC-transcription factor 99:
 
GRMZM2G078954
Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Gene Product: July 8th, 2019
Gene Model: May 28th, 2019
15 days agozim15 ZIM-transcription factor 15:
 
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: February 24th, 2021
15 days agozim33 ZIM-transcription factor 33:
 
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: February 24th, 2021
15 days agobzip113 bZIP-transcription factor 113:
 
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Variation: April 25th, 2023
15 days agogar3 gibberellin responsive3:
8.05
GRMZM2G142705
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Variation: March 20th, 2021
Gene Model: January 22nd, 2016
15 days agoca2p6 CCAAT-HAP2-transcription factor 26:
1.08
GRMZM5G829103
Junqiao Song et al. 2024. Exploiting genomic tools for genetic dissection and improving the resistance to Fusarium stalk rot in tropical maize. Theor Appl Genet. 137:109.     Reference: April 23rd, 2024
Gene Product: August 9th, 2016
Variation: December 17th, 2016
Gene Model: December 17th, 2016
15 days agonactf53 NAC-transcription factor 53:
1.01
GRMZM2G059428
Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Variation: May 6th, 2016
Gene Model: May 6th, 2016
15 days agobhlh65 bHLH-transcription factor 65:
 
GRMZM2G387528
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.   AT1G09530 (TAIR)
LOC_Os05g04740 (MSU/TIGR)
Reference: April 23rd, 2024
Gene Product: September 14th, 2016
Variation: August 5th, 2022
Gene Model: May 26th, 2015
15 days agobnl13.05a  :
8.01
GRMZM2G041308
Ran Yang et al. 2024. ZmNAC17 Regulates Mesocotyl Elongation by Mediating Auxin and ROS Biosynthetic Pathways in Maize Int J Mol Sci. 25:4585.     Reference: April 23rd, 2024
Variation: September 1st, 2003
Gene Model: September 14th, 2018
15 days agobnl6.20  :
2.08
GRMZM2G056612
Yuanming Wu et al. 2024. Phenotypic Investigation and RNA-seq of KN1 Involved in Leaf Angle Formation in Maize (Zea mays L.) Int J Mol Sci. 25:3180.     Reference: April 23rd, 2024
Variation: September 1st, 2003
Gene Model: February 2nd, 2018
15 days agobx5 benzoxazinone synthesis5:
4.01
GRMZM2G063756
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: October 24th, 2011
Variation: October 27th, 2011
Gene Model: October 24th, 2011
15 days agonactf48 NAC-transcription factor 48:
1.06
GRMZM2G054252
Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Variation: January 27th, 2017
Gene Model: January 27th, 2017
15 days agocdj2 chaperone DNA J2:
1.09
   Junqiao Song et al. 2024. Exploiting genomic tools for genetic dissection and improving the resistance to Fusarium stalk rot in tropical maize. Theor Appl Genet. 137:109.     Reference: April 23rd, 2024
Gene Product: September 1st, 2003
Variation: September 29th, 2012
15 days agokrp2 kinesin-related protein2:
9.03
GRMZM2G136838
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: September 18th, 2023
Variation: January 4th, 2013
Gene Model: March 3rd, 2016
15 days agoufg71  :
9.03
GRMZM5G870176
Yuanming Wu et al. 2024. Phenotypic Investigation and RNA-seq of KN1 Involved in Leaf Angle Formation in Maize (Zea mays L.) Int J Mol Sci. 25:3180.     Reference: April 23rd, 2024
Gene Product: October 7th, 2016
Gene Model: October 12th, 2018
15 days agohk3 histidine kinase3:
5.03
GRMZM2G158252
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: May 20th, 2016
Variation: July 14th, 2008
Gene Model: April 25th, 2013
15 days agolox11 lipoxygenase11:
5.04
GRMZM2G009479
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: January 3rd, 2018
Variation: June 10th, 2014
Gene Model: June 10th, 2014
15 days agopox3 guaiacol peroxidase3:
6.05
GRMZM2G135108
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: September 1st, 2003
Variation: January 7th, 2016
Gene Model: February 9th, 2015
15 days agobrs1 brassinosteroid synthesis1:
1.03
GRMZM2G065635
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.   AT3G50660 (TAIR) Reference: April 23rd, 2024
Gene Product: September 20th, 2010
Variation: November 7th, 2013
Gene Model: October 3rd, 2012
15 days agoras18A1 ras-related protein18A1:
 
GRMZM2G176677
Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Variation: January 24th, 2011
Gene Model: July 22nd, 2014
15 days agonrp1 no-apical-meristem-related protein1:
 
GRMZM2G062650
Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Gene Product: July 8th, 2019
Variation: March 31st, 2011
Gene Model: July 28th, 2016
15 days agonced3 nine-cis-epoxycarotenoid dioxygenase3:
 
GRMZM5G858784
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: September 20th, 2012
Gene Model: September 20th, 2012
15 days agonced5 nine-cis-epoxycarotenoid dioxygenase5:
 
GRMZM2G417954
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: September 20th, 2012
Variation: September 1st, 2011
Gene Model: September 20th, 2012
15 days agodbp4 DRE-binding protein4:
 
GRMZM2G380377
Yuanming Wu et al. 2024. Phenotypic Investigation and RNA-seq of KN1 Involved in Leaf Angle Formation in Maize (Zea mays L.) Int J Mol Sci. 25:3180.     Reference: April 23rd, 2024
Gene Product: April 10th, 2013
Variation: April 10th, 2013
Gene Model: February 16th, 2012
15 days agobx12 benzoxazinone synthesis12:
 
GRMZM2G023325
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: July 8th, 2013
Variation: July 8th, 2013
Gene Model: July 8th, 2013
15 days agoelm2 elongated mesocotyl2:
 
GRMZM2G101004
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: September 24th, 2014
Variation: September 24th, 2014
Gene Model: November 18th, 2013
15 days agorca3 RUBISCO activase3:
 
GRMZM2G162200
Yuanming Wu et al. 2024. Phenotypic Investigation and RNA-seq of KN1 Involved in Leaf Angle Formation in Maize (Zea mays L.) Int J Mol Sci. 25:3180.     Reference: April 23rd, 2024
Gene Product: October 28th, 2014
Gene Model: February 11th, 2014
15 days agocko4b cytokinin oxidase4b:
 
GRMZM2G024476
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: July 19th, 2021
Gene Model: April 4th, 2014
15 days agoga2ox4 gibberellin 2-oxidase4:
 
GRMZM2G153359
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: October 27th, 2014
Gene Model: October 27th, 2014
15 days agoga16,17ox1 gibberellin 16,17-oxidase1:
 
GRMZM2G031432
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: October 30th, 2014
Gene Model: October 29th, 2014
15 days agopox1 guaiacol peroxidase1:
 
GRMZM2G104394
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: September 1st, 2003
Gene Model: February 9th, 2015
15 days agofnsi1 flavone synthase typeI1:
 
GRMZM2G099467
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.   AT5G24530 (TAIR) Reference: April 23rd, 2024
Gene Product: August 15th, 2015
Variation: August 14th, 2015
Gene Model: August 14th, 2015
15 days agofnsii1 flavone synthase typeII1:
 
GRMZM2G148441
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: August 14th, 2015
Gene Model: August 14th, 2015
15 days agofnsi2 flavone synthase typeI2:
 
GRMZM2G475380
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.   AT5G24530 (TAIR) Reference: April 23rd, 2024
Gene Product: August 15th, 2015
Gene Model: August 14th, 2015
15 days agoprx35 peroxidase35:
 
GRMZM2G177792
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: September 18th, 2015
Gene Model: September 18th, 2015
15 days agoprh90 protein phosphatase homolog90:
 
GRMZM2G443509
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: September 28th, 2016
15 days agoprh6 protein phosphatase homolog6:
 
GRMZM2G308615
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: October 18th, 2016
15 days agocyc11 cyclin11:
 
GRMZM2G161382
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: June 26th, 2009
Variation: May 2nd, 2021
Gene Model: December 21st, 2016
15 days agobrc2 brassinosteroid catabolism2:
 
GRMZM2G047684
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.   AT2G26710 (TAIR)
LOC_Os02g11020 (MSU/TIGR)
Reference: April 23rd, 2024
Gene Product: July 6th, 2017
Gene Model: July 6th, 2017
15 days agolox13 lipoxygenase13:
 
GRMZM5G822593
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: January 3rd, 2018
Gene Model: July 18th, 2017
15 days agoyuc9 yucca9:
 
GRMZM2G333478
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: June 18th, 2018
Gene Model: August 19th, 2017
15 days agonut1 necrotic upper tips1:
 
GRMZM2G041668
Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.   AT1G12260 (TAIR)
LOC_Os06g01480 (MSU/TIGR)
Reference: April 23rd, 2024
Gene Product: July 8th, 2019
Variation: August 11th, 2020
Gene Model: November 15th, 2017
15 days agovq10 VQ motif-transcription factor10:
 
GRMZM2G118172
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
15 days agovq14 VQ motif-transcription factor14:
 
GRMZM2G369742
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
15 days agovq21 VQ motif-transcription factor21:
 
AC194056.3_FG008
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
15 days agovq29 VQ motif-transcription factor29:
 
AC207043.3_FG002
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
15 days agovq35 VQ motif-transcription factor35:
 
GRMZM2G099691
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
15 days agovq41 VQ motif-transcription factor41:
 
GRMZM2G316033
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
15 days agovq53 VQ motif-transcription factor53:
 
GRMZM2G333049
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
15 days agovq56 VQ motif-transcription factor56:
 
GRMZM2G129815
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
15 days agovq58 VQ motif-transcription factor58:
 
GRMZM2G180262
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
15 days agoaas8 auxin amido synthetase8:
 
GRMZM2G053338
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: October 21st, 2019
Gene Model: October 21st, 2019
15 days agoaas2 auxin amido synthetase2:
 
GRMZM2G378106
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: October 21st, 2019
Gene Model: October 21st, 2019
15 days agoaas7 auxin amido synthetase7:
 
GRMZM2G033359
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: October 21st, 2019
Gene Model: October 21st, 2019
15 days agoprh81 protein phosphatase homolog81:
5.04
GRMZM2G360455
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: August 28th, 2021
15 days agopx16 peroxidase16:
 
GRMZM2G025441
Ran Yang et al. 2024. ZmNAC17 Regulates Mesocotyl Elongation by Mediating Auxin and ROS Biosynthetic Pathways in Maize Int J Mol Sci. 25:4585.     Reference: April 23rd, 2024
Gene Product: September 18th, 2015
Gene Model: July 9th, 2020
15 days agoapx7 ascorbate peroxidase7:
 
GRMZM2G083128
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: October 15th, 2020
Gene Model: October 15th, 2020
15 days agopx18 peroxidase18:
 
GRMZM2G108153
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: September 18th, 2015
Gene Model: November 23rd, 2020
15 days agopx19 peroxidase19:
 
GRMZM2G107228
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: September 18th, 2015
Gene Model: January 18th, 2021
15 days agobsk2 brassinosteroid-signaling kinase2:
 
GRMZM2G169080
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: May 13th, 2014
Gene Model: April 20th, 2021
15 days agoebf2 EIN3-binding F-box protein2:
 
GRMZM2G069649
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: April 27th, 2022
Gene Model: June 25th, 2021
15 days agopx21 peroxidase21:
 
AC205413.4_FG001
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: September 18th, 2015
Gene Model: September 8th, 2021
15 days agoprh127 protein phosphatase homolog127:
 
GRMZM2G057907
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
15 days agosaur8 small auxin up RNA8:
 
GRMZM2G033871
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
15 days agosaur10 small auxin up RNA10:
 
GRMZM2G407969
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
15 days agosaur11 small auxin up RNA11:
 
GRMZM2G146108
Ran Yang et al. 2024. ZmNAC17 Regulates Mesocotyl Elongation by Mediating Auxin and ROS Biosynthetic Pathways in Maize Int J Mol Sci. 25:4585.     Reference: April 23rd, 2024
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
15 days agosaur36 small auxin up RNA36:
 
GRMZM2G107900
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
15 days agosaur49 small auxin up RNA49:
 
GRMZM2G113135
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
15 days agosaur54 small auxin up RNA54:
 
GRMZM2G312274
Ran Yang et al. 2024. ZmNAC17 Regulates Mesocotyl Elongation by Mediating Auxin and ROS Biosynthetic Pathways in Maize Int J Mol Sci. 25:4585.     Reference: April 23rd, 2024
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
15 days agosaur55 small auxin up RNA55:
 
GRMZM2G391596
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
15 days agosaur73 small auxin up RNA73:
 
GRMZM2G083980
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
15 days agopx23 peroxidase23:
 
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.   AT5G05340 (TAIR) Reference: April 23rd, 2024
Gene Product: September 18th, 2015
15 days agoprx12 peroxidase12:
 
GRMZM2G108207
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: September 18th, 2015
Gene Model: January 13th, 2022
15 days agoxth5 xyloglucan endo-transglycosylase/hydrolase5:
5.03
GRMZM2G413006
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: March 23rd, 2024
Gene Model: May 10th, 2020
15 days agocrr9 cytokinin response regulator9:
 
GRMZM2G129954
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: June 30th, 2017
Gene Model: August 12th, 2022
15 days agopin2 PIN-formed protein2:
5.06
GRMZM2G074267
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: April 21st, 2014
Variation: June 11th, 2007
Gene Model: June 7th, 2012
15 days agosamt1 S-adenosyl methionine transporter1:
5.07
GRMZM2G042027
Junqiao Song et al. 2024. Exploiting genomic tools for genetic dissection and improving the resistance to Fusarium stalk rot in tropical maize. Theor Appl Genet. 137:109.     Reference: April 23rd, 2024
Gene Product: June 6th, 2022
Gene Model: May 23rd, 2020
15 days agoebf1 EIN3-binding F-box protein1:
6.03
GRMZM2G137582
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.   AT2G25490 (TAIR)
LOC_Os06g40360 (MSU/TIGR)
Reference: April 23rd, 2024
Gene Product: April 27th, 2022
Gene Model: October 6th, 2016
15 days agopin1 PIN-formed protein1:
9.01
GRMZM2G398650
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: April 21st, 2014
Variation: January 20th, 2015
Gene Model: June 7th, 2012
15 days agosnrkII5 SnRK2 serine threonine kinase5:
10.07
GRMZM2G110908
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: April 14th, 2018
Gene Model: February 11th, 2015
15 days agoein2 ethylene insensitive 2:
3.01
GRMZM2G068217
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.   AT5G03280 (TAIR) Reference: April 23rd, 2024
Variation: March 6th, 2024
Gene Model: March 1st, 2015
15 days agonactf23 NAC-transcription factor 23:
8.08
GRMZM2G068973
Fan, K et al. 2014. Molecular evolution and expansion analysis of the NAC transcription factor in Zea mays. PLoS One. 9:e111837.     Reference: April 23rd, 2024
Variation: March 31st, 2005
Gene Model: June 14th, 2019
15 days agocko2 cytokinin oxidase 2:
3.05
GRMZM2G050997
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: July 19th, 2021
Variation: February 26th, 2008
Gene Model: March 21st, 2014
15 days agobx6 benzoxazinone synthesis6:
4.01
   Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: June 20th, 2016
Variation: April 12th, 2019
15 days agopx5 peroxidase 5:
6.05
GRMZM2G450233
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: September 18th, 2015
Gene Model: December 30th, 2015
15 days agosnrkII7 SnRK2 serine threonine protein kinase7:
2.04
GRMZM2G155593
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: April 14th, 2018
Gene Model: February 11th, 2015
15 days agozim18 ZIM-transcription factor 18:
1.08
GRMZM2G145412
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: February 24th, 2021
Gene Model: December 6th, 2016
15 days agoks3 kaurene synthase3:
2.02
GRMZM2G093603
Liu, LJ et al. 2024. Genome-wide identification of ZmMYC2 binding sites and target genes in maize BMC Genomics. 25:397.     Reference: April 23rd, 2024
Gene Product: August 16th, 2012
Variation: July 22nd, 2023
Gene Model: August 15th, 2012
16 days agobif4 barren inflorescence4:
 
   Liu, JQ et al. 2024. Overexpression of the late embryonic genesis abundant protein MGL3 improves the drought tolerance of maize (Zea mays L.) Crop Sci. :doi: 10.1002/csc2.21246.     Reference: April 22nd, 2024
Gene Product: October 16th, 2015
Variation: October 16th, 2015
16 days agowrky92 WRKY-transcription factor 92:
 
   Begcy, K et al. 2024. Maize stigmas react differently to self-/cross-pollination and fungal invasion bioRxiv preprint. :doi: 10.1101/2024.04.17.589941.     Reference: April 22nd, 2024
Variation: February 7th, 2024
16 days agomlg3 lea protein group3:
6.07
   Liu, JQ et al. 2024. Overexpression of the late embryonic genesis abundant protein MGL3 improves the drought tolerance of maize (Zea mays L.) Crop Sci. :doi: 10.1002/csc2.21246.     Reference: April 22nd, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
16 days agoks2 kaurene synthase2:
 
GRMZM2G093526
Begcy, K et al. 2024. Maize stigmas react differently to self-/cross-pollination and fungal invasion bioRxiv preprint. :doi: 10.1101/2024.04.17.589941.     Reference: April 22nd, 2024
Gene Product: August 16th, 2012
Gene Model: October 27th, 2014
16 days agoks5 kaurene synthase5:
 
   Begcy, K et al. 2024. Maize stigmas react differently to self-/cross-pollination and fungal invasion bioRxiv preprint. :doi: 10.1101/2024.04.17.589941.     Reference: April 22nd, 2024
Gene Product: August 16th, 2012
16 days agoko1 kaurene oxidase1:
 
GRMZM2G059308
Begcy, K et al. 2024. Maize stigmas react differently to self-/cross-pollination and fungal invasion bioRxiv preprint. :doi: 10.1101/2024.04.17.589941.     Reference: April 22nd, 2024
Gene Product: October 27th, 2014
Gene Model: October 27th, 2014
16 days agocyp30 cytochrome P450 CYP71Z16:
 
   Begcy, K et al. 2024. Maize stigmas react differently to self-/cross-pollination and fungal invasion bioRxiv preprint. :doi: 10.1101/2024.04.17.589941.     Reference: April 22nd, 2024
Gene Product: December 30th, 2022
16 days agoers14 ethylene receptor1-14:
5.01
GRMZM2G102601
Liu, JQ et al. 2024. Overexpression of the late embryonic genesis abundant protein MGL3 improves the drought tolerance of maize (Zea mays L.) Crop Sci. :doi: 10.1002/csc2.21246.     Reference: April 22nd, 2024
Variation: May 16th, 2014
Gene Model: December 28th, 2016
16 days agotps6 terpene synthase6:
10.03
GRMZM2G127087
Begcy, K et al. 2024. Maize stigmas react differently to self-/cross-pollination and fungal invasion bioRxiv preprint. :doi: 10.1101/2024.04.17.589941.     Reference: April 22nd, 2024
Gene Product: September 3rd, 2008
Variation: May 28th, 2012
Gene Model: May 28th, 2012
17 days agosnrk1a1 SNF1-related kinase alpha1-like1:
6.06
GRMZM2G077278
Lily Chen et al. 2024. Sugar sensing in C4 source leaves: a gap that needs to be filled. J Exp Bot. :doi: 10.1093/jxb/erae166.     Reference: April 21st, 2024
Gene Product: December 4th, 2020
Gene Model: February 7th, 2018
18 days agolbd51 LBD-transcription factor 51:
 
   Hao, LD et al. 2024. Characterization and expression profiles of the ZmLBD gene family in Zea mays. Mol Biol Rep. 51:554.     Reference: April 20th, 2024
Gene Product: July 28th, 2023
18 days agortcs1 rootless concerning crown and seminal roots1:
1.02
GRMZM2G092542
Hao, LD et al. 2024. Characterization and expression profiles of the ZmLBD gene family in Zea mays. Mol Biol Rep. 51:554.     Reference: April 20th, 2024
Gene Product: October 5th, 2009
Variation: October 5th, 2009
Gene Model: July 23rd, 2013
18 days agoial1 ig1-as2 like1:
8.06
GRMZM2G133806
Hao, LD et al. 2024. Characterization and expression profiles of the ZmLBD gene family in Zea mays. Mol Biol Rep. 51:554.     Reference: April 20th, 2024
Gene Product: July 28th, 2023
Variation: October 1st, 2010
Gene Model: October 9th, 2015
18 days agoms1 male sterile1:
6.02
   Hao, LD et al. 2024. Characterization and expression profiles of the ZmLBD gene family in Zea mays. Mol Biol Rep. 51:554.     Reference: April 20th, 2024
Gene Product: July 28th, 2023
Variation: May 19th, 2006
18 days agora2 ramosa2:
3.03 - 3.03
AC233943.1_FG002
Hao, LD et al. 2024. Characterization and expression profiles of the ZmLBD gene family in Zea mays. Mol Biol Rep. 51:554.   AT5G63090 (TAIR)
LOC_Os01g07480 (MSU/TIGR)
Os01g0169400 (Gramene)
Reference: April 20th, 2024
Gene Product: July 27th, 2009
Variation: September 19th, 2009
Gene Model: July 14th, 2011
18 days agolbd1 LBD-transcription factor 1:
 
   Hao, LD et al. 2024. Characterization and expression profiles of the ZmLBD gene family in Zea mays. Mol Biol Rep. 51:554.     Reference: April 20th, 2024
Variation: March 18th, 2021
18 days agortcl1 RTCS-like1:
9.07
AC149818.2_FG009
Hao, LD et al. 2024. Characterization and expression profiles of the ZmLBD gene family in Zea mays. Mol Biol Rep. 51:554.     Reference: April 20th, 2024
Variation: January 20th, 2016
Gene Model: May 18th, 2012
19 days agorap2 rap2.7 orthologue:
8.06
GRMZM2G700665
Adak, A et al. 2024. Photoperiod associated late flowering reaction norm: Dissecting loci and genomic-enviromic associated prediction in maize Field Crop Res. 311:109380.     Reference: April 19th, 2024
Gene Product: July 5th, 2019
Variation: July 24th, 2019
Gene Model: November 20th, 2012
19 days agopebp5 phosphatidylethanolamine-binding protein:
 
   Adak, A et al. 2024. Photoperiod associated late flowering reaction norm: Dissecting loci and genomic-enviromic associated prediction in maize Field Crop Res. 311:109380.     Reference: April 19th, 2024
Gene Product: March 19th, 2024
Variation: January 31st, 2011
19 days agopebp8 phosphatidylethanolamine-binding protein8:
 
GRMZM2G179264
Adak, A et al. 2024. Photoperiod associated late flowering reaction norm: Dissecting loci and genomic-enviromic associated prediction in maize Field Crop Res. 311:109380.     Reference: April 19th, 2024
Gene Product: March 19th, 2024
Variation: June 19th, 2015
Gene Model: May 6th, 2011
19 days agopebp19 phosphatidylethanolamine-binding protein:
 
   Adak, A et al. 2024. Photoperiod associated late flowering reaction norm: Dissecting loci and genomic-enviromic associated prediction in maize Field Crop Res. 311:109380.     Reference: April 19th, 2024
Gene Product: March 19th, 2024
Variation: December 15th, 2010
19 days agoid1 indeterminate growth1:
1.08
   Adak, A et al. 2024. Photoperiod associated late flowering reaction norm: Dissecting loci and genomic-enviromic associated prediction in maize Field Crop Res. 311:109380.     Reference: April 19th, 2024
Gene Product: January 3rd, 2015
Variation: March 22nd, 2023
19 days agocct1 CO CO-LIKE TIMING OF CAB1 protein domain1:
 
GRMZM2G381691
Adak, A et al. 2024. Photoperiod associated late flowering reaction norm: Dissecting loci and genomic-enviromic associated prediction in maize Field Crop Res. 311:109380.   AT5G24930 (TAIR)
LOC_Os07g15770 (MSU/TIGR)
Os07g0261200 (Gramene)
Reference: April 19th, 2024
Gene Product: June 18th, 2018
Variation: May 22nd, 2021
Gene Model: July 17th, 2012
19 days agoereb100 AP2-EREBP-transcription factor 100:
 
   Hongpeng Han et al. 2024. Function analysis of transcription factor OSR1 regulating osmotic stress resistance in maize Biochem Biophys Res Commun. :doi: 10.1016/j.bbrc.2024.149956.     Reference: April 19th, 2024
Variation: April 19th, 2024
19 days agomads69 MADS-transcription factor 69:
 
   Adak, A et al. 2024. Photoperiod associated late flowering reaction norm: Dissecting loci and genomic-enviromic associated prediction in maize Field Crop Res. 311:109380.     Reference: April 19th, 2024
Variation: October 5th, 2018
19 days agoconz1 constans1:
9.03
   Adak, A et al. 2024. Photoperiod associated late flowering reaction norm: Dissecting loci and genomic-enviromic associated prediction in maize Field Crop Res. 311:109380.     Reference: April 19th, 2024
Gene Product: June 18th, 2018
Variation: July 28th, 2008
20 days agoubi1 ubiquitin1:
 
GRMZM2G409726
Wang, X et al. 2024. Jasmonate mimic modulates cell elongation by regulating antagonistic bHLH transcription factors via brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae217.     Reference: April 18th, 2024
Gene Product: September 1st, 2003
Variation: November 20th, 2014
Gene Model: November 18th, 2014
20 days agobhlh86 bHLH-transcription factor 86:
7.03
GRMZM5G818643
Wang, X et al. 2024. Jasmonate mimic modulates cell elongation by regulating antagonistic bHLH transcription factors via brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae217.     Reference: April 18th, 2024
Variation: September 1st, 2003
Gene Model: September 2nd, 2018
20 days agobhlh3 bHLH-transcription factor 3:
1.03
GRMZM2G180452
Wang, X et al. 2024. Jasmonate mimic modulates cell elongation by regulating antagonistic bHLH transcription factors via brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae217.     Reference: April 18th, 2024
Variation: January 31st, 2017
Gene Model: January 31st, 2017
20 days agomyc7 myc transcription factor7:
1.05
GRMZM2G001930
Wang, X et al. 2024. Jasmonate mimic modulates cell elongation by regulating antagonistic bHLH transcription factors via brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae217.     Reference: April 18th, 2024
Gene Product: September 14th, 2016
Variation: June 20th, 2022
Gene Model: July 28th, 2016
20 days agoibh1 increased leaf inclination1-binding bhlh 1:
 
GRMZM2G388823
Wang, X et al. 2024. Jasmonate mimic modulates cell elongation by regulating antagonistic bHLH transcription factors via brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae217.   AT2G43060 (TAIR) Reference: April 18th, 2024
Gene Product: September 14th, 2016
Variation: January 28th, 2020
Gene Model: January 28th, 2020
20 days agoxth1 xyloglucan endo-transglycosylase/hydrolase1:
10.03
GRMZM2G119783
Wang, X et al. 2024. Jasmonate mimic modulates cell elongation by regulating antagonistic bHLH transcription factors via brassinosteroid signaling Plant Physiol. :doi: 10.1093/plphys/kiae217.     Reference: April 18th, 2024
Gene Product: March 23rd, 2024
Variation: January 25th, 2015
Gene Model: September 5th, 2012
21 days agoshki1 shikimate kinase1:
 
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.   AT2G21940 (TAIR) Reference: April 17th, 2024
Gene Product: January 2nd, 2023
21 days agoskl1 shikimate kinase-like1:
 
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.   AT3G26900 (TAIR) Reference: April 17th, 2024
Gene Product: January 2nd, 2023
21 days agoshki2 shikimate kinase2:
 
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.   AT2G21940 (TAIR) Reference: April 17th, 2024
Gene Product: January 2nd, 2023
21 days agoadt3 arogenate dehydratase3:
 
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: March 4th, 2024
21 days agome10 malic enzyme10:
 
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: June 27th, 2019
21 days agogtr2 glutamyl-tRNA reductase2:
 
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: October 23rd, 2023
21 days agoadt1 arogenate dehydratase1:
 
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: March 4th, 2024
21 days agoadt5 arogenate dehydratase5:
 
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: March 4th, 2024
21 days agoadt7 arogenate dehydratase7:
 
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: March 4th, 2024
21 days agoZm00001d053374  :
 
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: April 17th, 2024
21 days agoLOC100274239  :
 
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: April 17th, 2024
21 days agogtr1 glutamyl-tRNA reductase1:
10.07
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: October 23rd, 2023
Variation: October 23rd, 2023
21 days agompec1 magnesium-protoporphyrin ester cyclase1:
8.01
GRMZM2G081462
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.   AT3G56940 (TAIR) Reference: April 17th, 2024
Gene Product: July 7th, 2022
Variation: July 7th, 2022
Gene Model: September 13th, 2018
21 days agogln6 glutamine synthetase6:
1.02 - 1.03
GRMZM2G050514
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: December 7th, 2012
Gene Model: August 7th, 2014
21 days agoarodh3 arogenate dehydrogenase3:
6.01
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: July 7th, 2018
Variation: July 7th, 2018
21 days agopat38 protein S-acyltransferase38:
10.07
GRMZM2G092571
Lin, M et al. 2024. Integrative multi-omic analysis identifies genes associated with cuticular wax biogenesis in adult maize leaves bioRxiv preprint. :doi: 10.1101/2024.04.09.588685.     Reference: April 17th, 2024
Gene Product: February 26th, 2022
Gene Model: July 21st, 2021
21 days agoeps1 enolpyruvylshikimate phosphate synthase1:
9.07
GRMZM5G877500
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: April 18th, 2020
Variation: November 15th, 2018
Gene Model: July 27th, 2016
21 days agobx1 benzoxazinless1:
4.00
GRMZM2G085381
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: October 14th, 2011
Variation: April 12th, 2019
Gene Model: October 14th, 2011
21 days agogdh1 glutamic dehydrogenase1:
1.11
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: August 7th, 2006
21 days agogot1 glutamate-oxaloacetate transaminase1:
3.02
GRMZM2G094712
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: October 21st, 2021
Variation: September 1st, 2003
Gene Model: August 6th, 2014
21 days agogot2 glutamate-oxaloacetate transaminase2:
5.08
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: October 21st, 2021
Variation: September 1st, 2003
21 days agogot3 glutamate-oxaloacetic transaminase3:
5.03 - 5.04
GRMZM2G146677
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: October 21st, 2021
Variation: September 1st, 2003
Gene Model: July 30th, 2014
21 days agolls1 lethal leaf spot1:
1.01
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: November 5th, 2014
Variation: March 18th, 2022
21 days agonec4 necrotic4:
2.02
GRMZM5G870342
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: December 17th, 2014
Variation: January 31st, 2022
Gene Model: December 17th, 2014
21 days agoorp1 orange pericarp1:
4.05
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: May 19th, 2006
21 days agoorp2 orange pericarp2:
10.03
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
21 days agopep1 phosphoenolpyruvate carboxylase1:
9.03
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: May 27th, 2020
21 days agopep3 phosphoenolpyruvate carboxylase3:
4.08
GRMZM2G473001
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: April 10th, 2015
Gene Model: August 13th, 2014
21 days agorf2 restorer of fertility2:
9.03
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: December 18th, 2006
21 days agosad1 shikimate dehydrogenase1:
10.03 - 10.04
GRMZM2G014376
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: January 24th, 2015
Gene Model: January 24th, 2015
21 days agots2 tassel seed2:
1.03
   Taikui Zhang et al. 2024. Phylogenomic profiles of whole-genome duplications in Poaceae and landscape of differential duplicate retention and losses among major Poaceae lineages Nat Commun. 15:3305.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
21 days agome5 malic enzyme5:
6.05
GRMZM5G886257
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: June 27th, 2019
Variation: August 16th, 2011
Gene Model: August 27th, 2018
21 days agofnr2 ferredoxin NADP reductase2:
7.01
GRMZM2G011858
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: May 11th, 2021
Variation: October 9th, 2009
Gene Model: September 4th, 2018
21 days agopsan1 photosystem I N subunit1:
3.05
GRMZM2G080107
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: May 12th, 2013
Gene Model: May 9th, 2013
21 days agopsah1 photosystem I H subunit1:
6.07
GRMZM2G451224
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: May 7th, 2013
Gene Model: May 9th, 2013
21 days agocpx2 coproporphyrinogen III oxidase2:
10.06
GRMZM2G032282
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: December 17th, 2014
Variation: September 22nd, 2011
Gene Model: September 22nd, 2011
21 days agoles22 lesion22:
1.04
GRMZM2G044074
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: April 1st, 2015
Gene Model: August 16th, 2017
21 days agoadc1 arginine decarboxylase1:
9.03
GRMZM2G396553
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: August 18th, 2020
Variation: September 1st, 2003
Gene Model: March 7th, 2018
21 days agopal1 phenylalanine ammonia lyase homolog1:
5.05
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: August 13th, 2022
Variation: September 24th, 2014
21 days agopal2 phenylalanine ammonia lyase2:
2.04 - 2.04
GRMZM2G441347
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: February 21st, 2017
Gene Model: February 21st, 2017
21 days agonnr2 nitrate reductase2:
5.07
GRMZM5G878558
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: October 26th, 2010
Gene Model: May 10th, 2018
21 days agonnr1 nitrate reductase(NADH)1:
4.05
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: October 26th, 2010
21 days agoabi12 ABI3-VP1-transcription factor 12:
 
   Taikui Zhang et al. 2024. Phylogenomic profiles of whole-genome duplications in Poaceae and landscape of differential duplicate retention and losses among major Poaceae lineages Nat Commun. 15:3305.     Reference: April 17th, 2024
Gene Product: January 29th, 2022
Variation: September 20th, 2019
21 days agomdh6 malate dehydrogenase6:
1.07
GRMZM2G129513
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 23rd, 2014
Variation: August 31st, 2010
Gene Model: October 24th, 2013
21 days agome3 NADP malic enzyme3:
3.02
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: June 27th, 2019
Variation: September 1st, 2003
21 days agopep4 phosphoenolpyruvate carboxylase4:
7.02
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: December 27th, 2010
21 days agodvr1 divinyl reductase1:
 
GRMZM2G063048
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: October 8th, 2014
Gene Model: October 8th, 2014
21 days agopal3 phenylalanine ammonia lyase3:
4.05
GRMZM2G160541
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: September 25th, 2014
Gene Model: September 19th, 2014
21 days agopsan2 photosystem I N subunit2:
10.03
GRMZM2G009048
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Gene Model: January 10th, 2018
21 days agome2 NADP-dependent malic enzyme2:
6.05
GRMZM2G122479
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: June 27th, 2019
Variation: August 24th, 2014
Gene Model: August 21st, 2014
21 days agogln3 glutamine synthetase3:
9.06
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: December 7th, 2012
21 days agogln4 glutamine synthetase4:
5.06
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
21 days agogln5 glutamine synthetase5:
4.06
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: May 30th, 2014
21 days agogln1 glutamine synthetase1:
10.07
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
21 days agopep2 phosphoenolpyruvate carboxylase2:
5.04
GRMZM2G069542
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: October 1st, 2014
Gene Model: August 13th, 2014
21 days agoris2 iron-sulfur protein2:
4.09
GRMZM2G162748
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: November 5th, 2014
Variation: November 1st, 2014
Gene Model: October 31st, 2014
21 days agoris1 iron-sulfur protein1:
5.04
GRMZM2G162748
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: November 5th, 2014
Variation: October 31st, 2014
Gene Model: October 31st, 2014
21 days agonii2 nitrite reductase2:
4.07
GRMZM2G079381
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: September 10th, 2014
21 days agofie1 fertilization independent endosperm1:
4.05
   Taikui Zhang et al. 2024. Phylogenomic profiles of whole-genome duplications in Poaceae and landscape of differential duplicate retention and losses among major Poaceae lineages Nat Commun. 15:3305.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: December 4th, 2012
21 days agofie2 fertilization independent endosperm2:
10.03
   Taikui Zhang et al. 2024. Phylogenomic profiles of whole-genome duplications in Poaceae and landscape of differential duplicate retention and losses among major Poaceae lineages Nat Commun. 15:3305.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: May 27th, 2014
21 days agoasn1 asparagine synthetase1:
1.03
GRMZM2G074589
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: February 1st, 2021
Variation: May 9th, 2009
Gene Model: December 30th, 2015
21 days agocmu1 chorismate mutase1:
8.08
GRMZM2G116087
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: February 12th, 2014
Gene Model: February 12th, 2014
21 days agogl26 glossy26:
8.02
GRMZM2G481843
Lin, M et al. 2024. Integrative multi-omic analysis identifies genes associated with cuticular wax biogenesis in adult maize leaves bioRxiv preprint. :doi: 10.1101/2024.04.09.588685.     Reference: April 17th, 2024
Gene Product: October 31st, 2018
Variation: October 31st, 2018
Gene Model: September 17th, 2018
21 days agoadc2 arginine decarboxylase2:
4.06
   Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: August 18th, 2020
Variation: January 22nd, 2021
21 days agocer8 eceriferum8:
10.03
GRMZM2G101875
Lin, M et al. 2024. Integrative multi-omic analysis identifies genes associated with cuticular wax biogenesis in adult maize leaves bioRxiv preprint. :doi: 10.1101/2024.04.09.588685.   AT2G47240 (TAIR) Reference: April 17th, 2024
Gene Product: October 31st, 2018
Variation: October 31st, 2018
Gene Model: January 23rd, 2018
21 days agoasn2 asparagine synthetase2:
3.09
GRMZM2G093175
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: February 1st, 2021
Variation: December 30th, 2015
Gene Model: December 30th, 2015
21 days agoasn3 asparagine synthetase3:
1.03
GRMZM2G053669
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: February 1st, 2021
Variation: May 9th, 2009
Gene Model: October 16th, 2015
21 days agoasn4 asparagine synthetase4:
9.06
GRMZM2G078472
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: February 1st, 2021
Variation: November 16th, 2022
Gene Model: December 30th, 2015
21 days agoalgt1 alanine--glyoxylate aminotransferase1:
1.04
GRMZM2G030571
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: July 25th, 2014
Gene Model: July 25th, 2014
21 days agogot5 glutamate-oxaloacetate transaminase5:
 
GRMZM2G033799
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: October 21st, 2021
Gene Model: August 4th, 2014
21 days agogot4 glutamate-oxaloacetate transaminase4:
 
GRMZM2G400604
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: October 21st, 2021
Variation: August 8th, 2014
Gene Model: August 5th, 2014
21 days agochph1 chlorophyllase1:
 
GRMZM2G170734
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: August 5th, 2016
Gene Model: October 4th, 2014
21 days agopdk3 phosphoinositide dependent protein kinase3:
 
GRMZM2G097821
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: April 18th, 2015
Gene Model: April 18th, 2015
21 days agocyb6 cytochrome b6:
 
GRMZM2G463640
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Gene Model: April 18th, 2015
21 days agopdk4 pyruvate, orthophosphate dikinase4:
 
AC217975.3_FG001
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: July 28th, 2014
Gene Model: April 18th, 2015
21 days agoadt6 arogenate dehydratase6:
 
GRMZM2G437912
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.   AT1G08250 (TAIR) Reference: April 17th, 2024
Gene Product: March 4th, 2024
Gene Model: March 24th, 2016
21 days agopal7 phenylalanine ammonia lyase7:
 
GRMZM2G170692
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: August 13th, 2022
Gene Model: May 6th, 2016
21 days agopal9 phenylalanine ammonia lyase9:
 
GRMZM2G029048
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: August 13th, 2022
Gene Model: May 6th, 2016
21 days agopal6 phenylalanine ammonia lyase6:
 
GRMZM2G118345
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: August 13th, 2022
Gene Model: May 6th, 2016
21 days agopal5 phenylalanine ammonia lyase5:
 
GRMZM2G081582
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: August 13th, 2022
Gene Model: May 6th, 2016
21 days agopal4 phenylalanine ammonia lyase4:
 
GRMZM2G063917
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: August 13th, 2022
Gene Model: May 6th, 2016
21 days agoacs3 1-aminocyclopropane-1-carboxylate synthase3:
 
GRMZM2G018006
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: May 16th, 2016
Gene Model: May 16th, 2016
21 days agochph2 chlorophyllase2:
 
GRMZM2G127421
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: August 5th, 2016
Variation: August 5th, 2016
Gene Model: August 5th, 2016
21 days agoarodh1 arogenate dehydrogenase1:
 
GRMZM2G084942
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: July 7th, 2018
Variation: July 7th, 2018
Gene Model: October 4th, 2017
21 days agopcr2 protochlorophyllide reductase2:
 
GRMZM2G036455
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: June 8th, 2019
Gene Model: October 4th, 2017
21 days agopcr3 protochlorophyllide reductase3:
 
GRMZM2G073351
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: June 8th, 2019
Variation: June 8th, 2019
Gene Model: October 4th, 2017
21 days agochlg1 chlorophyll synthase G1:
 
GRMZM2G162672
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: January 8th, 2018
Gene Model: January 8th, 2018
21 days agonnr5 nitrate reductase5:
 
GRMZM2G428027
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Gene Model: May 10th, 2018
21 days agonnr4 nitrate reductase4:
 
GRMZM2G076723
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: December 13th, 2021
Gene Model: May 10th, 2018
21 days agonii1 nitrate reductase1:
 
GRMZM2G102959
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Gene Model: May 10th, 2018
21 days agoarodh2 arogenate dehydrogenase2:
 
GRMZM2G085117
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: July 7th, 2018
Gene Model: July 7th, 2018
21 days agoarodh4 arogenate dehydrogenase4:
 
GRMZM2G324297
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: July 7th, 2018
Gene Model: July 7th, 2018
21 days agogl4b 3-ketoacyl-CoA synthase gl4b:
 
GRMZM2G478140
Lin, M et al. 2024. Integrative multi-omic analysis identifies genes associated with cuticular wax biogenesis in adult maize leaves bioRxiv preprint. :doi: 10.1101/2024.04.09.588685.     Reference: April 17th, 2024
Gene Product: November 1st, 2018
Gene Model: November 1st, 2018
21 days agocmu3 chorismate mutase3:
 
GRMZM2G028369
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: February 12th, 2014
Gene Model: January 21st, 2019
21 days agokcs22 3-ketoacyl-CoA synthase22:
 
GRMZM2G168956
Lin, M et al. 2024. Integrative multi-omic analysis identifies genes associated with cuticular wax biogenesis in adult maize leaves bioRxiv preprint. :doi: 10.1101/2024.04.09.588685.     Reference: April 17th, 2024
Gene Product: November 1st, 2018
Gene Model: February 13th, 2020
21 days agoptox2 plastid terminal oxidase2:
 
GRMZM2G010555
Nie, Y-X et al. 2024. The maize PLASTID TERMINAL OXIDASE (PTOX) locus controls the carotenoid content of kernels Plant J. 118(2) 457-468     Reference: April 17th, 2024
Gene Product: June 15th, 2023
Gene Model: April 27th, 2020
21 days agophao1 pheophorbide a oxygenase1:
 
GRMZM2G171390
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: August 26th, 2020
Gene Model: August 26th, 2020
21 days agochao1 chlorophyllide a oxygenase1:
 
GRMZM2G103197
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: February 12th, 2021
Gene Model: August 26th, 2020
21 days agocmu4 chorismate mutase4:
 
GRMZM2G124365
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: February 12th, 2014
Variation: January 22nd, 2021
Gene Model: January 21st, 2021
21 days agocold1 cold rsponsive1:
 
GRMZM2G129169
Taikui Zhang et al. 2024. Phylogenomic profiles of whole-genome duplications in Poaceae and landscape of differential duplicate retention and losses among major Poaceae lineages Nat Commun. 15:3305.     Reference: April 17th, 2024
Gene Product: April 15th, 2021
Variation: April 15th, 2021
Gene Model: April 15th, 2021
21 days agopet6 photosynthetic electron transport6:
 
GRMZM2G096792
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: May 11th, 2021
Gene Model: May 11th, 2021
21 days agopet9 photosynthetic electron transport9:
 
GRMZM2G016066
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: May 11th, 2021
Gene Model: May 11th, 2021
21 days agofnr3 ferredoxin NADP reductase3:
 
GRMZM2G168143
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: May 11th, 2021
Variation: July 15th, 2021
Gene Model: May 11th, 2021
21 days agofnr4 ferredoxin NADP reductase4:
 
GRMZM2G059083
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: May 11th, 2021
Gene Model: May 11th, 2021
21 days agod53 dwarf ortholog53:
 
GRMZM2G109674
Taikui Zhang et al. 2024. Phylogenomic profiles of whole-genome duplications in Poaceae and landscape of differential duplicate retention and losses among major Poaceae lineages Nat Commun. 15:3305.   LOC_Os11g01330 (MSU/TIGR)
OS11G0104300 (Gramene)
Reference: April 17th, 2024
Gene Product: June 8th, 2021
Variation: December 27th, 2022
Gene Model: June 8th, 2021
21 days agosae2 SUMO-activating enzyme2:
 
GRMZM2G129575
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: November 26th, 2019
Gene Model: August 17th, 2021
21 days agokrn2 kernel row number2:
 
GRMZM2G125656
Taikui Zhang et al. 2024. Phylogenomic profiles of whole-genome duplications in Poaceae and landscape of differential duplicate retention and losses among major Poaceae lineages Nat Commun. 15:3305.   Os04g0568400 (Gramene) Reference: April 17th, 2024
Gene Product: December 19th, 2020
Variation: March 24th, 2022
Gene Model: March 24th, 2022
21 days agompec2 magnesium-protoporphyrin ester cyclase2:
 
GRMZM2G043109
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.   AT3G56940 (TAIR) Reference: April 17th, 2024
Gene Product: July 7th, 2022
Gene Model: July 7th, 2022
21 days agocmu2 chorismate mutase2:
5.04
GRMZM2G179454
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: February 12th, 2014
Gene Model: February 12th, 2014
21 days agopep6 phosphoenolpyruvate carboxylase6:
8.08
GRMZM2G110714
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Gene Model: June 15th, 2022
21 days agochao2 chlorophyllide a oxygenase2:
8.06
GRMZM2G038487
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: February 12th, 2021
Variation: February 12th, 2021
Gene Model: September 2nd, 2019
21 days agoadt4 arogenate dehydratase4:
9.06
GRMZM2G145451
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: March 4th, 2024
Gene Model: June 26th, 2020
21 days agoIDP628  :
5.03
GRMZM2G156748
Lin, M et al. 2024. Integrative multi-omic analysis identifies genes associated with cuticular wax biogenesis in adult maize leaves bioRxiv preprint. :doi: 10.1101/2024.04.09.588685.     Reference: April 17th, 2024
Variation: March 31st, 2005
Gene Model: May 8th, 2020
21 days agoodc1 ornithine decarboxylase 1:
 
GRMZM2G140824
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: March 19th, 2008
Variation: March 19th, 2008
Gene Model: August 18th, 2020
21 days agoaldh2 aldehyde dehydrogenase2:
4.06
GRMZM2G125268
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: September 1st, 2003
Variation: May 13th, 2009
Gene Model: September 30th, 2015
21 days agoadt2 arogenate dehydratase2:
1.03
GRMZM2G141273
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: March 4th, 2024
Variation: March 4th, 2024
Gene Model: February 6th, 2020
21 days agonyc1 non-yellow coloring1:
3.01
GRMZM2G170013
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.   AT4g13250 (TAIR)
LOC_Os01g12710 (MSU/TIGR)
Os01g0227100 (Gramene)
Reference: April 17th, 2024
Gene Product: December 15th, 2016
Variation: December 15th, 2016
Gene Model: December 15th, 2016
21 days agopet8 photosynthetic electron transport8:
10.02
GRMZM2G016622
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: May 11th, 2021
Gene Model: June 13th, 2017
21 days agopcr1 protochlorophyllide reductase1:
2.01
GRMZM2G084958
Kretschmer , M et al. 2017. Chloroplast-associated metabolic functions influence the susceptibility of maize to Ustilago maydis. Mol Plant Pathol. 18:1210-1221.     Reference: April 17th, 2024
Gene Product: June 8th, 2019
Variation: February 25th, 2013
Gene Model: October 8th, 2014
22 days agogrp2 glycine-rich protein2:
10.03
GRMZM2G009448
Yingjie Zhang et al. 2024. Divergence in regulatory mechanisms of GR-RBP genes in different plants under abiotic stress Sci. Rep.. 14:8743.     Reference: April 16th, 2024
Gene Product: September 18th, 2020
Variation: June 5th, 2014
Gene Model: May 27th, 2015
22 days agogrp1 glycine-rich protein1:
1.08
   Yingjie Zhang et al. 2024. Divergence in regulatory mechanisms of GR-RBP genes in different plants under abiotic stress Sci. Rep.. 14:8743.     Reference: April 16th, 2024
Gene Product: September 18th, 2020
Variation: June 5th, 2014
22 days agorab15 responsive to abscisic acid15:
5.02
   Yingjie Zhang et al. 2024. Divergence in regulatory mechanisms of GR-RBP genes in different plants under abiotic stress Sci. Rep.. 14:8743.     Reference: April 16th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
22 days agohma9 heavy metal ATPase9:
 
GRMZM2G151406
Fan, CJ et al. 2024. Cu-II-directed self-assembly of fullerenols to ameliorate copper stress in maize seedlings Sci Total Environ. :doi: 10.1016/j.scitotenv.2024.172416.     Reference: April 16th, 2024
Gene Product: October 23rd, 2019
Gene Model: October 23rd, 2019
22 days agohma10 heavy metal ATPase10:
 
GRMZM2G143512
Fan, CJ et al. 2024. Cu-II-directed self-assembly of fullerenols to ameliorate copper stress in maize seedlings Sci Total Environ. :doi: 10.1016/j.scitotenv.2024.172416.     Reference: April 16th, 2024
Gene Product: October 23rd, 2019
Gene Model: October 23rd, 2019
22 days agohma11 heavy metal ATPase11:
 
GRMZM2G010152
Fan, CJ et al. 2024. Cu-II-directed self-assembly of fullerenols to ameliorate copper stress in maize seedlings Sci Total Environ. :doi: 10.1016/j.scitotenv.2024.172416.     Reference: April 16th, 2024
Gene Product: October 23rd, 2019
Gene Model: October 23rd, 2019
22 days agoorrm4 organelle RRM protein4:
 
GRMZM2G131167
Yingjie Zhang et al. 2024. Divergence in regulatory mechanisms of GR-RBP genes in different plants under abiotic stress Sci. Rep.. 14:8743.     Reference: April 16th, 2024
Gene Product: April 11th, 2013
Gene Model: July 27th, 2020
22 days agohma12 heavy metal ATPase12:
 
AC205008.4_FG002
Fan, CJ et al. 2024. Cu-II-directed self-assembly of fullerenols to ameliorate copper stress in maize seedlings Sci Total Environ. :doi: 10.1016/j.scitotenv.2024.172416.     Reference: April 16th, 2024
Gene Product: October 23rd, 2019
Gene Model: March 11th, 2022
23 days agoZm00001d017536  :
 
   Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: April 15th, 2024
23 days agoZm00001d034455  :
 
   Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: August 21st, 2018
23 days agotst2 tonoplast sugar transporter2:
5.04
   Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: October 28th, 2021
Variation: September 25th, 2007
23 days agoakin2 AKINbetagamma-1 protein kinase2:
1.03
   Yang, T et al. 2024. Sucrose-associated SnRK1a1-mediated phosphorylation of Opaque2 modulates endosperm filling in maize. Molecular Plant.     Reference: April 15th, 2024
Gene Product: December 4th, 2020
Variation: September 25th, 2007
23 days agoIDP5037  :
3.09
   Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: September 1st, 2003
23 days agotom6 transporter of mugineic acid6:
3.09
GRMZM2G075594
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: September 23rd, 2016
Gene Model: May 18th, 2021
23 days agotom1 transporter of mugineic acid1:
1.07
GRMZM2G415785
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: September 23rd, 2016
Gene Model: April 16th, 2021
23 days agohex1 hexokinase1:
3.02 - 3.03
GRMZM2G104081
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: September 15th, 2013
Variation: February 15th, 2010
Gene Model: September 15th, 2013
23 days agomch2 maize CRY1 homolog2:
 
GRMZM2G069762
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Variation: October 14th, 2010
Gene Model: July 28th, 2016
23 days agomn2 miniature seed2:
7.02 - 7.06
GRMZM2G156794
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Variation: December 14th, 2023
Gene Model: June 29th, 2020
23 days agoo2 opaque endosperm2:
7.01
   Yang, T et al. 2024. Sucrose-associated SnRK1a1-mediated phosphorylation of Opaque2 modulates endosperm filling in maize. Molecular Plant.     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Variation: June 6th, 2016
23 days agoys3 yellow stripe3:
3.04
GRMZM2G063306
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.   LOC_Os11g04020 (MSU/TIGR)
Os11g0134900 (Gramene)
Reference: April 15th, 2024
Gene Product: September 23rd, 2016
Variation: March 9th, 2018
Gene Model: March 9th, 2018
23 days agoumc1214  :
7.04
GRMZM2G167932
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: September 11th, 2018
Gene Model: September 11th, 2018
23 days agorpl15a 60S ribosomal protein L15:
2.08
GRMZM2G034794
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Variation: June 3rd, 2013
Gene Model: August 18th, 2021
23 days agotom7 transporter of mugineic acid7:
2.05
GRMZM2G115658
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: September 23rd, 2016
Variation: September 1st, 2003
Gene Model: February 15th, 2018
23 days agomybr71 MYB-related-transcription factor 71:
10.07
GRMZM2G448104
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: March 5th, 2024
Gene Model: January 18th, 2018
23 days agorps3 ribosomal protein S3:
10.03
GRMZM2G099352
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Variation: October 9th, 2015
Gene Model: October 9th, 2015
23 days agorps22a ribosomal protein S22 homolog:
9.06
GRMZM2G067303
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Variation: July 3rd, 2013
Gene Model: July 28th, 2016
23 days agorps11 ribosomal protein S11:
10.06
GRMZM2G019325
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Variation: January 24th, 2015
Gene Model: August 7th, 2014
23 days agoohp1 opaque2 heterodimerizing protein1:
1.11
   Yang, T et al. 2024. Sucrose-associated SnRK1a1-mediated phosphorylation of Opaque2 modulates endosperm filling in maize. Molecular Plant.     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Variation: February 2nd, 2015
23 days agotst3 tonoplast sugar transporter3:
5.03
GRMZM2G040871
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: October 28th, 2021
Gene Model: June 26th, 2018
23 days agoereb160 AP2-EREBP-transcription factor 160:
9.01
GRMZM2G171179
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: September 1st, 2003
Gene Model: September 25th, 2015
23 days agoabi22 ABI3-VP1-transcription factor 22:
 
   Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: January 29th, 2022
Variation: August 19th, 2015
23 days agobzr4 BZR-transcription factor 4:
 
   Song, LL et al. 2021. 3 Biotech 11:441   AT2G45880 (TAIR) Reference: April 15th, 2024
Gene Product: May 4th, 2022
23 days agoe2f19 E2F-DP-transcription factor 219:
 
   Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: March 24th, 2021
23 days agohsftf16 HSF-transcription factor 16:
 
   Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: May 15th, 2020
23 days agothx16 Trihelix-transcription factor 16:
 
   Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: November 9th, 2021
23 days agobhlh90 bHLH-transcription factor 90:
 
   Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: July 7th, 2021
23 days agobzip100 bZIP-transcription factor 100:
 
   Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: August 21st, 2018
23 days agoarpp3 acidic ribosomal protein P3:
5.03
GRMZM2G077208
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Variation: April 23rd, 2012
Gene Model: August 28th, 2015
23 days agoglct1 glucose translocator1:
8.02
GRMZM2G153704
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: November 21st, 2023
Variation: May 30th, 2014
Gene Model: August 23rd, 2014
23 days agobnl3.04  :
10.00
GRMZM2G127393
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: September 1st, 2003
Gene Model: October 20th, 2018
23 days agoumc62  :
6.07
GRMZM2G022453
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: August 29th, 2018
Gene Model: August 29th, 2018
23 days agomek1 MEK homolog1:
3.07
GRMZM2G167856
Azrai, M et al. 2024. SSRN doi: 10.2139/ssrn.4789824     Reference: April 15th, 2024
Gene Product: July 10th, 2013
Variation: January 11th, 2013
Gene Model: July 12th, 2013
23 days agostp1 sugar transport1:
8.03
   Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: January 2nd, 2023
Variation: August 26th, 2015
23 days agomta1 mouse transplantation antigen homolog1:
1.10
   Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: January 13th, 2020
Variation: January 26th, 2011
23 days agonrt2 nitrate transport2:
4.11
GRMZM2G010280
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Variation: January 17th, 2023
Gene Model: May 9th, 2018
23 days agoo18 opaque18:
5.05 - 5.09
GRMZM2G105466
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: April 15th, 2022
Variation: April 15th, 2022
Gene Model: April 15th, 2022
23 days agomta2 mouse transplantation antigen homolog2:
 
GRMZM2G072315
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: January 13th, 2020
Gene Model: January 12th, 2020
23 days agorpl17a ribosomal protein L17a:
8.03
GRMZM2G119169
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Variation: June 7th, 2013
Gene Model: August 7th, 2014
23 days agorps24 ribosomal protein S24:
5.04
GRMZM2G091383
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Variation: June 11th, 2015
Gene Model: April 15th, 2015
23 days agorpl30 ribosomal protein L30:
8.01
GRMZM2G027728
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: July 28th, 2016
23 days agoarpp2a acidic ribosomal protein P2a:
8.03
   Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Variation: January 28th, 2009
23 days agothi1 thiamine biosynthesis1:
8.05
GRMZM2G018375
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: February 1st, 2013
Variation: January 15th, 2015
Gene Model: January 31st, 2013
23 days agoAY109968  :
7.02
GRMZM2G450488
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Variation: September 25th, 2007
Gene Model: September 6th, 2018
23 days agoamt5 ammonium transporter5:
10.04
GRMZM2G164743
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: July 8th, 2013
Gene Model: December 29th, 2017
23 days agochb101a chromatin remodeling complex subunit B (Swi3):
5.01
GRMZM5G878347
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: September 1st, 2003
Gene Model: June 30th, 2018
23 days agopco098394  :
1.01
   Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: September 25th, 2007
23 days agostp8 sugar transport protein8:
2.08
GRMZM2G159187
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: January 2nd, 2023
Gene Model: December 6th, 2021
23 days agopco128954a  :
2.06
GRMZM2G139900
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: September 25th, 2007
Gene Model: August 13th, 2021
23 days agoarftf12 ARF-transcription factor 12:
3.08
GRMZM2G437460
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: January 29th, 2022
Variation: February 14th, 2022
Gene Model: July 7th, 2017
23 days agorps25 ribosomal protein S25:
4.08
GRMZM2G084868
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: April 14th, 2015
Gene Model: April 15th, 2015
23 days agosut2 sucrose transporter2:
3.04
GRMZM2G307561
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: September 14th, 2013
Variation: February 20th, 2017
Gene Model: April 17th, 2013
23 days agopht2 phosphate transporter protein2:
1.08
GRMZM2G154090
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: June 16th, 2016
Variation: February 4th, 2011
Gene Model: May 27th, 2015
23 days agopht3 phosphate transporter protein3:
 
GRMZM2G045473
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: June 16th, 2016
Variation: December 28th, 2010
Gene Model: May 27th, 2015
23 days agopht4 phosphate transporter protein4:
10.04
GRMZM2G159075
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: June 16th, 2016
Variation: July 14th, 2008
Gene Model: May 27th, 2015
23 days agomstr1 monosaccharide transporter1:
7.00
GRMZM2G135739
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: January 2nd, 2023
Variation: July 14th, 2008
Gene Model: September 17th, 2015
23 days agomstr2 monosaccharide transporter2:
4.04
GRMZM2G141034
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: January 2nd, 2023
Variation: October 19th, 2010
Gene Model: September 17th, 2015
23 days agoarpp2a-3 acidic ribosomal protein P2a-3:
2.01
GRMZM2G010257
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: December 23rd, 2015
Gene Model: August 28th, 2015
23 days agoarpp1a acidic ribosomal protein P1a:
6.00
   Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Variation: January 28th, 2009
23 days agoarpp0 60S acidic ribosomal protein P0:
6.01
GRMZM2G066460
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: January 6th, 2016
Gene Model: August 28th, 2015
23 days agomfsd1 major facilitator superfamily defense1:
 
GRMZM2G161310
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: September 23rd, 2016
Variation: May 9th, 2009
Gene Model: December 29th, 2015
23 days agomfsd2 major facilitator superfamily defense2:
 
GRMZM5G877788
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: September 23rd, 2016
Variation: October 16th, 2010
Gene Model: December 30th, 2015
23 days agofrk1 fructokinase1:
3.05
GRMZM2G086845
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: May 1st, 2010
Gene Model: July 27th, 2016
23 days agomch3 maize CRY1 homolog3:
 
GRMZM2G100462
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: October 14th, 2010
Gene Model: August 23rd, 2018
23 days agopht7 phosphate transporter protein7:
 
GRMZM2G112377
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: June 16th, 2016
Variation: February 4th, 2011
Gene Model: May 27th, 2015
23 days agopht6 phosphate transporter protein6:
 
GRMZM5G881088
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: June 16th, 2016
Variation: June 17th, 2020
Gene Model: May 27th, 2015
23 days agorpl5b 60S ribosomal protein L5-1 homolog b:
 
GRMZM2G163081
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: December 1st, 2019
Variation: April 9th, 2011
Gene Model: July 28th, 2016
23 days agorpl17b ribosomal protein L17b:
 
GRMZM2G702426
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: June 7th, 2013
Gene Model: August 7th, 2014
23 days agotrpp1 trehalose-6-phosphate phosphatase1:
 
GRMZM2G347280
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: October 3rd, 2020
Gene Model: September 15th, 2013
23 days agotrpp9 trehalose-6-phosphate phosphatase9:
 
GRMZM5G840145
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: October 3rd, 2020
Gene Model: September 15th, 2013
23 days agosnrk1a2 SNF1-related kinase alpha1-like2:
 
GRMZM2G180704
Yang, T et al. 2024. Sucrose-associated SnRK1a1-mediated phosphorylation of Opaque2 modulates endosperm filling in maize. Molecular Plant.     Reference: April 15th, 2024
Gene Product: December 4th, 2020
Gene Model: February 13th, 2014
23 days agonrt1 nitrate transport1:
 
GRMZM2G010251
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Gene Model: September 10th, 2014
23 days agonrt3 nitrate transport3:
 
GRMZM2G163866
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Gene Model: September 10th, 2014
23 days agopco072913  :
4.08
GRMZM2G177720
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: September 25th, 2007
Gene Model: April 25th, 2020
23 days agorpl39 ribosomal protein L39:
 
GRMZM2G100467
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Variation: January 13th, 2015
Gene Model: January 13th, 2015
23 days agosut6 sucrose transporter6:
 
GRMZM2G106741
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: September 14th, 2013
Variation: April 13th, 2017
Gene Model: November 3rd, 2015
23 days agoss4 starch synthase4:
 
GRMZM2G044744
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: October 14th, 2016
Gene Model: December 5th, 2015
23 days agopht11 phosphate transporter protein11:
 
GRMZM2G139639
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: June 16th, 2016
Gene Model: June 16th, 2016
23 days agopht12 phosphate transporter protein12:
 
GRMZM2G041595
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: June 16th, 2016
Gene Model: September 12th, 2018
23 days agopht10 phosphate transporter protein10:
 
GRMZM2G075870
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: June 16th, 2016
Gene Model: June 16th, 2016
23 days agopht13 phosphate transporter protein13:
 
GRMZM2G170208
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: June 16th, 2016
Gene Model: June 16th, 2016
23 days agopht8 phosphate transporter protein8:
 
GRMZM2G009779
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: June 16th, 2016
Gene Model: June 16th, 2016
23 days agopht9 phosphate transporter protein9:
 
GRMZM2G070087
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: June 16th, 2016
Gene Model: June 16th, 2016
23 days agoftfh1 flavonoid 3',5'-hydroxylase1:
 
   Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: June 20th, 2018
23 days agospx1 SPX domain-containing membrane protein1:
 
GRMZM2G166976
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: October 9th, 2021
Gene Model: November 21st, 2018
23 days agonrt5 nitrate transport5:
 
GRMZM2G455124
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Gene Model: May 21st, 2019
23 days agotom2 transporter of mugineic acid2:
 
GRMZM2G336448
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: September 23rd, 2016
Gene Model: May 23rd, 2020
23 days agosus6 sucrose synthase6:
 
GRMZM2G045171
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: October 25th, 2006
Gene Model: July 13th, 2020
23 days agobbc1 breast basic conserved homolog1:
 
GRMZM2G145280
Song, LL et al. 2021. 3 Biotech 11:441   AT3G49010 (TAIR) Reference: April 15th, 2024
Gene Product: January 13th, 2020
Gene Model: July 18th, 2020
23 days agorps6b ribosomal proteinS6b:
 
GRMZM5G851698
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Gene Model: September 17th, 2020
23 days agostp4 sugar transport protein4:
 
GRMZM5G801949
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: January 2nd, 2023
Gene Model: October 20th, 2020
23 days agotom4 transporter of mugineic acid4:
 
GRMZM2G029219
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: September 23rd, 2016
Gene Model: October 20th, 2020
23 days agostp3 sugar transport protein3:
 
GRMZM2G374812
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: January 2nd, 2023
Gene Model: January 8th, 2021
23 days agostp5 sugar transport protein5:
 
AC210616.4_FG003
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: January 2nd, 2023
Gene Model: July 8th, 2021
23 days agorpl15c 60S ribosomal protein L15:
 
GRMZM2G024354
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Gene Model: August 18th, 2021
23 days agorps21d 40S ribosomal protein S21d:
 
GRMZM2G125300
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Gene Model: August 18th, 2021
23 days agorpl14b 60S ribosomal protein L14:
 
GRMZM2G028883
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: August 18th, 2021
Gene Model: August 18th, 2021
23 days agospx8 SPX domain-containing membrane protein8:
 
GRMZM2G086430
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: October 9th, 2021
Gene Model: October 9th, 2021
23 days agospx9 SPX domain-containing membrane protein9:
 
GRMZM2G134062
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: October 9th, 2021
Gene Model: October 9th, 2021
23 days agonpf14 nitrate transporter/peptide transporter family14:
 
GRMZM5G827496
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Gene Model: January 2nd, 2022
23 days agostp12 sugar transport protein12:
 
GRMZM2G075229
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: January 2nd, 2023
Gene Model: January 12th, 2022
23 days agostp20 sugar transport protein20:
 
GRMZM2G046700
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: January 2nd, 2023
Gene Model: January 12th, 2022
23 days agostp13 sugar transport protein13:
 
GRMZM2G442546
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: January 2nd, 2023
Gene Model: January 12th, 2022
23 days agostp6 sugar transport protein6:
 
GRMZM5G843141
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: January 2nd, 2023
Gene Model: January 12th, 2022
23 days agostp7 sugar transport protein:
 
   Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: January 2nd, 2023
23 days agostp11 sugar transport protein11:
 
GRMZM2G022440
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: January 2nd, 2023
Gene Model: January 12th, 2022
23 days agostp14 sugar transport protein14:
 
GRMZM2G420004
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: January 2nd, 2023
Gene Model: January 12th, 2022
23 days agostp17 sugar transport protein17:
 
GRMZM2G117146
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: January 2nd, 2023
Gene Model: January 12th, 2022
23 days agostp18 sugar transport protein18:
 
GRMZM2G160614
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: January 2nd, 2023
Gene Model: January 12th, 2022
23 days agostp21 sugar transport protein21:
 
GRMZM2G404965
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: January 2nd, 2023
Gene Model: January 12th, 2022
23 days agostp23 sugar transport protein23:
 
GRMZM2G079342
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: January 2nd, 2023
Gene Model: January 12th, 2022
23 days agoena1 efflux transporter of Na1:
 
   Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: January 18th, 2022
23 days agorps27b ribosomal protein S27b:
5.04
GRMZM2G377600
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: March 14th, 2015
Gene Model: March 14th, 2015
23 days agorps12a ribosomal proteinS12 (homolog):
6.07
GRMZM2G132929
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Gene Model: December 26th, 2019
23 days agopco093173  :
6.06
GRMZM2G044137
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: September 25th, 2007
Gene Model: November 22nd, 2019
23 days agosnrkII2 SnRK2 serine threonine protein kinase2:
7.04
GRMZM2G056732
Yang, T et al. 2024. Sucrose-associated SnRK1a1-mediated phosphorylation of Opaque2 modulates endosperm filling in maize. Molecular Plant.     Reference: April 15th, 2024
Gene Product: April 14th, 2018
Gene Model: February 11th, 2015
23 days agoIDP243  :
1.07
GRMZM2G152552
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: March 31st, 2005
Gene Model: February 14th, 2019
23 days agomagi7806  :
1.10
GRMZM2G165619
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: April 8th, 2021
Gene Model: February 16th, 2019
23 days agoIDP3943  :
1.04
GRMZM2G168674
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: March 31st, 2005
Gene Model: March 24th, 2021
23 days agoIDP4043  :
1.01
GRMZM2G092719
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: March 31st, 2005
Gene Model: April 10th, 2021
23 days agoIDP2449  :
2.04
GRMZM2G065073
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: March 31st, 2005
Gene Model: February 19th, 2019
23 days agorpl12 ribosomal protein L12:
2.04
AC196489.3_FG002
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Variation: March 31st, 2005
Gene Model: February 19th, 2019
23 days agoIDP469  :
2.08
GRMZM2G010991
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: March 31st, 2005
Gene Model: February 20th, 2019
23 days agoIDP661  :
2.09
GRMZM2G111172
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: March 31st, 2005
Gene Model: February 20th, 2019
23 days agoIDP4031  :
3.05
GRMZM2G171484
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: March 31st, 2005
Gene Model: May 15th, 2021
23 days agomagi92568  :
6.05
GRMZM5G850966
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: March 31st, 2005
Gene Model: February 19th, 2021
23 days agoIDP764  :
6.05
GRMZM2G078985
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: March 31st, 2005
Gene Model: July 2nd, 2021
23 days agomagi99589  :
7.03
GRMZM5G870752
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: March 31st, 2005
Gene Model: February 4th, 2019
23 days agoIDP2462  :
9.06
GRMZM2G138589
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Variation: March 31st, 2005
Gene Model: January 22nd, 2019
23 days agomagi104697  :
9.03
GRMZM2G074085
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: March 31st, 2005
Gene Model: January 25th, 2019
23 days agoIDP245  :
10.04
GRMZM2G043737
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: March 31st, 2005
Gene Model: January 2nd, 2018
23 days agoIDP3950  :
10.04
GRMZM2G124411
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: March 31st, 2005
Gene Model: July 20th, 2021
23 days agorps10 ribosomal protein S10:
 
GRMZM2G095511
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: February 13th, 2008
Variation: February 13th, 2008
Gene Model: April 15th, 2015
23 days agocsu36c(rpL19)  :
3.09
GRMZM2G116135
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Variation: March 17th, 2021
Gene Model: February 25th, 2019
23 days agostp19 sugar transport protein19:
7.02
GRMZM2G029153
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: January 2nd, 2023
Gene Model: July 24th, 2020
23 days agorpl44 ribosomal protein L44:
7.03
GRMZM2G009412
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Variation: January 24th, 2009
Gene Model: June 1st, 2017
23 days agoarpp40 acidic ribosomal protein P40:
9.07
GRMZM2G126821
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Variation: August 27th, 2015
Gene Model: August 28th, 2015
23 days agorps4 ribosomal protein S4:
5.00
GRMZM2G125271
Song, LL et al. 2021. 3 Biotech 11:441     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Variation: May 21st, 2009
Gene Model: August 7th, 2014
23 days agoost1 oligosaccharide transferase1:
7.02
GRMZM2G462325
Xiaowan Hou et al. 2024. Two maize homologs of mammalian proton-coupled folate transporter, ZmMFS_1-62 and ZmMFS_1-73, are essential to salt and drought tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108623.     Reference: April 15th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: December 28th, 2016
26 days agomrpa23 multidrug resistance associated protein23:
 
   Li, PC et al. 2024. Genomic basis determining root system architecture in maize. Theor Appl Genet. 137:102.     Reference: April 12th, 2024
Gene Product: July 11th, 2019
26 days agoereb229 AP2-EREBP-transcription factor 229:
 
   Xiang, Y et al. 2024. Autophagy receptor ZmNBR1 promotes the autophagic degradation of ZmBRI1a and enhances drought tolerance in maize. J Integr Plant Biol. :doi: 10.1111/jipb.13662.     Reference: April 12th, 2024
Gene Product: July 5th, 2019
26 days agoprp19 pathogenesis-related protein19:
 
   Ronglan Li et al. 2024. Meta-Quantitative Trait Loci Analysis and Candidate Gene Mining for Drought Tolerance-Associated Traits in Maize (Zea mays L.) Int J Mol Sci. 25:4295.     Reference: April 12th, 2024
Gene Product: December 12th, 2022
26 days agoprp13 pathogenesis-related protein13:
 
   Ronglan Li et al. 2024. Meta-Quantitative Trait Loci Analysis and Candidate Gene Mining for Drought Tolerance-Associated Traits in Maize (Zea mays L.) Int J Mol Sci. 25:4295.     Reference: April 12th, 2024
Gene Product: December 12th, 2022
26 days agopebp3 phosphatidylethanolamine-binding protein3:
 
   Ronglan Li et al. 2024. Meta-Quantitative Trait Loci Analysis and Candidate Gene Mining for Drought Tolerance-Associated Traits in Maize (Zea mays L.) Int J Mol Sci. 25:4295.     Reference: April 12th, 2024
Gene Product: March 19th, 2024
Variation: December 15th, 2010
26 days agopebp6 phosphatidylethanolamine-binding protein6:
 
   Ronglan Li et al. 2024. Meta-Quantitative Trait Loci Analysis and Candidate Gene Mining for Drought Tolerance-Associated Traits in Maize (Zea mays L.) Int J Mol Sci. 25:4295.     Reference: April 12th, 2024
Gene Product: March 19th, 2024
Variation: December 15th, 2010
26 days agobz1 bronze1:
9.02
   Deng, M et al. 2024. Combining association with linkage mapping to dissect the phenolamides metabolism of the maize kernel Frontiers in Plant Science. 15:1376405.     Reference: April 12th, 2024
Gene Product: July 4th, 2018
Variation: December 17th, 2022
26 days agog2 golden plant2:
3.00 - 3.01
GRMZM2G087804
Li, PC et al. 2024. Genomic basis determining root system architecture in maize. Theor Appl Genet. 137:102.     Reference: April 12th, 2024
Gene Product: July 11th, 2019
Variation: October 24th, 2017
Gene Model: August 30th, 2013
26 days agors2 rough sheath2:
1.05
   Li, PC et al. 2024. Genomic basis determining root system architecture in maize. Theor Appl Genet. 137:102.     Reference: April 12th, 2024
Gene Product: September 1st, 2003
Variation: May 9th, 2009
26 days agoarftf25 ARF-transcription factor 25:
8.06
GRMZM2G116557
Li, PC et al. 2024. Genomic basis determining root system architecture in maize. Theor Appl Genet. 137:102.     Reference: April 12th, 2024
Gene Product: January 29th, 2022
Variation: August 22nd, 2017
Gene Model: August 22nd, 2017
26 days agoiaa38 Aux/IAA-transcription factor 38:
8.04
GRMZM2G035465
Li, PC et al. 2024. Genomic basis determining root system architecture in maize. Theor Appl Genet. 137:102.     Reference: April 12th, 2024
Variation: March 12th, 2022
Gene Model: September 19th, 2018
26 days agoarr2 ARR-B-transcription factor 2:
 
   Li, PC et al. 2024. Genomic basis determining root system architecture in maize. Theor Appl Genet. 137:102.     Reference: April 12th, 2024
Gene Product: June 30th, 2017
26 days agopip1b plasma membrane intrinsic protein1:
5.06
   Xiang, Y et al. 2024. Autophagy receptor ZmNBR1 promotes the autophagic degradation of ZmBRI1a and enhances drought tolerance in maize. J Integr Plant Biol. :doi: 10.1111/jipb.13662.     Reference: April 12th, 2024
Gene Product: January 27th, 2022
Variation: April 26th, 2016
26 days agopip2a plasma membrane intrinsic protein2:
2.03
   Xiang, Y et al. 2024. Autophagy receptor ZmNBR1 promotes the autophagic degradation of ZmBRI1a and enhances drought tolerance in maize. J Integr Plant Biol. :doi: 10.1111/jipb.13662.     Reference: April 12th, 2024
Gene Product: September 1st, 2003
Variation: January 25th, 2020
26 days agocal1 calmodulin1:
5.06
   Ronglan Li et al. 2024. Meta-Quantitative Trait Loci Analysis and Candidate Gene Mining for Drought Tolerance-Associated Traits in Maize (Zea mays L.) Int J Mol Sci. 25:4295.     Reference: April 12th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
26 days agolox1 lipoxygenase1:
3.06
   Ronglan Li et al. 2024. Meta-Quantitative Trait Loci Analysis and Candidate Gene Mining for Drought Tolerance-Associated Traits in Maize (Zea mays L.) Int J Mol Sci. 25:4295.     Reference: April 12th, 2024
Gene Product: November 13th, 2014
Variation: July 24th, 2008
26 days agoobf4 octopine synthase binding factor4:
3.06
GRMZM2G125243
Ronglan Li et al. 2024. Meta-Quantitative Trait Loci Analysis and Candidate Gene Mining for Drought Tolerance-Associated Traits in Maize (Zea mays L.) Int J Mol Sci. 25:4295.     Reference: April 12th, 2024
Gene Product: September 1st, 2003
Variation: October 29th, 2010
Gene Model: April 11th, 2013
26 days agocdc3 cell division control protein homolog3:
3.10
GRMZM2G495626
Li, PC et al. 2024. Genomic basis determining root system architecture in maize. Theor Appl Genet. 137:102.     Reference: April 12th, 2024
Gene Product: October 19th, 2022
Gene Model: December 21st, 2018
26 days agoeil1 ethylene insensitive-like1:
9.05
GRMZM2G317584
Ronglan Li et al. 2024. Meta-Quantitative Trait Loci Analysis and Candidate Gene Mining for Drought Tolerance-Associated Traits in Maize (Zea mays L.) Int J Mol Sci. 25:4295.     Reference: April 12th, 2024
Variation: August 6th, 2008
Gene Model: August 29th, 2013
26 days agoeil3 ethylene insensitive-like3:
1.04
GRMZM2G033570
Ronglan Li et al. 2024. Meta-Quantitative Trait Loci Analysis and Candidate Gene Mining for Drought Tolerance-Associated Traits in Maize (Zea mays L.) Int J Mol Sci. 25:4295.     Reference: April 12th, 2024
Variation: August 6th, 2008
Gene Model: August 29th, 2013
26 days agopin3 PIN-formed protein3:
4.08
GRMZM2G149184
Li, PC et al. 2024. Genomic basis determining root system architecture in maize. Theor Appl Genet. 137:102.     Reference: April 12th, 2024
Gene Product: April 3rd, 2024
Gene Model: June 7th, 2012
26 days agobri1a brassinosteroid insensitive1a:
 
GRMZM2G048294
Xiang, Y et al. 2024. Autophagy receptor ZmNBR1 promotes the autophagic degradation of ZmBRI1a and enhances drought tolerance in maize. J Integr Plant Biol. :doi: 10.1111/jipb.13662.   AT4G39400 (TAIR)
LOC_Os01g52050 (MSU/TIGR)
Reference: April 12th, 2024
Gene Product: June 23rd, 2021
Variation: July 17th, 2015
Gene Model: July 16th, 2015
26 days agoprh15 protein phosphatase homolog15:
 
GRMZM2G383807
Ronglan Li et al. 2024. Meta-Quantitative Trait Loci Analysis and Candidate Gene Mining for Drought Tolerance-Associated Traits in Maize (Zea mays L.) Int J Mol Sci. 25:4295.     Reference: April 12th, 2024
Gene Product: October 25th, 2021
Gene Model: October 18th, 2016
26 days agopyl3 pyrabactin resistance-like protein3:
 
GRMZM2G154987
Ronglan Li et al. 2024. Meta-Quantitative Trait Loci Analysis and Candidate Gene Mining for Drought Tolerance-Associated Traits in Maize (Zea mays L.) Int J Mol Sci. 25:4295.     Reference: April 12th, 2024
Gene Product: January 31st, 2021
Gene Model: April 21st, 2018
26 days agoopst2 open stomate2:
 
GRMZM2G171435
Ronglan Li et al. 2024. Meta-Quantitative Trait Loci Analysis and Candidate Gene Mining for Drought Tolerance-Associated Traits in Maize (Zea mays L.) Int J Mol Sci. 25:4295.   AT4G33950 (TAIR) Reference: April 12th, 2024
Gene Product: April 14th, 2018
Gene Model: June 11th, 2019
26 days agoaas3 auxin amido synthetase3:
 
GRMZM2G410567
Ronglan Li et al. 2024. Meta-Quantitative Trait Loci Analysis and Candidate Gene Mining for Drought Tolerance-Associated Traits in Maize (Zea mays L.) Int J Mol Sci. 25:4295.   AT1G28130 (TAIR) Reference: April 12th, 2024
Gene Product: October 21st, 2019
Gene Model: October 21st, 2019
26 days agoaas12 auxin amido synthetase12:
 
GRMZM2G366873
Ronglan Li et al. 2024. Meta-Quantitative Trait Loci Analysis and Candidate Gene Mining for Drought Tolerance-Associated Traits in Maize (Zea mays L.) Int J Mol Sci. 25:4295.     Reference: April 12th, 2024
Gene Product: October 21st, 2019
Gene Model: October 21st, 2019
26 days agouce16 ubiquitin-conjugating enzyme16:
 
GRMZM2G312693
Ronglan Li et al. 2024. Meta-Quantitative Trait Loci Analysis and Candidate Gene Mining for Drought Tolerance-Associated Traits in Maize (Zea mays L.) Int J Mol Sci. 25:4295.     Reference: April 12th, 2024
Gene Product: December 19th, 2019
Gene Model: December 19th, 2019
26 days agoarr8 ARR-B-transcription factor 8:
5.08
GRMZM2G479110
Li, PC et al. 2024. Genomic basis determining root system architecture in maize. Theor Appl Genet. 137:102.     Reference: April 12th, 2024
Gene Product: June 30th, 2017
Variation: June 30th, 2017
Gene Model: June 30th, 2017
26 days agodrg10 dark response gene10:
 
GRMZM2G107199
Xiang, Y et al. 2024. Autophagy receptor ZmNBR1 promotes the autophagic degradation of ZmBRI1a and enhances drought tolerance in maize. J Integr Plant Biol. :doi: 10.1111/jipb.13662.     Reference: April 12th, 2024
Variation: January 25th, 2021
Gene Model: June 6th, 2020
26 days agoprp8 pathogenesis-related protein8:
 
GRMZM2G456997
Ronglan Li et al. 2024. Meta-Quantitative Trait Loci Analysis and Candidate Gene Mining for Drought Tolerance-Associated Traits in Maize (Zea mays L.) Int J Mol Sci. 25:4295.     Reference: April 12th, 2024
Gene Product: December 12th, 2022
Gene Model: June 16th, 2020
26 days agocyc23 cyclin23:
 
GRMZM2G061287
Li, PC et al. 2024. Genomic basis determining root system architecture in maize. Theor Appl Genet. 137:102.     Reference: April 12th, 2024
Gene Product: June 26th, 2009
Gene Model: January 11th, 2021
26 days agobsk1 brassinosteroid-signaling kinase1:
 
GRMZM2G127050
Xiang, Y et al. 2024. Autophagy receptor ZmNBR1 promotes the autophagic degradation of ZmBRI1a and enhances drought tolerance in maize. J Integr Plant Biol. :doi: 10.1111/jipb.13662.     Reference: April 12th, 2024
Gene Product: May 13th, 2014
Gene Model: April 19th, 2021
26 days agoact10 actin10:
 
GRMZM2G030169
Xiang, Y et al. 2024. Autophagy receptor ZmNBR1 promotes the autophagic degradation of ZmBRI1a and enhances drought tolerance in maize. J Integr Plant Biol. :doi: 10.1111/jipb.13662.     Reference: April 12th, 2024
Gene Product: September 1st, 2003
Gene Model: April 20th, 2021
26 days agogsk2 glycogen synthase kinase2:
 
GRMZM2G472625
Xiang, Y et al. 2024. Autophagy receptor ZmNBR1 promotes the autophagic degradation of ZmBRI1a and enhances drought tolerance in maize. J Integr Plant Biol. :doi: 10.1111/jipb.13662.     Reference: April 12th, 2024
Gene Product: February 22nd, 2022
Gene Model: June 24th, 2021
26 days agoprp15 pathogenesis-related protein15:
 
GRMZM2G053493
Ronglan Li et al. 2024. Meta-Quantitative Trait Loci Analysis and Candidate Gene Mining for Drought Tolerance-Associated Traits in Maize (Zea mays L.) Int J Mol Sci. 25:4295.     Reference: April 12th, 2024
Gene Product: December 12th, 2022
Gene Model: August 9th, 2022
26 days agoago1 argonaute1:
8.05
GRMZM2G162525
Li, PC et al. 2024. Genomic basis determining root system architecture in maize. Theor Appl Genet. 137:102.     Reference: April 12th, 2024
Gene Product: August 12th, 2016
Variation: November 5th, 2010
Gene Model: January 30th, 2015
26 days agoasc1 asceapen1:
7.02
GRMZM2G140633
Li, PC et al. 2024. Genomic basis determining root system architecture in maize. Theor Appl Genet. 137:102.     Reference: April 12th, 2024
Gene Product: June 26th, 2009
Variation: June 29th, 2009
Gene Model: December 8th, 2014
26 days agocko3 cytokinin oxidase 3:
8.06
GRMZM2G167220
Li, PC et al. 2024. Genomic basis determining root system architecture in maize. Theor Appl Genet. 137:102.     Reference: April 12th, 2024
Gene Product: March 19th, 2014
Variation: February 27th, 2008
Gene Model: March 21st, 2014
26 days agoumi11 Ustilago maydis induced11:
7.00
GRMZM2G450866
Ronglan Li et al. 2024. Meta-Quantitative Trait Loci Analysis and Candidate Gene Mining for Drought Tolerance-Associated Traits in Maize (Zea mays L.) Int J Mol Sci. 25:4295.     Reference: April 12th, 2024
Gene Product: January 12th, 2015
Variation: January 11th, 2015
Gene Model: January 11th, 2015
27 days agolg1 liguleless1:
2.01
   Bertolini, E et al. 2023. Regulatory variation controlling architectural pleiotropy in maize bioRxiv preprint. :doi: 10.1101/2023.08.19.553731.     Reference: April 11th, 2024
Gene Product: December 18th, 2014
Variation: August 17th, 2020
27 days agolg4 liguleless4:
8.05
GRMZM2G094241
Bertolini, E et al. 2023. Regulatory variation controlling architectural pleiotropy in maize bioRxiv preprint. :doi: 10.1101/2023.08.19.553731.     Reference: April 11th, 2024
Gene Product: August 22nd, 2014
Variation: May 18th, 2012
Gene Model: May 24th, 2012
27 days agotb1 teosinte branched1:
1.09
   Mascher, M et al. 2024. Are cereal grasses a single genetic system? Nature Plants. :doi: 10.1038/s41477-024-01674-3.     Reference: April 11th, 2024
Gene Product: September 14th, 2016
Variation: December 28th, 2023
27 days agozhd21 ZF-HD-transcription factor 21:
3.05
GRMZM5G821755
Bertolini, E et al. 2023. Regulatory variation controlling architectural pleiotropy in maize bioRxiv preprint. :doi: 10.1101/2023.08.19.553731.     Reference: April 11th, 2024
Gene Product: August 24th, 2022
Variation: April 11th, 2024
Gene Model: March 21st, 2018
27 days agowab1 Wavy auricles in blades1:
2.06 - 2.07
GRMZM2G110242
Bertolini, E et al. 2023. Regulatory variation controlling architectural pleiotropy in maize bioRxiv preprint. :doi: 10.1101/2023.08.19.553731.   LOC_Os09g24480 (MSU/TIGR)
Os09g0410500 (Gramene)
Reference: April 11th, 2024
Gene Product: September 14th, 2016
Variation: November 2nd, 2014
Gene Model: November 2nd, 2014
27 days agoabi41 ABI3-VP1-transcription factor 41:
 
   Bertolini, E et al. 2023. Regulatory variation controlling architectural pleiotropy in maize bioRxiv preprint. :doi: 10.1101/2023.08.19.553731.     Reference: April 11th, 2024
Gene Product: January 29th, 2022
Variation: July 19th, 2021
27 days agoereb53 AP2-EREBP-transcription factor 53:
 
   McFarland, FL et al. 2024. History and current status of embryogenic culture-based tissue culture, transformation and gene editing of maize (Zea mays L.). Plant Genome. :e20451.   LOC_Os1g67410 (MSU/TIGR) Reference: April 11th, 2024
Gene Product: July 5th, 2019
27 days agoereb92 AP2-EREBP-transcription factor 92:
 
   Bertolini, E et al. 2023. Regulatory variation controlling architectural pleiotropy in maize bioRxiv preprint. :doi: 10.1101/2023.08.19.553731.     Reference: April 11th, 2024
Variation: November 17th, 2023
27 days agodof25 C2C2-Dof-transcription factor 25:
 
   Bertolini, E et al. 2023. Regulatory variation controlling architectural pleiotropy in maize bioRxiv preprint. :doi: 10.1101/2023.08.19.553731.     Reference: April 11th, 2024
Gene Product: July 4th, 2022
27 days agowox2a WUSCHEL-related homeobox 2a`:
 
   McFarland, FL et al. 2024. History and current status of embryogenic culture-based tissue culture, transformation and gene editing of maize (Zea mays L.). Plant Genome. :e20451.     Reference: April 11th, 2024
Gene Product: August 25th, 2017
27 days agozhd1 ZF-HD-transcription factor 1:
 
   Bertolini, E et al. 2023. Regulatory variation controlling architectural pleiotropy in maize bioRxiv preprint. :doi: 10.1101/2023.08.19.553731.     Reference: April 11th, 2024
Gene Product: August 24th, 2022
Variation: April 11th, 2024
27 days agozhd15 ZF-HD-transcription factor 15:
 
   Bertolini, E et al. 2023. Regulatory variation controlling architectural pleiotropy in maize bioRxiv preprint. :doi: 10.1101/2023.08.19.553731.     Reference: April 11th, 2024
Gene Product: August 24th, 2022
27 days agolpa2 low phytic acid2:
1.05
GRMZM2G456626
Indhu, SM et al. 2024. Genetic diversity and decoding the genetics of phytic acid by investigating the inheritance of lpa 2 allele in maize (Zea mays L.) Electron J Plant Breed. 15:110-119.     Reference: April 11th, 2024
Gene Product: April 22nd, 2013
Variation: April 22nd, 2013
Gene Model: April 23rd, 2013
27 days agogn1 gnarley1:
2.10
   Bertolini, E et al. 2023. Regulatory variation controlling architectural pleiotropy in maize bioRxiv preprint. :doi: 10.1101/2023.08.19.553731.     Reference: April 11th, 2024
Gene Product: September 1st, 2003
Variation: May 30th, 2014
27 days agoyab10 yabby homolog10:
1.07
   Mascher, M et al. 2024. Are cereal grasses a single genetic system? Nature Plants. :doi: 10.1038/s41477-024-01674-3.     Reference: April 11th, 2024
Gene Product: October 16th, 2015
Variation: March 23rd, 2009
27 days agoyab12 C2C2-YABBY-transcription factor 12:
 
GRMZM2G085873
Mascher, M et al. 2024. Are cereal grasses a single genetic system? Nature Plants. :doi: 10.1038/s41477-024-01674-3.     Reference: April 11th, 2024
Gene Product: October 16th, 2015
Gene Model: October 16th, 2015
27 days agoyab6 C2C2-YABBY-transcription factor 6:
 
GRMZM2G074124
Mascher, M et al. 2024. Are cereal grasses a single genetic system? Nature Plants. :doi: 10.1038/s41477-024-01674-3.     Reference: April 11th, 2024
Gene Product: October 16th, 2015
Variation: May 6th, 2020
Gene Model: July 3rd, 2012
27 days agobri1b brassinosteroid insensitive1b:
 
GRMZM2G449830
Bertolini, E et al. 2023. Regulatory variation controlling architectural pleiotropy in maize bioRxiv preprint. :doi: 10.1101/2023.08.19.553731.     Reference: April 11th, 2024
Gene Product: June 23rd, 2021
Variation: July 17th, 2015
Gene Model: July 16th, 2015
27 days agoyab13 C2C2-YABBY-transcription factor 13:
 
   Mascher, M et al. 2024. Are cereal grasses a single genetic system? Nature Plants. :doi: 10.1038/s41477-024-01674-3.     Reference: April 11th, 2024
Gene Product: October 16th, 2015
27 days agogsk1 glycogen synthase kinase1:
 
GRMZM2G045330
Bertolini, E et al. 2023. Regulatory variation controlling architectural pleiotropy in maize bioRxiv preprint. :doi: 10.1101/2023.08.19.553731.     Reference: April 11th, 2024
Gene Product: February 22nd, 2022
Gene Model: February 22nd, 2022
27 days agofun1 feminised upright narrow1:
 
GRMZM2G022651
Bertolini, E et al. 2023. Regulatory variation controlling architectural pleiotropy in maize bioRxiv preprint. :doi: 10.1101/2023.08.19.553731.   AT3G58770 (TAIR) Reference: April 11th, 2024
Variation: March 12th, 2022
Gene Model: March 12th, 2022
28 days agopor2 porin2:
10.06
GRMZM2G125023
Deyin Wang et al. 2024. Aquaporin ZmTIP2;3 Promotes Drought Resistance of Maize through Symbiosis with Arbuscular Mycorrhizal Fungi Int J Mol Sci. 25:4205.     Reference: April 10th, 2024
Gene Product: January 27th, 2022
Variation: April 10th, 2024
Gene Model: February 5th, 2015
29 days agohggt1 homogentisate geranylgeranyl transferase1:
 
GRMZM2G173358
My Abdelmajid Kassem et al. 2024. A Summary of Two Decades of QTL and Candidate Genes That Control Seed Tocopherol Contents in Maize (Zea mays L.) Genes. 15:472.     Reference: April 9th, 2024
Gene Product: January 8th, 2018
Gene Model: June 26th, 2013
29 days agopyk2 pyruvate kinase2:
10.01
GRMZM2G004534
My Abdelmajid Kassem et al. 2024. A Summary of Two Decades of QTL and Candidate Genes That Control Seed Tocopherol Contents in Maize (Zea mays L.) Genes. 15:472.     Reference: April 9th, 2024
Gene Product: April 8th, 2011
Variation: April 6th, 2007
Gene Model: July 28th, 2016
29 days agosxd1 sucrose export defective1:
5.04
   My Abdelmajid Kassem et al. 2024. A Summary of Two Decades of QTL and Candidate Genes That Control Seed Tocopherol Contents in Maize (Zea mays L.) Genes. 15:472.     Reference: April 9th, 2024
Gene Product: December 1st, 2012
Variation: August 7th, 2012
29 days agovte5 vitamin E synthesis5:
2.01
   My Abdelmajid Kassem et al. 2024. A Summary of Two Decades of QTL and Candidate Genes That Control Seed Tocopherol Contents in Maize (Zea mays L.) Genes. 15:472.     Reference: April 9th, 2024
Gene Product: June 6th, 2022
29 days agoggh1 geranylgeranyl hydrogenase1:
 
GRMZM2G105644
My Abdelmajid Kassem et al. 2024. A Summary of Two Decades of QTL and Candidate Genes That Control Seed Tocopherol Contents in Maize (Zea mays L.) Genes. 15:472.     Reference: April 9th, 2024
Gene Product: October 4th, 2014
Gene Model: October 4th, 2014
29 days agoggh2 geranylgeranyl hydrogenase2:
 
GRMZM2G419111
My Abdelmajid Kassem et al. 2024. A Summary of Two Decades of QTL and Candidate Genes That Control Seed Tocopherol Contents in Maize (Zea mays L.) Genes. 15:472.     Reference: April 9th, 2024
Gene Product: October 4th, 2014
Gene Model: October 4th, 2014
29 days agovim102 variant in methylation102:
 
GRMZM2G339151
Haoxiang Yang et al. 2024. QTL mapping for plant height and ear height using bi-parental immortalized heterozygous populations in maize. Frontiers in Plant Science. 15:1371394.     Reference: April 9th, 2024
Variation: December 22nd, 2014
Gene Model: December 22nd, 2014
29 days agootp51 organelle transcript processing51:
 
GRMZM2G325019
My Abdelmajid Kassem et al. 2024. A Summary of Two Decades of QTL and Candidate Genes That Control Seed Tocopherol Contents in Maize (Zea mays L.) Genes. 15:472.     Reference: April 9th, 2024
Gene Product: December 27th, 2016
Variation: October 20th, 2017
Gene Model: February 17th, 2015
29 days agocle16 clavata3/esr-related16:
 
GRMZM5G818232
My Abdelmajid Kassem et al. 2024. A Summary of Two Decades of QTL and Candidate Genes That Control Seed Tocopherol Contents in Maize (Zea mays L.) Genes. 15:472.     Reference: April 9th, 2024
Gene Product: February 22nd, 2021
Gene Model: September 17th, 2016
29 days agomcm1 minichromosome maintenance1:
 
GRMZM2G065205
Haoxiang Yang et al. 2024. QTL mapping for plant height and ear height using bi-parental immortalized heterozygous populations in maize. Frontiers in Plant Science. 15:1371394.   AT4G02060 (TAIR) Reference: April 9th, 2024
Gene Product: August 2nd, 2017
Gene Model: July 30th, 2017
29 days agohpt1 homogentisate phytyltransferase1:
 
GRMZM2G048472
My Abdelmajid Kassem et al. 2024. A Summary of Two Decades of QTL and Candidate Genes That Control Seed Tocopherol Contents in Maize (Zea mays L.) Genes. 15:472.     Reference: April 9th, 2024
Gene Product: January 8th, 2018
Gene Model: January 8th, 2018
29 days agohggt3 homogentisate geranylgeranyltransferase3:
 
GRMZM5G848876
My Abdelmajid Kassem et al. 2024. A Summary of Two Decades of QTL and Candidate Genes That Control Seed Tocopherol Contents in Maize (Zea mays L.) Genes. 15:472.     Reference: April 9th, 2024
Gene Product: January 8th, 2018
Gene Model: January 8th, 2018
29 days agohggt2 homogentisate geranylgeranyltransferase3:
 
GRMZM2G410644
My Abdelmajid Kassem et al. 2024. A Summary of Two Decades of QTL and Candidate Genes That Control Seed Tocopherol Contents in Maize (Zea mays L.) Genes. 15:472.     Reference: April 9th, 2024
Gene Product: January 8th, 2018
Gene Model: January 8th, 2018
29 days agovte4 vitamin E synthesis4:
5.06
GRMZM2G173358
My Abdelmajid Kassem et al. 2024. A Summary of Two Decades of QTL and Candidate Genes That Control Seed Tocopherol Contents in Maize (Zea mays L.) Genes. 15:472.     Reference: April 9th, 2024
Gene Product: June 26th, 2013
Gene Model: June 26th, 2013
29 days agoaaap36 amino acid/auxin permease36:
 
GRMZM2G161641
My Abdelmajid Kassem et al. 2024. A Summary of Two Decades of QTL and Candidate Genes That Control Seed Tocopherol Contents in Maize (Zea mays L.) Genes. 15:472.     Reference: April 9th, 2024
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
29 days agocry1 cryptochrome1:
5.05
GRMZM2G024739
My Abdelmajid Kassem et al. 2024. A Summary of Two Decades of QTL and Candidate Genes That Control Seed Tocopherol Contents in Maize (Zea mays L.) Genes. 15:472.     Reference: April 9th, 2024
Gene Product: August 31st, 2018
Gene Model: August 31st, 2018
29 days agoZm00001d009150  :
 
GRMZM2G003022
My Abdelmajid Kassem et al. 2024. A Summary of Two Decades of QTL and Candidate Genes That Control Seed Tocopherol Contents in Maize (Zea mays L.) Genes. 15:472.     Reference: April 9th, 2024
Gene Product: June 24th, 2022
Gene Model: June 24th, 2022
29 days agoIDP109  :
4.03
GRMZM5G892742
My Abdelmajid Kassem et al. 2024. A Summary of Two Decades of QTL and Candidate Genes That Control Seed Tocopherol Contents in Maize (Zea mays L.) Genes. 15:472.     Reference: April 9th, 2024
Variation: March 31st, 2005
Gene Model: May 21st, 2021
29 days agohppd1 4-hydroxyphenylpyruvate dioxygenase 1:
5.04
GRMZM2G088396
My Abdelmajid Kassem et al. 2024. A Summary of Two Decades of QTL and Candidate Genes That Control Seed Tocopherol Contents in Maize (Zea mays L.) Genes. 15:472.     Reference: April 9th, 2024
Gene Product: June 2nd, 2005
Variation: October 22nd, 2020
Gene Model: July 28th, 2016
29 days agoapg1 albino or pale green mutant1:
1.05
GRMZM2G082998
My Abdelmajid Kassem et al. 2024. A Summary of Two Decades of QTL and Candidate Genes That Control Seed Tocopherol Contents in Maize (Zea mays L.) Genes. 15:472.     Reference: April 9th, 2024
Variation: December 30th, 2015
Gene Model: February 17th, 2015
32 days agotru1 tassels replace upper ears1:
3.04 - 3.10
GRMZM2G039867
Hao Wu et al. 2024. A multiplexed transcriptomic analysis of a plant embryonic hourglass bioRxiv preprint. :doi: 10.1101/2024.04.04.588207.     Reference: April 6th, 2024
Gene Product: December 17th, 2013
Variation: December 18th, 2013
Gene Model: December 17th, 2013
32 days agowox3a WUSCHEL homeobox 3A:
6.01
GRMZM2G122537
Hao Wu et al. 2024. A multiplexed transcriptomic analysis of a plant embryonic hourglass bioRxiv preprint. :doi: 10.1101/2024.04.04.588207.     Reference: April 6th, 2024
Gene Product: August 25th, 2017
Variation: August 19th, 2018
Gene Model: August 18th, 2018
32 days agoarftf3 ARF-transcription factor 3:
 
   Hao Wu et al. 2024. A multiplexed transcriptomic analysis of a plant embryonic hourglass bioRxiv preprint. :doi: 10.1101/2024.04.04.588207.     Reference: April 6th, 2024
Gene Product: January 29th, 2022
32 days agons1 narrow sheath1:
2.05
   Hao Wu et al. 2024. A multiplexed transcriptomic analysis of a plant embryonic hourglass bioRxiv preprint. :doi: 10.1101/2024.04.04.588207.     Reference: April 6th, 2024
Gene Product: August 25th, 2017
Variation: February 20th, 2015
32 days agoyab14 yabby14:
10.05
   Hao Wu et al. 2024. A multiplexed transcriptomic analysis of a plant embryonic hourglass bioRxiv preprint. :doi: 10.1101/2024.04.04.588207.     Reference: April 6th, 2024
Gene Product: October 16th, 2015
Variation: March 23rd, 2009
32 days agoifa1 indeterminate floral apex1:
 
GRMZM2G088309
Hao Wu et al. 2024. A multiplexed transcriptomic analysis of a plant embryonic hourglass bioRxiv preprint. :doi: 10.1101/2024.04.04.588207.   AT1G69180 (TAIR)
LOC_Os03g11600 (MSU/TIGR)
Reference: April 6th, 2024
Gene Product: October 16th, 2015
Variation: July 13th, 2017
Gene Model: October 16th, 2015
32 days agotraf8 TNF receptor-associated factor 8:
 
GRMZM2G026556
Hao Wu et al. 2024. A multiplexed transcriptomic analysis of a plant embryonic hourglass bioRxiv preprint. :doi: 10.1101/2024.04.04.588207.     Reference: April 6th, 2024
Gene Product: June 30th, 2021
Gene Model: May 20th, 2019
32 days agochn22 chitinase22:
 
GRMZM2G099454
Hao Wu et al. 2024. A multiplexed transcriptomic analysis of a plant embryonic hourglass bioRxiv preprint. :doi: 10.1101/2024.04.04.588207.     Reference: April 6th, 2024
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
32 days agochn32 chitinase32:
 
GRMZM2G099454
Hao Wu et al. 2024. A multiplexed transcriptomic analysis of a plant embryonic hourglass bioRxiv preprint. :doi: 10.1101/2024.04.04.588207.     Reference: April 6th, 2024
Gene Product: May 31st, 2021
Gene Model: June 1st, 2021
33 days agogsk12 glycogen synthase kinase12:
 
   Zebosi, B et al. 2024. Conservation and diversification of genes regulating brassinosteroid biosynthesis and signaling bioRxiv preprint. :doi: 10.1101/2024.03.26.586792.     Reference: April 5th, 2024
Gene Product: February 22nd, 2022
33 days agogsk3 glycogen synthase kinase3:
5.04
GRMZM2G151916
Zebosi, B et al. 2024. Conservation and diversification of genes regulating brassinosteroid biosynthesis and signaling bioRxiv preprint. :doi: 10.1101/2024.03.26.586792.     Reference: April 5th, 2024
Gene Product: February 22nd, 2022
Variation: September 25th, 2007
Gene Model: October 22nd, 2020
33 days agorca1 RUBISCO activase1:
4.00
GRMZM2G162200
Yanyan Fan et al. 2024. Effects of nitrogen fertilizer on photosynthetic characteristics, C4 pathway, and related gene expression of maize varieties with different nitrogen efficiency Pakistan J Bot. 56:doi: 10.30848/PJB2024-4(15).     Reference: April 5th, 2024
Gene Product: October 28th, 2014
Variation: September 1st, 2003
Gene Model: February 13th, 2014
33 days agogsk4 glycogen synthase kinase4:
4.09
GRMZM2G121790
Zebosi, B et al. 2024. Conservation and diversification of genes regulating brassinosteroid biosynthesis and signaling bioRxiv preprint. :doi: 10.1101/2024.03.26.586792.     Reference: April 5th, 2024
Gene Product: February 22nd, 2022
Gene Model: April 25th, 2020
33 days agogi2 gigantea2:
3.03
GRMZM5G844173
Fengyun Ran et al. 2024. Studies on Candidate Genes Related to Flowering Time in a Multiparent Population of Maize Derived from Tropical and Temperate Germplasm Plants. 13:1032.     Reference: April 5th, 2024
Gene Product: September 19th, 2012
Variation: April 10th, 2023
Gene Model: September 18th, 2012
33 days agona2 nana plant2:
5.03
GRMZM2G057000
Zebosi, B et al. 2024. Conservation and diversification of genes regulating brassinosteroid biosynthesis and signaling bioRxiv preprint. :doi: 10.1101/2024.03.26.586792.   AT3G19820 (TAIR) Reference: April 5th, 2024
Gene Product: June 13th, 2016
Variation: June 13th, 2016
Gene Model: June 13th, 2016
33 days agobhlh43 bHLH-transcription factor 43:
1.08
GRMZM2G165042
Ranran Huang et al. 2024. Genome-wide characterization of fragile and resistant nucleosomes in response to cold stress in maize Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105760.     Reference: April 5th, 2024
Variation: September 1st, 2003
Gene Model: July 6th, 2017
33 days agoemb27 embryo specific27:
1.09
GRMZM2G153476
Fengyun Ran et al. 2024. Studies on Candidate Genes Related to Flowering Time in a Multiparent Population of Maize Derived from Tropical and Temperate Germplasm Plants. 13:1032.     Reference: April 5th, 2024
Variation: January 10th, 2024
Gene Model: October 18th, 2016
33 days agocyp37 cytochrome P450 37:
4.08
GRMZM2G012391
Zebosi, B et al. 2024. Conservation and diversification of genes regulating brassinosteroid biosynthesis and signaling bioRxiv preprint. :doi: 10.1101/2024.03.26.586792.   AT5G05690 (TAIR) Reference: April 5th, 2024
Gene Product: December 30th, 2022
Variation: September 1st, 2003
Gene Model: April 24th, 2020
33 days agobzr2 BZR-transcription factor 2:
 
   Zebosi, B et al. 2024. Conservation and diversification of genes regulating brassinosteroid biosynthesis and signaling bioRxiv preprint. :doi: 10.1101/2024.03.26.586792.     Reference: April 5th, 2024
Gene Product: May 4th, 2022
33 days agobzr3 BZR-transcription factor 3:
 
   Zebosi, B et al. 2024. Conservation and diversification of genes regulating brassinosteroid biosynthesis and signaling bioRxiv preprint. :doi: 10.1101/2024.03.26.586792.     Reference: April 5th, 2024
Gene Product: May 4th, 2022
33 days agobzr6 BZR-transcription factor 6:
 
   Zebosi, B et al. 2024. Conservation and diversification of genes regulating brassinosteroid biosynthesis and signaling bioRxiv preprint. :doi: 10.1101/2024.03.26.586792.     Reference: April 5th, 2024
Gene Product: May 4th, 2022
33 days agobzr7 BZR-transcription factor 7:
 
   Zebosi, B et al. 2024. Conservation and diversification of genes regulating brassinosteroid biosynthesis and signaling bioRxiv preprint. :doi: 10.1101/2024.03.26.586792.     Reference: April 5th, 2024
Gene Product: May 4th, 2022
33 days agobzr8 BZR-transcription factor 8:
 
   Zebosi, B et al. 2024. Conservation and diversification of genes regulating brassinosteroid biosynthesis and signaling bioRxiv preprint. :doi: 10.1101/2024.03.26.586792.     Reference: April 5th, 2024
Gene Product: May 4th, 2022
33 days agobzr9 BZR-transcription factor 9:
 
   Zebosi, B et al. 2024. Conservation and diversification of genes regulating brassinosteroid biosynthesis and signaling bioRxiv preprint. :doi: 10.1101/2024.03.26.586792.     Reference: April 5th, 2024
Gene Product: May 4th, 2022
33 days agocyp45 cytochrome P450 45:
3.02
GRMZM2G143235
Zebosi, B et al. 2024. Conservation and diversification of genes regulating brassinosteroid biosynthesis and signaling bioRxiv preprint. :doi: 10.1101/2024.03.26.586792.   AT3G13730 (TAIR) Reference: April 5th, 2024
Gene Product: December 30th, 2022
Variation: November 29th, 2023
Gene Model: April 3rd, 2018
33 days agoelfa9 elongation factor 1-alpha9:
9.03
GRMZM2G153541
Yu, HQ et al. 2024. Maize ZmLAZ1-3 gene negatively regulates drought tolerance in transgenic Arabidopsis. BMC Plant Biology. 24:246.     Reference: April 5th, 2024
Gene Product: September 1st, 2003
Variation: April 14th, 2014
Gene Model: April 15th, 2014
33 days agoserk1 somatic embryogenesis receptor-like kinase1:
10.04 - 10.05
GRMZM5G870959
Zebosi, B et al. 2024. Conservation and diversification of genes regulating brassinosteroid biosynthesis and signaling bioRxiv preprint. :doi: 10.1101/2024.03.26.586792.     Reference: April 5th, 2024
Gene Product: September 1st, 2003
Variation: January 25th, 2015
Gene Model: January 25th, 2015
33 days agoserk2 somatic embryogenesis receptor-like kinase2:
5.05
   Zebosi, B et al. 2024. Conservation and diversification of genes regulating brassinosteroid biosynthesis and signaling bioRxiv preprint. :doi: 10.1101/2024.03.26.586792.   AT1G71830 (TAIR)
LOC_Os04g38480 (MSU/TIGR)
Reference: April 5th, 2024
Gene Product: September 1st, 2003
Variation: June 11th, 2015
33 days agoserk3 somatic embryogenesis receptor-like kinase3:
4.05
GRMZM2G150024
Zebosi, B et al. 2024. Conservation and diversification of genes regulating brassinosteroid biosynthesis and signaling bioRxiv preprint. :doi: 10.1101/2024.03.26.586792.     Reference: April 5th, 2024
Gene Product: September 1st, 2003
Variation: July 31st, 2013
Gene Model: June 11th, 2015
33 days agomybr17 MYB-related-transcription factor 17:
3.09
GRMZM2G071977
Ranran Huang et al. 2024. Genome-wide characterization of fragile and resistant nucleosomes in response to cold stress in maize Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105760.     Reference: April 5th, 2024
Variation: September 1st, 2003
Gene Model: August 31st, 2018
33 days agophyB2 phytochromeB2:
9.05
   Fengyun Ran et al. 2024. Studies on Candidate Genes Related to Flowering Time in a Multiparent Population of Maize Derived from Tropical and Temperate Germplasm Plants. 13:1032.     Reference: April 5th, 2024
Gene Product: October 24th, 2007
Variation: May 20th, 2020
33 days agozfl1 zea floricaula/leafy1:
10.06
   Fengyun Ran et al. 2024. Studies on Candidate Genes Related to Flowering Time in a Multiparent Population of Maize Derived from Tropical and Temperate Germplasm Plants. 13:1032.     Reference: April 5th, 2024
Variation: February 20th, 2007
33 days agogst16 glutathione transferase16:
7.03
GRMZM5G895383
Fengyun Ran et al. 2024. Studies on Candidate Genes Related to Flowering Time in a Multiparent Population of Maize Derived from Tropical and Temperate Germplasm Plants. 13:1032.     Reference: April 5th, 2024
Gene Product: September 1st, 2003
Variation: August 17th, 2010
Gene Model: April 18th, 2015
33 days agodlf1 delayed flowering1:
 
   Fengyun Ran et al. 2024. Studies on Candidate Genes Related to Flowering Time in a Multiparent Population of Maize Derived from Tropical and Temperate Germplasm Plants. 13:1032.     Reference: April 5th, 2024
Gene Product: August 21st, 2018
Variation: June 25th, 2020
33 days agomyb38 myb transcription factor38:
 
GRMZM2G084583
Ranran Huang et al. 2024. Genome-wide characterization of fragile and resistant nucleosomes in response to cold stress in maize Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105760.     Reference: April 5th, 2024
Gene Product: September 1st, 2003
Variation: October 20th, 2016
Gene Model: February 23rd, 2015
33 days agohdt102 histone deacetylase102:
8.05
GRMZM2G100146
Fengyun Ran et al. 2024. Studies on Candidate Genes Related to Flowering Time in a Multiparent Population of Maize Derived from Tropical and Temperate Germplasm Plants. 13:1032.     Reference: April 5th, 2024
Gene Product: February 12th, 2020
Variation: November 25th, 2008
Gene Model: July 27th, 2016
33 days agocsu230  :
3.03
   Fengyun Ran et al. 2024. Studies on Candidate Genes Related to Flowering Time in a Multiparent Population of Maize Derived from Tropical and Temperate Germplasm Plants. 13:1032.     Reference: April 5th, 2024
Variation: September 25th, 2007
33 days agopra1 prenylated rab acceptor1:
3.02
GRMZM2G050890
Fengyun Ran et al. 2024. Studies on Candidate Genes Related to Flowering Time in a Multiparent Population of Maize Derived from Tropical and Temperate Germplasm Plants. 13:1032.     Reference: April 5th, 2024
Gene Product: June 17th, 2022
Gene Model: April 23rd, 2022
33 days agobrd1 brassinosteroid-deficient dwarf1:
 
GRMZM2G103773
Zebosi, B et al. 2024. Conservation and diversification of genes regulating brassinosteroid biosynthesis and signaling bioRxiv preprint. :doi: 10.1101/2024.03.26.586792.     Reference: April 5th, 2024
Gene Product: February 18th, 2012
Variation: August 16th, 2019
Gene Model: February 15th, 2012
33 days agopco093477  :
4.01
   Fengyun Ran et al. 2024. Studies on Candidate Genes Related to Flowering Time in a Multiparent Population of Maize Derived from Tropical and Temperate Germplasm Plants. 13:1032.     Reference: April 5th, 2024
Variation: May 20th, 2021
33 days agosweet13b sugars will eventually be exported transporter13b:
 
GRMZM2G021706
Fengyun Ran et al. 2024. Studies on Candidate Genes Related to Flowering Time in a Multiparent Population of Maize Derived from Tropical and Temperate Germplasm Plants. 13:1032.     Reference: April 5th, 2024
Gene Product: November 4th, 2015
Variation: February 17th, 2018
Gene Model: November 3rd, 2015
33 days agosweet13c sugars will eventually be exported transporter13c:
 
GRMZM2G179349
Fengyun Ran et al. 2024. Studies on Candidate Genes Related to Flowering Time in a Multiparent Population of Maize Derived from Tropical and Temperate Germplasm Plants. 13:1032.     Reference: April 5th, 2024
Gene Product: November 4th, 2015
Variation: February 17th, 2018
Gene Model: November 3rd, 2015
33 days agonfyc2 nuclear transcription factor y subunit c2:
 
GRMZM2G110210
Fengyun Ran et al. 2024. Studies on Candidate Genes Related to Flowering Time in a Multiparent Population of Maize Derived from Tropical and Temperate Germplasm Plants. 13:1032.     Reference: April 5th, 2024
Gene Product: August 9th, 2016
Gene Model: August 8th, 2016
33 days agocct14 CO CO-LIKE TIMING OF CAB1 protein domain14:
 
GRMZM2G033962
Fengyun Ran et al. 2024. Studies on Candidate Genes Related to Flowering Time in a Multiparent Population of Maize Derived from Tropical and Temperate Germplasm Plants. 13:1032.     Reference: April 5th, 2024
Gene Product: January 11th, 2018
Variation: November 28th, 2023
Gene Model: January 4th, 2017
33 days agocct2 CO CO-LIKE TIMING OF CAB1 protein domain2:
 
GRMZM2G004483
Fengyun Ran et al. 2024. Studies on Candidate Genes Related to Flowering Time in a Multiparent Population of Maize Derived from Tropical and Temperate Germplasm Plants. 13:1032.     Reference: April 5th, 2024
Gene Product: June 18th, 2018
Variation: December 27th, 2017
Gene Model: December 27th, 2017
33 days agolac4 laccase4:
 
GRMZM2G072780
Bi, YQ et al. 2024. Identification of a novel marker and its associated laccase gene for regulating ear length in tropical and subtropical maize lines. Theor Appl Genet. 137:94.     Reference: April 5th, 2024
Gene Product: March 31st, 2018
Gene Model: March 31st, 2018
33 days agobsu1 brassinosteroid insensitive suppressor protein1:
 
GRMZM2G028700
Zebosi, B et al. 2024. Conservation and diversification of genes regulating brassinosteroid biosynthesis and signaling bioRxiv preprint. :doi: 10.1101/2024.03.26.586792.   AT1G08420 (TAIR) Reference: April 5th, 2024
Gene Product: October 25th, 2021
Variation: April 8th, 2021
Gene Model: June 21st, 2019
33 days agolaz3 lazarus ortholog3:
 
GRMZM2G122045
Yu, HQ et al. 2024. Maize ZmLAZ1-3 gene negatively regulates drought tolerance in transgenic Arabidopsis. BMC Plant Biology. 24:246.     Reference: April 5th, 2024
Gene Product: July 27th, 2019
Gene Model: July 27th, 2019
33 days agoprh48 protein phosphatase homolog48:
 
GRMZM2G112925
Fengyun Ran et al. 2024. Studies on Candidate Genes Related to Flowering Time in a Multiparent Population of Maize Derived from Tropical and Temperate Germplasm Plants. 13:1032.     Reference: April 5th, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
33 days agogsk7 glycogen synthase kinase7:
 
GRMZM2G155836
Zebosi, B et al. 2024. Conservation and diversification of genes regulating brassinosteroid biosynthesis and signaling bioRxiv preprint. :doi: 10.1101/2024.03.26.586792.     Reference: April 5th, 2024
Gene Product: February 22nd, 2022
Gene Model: February 22nd, 2022
33 days agogsk8 glycogen synthase kinase8:
 
GRMZM2G131853
Zebosi, B et al. 2024. Conservation and diversification of genes regulating brassinosteroid biosynthesis and signaling bioRxiv preprint. :doi: 10.1101/2024.03.26.586792.     Reference: April 5th, 2024
Gene Product: February 22nd, 2022
Gene Model: February 22nd, 2022
33 days agogsk9 glycogen synthase kinase9:
 
GRMZM2G109624
Zebosi, B et al. 2024. Conservation and diversification of genes regulating brassinosteroid biosynthesis and signaling bioRxiv preprint. :doi: 10.1101/2024.03.26.586792.     Reference: April 5th, 2024
Gene Product: February 22nd, 2022
Gene Model: February 22nd, 2022
33 days agohis305 histone305:
 
GRMZM2G418258
Fengyun Ran et al. 2024. Studies on Candidate Genes Related to Flowering Time in a Multiparent Population of Maize Derived from Tropical and Temperate Germplasm Plants. 13:1032.     Reference: April 5th, 2024
Gene Product: June 15th, 2021
Gene Model: April 11th, 2022
33 days agosweet13a sugars will eventually be exported transporter13a:
10.03
GRMZM2G173669
Fengyun Ran et al. 2024. Studies on Candidate Genes Related to Flowering Time in a Multiparent Population of Maize Derived from Tropical and Temperate Germplasm Plants. 13:1032.     Reference: April 5th, 2024
Gene Product: November 4th, 2015
Variation: February 17th, 2018
Gene Model: December 28th, 2017
33 days agocamta8 CAMTA-transcription factor 8:
9.04
GRMZM2G431243
Fengyun Ran et al. 2024. Studies on Candidate Genes Related to Flowering Time in a Multiparent Population of Maize Derived from Tropical and Temperate Germplasm Plants. 13:1032.     Reference: April 5th, 2024
Variation: September 25th, 2007
Gene Model: January 12th, 2019
33 days agonatl1 nana2-like1:
 
GRMZM2G455658
Zebosi, B et al. 2024. Conservation and diversification of genes regulating brassinosteroid biosynthesis and signaling bioRxiv preprint. :doi: 10.1101/2024.03.26.586792.   AT3G19820 (TAIR) Reference: April 5th, 2024
Gene Product: June 13th, 2016
Gene Model: June 13th, 2016
34 days agogrrf9 growth-regulating factor9:
5.08 - 5.08
GRMZM5G893117
Dandan Zhang et al. 2024. A new model construction based on the knowledge graph for mining elite polyphenotype genes in crops. Frontiers in Plant Science. 15:1361716.     Reference: April 4th, 2024
Variation: March 30th, 2017
Gene Model: March 30th, 2017
34 days agohsp70-17 heat shock protein70-17:
5.01
GRMZM2G111475
Ze Li et al. 2024. The Heat shock factor 20-HSF4-Cellulose synthase A2 module regulates heat stress tolerance in maize. Plant Cell. :doi: 10.1093/plcell/koae106.     Reference: April 4th, 2024
Gene Product: September 1st, 2003
Gene Model: June 16th, 2018
34 days agohsftf14 HSF-transcription factor 14:
 
   Ze Li et al. 2024. The Heat shock factor 20-HSF4-Cellulose synthase A2 module regulates heat stress tolerance in maize. Plant Cell. :doi: 10.1093/plcell/koae106.     Reference: April 4th, 2024
Gene Product: May 15th, 2020
34 days agohsftf17 HSF-transcription factor 17:
 
   Ze Li et al. 2024. The Heat shock factor 20-HSF4-Cellulose synthase A2 module regulates heat stress tolerance in maize. Plant Cell. :doi: 10.1093/plcell/koae106.     Reference: April 4th, 2024
Gene Product: May 15th, 2020
34 days agoub3 unbranched3:
 
   Dandan Zhang et al. 2024. A new model construction based on the knowledge graph for mining elite polyphenotype genes in crops. Frontiers in Plant Science. 15:1361716.     Reference: April 4th, 2024
Gene Product: July 5th, 2019
Variation: December 17th, 2014
34 days agoub2 unbranched2:
 
   Dandan Zhang et al. 2024. A new model construction based on the knowledge graph for mining elite polyphenotype genes in crops. Frontiers in Plant Science. 15:1361716.     Reference: April 4th, 2024
Gene Product: July 5th, 2019
Variation: December 17th, 2014
34 days agocesa2 cellulose synthase2:
6.05
   Ze Li et al. 2024. The Heat shock factor 20-HSF4-Cellulose synthase A2 module regulates heat stress tolerance in maize. Plant Cell. :doi: 10.1093/plcell/koae106.     Reference: April 4th, 2024
Gene Product: October 7th, 2016
Variation: October 9th, 2012
34 days agofah1 ferulic acid 5-hydroxylase1:
 
AC210173.4_FG005
Ze Li et al. 2024. The Heat shock factor 20-HSF4-Cellulose synthase A2 module regulates heat stress tolerance in maize. Plant Cell. :doi: 10.1093/plcell/koae106.   AT4G36220 (TAIR)
LOC_Os10g36848 (MSU/TIGR)
Reference: April 4th, 2024
Gene Product: May 4th, 2018
Gene Model: June 23rd, 2016
34 days agohsp23 heat shock protein23:
 
GRMZM2G361605
Ze Li et al. 2024. The Heat shock factor 20-HSF4-Cellulose synthase A2 module regulates heat stress tolerance in maize. Plant Cell. :doi: 10.1093/plcell/koae106.     Reference: April 4th, 2024
Gene Product: September 1st, 2003
Gene Model: August 26th, 2020
35 days agopin16 PIN-formed protein16:
 
   Pei, L et al. 2024. A microRNA528-ZmLac3 module regulates low phosphate tolerance in maize. Plant J. :doi: 10.1111/tpj.16741.   AT5G57090 (TAIR) Reference: April 3rd, 2024
Gene Product: April 3rd, 2024
35 days agopin12 PIN-formed protein12:
9.02
GRMZM2G160496
Yuanyuan Liang et al. 2024. Fulvic acid alleviates the stress of low nitrogen on maize by promoting root development and nitrogen metabolism. Physiol Plant. 176:e14249.     Reference: March 13th, 2024
Gene Product: April 3rd, 2024
Gene Model: January 24th, 2013
35 days agopin14 PIN-formed protein14:
3.06
GRMZM2G050089
Chuanxi Peng et al. 2024. Unveiling the Regulatory Role of miRNAs in Internode Elongation: Integrated Analysis of MicroRNA and mRNA Expression Profiles across Diverse Dwarfing Treatments in Maize (Zea mays L.) J Agric Food Chem. :doi: 10.1021/acs.jafc.3c09507.     Reference: March 25th, 2024
Gene Product: April 3rd, 2024
Gene Model: January 24th, 2013
35 days agolyce1 lycopene epsilon cyclase1:
8.05
GRMZM2G012966
Fanyu Wang et al. 2024. Exogenous salicylic acid promotes carotenoid accumulation and antioxidant capacity in germinated maize kernels by regulating carotenoid biosynthetic pathway Food Biosci. 59:103990.     Reference: April 3rd, 2024
Gene Product: December 10th, 2011
Variation: October 9th, 2023
Gene Model: October 3rd, 2011
35 days agops1 pink scutellum1:
5.04 - 5.04
   Fanyu Wang et al. 2024. Exogenous salicylic acid promotes carotenoid accumulation and antioxidant capacity in germinated maize kernels by regulating carotenoid biosynthetic pathway Food Biosci. 59:103990.     Reference: April 3rd, 2024
Gene Product: December 10th, 2011
Variation: March 30th, 2011
35 days agovp9 viviparous9:
7.02
GRMZM2G454952
Fanyu Wang et al. 2024. Exogenous salicylic acid promotes carotenoid accumulation and antioxidant capacity in germinated maize kernels by regulating carotenoid biosynthetic pathway Food Biosci. 59:103990.     Reference: April 3rd, 2024
Gene Product: December 13th, 2011
Variation: September 26th, 2020
Gene Model: March 8th, 2013
35 days agoy1 yellow endosperm1:
6.01
GRMZM2G300348
Fanyu Wang et al. 2024. Exogenous salicylic acid promotes carotenoid accumulation and antioxidant capacity in germinated maize kernels by regulating carotenoid biosynthetic pathway Food Biosci. 59:103990.     Reference: April 3rd, 2024
Gene Product: December 14th, 2011
Variation: August 26th, 2014
Gene Model: September 22nd, 2011
35 days agoaic1 auxin import carrier1:
1.05
GRMZM2G129413
Pei, L et al. 2024. A microRNA528-ZmLac3 module regulates low phosphate tolerance in maize. Plant J. :doi: 10.1111/tpj.16741.   AT2G21050 (TAIR) Reference: April 3rd, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: November 21st, 2015
35 days agohyd2 hydroxylase2:
 
   Fanyu Wang et al. 2024. Exogenous salicylic acid promotes carotenoid accumulation and antioxidant capacity in germinated maize kernels by regulating carotenoid biosynthetic pathway Food Biosci. 59:103990.     Reference: April 3rd, 2024
Gene Product: December 13th, 2011
35 days agopin6 PIN-formed protein6:
 
   Forestan, C; Farinati, Silvia; Varotto, S. 2012. Frontiers in Plant Science. 3:16     Reference: April 16th, 2014
Gene Product: April 3rd, 2024
35 days agopin5 PIN-formed protein5:
 
GRMZM2G025742
Wesley Neher et al. 2023. The maize preligule band is subdivided into distinct domains with contrasting cellular properties prior to ligule outgrowth. Development. :doi: 10.1242/dev.201608.     Reference: September 22nd, 2023
Gene Product: April 3rd, 2024
Gene Model: January 24th, 2013
35 days agopin7 PIN-formed protein7:
 
GRMZM2G148648
Li, CY et al. 2023. Gene expression and eQTL analyses uncover natural variations underlying improvement of important agronomic traits during modern maize breeding Plant J. :doi: 10.1111/tpj.16260.     Reference: April 26th, 2023
Gene Product: April 3rd, 2024
Gene Model: January 24th, 2013
35 days agopin11 PIN-formed protein11:
 
GRMZM2G040911
Adak, A et al. 2024. Deciphering temporal growth patterns in maize: integrative modeling of phenotype dynamics and underlying genomic variations. New Phytol. :doi: 10.1111/nph.19575.     Reference: February 13th, 2024
Gene Product: April 3rd, 2024
Gene Model: January 24th, 2013
35 days agopin13 PIN-formed homolog13:
 
   Craig L Cowling et al. 2023. Roles of auxin pathways in maize biology. J Exp Bot.     Reference: July 26th, 2023
Gene Product: April 3rd, 2024
35 days agocyp14 cytochrome P450 14:
 
GRMZM2G143202
Fanyu Wang et al. 2024. Exogenous salicylic acid promotes carotenoid accumulation and antioxidant capacity in germinated maize kernels by regulating carotenoid biosynthetic pathway Food Biosci. 59:103990.     Reference: April 3rd, 2024
Gene Product: June 3rd, 2015
Variation: June 3rd, 2015
Gene Model: April 8th, 2013
35 days agopin15 PIN-formed protein15:
 
GRMZM2G403601
Li, ZX et al. 2017. Plant Biotechnol J pp.doi: 10.1111/pbi.12751   LOC_Os11g04190 (MSU/TIGR) Reference: May 13th, 2017
Gene Product: April 3rd, 2024
Gene Model: May 13th, 2017
35 days agolac3 laccase3:
 
GRMZM2G169033
Pei, L et al. 2024. A microRNA528-ZmLac3 module regulates low phosphate tolerance in maize. Plant J. :doi: 10.1111/tpj.16741.     Reference: April 3rd, 2024
Gene Product: March 31st, 2018
Gene Model: March 31st, 2018
35 days agolac5 laccase5:
 
GRMZM2G367668
Pei, L et al. 2024. A microRNA528-ZmLac3 module regulates low phosphate tolerance in maize. Plant J. :doi: 10.1111/tpj.16741.     Reference: April 3rd, 2024
Gene Product: March 31st, 2018
Gene Model: March 31st, 2018
35 days agopin8 PIN-formed protein8:
3.07
GRMZM5G839411
Consonni, G et al. 2022. The Italian Research on the Molecular Characterization of Maize Kernel Development Int J Mol Sci. 23:11383.     Reference: September 28th, 2022
Gene Product: April 3rd, 2024
Gene Model: January 24th, 2013
36 days agoapx2 ascorbate peroxidase2:
2.08
GRMZM2G140667
Shah Mahmood Hamidi et al. 2024. Biochemical and Molecular Basis of Chemically Induced Defense Activation in Maize against Banded Leaf and Sheath Blight Disease Curr Issues Mol Biol. 46:3063-3080.     Reference: April 2nd, 2024
Gene Product: September 1st, 2003
Variation: February 16th, 2015
Gene Model: February 16th, 2015
36 days agocat2 catalase2:
1.01
   Shah Mahmood Hamidi et al. 2024. Biochemical and Molecular Basis of Chemically Induced Defense Activation in Maize against Banded Leaf and Sheath Blight Disease Curr Issues Mol Biol. 46:3063-3080.     Reference: April 2nd, 2024
Gene Product: September 1st, 2003
Variation: September 21st, 2012
36 days agocat3 catalase3:
4.11
   Shah Mahmood Hamidi et al. 2024. Biochemical and Molecular Basis of Chemically Induced Defense Activation in Maize against Banded Leaf and Sheath Blight Disease Curr Issues Mol Biol. 46:3063-3080.     Reference: April 2nd, 2024
Gene Product: September 1st, 2003
Variation: March 2nd, 2007
36 days agogeb1 glucan endo-1,3-beta-glucosidase homolog1:
3.05
GRMZM2G065585
Shah Mahmood Hamidi et al. 2024. Biochemical and Molecular Basis of Chemically Induced Defense Activation in Maize against Banded Leaf and Sheath Blight Disease Curr Issues Mol Biol. 46:3063-3080.     Reference: April 2nd, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: October 30th, 2015
36 days agosod14 superoxide dismutase14:
1.07
GRMZM2G106928
Shah Mahmood Hamidi et al. 2024. Biochemical and Molecular Basis of Chemically Induced Defense Activation in Maize against Banded Leaf and Sheath Blight Disease Curr Issues Mol Biol. 46:3063-3080.     Reference: April 2nd, 2024
Gene Product: October 4th, 2021
Gene Model: February 11th, 2020
36 days agoppo1 polyphenol oxidase1:
10.03
GRMZM5G851266
Shah Mahmood Hamidi et al. 2024. Biochemical and Molecular Basis of Chemically Induced Defense Activation in Maize against Banded Leaf and Sheath Blight Disease Curr Issues Mol Biol. 46:3063-3080.     Reference: April 2nd, 2024
Gene Product: September 1st, 2003
Variation: January 21st, 2015
Gene Model: January 21st, 2015
37 days agoereb216 AP2-EREBP-transcription factor 216:
 
   Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: July 5th, 2019
37 days agoereb219 AP2-EREBP-transcription factor 219:
 
   Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: July 5th, 2019
37 days agoereb227 AP2-EREBP-transcription factor 227:
 
   Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: July 5th, 2019
37 days agoereb238 AP2-EREBP-transcription factor 238:
 
   Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: July 5th, 2019
37 days agoplt8 phospholipid transfer protein8:
 
   Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: September 1st, 2003
37 days agoplt9 phospholipid transfer protein9:
 
   Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: September 1st, 2003
37 days agoplt11 phospholipid transfer protein11:
 
   Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: September 1st, 2003
37 days agoereb221 AP2-EREBP-transcription factor 221:
 
   Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: July 5th, 2019
37 days agocox16 cytochrome c oxidase16:
 
   Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: September 1st, 2003
37 days agocox12 cytochrome c oxidase12:
 
   Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: September 1st, 2003
37 days agocox13 cytochrome c oxidase13:
 
   Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: September 1st, 2003
37 days agocox14 cytochrome c oxidase14:
 
   Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: September 1st, 2003
37 days agoplt57 phospholipid transfer protein57:
 
   Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: September 1st, 2003
37 days agoplt33 phospholipid transfer protein33:
1.02
GRMZM5G850455
Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: September 1st, 2003
Gene Model: April 12th, 2021
37 days agoplt2 phospholipid transfer protein homolog2:
3.09
   Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
37 days agoc2 colorless2:
4.08
   Souza Mello, C et al. 2012. Sodium nitroprusside modulates gene expression involved in glutathione synthesis in Zea mays leaves Biol Plant. 56:383–388.     Reference: April 1st, 2024
Gene Product: September 1st, 2003
Variation: July 12th, 2021
37 days agocat1 catalase1:
5.03
   Zhang, YF et al. 2024. Adenosine triphosphate alleviates high temperature-enhanced glyphosate toxicity in maize seedlings Plant Physiol Biochem. 210:108550.     Reference: April 1st, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
37 days agogpc2 glyceraldehyde-3-phosphate dehydrogenase2:
6.00 - 6.01
   Silveira, PR et al. 2019. Changes in leaf gas exchange, chlorophyll a fluorescence, and antioxidantsin maize leaves infected by Exserohilum turcicum Biol Plant. 63:643-653.     Reference: April 1st, 2024
Gene Product: September 1st, 2003
Variation: December 13th, 2012
37 days agoereb144 AP2-EREBP-transcription factor 144:
5.04
GRMZM2G005301
Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Variation: September 1st, 2003
Gene Model: June 28th, 2018
37 days agoplt10 phospholipid transfer protein10:
10.01
GRMZM5G886547
Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: September 16th, 2017
37 days agoereb102 AP2-EREBP-transcription factor 102:
7.02
GRMZM2G052667
Xun-Ge Zhu et al. 2024. Ancient Duplication and Lineage-Specific Transposition Determine Evolutionary Trajectory of ERF Subfamily across Angiosperms Int J Mol Sci. 25:3941.     Reference: April 1st, 2024
Variation: September 1st, 2003
Gene Model: September 6th, 2018
37 days agoplt7 phospholipid transfer protein7:
3.09
GRMZM2G107839
Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: September 16th, 2017
37 days agoereb148 AP2-EREBP-transcription factor 148:
 
   Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Variation: May 4th, 2016
37 days agoereb156 AP2-EREBP-transcription factor 156:
 
   Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Variation: June 11th, 2016
37 days agoereb185 AP2-EREBP-transcription factor 185:
 
   Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: April 10th, 2013
37 days agoereb61 AP2-EREBP-transcription factor 61:
 
   Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Variation: March 29th, 2021
37 days agoereb240 AP2-EREBP-transcription factor 240:
10.04
GRMZM2G424348
Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: July 5th, 2019
Variation: November 11th, 2022
Gene Model: September 2nd, 2018
37 days agogst23 glutathione transferase23:
7.02
GRMZM2G416632
Silveira, PR et al. 2019. Changes in leaf gas exchange, chlorophyll a fluorescence, and antioxidantsin maize leaves infected by Exserohilum turcicum Biol Plant. 63:643-653.     Reference: April 1st, 2024
Gene Product: September 1st, 2003
Variation: August 20th, 2010
Gene Model: July 27th, 2016
37 days agoplt1 phospholipid transfer protein homolog1:
3.06
GRMZM2G101958
Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: September 1st, 2003
Variation: March 17th, 2015
Gene Model: March 12th, 2015
37 days agocox15 cytochrome c oxidase15:
1.06
   Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: September 1st, 2003
Variation: July 29th, 2004
37 days agogshs2 glutathione synthetase2:
3.05
GRMZM2G155974
Souza Mello, C et al. 2012. Sodium nitroprusside modulates gene expression involved in glutathione synthesis in Zea mays leaves Biol Plant. 56:383–388.     Reference: April 1st, 2024
Gene Product: December 2nd, 2018
Variation: September 25th, 2007
Gene Model: December 1st, 2018
37 days agocox11 cytochrome c oxidase11:
 
GRMZM2G338696
Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: September 1st, 2003
Gene Model: November 7th, 2019
37 days agoplt3 phospholipid transfer protein homolog3:
3.06
GRMZM2G126397
Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: September 1st, 2003
Variation: January 8th, 2017
Gene Model: January 6th, 2017
37 days agodbf2 DRE-binding protein 2:
9.04
GRMZM5G889719
Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: April 10th, 2013
Gene Model: July 27th, 2016
37 days agoereb237 AP2-EREBP-transcription factor 237:
9.03
   Amaal Maghraby et al. 2024. Genome-wide identification and evolutionary analysis of the AP2/EREBP, COX and LTP genes in Zea mays L. under drought stress. Sci. Rep.. 14:7610.     Reference: April 1st, 2024
Gene Product: July 5th, 2019
40 days agoZm00001d007549  :
 
   Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.   LOC_Os11g37650 (MSU/TIGR)
Os11g0587000 (Gramene)
Reference: March 29th, 2024
Gene Product: January 6th, 2023
40 days agoadf14 actin depolymerizing factor14:
 
   Ruisi Yang et al. 2024. The Role of the ADF Gene Family in Maize Response to Abiotic Stresses Agronomy. 14:717.     Reference: March 29th, 2024
Gene Product: March 4th, 2020
40 days agonced11 nine-cis-epoxycarotenoid dioxygenase11:
 
   Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: September 20th, 2012
40 days agonced12 nine-cis-epoxycarotenoid dioxygenase12:
 
   Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: September 20th, 2012
40 days agonced13 nine-cis-epoxycarotenoid dioxygenase13:
 
   Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: September 20th, 2012
40 days agonced14 nine-cis-epoxycarotenoid dioxygenase14:
 
   Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: September 20th, 2012
40 days agoaaap72 amino acid/auxin permease72:
 
   Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
40 days agocaat2 cationic amino acid transporter2:
 
   Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 29th, 2024
40 days agocaat3 cationic amino acid transporter3:
 
   Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 29th, 2024
40 days agocaat4 cationic amino acid transporter4:
 
   Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 29th, 2024
40 days agocaat6 cationic amino acid transporter6:
 
   Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 29th, 2024
40 days agocaat7 cationic amino acid transporter7:
 
   Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 29th, 2024
40 days agocaat9 cationic amino acid transporter9:
 
   Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 29th, 2024
40 days agocaat12 cationic amino acid transporter12:
 
   Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 29th, 2024
40 days agocaat13 cationic amino acid transporter13:
 
   Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 29th, 2024
40 days agocaat14 cationic amino acid transporter14:
 
   Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 29th, 2024
40 days agoadf15 actin depolymerizing factor15:
 
   Ruisi Yang et al. 2024. The Role of the ADF Gene Family in Maize Response to Abiotic Stresses Agronomy. 14:717.     Reference: March 29th, 2024
Gene Product: March 4th, 2020
40 days agocaat15 cationic amino acid transporter15:
 
       Gene Product: March 29th, 2024
40 days agoLOC100285888  :
 
       Gene Product: March 29th, 2024
40 days agoLOC100284962  :
 
       Gene Product: March 29th, 2024
40 days agobap2 basal layer antifungal protein2:
4.05
   He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.     Reference: March 29th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
40 days agobetl3 basal endosperm transfer layer3:
3.05
   He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.     Reference: March 29th, 2024
Variation: October 21st, 2013
40 days agocap1 calcium pump1:
8.05
   He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.     Reference: March 29th, 2024
Gene Product: May 20th, 2015
Variation: September 1st, 2003
40 days agoadf1 actin depolymerizing factor1:
7.03
   Ruisi Yang et al. 2024. The Role of the ADF Gene Family in Maize Response to Abiotic Stresses Agronomy. 14:717.     Reference: March 29th, 2024
Gene Product: September 1st, 2003
Variation: July 22nd, 2015
40 days agosca1 short chain alcohol dehydrogenase1:
5.00
GRMZM2G332976
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: September 1st, 2003
Variation: July 27th, 2013
Gene Model: June 23rd, 2015
40 days agoadf4 Actin-depolymerizing factor 4:
6.01
   Ruisi Yang et al. 2024. The Role of the ADF Gene Family in Maize Response to Abiotic Stresses Agronomy. 14:717.     Reference: March 29th, 2024
Gene Product: March 4th, 2020
40 days agoao3 aldehyde oxidase3:
1.11
GRMZM2G019799
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: February 5th, 2013
Gene Model: February 5th, 2013
40 days agocaat11 cationic amino acid transporter11:
4.06
GRMZM2G045704
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 29th, 2024
Gene Model: May 24th, 2021
40 days agosweet1a sugars will eventually be exported transporter1a:
3.06
GRMZM2G039365
He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.     Reference: March 29th, 2024
Gene Product: November 4th, 2015
Gene Model: November 3rd, 2015
40 days agoalmt1 aluminum-activated malate transporter homolog1:
2.04
AC233887.1_FG005
He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.   AT1G08440 (TAIR) Reference: March 29th, 2024
Gene Product: March 16th, 2022
Gene Model: April 28th, 2021
40 days agopsy2 phytoene synthase2:
8.07
GRMZM2G149317
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: December 14th, 2011
Variation: May 12th, 2013
Gene Model: June 8th, 2012
40 days agotcrr1 transfer cell response regulator1:
4.05
GRMZM2G016145
He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.     Reference: March 29th, 2024
Gene Product: January 16th, 2021
Variation: December 31st, 2015
Gene Model: December 31st, 2015
40 days agolw1 lemon white1:
1.10
GRMZM2G027059
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: June 20th, 2012
Variation: March 10th, 2016
Gene Model: January 8th, 2014
40 days agolw2 lemon white2:
5.05
GRMZM2G137409
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: February 8th, 2019
Variation: October 22nd, 2020
Gene Model: February 8th, 2019
40 days agovp5 viviparous5:
1.02 - 1.02
   Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: December 13th, 2011
Variation: March 4th, 2014
40 days agowc1 white cap1:
9.07
   Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: September 20th, 2012
Variation: October 5th, 2012
40 days agoy9 pale yellow9:
10.03 - 10.03
GRMZM2G011746
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: December 10th, 2011
Variation: September 28th, 2011
Gene Model: September 22nd, 2011
40 days agocrti3 carotene isomerase3:
5.00
GRMZM2G144273
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: December 10th, 2011
Gene Model: June 14th, 2018
40 days agommc0381  :
2.08
GRMZM2G003409
He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.     Reference: March 29th, 2024
Gene Product: April 8th, 2022
Gene Model: February 6th, 2018
40 days agoadf5 actin depolymerizing factor5:
1.03
GRMZM2G077942
Ruisi Yang et al. 2024. The Role of the ADF Gene Family in Maize Response to Abiotic Stresses Agronomy. 14:717.     Reference: March 29th, 2024
Gene Product: March 4th, 2020
Variation: March 4th, 2016
Gene Model: March 3rd, 2016
40 days agoaaap69 amino acid/auxin permease69:
10.04
GRMZM2G173597
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
Variation: March 18th, 2021
Gene Model: December 12th, 2017
40 days agoippi1 isopentenyl pyrophosphate isomerase1:
7.03
GRMZM2G108285
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: December 10th, 2011
Variation: September 1st, 2003
Gene Model: September 11th, 2018
40 days agoadf2 actin depolymerizing factor2:
7.03
GRMZM2G097122
Ruisi Yang et al. 2024. The Role of the ADF Gene Family in Maize Response to Abiotic Stresses Agronomy. 14:717.     Reference: March 29th, 2024
Gene Product: September 1st, 2003
Variation: July 22nd, 2015
Gene Model: July 22nd, 2015
40 days agobetl4 basal endosperm transfer layer4:
 
GRMZM2G073290
He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.     Reference: March 29th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: July 4th, 2014
40 days agocyp15 cytochrome P450 15:
4.09
GRMZM2G010221
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: April 29th, 2013
Gene Model: May 31st, 2018
40 days agoadf3 actin depolymerizing factor3:
1.11
GRMZM2G060702
Ruisi Yang et al. 2024. The Role of the ADF Gene Family in Maize Response to Abiotic Stresses Agronomy. 14:717.     Reference: March 29th, 2024
Gene Product: March 4th, 2020
Variation: October 19th, 2017
Gene Model: October 19th, 2017
40 days agocmk1 cytidine methyl kinase1:
3.06
GRMZM5G859195
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: October 9th, 2014
Gene Model: October 4th, 2014
40 days agophp20075a(gast)  :
10.01
GRMZM2G172596
He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.     Reference: March 29th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: April 25th, 2017
40 days agosweet4c sugars will eventually be exported transporter4c:
5.04
GRMZM2G137954
He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.   LOC_Os02g19820 (MSU/TIGR) Reference: March 29th, 2024
Gene Product: November 4th, 2015
Variation: January 11th, 2023
Gene Model: November 3rd, 2015
40 days agodxr2 deoxy xylulose reductoisomerase2:
8.01
GRMZM2G036290
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: December 10th, 2011
Gene Model: September 16th, 2018
40 days agoAY110632  :
1.03
GRMZM2G032047
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Variation: July 29th, 2004
Gene Model: June 8th, 2017
40 days agoaaap65 amino acid/auxin permease65:
10.02
GRMZM2G433162
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
Gene Model: December 28th, 2017
40 days agomeg1 maternally expressed gene1:
7.01
   He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.     Reference: March 29th, 2024
Variation: January 2nd, 2022
40 days agodnaJ2 DnaJ/Hsp40 2:
1.03
GRMZM2G703555
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: September 1st, 2003
Gene Model: February 5th, 2020
40 days agocl7681_1a  :
1.09
GRMZM2G088083
    Gene Product: March 29th, 2024
Gene Model: February 14th, 2020
40 days agocaat5 cationic amino acid transporter5:
1.09
   Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 29th, 2024
40 days agoadf12 actin depolymerizing factor12:
2.03
GRMZM2G071327
Ruisi Yang et al. 2024. The Role of the ADF Gene Family in Maize Response to Abiotic Stresses Agronomy. 14:717.     Reference: March 29th, 2024
Gene Product: March 4th, 2020
Gene Model: March 4th, 2020
40 days agofps3 farnesyl diphosphate synthase3:
3.07
GRMZM2G098569
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: August 18th, 2015
Variation: August 12th, 2022
Gene Model: August 18th, 2015
40 days agomeg3 maternally expressed gene3:
7.01
GRMZM2G344323
He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.     Reference: March 29th, 2024
Variation: October 25th, 2009
Gene Model: August 29th, 2014
40 days agozep2 zeaxanthin epoxidase2:
 
GRMZM2G136344
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: December 10th, 2011
Variation: August 29th, 2011
Gene Model: April 8th, 2013
40 days agohyd3 hydroxylase3:
 
GRMZM2G152135
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: December 13th, 2011
Variation: October 22nd, 2020
Gene Model: April 9th, 2013
40 days agohyd4 hydroxylase4:
 
GRMZM2G164318
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: December 13th, 2011
Variation: September 3rd, 2011
Gene Model: April 9th, 2013
40 days agohyd5 hydroxylase5:
 
GRMZM2G382534
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: December 13th, 2011
Variation: September 3rd, 2011
Gene Model: April 9th, 2013
40 days agodxs3 deoxy xylulose synthase3:
 
GRMZM2G173641
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: August 17th, 2004
Variation: February 15th, 2012
Gene Model: December 9th, 2011
40 days agohyd7 hydroxylase7:
 
GRMZM2G163683
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: December 13th, 2011
Variation: February 17th, 2012
Gene Model: April 9th, 2013
40 days agoccd8 carotenoid cleavage dioxygenase8:
 
GRMZM2G446858
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: September 20th, 2012
Variation: September 21st, 2012
Gene Model: September 20th, 2012
40 days agocrti1 carotene isomerase1:
 
GRMZM2G108457
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: December 10th, 2011
Gene Model: April 8th, 2013
40 days agocrti2 carotene isomerase2:
 
GRMZM2G106531
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: December 10th, 2011
Gene Model: April 8th, 2013
40 days agoggps1 geranylgeranyl pyrophosphate synthase1:
 
AC194970.5_FG001
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: April 8th, 2013
Gene Model: April 8th, 2013
40 days agoippi2 isopentenyl pyrophosphate isomerase2:
 
GRMZM2G145029
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: December 10th, 2011
Gene Model: April 8th, 2013
40 days agoippi3 isopentenyl pyrophosphate isomerase3:
 
GRMZM2G145029
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: December 10th, 2011
Gene Model: April 8th, 2013
40 days agoggps4 geranylgeranyl pyrophosphate synthase4:
 
GRMZM2G005909
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: April 8th, 2013
Gene Model: April 8th, 2013
40 days agocyp13 cytochrome P450 13:
 
GRMZM5G837869
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: April 8th, 2013
Variation: July 8th, 2017
Gene Model: April 8th, 2013
40 days agovde1 violaxanthin de-epoxidase1:
 
GRMZM2G027219
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: December 13th, 2011
Gene Model: April 9th, 2013
40 days agomeg10 maternally expressed gene10:
 
GRMZM2G086827
He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.     Reference: March 29th, 2024
Variation: August 29th, 2014
Gene Model: August 29th, 2014
40 days agomeg13 maternally expressed gene13:
 
GRMZM2G175912
He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.     Reference: March 29th, 2024
Variation: August 29th, 2014
Gene Model: August 29th, 2014
40 days agonced2 nine-cis-epoxycarotenoid dioxygenase2:
 
GRMZM2G407181
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: September 20th, 2012
Gene Model: October 4th, 2014
40 days agonced4 nine-cis-epoxycarotenoid dioxygenase4:
 
GRMZM2G408158
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: September 20th, 2012
Gene Model: October 4th, 2014
40 days agonced7 nine-cis-epoxycarotenoid dioxygenase7:
 
GRMZM2G330848
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: September 20th, 2012
Gene Model: October 4th, 2014
40 days agonced6 nine-cis-epoxycarotenoid dioxygenase6:
 
GRMZM2G110192
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: September 20th, 2012
Gene Model: October 4th, 2014
40 days agonced8 nine-cis-epoxycarotenoid dioxygenase8:
 
GRMZM2G150363
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: September 20th, 2012
Gene Model: October 4th, 2014
40 days agonced9 nine-cis-epoxycarotenoid dioxygenase9:
 
GRMZM5G838285
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: September 20th, 2012
Gene Model: October 4th, 2014
40 days agoao4 aldehyde oxidase4:
 
GRMZM2G141473
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: October 4th, 2014
Gene Model: October 4th, 2014
40 days agoao5 aldehyde oxidase5:
 
GRMZM2G406830
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: October 4th, 2014
Gene Model: October 4th, 2014
40 days agoccd7 carotenoid cleavage dioxygenase7:
 
GRMZM2G158657
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.   AT2G44990 (TAIR) Reference: March 29th, 2024
Gene Product: September 20th, 2012
Gene Model: October 4th, 2014
40 days agomecs1 methyl erythritol cyclodiphosphate synthase1:
 
GRMZM5G835542
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: October 4th, 2014
Gene Model: October 4th, 2014
40 days agomecs2 methyl erythritol cyclodiphosphate synthase2:
 
AC209374.4_FG002
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: October 4th, 2014
Gene Model: October 4th, 2014
40 days agodmes2 diphosphocytidyl methyl erythritol synthase2:
 
GRMZM2G172032
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: March 7th, 2014
Gene Model: October 4th, 2014
40 days agoplt14 phospholipid transfer protein14:
4.08
GRMZM2G406552
He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.     Reference: March 29th, 2024
Gene Product: September 1st, 2003
Gene Model: April 24th, 2020
40 days agofps2 farnesyl diphosphate synthase2:
 
GRMZM2G147721
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: August 18th, 2015
Variation: August 12th, 2022
Gene Model: August 18th, 2015
40 days agosweet15b sugars will eventually be exported transporter15b:
 
GRMZM5G872392
He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.     Reference: March 29th, 2024
Gene Product: November 4th, 2015
Gene Model: November 3rd, 2015
40 days agophos2 phosphate transporter2:
 
GRMZM2G466545
He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.   AT3G23430 (TAIR) Reference: March 29th, 2024
Gene Product: February 27th, 2016
Variation: February 27th, 2016
Gene Model: February 27th, 2016
40 days agovde3 violaxanthin de-epoxidase3:
 
GRMZM2G408706
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: December 13th, 2011
Gene Model: August 11th, 2016
40 days agoburp3 BURP domain-containing protein-RD22-like3:
 
GRMZM2G032145
He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.     Reference: March 29th, 2024
Gene Product: August 18th, 2017
Variation: August 18th, 2017
Gene Model: August 18th, 2017
40 days agocopt2 copper transporter2:
 
GRMZM2G042412
He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.     Reference: March 29th, 2024
Gene Product: July 24th, 2018
Gene Model: July 24th, 2018
40 days agoao2 aldehyde oxidase2:
5.01
GRMZM5G899851
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: October 4th, 2014
Gene Model: July 7th, 2017
40 days agoadf6 actin depolymerizing factor6:
 
GRMZM2G130678
Ruisi Yang et al. 2024. The Role of the ADF Gene Family in Maize Response to Abiotic Stresses Agronomy. 14:717.     Reference: March 29th, 2024
Gene Product: March 4th, 2020
Gene Model: March 4th, 2020
40 days agoadf7 actin depolymerizing factor7:
 
GRMZM2G463471
Ruisi Yang et al. 2024. The Role of the ADF Gene Family in Maize Response to Abiotic Stresses Agronomy. 14:717.     Reference: March 29th, 2024
Gene Product: March 4th, 2020
Gene Model: March 4th, 2020
40 days agoadf8 actin depolymerizing factor8:
 
GRMZM2G147775
Ruisi Yang et al. 2024. The Role of the ADF Gene Family in Maize Response to Abiotic Stresses Agronomy. 14:717.     Reference: March 29th, 2024
Gene Product: March 4th, 2020
Gene Model: March 4th, 2020
40 days agoadf9 actin depolymerizing factor9:
 
GRMZM2G108807
Ruisi Yang et al. 2024. The Role of the ADF Gene Family in Maize Response to Abiotic Stresses Agronomy. 14:717.     Reference: March 29th, 2024
Gene Product: March 4th, 2020
Gene Model: March 4th, 2020
40 days agoadf10 actin depolymerizing factor10:
 
GRMZM2G002825
Ruisi Yang et al. 2024. The Role of the ADF Gene Family in Maize Response to Abiotic Stresses Agronomy. 14:717.     Reference: March 29th, 2024
Gene Product: March 4th, 2020
Gene Model: March 4th, 2020
40 days agoadf11 actin depolymerizing factor11:
 
GRMZM2G064875
Ruisi Yang et al. 2024. The Role of the ADF Gene Family in Maize Response to Abiotic Stresses Agronomy. 14:717.     Reference: March 29th, 2024
Gene Product: March 4th, 2020
Gene Model: March 4th, 2020
40 days agoadf13 actin depolymerizing factor13:
 
GRMZM2G015127
Ruisi Yang et al. 2024. The Role of the ADF Gene Family in Maize Response to Abiotic Stresses Agronomy. 14:717.     Reference: March 29th, 2024
Gene Product: March 4th, 2020
Gene Model: March 4th, 2020
40 days agoccd9 carotenoid cleavage dioxygenase9:
 
GRMZM2G164967
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: September 20th, 2012
Gene Model: June 25th, 2020
40 days agoccd10 carotenoid cleavage dioxygenase10:
 
AC197699.3_FG002
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: September 20th, 2012
Gene Model: June 25th, 2020
40 days agocaat8 cationic amino acid transporter8:
5.03
GRMZM2G434910
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 29th, 2024
Gene Model: May 9th, 2020
40 days agoaaap56 amino acid/auxin permease56:
 
GRMZM2G096407
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
Gene Model: January 8th, 2021
40 days agotcrr2 transfer cell response regulator2:
 
GRMZM2G090264
He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.     Reference: March 29th, 2024
Gene Product: January 16th, 2021
Gene Model: January 16th, 2021
40 days agoaaap14 amino acid/auxin permease14:
 
GRMZM2G082434
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
Gene Model: March 26th, 2021
40 days agoaaap6 amino acid/auxin permease6:
 
GRMZM2G042933
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
40 days agoaaap9 amino acid/auxin permease9:
 
GRMZM2G155491
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
40 days agoaaap17 amino acid/auxin permease17:
 
GRMZM2G032304
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
40 days agoaaap18 amino acid/auxin permease18:
 
GRMZM2G031167
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
40 days agoaaap19 amino acid/auxin permease19:
 
GRMZM2G136288
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
40 days agoaaap21 amino acid/auxin permease21:
 
GRMZM2G110195
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
40 days agoaaap22 amino acid/auxin permease22:
 
GRMZM5G830545
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
40 days agoaaap29 amino acid/auxin permease29:
 
GRMZM2G180547
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
40 days agoaaap33 amino acid/auxin permease33:
 
GRMZM2G332505
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
40 days agoaaap46 amino acid/auxin permease46:
 
GRMZM2G331283
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
40 days agoaaap52 amino acid/auxin permease52:
 
GRMZM2G108023
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
40 days agoaaap54 amino acid/auxin permease54:
 
GRMZM2G164814
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
40 days agoaaap55 amino acid/auxin permease55:
 
GRMZM2G092945
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.   LOC_Os01g65670 (MSU/TIGR)
Os01g0878700 (Gramene)
Reference: March 29th, 2024
Gene Product: March 31st, 2021
Variation: April 22nd, 2022
Gene Model: March 31st, 2021
40 days agoaaap59 amino acid/auxin permease59:
 
GRMZM2G145989
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
40 days agoaaap60 amino acid/auxin permease60:
 
GRMZM2G136300
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
40 days agoaaap64 amino acid/auxin permease64:
 
GRMZM2G076593
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
40 days agoaaap66 amino acid/auxin permease66:
 
GRMZM2G157168
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
40 days agoaaap67 amino acid/auxin permease67:
 
GRMZM2G413943
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
40 days agomads85 MADS-transcription factor 85:
 
   He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.     Reference: March 29th, 2024
Gene Product: September 10th, 2021
40 days agocl48777_1e  :
6.00
GRMZM2G175989
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: January 6th, 2023
Gene Model: May 23rd, 2022
40 days agodmes1 diphosphocytidyl methyl erythritol synthase1:
6.01
GRMZM5G856881
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: March 7th, 2014
Gene Model: October 4th, 2014
40 days agodxs1 deoxy xylulose synthase 1:
6.05
GRMZM2G137151
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: August 17th, 2004
Variation: June 20th, 2012
Gene Model: December 9th, 2011
40 days agodxs2 deoxy xylulose synthase 2:
9.03
GRMZM2G493395
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: August 17th, 2004
Variation: October 22nd, 2020
Gene Model: December 9th, 2011
40 days agocaat1 cationic amino acid transporter1:
1.08
GRMZM5G805732
Islam, MN et al. 2024. Genome-wide identification following functional analysis of amino acid permease and cationic amino acid transporter gene families in maize and their role in drought stress S Afr J Bot. 168:360-371.     Reference: March 29th, 2024
Gene Product: March 29th, 2024
Variation: February 15th, 2007
Gene Model: February 15th, 2019
40 days agobetl10 basal endosperm transfer layer10:
3.05
GRMZM2G091445
He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.     Reference: March 29th, 2024
Variation: October 21st, 2013
Gene Model: July 4th, 2014
40 days agodxr1 deoxy xylulose reductoisomerase1:
3.04
GRMZM2G056975
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: December 10th, 2011
Variation: May 11th, 2005
Gene Model: December 9th, 2011
40 days agobetl9 basal endosperm transfer layer9:
3.05
GRMZM2G087413
He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.     Reference: March 29th, 2024
Gene Product: September 1st, 2003
Variation: October 8th, 2009
Gene Model: July 4th, 2014
40 days agoao1 aldehyde oxidase1:
1.11
GRMZM2G141535
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: May 2nd, 2012
Variation: May 30th, 2012
Gene Model: October 4th, 2014
40 days agopsei8 cystatin8:
1.04
GRMZM2G401374
He, J et al. 2024. Toward unveiling transcriptome dynamics and regulatory modules at the maternal/filial interface of developing maize kernel. Plant J. :doi: 10.1111/tpj.16733.     Reference: March 29th, 2024
Gene Product: April 21st, 2008
Variation: April 21st, 2008
Gene Model: July 28th, 2016
40 days agovp14 viviparous14:
1.08
GRMZM2G014392
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: September 20th, 2012
Variation: June 25th, 2007
Gene Model: May 13th, 2011
40 days agofps1 farnesyl pyrophosphate synthase1:
8.03
GRMZM2G168681
Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: August 18th, 2015
Variation: August 12th, 2022
Gene Model: April 8th, 2013
40 days agopsy3 phytoene synthase3:
7.03
   Yin, PF et al. 2024. Linkage and association mapping in multi-parental populations reveal the genetic basis of carotenoid variation in maize kernels. Plant Biotechnol J.     Reference: March 29th, 2024
Gene Product: December 14th, 2011
Variation: October 8th, 2008
41 days agoGRMZM2G154685  :
 
   Xue, M et al. 2024. Heat-Resistant Inbred Lines Coordinate the Heat Response Gene Expression Remarkably in Maize (Zea mays L.). Genes. 15:289.     Reference: March 28th, 2024
Gene Product: February 10th, 2024
41 days agopebp21 phosphatidylethanolamine-binding protein21:
 
GRMZM2G019993
Jose M Romero et al. 2024. CONSTANS, a HUB for all seasons: How photoperiod pervades plant physiology regulatory circuits. Plant Cell. :doi: 10.1093/plcell/koae090.     Reference: March 28th, 2024
Gene Product: March 19th, 2024
Variation: December 13th, 2010
Gene Model: July 28th, 2016
41 days agoapx1 ascorbate peroxidase homolog:
9.04
GRMZM2G054300
Xue, M et al. 2024. Heat-Resistant Inbred Lines Coordinate the Heat Response Gene Expression Remarkably in Maize (Zea mays L.). Genes. 15:289.     Reference: March 28th, 2024
Gene Product: October 15th, 2020
Variation: August 10th, 2012
Gene Model: June 19th, 2013
41 days agomyb157 MYB-transcription factor 157:
 
   Yizhu Wang et al. 2024. Genome-Wide Association Studies on the Kernel Row Number in a Multi-Parent Maize Population Int J Mol Sci. 25:3377.     Reference: March 28th, 2024
Variation: June 23rd, 2021
41 days agohsp26 heat shock protein26:
1.03
GRMZM2G149647
Xue, M et al. 2024. Heat-Resistant Inbred Lines Coordinate the Heat Response Gene Expression Remarkably in Maize (Zea mays L.). Genes. 15:289.     Reference: March 28th, 2024
Gene Product: September 1st, 2003
Variation: January 30th, 2015
Gene Model: January 30th, 2015
41 days agopdi1 protein disulfide isomerase1:
4.03
GRMZM2G091481
Xue, M et al. 2024. Heat-Resistant Inbred Lines Coordinate the Heat Response Gene Expression Remarkably in Maize (Zea mays L.). Genes. 15:289.     Reference: March 28th, 2024
Gene Product: September 1st, 2003
Variation: December 23rd, 2015
Gene Model: October 23rd, 2013
41 days agocrt4 calreticulin4:
 
GRMZM2G074687
Xue, M et al. 2024. Heat-Resistant Inbred Lines Coordinate the Heat Response Gene Expression Remarkably in Maize (Zea mays L.). Genes. 15:289.     Reference: March 28th, 2024
Gene Product: February 12th, 2007
Gene Model: August 26th, 2020
41 days agombf2 multi-protein bridging factor homolog2:
 
GRMZM2G051135
Xue, M et al. 2024. Heat-Resistant Inbred Lines Coordinate the Heat Response Gene Expression Remarkably in Maize (Zea mays L.). Genes. 15:289.     Reference: March 28th, 2024
Gene Product: June 30th, 2021
Gene Model: June 30th, 2021
41 days agocct10 CO CO-LIKE TIMING OF CAB1 protein domain10:
 
GRMZM2G106108
Jose M Romero et al. 2024. CONSTANS, a HUB for all seasons: How photoperiod pervades plant physiology regulatory circuits. Plant Cell. :doi: 10.1093/plcell/koae090.     Reference: March 28th, 2024
Gene Product: June 18th, 2018
Gene Model: August 17th, 2021
42 days agochr101 chromatin complex subunit A 101:
2.10
   ChenXi Gao et al. 2024. Analysis of Transposable Element Associated Epigenetic Regulation under Drought in Maize Sci Agric Sin. 57:1034-1048..     Reference: March 27th, 2024
Variation: June 9th, 2018
42 days agopebp1 phosphatidylethanolamine-binding protein1:
 
   ChenXi Gao et al. 2024. Analysis of Transposable Element Associated Epigenetic Regulation under Drought in Maize Sci Agric Sin. 57:1034-1048..     Reference: March 27th, 2024
Gene Product: March 19th, 2024
Variation: November 17th, 2010
42 days agopebp9 phosphatidylethanolamine-binding protein9:
 
   ChenXi Gao et al. 2024. Analysis of Transposable Element Associated Epigenetic Regulation under Drought in Maize Sci Agric Sin. 57:1034-1048..     Reference: March 27th, 2024
Gene Product: March 19th, 2024
Variation: December 8th, 2010
42 days agopebp10 phosphatidylethanolamine-binding protein10:
 
   ChenXi Gao et al. 2024. Analysis of Transposable Element Associated Epigenetic Regulation under Drought in Maize Sci Agric Sin. 57:1034-1048..     Reference: March 27th, 2024
Gene Product: March 19th, 2024
Variation: December 8th, 2010
42 days agopebp11 phosphatidylethanolamine-binding protein11:
 
   ChenXi Gao et al. 2024. Analysis of Transposable Element Associated Epigenetic Regulation under Drought in Maize Sci Agric Sin. 57:1034-1048..     Reference: March 27th, 2024
Gene Product: March 19th, 2024
Variation: December 10th, 2010
42 days agomet1 DNA methyl transferase1:
7.01
GRMZM2G334041
ChenXi Gao et al. 2024. Analysis of Transposable Element Associated Epigenetic Regulation under Drought in Maize Sci Agric Sin. 57:1034-1048..     Reference: March 27th, 2024
Gene Product: April 6th, 2018
Variation: December 25th, 2014
Gene Model: December 23rd, 2014
42 days agomet2 DNA methyl transferase2:
10.06
GRMZM2G025592
ChenXi Gao et al. 2024. Analysis of Transposable Element Associated Epigenetic Regulation under Drought in Maize Sci Agric Sin. 57:1034-1048..     Reference: March 27th, 2024
Gene Product: April 6th, 2018
Variation: November 13th, 2018
Gene Model: November 16th, 2011
42 days agomet5 DNA methyl transferase5:
2.02
GRMZM2G005310
ChenXi Gao et al. 2024. Analysis of Transposable Element Associated Epigenetic Regulation under Drought in Maize Sci Agric Sin. 57:1034-1048..     Reference: March 27th, 2024
Gene Product: April 6th, 2018
Variation: June 9th, 2018
Gene Model: December 22nd, 2014
42 days agomet3 DNA methyl transferase3:
9.07
   ChenXi Gao et al. 2024. Analysis of Transposable Element Associated Epigenetic Regulation under Drought in Maize Sci Agric Sin. 57:1034-1048..     Reference: March 27th, 2024
Gene Product: April 6th, 2018
Variation: February 13th, 2016
42 days agomet7 DNA methyl transferase7:
1.01
   ChenXi Gao et al. 2024. Analysis of Transposable Element Associated Epigenetic Regulation under Drought in Maize Sci Agric Sin. 57:1034-1048..     Reference: March 27th, 2024
Gene Product: April 6th, 2018
Variation: December 22nd, 2014
42 days agoacs7 1-aminocyclopropane-1-carboxylate synthase7:
10.05
GRMZM5G894619
ChenXi Gao et al. 2024. Analysis of Transposable Element Associated Epigenetic Regulation under Drought in Maize Sci Agric Sin. 57:1034-1048..     Reference: March 27th, 2024
Gene Product: May 16th, 2016
Variation: April 23rd, 2020
Gene Model: January 21st, 2016
42 days agovpp5 vacuolar-type H+-pyrophosphatase5:
 
GRMZM2G170927
ChenXi Gao et al. 2024. Analysis of Transposable Element Associated Epigenetic Regulation under Drought in Maize Sci Agric Sin. 57:1034-1048..   AT1G15690 (TAIR)
LOC_Os02g09150 (MSU/TIGR)
Reference: March 27th, 2024
Gene Product: August 16th, 2016
Variation: August 16th, 2016
Gene Model: August 16th, 2016
43 days agopx25 peroxidase25:
 
   Qurban Ali et al. 2024. Antioxidant production promotes defense mechanism and different gene expression level in Zea mays under abiotic stress Sci. Rep.. 14:7114.     Reference: March 26th, 2024
Gene Product: September 18th, 2015
43 days agotml2 too many laterals2:
 
   Daniela Vlad et al. 2024. The WIP6 transcription factor too many laterals specifies vein typein C4 and C3 grass leaves. Curr Biol doi: 10.1016/j.cub.2024.03.007   AT1G13290 (TAIR) Reference: March 26th, 2024
Gene Product: November 14th, 2022
Variation: March 26th, 2024
43 days agopx3 peroxidase3:
7.05 - 7.06
GRMZM2G427815
Qurban Ali et al. 2024. Antioxidant production promotes defense mechanism and different gene expression level in Zea mays under abiotic stress Sci. Rep.. 14:7114.     Reference: March 26th, 2024
Gene Product: September 18th, 2015
Variation: August 11th, 2015
Gene Model: August 11th, 2015
43 days agots1 tassel seed1:
2.04 - 2.05
   Qurban Ali et al. 2024. Antioxidant production promotes defense mechanism and different gene expression level in Zea mays under abiotic stress Sci. Rep.. 14:7114.     Reference: March 26th, 2024
Gene Product: January 3rd, 2018
Variation: September 5th, 2019
43 days agolox6 lipoxygenase6:
2.02
GRMZM2G040095
Qurban Ali et al. 2024. Antioxidant production promotes defense mechanism and different gene expression level in Zea mays under abiotic stress Sci. Rep.. 14:7114.     Reference: March 26th, 2024
Gene Product: January 3rd, 2018
Variation: June 11th, 2014
Gene Model: June 10th, 2014
43 days agolox12 lipoxygenase12:
3.04
GRMZM2G106748
Qurban Ali et al. 2024. Antioxidant production promotes defense mechanism and different gene expression level in Zea mays under abiotic stress Sci. Rep.. 14:7114.     Reference: March 26th, 2024
Gene Product: January 3rd, 2018
Variation: August 15th, 2014
Gene Model: June 10th, 2014
43 days agocyp22 cytochrome P-450 22:
 
GRMZM2G067591
Ruiqi Chen et al. 2024. Heterologous Biosynthesis of Kauralexin A1 in Saccharomyces cerevisiae through Metabolic and Enzyme Engineering. J Agric Food Chem. :doi: 10.1021/acs.jafc.4c00856.     Reference: March 26th, 2024
Gene Product: December 30th, 2022
Gene Model: February 26th, 2018
43 days agocpr2 cytochrome P-450 reductase2:
 
GRMZM2G104294
Ruiqi Chen et al. 2024. Heterologous Biosynthesis of Kauralexin A1 in Saccharomyces cerevisiae through Metabolic and Enzyme Engineering. J Agric Food Chem. :doi: 10.1021/acs.jafc.4c00856.     Reference: March 26th, 2024
Gene Product: February 26th, 2018
Gene Model: February 26th, 2018
43 days agouce15 ubiquitin-conjugating enzyme15:
 
GRMZM2G063931
Ma, J et al. 2016. Comparative Study on the Transcriptome of Maize Mature Embryos from Two China Elite Hybrids Zhengdan958 and Anyu5. PLoS One. 11:e0158028.     Reference: March 26th, 2024
Gene Product: December 19th, 2019
Gene Model: December 19th, 2019
43 days agoapx8 ascorbate peroxidase8:
 
   Qurban Ali et al. 2024. Antioxidant production promotes defense mechanism and different gene expression level in Zea mays under abiotic stress Sci. Rep.. 14:7114.     Reference: March 26th, 2024
Gene Product: October 15th, 2020
43 days agopx24 peroxidase24:
 
GRMZM2G023840
Qurban Ali et al. 2024. Antioxidant production promotes defense mechanism and different gene expression level in Zea mays under abiotic stress Sci. Rep.. 14:7114.   AT5G05340 (TAIR) Reference: March 26th, 2024
Gene Product: September 18th, 2015
Gene Model: December 10th, 2021
43 days agotml1 too many laterals1:
 
GRMZM2G150011
Daniela Vlad et al. 2024. The WIP6 transcription factor too many laterals specifies vein typein C4 and C3 grass leaves. Curr Biol doi: 10.1016/j.cub.2024.03.007   AT1G13290 (TAIR) Reference: March 26th, 2024
Gene Product: November 14th, 2022
Variation: December 21st, 2023
Gene Model: August 24th, 2022
43 days agoapx12 ascorbate peroxidase12:
5.05
   Qurban Ali et al. 2024. Antioxidant production promotes defense mechanism and different gene expression level in Zea mays under abiotic stress Sci. Rep.. 14:7114.     Reference: March 26th, 2024
Gene Product: October 15th, 2020
Variation: March 21st, 2017
43 days agorboh10 respiratory burst oxidase10:
3.04
GRMZM2G034896
Ma, J et al. 2016. Comparative Study on the Transcriptome of Maize Mature Embryos from Two China Elite Hybrids Zhengdan958 and Anyu5. PLoS One. 11:e0158028.     Reference: March 26th, 2024
Gene Product: February 18th, 2023
Variation: March 31st, 2005
Gene Model: February 23rd, 2019
44 days agompk20 MAP kinase20:
 
   Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: July 12th, 2013
44 days agosbt53 subtilisin53:
 
   Chuanxi Peng et al. 2024. Unveiling the Regulatory Role of miRNAs in Internode Elongation: Integrated Analysis of MicroRNA and mRNA Expression Profiles across Diverse Dwarfing Treatments in Maize (Zea mays L.) J Agric Food Chem. :doi: 10.1021/acs.jafc.3c09507.     Reference: March 25th, 2024
Gene Product: November 11th, 2016
44 days agoaldh30 aldehyde dehydrogenase30:
 
   Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: June 28th, 2005
44 days agoaldh33 aldehyde dehydrogenase33:
 
   Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: January 5th, 2024
44 days agoaldh34 aldehyde dehydrogenase34:
 
   Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: June 28th, 2005
44 days agonhx18 Na+/H+ antiporter 18:
 
   Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: April 26th, 2021
44 days agonhx19 Na+/H+ antiporter 19:
 
   Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: April 26th, 2021
44 days agopzb01111  :
10.04
   Chuanxi Peng et al. 2024. Unveiling the Regulatory Role of miRNAs in Internode Elongation: Integrated Analysis of MicroRNA and mRNA Expression Profiles across Diverse Dwarfing Treatments in Maize (Zea mays L.) J Agric Food Chem. :doi: 10.1021/acs.jafc.3c09507.     Reference: March 25th, 2024
Variation: December 13th, 2018
44 days agobr2 brachytic2:
1.06 - 1.07
GRMZM2G315375
Chuanxi Peng et al. 2024. Unveiling the Regulatory Role of miRNAs in Internode Elongation: Integrated Analysis of MicroRNA and mRNA Expression Profiles across Diverse Dwarfing Treatments in Maize (Zea mays L.) J Agric Food Chem. :doi: 10.1021/acs.jafc.3c09507.     Reference: March 25th, 2024
Gene Product: May 1st, 2012
Variation: December 28th, 2023
Gene Model: April 28th, 2012
44 days agocncr1 cinnamoyl CoA reductase1:
1.07
GRMZM2G131205
Chuanxi Peng et al. 2024. Unveiling the Regulatory Role of miRNAs in Internode Elongation: Integrated Analysis of MicroRNA and mRNA Expression Profiles across Diverse Dwarfing Treatments in Maize (Zea mays L.) J Agric Food Chem. :doi: 10.1021/acs.jafc.3c09507.     Reference: March 25th, 2024
Gene Product: September 1st, 2003
Variation: May 5th, 2017
Gene Model: June 23rd, 2016
44 days agompk2 MAP kinase2:
9.02
GRMZM2G020216
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: July 12th, 2013
Variation: January 18th, 2013
Gene Model: July 9th, 2013
44 days agosimk1 salt-induced MAP kinase1:
 
GRMZM2G127141
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: July 12th, 2013
Gene Model: July 12th, 2013
44 days agocesa1 cellulose synthase1:
8.03
   Chuanxi Peng et al. 2024. Unveiling the Regulatory Role of miRNAs in Internode Elongation: Integrated Analysis of MicroRNA and mRNA Expression Profiles across Diverse Dwarfing Treatments in Maize (Zea mays L.) J Agric Food Chem. :doi: 10.1021/acs.jafc.3c09507.     Reference: March 25th, 2024
Gene Product: October 7th, 2016
Variation: June 29th, 2005
44 days agocesa7 cellulose synthase7:
7.02
   Chuanxi Peng et al. 2024. Unveiling the Regulatory Role of miRNAs in Internode Elongation: Integrated Analysis of MicroRNA and mRNA Expression Profiles across Diverse Dwarfing Treatments in Maize (Zea mays L.) J Agric Food Chem. :doi: 10.1021/acs.jafc.3c09507.     Reference: March 25th, 2024
Gene Product: October 7th, 2016
Variation: January 3rd, 2014
44 days agolox5 lipoxygenase5:
5.02
GRMZM2G102760
Peiguo Yuan et al. 2024. Duplicated Copy Number Variant of the Maize 9-Lipoxygenase ZmLOX5 Improves 9,10-KODA-Mediated Resistance to Fall Armyworms Genes. 15:401.     Reference: March 25th, 2024
Gene Product: January 3rd, 2018
Variation: March 25th, 2024
Gene Model: June 10th, 2014
44 days agoapx3 ascorbate peroxidase homolog3:
 
GRMZM2G137839
Namuun Altansambar et al. 2024. The combined application of rutin and silicon alleviates osmotic stress in maize seedlings by triggering accumulation of osmolytes and antioxidants’ defense mechanisms Physiol Mol Biol Plants. :doi: 10.1007/s12298-024-01430-z.     Reference: March 25th, 2024
Gene Product: October 15th, 2020
Variation: August 11th, 2012
Gene Model: June 19th, 2013
44 days agompk7 MAP kinase7:
 
GRMZM2G002100
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: July 12th, 2013
Variation: January 18th, 2013
Gene Model: July 9th, 2013
44 days agoaldh7 aldehyde dehydrogenase7:
 
GRMZM2G365483
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: January 5th, 2024
Gene Model: October 2nd, 2019
44 days agoaldh11 aldehyde dehydrogenase11:
 
GRMZM2G013214
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: January 5th, 2024
Gene Model: October 2nd, 2019
44 days agoaldh26 aldehyde dehydrogenase26:
 
GRMZM2G135470
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: January 5th, 2024
Gene Model: October 2nd, 2019
44 days agoaldh9 aldehyde dehydrogenase9:
 
GRMZM2G016189
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: January 5th, 2024
Gene Model: October 2nd, 2019
44 days agoaldh24 aldehyde dehydrogenase24:
 
GRMZM2G398633
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: January 5th, 2024
Gene Model: October 2nd, 2019
44 days agompk4 MAP kinase4:
 
GRMZM2G123886
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: July 12th, 2013
Gene Model: December 13th, 2019
44 days agompk11 MAP kinase11:
 
GRMZM2G375975
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: July 12th, 2013
Gene Model: December 13th, 2019
44 days agompk13 MAP kinase13:
 
GRMZM2G163861
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.   AT2G42880 (TAIR) Reference: March 25th, 2024
Gene Product: July 12th, 2013
Variation: September 19th, 2023
Gene Model: December 13th, 2019
44 days agompk18 MAP kinase18:
 
GRMZM2G122335
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: July 12th, 2013
Gene Model: December 13th, 2019
44 days agompk19 MAP kinase19:
 
GRMZM2G007848
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: July 12th, 2013
Gene Model: December 13th, 2019
44 days agosod11 superoxide dismutase11:
 
GRMZM2G042080
Esra Arslan Yüksel 2024. Effect of L-Arginine on Alleviating Salt Stress through Antioxidant Enzymes Activity in Zea mays Turkish JAF Sci Tech. 12:447-452.     Reference: March 25th, 2024
Gene Product: October 4th, 2021
Gene Model: July 9th, 2020
44 days agonhx10 Na+/H+ antiporter 10:
 
GRMZM2G081668
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
44 days agonhx13 Na+/H+ antiporter 13:
 
   Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: April 26th, 2021
44 days agonhx16 Na+/H+ antiporter 16:
 
GRMZM2G455171
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
44 days agonhx12 Na+/H+ antiporter 12:
 
GRMZM2G051032
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
44 days agoglpx7 glutathione peroxidase7:
 
GRMZM2G144153
Namuun Altansambar et al. 2024. The combined application of rutin and silicon alleviates osmotic stress in maize seedlings by triggering accumulation of osmolytes and antioxidants’ defense mechanisms Physiol Mol Biol Plants. :doi: 10.1007/s12298-024-01430-z.     Reference: March 25th, 2024
Gene Product: March 4th, 2022
Gene Model: November 22nd, 2021
44 days agosaur64 small auxin up RNA64:
 
GRMZM2G095839
Chuanxi Peng et al. 2024. Unveiling the Regulatory Role of miRNAs in Internode Elongation: Integrated Analysis of MicroRNA and mRNA Expression Profiles across Diverse Dwarfing Treatments in Maize (Zea mays L.) J Agric Food Chem. :doi: 10.1021/acs.jafc.3c09507.     Reference: March 25th, 2024
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
44 days agojih4 jasmonoyl-l-isoleucine hydrolase4:
 
GRMZM2G476538
Chuanxi Peng et al. 2024. Unveiling the Regulatory Role of miRNAs in Internode Elongation: Integrated Analysis of MicroRNA and mRNA Expression Profiles across Diverse Dwarfing Treatments in Maize (Zea mays L.) J Agric Food Chem. :doi: 10.1021/acs.jafc.3c09507.     Reference: March 25th, 2024
Gene Product: June 10th, 2022
Gene Model: June 10th, 2022
44 days agompk14 MAP kinase14:
5.03
GRMZM2G062914
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: July 12th, 2013
Gene Model: July 12th, 2013
44 days agompk5 MAP kinase5:
5.03
GRMZM2G048455
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: July 12th, 2013
Variation: August 5th, 2021
Gene Model: December 13th, 2019
44 days agompk12 MAP kinase12:
6.07
GRMZM2G062761
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: July 12th, 2013
Gene Model: December 13th, 2019
44 days agonhx5 Na+/H+ antiporter 5:
7.05
GRMZM2G027851
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: April 26th, 2021
Variation: April 26th, 2021
Gene Model: August 20th, 2018
44 days agonhx14 Na+/H+ antiporter 14:
9.03
GRMZM2G118019
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: April 26th, 2021
Variation: September 25th, 2007
Gene Model: August 23rd, 2019
44 days agompk6 MAP kinase6:
10.03
GRMZM2G089484
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: July 12th, 2013
Variation: March 8th, 2024
Gene Model: July 9th, 2013
44 days agonhx17 Na+/H+ antiporter 17:
1.03
GRMZM2G311165
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: April 26th, 2021
Variation: March 31st, 2005
Gene Model: February 11th, 2019
44 days agonhx1 Na+/H+ antiporter 1:
 
GRMZM2G037342
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
44 days agonhx2 Na+/H+ antiporter 2:
 
GRMZM2G063492
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: April 26th, 2021
Gene Model: August 20th, 2018
44 days agoomt1 Caffeoyl-CoA O-methyltransferase1:
6.02
GRMZM2G127948
Chuanxi Peng et al. 2024. Unveiling the Regulatory Role of miRNAs in Internode Elongation: Integrated Analysis of MicroRNA and mRNA Expression Profiles across Diverse Dwarfing Treatments in Maize (Zea mays L.) J Agric Food Chem. :doi: 10.1021/acs.jafc.3c09507.     Reference: March 25th, 2024
Gene Product: January 5th, 2014
Variation: December 26th, 2016
Gene Model: September 17th, 2014
44 days agompk3 MAP kinase3:
1.03
GRMZM2G017792
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: July 9th, 2013
Variation: July 12th, 2013
Gene Model: July 9th, 2013
44 days agompk8 MAP kinase8:
8.06
GRMZM2G131334
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: July 12th, 2013
Gene Model: September 5th, 2021
44 days agoxth3 xyloglucan endo-transglycosylase/hydrolase3:
10.03
GRMZM2G364748
Chuanxi Peng et al. 2024. Unveiling the Regulatory Role of miRNAs in Internode Elongation: Integrated Analysis of MicroRNA and mRNA Expression Profiles across Diverse Dwarfing Treatments in Maize (Zea mays L.) J Agric Food Chem. :doi: 10.1021/acs.jafc.3c09507.     Reference: March 25th, 2024
Gene Product: March 23rd, 2024
Gene Model: July 2nd, 2020
44 days agompk21 MAP kinase21:
2.08
   Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: July 12th, 2013
Variation: September 25th, 2007
44 days agompk15 MAP kinase15:
6.01
GRMZM2G306028
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: July 12th, 2013
Gene Model: December 13th, 2019
44 days agompk9 MAP kinase9:
5.03
GRMZM2G135904
Amaal Maghraby et al. 2024. Genome-wide identification, characterization and evolutionary analysis of betaine aldehyde dehydrogenase (BADH), mitogen-activated protein kinase (MAPK) and sodium/hydrogen exchanger (NHX) genes in maize (Zea mays) under salt stress Genet Resour Crop Evol. :doi: 10.1007/s10722-024-01930-7.     Reference: March 25th, 2024
Gene Product: July 12th, 2013
Gene Model: December 13th, 2019
46 days agoxth18 xyloglucan endotransglucosylase/hydrolase18:
 
   Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
46 days agoxth19 xyloglucan endotransglucosylase/hydrolase19:
 
   Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
46 days agoxth23 xyloglucan endotransglucosylase/hydrolase23:
 
   Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
46 days agoxth20 xyloglucan endotransglucosylase/hydrolase20:
 
   Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
46 days agoxth14 xyloglucan endotransglucosylase/hydrolase14:
 
   Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
46 days agoxth10 xyloglucan endotransglucosylase/hydrolase10:
 
   Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
46 days agoxth11 xyloglucan endotransglucosylase/hydrolase11:
 
   Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
46 days agoxth12 xyloglucan endotransglucosylase/hydrolase12:
 
   Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
46 days agoxth16 xyloglucan endotransglucosylase/hydrolase16:
 
   Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
46 days agoxth22 xyloglucan endotransglucosylase/hydrolase22:
 
   Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
46 days agoxth24 xyloglucan endotransglucosylase/hydrolase24:
 
   Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
46 days agoxth25 xyloglucan endotransglucosylase/hydrolase25:
 
   Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
46 days agoxth26 xyloglucan endotransglucosylase/hydrolase26:
 
   Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
46 days agoxth29 xyloglucan endotransglucosylase/hydrolase29:
 
   Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
46 days agoxth30 xyloglucan endotransglucosylase/hydrolase30:
 
   Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
46 days agoxet1 xyloglucan endotransglycosylase homolog1:
5.03
GRMZM2G026980
Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: September 5th, 2012
Gene Model: September 5th, 2012
46 days agobx2 benzoxazinone synthesis2:
4.01
GRMZM2G085661
Yohannes Besufekad Setotaw et al. 2024. Salicylic acid positively regulates maize defenses against lepidopteran insects Plant Divers. :doi: 10.1016/j.pld.2024.03.004.     Reference: March 23rd, 2024
Gene Product: April 8th, 2013
Variation: April 12th, 2019
Gene Model: October 24th, 2011
46 days agoxth31 xyloglucan endotransglucosylase/hydrolase31:
 
GRMZM2G388684
Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
Gene Model: July 24th, 2022
46 days agoxth21 xyloglucan endotransglucosylase/hydrolase21:
4.10
GRMZM5G808290
Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
Gene Model: April 27th, 2020
46 days agoxth15 xyloglucan endotransglucosylase/hydrolase15:
 
GRMZM2G319798
Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
Gene Model: June 30th, 2020
46 days agoxth8 xyloglucan endo-transglycosylase/hydrolase8:
 
GRMZM2G091118
Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
Gene Model: January 9th, 2021
46 days agoxth7 xyloglucan endo-transglycosylase/hydrolase7:
 
GRMZM2G063566
Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
Gene Model: January 9th, 2021
46 days agoxth2 xyloglucan endo-transglycosylase/hydrolase2:
 
GRMZM2G128876
Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
Gene Model: January 9th, 2021
46 days agoxth4 xyloglucan endo-transglycosylase/hydrolase4:
 
GRMZM2G166944
Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
Gene Model: January 9th, 2021
46 days agoxth9 xyloglucan endo-transglycosylase/hydrolase9:
 
GRMZM2G174855
Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
Gene Model: July 29th, 2021
46 days agoxth6 xyloglucan endo-transglycosylase/hydrolase6:
4.08
GRMZM2G004699
Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
Gene Model: April 24th, 2020
46 days agoxth17 xyloglucan endotransglucosylase/hydrolase17:
5.04
GRMZM5G886185
Weichao Fu et al. 2024. Genome-wide identification and characterization of xyloglucan endotransglucosylase/hydrolase gene family in maize (Zea mays L.) and the function of ZmXTH30 in response to drought stress Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105744.     Reference: March 23rd, 2024
Gene Product: March 23rd, 2024
Gene Model: May 16th, 2020
47 days agomyb40 myb transcription factor40:
3.04
GRMZM2G051256
Wang, HH et al. 2024. An ARF gene mutation creates flint kernel architecture in dent maize Nat Commun. 15:2565.     Reference: March 22nd, 2024
Variation: February 18th, 2011
Gene Model: July 28th, 2016
47 days agop1 pericarp color1:
1.03
   Wang, HH et al. 2024. An ARF gene mutation creates flint kernel architecture in dent maize Nat Commun. 15:2565.     Reference: March 22nd, 2024
Gene Product: October 13th, 2010
Variation: January 3rd, 2024
47 days agotua4 alpha tubulin4:
5.01
   Wang, HH et al. 2024. An ARF gene mutation creates flint kernel architecture in dent maize Nat Commun. 15:2565.     Reference: March 22nd, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
47 days agoarftf17 ARF-transcription factor 17:
 
   Wang, HH et al. 2024. An ARF gene mutation creates flint kernel architecture in dent maize Nat Commun. 15:2565.     Reference: March 22nd, 2024
Gene Product: January 29th, 2022
Variation: March 22nd, 2024
47 days agoarftf19 ARF-transcription factor 19:
 
GRMZM2G013663
Wang, HH et al. 2024. An ARF gene mutation creates flint kernel architecture in dent maize Nat Commun. 15:2565.     Reference: March 22nd, 2024
Gene Product: January 29th, 2022
Variation: June 22nd, 2021
Gene Model: August 9th, 2018
47 days agoarftf2 ARF-transcription factor 2:
 
   Wang, HH et al. 2024. An ARF gene mutation creates flint kernel architecture in dent maize Nat Commun. 15:2565.     Reference: March 22nd, 2024
Gene Product: January 29th, 2022
47 days agoarftf21 ARF-transcription factor 21:
 
   Wang, HH et al. 2024. An ARF gene mutation creates flint kernel architecture in dent maize Nat Commun. 15:2565.     Reference: March 22nd, 2024
Gene Product: January 29th, 2022
47 days agoglk36 G2-like-transcription factor 36:
 
   Gongjian Li et al. 2024. Gene pyramiding of ZmGLK36 and ZmGDIα-hel for rough dwarf disease resistance in maize Mol Breed. 44:25.     Reference: March 22nd, 2024
Variation: September 14th, 2023
47 days agop2 pericarp color2:
1.03
GRMZM2G057027
Wang, HH et al. 2024. An ARF gene mutation creates flint kernel architecture in dent maize Nat Commun. 15:2565.     Reference: March 22nd, 2024
Variation: April 18th, 2023
Gene Model: August 6th, 2014
47 days agophs1 poor homologous synapsis1:
9.00
GRMZM2G100103
Meilin Zou et al. 2024. Molecular mechanisms and regulation of recombination frequency and distribution in plants Theor Appl Genet. 137:86.     Reference: March 22nd, 2024
Gene Product: September 5th, 2006
Variation: August 7th, 2012
Gene Model: August 7th, 2012
47 days agomyb95 myb transcription factor95:
 
GRMZM2G051528
Wang, HH et al. 2024. An ARF gene mutation creates flint kernel architecture in dent maize Nat Commun. 15:2565.     Reference: March 22nd, 2024
Variation: February 17th, 2011
Gene Model: May 28th, 2015
47 days agosrph1 SGT1 disease resistance protein homolog1:
3.09
GRMZM2G105019
Wang, HH et al. 2024. An ARF gene mutation creates flint kernel architecture in dent maize Nat Commun. 15:2565.     Reference: March 22nd, 2024
Variation: March 31st, 2005
Gene Model: March 23rd, 2015
47 days agorad51b recombination protein51 gene b:
3.05
GRMZM2G084762
Meilin Zou et al. 2024. Molecular mechanisms and regulation of recombination frequency and distribution in plants Theor Appl Genet. 137:86.     Reference: March 22nd, 2024
Gene Product: August 12th, 2016
Variation: May 13th, 2012
Gene Model: June 19th, 2014
47 days agorad51a recombination protein51 gene a:
7.04
GRMZM2G121543
Meilin Zou et al. 2024. Molecular mechanisms and regulation of recombination frequency and distribution in plants Theor Appl Genet. 137:86.     Reference: March 22nd, 2024
Gene Product: August 12th, 2016
Variation: April 19th, 2012
Gene Model: June 19th, 2014
47 days agogdi1 guanosine nucleotide diphosphate dissociation inhibitor1:
8.03
   Gongjian Li et al. 2024. Gene pyramiding of ZmGLK36 and ZmGDIα-hel for rough dwarf disease resistance in maize Mol Breed. 44:25.     Reference: March 22nd, 2024
Gene Product: January 24th, 2020
Variation: February 18th, 2022
48 days agoLOC100284943  :
 
   Sun, XR et al. 2024. Cloning, Expression, and Functional Characterization of Two Highly Efficient Flavonoid-di-O-glycosyltransferases ZmUGT84A1 and ZmUGT84A2 from Maize (Zea mays L.). J Agric Food Chem. :doi: 10.1021/acs.jafc.3c06327.   AT4G15480 (TAIR) Reference: March 21st, 2024
Gene Product: September 24th, 2018
48 days agoZm00001d048945  :
 
   He, XM et al. 2024. Heritable microbiome variation is correlated with source environment in locally adapted maize varieties Nature Plants. :doi: 10.1038/s41477-024-01654-7.   AT3G23090 (TAIR) Reference: March 21st, 2024
Variation: March 21st, 2024
48 days agoGRMZM2G304712  :
 
GRMZM2G304712
Sun, XR et al. 2024. Cloning, Expression, and Functional Characterization of Two Highly Efficient Flavonoid-di-O-glycosyltransferases ZmUGT84A1 and ZmUGT84A2 from Maize (Zea mays L.). J Agric Food Chem. :doi: 10.1021/acs.jafc.3c06327.   AT4G15480 (TAIR) Reference: March 21st, 2024
Gene Product: September 24th, 2018
Gene Model: June 21st, 2018
49 days agokrp13 kinesin-related protein13:
1.08
GRMZM2G034828
Youqiang Li et al. 2024. Transcriptome Analysis of Potential Regulatory Genes under Chemical Doubling in Maize Haploids Agronomy. 14:624.   AT3G20150 (TAIR) Reference: March 20th, 2024
Gene Product: September 18th, 2023
Gene Model: February 1st, 2015
50 days agoLOC103655445  :
 
       Gene Product: March 19th, 2024
50 days agogrf13 general regulatory factor13:
2.09
GRMZM2G408768
Niu, LJ et al. 2024. Maize multi-omics reveal leaf water status controlling of differential transcriptomes, proteomes and hormones as mechanisms of age-dependent osmotic stress response in leaves. Stress Biol. 4:19.     Reference: March 19th, 2024
Gene Product: March 6th, 2023
Gene Model: February 20th, 2019
50 days agopebp2 phosphatidylethanolamine-binding protein2:
 
   Danilevskaya, O; Ananiev, E; Simmons, CR. 2008. Plant Physiol. 146:250-264     Reference: March 19th, 2024
Gene Product: March 19th, 2024
Variation: December 15th, 2010
50 days agopebp4 phosphatidylethanolamine-binding protein4:
 
   Danilevskaya, O; Ananiev, E; Simmons, CR. 2008. Plant Physiol. 146:250-264     Reference: March 19th, 2024
Gene Product: March 19th, 2024
Variation: December 15th, 2010
50 days agopebp7 phosphatidylethanolamine-binding protein7:
 
   Danilevskaya, O; Ananiev, E; Simmons, CR. 2008. Plant Physiol. 146:250-264     Reference: March 19th, 2024
Gene Product: March 19th, 2024
Variation: June 19th, 2015
50 days agopebp12 phosphatidylethanolamine-binding protein12:
 
   Chardon, F et al. 2005. Phylogenomic analysis of the PEBP gene family in cereals. J Mol Evol. 61:579-90.     Reference: March 19th, 2024
Gene Product: March 19th, 2024
Variation: December 10th, 2010
50 days agopebp13 phosphatidylethanolamine-binding protein13:
 
   Chardon, F et al. 2005. Phylogenomic analysis of the PEBP gene family in cereals. J Mol Evol. 61:579-90.     Reference: March 19th, 2024
Gene Product: March 19th, 2024
Variation: December 10th, 2010
50 days agopebp14 phosphatidylethanolamine-binding protein:
 
   Chardon, F et al. 2005. Phylogenomic analysis of the PEBP gene family in cereals. J Mol Evol. 61:579-90.     Reference: March 19th, 2024
Gene Product: March 19th, 2024
Variation: December 15th, 2010
50 days agopebp15 phosphatidylethanolamine-binding protein15:
 
   Chardon, F et al. 2005. Phylogenomic analysis of the PEBP gene family in cereals. J Mol Evol. 61:579-90.     Reference: March 19th, 2024
Gene Product: March 19th, 2024
Variation: December 15th, 2010
50 days agopebp16 phosphatidylethanolamine-binding protein16:
 
   Danilevskaya, O; Ananiev, E; Simmons, CR. 2008. Plant Physiol. 146:250-264     Reference: March 19th, 2024
Gene Product: March 19th, 2024
Variation: December 15th, 2010
50 days agopebp17 phosphatidylethanolamine-binding protein17:
 
   Danilevskaya, O; Ananiev, E; Simmons, CR. 2008. Plant Physiol. 146:250-264     Reference: March 19th, 2024
Gene Product: March 19th, 2024
Variation: December 15th, 2010
50 days agopebp18 phosphatidylethanolamine-binding protein18:
 
   Chardon, F et al. 2005. Phylogenomic analysis of the PEBP gene family in cereals. J Mol Evol. 61:579-90.     Reference: March 19th, 2024
Gene Product: March 19th, 2024
Variation: December 13th, 2010
50 days agopebp20 phosphatidylethanolamine-binding protein20:
 
   Chardon, F et al. 2005. Phylogenomic analysis of the PEBP gene family in cereals. J Mol Evol. 61:579-90.     Reference: March 19th, 2024
Gene Product: March 19th, 2024
Variation: December 13th, 2010
50 days agopebp24 phosphatidylethanolamine-binding protein24:
 
GRMZM2G440005
Chardon, F et al. 2005. Phylogenomic analysis of the PEBP gene family in cereals. J Mol Evol. 61:579-90.     Reference: March 19th, 2024
Gene Product: March 19th, 2024
Variation: December 14th, 2010
Gene Model: July 28th, 2016
50 days agopebp25 phosphatidylethanolamine-binding protein25:
 
GRMZM2G021560
Chardon, F et al. 2005. Phylogenomic analysis of the PEBP gene family in cereals. J Mol Evol. 61:579-90.     Reference: March 19th, 2024
Gene Product: March 19th, 2024
Variation: December 15th, 2010
Gene Model: July 28th, 2016
50 days agopebp26 phosphatidylethanolamine-binding protein26:
 
GRMZM2G400167
Chardon, F et al. 2005. Phylogenomic analysis of the PEBP gene family in cereals. J Mol Evol. 61:579-90.     Reference: March 19th, 2024
Gene Product: March 19th, 2024
Variation: December 14th, 2010
Gene Model: July 28th, 2016
50 days agogi1 gigantea1:
8.03
GRMZM2G107101
Suhui Chen et al. 2024. FKF1b controls reproductive transition associated with adaptation to geographical distribution in maize. J Integr Plant Biol. :doi: 10.1111/jipb.13639.     Reference: March 19th, 2024
Gene Product: September 19th, 2012
Variation: April 23rd, 2013
Gene Model: September 18th, 2012
50 days agobzip68 bZIP-transcription factor 68:
 
   Niu, LJ et al. 2024. Maize multi-omics reveal leaf water status controlling of differential transcriptomes, proteomes and hormones as mechanisms of age-dependent osmotic stress response in leaves. Stress Biol. 4:19.     Reference: March 19th, 2024
Variation: May 11th, 2022
50 days agonip2a NOD26-like membrane intrinsic protein2:
5.07
GRMZM2G028325
Luis Felipe Lata-Tenesaca et al. 2024. Physiological and Biochemical Aspects of Silicon-Mediated Resistance in Maize against Maydis Leaf Blight. Plants. 13:531.     Reference: March 19th, 2024
Gene Product: January 27th, 2022
Variation: May 28th, 2013
Gene Model: June 3rd, 2015
50 days agonip2b NOD26-like membrane intrinsic protein2:
6.04
GRMZM2G137108
Luis Felipe Lata-Tenesaca et al. 2024. Physiological and Biochemical Aspects of Silicon-Mediated Resistance in Maize against Maydis Leaf Blight. Plants. 13:531.     Reference: March 19th, 2024
Gene Product: January 22nd, 2021
Variation: July 3rd, 2015
Gene Model: June 3rd, 2015
50 days agosut7 sucrose transporter7:
9.07
GRMZM2G087901
Niu, LJ et al. 2024. Maize multi-omics reveal leaf water status controlling of differential transcriptomes, proteomes and hormones as mechanisms of age-dependent osmotic stress response in leaves. Stress Biol. 4:19.     Reference: March 19th, 2024
Gene Product: September 14th, 2013
Variation: April 13th, 2017
Gene Model: April 17th, 2013
50 days agolhcb4 light harvesting complex a/b protein4:
5.07
GRMZM2G103101
Niu, LJ et al. 2024. Maize multi-omics reveal leaf water status controlling of differential transcriptomes, proteomes and hormones as mechanisms of age-dependent osmotic stress response in leaves. Stress Biol. 4:19.     Reference: March 19th, 2024
Gene Product: January 8th, 2005
Variation: September 1st, 2003
Gene Model: October 9th, 2015
50 days agofkf1 flavin-binding kelch repeat f-box1:
 
GRMZM2G107945
Suhui Chen et al. 2024. FKF1b controls reproductive transition associated with adaptation to geographical distribution in maize. J Integr Plant Biol. :doi: 10.1111/jipb.13639.   AT1G68050 (TAIR) Reference: March 19th, 2024
Gene Product: April 27th, 2022
Variation: March 19th, 2024
Gene Model: December 12th, 2017
50 days agofkf2 flavin-binding kelch repeat f-box2:
 
GRMZM2G106363
Suhui Chen et al. 2024. FKF1b controls reproductive transition associated with adaptation to geographical distribution in maize. J Integr Plant Biol. :doi: 10.1111/jipb.13639.   AT1G68050 (TAIR) Reference: March 19th, 2024
Gene Product: April 27th, 2022
Variation: March 19th, 2024
Gene Model: December 12th, 2017
50 days agouce9 ubiquitin conjugating enzyme9:
 
GRMZM2G027378
Niu, LJ et al. 2024. Maize multi-omics reveal leaf water status controlling of differential transcriptomes, proteomes and hormones as mechanisms of age-dependent osmotic stress response in leaves. Stress Biol. 4:19.     Reference: March 19th, 2024
Gene Product: December 19th, 2019
Gene Model: May 10th, 2018
50 days agocyc16 cyclin16:
 
GRMZM2G007130
Niu, LJ et al. 2024. Maize multi-omics reveal leaf water status controlling of differential transcriptomes, proteomes and hormones as mechanisms of age-dependent osmotic stress response in leaves. Stress Biol. 4:19.     Reference: March 19th, 2024
Gene Product: June 26th, 2009
Gene Model: December 21st, 2018
50 days agolsi2 low silicon2:
 
GRMZM2G158378
Luis Felipe Lata-Tenesaca et al. 2024. Physiological and Biochemical Aspects of Silicon-Mediated Resistance in Maize against Maydis Leaf Blight. Plants. 13:531.     Reference: March 19th, 2024
Gene Product: January 22nd, 2021
Gene Model: January 22nd, 2021
50 days agoB6UH30  :
 
AC197705.4_FG003
Leyla Nazari et al. 2023. Transcriptional survey of abiotic stress response in maize (Zea mays L.) in the level of gene co-expression network and differential gene correlation analysis AoB Plants. :doi: 10.1093/aobpla/plad087.     Reference: December 22nd, 2023
Gene Product: March 19th, 2024
Gene Model: November 4th, 2021
50 days agoIDP62  :
6.04
GRMZM2G012276
Niu, LJ et al. 2024. Maize multi-omics reveal leaf water status controlling of differential transcriptomes, proteomes and hormones as mechanisms of age-dependent osmotic stress response in leaves. Stress Biol. 4:19.     Reference: March 19th, 2024
Variation: March 31st, 2005
Gene Model: June 30th, 2021
50 days agocenH3 centromeric histone H3:
6.06
GRMZM2G158526
Bortiri, E et al. 2024. Cyto-swapping in maize by haploid induction with a cenh3 mutant Nature Plants. :doi: 10.1038/s41477-024-01630-1.     Reference: March 19th, 2024
Gene Product: December 24th, 2015
Variation: March 18th, 2024
Gene Model: October 24th, 2011
50 days agosus2 sucrose synthase2:
1.04
GRMZM2G318780
Niu, LJ et al. 2024. Maize multi-omics reveal leaf water status controlling of differential transcriptomes, proteomes and hormones as mechanisms of age-dependent osmotic stress response in leaves. Stress Biol. 4:19.     Reference: March 19th, 2024
Gene Product: October 25th, 2006
Variation: February 1st, 2020
Gene Model: August 3rd, 2013
51 days agoGRMZM2G047656  :
 
   Dongying Zhou et al. 2024. Integrated Transcriptomic and Metabolomic Analysis of Exogenous NAA Effects on Maize Seedling Root Systems under Potassium Deficiency Int J Mol Sci. 25:3366.     Reference: March 18th, 2024
Gene Product: September 18th, 2015
51 days agoGRMZM2G136042  :
 
   Dongying Zhou et al. 2024. Integrated Transcriptomic and Metabolomic Analysis of Exogenous NAA Effects on Maize Seedling Root Systems under Potassium Deficiency Int J Mol Sci. 25:3366.     Reference: March 18th, 2024
Gene Product: September 18th, 2015
51 days agoGRMZM2G150731  :
 
   Dongying Zhou et al. 2024. Integrated Transcriptomic and Metabolomic Analysis of Exogenous NAA Effects on Maize Seedling Root Systems under Potassium Deficiency Int J Mol Sci. 25:3366.     Reference: March 18th, 2024
Gene Product: September 18th, 2015
51 days agoZm00001eb292010  :
 
   Dongying Zhou et al. 2024. Integrated Transcriptomic and Metabolomic Analysis of Exogenous NAA Effects on Maize Seedling Root Systems under Potassium Deficiency Int J Mol Sci. 25:3366.     Reference: March 18th, 2024
Gene Product: November 27th, 2023
51 days agomha2 plasma-membrane H+ATPase2:
2.02
   Dongying Zhou et al. 2024. Integrated Transcriptomic and Metabolomic Analysis of Exogenous NAA Effects on Maize Seedling Root Systems under Potassium Deficiency Int J Mol Sci. 25:3366.     Reference: March 18th, 2024
Gene Product: September 1st, 2003
Variation: May 13th, 2009
51 days agomha4 proton-exporting ATPase4:
10.07
GRMZM2G006894
Dongying Zhou et al. 2024. Integrated Transcriptomic and Metabolomic Analysis of Exogenous NAA Effects on Maize Seedling Root Systems under Potassium Deficiency Int J Mol Sci. 25:3366.     Reference: March 18th, 2024
Gene Product: September 1st, 2003
Variation: December 14th, 2017
Gene Model: December 14th, 2017
51 days agoglu4 beta-glucosidase4:
8.06
AC155376.2_FG005
Dongying Zhou et al. 2024. Integrated Transcriptomic and Metabolomic Analysis of Exogenous NAA Effects on Maize Seedling Root Systems under Potassium Deficiency Int J Mol Sci. 25:3366.   AT5G36890 (TAIR)
LOC_Os01g67220 (MSU/TIGR)
Reference: March 18th, 2024
Gene Product: June 26th, 2019
Gene Model: September 24th, 2018
51 days agohak1 potassium high-affinity transporter1:
2.04
GRMZM2G093826
Dongying Zhou et al. 2024. Integrated Transcriptomic and Metabolomic Analysis of Exogenous NAA Effects on Maize Seedling Root Systems under Potassium Deficiency Int J Mol Sci. 25:3366.     Reference: March 18th, 2024
Gene Product: March 12th, 2020
Gene Model: February 23rd, 2018
51 days agopx14 peroxidase14:
2.03
GRMZM2G108219
Dongying Zhou et al. 2024. Integrated Transcriptomic and Metabolomic Analysis of Exogenous NAA Effects on Maize Seedling Root Systems under Potassium Deficiency Int J Mol Sci. 25:3366.     Reference: March 18th, 2024
Gene Product: September 18th, 2015
Variation: February 22nd, 2015
Gene Model: February 23rd, 2015
51 days agopox2 guaiacol peroxidase2:
1.04
GRMZM2G040638
Dongying Zhou et al. 2024. Integrated Transcriptomic and Metabolomic Analysis of Exogenous NAA Effects on Maize Seedling Root Systems under Potassium Deficiency Int J Mol Sci. 25:3366.     Reference: March 18th, 2024
Gene Product: September 1st, 2003
Gene Model: February 9th, 2015
51 days agolrs1 liguleless related sequence1:
8.07
AC232238.2_FG004
Langham, RJ, et al. 2004. Genetics. 166:935-945     Reference: March 18th, 2024
Gene Product: August 21st, 2018
Variation: August 22nd, 2014
Gene Model: August 22nd, 2014
51 days agopht5 phosphate transporter protein5:
 
GRMZM2G041595
Vasconcelos, MJV et al. 2024. Gaspé Flint corn as a seed-to-seed model to study the effect of phosphorus on maize growth and development Genet Mol Res. 23:doi: 10.4238/gmr19213.     Reference: March 18th, 2024
Gene Product: June 16th, 2016
Gene Model: May 27th, 2015
51 days agoprx64 peroxidase64:
 
GRMZM2G076562
Dongying Zhou et al. 2024. Integrated Transcriptomic and Metabolomic Analysis of Exogenous NAA Effects on Maize Seedling Root Systems under Potassium Deficiency Int J Mol Sci. 25:3366.     Reference: March 18th, 2024
Gene Product: September 18th, 2015
Gene Model: September 22nd, 2018
51 days agohak20 potassium high-affinity transporter20:
 
GRMZM2G395267
Dongying Zhou et al. 2024. Integrated Transcriptomic and Metabolomic Analysis of Exogenous NAA Effects on Maize Seedling Root Systems under Potassium Deficiency Int J Mol Sci. 25:3366.     Reference: March 18th, 2024
Gene Product: March 12th, 2020
Gene Model: March 12th, 2020
51 days agopx15 peroxidase15:
 
GRMZM2G108123
Dongying Zhou et al. 2024. Integrated Transcriptomic and Metabolomic Analysis of Exogenous NAA Effects on Maize Seedling Root Systems under Potassium Deficiency Int J Mol Sci. 25:3366.     Reference: March 18th, 2024
Gene Product: September 18th, 2015
Gene Model: June 22nd, 2020
51 days agochx13 cation/H+ antiporter 13:
 
   Dongying Zhou et al. 2024. Integrated Transcriptomic and Metabolomic Analysis of Exogenous NAA Effects on Maize Seedling Root Systems under Potassium Deficiency Int J Mol Sci. 25:3366.     Reference: March 18th, 2024
Gene Product: April 26th, 2021
51 days agopx26 peroxidase26:
7.05
GRMZM2G126261
Dongying Zhou et al. 2024. Integrated Transcriptomic and Metabolomic Analysis of Exogenous NAA Effects on Maize Seedling Root Systems under Potassium Deficiency Int J Mol Sci. 25:3366.     Reference: March 18th, 2024
Gene Product: September 18th, 2015
Gene Model: July 30th, 2020
51 days agocipk23 calcineurin B-like-interacting protein kinase23:
7.01
GRMZM2G013236
Dongying Zhou et al. 2024. Integrated Transcriptomic and Metabolomic Analysis of Exogenous NAA Effects on Maize Seedling Root Systems under Potassium Deficiency Int J Mol Sci. 25:3366.     Reference: March 18th, 2024
Gene Product: August 25th, 2018
Gene Model: December 15th, 2018
51 days agogpm465  :
3.04
   Dongying Zhou et al. 2024. Integrated Transcriptomic and Metabolomic Analysis of Exogenous NAA Effects on Maize Seedling Root Systems under Potassium Deficiency Int J Mol Sci. 25:3366.     Reference: March 18th, 2024
Variation: September 25th, 2007
51 days agokch5 potassium channel5:
8.06
   Dongying Zhou et al. 2024. Integrated Transcriptomic and Metabolomic Analysis of Exogenous NAA Effects on Maize Seedling Root Systems under Potassium Deficiency Int J Mol Sci. 25:3366.     Reference: March 18th, 2024
Gene Product: November 27th, 2023
Variation: July 22nd, 2014
52 days agocdpk50 calcium dependent protein kinase50:
 
   Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
52 days agocdpk51 calcium dependent protein kinase51:
 
   Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
52 days agocdpk3 calcium dependent protein kinase3:
2.07
GRMZM2G168706
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Variation: September 1st, 2003
Gene Model: December 3rd, 2013
52 days agocdpk6 calcium dependent protein kinase6:
4.09
GRMZM2G035843
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Variation: September 1st, 2003
Gene Model: December 19th, 2017
52 days agocdpk4 calcium dependent protein kinase4:
10.06
GRMZM2G321239
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Variation: January 10th, 2018
Gene Model: December 3rd, 2013
52 days agocdpk8 calcium dependent protein kinase8:
7.03
GRMZM2G154489
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Variation: July 22nd, 2015
Gene Model: March 31st, 2015
52 days agocdpk27 calcium dependent protein kinase27:
8.08
GRMZM2G311220
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Variation: September 1st, 2003
Gene Model: January 10th, 2018
52 days agocdpk5 calcium dependent protein kinase5:
2.02
GRMZM2G314396
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Variation: February 16th, 2015
Gene Model: February 16th, 2015
52 days agoknox2 knotted related homeobox2:
9.03
GRMZM2G055243
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: September 1st, 2003
Variation: March 17th, 2024
Gene Model: September 17th, 2015
52 days agocdpk7 calcium dependent protein kinase7:
4.06
GRMZM2G081310
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Variation: September 1st, 2003
Gene Model: March 31st, 2015
52 days agocdpk35 calcium-dependent protein kinase35:
2.09
GRMZM2G012326
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Variation: September 25th, 2007
Gene Model: January 31st, 2018
52 days agorbap2 WD-repeat protein RBAP2:
3.07
GRMZM2G137965
Poretsky, E et al. 2024. Harnessing the predicted maize pan-interactome for putative gene function prediction and prioritization of candidate genes for important traits. G3. :doi: 10.1093/g3journal/jkae059.     Reference: March 17th, 2024
Variation: September 1st, 2003
Gene Model: December 10th, 2012
52 days agocdpk34 calcium dependent protein kinase34:
1.11
GRMZM2G104125
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: December 19th, 2019
52 days agocdpk33 calcium dependent protein kinase33:
2.06
GRMZM2G365035
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: December 13th, 2019
52 days agocdpk11 calcium dependent protein kinase11:
 
GRMZM2G047486
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: July 9th, 2013
Variation: April 3rd, 2015
Gene Model: July 9th, 2013
52 days agocdpk16 calcium dependent protein kinase16:
 
GRMZM2G006404
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: January 10th, 2018
52 days agocdpk17 calcium dependent protein kinase17:
 
GRMZM2G025387
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: January 10th, 2018
52 days agocdpk18 calcium dependent protein kinase18:
 
GRMZM2G027351
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: January 10th, 2018
52 days agocdpk19 calcium dependent protein kinase19:
 
GRMZM2G028086
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: January 10th, 2018
52 days agocdpk22 calcium dependent protein kinase22:
 
GRMZM2G053868
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Variation: March 17th, 2024
Gene Model: January 10th, 2018
52 days agocdpk23 calcium dependent protein kinase23:
 
GRMZM2G058305
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: January 10th, 2018
52 days agocdpk24 calcium dependent protein kinase24:
 
GRMZM2G088361
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: January 10th, 2018
52 days agocdpk26 calcium dependent protein kinase26:
 
GRMZM2G167276
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: January 10th, 2018
52 days agocdpk28 calcium dependent protein kinase28:
 
GRMZM2G340224
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: January 10th, 2018
52 days agocdpk29 calcium dependent protein kinase29:
 
GRMZM2G332660
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: May 30th, 2018
52 days agocdpk30 calcium dependent protein kinase30:
 
GRMZM2G112057
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: November 8th, 2019
52 days agocdpk36 calcium dependent protein kinase36:
 
GRMZM2G032852
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: December 17th, 2020
52 days agocdpk37 calcium dependent protein kinase37:
 
GRMZM2G040743
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: December 17th, 2020
52 days agocdpk9 calcium dependent protein kinase9:
 
GRMZM2G076634
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: December 17th, 2020
52 days agocdpk40 calcium dependent protein kinase40:
 
GRMZM5G856738
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: December 18th, 2020
52 days agocdpk41 calcium dependent protein kinase41:
 
GRMZM2G472311
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: December 18th, 2020
52 days agocdpk42 calcium dependent protein kinase42:
 
GRMZM2G121228
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: December 18th, 2020
52 days agocdpk43 calcium dependent protein kinase43:
 
GRMZM2G080871
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: December 18th, 2020
52 days agocdpk45 calcium dependent protein kinase45:
 
GRMZM2G353957
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: December 18th, 2020
52 days agocdpk46 calcium dependent protein kinase46:
 
GRMZM2G347226
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: December 18th, 2020
52 days agocdpk47 calcium dependent protein kinase47:
 
GRMZM2G097533
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Variation: May 13th, 2021
Gene Model: December 18th, 2020
52 days agocdpk48 calcium dependent protein kinase48:
 
AC210013.4_FG014
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: December 18th, 2020
52 days agocdpk49 calcium dependent protein kinase49:
 
AC203294.3_FG001
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: December 18th, 2020
52 days agocdpk39 calcium dependent protein kinase39:
 
GRMZM2G003059
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Gene Model: December 18th, 2020
52 days agocdpk10 calcium-dependent protein kinase 10:
 
GRMZM2G320506
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Variation: February 13th, 2008
Gene Model: March 31st, 2015
52 days agocdpk32 calcium dependent protein kinase32:
2.08
GRMZM2G099425
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Variation: September 9th, 2021
Gene Model: December 13th, 2019
52 days agocdpk2 calcium dependent protein kinase2:
2.05
GRMZM2G365815
Zhu, M et al. 2024. The maize ZmCPK39-ZmKnox2 module regulates plant height aBIOTECH. :doi: 10.1007/s42994-024-00150-y.     Reference: March 17th, 2024
Gene Product: December 3rd, 2013
Variation: November 21st, 2013
Gene Model: March 31st, 2015
54 days agocdc2 cell division control protein homolog2:
1.01
GRMZM2G008327
Lulu Bao et al. 2024. ZmSMR10 Increases the Level of Endoreplication of Plants through Its Interactions with ZmPCNA2 and ZmCSN5B Int J Mol Sci. 25:3356.     Reference: March 15th, 2024
Gene Product: October 19th, 2022
Variation: April 23rd, 2010
Gene Model: March 30th, 2015
54 days agoppr103 pentatricopeptide repeat-containing protein103:
 
GRMZM2G170896
Tyra N McCray et al. 2024. The dicot homolog of maize PPR103 carries a C-terminal DYW domain and may have a role in C-to-U editing of some chloroplast RNA transcripts. Plant Mol Biol. 114:28.   AT5G03800 (TAIR) Reference: March 15th, 2024
Gene Product: December 27th, 2016
Variation: April 21st, 2016
Gene Model: April 21st, 2016
54 days agosmr10 siamese-related10:
 
GRMZM2G493549
Lulu Bao et al. 2024. ZmSMR10 Increases the Level of Endoreplication of Plants through Its Interactions with ZmPCNA2 and ZmCSN5B Int J Mol Sci. 25:3356.     Reference: March 15th, 2024
Gene Product: March 8th, 2017
Gene Model: July 30th, 2020
54 days agopcna2 proliferating cell nuclear antigen2:
4.07
GRMZM2G108712
Lulu Bao et al. 2024. ZmSMR10 Increases the Level of Endoreplication of Plants through Its Interactions with ZmPCNA2 and ZmCSN5B Int J Mol Sci. 25:3356.     Reference: March 15th, 2024
Gene Product: September 1st, 2003
Variation: August 23rd, 2014
Gene Model: August 23rd, 2014
54 days agocdc1 cell division control protein homolog1:
4.10
GRMZM2G174596
Lulu Bao et al. 2024. ZmSMR10 Increases the Level of Endoreplication of Plants through Its Interactions with ZmPCNA2 and ZmCSN5B Int J Mol Sci. 25:3356.     Reference: March 15th, 2024
Gene Product: October 19th, 2022
Gene Model: December 21st, 2018
54 days agopco066126  :
2.02
   Lulu Bao et al. 2024. ZmSMR10 Increases the Level of Endoreplication of Plants through Its Interactions with ZmPCNA2 and ZmCSN5B Int J Mol Sci. 25:3356.   AT1G22920 (TAIR) Reference: March 15th, 2024
Variation: September 25th, 2007
55 days agowakl40 wall associated kinase like40:
 
   Wang, P et al. 2024. The symphony of maize signaling quartet defending against gray leaf spot. Stress Biol. 4:18.     Reference: March 14th, 2024
Gene Product: December 7th, 2023
Variation: January 18th, 2024
55 days agoccp2 cysteine protease2:
7.02
   Yuan, W et al. 2024. NIa-Pro of sugarcane mosaic virus targets Corn Cysteine Protease 1 (CCP1) to undermine salicylic acid-mediated defense in maize. PloS Pathogens. 20:e1012086.     Reference: March 14th, 2024
Gene Product: October 11th, 2021
Variation: July 30th, 2011
55 days agoms23 male sterile23:
8.01 - 8.02
GRMZM2G021276
Cao, SA et al. 2024. Cytoplasmic genome contributions to domestication and improvement of modern maize BMC Biology. 22:64.     Reference: March 14th, 2024
Gene Product: September 14th, 2016
Variation: September 6th, 2019
Gene Model: December 4th, 2016
55 days agorf3 restorer of fertility3:
2.09
   Cao, SA et al. 2024. Cytoplasmic genome contributions to domestication and improvement of modern maize BMC Biology. 22:64.     Reference: March 14th, 2024
Gene Product: December 27th, 2016
Variation: September 1st, 2003
55 days agorboh4 respiratory burst oxidase4:
4.08
GRMZM2G441541
Wang, P et al. 2024. The symphony of maize signaling quartet defending against gray leaf spot. Stress Biol. 4:18.     Reference: March 14th, 2024
Gene Product: February 18th, 2023
Variation: September 1st, 2003
Gene Model: July 2nd, 2013
55 days agoumc1060  :
5.04
GRMZM2G346133
Rumit Patel et al. 2024. Genetic Diversity and Population Structure of Maize (Zea mays L.) Inbred Lines in Association with Phenotypic and Grain Qualitative Traits Using SSR Genotyping Plants. 13:823.     Reference: March 14th, 2024
Variation: September 1st, 2003
Gene Model: October 14th, 2018
55 days agoumc1135  :
3.07
GRMZM2G105863
Rumit Patel et al. 2024. Genetic Diversity and Population Structure of Maize (Zea mays L.) Inbred Lines in Association with Phenotypic and Grain Qualitative Traits Using SSR Genotyping Plants. 13:823.     Reference: March 14th, 2024
Variation: September 1st, 2003
Gene Model: March 30th, 2018
55 days agosert2 serrate ortholog2:
4.05
GRMZM2G377165
Rumit Patel et al. 2024. Genetic Diversity and Population Structure of Maize (Zea mays L.) Inbred Lines in Association with Phenotypic and Grain Qualitative Traits Using SSR Genotyping Plants. 13:823.   AT2G27100 (TAIR) Reference: March 14th, 2024
Gene Product: November 14th, 2022
Variation: September 1st, 2003
Gene Model: June 7th, 2018
55 days agohsbp1 herbicide safener binding protein1:
2.05
   Rumit Patel et al. 2024. Genetic Diversity and Population Structure of Maize (Zea mays L.) Inbred Lines in Association with Phenotypic and Grain Qualitative Traits Using SSR Genotyping Plants. 13:823.     Reference: March 14th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
55 days agotga1 teosinte glume architecture1:
4.05
GRMZM2G101511
Cao, SA et al. 2024. Cytoplasmic genome contributions to domestication and improvement of modern maize BMC Biology. 22:64.     Reference: March 14th, 2024
Gene Product: July 5th, 2019
Variation: May 7th, 2015
Gene Model: October 28th, 2011
55 days agoumc2226  :
1.02
GRMZM2G114055
Rumit Patel et al. 2024. Genetic Diversity and Population Structure of Maize (Zea mays L.) Inbred Lines in Association with Phenotypic and Grain Qualitative Traits Using SSR Genotyping Plants. 13:823.     Reference: March 14th, 2024
Variation: January 6th, 2017
Gene Model: January 6th, 2017
55 days agowrky16 WRKY-transcription factor 16:
4.08
GRMZM2G063216
Rumit Patel et al. 2024. Genetic Diversity and Population Structure of Maize (Zea mays L.) Inbred Lines in Association with Phenotypic and Grain Qualitative Traits Using SSR Genotyping Plants. 13:823.     Reference: March 14th, 2024
Gene Product: July 24th, 2017
Gene Model: December 6th, 2016
55 days agourf13(mtT)  :
 
   Cao, SA et al. 2024. Cytoplasmic genome contributions to domestication and improvement of modern maize BMC Biology. 22:64.     Reference: March 14th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
55 days agowik1 wall immune-related kinase1:
1.03
GRMZM5G886952
Wang, P et al. 2024. The symphony of maize signaling quartet defending against gray leaf spot. Stress Biol. 4:18.     Reference: March 14th, 2024
Gene Product: July 10th, 2019
Variation: January 18th, 2024
Gene Model: February 5th, 2020
55 days agoccp1 cysteine protease1:
5.04
   Yuan, W et al. 2024. NIa-Pro of sugarcane mosaic virus targets Corn Cysteine Protease 1 (CCP1) to undermine salicylic acid-mediated defense in maize. PloS Pathogens. 20:e1012086.     Reference: March 14th, 2024
Gene Product: October 11th, 2021
Variation: May 20th, 2015
55 days agoatp6(mt) ATP synthase subunit 6:
 
GRMZM5G836952
Cao, SA et al. 2024. Cytoplasmic genome contributions to domestication and improvement of modern maize BMC Biology. 22:64.     Reference: March 14th, 2024
Variation: March 11th, 2022
Gene Model: March 11th, 2022
56 days agonrg15 nitrate regulatory gene15:
 
   Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
56 days agonrg21 nitrate regulatory gene21:
 
   Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
56 days agocel4 cellulase4:
 
   Yuanyuan Liang et al. 2024. Fulvic acid alleviates the stress of low nitrogen on maize by promoting root development and nitrogen metabolism. Physiol Plant. 176:e14249.     Reference: March 13th, 2024
Gene Product: March 20th, 2023
56 days agoGRMZM2G010640  :
 
   Yuanyuan Liang et al. 2024. Fulvic acid alleviates the stress of low nitrogen on maize by promoting root development and nitrogen metabolism. Physiol Plant. 176:e14249.     Reference: March 13th, 2024
Gene Product: September 18th, 2015
56 days agonrg1 nitrate regulatory gene1:
 
   Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
56 days agonrg2 nitrate regulatory gene2:
 
   Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
56 days agonrg3 nitrate regulatory gene3:
 
   Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
56 days agonrg4 nitrate regulatory gene4:
 
   Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
56 days agonrg5 nitrate regulatory gene5:
 
   Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
56 days agonrg8 nitrate regulatory gene8:
 
   Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
56 days agonrg9 nitrate regulatory gene9:
 
   Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
56 days agonrg10 nitrate regulatory gene10:
 
   Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
56 days agonrg11 nitrate regulatory gene11:
 
   Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
56 days agonrg12 nitrate regulatory gene12:
 
   Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
56 days agonrg13 nitrate regulatory gene13:
 
   Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
56 days agonrg14 nitrate regulatory gene14:
 
   Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
56 days agonrg17 nitrate regulatory gene17:
 
   Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
56 days agonrg18 nitrate regulatory gene18:
 
   Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
56 days agonrg22 nitrate regulatory gene22:
9.04
GRMZM2G125513
Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
Gene Model: July 15th, 2021
56 days agonrg20 nitrate regulatory gene20:
8.04
GRMZM2G074377
Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
Gene Model: August 30th, 2019
56 days agogdh2 glutamic dehydrogenase2:
10.02 - 10.04
GRMZM2G427097
Yuanyuan Liang et al. 2024. Fulvic acid alleviates the stress of low nitrogen on maize by promoting root development and nitrogen metabolism. Physiol Plant. 176:e14249.     Reference: March 13th, 2024
Gene Product: September 1st, 2003
Variation: July 11th, 2023
Gene Model: October 6th, 2015
56 days agonrg16 nitrate regulatory gene16:
7.02
AC235546.1_FG001
Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
Variation: September 1st, 2003
Gene Model: September 5th, 2018
56 days agocko5 cytokinin oxidase 5:
8.03
GRMZM2G325612
Yuanyuan Liang et al. 2024. Fulvic acid alleviates the stress of low nitrogen on maize by promoting root development and nitrogen metabolism. Physiol Plant. 176:e14249.     Reference: March 13th, 2024
Gene Product: July 19th, 2021
Variation: September 1st, 2003
Gene Model: September 17th, 2018
56 days agohsftf9 HSF-transcription factor 9:
 
   Shashidhar B Reddappa et al. 2024. Characterization of Sub-Tropically Adapted Maize Breeding Lines for Loci Governing Kernel Amylose and Resistant Starch Starch. :doi: 10.1002/star.202300289.     Reference: March 13th, 2024
Gene Product: May 15th, 2020
56 days agonpi394  :
7.03
GRMZM2G043254
Yuanyuan Liang et al. 2024. Fulvic acid alleviates the stress of low nitrogen on maize by promoting root development and nitrogen metabolism. Physiol Plant. 176:e14249.     Reference: March 13th, 2024
Variation: September 1st, 2003
Gene Model: September 8th, 2018
56 days agoumc15a  :
4.08
GRMZM2G013128
Junqiao Song et al. 2024. Genome-wide association mapping and genomic prediction of stalk rot in two mid-altitude tropical maize populations Crop J. :doi: 10.1016/j.cj.2024.02.004.     Reference: March 13th, 2024
Variation: September 1st, 2003
Gene Model: June 7th, 2018
56 days agockx6 cytokinin oxidase6:
1.08
GRMZM2G404443
Yuanyuan Liang et al. 2024. Fulvic acid alleviates the stress of low nitrogen on maize by promoting root development and nitrogen metabolism. Physiol Plant. 176:e14249.     Reference: March 13th, 2024
Gene Product: July 19th, 2021
Gene Model: January 27th, 2017
56 days agogst26 glutathione transferase26:
4.05
GRMZM2G363540
Shashidhar B Reddappa et al. 2024. Characterization of Sub-Tropically Adapted Maize Breeding Lines for Loci Governing Kernel Amylose and Resistant Starch Starch. :doi: 10.1002/star.202300289.     Reference: March 13th, 2024
Gene Product: September 1st, 2003
Gene Model: April 18th, 2017
56 days agogss1 starch synthase homolog1:
5.06
GRMZM2G105791
Xiuling Wang et al. 2024. Integrated transcriptomics and metabolomics analysis provide insights into the alleviation of waterlogging stress in maize by exogenous spermidine application J Integr Agric. :doi: 10.1016/j.jia.2024.03.041.     Reference: March 13th, 2024
Gene Product: September 1st, 2003
Variation: October 7th, 2010
Gene Model: July 12th, 2018
56 days agohag101 histone acetyl transferase GNAT/MYST 101:
5.03
GRMZM2G046021
Junqiao Song et al. 2024. Genome-wide association mapping and genomic prediction of stalk rot in two mid-altitude tropical maize populations Crop J. :doi: 10.1016/j.cj.2024.02.004.     Reference: March 13th, 2024
Gene Product: January 4th, 2018
Variation: December 14th, 2012
Gene Model: July 27th, 2016
56 days agonrg6 nitrate regulatory gene6:
3.04
   Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
56 days agoacco20 1-aminocyclopropane-1-carboxylate oxidase20:
4.07
GRMZM2G126732
Xiuling Wang et al. 2024. Integrated transcriptomics and metabolomics analysis provide insights into the alleviation of waterlogging stress in maize by exogenous spermidine application J Integr Agric. :doi: 10.1016/j.jia.2024.03.041.     Reference: March 13th, 2024
Gene Product: May 16th, 2016
Variation: March 25th, 2015
Gene Model: March 25th, 2015
56 days agoabh1 abscisic acid 8'-hydroxylase1:
 
GRMZM2G179147
Yuanyuan Liang et al. 2024. Fulvic acid alleviates the stress of low nitrogen on maize by promoting root development and nitrogen metabolism. Physiol Plant. 176:e14249.     Reference: March 13th, 2024
Gene Product: February 15th, 2013
Variation: September 1st, 2011
Gene Model: February 15th, 2013
56 days agoamt2 ammonium transporter2:
 
GRMZM2G028736
Yuanyuan Liang et al. 2024. Fulvic acid alleviates the stress of low nitrogen on maize by promoting root development and nitrogen metabolism. Physiol Plant. 176:e14249.     Reference: March 13th, 2024
Gene Product: July 8th, 2013
Gene Model: July 8th, 2013
56 days agoipt4 isopentenyl transferase4:
 
GRMZM2G104559
Yuanyuan Liang et al. 2024. Fulvic acid alleviates the stress of low nitrogen on maize by promoting root development and nitrogen metabolism. Physiol Plant. 176:e14249.     Reference: March 13th, 2024
Gene Product: March 19th, 2014
Gene Model: July 10th, 2013
56 days agoga2ox12 gibberellin 2-oxidase12:
 
GRMZM2G177104
Yuanyuan Liang et al. 2024. Fulvic acid alleviates the stress of low nitrogen on maize by promoting root development and nitrogen metabolism. Physiol Plant. 176:e14249.     Reference: March 13th, 2024
Gene Product: October 27th, 2014
Gene Model: October 30th, 2014
56 days agoacco1 1-aminocyclopropane-1-carboxylate oxidase1:
 
GRMZM2G164883
Xiuling Wang et al. 2024. Integrated transcriptomics and metabolomics analysis provide insights into the alleviation of waterlogging stress in maize by exogenous spermidine application J Integr Agric. :doi: 10.1016/j.jia.2024.03.041.     Reference: March 13th, 2024
Gene Product: May 16th, 2016
Gene Model: May 16th, 2016
56 days agoacco4 1-aminocyclopropane-1-carboxylate oxidase4:
 
GRMZM2G332423
Xiuling Wang et al. 2024. Integrated transcriptomics and metabolomics analysis provide insights into the alleviation of waterlogging stress in maize by exogenous spermidine application J Integr Agric. :doi: 10.1016/j.jia.2024.03.041.     Reference: March 13th, 2024
Gene Product: May 16th, 2016
Gene Model: May 16th, 2016
56 days agoaasr10 abscisic acid stress ripening10:
 
GRMZM2G009792
Yuanyuan Liang et al. 2024. Fulvic acid alleviates the stress of low nitrogen on maize by promoting root development and nitrogen metabolism. Physiol Plant. 176:e14249.     Reference: March 13th, 2024
Gene Product: January 2nd, 2019
Gene Model: January 2nd, 2019
56 days agonpf11 nitrate transporter/peptide transporter family11:
 
GRMZM2G061303
Yuanyuan Liang et al. 2024. Fulvic acid alleviates the stress of low nitrogen on maize by promoting root development and nitrogen metabolism. Physiol Plant. 176:e14249.     Reference: March 13th, 2024
Gene Product: September 1st, 2003
Gene Model: May 21st, 2019
56 days agoppr237 pentatricopeptide repeat protein237:
 
GRMZM2G110483
Shashidhar B Reddappa et al. 2024. Characterization of Sub-Tropically Adapted Maize Breeding Lines for Loci Governing Kernel Amylose and Resistant Starch Starch. :doi: 10.1002/star.202300289.     Reference: March 13th, 2024
Gene Product: December 27th, 2016
Variation: November 13th, 2023
Gene Model: June 12th, 2020
56 days agoga20ox6 gibberellin 20-oxidase6:
 
GRMZM2G127232
Yuanyuan Liang et al. 2024. Fulvic acid alleviates the stress of low nitrogen on maize by promoting root development and nitrogen metabolism. Physiol Plant. 176:e14249.     Reference: March 13th, 2024
Gene Product: October 28th, 2014
Gene Model: July 6th, 2020
56 days agosam3 S-adenosylmethionine decarboxylase3:
 
GRMZM2G060369
Xiuling Wang et al. 2024. Integrated transcriptomics and metabolomics analysis provide insights into the alleviation of waterlogging stress in maize by exogenous spermidine application J Integr Agric. :doi: 10.1016/j.jia.2024.03.041.     Reference: March 13th, 2024
Gene Product: September 1st, 2003
Gene Model: August 18th, 2020
56 days agopao9 polyamine oxidase9:
 
GRMZM2G071343
Xiuling Wang et al. 2024. Integrated transcriptomics and metabolomics analysis provide insights into the alleviation of waterlogging stress in maize by exogenous spermidine application J Integr Agric. :doi: 10.1016/j.jia.2024.03.041.     Reference: March 13th, 2024
Gene Product: June 10th, 2020
Gene Model: August 4th, 2022
56 days agopao10 polyamine oxidase9:
 
GRMZM2G137820
Xiuling Wang et al. 2024. Integrated transcriptomics and metabolomics analysis provide insights into the alleviation of waterlogging stress in maize by exogenous spermidine application J Integr Agric. :doi: 10.1016/j.jia.2024.03.041.     Reference: March 13th, 2024
Gene Product: June 10th, 2020
Gene Model: August 4th, 2022
56 days agonrg19 nitrate regulatory gene19:
7.06
GRMZM2G071599
Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
Gene Model: July 30th, 2020
56 days agosams2 S-adenosylmethionine synthetase2:
8.03
GRMZM2G054123
Xiuling Wang et al. 2024. Integrated transcriptomics and metabolomics analysis provide insights into the alleviation of waterlogging stress in maize by exogenous spermidine application J Integr Agric. :doi: 10.1016/j.jia.2024.03.041.     Reference: March 13th, 2024
Gene Product: January 27th, 2020
Gene Model: January 27th, 2020
56 days agonrg23 nitrate regulatory gene23:
10.05
   Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
56 days agoIDP3970  :
1.02
   Xiuling Wang et al. 2024. Integrated transcriptomics and metabolomics analysis provide insights into the alleviation of waterlogging stress in maize by exogenous spermidine application J Integr Agric. :doi: 10.1016/j.jia.2024.03.041.     Reference: March 13th, 2024
Variation: March 31st, 2005
56 days agonrg7 nitrate regulatory gene7:
3.09
   Shuna Li et al. 2024. NRG2 family members of Arabidopsis and maize regulate nitrate signalling and promote nitrogen use efficiency. Physiol Plant. 176:e14251.     Reference: March 13th, 2024
Gene Product: March 13th, 2024
56 days agoasg62  :
1.07
GRMZM2G379237
Yuanyuan Liang et al. 2024. Fulvic acid alleviates the stress of low nitrogen on maize by promoting root development and nitrogen metabolism. Physiol Plant. 176:e14249.     Reference: March 13th, 2024
Variation: February 15th, 2017
Gene Model: July 24th, 2018
57 days agobm3 brown midrib3:
4.04
GRMZM5G814904
Tian-li He et al. 2021. Gene Cloning and Transcriptome Analysis of Maize Brown Midrid Mutant bm-like1 J Plant Genet Resour. 22:1375-1382.     Reference: March 12th, 2024
Gene Product: February 16th, 2011
Variation: March 12th, 2024
Gene Model: May 21st, 2020
57 days agopgk3 phosphoglycerate kinase3:
5.04
GRMZM2G382914
Chloee M McLaughlin et al. 2024. Evidence that variation in root anatomy contributes to local adaptation in Mexican native maize. Evol Appl. 17:e13673.     Reference: March 12th, 2024
Gene Product: November 24th, 2020
Variation: September 1st, 2003
Gene Model: May 14th, 2020
57 days agoAY110540  :
3.08
GRMZM2G130358
Chloee M McLaughlin et al. 2024. Evidence that variation in root anatomy contributes to local adaptation in Mexican native maize. Evol Appl. 17:e13673.     Reference: March 12th, 2024
Variation: March 17th, 2021
Gene Model: March 20th, 2018
57 days agopdi3 protein disulfide isomerase3:
4.11
GRMZM2G134889
Chloee M McLaughlin et al. 2024. Evidence that variation in root anatomy contributes to local adaptation in Mexican native maize. Evol Appl. 17:e13673.     Reference: March 12th, 2024
Gene Product: September 1st, 2003
Variation: January 5th, 2016
Gene Model: December 18th, 2015
57 days agobx10 benzoxazinone synthesis10:
 
GRMZM2G311036
Batool, R et al. 2024. Endophytic Fungi-Mediated Defense Signaling in Maize: Unraveling the Role of WRKY36 in Regulating Immunity against Spodoptera frugiperda. Physiol Plant. 176:e14243.     Reference: March 12th, 2024
Gene Product: July 8th, 2013
Gene Model: July 8th, 2013
57 days agobx11 benzoxazinone synthesis11:
 
GRMZM2G336824
Batool, R et al. 2024. Endophytic Fungi-Mediated Defense Signaling in Maize: Unraveling the Role of WRKY36 in Regulating Immunity against Spodoptera frugiperda. Physiol Plant. 176:e14243.     Reference: March 12th, 2024
Gene Product: July 8th, 2013
Gene Model: July 8th, 2013
57 days agosacd8 stearoyl-acyl-carrier-protein desaturase8:
 
GRMZM5G883417
Chloee M McLaughlin et al. 2024. Evidence that variation in root anatomy contributes to local adaptation in Mexican native maize. Evol Appl. 17:e13673.     Reference: March 12th, 2024
Gene Product: October 10th, 2016
Variation: March 17th, 2021
Gene Model: October 10th, 2016
57 days agoaomt8 anthranilate O-methyltransferase8:
 
GRMZM2G010731
Tian-li He et al. 2021. Gene Cloning and Transcriptome Analysis of Maize Brown Midrid Mutant bm-like1 J Plant Genet Resour. 22:1375-1382.     Reference: March 12th, 2024
Gene Product: December 23rd, 2020
Gene Model: December 23rd, 2020
57 days agohpc1 High PhosphatidylCholine1:
 
GRMZM2G353444
Chloee M McLaughlin et al. 2024. Evidence that variation in root anatomy contributes to local adaptation in Mexican native maize. Evol Appl. 17:e13673.     Reference: March 12th, 2024
Gene Product: June 12th, 2020
Gene Model: March 26th, 2022
58 days agotpi4 triose phosphate isomerase4:
3.04
GRMZM2G030784
Wenyu Li et al. 2024. The cytosolic isoform of triosephosphate isomerase, ZmTPI4, is required for kernel development and starch synthesis in maize (Zea mays L.) Crop J. :doi: 10.1016/j.cj.2024.02.001.     Reference: March 11th, 2024
Gene Product: September 1st, 2003
Variation: March 11th, 2024
Gene Model: January 15th, 2015
61 days agolhca1 light harvesting complex A1:
2.08
GRMZM2G038519
Guihua Lv et al. 2024. Mechanisms Underlying the Differential Sensitivity to Mesotrione in Sweet Corn Agronomy. 14:555.     Reference: March 8th, 2024
Gene Product: September 1st, 2003
Variation: February 18th, 2015
Gene Model: February 18th, 2015
61 days agobon3 bonzai3:
6.05
GRMZM2G176995
Jing, T et al. 2024. Copine proteins are required for brassinosteroid signaling in maize and Arabidopsis Nat Commun. 15:2028.   AT1G08860 (TAIR) Reference: March 8th, 2024
Gene Product: January 3rd, 2023
Gene Model: January 8th, 2020
61 days agolhcb6 light harvesting chlorophyll a/b binding protein6:
 
GRMZM2G092427
Guihua Lv et al. 2024. Mechanisms Underlying the Differential Sensitivity to Mesotrione in Sweet Corn Agronomy. 14:555.     Reference: March 8th, 2024
Gene Product: January 8th, 2005
Variation: October 8th, 2010
Gene Model: October 9th, 2015
61 days agopsb29 photosystem II subunit29:
7.04
GRMZM2G033885
Guihua Lv et al. 2024. Mechanisms Underlying the Differential Sensitivity to Mesotrione in Sweet Corn Agronomy. 14:555.     Reference: March 8th, 2024
Gene Product: September 1st, 2003
Variation: January 8th, 2015
Gene Model: January 8th, 2015
61 days agoumc1267  :
9.03 - 9.04
GRMZM2G010884
Guihua Lv et al. 2024. Mechanisms Underlying the Differential Sensitivity to Mesotrione in Sweet Corn Agronomy. 14:555.     Reference: March 8th, 2024
Variation: September 1st, 2003
Gene Model: March 7th, 2018
61 days agolhcb2 light harvesting chlorophyll a/b binding protein2:
7.03
   Guihua Lv et al. 2024. Mechanisms Underlying the Differential Sensitivity to Mesotrione in Sweet Corn Agronomy. 14:555.     Reference: March 8th, 2024
Gene Product: January 8th, 2005
Variation: August 20th, 2014
61 days agolhcb7 light harvesting complex mesophyll7:
6.07
   Guihua Lv et al. 2024. Mechanisms Underlying the Differential Sensitivity to Mesotrione in Sweet Corn Agronomy. 14:555.     Reference: March 8th, 2024
Gene Product: January 8th, 2005
Variation: January 5th, 2013
61 days agolhcb9 light harvesting chlorophyll binding protein9:
1.08
GRMZM2G414192
Guihua Lv et al. 2024. Mechanisms Underlying the Differential Sensitivity to Mesotrione in Sweet Corn Agronomy. 14:555.     Reference: March 8th, 2024
Gene Product: January 8th, 2005
Variation: October 27th, 2016
Gene Model: October 27th, 2016
61 days agorgd2 ragged seedling2:
1.04
GRMZM5G892991
Jing, T et al. 2024. Copine proteins are required for brassinosteroid signaling in maize and Arabidopsis Nat Commun. 15:2028.     Reference: March 8th, 2024
Gene Product: August 12th, 2016
Variation: July 6th, 2010
Gene Model: September 11th, 2013
61 days agohma3 heavy metal ATPase3:
 
GRMZM2G175576
Juan Xin et al. 2024. Variations in grain yield and nutrient status of different maize cultivars by application of zinc sulfate. PLoS One. 19:e0295391.     Reference: March 8th, 2024
Gene Product: October 23rd, 2019
Variation: June 4th, 2021
Gene Model: January 27th, 2018
61 days agohma4 heavy metal ATPase4:
 
GRMZM2G455491
Juan Xin et al. 2024. Variations in grain yield and nutrient status of different maize cultivars by application of zinc sulfate. PLoS One. 19:e0295391.     Reference: March 8th, 2024
Gene Product: October 23rd, 2019
Variation: June 12th, 2020
Gene Model: January 27th, 2018
61 days agolhcb10 light harvesting chlorophyll a/b binding protein10:
 
GRMZM2G351977
Guihua Lv et al. 2024. Mechanisms Underlying the Differential Sensitivity to Mesotrione in Sweet Corn Agronomy. 14:555.     Reference: March 8th, 2024
Gene Product: September 1st, 2003
Gene Model: August 3rd, 2018
61 days agobon1 bonzai1:
 
GRMZM2G494514
Jing, T et al. 2024. Copine proteins are required for brassinosteroid signaling in maize and Arabidopsis Nat Commun. 15:2028.   AT5G61900 (TAIR) Reference: March 8th, 2024
Gene Product: January 3rd, 2023
Gene Model: July 10th, 2019
61 days agolhca2 light harvesting complex A2:
 
GRMZM2G072280
Guihua Lv et al. 2024. Mechanisms Underlying the Differential Sensitivity to Mesotrione in Sweet Corn Agronomy. 14:555.     Reference: March 8th, 2024
Gene Product: January 8th, 2005
Gene Model: April 8th, 2021
61 days agoirt2 iron-regulated transporter2:
 
GRMZM2G115190
Juan Xin et al. 2024. Variations in grain yield and nutrient status of different maize cultivars by application of zinc sulfate. PLoS One. 19:e0295391.     Reference: March 8th, 2024
Gene Product: June 5th, 2019
Gene Model: February 7th, 2022
61 days agoIDP518  :
3.09
GRMZM2G120619
Guihua Lv et al. 2024. Mechanisms Underlying the Differential Sensitivity to Mesotrione in Sweet Corn Agronomy. 14:555.     Reference: March 8th, 2024
Variation: March 31st, 2005
Gene Model: February 25th, 2019
61 days agolhcb5 light harvesting chlorophyll a/b binding protein5:
2.08
GRMZM2G149428
Guihua Lv et al. 2024. Mechanisms Underlying the Differential Sensitivity to Mesotrione in Sweet Corn Agronomy. 14:555.     Reference: March 8th, 2024
Variation: February 19th, 2015
Gene Model: February 19th, 2015
61 days agoivr2 invertase2:
5.03
   Noel Ndlovu et al. 2024. Linkage mapping and genomic prediction of grain quality traits in tropical maize (Zea mays L.). Frontiers in Genetics. 15:1353289.     Reference: March 8th, 2024
Gene Product: June 12th, 2018
Variation: May 18th, 2012
62 days agogl17 glossy17:
5.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: March 7th, 2024
62 days agoo1 opaque endosperm1:
4.08 - 4.08
GRMZM2G449909
Gallagher, Kimberly and Smith, LG. 1999. Development 126:4623-4633     Reference: March 7th, 2024
Gene Product: September 1st, 2003
Variation: October 9th, 2017
Gene Model: August 28th, 2012
62 days agodcd1 discordia1:
10.03
   Gallagher, Kimberly and Smith, LG. 1999. Development 126:4623-4633     Reference: March 7th, 2024
Variation: March 7th, 2024
62 days agopdi13 protein disulfide isomerase13:
 
GRMZM2G376542
Feng, XJ et al. 2024. Profiling the selected hotspots for ear traits in two maize–teosinte populations Theor Appl Genet. 137:74.     Reference: March 7th, 2024
Gene Product: September 1st, 2003
Gene Model: August 4th, 2020
63 days agopan1 pangloss1:
 
GRMZM5G836190
Facette, MR et al. 2015. Nature Plants 0:Article number: 14024     Reference: March 6th, 2024
Gene Product: November 27th, 2012
Variation: July 11th, 2014
Gene Model: November 2nd, 2011
63 days agobrk2 brick2:
1.01
   Facette, MR et al. 2015. Nature Plants 0:Article number: 14024     Reference: March 6th, 2024
Variation: March 5th, 2024
63 days agobrk3 brick3:
10.01 - 10.02
GRMZM2G180150
Facette, MR et al. 2015. Nature Plants 0:Article number: 14024   AT2G35110 (TAIR)
Os08G0544500 (Gramene)
Reference: March 6th, 2024
Gene Product: August 12th, 2015
Variation: March 6th, 2024
Gene Model: August 11th, 2015
63 days agocesa8 cellulose synthase8:
7.02
   Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: October 7th, 2016
Variation: January 3rd, 2014
63 days agopip2f plasma membrane intrinsic protein2:
7.02
   Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: September 1st, 2003
Variation: March 26th, 2013
63 days agotip2 tonoplast intrinsic protein2:
8.06
GRMZM2G168439
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: September 1st, 2003
Variation: August 27th, 2015
Gene Model: May 15th, 2015
63 days agosut1 sucrose transporter1:
1.02
GRMZM2G034302
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: September 14th, 2013
Variation: April 16th, 2013
Gene Model: April 16th, 2013
63 days agovpp8 vacuolar proton pump8:
7.04
GRMZM2G019999
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: September 1st, 2003
Gene Model: August 25th, 2018
63 days agobrk1 brick1:
5.08
GRMZM5G842058
Facette, MR et al. 2015. Nature Plants 0:Article number: 14024     Reference: March 6th, 2024
Gene Product: August 12th, 2015
Variation: August 11th, 2015
Gene Model: October 28th, 2013
63 days agosut3 sucrose transporter3:
1.08
GRMZM2G083248
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: September 14th, 2013
Variation: April 13th, 2017
Gene Model: November 3rd, 2015
63 days agomlo4 barley mlo defense gene homolog4:
4.09
   Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Variation: April 14th, 2012
63 days agosut4 sucrose transporter4:
5.09
GRMZM2G145107
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: September 14th, 2013
Variation: February 17th, 2017
Gene Model: April 17th, 2013
63 days agomrpa2 multidrug resistance associated protein2:
7.02
GRMZM5G832772
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: July 11th, 2019
Variation: January 12th, 2016
Gene Model: January 12th, 2016
63 days agomrpa6 multidrug resistance associated protein6:
 
GRMZM2G142870
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: July 11th, 2019
Gene Model: January 12th, 2016
63 days agomrpa9 multidrug resistance associated protein9:
 
GRMZM2G365957
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: July 11th, 2019
Gene Model: July 11th, 2019
63 days agopan2 pangloss2:
 
GRMZM2G034572
Facette, MR et al. 2015. Nature Plants 0:Article number: 14024     Reference: March 6th, 2024
Gene Product: November 27th, 2012
Variation: November 27th, 2012
Gene Model: November 27th, 2012
63 days agodct1 dicarboxylic acid transporter1:
 
GRMZM2G040933
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: August 18th, 2014
Gene Model: August 18th, 2014
63 days agolaz4 lazarus ortholog4:
 
GRMZM2G100419
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: July 27th, 2019
Gene Model: July 27th, 2019
63 days agolaz5 lazarus ortholog5:
 
GRMZM2G035445
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: July 27th, 2019
Gene Model: July 27th, 2019
63 days agothx44 Trihelix-transcription factor 44:
 
GRMZM2G122277
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: November 9th, 2021
Gene Model: August 7th, 2019
63 days agocipk4 calcineurin B-like-interacting protein kinase4:
 
GRMZM2G472643
Xiuzhen Kong et al. 2024. Ethylene regulates auxin-mediated root gravitropic machinery and controls root angle in cereal crops. Plant Physiol. :doi: 10.1093/plphys/kiae134.   AT4G14580 (TAIR) Reference: March 6th, 2024
Gene Product: August 25th, 2018
Variation: June 25th, 2021
Gene Model: November 21st, 2019
63 days agopme12 pectin methylesterase12:
 
GRMZM2G158240
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
63 days agopme13 pectin methylesterase13:
 
GRMZM2G008593
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
63 days agopme19 pectin methylesterase19:
 
GRMZM2G136106
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
63 days agopme20 pectin methylesterase20:
 
GRMZM2G025182
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
63 days agopme22 pectin methylesterase22:
 
GRMZM2G167637
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
63 days agohak19 potassium high-affinity transporter19:
 
GRMZM2G021725
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: March 12th, 2020
Gene Model: March 12th, 2020
63 days agohak23 potassium high-affinity transporter23:
 
GRMZM2G036916
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: March 12th, 2020
Gene Model: March 12th, 2020
63 days agofax2 fatty acid export2:
 
GRMZM2G143389
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: March 14th, 2020
Gene Model: March 14th, 2020
63 days agosfr2 sensitivity to freezing2:
 
AC148152.3_FG008
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.   AT3G06510 (TAIR) Reference: March 6th, 2024
Gene Product: June 26th, 2019
Gene Model: March 24th, 2020
63 days agomsl3 mechanosensitive channel of small conductance-like3:
 
GRMZM2G027891
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Gene Product: October 8th, 2020
Gene Model: October 8th, 2020
63 days agopco066521  :
 
GRMZM2G410812
Facette, MR et al. 2015. Nature Plants 0:Article number: 14024     Reference: March 6th, 2024
Gene Product: August 12th, 2015
Gene Model: August 12th, 2015
63 days agoIDP1437a  :
1.01
GRMZM2G103599
Facette, MR et al. 2015. Nature Plants 0:Article number: 14024   AT5G18410 (TAIR)
LOC_Os03g05020 (MSU/TIGR)
Reference: March 6th, 2024
Variation: March 31st, 2005
Gene Model: February 14th, 2019
63 days agoIDP778  :
6.01
GRMZM2G099619
Sarah Tepler Drobnitch et al. 2024. Searching for mechanisms driving root pressure in Zea mays—a transcriptomic approach J Plant Physiol. :doi: 10.1016/j.jplph.2024.154209.     Reference: March 6th, 2024
Variation: March 31st, 2005
Gene Model: February 19th, 2021
64 days agosci2 subtilisin-chymotrypsin inhibitor homolog2:
 
   Yuanlong Chen et al. 2024. Salicylic acid inducing the expression of maize anti-insect gene SPI: a potential control strategy for Ostrinia furnacalis BMC Plant Biology. 24:152.     Reference: March 5th, 2024
Gene Product: March 5th, 2024
64 days agocchh25 Cys2His2 Zinc Finger25:
 
   Ji, XZ et al. 2024. WGCNA analysis of the effect of exogenous BR on leaf angle of maize mutant lpa1 Sci. Rep.. :doi: 10.1038/s41598-024-55835-7.   AT2G01940 (TAIR)
LOC_Os03g13400 (MSU/TIGR)
Os03g0237250 (Gramene)
Reference: March 5th, 2024
Gene Product: November 14th, 2022
Variation: April 28th, 2022
64 days agozim29 ZIM-transcription factor 29:
 
   Yuanlong Chen et al. 2024. Salicylic acid inducing the expression of maize anti-insect gene SPI: a potential control strategy for Ostrinia furnacalis BMC Plant Biology. 24:152.     Reference: March 5th, 2024
Gene Product: February 24th, 2021
64 days agocesa3 cellulose synthase3:
3.03
   Yuting Zhang et al. 2024. Characterization of ZmCesAs for Secondary Cell Wall Biosynthesis in Maize J Plant Biol. :doi: 10.1007/s12374-023-09420-6.     Reference: March 5th, 2024
Gene Product: October 7th, 2016
Variation: February 27th, 2015
64 days agocesa4 cellulose synthase4:
7.02
GRMZM2G424832
Yuting Zhang et al. 2024. Characterization of ZmCesAs for Secondary Cell Wall Biosynthesis in Maize J Plant Biol. :doi: 10.1007/s12374-023-09420-6.     Reference: March 5th, 2024
Gene Product: October 7th, 2016
Variation: January 3rd, 2014
Gene Model: July 22nd, 2015
64 days agocesa5 cellulose synthase5:
1.11
   Yuting Zhang et al. 2024. Characterization of ZmCesAs for Secondary Cell Wall Biosynthesis in Maize J Plant Biol. :doi: 10.1007/s12374-023-09420-6.     Reference: March 5th, 2024
Gene Product: October 7th, 2016
Variation: September 1st, 2003
64 days agocesa6 cellulose synthase6:
1.11
   Yuting Zhang et al. 2024. Characterization of ZmCesAs for Secondary Cell Wall Biosynthesis in Maize J Plant Biol. :doi: 10.1007/s12374-023-09420-6.     Reference: March 5th, 2024
Gene Product: October 7th, 2016
Variation: November 14th, 2012
64 days agocesa9 cellulose synthase9:
2.06
   Yuting Zhang et al. 2024. Characterization of ZmCesAs for Secondary Cell Wall Biosynthesis in Maize J Plant Biol. :doi: 10.1007/s12374-023-09420-6.     Reference: March 5th, 2024
Gene Product: October 7th, 2016
Variation: January 3rd, 2014
64 days agosci1 subtilisin-chymotrypsin inhibitor homolog1:
8.05
   Lukas Dorian Dittiger et al. 2023. Plant Responses of Maize to Two formae speciales of Sporisorium reilianum Support Recent Fungal Host Jump Int J Mol Sci. 24:15604.     Reference: October 26th, 2023
Gene Product: March 5th, 2024
Variation: August 25th, 2015
64 days agonpr1 nonexpressor of pathogenesis-related genes homolog 1:
 
GRMZM2G076450
Yuanlong Chen et al. 2024. Salicylic acid inducing the expression of maize anti-insect gene SPI: a potential control strategy for Ostrinia furnacalis BMC Plant Biology. 24:152.     Reference: March 5th, 2024
Gene Product: January 18th, 2021
Gene Model: January 18th, 2021
64 days agocesa10 cellulose synthase10:
1.08
GRMZM2G445905
Yuting Zhang et al. 2024. Characterization of ZmCesAs for Secondary Cell Wall Biosynthesis in Maize J Plant Biol. :doi: 10.1007/s12374-023-09420-6.     Reference: March 5th, 2024
Gene Product: October 7th, 2016
Variation: March 5th, 2024
Gene Model: July 22nd, 2015
64 days agocesa11 cellulose synthase 11:
3.07
GRMZM2G055795
Yuting Zhang et al. 2024. Characterization of ZmCesAs for Secondary Cell Wall Biosynthesis in Maize J Plant Biol. :doi: 10.1007/s12374-023-09420-6.     Reference: March 5th, 2024
Gene Product: October 7th, 2016
Variation: March 5th, 2024
Gene Model: July 22nd, 2015
64 days agocesa12 cellulose synthase 12:
7.02
GRMZM2G142898
Yuting Zhang et al. 2024. Characterization of ZmCesAs for Secondary Cell Wall Biosynthesis in Maize J Plant Biol. :doi: 10.1007/s12374-023-09420-6.     Reference: March 5th, 2024
Gene Product: October 7th, 2016
Variation: March 5th, 2024
Gene Model: July 22nd, 2015
65 days agoumc1722  :
5.05
GRMZM2G153368
Richard F Davis et al. 2024. A QTL on Maize Chromosome 5 is Associated with Root-Knot Nematode Resistance. Phytopathology. :doi: 10.1094/PHYTO-08-23-0286-R.     Reference: March 4th, 2024
Variation: September 1st, 2003
Gene Model: March 12th, 2021
65 days agodef4 defensin-like protein4:
 
GRMZM2G153488
Richard F Davis et al. 2024. A QTL on Maize Chromosome 5 is Associated with Root-Knot Nematode Resistance. Phytopathology. :doi: 10.1094/PHYTO-08-23-0286-R.     Reference: March 4th, 2024
Gene Product: December 12th, 2022
Gene Model: September 16th, 2017
72 days agoprd3 putative recombination initiation defect3:
 
   Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.   AT1G01690 (TAIR)
LOC_Os03g01590 (MSU/TIGR)
Reference: February 26th, 2024
Variation: October 12th, 2022
72 days agofigl1 fidgetin-like1:
 
   Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Variation: June 9th, 2023
72 days agoms45 male sterile45:
9.06
   Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: September 29th, 2023
Variation: June 27th, 2014
72 days agoms33 male sterile33:
2.09
GRMZM2G070304
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.   LOC_Os11g45400 (MSU/TIGR) Reference: February 26th, 2024
Gene Product: March 25th, 2019
Variation: December 4th, 2018
Gene Model: March 17th, 2018
72 days agoinvan6 invertase alkaline neutral6:
5.03
GRMZM2G477236
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: June 12th, 2018
Variation: September 15th, 2022
Gene Model: August 28th, 2021
72 days agorf8 restorer of fertility8:
2.05 - 2.10
   Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Variation: September 1st, 2003
72 days agolox3 lipoxygenase3:
3.06
   Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.     Reference: February 26th, 2024
Gene Product: January 3rd, 2018
Variation: November 16th, 2020
72 days agoga2ox6 gibberellin 2-oxidase6:
6.05
   Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.     Reference: February 26th, 2024
Gene Product: October 27th, 2014
72 days agoabp1 auxin binding protein1:
3.05 - 3.05
   Gentzel, IN et al. 2024. Effects of Maize Chlorotic Mottle Virus and Potyvirus Resistance on Maize Lethal Necrosis Disease. Phytopathology. :doi: 10.1094/PHYTO-05-23-0171-R.     Reference: February 26th, 2024
Gene Product: September 1st, 2003
Variation: August 23rd, 2017
72 days agoafd1 absence of first division1:
6.07
GRMZM2G059037
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.   AT5G05490 (TAIR)
LOC_Os05g50410 (MSU/TIGR)
Os05g0580500 (Gramene)
Reference: February 26th, 2024
Gene Product: July 30th, 2009
Variation: August 11th, 2011
Gene Model: July 14th, 2011
72 days agoam1 ameiotic1:
5.02
   Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Variation: August 11th, 2011
72 days agoas1 asynaptic1:
1.05
   Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Variation: December 4th, 2012
72 days agodsy2 desynaptic2:
5.03 - 5.04
AC210848.3_FG004
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.   AT2G46980 (TAIR)
LOC_Os10g26560 (MSU/TIGR)
Reference: February 26th, 2024
Gene Product: August 25th, 2015
Variation: August 25th, 2015
Gene Model: August 25th, 2015
72 days agoet1 etched1:
3.09
   Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.     Reference: February 26th, 2024
Variation: November 11th, 2010
72 days agoms10 male sterile10:
10.04 - 10.05
GRMZM5G830329
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.   AT1G01280 (TAIR)
LOC_Os08g03682 (MSU/TIGR)
Reference: February 26th, 2024
Gene Product: January 20th, 2017
Variation: January 19th, 2017
Gene Model: January 19th, 2017
72 days agoms13 male sterile13:
5.00 - 5.01
   Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: December 28th, 2015
Variation: September 19th, 2022
72 days agoms2 male sterile2:
9.03
GRMZM2G076526
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: December 28th, 2015
Variation: April 23rd, 2021
Gene Model: April 23rd, 2021
72 days agoms22 male sterile22:
7.02
GRMZM2G442791
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: January 21st, 2021
Variation: February 12th, 2013
Gene Model: August 11th, 2012
72 days agoms5 male sterile5:
5.04 - 5.05
GRMZM2G166330
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: January 25th, 2019
Variation: September 16th, 2020
Gene Model: September 16th, 2020
72 days agoms7 male sterile7:
7.02
GRMZM5G890224
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.   AT5G22260 (TAIR)
LOC_Os09g27620 (MSU/TIGR)
Os09g0449000 (Gramene)
Reference: February 26th, 2024
Gene Product: July 8th, 2017
Variation: September 9th, 2020
Gene Model: July 6th, 2017
72 days agorf1 restorer of fertility1:
3.04
   Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Variation: September 1st, 2003
72 days agorf5 restorer of fertility5:
 
   Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Variation: September 1st, 2003
72 days agoms30 male sterile30:
4.08
GRMZM2G174782
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: January 25th, 2019
Variation: January 25th, 2019
Gene Model: January 25th, 2019
72 days agozyp1 synaptonemal complex protein ZIPPER1:
 
GRMZM2G143590
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: March 2nd, 2011
Variation: March 2nd, 2011
Gene Model: June 19th, 2014
72 days agozim28 ZIM-transcription factor 28:
7.02
GRMZM2G116614
Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.     Reference: February 26th, 2024
Gene Product: February 24th, 2021
Variation: July 6th, 2021
Gene Model: December 6th, 2016
72 days agoscmv1 resistance to sugarcane mosaic virus1:
6.00 - 6.01
GRMZM2G014055
Gentzel, IN et al. 2024. Effects of Maize Chlorotic Mottle Virus and Potyvirus Resistance on Maize Lethal Necrosis Disease. Phytopathology. :doi: 10.1094/PHYTO-05-23-0171-R.     Reference: February 26th, 2024
Gene Product: September 1st, 2003
Variation: June 29th, 2005
Gene Model: September 7th, 2017
72 days agodof47 C2C2-Dof-transcription factor 1:
 
   Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.     Reference: February 26th, 2024
Variation: July 8th, 2017
72 days agozim30 ZIM-transcription factor 30:
 
   Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.     Reference: February 26th, 2024
Gene Product: February 24th, 2021
72 days agobhlh122 bHLH-transcription factor 122:
 
   Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.   LOC_Os04g51070 (MSU/TIGR) Reference: February 26th, 2024
Variation: January 10th, 2022
72 days agobhlh51 bHLH-transcription factor 51:
 
   Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: September 14th, 2016
Variation: January 10th, 2022
72 days agoexpa4 alpha-expansin4:
1.11
GRMZM2G368886
Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.     Reference: February 26th, 2024
Variation: December 1st, 2016
Gene Model: December 1st, 2016
72 days agoiaa22 Aux/IAA-transcription factor 22:
5.03
GRMZM2G128421
Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.     Reference: February 26th, 2024
Variation: September 1st, 2003
Gene Model: June 16th, 2018
72 days agoms32 male sterile32:
2.00 - 2.10
GRMZM2G163233
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: September 2nd, 2013
Variation: December 4th, 2016
Gene Model: September 2nd, 2013
72 days agogid1 gibberellin-insensitive dwarf protein homolog1:
6.05
GRMZM2G173630
Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.     Reference: February 26th, 2024
Gene Product: October 6th, 2021
Gene Model: August 28th, 2018
72 days agolaz1 lazarus ortholog1:
7.03
GRMZM2G025242
Lu, XF et al. 2024. Joint-GWAS, Linkage Mapping, and Transcriptome Analysis to Reveal the Genetic Basis of Plant Architecture-Related Traits in Maize Int J Mol Sci. 25:2694.     Reference: February 26th, 2024
Gene Product: July 27th, 2019
Gene Model: September 10th, 2018
72 days agoga20ox4 gibberellin 20-oxidase4:
5.03 - 5.03
GRMZM2G060940
Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.     Reference: February 26th, 2024
Gene Product: October 28th, 2014
Gene Model: October 27th, 2014
72 days agodv1 divergent spindle1:
2.02
GRMZM2G114861
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: September 18th, 2023
Variation: August 17th, 2016
Gene Model: August 13th, 2014
72 days agoms42 male sterile42:
6.07
   Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: September 1st, 2003
Variation: December 22nd, 2012
72 days agomac1 multiple archesporial cells1:
10.03
GRMZM2G027522
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: August 2nd, 2012
Variation: August 10th, 2012
Gene Model: July 26th, 2012
72 days agosgo1 shugoshin centromeric cohesion1:
7.02
GRMZM2G074082
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: July 29th, 2009
Variation: August 13th, 2011
Gene Model: July 14th, 2011
72 days agoga20ox1 gibberellin 20-oxidase1:
1.12
AC203966.5_FG005
Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.     Reference: February 26th, 2024
Gene Product: October 28th, 2014
Gene Model: October 27th, 2014
72 days agoexpb4 beta expansin4:
7.02
GRMZM2G154178
Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.     Reference: February 26th, 2024
Variation: May 31st, 2010
Gene Model: March 2nd, 2016
72 days agopme2 pectin methylesterase2:
 
GRMZM2G046618
Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.     Reference: February 26th, 2024
Gene Product: September 10th, 2018
Gene Model: April 26th, 2014
72 days agorad51c recombination protein51 gene c:
 
GRMZM2G123089
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: August 12th, 2016
Variation: November 5th, 2019
Gene Model: June 19th, 2014
72 days agotms5 thermosensitive male-sterile5:
4.01
GRMZM2G147727
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.   LOC_Os02g12290 (MSU/TIGR)
Os02g0214300 (Gramene)
Reference: February 26th, 2024
Variation: February 24th, 2017
Gene Model: February 24th, 2017
72 days agoga20ox5 gibberellin 20-oxidase5:
 
GRMZM2G060940
Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.     Reference: February 26th, 2024
Gene Product: October 28th, 2014
Variation: July 6th, 2017
Gene Model: October 27th, 2014
72 days agoga2ox2 gibberellin 2-oxidase2:
 
GRMZM2G006964
Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.     Reference: February 26th, 2024
Gene Product: October 27th, 2014
Gene Model: October 27th, 2014
72 days agohct8 hydroxycinnamoyltransferase8:
 
GRMZM2G178769
Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.     Reference: February 26th, 2024
Gene Product: November 7th, 2015
Gene Model: November 7th, 2015
72 days agomsp1 multiple sporocyte1:
 
GRMZM2G447447
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.   AT5G07280 (TAIR)
LOC_Os01g68870 (MSU/TIGR)
Reference: February 26th, 2024
Gene Product: July 10th, 2019
Gene Model: February 17th, 2018
72 days agoms39 male sterile39:
 
GRMZM5G804976
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: July 5th, 2021
Variation: October 14th, 2022
Gene Model: September 28th, 2018
72 days agoili1 increased leaf inclination1:
 
GRMZM2G072820
Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.   LOC_Os04g54900 (MSU/TIGR)
Os04g0641700 (Gramene)
Reference: February 26th, 2024
Gene Product: September 14th, 2016
Variation: September 19th, 2019
Gene Model: September 19th, 2019
72 days agoprd1 putative recombination initiation defect1:
 
GRMZM2G308884
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Variation: February 24th, 2022
Gene Model: November 5th, 2019
72 days agosmc3 structural maintenance of chromosomes3:
 
GRMZM2G456570
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: December 10th, 2019
Variation: January 30th, 2020
Gene Model: January 30th, 2020
72 days agochls1 chalcone synthase1:
 
GRMZM2G108894
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: September 1st, 2003
Variation: August 17th, 2022
Gene Model: September 9th, 2020
72 days agomtopvib1 meiotic TopoVI B subunit1:
 
GRMZM2G439198
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: October 21st, 2020
Variation: October 23rd, 2020
Gene Model: October 21st, 2020
72 days agopal11 phenylalanine ammonia lyase11:
 
   Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.     Reference: February 26th, 2024
Gene Product: August 13th, 2022
72 days agopgl16 polygalacturonase16:
 
GRMZM2G174598
Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.     Reference: February 26th, 2024
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
72 days agobm5 brown midrib5:
5.04
GRMZM2G075333
Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.     Reference: February 26th, 2024
Gene Product: April 1st, 2017
Variation: April 10th, 2019
Gene Model: June 23rd, 2016
72 days agobrca2 breast cancer susceptibility2 homolog:
 
GRMZM5G857087
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Variation: June 9th, 2023
Gene Model: March 14th, 2022
72 days agoacoz1 abnormal chromosome organization in zygotene1:
 
GRMZM2G135481
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: April 27th, 2022
Variation: March 24th, 2022
Gene Model: March 24th, 2022
72 days agoZm00001d012510  :
 
GRMZM2G010468
Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.   AT2G30490 (TAIR) Reference: February 26th, 2024
Gene Product: December 29th, 2022
Gene Model: August 14th, 2022
72 days agoZm00001d037849  :
 
GRMZM2G147245
Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.   AT2G30490 (TAIR) Reference: February 26th, 2024
Gene Product: December 29th, 2022
Gene Model: August 14th, 2022
72 days agoZm00001d016471  :
 
GRMZM2G028677
Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.   AT2G30490 (TAIR) Reference: February 26th, 2024
Gene Product: December 29th, 2022
Gene Model: August 14th, 2022
72 days agosmc6 structural maintenance of chromosomes6:
7.02
GRMZM2G025340
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: December 10th, 2019
Gene Model: June 7th, 2022
72 days agocyp47 cytochrome P450 47:
8.03
GRMZM2G139874
Yao, QQ et al. 2024. Integrated Metabolome and Transcriptome Analysis of Gibberellins Mediated the Circadian Rhythm of Leaf Elongation by Regulating Lignin Synthesis in Maize Int J Mol Sci. 25:2705.   AT2G30490 (TAIR) Reference: February 26th, 2024
Gene Product: December 30th, 2022
Gene Model: September 5th, 2021
72 days agorad17 RAD17 DNA repair protein homolog:
9.06
GRMZM2G051138
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.   LOC_Os03g13850 (MSU/TIGR) Reference: February 26th, 2024
Gene Product: February 27th, 2021
Variation: February 27th, 2021
Gene Model: June 26th, 2020
72 days agodcl102 dicer-like 102:
1.07
GRMZM2G413853
Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Gene Product: September 5th, 2006
Variation: June 9th, 2020
Gene Model: January 29th, 2015
72 days agorf9 restorer of fertility9:
 
   Chen, XY et al. 2024. Molecular Mechanisms of Male Sterility in Maize Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01441-w.     Reference: February 26th, 2024
Variation: May 16th, 2013
74 days agoadf16 actin depolymerizing factor16:
 
   Liu, BJ et al. 2024. ZmADF5, a Maize Actin-Depolymerizing Factor Conferring Enhanced Drought Tolerance in Maize Plants. 13:619.     Reference: February 24th, 2024
Gene Product: March 4th, 2020
75 days agoprh56 protein phosphatase homolog56:
7.02
GRMZM2G135444
Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: February 4th, 2019
75 days agocadtfr8 CCAAT-DR1-transcription factor 8:
8.07
GRMZM5G866699
Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: June 18th, 2018
Variation: September 1st, 2003
Gene Model: September 24th, 2018
75 days agofea5 fasciated ear5:
4.02
GRMZM2G154523
Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: January 7th, 2023
Variation: January 7th, 2023
Gene Model: May 16th, 2017
75 days agoiaa4 Aux/IAA-transcription factor4:
1.10
GRMZM2G159285
Gwendolyn K Kirschner et al. 2024. Genetic regulation of the root angle in cereals Trends Plant Sci. :doi: 10.1016/j.tplants.2024.01.008.     Reference: February 23rd, 2024
Variation: November 15th, 2016
Gene Model: November 15th, 2016
75 days agonfya1 nuclear transcription factor y subunit a1:
1.02
GRMZM2G000686
Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
Variation: July 21st, 2022
Gene Model: May 18th, 2016
75 days agoarftf29 ARF-transcription factor 29:
 
   Gwendolyn K Kirschner et al. 2024. Genetic regulation of the root angle in cereals Trends Plant Sci. :doi: 10.1016/j.tplants.2024.01.008.     Reference: February 23rd, 2024
Gene Product: January 29th, 2022
75 days agoarftf30 ARF-transcription factor 30:
 
   Gwendolyn K Kirschner et al. 2024. Genetic regulation of the root angle in cereals Trends Plant Sci. :doi: 10.1016/j.tplants.2024.01.008.     Reference: February 23rd, 2024
Gene Product: January 29th, 2022
75 days agoarftf38 ARF-transcription factor 38:
 
   Gwendolyn K Kirschner et al. 2024. Genetic regulation of the root angle in cereals Trends Plant Sci. :doi: 10.1016/j.tplants.2024.01.008.     Reference: February 23rd, 2024
Gene Product: January 29th, 2022
75 days agocadtfr11 CCAAT-DR1-transcription factor 11:
 
   Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
75 days agocadtfr14 CCAAT-DR1-transcription factor 14:
 
   Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
75 days agocadtfr16 CCAAT-DR1-transcription factor 16:
 
   Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
75 days agocadtfr2 CCAAT-DR1-transcription factor 2:
 
   Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
75 days agocadtfr3 CCAAT-DR1-transcription factor 3:
 
   Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
75 days agocadtfr5 CCAAT-DR1-transcription factor 5:
 
   Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
75 days agocadtfr6 CCAAT-DR1-transcription factor 6:
 
   Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
75 days agocadtfr7 CCAAT-DR1-transcription factor 7:
 
   Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
75 days agoca2p10 CCAAT-HAP2-transcription factor 210:
 
   Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
75 days agoca2p12 CCAAT-HAP2-transcription factor 212:
 
   Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
75 days agoca2p13 CCAAT-HAP2-transcription factor 213:
 
   Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
75 days agoca2p14 CCAAT-HAP2-transcription factor 214:
 
   Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
75 days agoca2p15 CCAAT-HAP2-transcription factor 215:
 
   Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
75 days agoca2p16 CCAAT-HAP2-transcription factor 216:
 
   Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
75 days agoca2p4 CCAAT-HAP2-transcription factor4:
 
   Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
Variation: September 24th, 2021
75 days agoca2p5 CCAAT-HAP2-transcription factor 25:
 
   Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
75 days agoca2p7 CCAAT-HAP2-transcription factor 27:
 
   Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
75 days agoca3p1 CCAAT-HAP3-transcription factor 31:
 
   Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
75 days agoca3p3 CCAAT-HAP3-transcription factor 33:
 
   Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
75 days agoca3p4 CCAAT-HAP3-transcription factor 34:
 
   Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
75 days agoca5p11 CCAAT-HAP5-transcription factor 511:
 
   Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
75 days agoumc1562  :
8.05
GRMZM2G059693
Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Variation: September 19th, 2018
Gene Model: September 19th, 2018
75 days agonfy2 NF-YB homolog:
6.05
GRMZM5G804893
Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
Variation: September 1st, 2003
Gene Model: September 10th, 2014
75 days agocadtfr15 CCAAT-DR1-transcription factor 15:
8.04
GRMZM2G064426
Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
Variation: September 1st, 2003
Gene Model: September 19th, 2018
75 days agolec1 LEC1 transcription factor1:
5.06
GRMZM2G011789
Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
Gene Model: April 8th, 2011
75 days agoagal1 alpha-galactosidase1:
1.07
GRMZM2G346455
Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: September 1st, 2003
Variation: February 14th, 2019
Gene Model: April 14th, 2016
75 days agogpat3 glycerol-3-phosphate acyltransferase3:
 
GRMZM2G156729
Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: March 25th, 2019
Gene Model: March 25th, 2019
75 days agogpat8 glycerol-3-phosphate acyltransferase8:
 
GRMZM2G065203
Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: March 25th, 2019
Gene Model: March 25th, 2019
75 days agoaomt9 anthranilate O-methyltransferase9:
 
GRMZM2G303419
Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: December 23rd, 2020
Gene Model: December 23rd, 2020
75 days agoplc5 phospholipase C5:
 
GRMZM2G157760
Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: January 12th, 2021
Gene Model: January 12th, 2021
75 days agoglpx2 glutathione peroxidase2:
 
GRMZM2G013299
Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: March 4th, 2022
Gene Model: March 4th, 2022
75 days agoplt52 phospholipid transfer protein52:
8.08
GRMZM2G379035
Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: September 1st, 2003
Gene Model: September 3rd, 2019
75 days agocadtfr12 CCAAT-DR1-transcription factor 12:
9.03
GRMZM2G167576
Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: August 9th, 2016
Gene Model: August 8th, 2016
75 days agoAY110240  :
1.03
GRMZM2G013957
Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Variation: July 29th, 2004
Gene Model: February 12th, 2019
75 days agodbb4 double B-box zinc finger protein4:
4.05
GRMZM2G019335
Bai, Y et al. 2024. ZmNF-YC1-ZmAPRG pathway modulates low phosphorus tolerance in maize J Exp Bot. :doi: 10.1093/jxb/erae068.     Reference: February 23rd, 2024
Gene Product: May 10th, 2017
Variation: May 10th, 2017
Gene Model: May 10th, 2017
76 days agoZm00001d045313  :
 
   Quaggiotti, S et al. 2024. Strigolactone roles in maize tolerance to low nitrogen involve shifts in acquisition and partitioning of protein, sulfur, and iron Plant Soil. :dpi: 10.1007/s11104-024-06561-6.     Reference: February 22nd, 2024
Gene Product: April 27th, 2022
76 days agopdr1 pleiotropic drug resistance protein1:
 
   Quaggiotti, S et al. 2024. Strigolactone roles in maize tolerance to low nitrogen involve shifts in acquisition and partitioning of protein, sulfur, and iron Plant Soil. :dpi: 10.1007/s11104-024-06561-6.     Reference: February 22nd, 2024
Gene Product: December 28th, 2015
76 days agotps10 terpene synthase10:
10.03
GRMZM2G179092
Jamie M Waterman et al. 2024. High-resolution kinetics of herbivore-induced plant volatile transfer reveal clocked response patterns in neighboring plants. Elife. 12:RP89855.     Reference: February 22nd, 2024
Gene Product: September 4th, 2008
Variation: April 2nd, 2023
Gene Model: May 28th, 2012
76 days agoumc1336  :
10.03
GRMZM2G061135
Quaggiotti, S et al. 2024. Strigolactone roles in maize tolerance to low nitrogen involve shifts in acquisition and partitioning of protein, sulfur, and iron Plant Soil. :dpi: 10.1007/s11104-024-06561-6.     Reference: February 22nd, 2024
Gene Product: January 27th, 2020
Variation: September 1st, 2003
Gene Model: December 12th, 2017
76 days agohb1 hemoglobin1:
9.06
GRMZM2G067402
Quaggiotti, S et al. 2024. Strigolactone roles in maize tolerance to low nitrogen involve shifts in acquisition and partitioning of protein, sulfur, and iron Plant Soil. :dpi: 10.1007/s11104-024-06561-6.     Reference: February 22nd, 2024
Gene Product: February 20th, 2018
Variation: September 24th, 2010
Gene Model: May 15th, 2014
76 days agosfp5 sulfate transporter5:
9.02
GRMZM2G444801
Quaggiotti, S et al. 2024. Strigolactone roles in maize tolerance to low nitrogen involve shifts in acquisition and partitioning of protein, sulfur, and iron Plant Soil. :dpi: 10.1007/s11104-024-06561-6.     Reference: February 22nd, 2024
Gene Product: May 8th, 2020
Gene Model: March 14th, 2018
76 days agoopr7 12-oxo-phytodienoic acid reductase7:
 
GRMZM2G148281
Jamie M Waterman et al. 2024. High-resolution kinetics of herbivore-induced plant volatile transfer reveal clocked response patterns in neighboring plants. Elife. 12:RP89855.     Reference: February 22nd, 2024
Gene Product: September 3rd, 2010
Variation: December 16th, 2019
Gene Model: November 25th, 2013
76 days agolhy1 late hypocotyl elongation protein ortholog1:
10.03
GRMZM2G175265
Sangam Lal Dwivedi et al. 2024. Unlocking allelic variation in circadian clock genes to develop environmentally robust and productive crops. Planta. 259:72.     Reference: February 22nd, 2024
Gene Product: July 31st, 2016
Variation: December 28th, 2016
Gene Model: November 7th, 2018
76 days agocca1 circadian clock associated1:
 
GRMZM2G014902
Sangam Lal Dwivedi et al. 2024. Unlocking allelic variation in circadian clock genes to develop environmentally robust and productive crops. Planta. 259:72.     Reference: February 22nd, 2024
Gene Product: July 31st, 2016
Variation: March 18th, 2011
Gene Model: July 30th, 2016
76 days agotps2 terpene synthase2:
 
GRMZM2G046615
Jamie M Waterman et al. 2024. High-resolution kinetics of herbivore-induced plant volatile transfer reveal clocked response patterns in neighboring plants. Elife. 12:RP89855.     Reference: February 22nd, 2024
Gene Product: December 6th, 2023
Variation: May 28th, 2012
Gene Model: May 28th, 2012
76 days agonas4 nicotianamine synthase 4:
 
GRMZM2G439195
Quaggiotti, S et al. 2024. Strigolactone roles in maize tolerance to low nitrogen involve shifts in acquisition and partitioning of protein, sulfur, and iron Plant Soil. :dpi: 10.1007/s11104-024-06561-6.     Reference: February 22nd, 2024
Gene Product: July 26th, 2013
Gene Model: July 26th, 2013
76 days agonas6 nicotianamine synthase6:
 
GRMZM2G704488
Quaggiotti, S et al. 2024. Strigolactone roles in maize tolerance to low nitrogen involve shifts in acquisition and partitioning of protein, sulfur, and iron Plant Soil. :dpi: 10.1007/s11104-024-06561-6.     Reference: February 22nd, 2024
Gene Product: July 26th, 2013
Gene Model: July 26th, 2013
76 days agocyp19 cytochrome P-450 19:
 
GRMZM2G102079
Jamie M Waterman et al. 2024. High-resolution kinetics of herbivore-induced plant volatile transfer reveal clocked response patterns in neighboring plants. Elife. 12:RP89855.     Reference: February 22nd, 2024
Gene Product: September 26th, 2016
Gene Model: September 26th, 2016
76 days agonpf2 nitrate transporter/peptide transporter family2:
 
GRMZM2G161459
Quaggiotti, S et al. 2024. Strigolactone roles in maize tolerance to low nitrogen involve shifts in acquisition and partitioning of protein, sulfur, and iron Plant Soil. :dpi: 10.1007/s11104-024-06561-6.   AT1G12110 (TAIR) Reference: February 22nd, 2024
Gene Product: September 1st, 2003
Variation: September 11th, 2017
Gene Model: September 11th, 2017
76 days agosfp4 sulfate transporter4:
 
GRMZM2G154211
Quaggiotti, S et al. 2024. Strigolactone roles in maize tolerance to low nitrogen involve shifts in acquisition and partitioning of protein, sulfur, and iron Plant Soil. :dpi: 10.1007/s11104-024-06561-6.     Reference: February 22nd, 2024
Gene Product: May 8th, 2020
Gene Model: November 13th, 2017
76 days agosfp6 sulfate transporter6:
 
GRMZM2G158013
Quaggiotti, S et al. 2024. Strigolactone roles in maize tolerance to low nitrogen involve shifts in acquisition and partitioning of protein, sulfur, and iron Plant Soil. :dpi: 10.1007/s11104-024-06561-6.     Reference: February 22nd, 2024
Gene Product: May 8th, 2020
Gene Model: November 13th, 2017
76 days agonpf5 nitrate transporter/peptide transporter family5:
 
GRMZM2G179294
Quaggiotti, S et al. 2024. Strigolactone roles in maize tolerance to low nitrogen involve shifts in acquisition and partitioning of protein, sulfur, and iron Plant Soil. :dpi: 10.1007/s11104-024-06561-6.     Reference: February 22nd, 2024
Gene Product: September 1st, 2003
Gene Model: May 10th, 2018
76 days agonrt7 nitrate transport7:
 
GRMZM5G811593
Quaggiotti, S et al. 2024. Strigolactone roles in maize tolerance to low nitrogen involve shifts in acquisition and partitioning of protein, sulfur, and iron Plant Soil. :dpi: 10.1007/s11104-024-06561-6.     Reference: February 22nd, 2024
Gene Product: September 1st, 2003
Gene Model: March 2nd, 2021
76 days agoaaap10 amino acid/auxin permease10:
 
GRMZM2G114523
Quaggiotti, S et al. 2024. Strigolactone roles in maize tolerance to low nitrogen involve shifts in acquisition and partitioning of protein, sulfur, and iron Plant Soil. :dpi: 10.1007/s11104-024-06561-6.     Reference: February 22nd, 2024
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
76 days agonas2 nicotianamine synthase2:
1.03
GRMZM2G030036
Quaggiotti, S et al. 2024. Strigolactone roles in maize tolerance to low nitrogen involve shifts in acquisition and partitioning of protein, sulfur, and iron Plant Soil. :dpi: 10.1007/s11104-024-06561-6.     Reference: February 22nd, 2024
Gene Product: July 26th, 2013
Variation: March 19th, 2008
Gene Model: July 26th, 2013
77 days agophyC2 phytochromeC2:
5.01
GRMZM2G129889
Wang, P-X et al. 2024. Fine-Tuning Quantitative Trait Loci Identified in Immortalized F2 Population Are Essential for Genomic Prediction of Hybrid Performance in Maize Agriculture. 14:340.     Reference: February 21st, 2024
Gene Product: June 30th, 2009
Variation: August 26th, 2021
Gene Model: August 26th, 2021
77 days agoca5p16 CCAAT-HAP5-transcription factor 516:
7.03
GRMZM2G078691
Wang, P-X et al. 2024. Fine-Tuning Quantitative Trait Loci Identified in Immortalized F2 Population Are Essential for Genomic Prediction of Hybrid Performance in Maize Agriculture. 14:340.     Reference: February 21st, 2024
Gene Product: August 9th, 2016
Gene Model: August 8th, 2016
77 days agobv1 brevis plant1:
5.04 - 5.05
GRMZM2G366698
Wang, P-X et al. 2024. Fine-Tuning Quantitative Trait Loci Identified in Immortalized F2 Population Are Essential for Genomic Prediction of Hybrid Performance in Maize Agriculture. 14:340.   LOC_Os02g27620 (MSU/TIGR)
Os02g0477700 (Gramene)
Reference: February 21st, 2024
Gene Product: January 16th, 2016
Variation: January 16th, 2016
Gene Model: January 16th, 2016
77 days agote1 terminal ear1:
3.05
   Wang, P-X et al. 2024. Fine-Tuning Quantitative Trait Loci Identified in Immortalized F2 Population Are Essential for Genomic Prediction of Hybrid Performance in Maize Agriculture. 14:340.     Reference: February 21st, 2024
Gene Product: September 1st, 2003
Variation: October 25th, 2021
77 days agovp8 viviparous8:
1.11
   Wang, P-X et al. 2024. Fine-Tuning Quantitative Trait Loci Identified in Immortalized F2 Population Are Essential for Genomic Prediction of Hybrid Performance in Maize Agriculture. 14:340.   AT3G54720 (TAIR) Reference: February 21st, 2024
Gene Product: November 29th, 2012
Variation: July 6th, 2022
77 days agocol3 C2C2-CO-like-transcription factor 3:
 
   Wang, P-X et al. 2024. Fine-Tuning Quantitative Trait Loci Identified in Immortalized F2 Population Are Essential for Genomic Prediction of Hybrid Performance in Maize Agriculture. 14:340.     Reference: February 21st, 2024
Gene Product: June 18th, 2018
77 days agophyB1 phytochromeB1:
1.03
   Wang, P-X et al. 2024. Fine-Tuning Quantitative Trait Loci Identified in Immortalized F2 Population Are Essential for Genomic Prediction of Hybrid Performance in Maize Agriculture. 14:340.     Reference: February 21st, 2024
Gene Product: October 24th, 2007
Variation: May 19th, 2020
77 days agozfl2 Zea floricaula leafy2:
2.02
   Wang, P-X et al. 2024. Fine-Tuning Quantitative Trait Loci Identified in Immortalized F2 Population Are Essential for Genomic Prediction of Hybrid Performance in Maize Agriculture. 14:340.     Reference: February 21st, 2024
Variation: October 9th, 2014
77 days agopsaA (cp) psaA:
 
   Elbasan, F et al. 2024. Hesperidin and chlorogenic acid mitigate arsenic-induced oxidative stress via redox regulation, photosystems-related gene expression, and antioxidant efficiency in the chloroplasts of Zea mays Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108445.     Reference: February 21st, 2024
Gene Product: September 1st, 2003
77 days agopsaB (cp) psaB:
 
   Elbasan, F et al. 2024. Hesperidin and chlorogenic acid mitigate arsenic-induced oxidative stress via redox regulation, photosystems-related gene expression, and antioxidant efficiency in the chloroplasts of Zea mays Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108445.     Reference: February 21st, 2024
Gene Product: September 1st, 2003
77 days agomads1 MADS1:
9.07
   Wang, P-X et al. 2024. Fine-Tuning Quantitative Trait Loci Identified in Immortalized F2 Population Are Essential for Genomic Prediction of Hybrid Performance in Maize Agriculture. 14:340.     Reference: February 21st, 2024
Gene Product: September 10th, 2021
Variation: April 15th, 2008
77 days agopsbD (cp)  :
 
   Elbasan, F et al. 2024. Hesperidin and chlorogenic acid mitigate arsenic-induced oxidative stress via redox regulation, photosystems-related gene expression, and antioxidant efficiency in the chloroplasts of Zea mays Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108445.     Reference: February 21st, 2024
Gene Product: September 1st, 2003
77 days agopsbA (cp)  :
 
   Elbasan, F et al. 2024. Hesperidin and chlorogenic acid mitigate arsenic-induced oxidative stress via redox regulation, photosystems-related gene expression, and antioxidant efficiency in the chloroplasts of Zea mays Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108445.     Reference: February 21st, 2024
Gene Product: September 1st, 2003
77 days agosbp12 SBP-transcription factor 12:
5.04
GRMZM2G126827
Wang, P-X et al. 2024. Fine-Tuning Quantitative Trait Loci Identified in Immortalized F2 Population Are Essential for Genomic Prediction of Hybrid Performance in Maize Agriculture. 14:340.     Reference: February 21st, 2024
Gene Product: July 5th, 2019
Gene Model: June 27th, 2018
77 days agomads3 MADS3:
7.00
GRMZM2G072582
Wang, P-X et al. 2024. Fine-Tuning Quantitative Trait Loci Identified in Immortalized F2 Population Are Essential for Genomic Prediction of Hybrid Performance in Maize Agriculture. 14:340.     Reference: February 21st, 2024
Variation: July 31st, 2015
Gene Model: July 31st, 2015
77 days agoga20ox3 gibberellin 20-oxidase3:
 
GRMZM2G368411
Wang, P-X et al. 2024. Fine-Tuning Quantitative Trait Loci Identified in Immortalized F2 Population Are Essential for Genomic Prediction of Hybrid Performance in Maize Agriculture. 14:340.     Reference: February 21st, 2024
Gene Product: October 28th, 2014
Variation: July 10th, 2020
Gene Model: October 29th, 2014
77 days agonod1 narrow odd dwarf1:
 
GRMZM2G027821
Wang, P-X et al. 2024. Fine-Tuning Quantitative Trait Loci Identified in Immortalized F2 Population Are Essential for Genomic Prediction of Hybrid Performance in Maize Agriculture. 14:340.   AT4G35920 (TAIR)
LOC_Os03g06120 (MSU/TIGR)
Reference: February 21st, 2024
Gene Product: August 10th, 2022
Variation: September 8th, 2018
Gene Model: March 4th, 2017
77 days agordph1 reducing plant height1:
 
GRMZM2G114190
Wang, P-X et al. 2024. Fine-Tuning Quantitative Trait Loci Identified in Immortalized F2 Population Are Essential for Genomic Prediction of Hybrid Performance in Maize Agriculture. 14:340.     Reference: February 21st, 2024
Gene Product: November 7th, 2019
Gene Model: November 7th, 2019
77 days agoprrtf1 pseudo-response regulator transcription factor1:
 
GRMZM2G095727
Wang, P-X et al. 2024. Fine-Tuning Quantitative Trait Loci Identified in Immortalized F2 Population Are Essential for Genomic Prediction of Hybrid Performance in Maize Agriculture. 14:340.   AT5G02810 (TAIR) Reference: February 21st, 2024
Gene Product: June 18th, 2018
Gene Model: April 10th, 2021
77 days agomads67 MADS-transcription factor 67:
7.04
GRMZM2G147716
Wang, P-X et al. 2024. Fine-Tuning Quantitative Trait Loci Identified in Immortalized F2 Population Are Essential for Genomic Prediction of Hybrid Performance in Maize Agriculture. 14:340.     Reference: February 21st, 2024
Gene Product: September 10th, 2021
Gene Model: February 7th, 2019
77 days agophyC1 phytochromeC1:
1.10
   Wang, P-X et al. 2024. Fine-Tuning Quantitative Trait Loci Identified in Immortalized F2 Population Are Essential for Genomic Prediction of Hybrid Performance in Maize Agriculture. 14:340.     Reference: February 21st, 2024
Gene Product: June 30th, 2009
Variation: June 30th, 2009
78 days agoplt15 phospholipid transfer protein15:
 
   Shweta Meshram et al. 2024. Investigation on comparative transcriptome profiling of resistant and susceptible non-CMS maize genotypes during Bipolaris maydis race O infection Heliyon. :doi: 10.1016/j.heliyon.2024.e26538.     Reference: February 20th, 2024
Gene Product: September 1st, 2003
78 days agopza00131  :
1.07
   Shweta Meshram et al. 2024. Investigation on comparative transcriptome profiling of resistant and susceptible non-CMS maize genotypes during Bipolaris maydis race O infection Heliyon. :doi: 10.1016/j.heliyon.2024.e26538.     Reference: February 20th, 2024
Variation: September 25th, 2007
78 days agoarftf4 ARF-transcription factor 4:
 
   Shweta Meshram et al. 2024. Investigation on comparative transcriptome profiling of resistant and susceptible non-CMS maize genotypes during Bipolaris maydis race O infection Heliyon. :doi: 10.1016/j.heliyon.2024.e26538.     Reference: February 20th, 2024
Gene Product: January 29th, 2022
78 days agowrky83 WRKY-transcription factor 83:
 
   Shweta Meshram et al. 2024. Investigation on comparative transcriptome profiling of resistant and susceptible non-CMS maize genotypes during Bipolaris maydis race O infection Heliyon. :doi: 10.1016/j.heliyon.2024.e26538.     Reference: February 20th, 2024
Variation: July 2nd, 2021
78 days agocyp16 cytochrome P450 16:
 
   Shweta Meshram et al. 2024. Investigation on comparative transcriptome profiling of resistant and susceptible non-CMS maize genotypes during Bipolaris maydis race O infection Heliyon. :doi: 10.1016/j.heliyon.2024.e26538.     Reference: February 20th, 2024
Gene Product: September 26th, 2016
Variation: February 15th, 2014
78 days agocal5 calmodulin5:
 
GRMZM2G155822
Shweta Meshram et al. 2024. Investigation on comparative transcriptome profiling of resistant and susceptible non-CMS maize genotypes during Bipolaris maydis race O infection Heliyon. :doi: 10.1016/j.heliyon.2024.e26538.     Reference: February 20th, 2024
Gene Product: September 1st, 2003
Gene Model: December 19th, 2019
78 days agoglp2 germin-like protein2:
 
GRMZM2G045809
Shweta Meshram et al. 2024. Investigation on comparative transcriptome profiling of resistant and susceptible non-CMS maize genotypes during Bipolaris maydis race O infection Heliyon. :doi: 10.1016/j.heliyon.2024.e26538.     Reference: February 20th, 2024
Gene Product: December 24th, 2015
Gene Model: September 11th, 2020
78 days agotps13 terpene synthase13:
 
GRMZM2G028306
Shweta Meshram et al. 2024. Investigation on comparative transcriptome profiling of resistant and susceptible non-CMS maize genotypes during Bipolaris maydis race O infection Heliyon. :doi: 10.1016/j.heliyon.2024.e26538.     Reference: February 20th, 2024
Gene Product: September 3rd, 2008
Gene Model: October 27th, 2020
78 days agogeb3 glucan endo-1,3-beta-glucosidase homolog3:
 
GRMZM2G061403
Shweta Meshram et al. 2024. Investigation on comparative transcriptome profiling of resistant and susceptible non-CMS maize genotypes during Bipolaris maydis race O infection Heliyon. :doi: 10.1016/j.heliyon.2024.e26538.     Reference: February 20th, 2024
Gene Product: September 1st, 2003
Gene Model: February 1st, 2021
78 days agoccp9 cysteine protease9:
 
GRMZM2G049882
Shweta Meshram et al. 2024. Investigation on comparative transcriptome profiling of resistant and susceptible non-CMS maize genotypes during Bipolaris maydis race O infection Heliyon. :doi: 10.1016/j.heliyon.2024.e26538.     Reference: February 20th, 2024
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
78 days agoacs2 1-aminocyclopropane-1-carboxylate synthase2:
2.02
GRMZM2G164405
Shweta Meshram et al. 2024. Investigation on comparative transcriptome profiling of resistant and susceptible non-CMS maize genotypes during Bipolaris maydis race O infection Heliyon. :doi: 10.1016/j.heliyon.2024.e26538.     Reference: February 20th, 2024
Gene Product: May 16th, 2016
Variation: May 3rd, 2007
Gene Model: January 21st, 2016
79 days agocyp46 cytochrome P450 46:
 
   Gao, JH et al. 2024. Identification of Novel QTL for Mercury Accumulation in Maize Using an Enlarged SNP Panel Genes. 15:257.     Reference: February 19th, 2024
Gene Product: December 30th, 2022
79 days agoppr230 pentatricopeptide repeat protein230:
 
   Meichen Liu et al. 2024. Genome-Wide Association Study and Prediction of Tassel Weight of Tropical Maize Germplasm in Multi-Parent Population Int J Mol Sci. 25:1756.     Reference: February 19th, 2024
Gene Product: December 27th, 2016
79 days agodnaJ10 DnaJ/Hsp40 10:
 
   Meichen Liu et al. 2024. Genome-Wide Association Study and Prediction of Tassel Weight of Tropical Maize Germplasm in Multi-Parent Population Int J Mol Sci. 25:1756.     Reference: February 19th, 2024
Gene Product: September 1st, 2003
79 days agocel26 cellulase26:
4.07
GRMZM2G125991
Gao, JH et al. 2024. Identification of Novel QTL for Mercury Accumulation in Maize Using an Enlarged SNP Panel Genes. 15:257.     Reference: February 19th, 2024
Gene Product: March 20th, 2023
Gene Model: May 23rd, 2021
79 days agoca5p10 CCAAT-HAP5-transcription factor 510:
 
   Gao, JH et al. 2024. Identification of Novel QTL for Mercury Accumulation in Maize Using an Enlarged SNP Panel Genes. 15:257.     Reference: February 19th, 2024
Gene Product: August 9th, 2016
79 days agohsftf18 HSF-transcription factor 18:
 
   Roopashree Byregowda et al. 2024. Comparative regulatory network of transcripts behind radicle emergence and seedling stage of maize (Zea mays L.). Heliyon. 10:e25683.     Reference: February 19th, 2024
Gene Product: May 15th, 2020
79 days agothx22 Trihelix-transcription factor 22:
 
   Roopashree Byregowda et al. 2024. Comparative regulatory network of transcripts behind radicle emergence and seedling stage of maize (Zea mays L.). Heliyon. 10:e25683.     Reference: February 19th, 2024
Gene Product: November 9th, 2021
79 days agowrky79 WRKY-transcription factor 79:
 
GRMZM2G061408
Roopashree Byregowda et al. 2024. Comparative regulatory network of transcripts behind radicle emergence and seedling stage of maize (Zea mays L.). Heliyon. 10:e25683.     Reference: February 19th, 2024
Gene Product: July 24th, 2017
Gene Model: July 21st, 2020
79 days agobhlh130 bHLH-transcription factor 130:
 
   Roopashree Byregowda et al. 2024. Comparative regulatory network of transcripts behind radicle emergence and seedling stage of maize (Zea mays L.). Heliyon. 10:e25683.   AT3G26744 (TAIR) Reference: February 19th, 2024
Gene Product: September 14th, 2016
79 days agobzip49 bZIP-transcription factor 49:
 
   Roopashree Byregowda et al. 2024. Comparative regulatory network of transcripts behind radicle emergence and seedling stage of maize (Zea mays L.). Heliyon. 10:e25683.     Reference: February 19th, 2024
Variation: April 8th, 2021
79 days agoctb1 chitinase B1:
10.04
GRMZM2G005633
Gao, JH et al. 2024. Identification of Novel QTL for Mercury Accumulation in Maize Using an Enlarged SNP Panel Genes. 15:257.     Reference: February 19th, 2024
Gene Product: May 31st, 2021
Variation: September 1st, 2003
Gene Model: October 21st, 2018
79 days agomybr68 MYB-related-transcription factor 68:
10.04 - 10.05
GRMZM2G410083
Roopashree Byregowda et al. 2024. Comparative regulatory network of transcripts behind radicle emergence and seedling stage of maize (Zea mays L.). Heliyon. 10:e25683.     Reference: February 19th, 2024
Variation: September 1st, 2003
Gene Model: January 18th, 2018
79 days agogrftf8 GRF-transcription factor 8:
2.02
GRMZM2G041223
Roopashree Byregowda et al. 2024. Comparative regulatory network of transcripts behind radicle emergence and seedling stage of maize (Zea mays L.). Heliyon. 10:e25683.     Reference: February 19th, 2024
Variation: September 1st, 2003
Gene Model: February 22nd, 2018
79 days agohk6 histidine kinase6:
 
GRMZM2G125943
Gao, JH et al. 2024. Identification of Novel QTL for Mercury Accumulation in Maize Using an Enlarged SNP Panel Genes. 15:257.     Reference: February 19th, 2024
Gene Product: May 20th, 2016
Gene Model: May 20th, 2016
79 days agohak4 high-affinity potassium transporter4:
 
GRMZM2G425999
Meichen Liu et al. 2024. Genome-Wide Association Study and Prediction of Tassel Weight of Tropical Maize Germplasm in Multi-Parent Population Int J Mol Sci. 25:1756.     Reference: February 19th, 2024
Gene Product: March 12th, 2020
Gene Model: December 10th, 2019
79 days agohsftf30 HSF-transcription factor 30:
 
   Roopashree Byregowda et al. 2024. Comparative regulatory network of transcripts behind radicle emergence and seedling stage of maize (Zea mays L.). Heliyon. 10:e25683.     Reference: February 19th, 2024
Gene Product: May 15th, 2020
79 days agobhlh199 bHLH-transcription factor 199:
 
GRMZM2G137426
Roopashree Byregowda et al. 2024. Comparative regulatory network of transcripts behind radicle emergence and seedling stage of maize (Zea mays L.). Heliyon. 10:e25683.     Reference: February 19th, 2024
Gene Product: September 14th, 2016
Gene Model: July 2nd, 2021
79 days agopsei3 cystatin3:
6.06
GRMZM2G440968
Gao, JH et al. 2024. Identification of Novel QTL for Mercury Accumulation in Maize Using an Enlarged SNP Panel Genes. 15:257.     Reference: February 19th, 2024
Gene Product: April 21st, 2008
Variation: February 24th, 2009
Gene Model: July 28th, 2016
81 days agob1 colored plant1:
2.03
GRMZM2G172795
Hövel, I et al. 2024. RNA-directed DNA methylation mutants reduce histone at the paramutated maize booster1 enhancer. Plant Physiol. doi: 10.1093/plphys/kiae072     Reference: February 17th, 2024
Gene Product: October 13th, 2010
Variation: February 14th, 2013
Gene Model: September 22nd, 2011
81 days agonrpd2/e2 nuclear RNA polymerase D2/E2:
2.02
GRMZM2G054225
Hövel, I et al. 2024. RNA-directed DNA methylation mutants reduce histone at the paramutated maize booster1 enhancer. Plant Physiol. doi: 10.1093/plphys/kiae072     Reference: February 17th, 2024
Gene Product: November 9th, 2012
Variation: November 3rd, 2012
Gene Model: November 9th, 2012
81 days agose1 sugary-enhancer1:
2.10 - 2.10
AC217415.3_FG004
Shah Mohammad Usman et al. 2024. Unveiling the sweetness: evaluating yield and quality attributes of early generation sweet corn (Zea mays subsp. sachharata) inbred lines through morphological, biochemical and marker-based approaches Mol Biol Rep. 51:307.     Reference: February 17th, 2024
Gene Product: September 24th, 2019
Variation: May 4th, 2015
Gene Model: May 2nd, 2015
81 days agomop1 mediator of paramutation1:
2.04
GRMZM2G042443
Hövel, I et al. 2024. RNA-directed DNA methylation mutants reduce histone at the paramutated maize booster1 enhancer. Plant Physiol. doi: 10.1093/plphys/kiae072     Reference: February 17th, 2024
Gene Product: August 8th, 2006
Variation: August 8th, 2006
Gene Model: April 24th, 2013
81 days agormr6 required to maintain repression6:
1.06
GRMZM2G007681
Hövel, I et al. 2024. RNA-directed DNA methylation mutants reduce histone at the paramutated maize booster1 enhancer. Plant Physiol. doi: 10.1093/plphys/kiae072     Reference: February 17th, 2024
Gene Product: March 27th, 2013
Variation: March 28th, 2013
Gene Model: March 27th, 2013
82 days agomis12a minichromosome instability12a:
10.07
GRMZM2G173660
Li, XL et al. 2024. Heat stress at the bicellular stage inhibits sperm cell development and transport into pollen tubes Plant Physiol. :doi: 10.1093/plphys/kiae087.   AT5G35520 (TAIR)
LOC_Os02g40680 (MSU/TIGR)
Os02G0620100 (Gramene)
Reference: February 16th, 2024
Gene Product: December 24th, 2015
Variation: October 16th, 2010
Gene Model: December 24th, 2015
82 days agomtl3 metallothionein3:
4.05
GRMZM2G099340
Dowd, PF et al. 2023. Potential role of a maize metallothionein gene in pest resistance Plant Gene. 34:100409.     Reference: February 16th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: June 1st, 2017
82 days agomdr1 maternal derepression of R1:
4.09 - 4.09
GRMZM2G422464
Zeng, YB et al. 2024. Potent pollen gene regulation by DNA glycosylases in maize bioRxiv preprint. :doi: 10.1101/2024.02.13.580204.   AT5G04560 (TAIR) Reference: February 16th, 2024
Gene Product: October 5th, 2021
Variation: October 5th, 2021
Gene Model: October 5th, 2021
82 days agocyc14 cyclin14:
1.07
GRMZM2G133413
Li, XL et al. 2024. Heat stress at the bicellular stage inhibits sperm cell development and transport into pollen tubes Plant Physiol. :doi: 10.1093/plphys/kiae087.     Reference: February 16th, 2024
Gene Product: June 26th, 2009
Variation: January 19th, 2017
Gene Model: January 19th, 2017
82 days agohsp70-4 heat shock protein70-4:
3.05
   Li, XL et al. 2024. Heat stress at the bicellular stage inhibits sperm cell development and transport into pollen tubes Plant Physiol. :doi: 10.1093/plphys/kiae087.     Reference: February 16th, 2024
Gene Product: September 1st, 2003
Variation: January 2nd, 2013
82 days agomad2 mitotic arrest deficient homolog2:
 
GRMZM2G047143
Li, XL et al. 2024. Heat stress at the bicellular stage inhibits sperm cell development and transport into pollen tubes Plant Physiol. :doi: 10.1093/plphys/kiae087.     Reference: February 16th, 2024
Gene Product: July 6th, 2020
Gene Model: July 6th, 2020
82 days agoAW216329  :
9.08
GRMZM2G055785
Li, XL et al. 2024. Heat stress at the bicellular stage inhibits sperm cell development and transport into pollen tubes Plant Physiol. :doi: 10.1093/plphys/kiae087.     Reference: February 16th, 2024
Variation: July 29th, 2004
Gene Model: February 27th, 2018
82 days agosamba1 SAMBA ortholog1:
1.05
GRMZM2G157878
Li, XL et al. 2024. Heat stress at the bicellular stage inhibits sperm cell development and transport into pollen tubes Plant Physiol. :doi: 10.1093/plphys/kiae087.   AT1G32310 (TAIR) Reference: February 16th, 2024
Gene Product: November 18th, 2021
Variation: November 18th, 2021
Gene Model: February 8th, 2020
82 days agolimtf11 LIM-transcription factor 11:
 
GRMZM2G017845
Li, XL et al. 2024. Heat stress at the bicellular stage inhibits sperm cell development and transport into pollen tubes Plant Physiol. :doi: 10.1093/plphys/kiae087.     Reference: February 16th, 2024
Gene Product: June 24th, 2019
Variation: June 24th, 2019
Gene Model: October 10th, 2012
82 days agocyc9 cyclin9:
 
GRMZM2G017081
Li, XL et al. 2024. Heat stress at the bicellular stage inhibits sperm cell development and transport into pollen tubes Plant Physiol. :doi: 10.1093/plphys/kiae087.     Reference: February 16th, 2024
Gene Product: June 26th, 2009
Variation: June 6th, 2016
Gene Model: June 6th, 2016
82 days agohsp11 heat shock protein11:
 
GRMZM2G306679
Li, XL et al. 2024. Heat stress at the bicellular stage inhibits sperm cell development and transport into pollen tubes Plant Physiol. :doi: 10.1093/plphys/kiae087.     Reference: February 16th, 2024
Gene Product: January 15th, 2019
Gene Model: January 14th, 2019
82 days agohsp70-3 heat shock protein70-3:
 
GRMZM2G145275
Li, XL et al. 2024. Heat stress at the bicellular stage inhibits sperm cell development and transport into pollen tubes Plant Physiol. :doi: 10.1093/plphys/kiae087.     Reference: February 16th, 2024
Gene Product: September 1st, 2003
Gene Model: December 18th, 2020
82 days agohsp70-6 heat shock protein70-6:
 
GRMZM2G428391
Li, XL et al. 2024. Heat stress at the bicellular stage inhibits sperm cell development and transport into pollen tubes Plant Physiol. :doi: 10.1093/plphys/kiae087.     Reference: February 16th, 2024
Gene Product: September 1st, 2003
Gene Model: December 18th, 2020
82 days agodng102 DNA glycosylase102:
 
GRMZM2G123587
Zeng, YB et al. 2024. Potent pollen gene regulation by DNA glycosylases in maize bioRxiv preprint. :doi: 10.1101/2024.02.13.580204.     Reference: February 16th, 2024
Gene Product: October 5th, 2021
Variation: October 5th, 2021
Gene Model: May 15th, 2021
82 days agocdc5 cell division control protein homolog5:
 
GRMZM2G068193
Li, XL et al. 2024. Heat stress at the bicellular stage inhibits sperm cell development and transport into pollen tubes Plant Physiol. :doi: 10.1093/plphys/kiae087.     Reference: February 16th, 2024
Gene Product: October 19th, 2022
Gene Model: March 24th, 2022
82 days agoamt1 ammonium transporter1:
10.04
GRMZM2G175140
Shambhu Krishan Lal et al. 2024. Recent Advancements in Nitrogen Use Efficiency in Crop Plants Achieved by Genomics and Targeted Genetic Engineering Approaches Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01439-4.     Reference: February 16th, 2024
Gene Product: July 8th, 2013
Variation: September 25th, 2007
Gene Model: September 11th, 2021
83 days agosr2 striate leaves2:
10.07
   Brady, MJ et al. 2024. The maize striate leaves2 ( sr2) gene encodes a conserved DUF3732 domain and is homologous to the rice yss1 gene. Plant Direct 8:(2) e567.   AT4G33480 (TAIR)
LOC_Os04g59570 (MSU/TIGR)
Os04g0692200 (Gramene)
Reference: February 15th, 2024
Gene Product: February 15th, 2024
Variation: October 9th, 2023
85 days agoask2 aspartate kinase2:
2.06
GRMZM2G052935
Hriipulou Duo et al. 2024. Assessing sequence variation, haplotype analysis and molecular characterisation of aspartate kinase2 (ask2) gene regulating methionine biosynthesis in diverse maize inbreds. Mol Genet Genomics. 299:7.     Reference: February 13th, 2024
Gene Product: September 1st, 2003
Variation: February 6th, 2018
Gene Model: February 6th, 2018
86 days agomrpa16 multidrug resistance protein associated16:
 
   Yaling Hou et al. 2024. Integrative analysis of the transcriptome and metabolome reveals Bacillus atrophaeus WZYH01-mediated salt stress mechanism in maize (Zea mays L.) J Biotechnol. :doi: 10.1016/j.jbiotec.2024.02.004.     Reference: February 12th, 2024
Gene Product: July 11th, 2019
86 days agomam1 mRNA adenosine methylase1:
 
   Daolei Zhang et al. 2024. Epigenetic variation in maize agronomical traits for breeding and trait improvement. J Genet Genomics.   AT4G10760 (TAIR) Reference: February 12th, 2024
Gene Product: November 24th, 2023
Variation: November 24th, 2023
86 days agomet6 DNA methyl transferase6:
8.05
   Daolei Zhang et al. 2024. Epigenetic variation in maize agronomical traits for breeding and trait improvement. J Genet Genomics.     Reference: February 12th, 2024
Gene Product: April 6th, 2018
Variation: October 25th, 2020
86 days agola1 lazy plant1:
4.03 - 4.04
GRMZM2G135019
Daolei Zhang et al. 2024. Epigenetic variation in maize agronomical traits for breeding and trait improvement. J Genet Genomics.     Reference: February 12th, 2024
Gene Product: October 9th, 2013
Variation: February 26th, 2015
Gene Model: October 8th, 2013
86 days agorgd1 ragged seedling1:
6.01 - 6.01
   Daolei Zhang et al. 2024. Epigenetic variation in maize agronomical traits for breeding and trait improvement. J Genet Genomics.   AT5G23570 (TAIR) Reference: February 12th, 2024
Gene Product: December 18th, 2014
Variation: June 8th, 2015
86 days agorpd3 RPD3 histone deacetylase homolog:
4.09
GRMZM2G172883
Daolei Zhang et al. 2024. Epigenetic variation in maize agronomical traits for breeding and trait improvement. J Genet Genomics.     Reference: February 12th, 2024
Gene Product: February 12th, 2020
Variation: November 11th, 2014
Gene Model: November 6th, 2014
86 days agoexpb2 beta expansin2:
1.05
GRMZM2G021621
Daolei Zhang et al. 2024. Epigenetic variation in maize agronomical traits for breeding and trait improvement. J Genet Genomics.     Reference: February 12th, 2024
Gene Product: March 12th, 2008
Variation: December 28th, 2016
Gene Model: December 28th, 2016
86 days agoexpa1 alpha expansin1:
3.06
   Daolei Zhang et al. 2024. Epigenetic variation in maize agronomical traits for breeding and trait improvement. J Genet Genomics.     Reference: February 12th, 2024
Gene Product: March 12th, 2008
Variation: September 1st, 2003
86 days agorbap1 WD-repeat protein RBAP1:
3.07
GRMZM2G316113
Daolei Zhang et al. 2024. Epigenetic variation in maize agronomical traits for breeding and trait improvement. J Genet Genomics.     Reference: February 12th, 2024
Gene Product: September 1st, 2003
Variation: December 29th, 2010
Gene Model: December 10th, 2012
86 days agoact7 actin7:
1.11
GRMZM2G053299
Daolei Zhang et al. 2024. Epigenetic variation in maize agronomical traits for breeding and trait improvement. J Genet Genomics.     Reference: February 12th, 2024
Gene Product: September 1st, 2003
Variation: January 25th, 2017
Gene Model: January 25th, 2017
86 days agomez1 enhancer of zeste1:
6.01
   Daolei Zhang et al. 2024. Epigenetic variation in maize agronomical traits for breeding and trait improvement. J Genet Genomics.     Reference: February 12th, 2024
Gene Product: June 30th, 2017
Variation: July 3rd, 2015
86 days agomsh1 male sterile protein homolog1:
4.08
GRMZM2G036217
Daolei Zhang et al. 2024. Epigenetic variation in maize agronomical traits for breeding and trait improvement. J Genet Genomics.     Reference: February 12th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: April 4th, 2015
86 days agohda102 histone deacetylase:
2.04
GRMZM2G119703
Daolei Zhang et al. 2024. Epigenetic variation in maize agronomical traits for breeding and trait improvement. J Genet Genomics.     Reference: February 12th, 2024
Gene Product: February 12th, 2020
Variation: May 28th, 2011
Gene Model: November 6th, 2014
86 days agohda108 histone deacetylase:
4.05
   Daolei Zhang et al. 2024. Epigenetic variation in maize agronomical traits for breeding and trait improvement. J Genet Genomics.     Reference: February 12th, 2024
Gene Product: September 1st, 2003
Variation: February 1st, 2018
86 days agosdg113 set domain gene113:
3.06
   Daolei Zhang et al. 2024. Epigenetic variation in maize agronomical traits for breeding and trait improvement. J Genet Genomics.     Reference: February 12th, 2024
Gene Product: June 30th, 2017
Variation: September 1st, 2003
86 days agochr106 chromatin complex subunit A 106:
1.10
GRMZM2G071025
Daolei Zhang et al. 2024. Epigenetic variation in maize agronomical traits for breeding and trait improvement. J Genet Genomics.     Reference: February 12th, 2024
Variation: June 9th, 2018
Gene Model: December 22nd, 2014
86 days agoros1 repressor of silencing1:
 
GRMZM2G131756
Daolei Zhang et al. 2024. Epigenetic variation in maize agronomical traits for breeding and trait improvement. J Genet Genomics.     Reference: February 12th, 2024
Gene Product: March 10th, 2022
Gene Model: October 16th, 2017
86 days agotac1 tiller angle control1:
 
GRMZM2G447987
Daolei Zhang et al. 2024. Epigenetic variation in maize agronomical traits for breeding and trait improvement. J Genet Genomics.   LOC_Os09g35980 (MSU/TIGR) Reference: February 12th, 2024
Variation: November 13th, 2017
Gene Model: November 11th, 2017
86 days agonip1c NOD26-like membrane intrinsic protein1c:
 
AC234180.1_FG004
Yaling Hou et al. 2024. Integrative analysis of the transcriptome and metabolome reveals Bacillus atrophaeus WZYH01-mediated salt stress mechanism in maize (Zea mays L.) J Biotechnol. :doi: 10.1016/j.jbiotec.2024.02.004.     Reference: February 12th, 2024
Gene Product: January 27th, 2022
Gene Model: January 27th, 2022
86 days agomet4 DNA methyl transferase4:
8.05
GRMZM2G157589
Daolei Zhang et al. 2024. Epigenetic variation in maize agronomical traits for breeding and trait improvement. J Genet Genomics.     Reference: February 12th, 2024
Gene Product: April 6th, 2018
Variation: February 10th, 2010
Gene Model: December 22nd, 2014
86 days agogif1 growth-regulating-factor-interacting factor1:
1.10
GRMZM2G180246
Daolei Zhang et al. 2024. Epigenetic variation in maize agronomical traits for breeding and trait improvement. J Genet Genomics.   AT5G28640 (TAIR)
LOC_Os03g52320 (MSU/TIGR)
Reference: February 12th, 2024
Gene Product: July 6th, 2015
Variation: February 6th, 2018
Gene Model: July 6th, 2015
87 days agopco127462a  :
1.06
GRMZM2G096585
Hueros, G et al. 1998. Planta 205:121-131     Reference: February 11th, 2024
Gene Product: February 10th, 2024
Gene Model: February 10th, 2020
88 days agoglp3 germin-like protein3:
 
   Shiyu Liu et al. 2024. Chlorine dioxide affects metabolism of harvested sweet corn Postharv Biol Technol. 211:112834.     Reference: February 10th, 2024
Gene Product: December 24th, 2015
88 days agoglp7 germin-like protein7:
 
   Shiyu Liu et al. 2024. Chlorine dioxide affects metabolism of harvested sweet corn Postharv Biol Technol. 211:112834.     Reference: February 10th, 2024
Gene Product: December 24th, 2015
88 days agoglp18 germin-like protein18:
 
   Shiyu Liu et al. 2024. Chlorine dioxide affects metabolism of harvested sweet corn Postharv Biol Technol. 211:112834.     Reference: February 10th, 2024
Gene Product: December 24th, 2015
88 days agowakl21 wall associated kinase like21:
 
   Shiyu Liu et al. 2024. Chlorine dioxide affects metabolism of harvested sweet corn Postharv Biol Technol. 211:112834.     Reference: February 10th, 2024
Gene Product: December 7th, 2023
88 days agoGRMZM2G095333  :
 
   Yu, Y-L et al. 2012. Genome-wide analysis and environmental response profiling of the FK506-binding protein gene family in maize (Zea mays L.). Gene. 498:212-222.     Reference: February 10th, 2024
Gene Product: February 10th, 2024
88 days agoGRMZM2G153991  :
 
   Yu, Y-L et al. 2012. Genome-wide analysis and environmental response profiling of the FK506-binding protein gene family in maize (Zea mays L.). Gene. 498:212-222.     Reference: February 10th, 2024
Gene Product: February 10th, 2024
88 days agoGRMZM2G030494  :
 
   Yu, Y-L et al. 2012. Genome-wide analysis and environmental response profiling of the FK506-binding protein gene family in maize (Zea mays L.). Gene. 498:212-222.     Reference: February 10th, 2024
Gene Product: February 10th, 2024
88 days agoGRMZM2G001956  :
 
   Yu, Y-L et al. 2012. Genome-wide analysis and environmental response profiling of the FK506-binding protein gene family in maize (Zea mays L.). Gene. 498:212-222.     Reference: February 10th, 2024
Gene Product: February 10th, 2024
88 days agoGRMZM2G041060  :
 
   Yu, Y-L et al. 2012. Genome-wide analysis and environmental response profiling of the FK506-binding protein gene family in maize (Zea mays L.). Gene. 498:212-222.     Reference: February 10th, 2024
Gene Product: February 10th, 2024
88 days agoGRMZM2G488458  :
 
   Yu, Y-L et al. 2012. Genome-wide analysis and environmental response profiling of the FK506-binding protein gene family in maize (Zea mays L.). Gene. 498:212-222.     Reference: February 10th, 2024
Gene Product: February 10th, 2024
88 days agoGRMZM2G399313  :
 
   Yu, Y-L et al. 2012. Genome-wide analysis and environmental response profiling of the FK506-binding protein gene family in maize (Zea mays L.). Gene. 498:212-222.     Reference: February 10th, 2024
Gene Product: February 10th, 2024
88 days agoIDP8408  :
4.09
GRMZM2G012340
Yu, Y-L et al. 2012. Genome-wide analysis and environmental response profiling of the FK506-binding protein gene family in maize (Zea mays L.). Gene. 498:212-222.     Reference: February 10th, 2024
Gene Product: February 10th, 2024
Gene Model: May 26th, 2021
88 days agoIDP8238  :
4.10
GRMZM2G150337
Yu, Y-L et al. 2012. Genome-wide analysis and environmental response profiling of the FK506-binding protein gene family in maize (Zea mays L.). Gene. 498:212-222.     Reference: February 10th, 2024
Gene Product: February 10th, 2024
Gene Model: May 27th, 2021
88 days agoIDP8044  :
9.04
GRMZM2G117746
Yu, Y-L et al. 2012. Genome-wide analysis and environmental response profiling of the FK506-binding protein gene family in maize (Zea mays L.). Gene. 498:212-222.     Reference: February 10th, 2024
Gene Product: February 10th, 2024
Gene Model: July 16th, 2021
88 days agotps23 terpene synthase23:
10.03
GRMZM2G127336
P Lakshmi Soujanya et al. 2024. Host Plant Resistance to Insect Pests in Maize :Pp 141–168. n: Kumar, S., Furlong, M. (eds) Plant Resistance to Insects in Major Field Crops. Springer, Singapore     Reference: February 10th, 2024
Gene Product: July 21st, 2008
Variation: November 21st, 2017
Gene Model: August 22nd, 2012
88 days agophi1 phosphohexose isomerase1:
1.11 - 1.11
GRMZM2G065083
Shiyu Liu et al. 2024. Chlorine dioxide affects metabolism of harvested sweet corn Postharv Biol Technol. 211:112834.     Reference: February 10th, 2024
Gene Product: September 1st, 2003
Variation: October 1st, 2014
Gene Model: August 25th, 2014
88 days agocsu554a(rnh)  :
1.09
GRMZM2G057394
Yu, Y-L et al. 2012. Genome-wide analysis and environmental response profiling of the FK506-binding protein gene family in maize (Zea mays L.). Gene. 498:212-222.     Reference: February 10th, 2024
Gene Product: February 10th, 2024
Gene Model: September 20th, 2017
88 days agoumc1833  :
1.07
GRMZM2G155753
Yu, Y-L et al. 2012. Genome-wide analysis and environmental response profiling of the FK506-binding protein gene family in maize (Zea mays L.). Gene. 498:212-222.     Reference: February 10th, 2024
Gene Product: February 10th, 2024
Gene Model: February 24th, 2021
88 days agospp1 sucrose-phosphatase1:
8.04
   Shiyu Liu et al. 2024. Chlorine dioxide affects metabolism of harvested sweet corn Postharv Biol Technol. 211:112834.     Reference: February 10th, 2024
Gene Product: September 1st, 2003
Variation: August 2nd, 2013
88 days agofht1 flavanone 3-hydroxylase1:
2.01 - 2.02
   Shiyu Liu et al. 2024. Chlorine dioxide affects metabolism of harvested sweet corn Postharv Biol Technol. 211:112834.     Reference: February 10th, 2024
Gene Product: June 8th, 2012
Variation: September 1st, 2003
88 days agopco126622  :
2.05
GRMZM2G133624
Yu, Y-L et al. 2012. Genome-wide analysis and environmental response profiling of the FK506-binding protein gene family in maize (Zea mays L.). Gene. 498:212-222.   AT3G21640 (TAIR) Reference: February 10th, 2024
Gene Product: February 10th, 2024
Gene Model: March 18th, 2020
88 days agopdrp1 PDK regulatory protein1:
2.07
GRMZM2G131286
Xie, JP et al. 2024. The C4 photosynthesis bifunctional enzymes, PDRPs, of maize are co-opted to cytoplasmic viral replication complexes to promote infection of a prevalent potyvirus sugarcane mosaic virus. Plant Biotechnol J. :doi: 10.1111/pbi.14304.     Reference: February 10th, 2024
Gene Product: July 28th, 2014
Gene Model: July 28th, 2014
88 days agoopr1 12-oxo-phytodienoic acid reductase1:
9.01
GRMZM2G106303
Shiyu Liu et al. 2024. Chlorine dioxide affects metabolism of harvested sweet corn Postharv Biol Technol. 211:112834.     Reference: February 10th, 2024
Gene Product: September 3rd, 2010
Variation: July 21st, 2008
Gene Model: November 27th, 2013
88 days agoopr3 12-oxo-phytodienoic acid reductase3:
 
GRMZM2G156712
Shiyu Liu et al. 2024. Chlorine dioxide affects metabolism of harvested sweet corn Postharv Biol Technol. 211:112834.     Reference: February 10th, 2024
Gene Product: September 3rd, 2010
Variation: June 29th, 2012
Gene Model: November 27th, 2013
88 days agomkk4 MAP kinase kinase4:
 
GRMZM5G878379
Sahito, JH et al. 2024. Advancements and Prospects of Genome-Wide Association Studies (GWAS) in Maize. Int J Mol Sci. 25:1918.     Reference: February 10th, 2024
Gene Product: July 10th, 2013
Gene Model: July 28th, 2016
88 days agopdrp2 PDK regulatory protein2:
 
GRMZM2G004880
Xie, JP et al. 2024. The C4 photosynthesis bifunctional enzymes, PDRPs, of maize are co-opted to cytoplasmic viral replication complexes to promote infection of a prevalent potyvirus sugarcane mosaic virus. Plant Biotechnol J. :doi: 10.1111/pbi.14304.     Reference: February 10th, 2024
Gene Product: July 28th, 2014
Gene Model: December 22nd, 2017
88 days agoinvan1 invertase alkaline neutral1:
 
GRMZM2G136139
Shiyu Liu et al. 2024. Chlorine dioxide affects metabolism of harvested sweet corn Postharv Biol Technol. 211:112834.     Reference: February 10th, 2024
Gene Product: June 12th, 2018
Gene Model: June 12th, 2018
88 days agoinvan10 invertase alkaline neutral10:
 
GRMZM2G084694
Shiyu Liu et al. 2024. Chlorine dioxide affects metabolism of harvested sweet corn Postharv Biol Technol. 211:112834.     Reference: February 10th, 2024
Gene Product: June 12th, 2018
Gene Model: June 12th, 2018
88 days agopao2 polyamine oxidase2:
 
GRMZM2G000052
Sahito, JH et al. 2024. Advancements and Prospects of Genome-Wide Association Studies (GWAS) in Maize. Int J Mol Sci. 25:1918.     Reference: February 10th, 2024
Gene Product: June 10th, 2020
Gene Model: February 3rd, 2020
88 days agoaos5 allene oxide synthesis5:
 
GRMZM2G033098
Shiyu Liu et al. 2024. Chlorine dioxide affects metabolism of harvested sweet corn Postharv Biol Technol. 211:112834.     Reference: February 10th, 2024
Gene Product: September 1st, 2003
Gene Model: March 19th, 2020
88 days agocl61634_1  :
5.06
GRMZM2G035708
Yu, Y-L et al. 2012. Genome-wide analysis and environmental response profiling of the FK506-binding protein gene family in maize (Zea mays L.). Gene. 498:212-222.     Reference: February 10th, 2024
Gene Product: February 10th, 2024
Gene Model: May 24th, 2020
88 days agoprh25 protein phosphatase homolog25:
 
AC208201.3_FG002
Shiyu Liu et al. 2024. Chlorine dioxide affects metabolism of harvested sweet corn Postharv Biol Technol. 211:112834.     Reference: February 10th, 2024
Gene Product: October 25th, 2021
Gene Model: November 18th, 2020
88 days agocl38842_-2b  :
 
GRMZM2G031204
Yu, Y-L et al. 2012. Genome-wide analysis and environmental response profiling of the FK506-binding protein gene family in maize (Zea mays L.). Gene. 498:212-222.     Reference: February 10th, 2024
Gene Product: February 10th, 2024
Gene Model: June 15th, 2021
88 days agoGRMZM2G068963  :
 
GRMZM2G068963
Yu, Y-L et al. 2012. Genome-wide analysis and environmental response profiling of the FK506-binding protein gene family in maize (Zea mays L.). Gene. 498:212-222.     Reference: February 10th, 2024
Gene Product: February 10th, 2024
Gene Model: December 31st, 2021
88 days agoprx44 peroxidase44:
 
GRMZM2G122816
Shiyu Liu et al. 2024. Chlorine dioxide affects metabolism of harvested sweet corn Postharv Biol Technol. 211:112834.     Reference: February 10th, 2024
Gene Product: September 18th, 2015
Gene Model: April 8th, 2022
88 days agopco108516  :
5.07
GRMZM2G015784
Yu, Y-L et al. 2012. Genome-wide analysis and environmental response profiling of the FK506-binding protein gene family in maize (Zea mays L.). Gene. 498:212-222.     Reference: February 10th, 2024
Gene Product: February 10th, 2024
Gene Model: May 25th, 2020
88 days agochi5 chalcone flavanone isomerase5:
5.04
GRMZM2G311919
Shiyu Liu et al. 2024. Chlorine dioxide affects metabolism of harvested sweet corn Postharv Biol Technol. 211:112834.     Reference: February 10th, 2024
Gene Product: January 26th, 2021
Gene Model: June 18th, 2018
88 days agoppi2 peptidyl-prolyl cis-trans isomerase2:
6.05
GRMZM2G035922
Yu, Y-L et al. 2012. Genome-wide analysis and environmental response profiling of the FK506-binding protein gene family in maize (Zea mays L.). Gene. 498:212-222.     Reference: February 10th, 2024
Gene Product: February 10th, 2024
Gene Model: January 1st, 2020
88 days agopco107138  :
7.03
GRMZM2G115757
Yu, Y-L et al. 2012. Genome-wide analysis and environmental response profiling of the FK506-binding protein gene family in maize (Zea mays L.). Gene. 498:212-222.     Reference: February 10th, 2024
Gene Product: February 10th, 2024
Gene Model: July 25th, 2020
88 days agocl37610_1b  :
10.04
GRMZM2G024811
Yu, Y-L et al. 2012. Genome-wide analysis and environmental response profiling of the FK506-binding protein gene family in maize (Zea mays L.). Gene. 498:212-222.     Reference: February 10th, 2024
Gene Product: February 10th, 2024
Gene Model: July 11th, 2022
88 days agoaoc1 allene oxide cyclase1:
1.04
GRMZM2G077316
Shiyu Liu et al. 2024. Chlorine dioxide affects metabolism of harvested sweet corn Postharv Biol Technol. 211:112834.     Reference: February 10th, 2024
Gene Product: November 29th, 2005
Gene Model: November 25th, 2013
88 days agoacs6 1-aminocyclopropane-1-carboxylate synthase6:
1.10
GRMZM2G054361
Shiyu Liu et al. 2024. Chlorine dioxide affects metabolism of harvested sweet corn Postharv Biol Technol. 211:112834.     Reference: February 10th, 2024
Gene Product: May 16th, 2016
Variation: August 4th, 2008
Gene Model: January 21st, 2016
88 days agopco063683  :
5.04
GRMZM2G336858
Yu, Y-L et al. 2012. Genome-wide analysis and environmental response profiling of the FK506-binding protein gene family in maize (Zea mays L.). Gene. 498:212-222.   AT3G25230 (TAIR) Reference: February 10th, 2024
Gene Product: February 10th, 2024
Gene Model: May 18th, 2020
88 days agosps2 sucrose phosphate synthase2:
3.05
GRMZM2G140107
Shiyu Liu et al. 2024. Chlorine dioxide affects metabolism of harvested sweet corn Postharv Biol Technol. 211:112834.     Reference: February 10th, 2024
Gene Product: September 1st, 2003
Variation: January 22nd, 2021
Gene Model: March 18th, 2015
88 days agocyp48 cytochrome P450 48:
3.04
GRMZM2G158342
Shiyu Liu et al. 2024. Chlorine dioxide affects metabolism of harvested sweet corn Postharv Biol Technol. 211:112834.     Reference: February 10th, 2024
Gene Product: December 30th, 2022
Gene Model: March 2nd, 2017
89 days agonc3 Na+ content3:
 
   Fang, H et al. 2024. Genetic analysis and candidate gene identification of salt tolerance-related traits in maize J Integr Agric. :doi: 10.1016/j.jia.2024.02.009.     Reference: February 9th, 2024
Gene Product: November 15th, 2017
89 days agolc1 red leaf color1:
10.06
GRMZM5G822829
Peniche-Pavia, HA et al. 2024. Backcrossing Modulates the Metabolic Profiles of Anthocyanin-Pigmented 'Vitamaize' Lines Derived from Elite Maize Lines. Plant Foods Hum Nutr.     Reference: February 9th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: October 23rd, 2018
89 days agomre11a meiotic recombination protein 11 homolog A:
 
GRMZM2G106056
Fang, H et al. 2024. Genetic analysis and candidate gene identification of salt tolerance-related traits in maize J Integr Agric. :doi: 10.1016/j.jia.2024.02.009.     Reference: February 9th, 2024
Variation: May 10th, 2017
Gene Model: January 27th, 2017
89 days agonsa1 Na+ content under saline-alkaline conditions1:
 
GRMZM2G000397
Fang, H et al. 2024. Genetic analysis and candidate gene identification of salt tolerance-related traits in maize J Integr Agric. :doi: 10.1016/j.jia.2024.02.009.     Reference: February 9th, 2024
Gene Product: January 10th, 2020
Variation: January 10th, 2020
Gene Model: January 10th, 2020
90 days agoprp20 pathogenesis-related protein20:
 
   Liu, Y et al. 2024. Importance of pre-mRNA splicing and its study tools in plants Adv Biotech. 2:4.     Reference: February 8th, 2024
Gene Product: December 12th, 2022
90 days agohcf106c high chlorophyll fluorescence106c:
10.04
   Chengxiu Wu et al. 2024. Multi-omics assists genomic prediction of maize yield with machine learning approaches Mol Breed. 44:14.     Reference: February 8th, 2024
Gene Product: September 1st, 2003
Variation: December 17th, 2012
90 days agoes3 embryo sac3:
 
GRMZM2G128301
Chengxiu Wu et al. 2024. Multi-omics assists genomic prediction of maize yield with machine learning approaches Mol Breed. 44:14.     Reference: February 8th, 2024
Gene Product: April 22nd, 2011
Gene Model: April 22nd, 2011
90 days agoumc1620  :
4.07
   Qiaolu Li et al. 2024. Strigolactones alleviate the toxicity of polystyrene nanoplastics (PS-NPs) in maize (Zea mays L.). Sci Total Environ. :doi: 10.1016/j.scitotenv.2024.170626.     Reference: February 8th, 2024
Variation: September 1st, 2003
90 days agozim16 ZIM-transcription factor 16:
 
   Qiaolu Li et al. 2024. Strigolactones alleviate the toxicity of polystyrene nanoplastics (PS-NPs) in maize (Zea mays L.). Sci Total Environ. :doi: 10.1016/j.scitotenv.2024.170626.     Reference: February 8th, 2024
Gene Product: February 24th, 2021
90 days agozim27 ZIM-transcription factor 27:
 
   Qiaolu Li et al. 2024. Strigolactones alleviate the toxicity of polystyrene nanoplastics (PS-NPs) in maize (Zea mays L.). Sci Total Environ. :doi: 10.1016/j.scitotenv.2024.170626.     Reference: February 8th, 2024
Gene Product: February 24th, 2021
90 days agorbm48 RNA binding motif protein 48:
 
GRMZM2G163247
Liu, Y et al. 2024. Importance of pre-mRNA splicing and its study tools in plants Adv Biotech. 2:4.     Reference: February 8th, 2024
Gene Product: March 7th, 2019
Variation: March 7th, 2019
Gene Model: February 15th, 2019
90 days agorgh3 rough endosperm3:
 
GRMZM2G128228
Liu, Y et al. 2024. Importance of pre-mRNA splicing and its study tools in plants Adv Biotech. 2:4.     Reference: February 8th, 2024
Gene Product: December 29th, 2011
Variation: December 29th, 2011
Gene Model: April 29th, 2013
90 days agoemp16 empty pericarp16:
 
GRMZM2G060516
Liu, Y et al. 2024. Importance of pre-mRNA splicing and its study tools in plants Adv Biotech. 2:4.     Reference: February 8th, 2024
Gene Product: December 27th, 2016
Variation: January 16th, 2016
Gene Model: January 16th, 2016
90 days agodek35 defective kernel35:
 
GRMZM2G066749
Liu, Y et al. 2024. Importance of pre-mRNA splicing and its study tools in plants Adv Biotech. 2:4.     Reference: February 8th, 2024
Gene Product: December 27th, 2016
Variation: September 7th, 2016
Gene Model: September 7th, 2016
90 days agoprh7 protein phosphatase homolog7:
 
GRMZM2G082487
Qiaolu Li et al. 2024. Strigolactones alleviate the toxicity of polystyrene nanoplastics (PS-NPs) in maize (Zea mays L.). Sci Total Environ. :doi: 10.1016/j.scitotenv.2024.170626.     Reference: February 8th, 2024
Gene Product: October 25th, 2021
Gene Model: October 18th, 2016
90 days agodek37 defective kernel37:
 
GRMZM2G021319
Liu, Y et al. 2024. Importance of pre-mRNA splicing and its study tools in plants Adv Biotech. 2:4.     Reference: February 8th, 2024
Gene Product: December 27th, 2016
Variation: January 6th, 2018
Gene Model: January 6th, 2018
90 days agonad5 (mito) NADH dehydrogenase subunit 5:
 
   Liu, Y et al. 2024. Importance of pre-mRNA splicing and its study tools in plants Adv Biotech. 2:4.     Reference: February 8th, 2024
Gene Product: September 1st, 2003
90 days agosmk9 small kernel9:
 
GRMZM2G420723
Liu, Y et al. 2024. Importance of pre-mRNA splicing and its study tools in plants Adv Biotech. 2:4.     Reference: February 8th, 2024
Gene Product: December 27th, 2016
Variation: July 30th, 2019
Gene Model: July 30th, 2019
90 days agoupl13 ubiquitin-protein ligase13:
 
GRMZM2G104920
Chachar, Z et al. 2024. Cloned genes and genetic regulation of anthocyanin biosynthesis in maize, a comparative review. Frontiers in Plant Science. 15:1310634.   AT2G32950 (TAIR) Reference: February 8th, 2024
Gene Product: March 26th, 2020
Variation: July 7th, 2023
Gene Model: March 26th, 2020
90 days agoemp32 empty pericarp32:
 
GRMZM2G089959
Liu, Y et al. 2024. Importance of pre-mRNA splicing and its study tools in plants Adv Biotech. 2:4.   At5g57250 (TAIR) Reference: February 8th, 2024
Gene Product: December 27th, 2016
Variation: September 17th, 2020
Gene Model: June 12th, 2020
90 days agoflr1 feronia-like receptor1:
 
GRMZM2G006080
Chengxiu Wu et al. 2024. Multi-omics assists genomic prediction of maize yield with machine learning approaches Mol Breed. 44:14.   AT3G51550 (TAIR) Reference: February 8th, 2024
Gene Product: July 10th, 2019
Gene Model: December 17th, 2020
90 days agoemp603 empty pericarp603:
 
GRMZM2G069078
Liu, Y et al. 2024. Importance of pre-mRNA splicing and its study tools in plants Adv Biotech. 2:4.     Reference: February 8th, 2024
Gene Product: December 27th, 2016
Variation: July 19th, 2021
Gene Model: July 19th, 2021
90 days agoppr405 pentatricopeptide repeat protein405:
7.04
GRMZM2G158452
Liu, Y et al. 2024. Importance of pre-mRNA splicing and its study tools in plants Adv Biotech. 2:4.     Reference: February 8th, 2024
Gene Product: December 27th, 2016
Variation: July 29th, 2019
Gene Model: July 29th, 2019
90 days agogols3 galactinol synthase3:
9.04
GRMZM5G872256
Chengxiu Wu et al. 2024. Multi-omics assists genomic prediction of maize yield with machine learning approaches Mol Breed. 44:14.     Reference: February 8th, 2024
Gene Product: March 1st, 2018
Variation: January 26th, 2010
Gene Model: December 24th, 2015
90 days agonad2(mtNB) NADH dehydrogenase subunit 2:
 
GRMZM5G840559
Liu, Y et al. 2024. Importance of pre-mRNA splicing and its study tools in plants Adv Biotech. 2:4.     Reference: February 8th, 2024
Gene Product: March 22nd, 2022
Gene Model: June 12th, 2020
90 days agonad4(mtNB) NADH dehydrogenase subunit 4:
 
GRMZM5G804358
Liu, Y et al. 2024. Importance of pre-mRNA splicing and its study tools in plants Adv Biotech. 2:4.     Reference: February 8th, 2024
Gene Product: September 1st, 2003
Gene Model: June 12th, 2020
90 days agonad7(mtNB) NADH dehydrogenase subunit 7:
 
   Liu, Y et al. 2024. Importance of pre-mRNA splicing and its study tools in plants Adv Biotech. 2:4.     Reference: February 8th, 2024
Gene Product: March 22nd, 2022
91 days agoGRMZM2G370928  :
 
   Jinyao Zhang et al. 2024. Involvement of reactive oxygen species in zinc-deficiency induced inhibition of crown root growth in maize plant Plant Soil. :doi: 10.1007/s11104-024-06529-6.     Reference: February 7th, 2024
Gene Product: September 18th, 2015
91 days agoelfa10 elongation factor 1-alpha10:
 
GRMZM2G343543
Jinyao Zhang et al. 2024. Involvement of reactive oxygen species in zinc-deficiency induced inhibition of crown root growth in maize plant Plant Soil. :doi: 10.1007/s11104-024-06529-6.     Reference: February 7th, 2024
Gene Product: September 1st, 2003
Variation: April 14th, 2014
Gene Model: July 27th, 2016
91 days agogst58 glutathione S-transferase58:
1.01
GRMZM2G096247
Jinyao Zhang et al. 2024. Involvement of reactive oxygen species in zinc-deficiency induced inhibition of crown root growth in maize plant Plant Soil. :doi: 10.1007/s11104-024-06529-6.     Reference: February 7th, 2024
Gene Product: September 1st, 2003
Variation: August 9th, 2010
Gene Model: April 18th, 2017
91 days agotufm1 elongation factor TU mitochondrial1:
1.12
GRMZM2G022269
Jinyao Zhang et al. 2024. Involvement of reactive oxygen species in zinc-deficiency induced inhibition of crown root growth in maize plant Plant Soil. :doi: 10.1007/s11104-024-06529-6.     Reference: February 7th, 2024
Gene Product: September 1st, 2003
Variation: February 9th, 2015
Gene Model: February 9th, 2015
91 days agoexpb8 beta expansin8:
9.04
GRMZM2G013002
Jinyao Zhang et al. 2024. Involvement of reactive oxygen species in zinc-deficiency induced inhibition of crown root growth in maize plant Plant Soil. :doi: 10.1007/s11104-024-06529-6.     Reference: February 7th, 2024
Gene Product: March 12th, 2008
Gene Model: March 2nd, 2016
91 days agoaox2 alternative oxidase2:
 
GRMZM2G125669
Jinyao Zhang et al. 2024. Involvement of reactive oxygen species in zinc-deficiency induced inhibition of crown root growth in maize plant Plant Soil. :doi: 10.1007/s11104-024-06529-6.     Reference: February 7th, 2024
Gene Product: June 15th, 2023
Variation: March 1st, 2012
Gene Model: February 17th, 2012
91 days agoptac14 plastid transcriptionally active14:
 
GRMZM5G807767
Shaoxiong Li et al. 2024. Utilizing Two Populations Derived from Tropical Maize for Genome-Wide Association Analysis of Banded Leaf and Sheath Blight Resistance Plants. 13:456.     Reference: February 7th, 2024
Gene Product: December 21st, 2022
Variation: May 21st, 2017
Gene Model: February 17th, 2015
91 days agoyuc4 Yucca4:
 
GRMZM2G141383
Fang, X et al. 2024. The WRKY transcription factor ZmWRKY92 binds to GA synthesis-related genes to regulate maize plant height Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108422.     Reference: February 7th, 2024
Gene Product: June 18th, 2018
Gene Model: June 17th, 2016
91 days agocyp23 cytochrome P-450 23:
 
GRMZM2G018612
Fang, X et al. 2024. The WRKY transcription factor ZmWRKY92 binds to GA synthesis-related genes to regulate maize plant height Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108422.     Reference: February 7th, 2024
Gene Product: December 30th, 2022
Gene Model: February 27th, 2018
91 days agoapx6 ascorbate peroxidase6:
 
GRMZM2G004211
Jinyao Zhang et al. 2024. Involvement of reactive oxygen species in zinc-deficiency induced inhibition of crown root growth in maize plant Plant Soil. :doi: 10.1007/s11104-024-06529-6.     Reference: February 7th, 2024
Gene Product: October 15th, 2020
Gene Model: October 15th, 2020
91 days agoga20ox8 gibberellin 20-oxidase8:
 
GRMZM2G002704
Fang, X et al. 2024. The WRKY transcription factor ZmWRKY92 binds to GA synthesis-related genes to regulate maize plant height Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108422.     Reference: February 7th, 2024
Gene Product: October 28th, 2014
Gene Model: May 8th, 2021
91 days agoppr435 pentatricopeptide repeat435:
 
GRMZM2G017821
Wang, Y et al. 2024. Multiple factors interact in the editing of the PPR-E+ targeted sites in maize mitochondria and plastids Plant Commun. :doi: 10.1016/j.xplc.2024.100836.     Reference: February 7th, 2024
Gene Product: December 27th, 2016
Gene Model: July 21st, 2021
91 days agosaur6 small auxin up RNA6:
 
GRMZM2G059138
Fang, X et al. 2024. The WRKY transcription factor ZmWRKY92 binds to GA synthesis-related genes to regulate maize plant height Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2024.108422.     Reference: February 7th, 2024
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
91 days agonuwa1 nuwa ortholog1:
 
GRMZM2G074599
Wang, Y et al. 2024. Multiple factors interact in the editing of the PPR-E+ targeted sites in maize mitochondria and plastids Plant Commun. :doi: 10.1016/j.xplc.2024.100836.   AT3G49240 (TAIR) Reference: February 7th, 2024
Gene Product: December 27th, 2016
Gene Model: March 4th, 2022
91 days agodyw1 dyw domain-type ppr protein1:
 
GRMZM2G073551
Wang, Y et al. 2024. Multiple factors interact in the editing of the PPR-E+ targeted sites in maize mitochondria and plastids Plant Commun. :doi: 10.1016/j.xplc.2024.100836.   AT2G15690 (TAIR) Reference: February 7th, 2024
Gene Product: December 27th, 2016
Gene Model: March 4th, 2022
91 days agoorrm1 organelle RRM protein1:
5.06
GRMZM5G899787
Wang, Y et al. 2024. Multiple factors interact in the editing of the PPR-E+ targeted sites in maize mitochondria and plastids Plant Commun. :doi: 10.1016/j.xplc.2024.100836.   AT3G20930 (TAIR) Reference: February 7th, 2024
Gene Product: April 11th, 2013
Variation: April 12th, 2013
Gene Model: April 11th, 2013
91 days agooz1 organelle zinc finger otholog1:
8.08
GRMZM2G069106
Wang, Y et al. 2024. Multiple factors interact in the editing of the PPR-E+ targeted sites in maize mitochondria and plastids Plant Commun. :doi: 10.1016/j.xplc.2024.100836.   AT5G17790 (TAIR) Reference: February 7th, 2024
Gene Product: February 7th, 2024
Gene Model: June 17th, 2022
91 days agoIDP3776  :
7.00
GRMZM2G108637
Jinyao Zhang et al. 2024. Involvement of reactive oxygen species in zinc-deficiency induced inhibition of crown root growth in maize plant Plant Soil. :doi: 10.1007/s11104-024-06529-6.     Reference: February 7th, 2024
Variation: March 31st, 2005
Gene Model: July 4th, 2021
91 days agomorf8 multiple organelle RNA editing factor8:
9.07
GRMZM2G169384
Wang, Y et al. 2024. Multiple factors interact in the editing of the PPR-E+ targeted sites in maize mitochondria and plastids Plant Commun. :doi: 10.1016/j.xplc.2024.100836.     Reference: February 7th, 2024
Variation: March 31st, 2005
Gene Model: January 24th, 2019
3 months agoidd8 indeterminate domain8:
 
   Silvia Calderone et al. 2024. Diverging cell wall strategies for drought adaptation in two maize inbreds with contrasting lodging resistance Plant Cell Environ.     Reference: February 6th, 2024
Gene Product: January 3rd, 2015
3 months agodnaJ38 DnaJ/Hsp40 38:
 
   Jiajie Wang et al. 2024. Integration of the Metabolome and Transcriptome Reveals Diurnal Variability in the Effects of Melatonin on Salt Tolerance in Maize Seedlings J Plant Growth Reg. :doi: 10.1007/s00344-023-11213-7.     Reference: February 6th, 2024
Gene Product: September 1st, 2003
3 months agopub59 plant U-box type E3 ubiquitin ligase59:
 
   Jiajie Wang et al. 2024. Integration of the Metabolome and Transcriptome Reveals Diurnal Variability in the Effects of Melatonin on Salt Tolerance in Maize Seedlings J Plant Growth Reg. :doi: 10.1007/s00344-023-11213-7.     Reference: February 6th, 2024
Gene Product: February 1st, 2024
3 months agopub83 plant U-box type E3 ubiquitin ligase83:
 
   Jiajie Wang et al. 2024. Integration of the Metabolome and Transcriptome Reveals Diurnal Variability in the Effects of Melatonin on Salt Tolerance in Maize Seedlings J Plant Growth Reg. :doi: 10.1007/s00344-023-11213-7.     Reference: February 6th, 2024
Gene Product: February 1st, 2024
3 months agocamta3 CAMTA-transcription factor 3:
3.05
GRMZM2G171600
Jiajie Wang et al. 2024. Integration of the Metabolome and Transcriptome Reveals Diurnal Variability in the Effects of Melatonin on Salt Tolerance in Maize Seedlings J Plant Growth Reg. :doi: 10.1007/s00344-023-11213-7.     Reference: February 6th, 2024
Variation: September 25th, 2007
Gene Model: August 20th, 2021
3 months agomyb89 MYB-transcription factor 89:
5.05
GRMZM2G040924
Silvia Calderone et al. 2024. Diverging cell wall strategies for drought adaptation in two maize inbreds with contrasting lodging resistance Plant Cell Environ.     Reference: February 6th, 2024
Gene Product: July 25th, 2017
Variation: September 25th, 2007
Gene Model: August 28th, 2021
3 months agogbf1 G-box binding factor1:
6.07
GRMZM2G011932
Silvia Calderone et al. 2024. Diverging cell wall strategies for drought adaptation in two maize inbreds with contrasting lodging resistance Plant Cell Environ.     Reference: February 6th, 2024
Gene Product: September 1st, 2003
Variation: December 7th, 2012
Gene Model: July 27th, 2016
3 months agoamyb2 beta amylase2:
5.03 - 5.04
GRMZM2G450125
Jiajie Wang et al. 2024. Integration of the Metabolome and Transcriptome Reveals Diurnal Variability in the Effects of Melatonin on Salt Tolerance in Maize Seedlings J Plant Growth Reg. :doi: 10.1007/s00344-023-11213-7.     Reference: February 6th, 2024
Gene Product: February 26th, 2021
Variation: September 23rd, 2013
Gene Model: July 27th, 2016
3 months agovp1 viviparous1:
3.05
   Silvia Calderone et al. 2024. Diverging cell wall strategies for drought adaptation in two maize inbreds with contrasting lodging resistance Plant Cell Environ.     Reference: February 6th, 2024
Gene Product: January 29th, 2022
Variation: August 22nd, 2013
3 months agoumc1217  :
 
GRMZM2G001375
Jiajie Wang et al. 2024. Integration of the Metabolome and Transcriptome Reveals Diurnal Variability in the Effects of Melatonin on Salt Tolerance in Maize Seedlings J Plant Growth Reg. :doi: 10.1007/s00344-023-11213-7.     Reference: February 6th, 2024
Variation: September 1st, 2003
Gene Model: April 12th, 2020
3 months agomyb31 MYB31 transcription factor31:
 
GRMZM5G892094
Silvia Calderone et al. 2024. Diverging cell wall strategies for drought adaptation in two maize inbreds with contrasting lodging resistance Plant Cell Environ.   LOC_Os09g36730 (MSU/TIGR) Reference: February 6th, 2024
Gene Product: February 16th, 2011
Variation: May 6th, 2011
Gene Model: March 2nd, 2021
3 months agoabh5 abscisic acid 8'-hydroxylase5:
 
GRMZM2G002142
Jiajie Wang et al. 2024. Integration of the Metabolome and Transcriptome Reveals Diurnal Variability in the Effects of Melatonin on Salt Tolerance in Maize Seedlings J Plant Growth Reg. :doi: 10.1007/s00344-023-11213-7.     Reference: February 6th, 2024
Gene Product: February 15th, 2013
Gene Model: February 15th, 2013
3 months agoabi19 ABI3-VP1-transcription factor 19:
 
   Silvia Calderone et al. 2024. Diverging cell wall strategies for drought adaptation in two maize inbreds with contrasting lodging resistance Plant Cell Environ.     Reference: February 6th, 2024
Gene Product: January 29th, 2022
Variation: November 27th, 2020
3 months agojmj16 JUMONJI-transcription factor 16:
 
   Jiajie Wang et al. 2024. Integration of the Metabolome and Transcriptome Reveals Diurnal Variability in the Effects of Melatonin on Salt Tolerance in Maize Seedlings J Plant Growth Reg. :doi: 10.1007/s00344-023-11213-7.     Reference: February 6th, 2024
Gene Product: April 3rd, 2019
3 months agozim23 ZIM-transcription factor 23:
 
   Jiajie Wang et al. 2024. Integration of the Metabolome and Transcriptome Reveals Diurnal Variability in the Effects of Melatonin on Salt Tolerance in Maize Seedlings J Plant Growth Reg. :doi: 10.1007/s00344-023-11213-7.     Reference: February 6th, 2024
Gene Product: February 24th, 2021
3 months agoobf1 octopine synthase binding factor1:
1.05
GRMZM2G479885
Silvia Calderone et al. 2024. Diverging cell wall strategies for drought adaptation in two maize inbreds with contrasting lodging resistance Plant Cell Environ.     Reference: February 6th, 2024
Gene Product: September 1st, 2003
Variation: June 29th, 2012
Gene Model: July 28th, 2016
3 months agomyb19 MYB-transcription factor 19:
4.06
GRMZM5G833253
Silvia Calderone et al. 2024. Diverging cell wall strategies for drought adaptation in two maize inbreds with contrasting lodging resistance Plant Cell Environ.     Reference: February 6th, 2024
Gene Product: July 25th, 2017
Variation: September 1st, 2003
Gene Model: May 30th, 2018
3 months agoipt5 isopentenyl transferase5:
5.01
AC210013.4_FG005
Jiajie Wang et al. 2024. Integration of the Metabolome and Transcriptome Reveals Diurnal Variability in the Effects of Melatonin on Salt Tolerance in Maize Seedlings J Plant Growth Reg. :doi: 10.1007/s00344-023-11213-7.     Reference: February 6th, 2024
Gene Product: March 19th, 2014
Variation: September 1st, 2003
Gene Model: March 23rd, 2017
3 months agohex7 hexokinase7:
 
GRMZM2G051806
Jiajie Wang et al. 2024. Integration of the Metabolome and Transcriptome Reveals Diurnal Variability in the Effects of Melatonin on Salt Tolerance in Maize Seedlings J Plant Growth Reg. :doi: 10.1007/s00344-023-11213-7.     Reference: February 6th, 2024
Gene Product: September 15th, 2013
Gene Model: September 15th, 2013
3 months agobbi1 bowman-birk inhibitor1:
 
GRMZM2G007928
Jiajie Wang et al. 2024. Integration of the Metabolome and Transcriptome Reveals Diurnal Variability in the Effects of Melatonin on Salt Tolerance in Maize Seedlings J Plant Growth Reg. :doi: 10.1007/s00344-023-11213-7.     Reference: February 6th, 2024
Gene Product: May 30th, 2014
Variation: May 30th, 2014
Gene Model: May 30th, 2014
3 months agoprh3 protein phosphatase homolog3:
 
GRMZM2G059453
Jiajie Wang et al. 2024. Integration of the Metabolome and Transcriptome Reveals Diurnal Variability in the Effects of Melatonin on Salt Tolerance in Maize Seedlings J Plant Growth Reg. :doi: 10.1007/s00344-023-11213-7.     Reference: February 6th, 2024
Gene Product: October 25th, 2021
Gene Model: October 18th, 2016
3 months agoprh4 protein phosphatase homolog4:
 
GRMZM2G166297
Jiajie Wang et al. 2024. Integration of the Metabolome and Transcriptome Reveals Diurnal Variability in the Effects of Melatonin on Salt Tolerance in Maize Seedlings J Plant Growth Reg. :doi: 10.1007/s00344-023-11213-7.     Reference: February 6th, 2024
Gene Product: October 25th, 2021
Gene Model: October 18th, 2016
3 months agoarm11 armadillo domain protein11:
 
GRMZM2G315431
Jiajie Wang et al. 2024. Integration of the Metabolome and Transcriptome Reveals Diurnal Variability in the Effects of Melatonin on Salt Tolerance in Maize Seedlings J Plant Growth Reg. :doi: 10.1007/s00344-023-11213-7.     Reference: February 6th, 2024
Gene Product: February 1st, 2021
Gene Model: February 7th, 2017
3 months agosaur19 small auxin up RNA19:
 
GRMZM2G429254
Jiajie Wang et al. 2024. Integration of the Metabolome and Transcriptome Reveals Diurnal Variability in the Effects of Melatonin on Salt Tolerance in Maize Seedlings J Plant Growth Reg. :doi: 10.1007/s00344-023-11213-7.     Reference: February 6th, 2024
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
3 months agotsah1 tryptophan synthase A homolog1:
1.11
GRMZM2G046163
Jiajie Wang et al. 2024. Integration of the Metabolome and Transcriptome Reveals Diurnal Variability in the Effects of Melatonin on Salt Tolerance in Maize Seedlings J Plant Growth Reg. :doi: 10.1007/s00344-023-11213-7.     Reference: February 6th, 2024
Gene Product: October 14th, 2011
Variation: April 25th, 2023
Gene Model: September 10th, 2018
3 months agomybst1 single-repeat Myb protein1:
9.04
GRMZM2G034110
Silvia Calderone et al. 2024. Diverging cell wall strategies for drought adaptation in two maize inbreds with contrasting lodging resistance Plant Cell Environ.     Reference: February 6th, 2024
Gene Product: December 24th, 2015
Variation: January 26th, 2010
Gene Model: December 24th, 2015
3 months agodbf1 DRE-binding protein 1:
1.07
GRMZM2G061487
Jiajie Wang et al. 2024. Integration of the Metabolome and Transcriptome Reveals Diurnal Variability in the Effects of Melatonin on Salt Tolerance in Maize Seedlings J Plant Growth Reg. :doi: 10.1007/s00344-023-11213-7.     Reference: February 6th, 2024
Gene Product: April 10th, 2013
Variation: July 27th, 2005
Gene Model: July 27th, 2016
3 months agoiddp1 indeterminate domain p1:
1.08
GRMZM2G179677
Silvia Calderone et al. 2024. Diverging cell wall strategies for drought adaptation in two maize inbreds with contrasting lodging resistance Plant Cell Environ.     Reference: February 6th, 2024
Gene Product: January 3rd, 2015
Gene Model: January 3rd, 2015
3 months agoznf13 zinc finger protein13:
2.07
GRMZM2G134334
Jiajie Wang et al. 2024. Integration of the Metabolome and Transcriptome Reveals Diurnal Variability in the Effects of Melatonin on Salt Tolerance in Maize Seedlings J Plant Growth Reg. :doi: 10.1007/s00344-023-11213-7.     Reference: February 6th, 2024
Gene Product: November 14th, 2022
Gene Model: March 2nd, 2021
3 months agoremo4 remorin4:
7.04
GRMZM2G081949
Wu, FK et al. 2024. ZmARF1 positively regulates low phosphorus stress tolerance via modulating lateral root development in maize PLoS Genetics. :doi: 10.1371/journal.pgen.1011135.     Reference: February 5th, 2024
Variation: September 1st, 2003
Gene Model: September 11th, 2018
3 months agoumc1052  :
3.09
GRMZM2G071154
Wu, FK et al. 2024. ZmARF1 positively regulates low phosphorus stress tolerance via modulating lateral root development in maize PLoS Genetics. :doi: 10.1371/journal.pgen.1011135.     Reference: February 5th, 2024
Variation: March 18th, 2021
Gene Model: March 4th, 2021
3 months agoarftf1 ARF-transcription factor 1:
 
   Wu, FK et al. 2024. ZmARF1 positively regulates low phosphorus stress tolerance via modulating lateral root development in maize PLoS Genetics. :doi: 10.1371/journal.pgen.1011135.     Reference: February 5th, 2024
Gene Product: January 29th, 2022
3 months agoumc2181  :
1.08
GRMZM2G008290
Wu, FK et al. 2024. ZmARF1 positively regulates low phosphorus stress tolerance via modulating lateral root development in maize PLoS Genetics. :doi: 10.1371/journal.pgen.1011135.     Reference: February 5th, 2024
Variation: January 4th, 2017
Gene Model: January 4th, 2017
3 months agouce10 ubiquitin conjugating enzyme10:
6.07
GRMZM2G381709
Wu, FK et al. 2024. ZmARF1 positively regulates low phosphorus stress tolerance via modulating lateral root development in maize PLoS Genetics. :doi: 10.1371/journal.pgen.1011135.   AT2G33770 (TAIR) Reference: February 5th, 2024
Gene Product: December 19th, 2019
Variation: July 29th, 2004
Gene Model: June 25th, 2020
3 months agospms1 spermine synthase1:
 
GRMZM2G047867
Wu, FK et al. 2024. ZmARF1 positively regulates low phosphorus stress tolerance via modulating lateral root development in maize PLoS Genetics. :doi: 10.1371/journal.pgen.1011135.     Reference: February 5th, 2024
Gene Product: June 19th, 2020
Gene Model: June 19th, 2020
3 months agosid1 sister of indeterminate spikelet1:
 
GRMZM2G176175
Lindsay, PL et al. 2024. Cultivating potential: Harnessing plant stem cells for agricultural crop improvement. Molecular Plant. 17:50-74.     Reference: February 3rd, 2024
Gene Product: July 5th, 2019
Variation: October 17th, 2014
Gene Model: October 16th, 2014
3 months agobd1 branched silkless1:
7.05
GRMZM2G307119
Lindsay, PL et al. 2024. Cultivating potential: Harnessing plant stem cells for agricultural crop improvement. Molecular Plant. 17:50-74.   At5g18560 (TAIR)
LOC_Os01g21820 (MSU/TIGR)
Os07g0669500 (Gramene)
Reference: February 3rd, 2024
Gene Product: July 27th, 2009
Variation: August 13th, 2011
Gene Model: July 14th, 2011
3 months agocg1 corngrass1:
3.02
GRMZM2G022489
Lindsay, PL et al. 2024. Cultivating potential: Harnessing plant stem cells for agricultural crop improvement. Molecular Plant. 17:50-74.     Reference: February 3rd, 2024
Gene Product: June 17th, 2016
Variation: August 25th, 2011
Gene Model: April 5th, 2013
3 months agogt1 grassy tillers1:
1.04
GRMZM2G005624
Lindsay, PL et al. 2024. Cultivating potential: Harnessing plant stem cells for agricultural crop improvement. Molecular Plant. 17:50-74.     Reference: February 3rd, 2024
Gene Product: March 5th, 2012
Variation: December 14th, 2023
Gene Model: March 5th, 2012
3 months agots6 tasselseed6:
1.11
GRMZM5G862109
Lindsay, PL et al. 2024. Cultivating potential: Harnessing plant stem cells for agricultural crop improvement. Molecular Plant. 17:50-74.     Reference: February 3rd, 2024
Gene Product: July 5th, 2019
Variation: December 4th, 2013
Gene Model: July 14th, 2011
3 months agotsh4 tassel sheath4:
7.03
GRMZM2G307588
Lindsay, PL et al. 2024. Cultivating potential: Harnessing plant stem cells for agricultural crop improvement. Molecular Plant. 17:50-74.     Reference: February 3rd, 2024
Gene Product: July 5th, 2019
Variation: October 8th, 2011
Gene Model: October 6th, 2011
3 months agotcptf30 TCP-transcription factor 30:
 
   Lindsay, PL et al. 2024. Cultivating potential: Harnessing plant stem cells for agricultural crop improvement. Molecular Plant. 17:50-74.     Reference: February 3rd, 2024
Gene Product: September 27th, 2019
3 months agofea3 fasciated ear3:
 
GRMZM2G166524
Lindsay, PL et al. 2024. Cultivating potential: Harnessing plant stem cells for agricultural crop improvement. Molecular Plant. 17:50-74.   At3g25670 (TAIR)
LOC_Os01g02060 (MSU/TIGR)
Reference: February 3rd, 2024
Gene Product: February 1st, 2023
Variation: May 18th, 2016
Gene Model: May 18th, 2016
3 months agokrn4 kernel row number4:
 
GRMZM2G001541
Lindsay, PL et al. 2024. Cultivating potential: Harnessing plant stem cells for agricultural crop improvement. Molecular Plant. 17:50-74.     Reference: February 3rd, 2024
Variation: April 24th, 2020
Gene Model: August 11th, 2021
3 months agotin1 tiller number1:
 
GRMZM2G059088
Lindsay, PL et al. 2024. Cultivating potential: Harnessing plant stem cells for agricultural crop improvement. Molecular Plant. 17:50-74.     Reference: February 3rd, 2024
Gene Product: November 14th, 2022
Variation: December 6th, 2019
Gene Model: December 6th, 2019
3 months agoacco2 1-aminocyclopropane-1-carboxylate oxidase2:
7.02
GRMZM2G007249
Lindsay, PL et al. 2024. Cultivating potential: Harnessing plant stem cells for agricultural crop improvement. Molecular Plant. 17:50-74.     Reference: February 3rd, 2024
Gene Product: May 16th, 2016
Variation: October 5th, 2021
Gene Model: May 16th, 2016
3 months agopub54 plant U-box type E3 ubiquitin ligase54:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub10 plant U-box type E3 ubiquitin ligase10:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agoarm1 armadillo domain protein1:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2021
3 months agoarm5 armadillo domain protein5:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2021
3 months agoarm6 armadillo domain protein6:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2021
3 months agoarm8 armadillo domain protein8:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2021
3 months agoarm9 armadillo domain protein9:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2021
3 months agoarm10 armadillo domain protein10:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2021
3 months agoarm12 armadillo domain protein12:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2021
3 months agoarm13 armadillo domain protein13:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2021
3 months agoarm14 armadillo domain protein14:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2021
3 months agoarm15 armadillo domain protein15:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2021
3 months agoarm16 armadillo domain protein16:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2021
3 months agoarm22 armadillo domain protein22:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2021
3 months agoarm47 armadillo domain protein47:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2021
3 months agoarm53 armadillo domain protein53:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2021
3 months agopub46 plant U-box type E3 ubiquitin ligase46:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub1 plant U-box type E3 ubiquitin ligase1:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub3 plant U-box type E3 ubiquitin ligase3:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub4 plant U-box type E3 ubiquitin ligase4:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub6 plant U-box type E3 ubiquitin ligase6:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub13 plant U-box type E3 ubiquitin ligase13:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub14 plant U-box type E3 ubiquitin ligase14:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub15 plant U-box type E3 ubiquitin ligase15:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub16 plant U-box type E3 ubiquitin ligase16:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub17 plant U-box type E3 ubiquitin ligase17:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub18 plant U-box type E3 ubiquitin ligase18:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub19 plant U-box type E3 ubiquitin ligase19:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub21 plant U-box type E3 ubiquitin ligase21:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub23 plant U-box type E3 ubiquitin ligase23:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub26 plant U-box type E3 ubiquitin ligase26:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub27 plant U-box type E3 ubiquitin ligase27:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub28 plant U-box type E3 ubiquitin ligase28:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub29 plant U-box type E3 ubiquitin ligase29:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub31 plant U-box type E3 ubiquitin ligase31:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub32 plant U-box type E3 ubiquitin ligase32:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub35 plant U-box type E3 ubiquitin ligase35:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub36 plant U-box type E3 ubiquitin ligase36:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub38 plant U-box type E3 ubiquitin ligase38:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub42 plant U-box type E3 ubiquitin ligase42:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub43 plant U-box type E3 ubiquitin ligase43:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub44 plant U-box type E3 ubiquitin ligase44:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub45 plant U-box type E3 ubiquitin ligase45:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub48 plant U-box type E3 ubiquitin ligase48:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub49 plant U-box type E3 ubiquitin ligase49:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub50 plant U-box type E3 ubiquitin ligase50:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub51 plant U-box type E3 ubiquitin ligase51:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub53 plant U-box type E3 ubiquitin ligase53:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub56 plant U-box type E3 ubiquitin ligase56:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub57 plant U-box type E3 ubiquitin ligase57:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub58 plant U-box type E3 ubiquitin ligase58:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub62 plant U-box type E3 ubiquitin ligase62:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub65 plant U-box type E3 ubiquitin ligase65:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub66 plant U-box type E3 ubiquitin ligase66:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub67 plant U-box type E3 ubiquitin ligase67:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub69 plant U-box type E3 ubiquitin ligase69:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub73 plant U-box type E3 ubiquitin ligase73:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub74 plant U-box type E3 ubiquitin ligase74:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub76 plant U-box type E3 ubiquitin ligase76:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub81 plant U-box type E3 ubiquitin ligase81:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub85 plant U-box type E3 ubiquitin ligase85:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agoarm54 armadillo domain protein54:
2.06
GRMZM2G425965
Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2021
Gene Model: March 20th, 2020
3 months agopza01677  :
10.03
   Zhang, YQ et al. 2024. Readthrough events in plants reveal plasticity of stop codons. Cell Reports. 43:113723.     Reference: February 2nd, 2024
Variation: November 8th, 2017
3 months agopub61 plant U-box type E3 ubiquitin ligase61:
9.03
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub70 plant U-box type E3 ubiquitin ligase70:
1.05
GRMZM2G373329
Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
Gene Model: March 28th, 2021
3 months agopub33 plant U-box type E3 ubiquitin ligase33:
7.02
GRMZM2G092550
Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
Gene Model: July 6th, 2021
3 months agopub30 plant U-box type E3 ubiquitin ligase30:
9.04
GRMZM2G075104
Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
Gene Model: July 5th, 2021
3 months agolrp1 lateral root primordia1:
 
   Tanya Singh et al. 2024. Paenibacillus lentimorbus alleviates nutrient deficiency-induced stress in Zea mays by modulating root system architecture, auxin signaling, and metabolic pathways. Plant Cell Rep. 43:49.   AT5G12330 (TAIR) Reference: February 2nd, 2024
Gene Product: April 27th, 2015
3 months agopub52 plant U-box type E3 ubiquitin ligase52:
3.01
GRMZM2G153127
Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
Variation: September 1st, 2003
Gene Model: March 1st, 2017
3 months agopub60 plant U-box type E3 ubiquitin ligase60:
10.03
GRMZM2G304010
Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
Variation: September 1st, 2003
Gene Model: October 22nd, 2018
3 months agorth1 roothair defective1:
1.09
   Tanya Singh et al. 2024. Paenibacillus lentimorbus alleviates nutrient deficiency-induced stress in Zea mays by modulating root system architecture, auxin signaling, and metabolic pathways. Plant Cell Rep. 43:49.     Reference: February 2nd, 2024
Variation: April 2nd, 2007
3 months agorth3 roothair defective3:
1.03
   Tanya Singh et al. 2024. Paenibacillus lentimorbus alleviates nutrient deficiency-induced stress in Zea mays by modulating root system architecture, auxin signaling, and metabolic pathways. Plant Cell Rep. 43:49.     Reference: February 2nd, 2024
Gene Product: March 31st, 2021
Variation: June 30th, 2012
3 months agochr124 chromatin complex subunit A:
1.08
GRMZM2G435541
Zhang, YQ et al. 2024. Readthrough events in plants reveal plasticity of stop codons. Cell Reports. 43:113723.     Reference: February 2nd, 2024
Variation: September 1st, 2003
Gene Model: July 27th, 2016
3 months agoimpb15 importin beta15:
1.12
GRMZM2G167031
Zhang, YQ et al. 2024. Readthrough events in plants reveal plasticity of stop codons. Cell Reports. 43:113723.     Reference: February 2nd, 2024
Gene Product: November 15th, 2022
Gene Model: March 11th, 2022
3 months agopub12 plant U-box type E3 ubiquitin ligase12:
1.04
GRMZM2G030805
Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
Gene Model: March 16th, 2022
3 months agopub40 plant U-box type E3 ubiquitin ligase40:
3.05
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agorum1 rootless with undetectable meristems1:
 
GRMZM2G037368
Tanya Singh et al. 2024. Paenibacillus lentimorbus alleviates nutrient deficiency-induced stress in Zea mays by modulating root system architecture, auxin signaling, and metabolic pathways. Plant Cell Rep. 43:49.     Reference: February 2nd, 2024
Gene Product: June 16th, 2014
Variation: June 16th, 2014
Gene Model: June 16th, 2014
3 months agobtf3 basic transcription factor 3 homolog:
1.01
GRMZM2G041881
Zhang, YQ et al. 2024. Readthrough events in plants reveal plasticity of stop codons. Cell Reports. 43:113723.   AT1G17880 (TAIR) Reference: February 2nd, 2024
Variation: October 30th, 2012
Gene Model: June 9th, 2014
3 months agorul1 rum1-like1:
 
GRMZM2G163848
Tanya Singh et al. 2024. Paenibacillus lentimorbus alleviates nutrient deficiency-induced stress in Zea mays by modulating root system architecture, auxin signaling, and metabolic pathways. Plant Cell Rep. 43:49.     Reference: February 2nd, 2024
Variation: November 18th, 2011
Gene Model: November 17th, 2011
3 months agoarm24 armadillo domain protein24:
4.05
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2021
3 months agomgt1 magnesium transporter1:
 
GRMZM2G108477
Zhang, YQ et al. 2024. Readthrough events in plants reveal plasticity of stop codons. Cell Reports. 43:113723.     Reference: February 2nd, 2024
Gene Product: April 18th, 2016
Gene Model: April 18th, 2016
3 months agorth6 roothairless6:
 
GRMZM2G436299
Tanya Singh et al. 2024. Paenibacillus lentimorbus alleviates nutrient deficiency-induced stress in Zea mays by modulating root system architecture, auxin signaling, and metabolic pathways. Plant Cell Rep. 43:49.     Reference: February 2nd, 2024
Gene Product: October 7th, 2016
Variation: October 7th, 2016
Gene Model: October 7th, 2016
3 months agoarm104 armadillo domain protein104:
 
GRMZM2G351387
Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2021
Gene Model: October 10th, 2020
3 months agopub20 plant U-box type E3 ubiquitin ligase20:
5.06
GRMZM2G050734
Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
Gene Model: May 23rd, 2020
3 months agopub39 plant U-box type E3 ubiquitin ligase39:
 
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agoarm7 armadillo domain protein7:
5.04
GRMZM2G062499
Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2021
Gene Model: May 18th, 2020
3 months agopub80 plant U-box type E3 ubiquitin ligase80:
 
GRMZM2G476914
Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
Gene Model: May 16th, 2022
3 months agopub64 plant U-box type E3 ubiquitin ligase64:
5.03
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
Variation: September 25th, 2007
3 months agoarm23 armadillo domain protein23:
6.00
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2021
3 months agopub82 plant U-box type E3 ubiquitin ligase82:
8.06
   Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
3 months agopub25 plant U-box type E3 ubiquitin ligase25:
10.02
GRMZM2G063394
Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
Gene Model: July 9th, 2022
3 months agoarm3 armadillo domain protein3:
1.05
GRMZM2G092652
Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2021
Gene Model: February 13th, 2019
3 months agoIDP3898  :
8.05
GRMZM2G020096
Zhang, YQ et al. 2024. Readthrough events in plants reveal plasticity of stop codons. Cell Reports. 43:113723.     Reference: February 2nd, 2024
Variation: March 31st, 2005
Gene Model: July 12th, 2021
3 months agopub2 plant U-box type E3 ubiquitin ligase2:
1.02
GRMZM2G007486
Yongle Liu et al. 2024. Genome-wide identification and transcriptome profiling expression analysis of the U-box E3 ubiquitin ligase gene family related to abiotic stress in maize (Zea mays L.) BMC Genomics. 25:132.     Reference: February 2nd, 2024
Gene Product: February 1st, 2024
Gene Model: July 26th, 2021
3 months agofbl41 F-box protein41:
 
GRMZM2G109140
Zhangshuai Yang et al. 2024. The F-box protein ZmFBL41 negatively regulates disease resistance to Rhizoctonia solani by degrading the abscisic acid synthase ZmNCED6 in maize. Plant Cell Rep. 43:48.     Reference: February 1st, 2024
Gene Product: April 27th, 2022
Variation: September 30th, 2019
Gene Model: September 30th, 2019
3 months agodnaJ63 DnaJ/Hsp40 63:
 
   Xu, F et al. 2024. iFLAS: positive-unlabeled learning facilitates full-length transcriptome-based identification and functional exploration of alternatively spliced isoforms in maize. New Phytol. :doi: 10.1111/nph.19554.     Reference: January 31st, 2024
Gene Product: September 1st, 2003
3 months agohcp101b  :
4.10
   Xu, F et al. 2024. iFLAS: positive-unlabeled learning facilitates full-length transcriptome-based identification and functional exploration of alternatively spliced isoforms in maize. New Phytol. :doi: 10.1111/nph.19554.     Reference: January 31st, 2024
Variation: January 13th, 2021
3 months agocrr8 cytokinin response regulator8:
1.02
   Xu, F et al. 2024. iFLAS: positive-unlabeled learning facilitates full-length transcriptome-based identification and functional exploration of alternatively spliced isoforms in maize. New Phytol. :doi: 10.1111/nph.19554.     Reference: January 31st, 2024
Gene Product: June 30th, 2017
Variation: April 25th, 2008
3 months agoadh1 alcohol dehydrogenase1:
1.10
   Xu, F et al. 2024. iFLAS: positive-unlabeled learning facilitates full-length transcriptome-based identification and functional exploration of alternatively spliced isoforms in maize. New Phytol. :doi: 10.1111/nph.19554.     Reference: January 31st, 2024
Gene Product: July 8th, 2009
Variation: March 22nd, 2006
3 months agoals2 acetolactate synthase2:
5.04
GRMZM2G143008
Boyu Lu et al. 2023. Distinctive physiological and molecular responses of foxtail millet and maize to nicosulfuron. 14:1308584.     Reference: January 31st, 2024
Gene Product: September 1st, 2003
Variation: October 7th, 2020
Gene Model: July 27th, 2016
3 months agoals1 acetolactate synthase1:
4.05
   Boyu Lu et al. 2023. Distinctive physiological and molecular responses of foxtail millet and maize to nicosulfuron. 14:1308584.     Reference: January 31st, 2024
Gene Product: September 1st, 2003
Variation: October 7th, 2020
3 months agoiaa28 Aux/IAA-transcription factor 28:
 
   Xu, F et al. 2024. iFLAS: positive-unlabeled learning facilitates full-length transcriptome-based identification and functional exploration of alternatively spliced isoforms in maize. New Phytol. :doi: 10.1111/nph.19554.     Reference: January 31st, 2024
Variation: July 8th, 2017
3 months agomyb56 MYB-transcription factor 56:
 
   Li, BZ et al. 2024. ZmMYB56 Regulates Stomatal Closure and Drought Tolerance in Maize Seedlings by Regulating ZmTOM7 Expression at the Transcriptional Level New Crops. :doi: 10.1016/j.ncrops.2024.100012.     Reference: January 31st, 2024
Gene Product: July 25th, 2017
3 months agocdc202 cell division cycle202:
5.04
GRMZM2G130425
Xu, F et al. 2024. iFLAS: positive-unlabeled learning facilitates full-length transcriptome-based identification and functional exploration of alternatively spliced isoforms in maize. New Phytol. :doi: 10.1111/nph.19554.     Reference: January 31st, 2024
Variation: June 28th, 2018
Gene Model: June 28th, 2018
3 months agoadxr1 adrenodoxin reductase1:
 
GRMZM2G158163
Xu, F et al. 2024. iFLAS: positive-unlabeled learning facilitates full-length transcriptome-based identification and functional exploration of alternatively spliced isoforms in maize. New Phytol. :doi: 10.1111/nph.19554.   At4g32360 (TAIR) Reference: January 31st, 2024
Gene Product: October 30th, 2012
Gene Model: May 13th, 2015
3 months agodek40 defective kernel40:
 
GRMZM2G019538
Xu, F et al. 2024. iFLAS: positive-unlabeled learning facilitates full-length transcriptome-based identification and functional exploration of alternatively spliced isoforms in maize. New Phytol. :doi: 10.1111/nph.19554.     Reference: January 31st, 2024
Gene Product: June 13th, 2019
Variation: June 13th, 2019
Gene Model: June 13th, 2019
3 months agoZm00001d037315  :
 
   Xu, F et al. 2024. iFLAS: positive-unlabeled learning facilitates full-length transcriptome-based identification and functional exploration of alternatively spliced isoforms in maize. New Phytol. :doi: 10.1111/nph.19554.     Reference: January 31st, 2024
Gene Product: July 8th, 2019
3 months agosr45_3 splicing regulator45_3:
 
GRMZM2G073567
Xu, F et al. 2024. iFLAS: positive-unlabeled learning facilitates full-length transcriptome-based identification and functional exploration of alternatively spliced isoforms in maize. New Phytol. :doi: 10.1111/nph.19554.     Reference: January 31st, 2024
Gene Product: October 18th, 2023
Gene Model: March 12th, 2021
3 months agoiqd11 IQ-domain 11:
 
AC207628.4_FG011
Xu, F et al. 2024. iFLAS: positive-unlabeled learning facilitates full-length transcriptome-based identification and functional exploration of alternatively spliced isoforms in maize. New Phytol. :doi: 10.1111/nph.19554.     Reference: January 31st, 2024
Gene Product: May 23rd, 2021
Gene Model: May 23rd, 2021
3 months agoprh101 protein phosphatase homolog101:
 
AC155624.2_FG006
Xu, F et al. 2024. iFLAS: positive-unlabeled learning facilitates full-length transcriptome-based identification and functional exploration of alternatively spliced isoforms in maize. New Phytol. :doi: 10.1111/nph.19554.     Reference: January 31st, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoIDP2140  :
5.05
GRMZM2G128902
Xu, F et al. 2024. iFLAS: positive-unlabeled learning facilitates full-length transcriptome-based identification and functional exploration of alternatively spliced isoforms in maize. New Phytol. :doi: 10.1111/nph.19554.     Reference: January 31st, 2024
Variation: March 31st, 2005
Gene Model: May 20th, 2020
3 months agoIDP441  :
6.01
   Xu, F et al. 2024. iFLAS: positive-unlabeled learning facilitates full-length transcriptome-based identification and functional exploration of alternatively spliced isoforms in maize. New Phytol. :doi: 10.1111/nph.19554.     Reference: January 31st, 2024
Variation: March 31st, 2005
3 months agoarf4 ADP-ribosylation factor homolog4:
8.01
GRMZM2G015361
Xu, F et al. 2024. iFLAS: positive-unlabeled learning facilitates full-length transcriptome-based identification and functional exploration of alternatively spliced isoforms in maize. New Phytol. :doi: 10.1111/nph.19554.     Reference: January 31st, 2024
Gene Product: December 27th, 2021
Gene Model: September 30th, 2021
3 months agoGRMZM2G313184  :
 
   Shidong He et al. 2024. Nanopore Direct RNA Sequencing Reveals the Short-Term Salt Stress Response in Maize Roots Plants. 13:405.     Reference: January 30th, 2024
Gene Product: September 18th, 2015
3 months agomyb88 MYB-transcription factor 88:
4.00
   Shidong He et al. 2024. Nanopore Direct RNA Sequencing Reveals the Short-Term Salt Stress Response in Maize Roots Plants. 13:405.     Reference: January 30th, 2024
Gene Product: July 25th, 2017
3 months agofcr1 ferric-chelate reductase (NADH)1:
3.06
GRMZM2G133213
Chowdhury, NB et al. 2023. A multi-organ maize metabolic model connects temperature stress with energy production and reducing power generation. iScience. 26:108400.     Reference: January 30th, 2024
Gene Product: September 1st, 2003
Variation: July 9th, 2008
Gene Model: June 3rd, 2017
3 months agofcr2 ferric-chelate reductase (NADH)2:
6.06
GRMZM2G157263
Chowdhury, NB et al. 2023. A multi-organ maize metabolic model connects temperature stress with energy production and reducing power generation. iScience. 26:108400.     Reference: January 30th, 2024
Variation: June 27th, 2021
Gene Model: July 27th, 2016
3 months agonip2c NOD26-like membrane intrinsic protein2:
9.01
GRMZM2G081239
Pu Zhao et al. 2024. Integrated Transcriptomics and Metabolomics Analysis of Two Maize Hybrids (ZD309 and XY335) under Heat Stress at the Flowering Stage Genes. 15:189.     Reference: January 30th, 2024
Gene Product: January 27th, 2022
Variation: September 1st, 2003
Gene Model: June 3rd, 2015
3 months agobx3 benzoxazinone synthesis3:
4.01
GRMZM2G167549
Pu Zhao et al. 2024. Integrated Transcriptomics and Metabolomics Analysis of Two Maize Hybrids (ZD309 and XY335) under Heat Stress at the Flowering Stage Genes. 15:189.     Reference: January 30th, 2024
Gene Product: October 19th, 2011
Variation: November 12th, 2013
Gene Model: October 24th, 2011
3 months agowip1 wound induced protein1:
8.01
   Pu Zhao et al. 2024. Integrated Transcriptomics and Metabolomics Analysis of Two Maize Hybrids (ZD309 and XY335) under Heat Stress at the Flowering Stage Genes. 15:189.     Reference: January 30th, 2024
Gene Product: May 30th, 2014
Variation: September 1st, 2003
3 months agoglp1 germin-like protein1:
6.05
GRMZM2G064096
Ganesan Govindan et al. 2024. Role of Germin-Like Proteins (GLPs) in Biotic and Abiotic Stress Responses in Major Crops: A Review on Plant Defense Mechanisms and Stress Tolerance Plant Mol Biol Rep. :doi: 10.1007/s11105-024-01434-9.     Reference: January 30th, 2024
Gene Product: December 24th, 2015
Variation: August 25th, 2018
Gene Model: August 24th, 2018
3 months agome6 NADP-dependent malic enzyme6:
3.07
GRMZM2G159724
Chowdhury, NB et al. 2023. A multi-organ maize metabolic model connects temperature stress with energy production and reducing power generation. iScience. 26:108400.     Reference: January 30th, 2024
Gene Product: June 27th, 2019
Variation: August 16th, 2011
Gene Model: August 21st, 2014
3 months agoaldh5 aldehyde dehydrogenase5:
3.09
GRMZM2G097706
Chowdhury, NB et al. 2023. A multi-organ maize metabolic model connects temperature stress with energy production and reducing power generation. iScience. 26:108400.     Reference: January 30th, 2024
Gene Product: June 28th, 2005
Variation: June 20th, 2012
Gene Model: September 30th, 2015
3 months agome7 malic enzyme7:
 
   Chowdhury, NB et al. 2023. A multi-organ maize metabolic model connects temperature stress with energy production and reducing power generation. iScience. 26:108400.     Reference: January 30th, 2024
Gene Product: June 27th, 2019
3 months agocopt1 copper transporter1:
 
GRMZM2G003179
Pu Zhao et al. 2024. Integrated Transcriptomics and Metabolomics Analysis of Two Maize Hybrids (ZD309 and XY335) under Heat Stress at the Flowering Stage Genes. 15:189.     Reference: January 30th, 2024
Gene Product: July 24th, 2018
Gene Model: July 24th, 2018
3 months agoaldh18 aldehyde dehydrogenase18:
 
GRMZM2G122172
Chowdhury, NB et al. 2023. A multi-organ maize metabolic model connects temperature stress with energy production and reducing power generation. iScience. 26:108400.     Reference: January 30th, 2024
Gene Product: January 5th, 2024
Gene Model: October 2nd, 2019
3 months agoaldh23 aldehyde dehydrogenase23:
 
GRMZM2G407949
Chowdhury, NB et al. 2023. A multi-organ maize metabolic model connects temperature stress with energy production and reducing power generation. iScience. 26:108400.     Reference: January 30th, 2024
Gene Product: January 5th, 2024
Gene Model: October 2nd, 2019
3 months agoxat3 xylan α-1,3-arabinofuranosyl-transferase3:
 
GRMZM2G447347
Pu Zhao et al. 2024. Integrated Transcriptomics and Metabolomics Analysis of Two Maize Hybrids (ZD309 and XY335) under Heat Stress at the Flowering Stage Genes. 15:189.     Reference: January 30th, 2024
Gene Product: July 3rd, 2020
Gene Model: July 2nd, 2020
3 months agochls6 chalcone synthase6:
 
GRMZM2G346095
Pu Zhao et al. 2024. Integrated Transcriptomics and Metabolomics Analysis of Two Maize Hybrids (ZD309 and XY335) under Heat Stress at the Flowering Stage Genes. 15:189.     Reference: January 30th, 2024
Gene Product: September 1st, 2003
Gene Model: December 20th, 2020
3 months agomtl4 metallothionein4:
 
GRMZM2G070912
Pu Zhao et al. 2024. Integrated Transcriptomics and Metabolomics Analysis of Two Maize Hybrids (ZD309 and XY335) under Heat Stress at the Flowering Stage Genes. 15:189.     Reference: January 30th, 2024
Gene Product: September 1st, 2003
Gene Model: March 5th, 2021
3 months agochx11 cation/H+ antiporter 11:
 
GRMZM2G047835
Shidong He et al. 2024. Nanopore Direct RNA Sequencing Reveals the Short-Term Salt Stress Response in Maize Roots Plants. 13:405.     Reference: January 30th, 2024
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
3 months agowrky138 WRKY-transcription factor 138:
 
   Pu Zhao et al. 2024. Integrated Transcriptomics and Metabolomics Analysis of Two Maize Hybrids (ZD309 and XY335) under Heat Stress at the Flowering Stage Genes. 15:189.     Reference: January 30th, 2024
Gene Product: July 24th, 2017
3 months agoIDP3822  :
7.04
GRMZM2G092669
Pu Zhao et al. 2024. Integrated Transcriptomics and Metabolomics Analysis of Two Maize Hybrids (ZD309 and XY335) under Heat Stress at the Flowering Stage Genes. 15:189.     Reference: January 30th, 2024
Variation: March 31st, 2005
Gene Model: July 7th, 2021
3 months agome4 malic enzyme4:
 
GRMZM2G118770
Chowdhury, NB et al. 2023. A multi-organ maize metabolic model connects temperature stress with energy production and reducing power generation. iScience. 26:108400.     Reference: January 30th, 2024
Gene Product: June 27th, 2019
Variation: October 15th, 2010
Gene Model: August 21st, 2014
3 months agoaldh3 aldehyde dehydrogenase3:
3.09
GRMZM2G071021
Chowdhury, NB et al. 2023. A multi-organ maize metabolic model connects temperature stress with energy production and reducing power generation. iScience. 26:108400.     Reference: January 30th, 2024
Gene Product: June 28th, 2005
Variation: May 20th, 2009
Gene Model: October 6th, 2015
3 months agougt3 uridine diphosphate glycosyltransferase3:
 
   Zhao Ke et al. 2024. Functional identification and characterization of two flavonoid glycosyltransferases ZmUGT84A3 and ZmUGT84A4 from maize J Plant Biochem. :doi: 10.1007/s13562-024-00874-4.     Reference: January 29th, 2024
Gene Product: September 24th, 2018
3 months agougt2 uridine diphosphate glycosyltransferase2:
 
   Zhao Ke et al. 2024. Functional identification and characterization of two flavonoid glycosyltransferases ZmUGT84A3 and ZmUGT84A4 from maize J Plant Biochem. :doi: 10.1007/s13562-024-00874-4.     Reference: January 29th, 2024
Gene Product: September 24th, 2018
3 months agodzs10 delta zein structural10:
9.03 - 9.03
   Veena Devi et al. 2024. Unraveling the role of δ-zeins in methionine bio-fortification of maize Cereal Chem. :doi: 10.1002/cche.10762.     Reference: January 29th, 2024
Gene Product: September 1st, 2003
Variation: November 21st, 2012
3 months agoereb197 AP2-EREBP-transcription factor 197:
2.02
GRMZM2G174784
Dou, DD et al. 2024. ZmILI1 confers salt stress tolerance by regulating genes of phytohormone response in maize Environ Exp Bot. :doi: 10.1016/j.envexpbot.2024.105673.     Reference: January 29th, 2024
Variation: September 1st, 2003
Gene Model: February 17th, 2018
3 months agozp15 zein protein, 15kDa15:
6.01 - 6.02
GRMZM2G086294
Veena Devi et al. 2024. Unraveling the role of δ-zeins in methionine bio-fortification of maize Cereal Chem. :doi: 10.1002/cche.10762.     Reference: January 29th, 2024
Gene Product: July 8th, 2013
Variation: August 27th, 2013
Gene Model: July 8th, 2013
3 months agodzs18 delta zein structural18:
6.04
   Veena Devi et al. 2024. Unraveling the role of δ-zeins in methionine bio-fortification of maize Cereal Chem. :doi: 10.1002/cche.10762.     Reference: January 29th, 2024
Gene Product: September 1st, 2003
Variation: February 16th, 2014
3 months agocbl8 calcineurin B-like8:
 
GRMZM2G110080
Ruilin Wang et al. 2024. Calcineurin B-like protein ZmCBL8-1 promotes salt stress resistance in Arabidopsis. Planta. 259:49.     Reference: January 29th, 2024
Gene Product: October 19th, 2016
Gene Model: October 19th, 2016
3 months agochld1 Mg chelataseD1:
5.00
   Yancai Zhi et al. 2024. Photosynthesis promotion mechanisms of artificial humic acid depend on plant types: A hydroponic study on C3 and C4 plants. Sci Total Environ. :170404.     Reference: January 29th, 2024
Gene Product: June 11th, 2007
Variation: December 14th, 2020
3 months agofdx7 ferredoxin7:
 
   Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Gene Product: September 1st, 2003
3 months agopsb3 photosystem II3:
4.04
GRMZM2G174984
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Variation: April 14th, 2015
Gene Model: April 14th, 2015
3 months agofdx2 ferredoxin2:
6.00
GRMZM2G048313
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: July 27th, 2016
3 months agopsbs1 photosystem II subunit PsbS1:
3.06
GRMZM2G077333
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Variation: April 19th, 2012
Gene Model: October 10th, 2014
3 months agopsad1 photosystem I subunit d1:
5.01
GRMZM2G024150
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Gene Product: September 1st, 2003
Variation: December 19th, 2014
Gene Model: December 19th, 2014
3 months agocchh26 Cys2His2 Zinc Finger26:
 
   Ruidong Sun et al. 2024. QTL Mapping and Candidate Genes Analysis for Ear Length in Maize Population Derived from High-Generation Sister Lines J Plant Genet Resour. 25:270-278.     Reference: January 26th, 2024
Gene Product: November 14th, 2022
3 months agofdx3 ferredoxin3:
1.11
GRMZM2G053458
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Gene Product: September 1st, 2003
Variation: January 29th, 2015
Gene Model: July 25th, 2017
3 months agooec33 oxygen evolving complex, 33kDa subunit:
6.02
GRMZM2G175562
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Gene Product: September 1st, 2003
Variation: September 16th, 2014
Gene Model: September 16th, 2014
3 months agopsa6 photosystem I reaction center6:
7.01
GRMZM2G012397
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: January 8th, 2015
3 months agoploc1 plastocyanin homolog1:
6.01
GRMZM2G071450
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Gene Product: September 1st, 2003
Variation: August 18th, 2018
Gene Model: August 19th, 2018
3 months agoatpc1 ATP synthase chloroplast subunit1:
5.07
GRMZM5G862663
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Gene Product: September 1st, 2003
Variation: May 28th, 2013
Gene Model: February 18th, 2015
3 months agofdx1 ferredoxin1:
6.00
GRMZM2G122337
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: December 27th, 2016
3 months agonta1 N-terminal amidase1:
9.08
GRMZM2G110236
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.   At4g34090 (TAIR)
LOC_Os03g01920 (MSU/TIGR)
Reference: January 26th, 2024
Variation: August 18th, 2020
Gene Model: January 23rd, 2019
3 months agooec17 oxygen evolving complex, 17kDa homolog:
7.03
GRMZM2G058070
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Gene Product: September 1st, 2003
Variation: July 18th, 2012
Gene Model: July 14th, 2015
3 months agofdx6 ferredoxin6:
 
GRMZM2G106190
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Gene Product: September 1st, 2003
Variation: November 18th, 2011
Gene Model: July 27th, 2016
3 months agoatpc2 ATP synthase chloroplast subunit2:
 
GRMZM2G048907
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Gene Product: July 17th, 2006
Variation: December 30th, 2015
Gene Model: February 17th, 2015
3 months agopyg7 pale yellowgreen7:
 
GRMZM5G809292
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.   AT1G22700 (TAIR) Reference: January 26th, 2024
Gene Product: May 20th, 2017
Variation: May 20th, 2017
Gene Model: May 20th, 2017
3 months agopspb1 photosystem II oxygen evolving polypeptide1:
 
GRMZM2G016677
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Gene Product: September 1st, 2003
Gene Model: July 15th, 2017
3 months agoincw7 invertase cell wall7:
 
GRMZM2G018716
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Gene Product: June 12th, 2018
Gene Model: June 12th, 2018
3 months agofdx5 ferredoxin5:
 
GRMZM2G122327
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Gene Product: September 1st, 2003
Variation: August 3rd, 2018
Gene Model: August 1st, 2018
3 months agopsb28 photosystem II subunit28:
 
GRMZM2G005433
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Variation: June 18th, 2021
Gene Model: February 26th, 2021
3 months agopas1 pale and small1:
 
GRMZM2G002754
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Gene Product: September 1st, 2003
Variation: May 11th, 2021
Gene Model: May 11th, 2021
3 months agopet7 photosynthetic electron transport7:
 
GRMZM2G013342
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Gene Product: May 11th, 2021
Gene Model: May 11th, 2021
3 months agofdx4 ferredoxin4:
 
GRMZM2G146395
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Gene Product: September 1st, 2003
Gene Model: August 27th, 2021
3 months agoptac3 plastid transcriptionally active3:
 
GRMZM2G116526
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Gene Product: December 21st, 2022
Gene Model: November 16th, 2021
3 months agopspb2 photosystem II oxygen evolving polypeptide2:
7.01
GRMZM2G047954
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Gene Product: September 1st, 2003
Variation: March 31st, 2005
Gene Model: January 30th, 2019
3 months agopsei9 cystatin9:
4.03
AC196110.4_FG004
Xiao, N et al. 2024. Overexpression of ZmSUS1 increased drought resistance of maize (Zea mays L.) by regulating sucrose metabolism and soluble sugar content. Planta. 259:43.     Reference: January 26th, 2024
Gene Product: April 21st, 2008
Variation: April 21st, 2008
Gene Model: February 12th, 2014
3 months agozim22 ZIM-transcription factor 22:
 
   Jianjun Sun et al. 2024. Transcriptomic and Metabolomic Analyses Reveal the Role of Phenylalanine Metabolism in the Maize Response to Stalk Rot Caused by Fusarium proliferatum. Int J Mol Sci. 25:1492.     Reference: January 25th, 2024
Gene Product: February 24th, 2021
3 months agoalm3 aluminum tolerance3:
 
GRMZM5G886177
Jianjun Sun et al. 2024. Transcriptomic and Metabolomic Analyses Reveal the Role of Phenylalanine Metabolism in the Maize Response to Stalk Rot Caused by Fusarium proliferatum. Int J Mol Sci. 25:1492.     Reference: January 25th, 2024
Gene Product: September 28th, 2005
Gene Model: July 9th, 2020
3 months agonaat2 nicotianamine aminotransferase2:
 
GRMZM2G006480
Jianjun Sun et al. 2024. Transcriptomic and Metabolomic Analyses Reveal the Role of Phenylalanine Metabolism in the Maize Response to Stalk Rot Caused by Fusarium proliferatum. Int J Mol Sci. 25:1492.     Reference: January 25th, 2024
Gene Product: January 18th, 2022
Gene Model: January 18th, 2022
3 months agogen1 GEN1 Holliday junction 5' flap endonuclease homolog1:
 
   Jiang, LG et al. 2024. MSH7 confers quantitative variation in pollen fertility and boosts grain yield in maize. Plant Biotechnol J.   AT1G01880 (TAIR) Reference: January 24th, 2024
Gene Product: January 24th, 2024
Variation: January 24th, 2024
3 months agogen2 GEN1 Holliday junction 5' flap endonuclease homolog2:
 
   Jiang, LG et al. 2024. MSH7 confers quantitative variation in pollen fertility and boosts grain yield in maize. Plant Biotechnol J.   AT1G01880 (TAIR) Reference: January 24th, 2024
Gene Product: January 24th, 2024
Variation: January 24th, 2024
3 months agomus2 MutS homolog2:
3.02 - 3.03
GRMZM2G110212
Jiang, LG et al. 2024. MSH7 confers quantitative variation in pollen fertility and boosts grain yield in maize. Plant Biotechnol J.   AT3G24495 (TAIR) Reference: January 24th, 2024
Gene Product: August 15th, 2005
Variation: January 24th, 2024
Gene Model: August 5th, 2015
3 months agofen1 flap endonuclease1:
6.07
GRMZM2G121262
Dresselhaus, T et al. 2006. Plant Physiol 140:512-527   AT5G26680 (TAIR) Reference: July 31st, 2017
Gene Product: January 24th, 2024
Variation: July 31st, 2017
Gene Model: July 31st, 2017
3 months agoprh130 protein phosphatase homolog130:
 
   Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
3 months agoprh131 protein phosphatase homolog131:
 
   Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
3 months agoprh132 protein phosphatase homolog132:
 
   Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
3 months agoprh135 protein phosphatase homolog135:
 
   Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
3 months agoprh136 protein phosphatase homolog136:
 
   Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
3 months agokpp1 kinase associated protein phosphatase1:
7.02
GRMZM2G042627
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: July 30th, 2015
3 months agoprh36 protein phosphatase homolog36:
1.04
GRMZM2G077960
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: March 31st, 2021
3 months agoprh63 protein phosphatase homolog63:
2.06
GRMZM2G153675
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: May 1st, 2021
3 months agoprh46 protein phosphatase homolog46:
10.04
GRMZM2G109496
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: July 20th, 2021
3 months agoprh47 protein phosphatase homolog47:
2.02
GRMZM2G111232
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: April 23rd, 2021
3 months agoprh106 protein phosphatase homolog106:
9.05
GRMZM2G006429
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Variation: April 20th, 2017
Gene Model: April 20th, 2017
3 months agoprh115 protein phosphatase homolog115:
2.08
GRMZM2G021610
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Variation: September 1st, 2003
Gene Model: March 22nd, 2020
3 months agoprh88 protein phosphatase homolog88:
6.08 - 6.08
GRMZM2G412937
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Variation: September 1st, 2003
Gene Model: August 30th, 2018
3 months agoprh16 putative protein phosphatase 2C 16:
2.01
GRMZM2G056572
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Variation: February 17th, 2017
Gene Model: March 6th, 2017
3 months agoprh24 protein phosphatase homolog24:
5.00
GRMZM2G144109
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Variation: September 1st, 2003
Gene Model: June 13th, 2018
3 months agodbptf1 DBP-transcription factor 1:
 
   Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
3 months agodbptf2 DBP-transcription factor 2:
 
   Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Variation: March 17th, 2021
3 months agodbptf3 DBP-transcription factor 3:
 
   Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
3 months agodbptf4 DBP-transcription factor 4:
 
   Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
3 months agomyb18 MYB-transcription factor 18:
 
   Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
3 months agoprh128 protein phosphatase homolog128:
9.04 - 9.05
GRMZM2G072573
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Variation: September 1st, 2003
Gene Model: February 28th, 2018
3 months agoprh133 protein phosphatase homolog133:
1.11
GRMZM2G093776
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: February 1st, 2017
3 months agoprh73 protein phosphatase homolog73:
3.04
GRMZM2G173734
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: April 1st, 2020
3 months agoprh8 protein phosphatase homolog8:
 
GRMZM2G122228
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: October 18th, 2016
3 months agoprh9 protein phosphatase homolog9:
 
GRMZM5G818101
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: October 18th, 2016
3 months agoprh10 protein phosphatase homolog10:
 
GRMZM2G019819
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: October 18th, 2016
3 months agoprh11 protein phosphatase homolog11:
 
GRMZM2G159811
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: October 18th, 2016
3 months agoprh13 protein phosphatase homolog13:
 
GRMZM2G134628
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: October 18th, 2016
3 months agoprh14 protein phosphatase homolog14:
 
GRMZM2G102255
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: October 18th, 2016
3 months agoprh18 protein phosphatase homolog18:
 
GRMZM2G437575
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: January 19th, 2018
3 months agoprh19 protein phosphatase homolog19:
 
GRMZM2G001243
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: January 19th, 2018
3 months agoprh20 protein phosphatase homolog20:
 
GRMZM2G300125
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: January 19th, 2018
3 months agoprh22 protein phosphatase homolog 22:
 
GRMZM2G069713
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: January 7th, 2020
3 months agoprh23 protein phosphatase homolog23:
 
GRMZM2G047376
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: June 22nd, 2020
3 months agoprh129 protein phosphatase homolog129:
 
GRMZM2G074824
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: January 31st, 2021
Gene Model: January 31st, 2021
3 months agoprh42 protein phosphatase homolog42:
 
GRMZM2G091061
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: January 31st, 2021
Gene Model: January 31st, 2021
3 months agoprh82 protein phosphatase homolog82:
 
GRMZM2G372297
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: January 31st, 2021
3 months agoprh91 protein phosphatase homolog91:
 
GRMZM2G465287
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: August 19th, 2021
3 months agoprh103 protein phosphatase homolog103:
 
GRMZM2G000603
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh107 protein phosphatase homolog107:
 
GRMZM2G009163
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh108 protein phosphatase homolog108:
 
GRMZM2G010017
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh116 protein phosphatase homolog116:
 
GRMZM2G040452
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh117 protein phosphatase homolog117:
 
GRMZM2G040642
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh121 protein phosphatase homolog121:
 
GRMZM2G050512
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh122 protein phosphatase homolog122:
 
GRMZM2G052699
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh126 protein phosphatase homolog126:
 
GRMZM2G057768
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh30 protein phosphatase homolog30:
 
GRMZM2G067910
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh33 protein phosphatase homolog33:
 
GRMZM2G071196
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh34 protein phosphatase homolog34:
 
GRMZM2G073788
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh35 protein phosphatase homolog35:
 
GRMZM2G074489
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh37 protein phosphatase homolog37:
 
GRMZM2G081359
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh40 protein phosphatase homolog40:
 
GRMZM2G102560
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh49 protein phosphatase homolog49:
 
GRMZM2G113016
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh50 protein phosphatase homolog50:
 
GRMZM2G119623
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh51 protein phosphatase homolog51:
 
GRMZM2G120246
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh58 protein phosphatase homolog58:
 
GRMZM2G141859
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh60 protein phosphatase homolog60:
 
GRMZM2G150213
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh62 protein phosphatase homolog62:
 
GRMZM2G151254
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh64 protein phosphatase homolog64:
 
GRMZM2G155991
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh65 protein phosphatase homolog65:
 
GRMZM2G156543
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh67 protein phosphatase homolog67:
 
GRMZM2G158818
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh69 protein phosphatase homolog69:
 
GRMZM2G161544
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh79 protein phosphatase homolog79:
 
GRMZM2G311187
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh80 protein phosphatase homolog80:
 
GRMZM2G342197
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh86 protein phosphatase homolog86:
 
GRMZM2G407605
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh89 protein phosphatase homolog89:
 
GRMZM2G442404
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 26th, 2021
3 months agoprh92 protein phosphatase homolog92:
 
GRMZM2G479665
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 26th, 2021
3 months agoprh94 protein phosphatase homolog94:
 
GRMZM5G829894
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 26th, 2021
3 months agoprh95 protein phosphatase homolog95:
 
GRMZM5G833774
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 26th, 2021
3 months agoprh96 protein phosphatase homolog96:
 
GRMZM5G836628
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 26th, 2021
3 months agoprh97 protein phosphatase homolog97:
 
GRMZM5G891266
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 26th, 2021
3 months agoprh12 protein phosphatase homolog12:
6.07
   Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Variation: October 18th, 2016
3 months agoiaa46 Aux/IAA-transcription factor 46:
6.05
   Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
3 months agoprh109 protein phosphatase homolog109:
7.03
GRMZM2G010298
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: July 27th, 2020
3 months agoprh53 protein phosphatase homolog53:
7.02
GRMZM2G126832
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: July 21st, 2020
3 months agoprh43 protein phosphatase homolog43:
7.04
GRMZM2G107565
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: July 28th, 2020
3 months agoprh105 protein phosphatase homolog105:
7.03
GRMZM2G006416
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
3 months agoprh57 protein phosphatase homolog57:
8.05
GRMZM2G136765
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: September 2nd, 2019
3 months agoprh54 protein phosphatase homolog54:
9.06
GRMZM2G130943
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: June 27th, 2020
3 months agoprh29 protein phosphatase homolog29:
10.03
GRMZM2G060798
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: July 3rd, 2020
3 months agoprh119 protein phosphatase homolog119:
10.04
GRMZM2G044382
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: September 12th, 2021
3 months agoprh76 protein phosphatase homolog76:
10.07
   Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Variation: September 25th, 2007
3 months agoprh72 protein phosphatase homolog72:
1.06
GRMZM2G170299
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Variation: March 31st, 2005
Gene Model: February 13th, 2019
3 months agoprh113 protein phosphatase homolog113:
6.02
GRMZM2G019812
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Variation: March 31st, 2005
Gene Model: January 16th, 2020
3 months agoprh70 protein phosphatase homolog70:
4.10
GRMZM2G166035
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: April 9th, 2013
3 months agoprh32 protein phosphatase homolog32:
5.03
GRMZM2G069970
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: May 11th, 2020
3 months agoprh112 protein phosphatase homolog112:
2.04
GRMZM2G016749
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: February 21st, 2020
3 months agoprh45 protein phosphatase homolog45:
 
GRMZM2G108309
Yunyun Pang et al. 2024. Identification of the Maize PP2C Gene Family and Functional Studies on the Role of ZmPP2C15 in Drought Tolerance Plants. 13:340.     Reference: January 23rd, 2024
Gene Product: October 25th, 2021
Gene Model: June 24th, 2020
3 months agocepr2 constitutive expresser of pathogenesis-related genes2:
 
   Zhou, Y et al. 2024. Genetic regulation of self-organizing azimuthal canopy orientations and their impacts on light interception in maize Plant Cell. :doi: 10.1093/plcell/koae007.   AT5G64930 (TAIR) Reference: January 22nd, 2024
Gene Product: September 15th, 2022
Variation: January 22nd, 2024
3 months agod14b dwarf14 ortholog-b:
 
   Zhang, C et al. 2024. The Overexpression of Zea mays Strigolactone Receptor Gene D14 Enhances Drought Resistance in Arabidopsis thaliana L. Int J Mol Sci. 25:1327.   AT3G03990 (TAIR) Reference: January 22nd, 2024
Gene Product: December 27th, 2022
Variation: December 27th, 2022
3 months agoglu21 beta-glucosidase21:
 
   Zhou, Y et al. 2024. Genetic regulation of self-organizing azimuthal canopy orientations and their impacts on light interception in maize Plant Cell. :doi: 10.1093/plcell/koae007.     Reference: January 22nd, 2024
Gene Product: June 26th, 2019
3 months agocry4 cryptochrome4:
4.05
   Zhou, Y et al. 2024. Genetic regulation of self-organizing azimuthal canopy orientations and their impacts on light interception in maize Plant Cell. :doi: 10.1093/plcell/koae007.     Reference: January 22nd, 2024
Gene Product: August 31st, 2018
3 months agonrat5 nramp aluminum transporter5:
7.02
GRMZM2G147560
Gu, L et al. 2024. The maize WRKY transcription factor ZmWRKY64 confers cadmium tolerance in Arabidopsis and maize (Zea mays L.). Plant Cell Rep. 43:44.     Reference: January 22nd, 2024
Gene Product: August 17th, 2015
Gene Model: July 6th, 2021
3 months agophyA2 phytochromeA2:
5.01
GRMZM2G181028
Zhou, Y et al. 2024. Genetic regulation of self-organizing azimuthal canopy orientations and their impacts on light interception in maize Plant Cell. :doi: 10.1093/plcell/koae007.     Reference: January 22nd, 2024
Gene Product: June 30th, 2009
Variation: September 1st, 2003
Gene Model: August 13th, 2014
3 months agod14a dwarf14 ortholog-a:
1.00
GRMZM2G077127
Zhang, C et al. 2024. The Overexpression of Zea mays Strigolactone Receptor Gene D14 Enhances Drought Resistance in Arabidopsis thaliana L. Int J Mol Sci. 25:1327.   AT3G03990 (TAIR) Reference: January 22nd, 2024
Gene Product: December 27th, 2022
Variation: December 27th, 2022
Gene Model: February 4th, 2020
3 months agoalt7 alanine aminotransferase7:
7.00
GRMZM2G120563
Zhou, Y et al. 2024. Genetic regulation of self-organizing azimuthal canopy orientations and their impacts on light interception in maize Plant Cell. :doi: 10.1093/plcell/koae007.     Reference: January 22nd, 2024
Gene Product: October 2nd, 2020
Gene Model: September 4th, 2018
3 months agophot2 blue-light receptor phototropin 2:
 
GRMZM2G032351
Zhou, Y et al. 2024. Genetic regulation of self-organizing azimuthal canopy orientations and their impacts on light interception in maize Plant Cell. :doi: 10.1093/plcell/koae007.     Reference: January 22nd, 2024
Gene Product: May 13th, 2014
Gene Model: May 13th, 2014
3 months agodnaJ23 DnaJ/Hsp40 23:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ46 DnaJ/Hsp40 46:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agohsp31 heat shock protein31:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: January 15th, 2019
3 months agodnaJ16 DnaJ/Hsp40 16:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ13 DnaJ/Hsp40 13:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ22 DnaJ/Hsp40 22:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ24 DnaJ/Hsp40 24:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ26 DnaJ/Hsp40 26:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ28 DnaJ/Hsp40 28:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ29 DnaJ/Hsp40 29:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ30 DnaJ/Hsp40 30:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ32 DnaJ/Hsp40 32:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ37 DnaJ/Hsp40 37:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ40 DnaJ/Hsp40 40:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ44 DnaJ/Hsp40 44:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ62 DnaJ/Hsp40 62:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ67 DnaJ/Hsp40 67:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ74 DnaJ/Hsp40 74:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ75 DnaJ/Hsp40 75:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ76 DnaJ/Hsp40 76:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ81 DnaJ/Hsp40 81:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ82 DnaJ/Hsp40 82:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ85 DnaJ/Hsp40 85:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ88 DnaJ/Hsp40 88:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ93 DnaJ/Hsp40 93:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ95 DnaJ/Hsp40 95:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agohsp17.2 heat shock protein17.2:
3.04
GRMZM2G158232
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: March 3rd, 2015
3 months agocdj3 chaperone DNA J3:
5.03
GRMZM2G134980
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Variation: August 27th, 2021
Gene Model: August 27th, 2021
3 months agodnaJ42 DnaJ/Hsp40 42:
4.07
GRMZM2G054076
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: May 24th, 2021
3 months agodnaJ1 DnaJ/Hsp40 1:
1.03
GRMZM2G040561
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: March 30th, 2021
3 months agohsp10 heat shock protein10:
1.03
GRMZM2G481529
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: January 15th, 2019
Variation: August 8th, 2017
Gene Model: August 8th, 2017
3 months agodnaJ66 DnaJ/Hsp40 66:
6.07
GRMZM5G851710
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: May 27th, 2022
3 months agodnaJ96 DnaJ/Hsp40 96:
10.03
GRMZM5G856084
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: July 19th, 2021
3 months agohsp70-5 heat shock protein70-5:
2.07
GRMZM2G365374
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: February 20th, 2019
3 months agocpn2 chaperonin2:
1.08
GRMZM2G416120
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: May 20th, 2015
3 months agohsp70-22 heat shock protein70-22:
10.03
GRMZM2G001500
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: January 11th, 2018
3 months agobip2 Binding protein homolog2:
4.11
GRMZM2G415007
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: March 30th, 2015
3 months agoumc1278  :
1.07
GRMZM2G092595
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Variation: September 1st, 2003
Gene Model: October 6th, 2016
3 months agoumc1329  :
4.06
GRMZM2G122767
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Variation: September 1st, 2003
Gene Model: April 21st, 2020
3 months agohsp1 heat shock protein1:
8.01
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
3 months agohsp70-16 heat shock protein70-16:
8.03
GRMZM2G063676
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: September 18th, 2018
3 months agoumc1454  :
2.04
AC235541.1_FG002
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Variation: March 18th, 2021
Gene Model: February 21st, 2018
3 months agoumc1461  :
1.05
AC202185.4_FG004
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Variation: September 1st, 2003
Gene Model: November 8th, 2016
3 months agocps2 chloroplast protein synthesis2:
6.01 - 6.08
AC215201.3_FG005
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: October 3rd, 2011
Variation: December 30th, 2015
Gene Model: September 6th, 2011
3 months agohsp3 heat shock protein3:
7.00
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
3 months agotcptf22 TCP-transcription factor 22:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 27th, 2019
3 months agotcptf27 TCP-transcription factor 27:
 
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 27th, 2019
3 months agoumc1641  :
3.09
GRMZM2G064031
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Variation: March 7th, 2017
Gene Model: March 7th, 2017
3 months agoumc1679  :
5.01
AC210013.4_FG018
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Variation: September 1st, 2003
Gene Model: June 15th, 2018
3 months agohsp19 heat shock protein19:
9.06
GRMZM2G024718
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: February 28th, 2018
3 months agohsp18a 18 kda heat shock protein18a:
9.04 - 9.05
GRMZM2G404249
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Variation: June 27th, 2014
Gene Model: June 27th, 2014
3 months agohsp90 heat shock protein, 90 kDa:
10.04
GRMZM5G833699
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: May 18th, 2021
Variation: September 1st, 2003
Gene Model: November 3rd, 2014
3 months agocip1 cytokinin inducible protease1:
3.04
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: June 3rd, 2014
Variation: January 10th, 2014
3 months agocdj1 chaperone DNA J homolog1:
1.11
GRMZM2G134917
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Variation: September 29th, 2012
Gene Model: July 27th, 2016
3 months agocpn1 chaperonin 1:
5.03
GRMZM2G111477
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Variation: May 20th, 2015
Gene Model: May 20th, 2015
3 months agobip1 Binding protein homolog1:
5.03
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Variation: October 30th, 2012
3 months agohsp18c heat shock protein18c:
8.02
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Variation: January 2nd, 2013
3 months agohsp18f heat shock protein18f:
3.02
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Variation: July 18th, 2014
3 months agoshpl1 shepherd-like1:
5.03
GRMZM2G399073
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Variation: June 23rd, 2015
Gene Model: June 23rd, 2015
3 months agodnaJ6 DnaJ/Hsp40 6:
1.04
GRMZM2G125304
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Variation: October 5th, 2016
Gene Model: November 4th, 2016
3 months agodnaJ25 DnaJ/Hsp40 25:
2.04
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agobip3 binding protein3:
 
GRMZM2G471196
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: July 7th, 2017
3 months agohsp22 heat shock protein22:
4.07
GRMZM2G007729
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: January 15th, 2019
Gene Model: October 18th, 2013
3 months agodnaJ70 DnaJ/Hsp40 70:
 
GRMZM2G145152
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: September 28th, 2016
3 months agohsp6 heat shock protein6:
 
AC209784.3_FG007
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: January 14th, 2019
3 months agohsp7 heat shock protein7:
 
GRMZM5G802801
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: January 14th, 2019
3 months agohsp8 heat shock protein8:
 
GRMZM2G080724
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: January 15th, 2019
Variation: January 22nd, 2021
Gene Model: January 14th, 2019
3 months agohsp9 heat shock protein9:
 
GRMZM2G046382
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: January 15th, 2019
Gene Model: January 14th, 2019
3 months agohsp12 heat shock protein12:
 
GRMZM2G158232
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: January 15th, 2019
Gene Model: January 14th, 2019
3 months agodnaJ77 DnaJ/Hsp40 77:
 
GRMZM2G086964
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: September 16th, 2019
3 months agocpn10  :
 
GRMZM2G091189
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Variation: March 18th, 2021
Gene Model: April 22nd, 2020
3 months agohsp20 heat shock protein20:
 
GRMZM2G399136
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: January 15th, 2019
Gene Model: August 26th, 2020
3 months agocdj4 chaperone DNA J4:
 
GRMZM2G399136
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: August 26th, 2020
3 months agohsp24 heat shock protein24:
 
GRMZM2G375517
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: January 15th, 2019
Gene Model: August 26th, 2020
3 months agohsp27 heat shock protein27:
 
GRMZM2G335242
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: January 15th, 2019
Gene Model: September 14th, 2020
3 months agohsp28 heat shock protein28:
 
GRMZM2G098167
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: January 15th, 2019
Gene Model: September 14th, 2020
3 months agohsp13 heat shock protein13:
 
GRMZM2G012631
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: May 18th, 2021
Gene Model: October 10th, 2020
3 months agohsp70-1 heat shock protein70-1:
 
GRMZM2G056039
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: December 18th, 2020
3 months agohsp70-2 heat shock protein70-2:
 
GRMZM2G079668
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: December 18th, 2020
3 months agohsp70-7 heat shock protein70-7:
 
GRMZM2G319649
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: December 18th, 2020
3 months agohsp70-9 heat shock protein70-9:
 
GRMZM2G020040
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: December 18th, 2020
3 months agohsp70-10 heat shock protein70-10:
 
GRMZM2G056766
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: December 18th, 2020
3 months agohsp70-12 heat shock protein70-12:
 
GRMZM2G153815
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: December 18th, 2020
3 months agohsp70-14 heat shock protein70-14:
 
GRMZM2G023232
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: December 18th, 2020
3 months agodnaJ57 DnaJ/Hsp40 57:
5.08
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
3 months agohsp29 heat shock protein29:
 
GRMZM5G803365
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: January 15th, 2019
Gene Model: March 1st, 2022
3 months agohsp30 heat shock protein30:
 
GRMZM2G429396
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: January 15th, 2019
Gene Model: March 1st, 2022
3 months agodnaJ65 DnaJ/Hsp40 65:
 
GRMZM2G175860
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: July 18th, 2022
3 months agofabc1 forms aploid and binucleate cells 1a ortholog1:
6.04
GRMZM2G132373
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.   AT4G33240 (TAIR) Reference: January 20th, 2024
Gene Product: October 20th, 2021
Variation: November 1st, 2021
Gene Model: January 13th, 2020
3 months agodnaJ61 DnaJ/Hsp40 61:
6.01
GRMZM2G473367
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: July 10th, 2020
3 months agodnaJ79 DnaJ/Hsp40 79:
8.05
GRMZM2G119483
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: September 1st, 2019
3 months agodnaJ89 DnaJ/Hsp40 89:
9.04
GRMZM2G013934
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: July 7th, 2022
3 months agohsp5 heat shock protein5:
9.06
GRMZM2G366532
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: January 14th, 2019
3 months agodnaJ94 DnaJ/Hsp40 94:
10.02
   Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Variation: September 25th, 2007
3 months agodnaJ52 DnaJ/Hsp40 52:
5.04
GRMZM2G137495
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: May 17th, 2020
3 months agohsp4 heat shock protein4:
7.02
GRMZM2G069651
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: May 18th, 2021
Gene Model: January 14th, 2019
3 months agodnaJ15 DnaJ/Hsp40 15:
1.09
GRMZM2G081910
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: February 14th, 2020
3 months agodnaJ54 DnaJ/Hsp40 54:
 
GRMZM2G118731
Rubens Diogo Jr et al. 2023. Maize heat shock proteins—prospection, validation, categorization and in silico analysis of the different ZmHSP families Stress Biol. :doi: 10.1007/s44154-023-00104-2.     Reference: January 20th, 2024
Gene Product: September 1st, 2003
Gene Model: March 13th, 2021
3 months agodnaJ78 DnaJ/Hsp40 78:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ33 DnaJ/Hsp40 33:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ60 DnaJ/Hsp40 60:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ83 DnaJ/Hsp40 83:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ3 DnaJ/Hsp40 3:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ4 DnaJ/Hsp40 4:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ7 DnaJ/Hsp40 7:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ9 DnaJ/Hsp40 9:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ12 DnaJ/Hsp40 12:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ18 DnaJ/Hsp40 18:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ20 DnaJ/Hsp40 20:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ27 DnaJ/Hsp40 27:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ34 DnaJ/Hsp40 34:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ35 DnaJ/Hsp40 35:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ41 DnaJ/Hsp40 41:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ43 DnaJ/Hsp40 43:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ47 DnaJ/Hsp40 47:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ49 DnaJ/Hsp40 49:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ55 DnaJ/Hsp40 55:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ64 DnaJ/Hsp40 64:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ68 DnaJ/Hsp40 68:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ69 DnaJ/Hsp40 69:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ71 DnaJ/Hsp40 71:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ72 DnaJ/Hsp40 72:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ84 DnaJ/Hsp40 84:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ86 DnaJ/Hsp40 86:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ87 DnaJ/Hsp40 87:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ90 DnaJ/Hsp40 90:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ97 DnaJ/Hsp40 97:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ99 DnaJ/Hsp40 99:
 
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agobsd2 bundle sheath defective2:
1.05
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
Variation: October 14th, 2009
3 months agodnaJ39 DnaJ/Hsp40 39:
3.09
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ56 DnaJ/Hsp40 56:
5.08
GRMZM2G098058
Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
Gene Model: August 29th, 2021
3 months agodnaJ36 DnaJ/Hsp40 36:
3.04
GRMZM2G104045
Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
Gene Model: May 14th, 2021
3 months agodnaJ45 DnaJ/Hsp40 45:
5.00
GRMZM2G138511
Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
Gene Model: July 23rd, 2021
3 months agopsa2 photosystemI2:
 
GRMZM2G021687
Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
Variation: September 18th, 2014
Gene Model: September 18th, 2014
3 months agodnaJ80 DnaJ/Hsp40 80:
8.05
GRMZM2G168590
Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: September 1st, 2019
3 months agodnaJ19 DnaJ/Hsp40 19:
2.02
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
Variation: September 25th, 2007
3 months agodnaJ21 DnaJ/Hsp40 21:
2.04
GRMZM2G071996
Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
Gene Model: March 14th, 2020
3 months agodnaJ53 DnaJ/Hsp40 53:
5.04
GRMZM2G039089
Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
Gene Model: May 18th, 2020
3 months agodnaJ48 DnaJ/Hsp40 48:
5.02
GRMZM2G129700
Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
Gene Model: May 4th, 2020
3 months agodnaJ51 DnaJ/Hsp40 51:
5.03
GRMZM5G862277
Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
Gene Model: May 13th, 2022
3 months agodnaJ92 DnaJ/Hsp40 92:
 
GRMZM5G898471
Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
Gene Model: August 4th, 2020
3 months agodnaJ58 DnaJ/Hsp40 58:
5.08
GRMZM2G092632
Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
Gene Model: May 25th, 2020
3 months agodnaJ91 DnaJ/Hsp40 91:
9.05
GRMZM2G134476
Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
Gene Model: June 25th, 2020
3 months agodnaJ98 DnaJ/Hsp40 98:
10.04
   Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
3 months agodnaJ73 DnaJ/Hsp40 73:
7.04
GRMZM2G382106
Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
Variation: March 31st, 2005
Gene Model: February 6th, 2019
3 months agodnaJ5 DnaJ/Hsp40 5:
1.04
GRMZM2G382717
Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
Gene Model: January 24th, 2021
3 months agodnaJ31 DnaJ/Hsp40 31:
2.08
GRMZM5G812660
Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
Gene Model: March 22nd, 2020
3 months agodnaJ59 DnaJ/Hsp40 59:
6.01
GRMZM2G406268
Cao, LR et al. 2024. Comprehensive Analysis of the DnaJ/HSP40 Gene Family in Maize (Zea mays L.) Reveals that ZmDnaJ96 Enhances Abiotic Stress Tolerance J Plant Growth Reg. :doi: 10.1007/s00344-023-11206-6.     Reference: January 19th, 2024
Gene Product: September 1st, 2003
Gene Model: July 9th, 2020
3 months agowakl39 wall associated kinase like39:
8.01
GRMZM2G079219
Zhong, T et al. 2024. The ZmWAKL–ZmWIK–ZmBLK1–ZmRBOH4 module provides quantitative resistance to gray leaf spot in maize Nature Genetics. :doi: 10.1038/s41588-023-01644-z.     Reference: January 18th, 2024
Gene Product: December 7th, 2023
Gene Model: July 9th, 2021
3 months agorrb3 retinoblastoma family3:
 
GRMZM2G033828
Ledesma, A et al. 2023. Genome-wide association analysis of plant architecture traits using doubled haploid lines derived from different cycles of the Iowa Stiff Stalk Synthetic maize population. Frontiers in Plant Science. 14:1294507.     Reference: January 18th, 2024
Variation: January 22nd, 2021
Gene Model: April 17th, 2015
3 months agoca5p12 CCAAT-HAP5-transcription factor 512:
 
   Ledesma, A et al. 2023. Genome-wide association analysis of plant architecture traits using doubled haploid lines derived from different cycles of the Iowa Stiff Stalk Synthetic maize population. Frontiers in Plant Science. 14:1294507.     Reference: January 18th, 2024
Gene Product: August 9th, 2016
3 months agosbp23 SBP-transcription factor 23:
 
   Ledesma, A et al. 2023. Genome-wide association analysis of plant architecture traits using doubled haploid lines derived from different cycles of the Iowa Stiff Stalk Synthetic maize population. Frontiers in Plant Science. 14:1294507.     Reference: January 18th, 2024
Gene Product: July 5th, 2019
3 months agocol16 C2C2-CO-like-transcription factor 16:
1.06
GRMZM2G159996
Ledesma, A et al. 2023. Genome-wide association analysis of plant architecture traits using doubled haploid lines derived from different cycles of the Iowa Stiff Stalk Synthetic maize population. Frontiers in Plant Science. 14:1294507.     Reference: January 18th, 2024
Gene Product: June 18th, 2018
Variation: December 7th, 2016
Gene Model: December 7th, 2016
3 months agoupl1 ubiquitin-protein ligase1:
2.07
GRMZM2G080439
Ledesma, A et al. 2023. Genome-wide association analysis of plant architecture traits using doubled haploid lines derived from different cycles of the Iowa Stiff Stalk Synthetic maize population. Frontiers in Plant Science. 14:1294507.     Reference: January 18th, 2024
Gene Product: November 26th, 2019
Gene Model: February 14th, 2018
3 months agopap15 purple acid phosphatase15:
1.06
GRMZM2G136453
Ledesma, A et al. 2023. Genome-wide association analysis of plant architecture traits using doubled haploid lines derived from different cycles of the Iowa Stiff Stalk Synthetic maize population. Frontiers in Plant Science. 14:1294507.     Reference: January 18th, 2024
Gene Product: November 21st, 2018
Gene Model: June 21st, 2017
3 months agogpx3 glycerophosphodiester phosphodiesterase3:
1.06
GRMZM2G064962
Ledesma, A et al. 2023. Genome-wide association analysis of plant architecture traits using doubled haploid lines derived from different cycles of the Iowa Stiff Stalk Synthetic maize population. Frontiers in Plant Science. 14:1294507.     Reference: January 18th, 2024
Gene Product: June 24th, 2020
Gene Model: February 10th, 2020
3 months agosweet11a sugars will eventually be exported transporter11:
1.06
GRMZM2G368827
Ledesma, A et al. 2023. Genome-wide association analysis of plant architecture traits using doubled haploid lines derived from different cycles of the Iowa Stiff Stalk Synthetic maize population. Frontiers in Plant Science. 14:1294507.     Reference: January 18th, 2024
Gene Product: November 4th, 2015
Gene Model: November 3rd, 2015
3 months agopk5 protein kinase5:
 
GRMZM2G144042
Zhong, T et al. 2024. The ZmWAKL–ZmWIK–ZmBLK1–ZmRBOH4 module provides quantitative resistance to gray leaf spot in maize Nature Genetics. :doi: 10.1038/s41588-023-01644-z.     Reference: January 18th, 2024
Gene Product: July 10th, 2019
Gene Model: October 10th, 2020
3 months agoblk1 bik1-like kinase1:
1.11
   Zhong, T et al. 2024. The ZmWAKL–ZmWIK–ZmBLK1–ZmRBOH4 module provides quantitative resistance to gray leaf spot in maize Nature Genetics. :doi: 10.1038/s41588-023-01644-z.     Reference: January 18th, 2024
Gene Product: July 10th, 2019
Variation: September 25th, 2007
3 months agopat4 protein S-acyltransferase4:
1.06
GRMZM2G068657
Ledesma, A et al. 2023. Genome-wide association analysis of plant architecture traits using doubled haploid lines derived from different cycles of the Iowa Stiff Stalk Synthetic maize population. Frontiers in Plant Science. 14:1294507.     Reference: January 18th, 2024
Gene Product: February 26th, 2022
Variation: March 31st, 2005
Gene Model: February 14th, 2019
3 months agoZm00001d026578  :
 
   Li, CX et al. 2024. GWAS analysis reveals candidate genes associated with dense tolerance (ear leaf structure) in maize (Zea mays L.) J Integr Agric. :doi: 10.1016/j.jia.2024.01.023.     Reference: January 17th, 2024
Gene Product: September 1st, 2003
3 months agothx65 Trihelix-transcription factor 65:
 
   Chenglin Zou et al. 2024. Physiological Characteristic Changes and Transcriptome Analysis of Maize (Zea mays L.) Roots under Drought Stress Int J Genomics. 2024:5681174.     Reference: January 17th, 2024
Gene Product: November 9th, 2021
3 months agopdc2 pyruvate decarboxylase2:
8.02
   Li, CX et al. 2024. GWAS analysis reveals candidate genes associated with dense tolerance (ear leaf structure) in maize (Zea mays L.) J Integr Agric. :doi: 10.1016/j.jia.2024.01.023.     Reference: January 17th, 2024
Gene Product: September 1st, 2003
Variation: March 30th, 2007
3 months agoabi48 ABI3-VP1-transcription factor 48:
 
   Chenglin Zou et al. 2024. Physiological Characteristic Changes and Transcriptome Analysis of Maize (Zea mays L.) Roots under Drought Stress Int J Genomics. 2024:5681174.     Reference: January 17th, 2024
Gene Product: January 29th, 2022
3 months agohsftf28 HSF-transcription factor 28:
 
   Chenglin Zou et al. 2024. Physiological Characteristic Changes and Transcriptome Analysis of Maize (Zea mays L.) Roots under Drought Stress Int J Genomics. 2024:5681174.     Reference: January 17th, 2024
Gene Product: May 15th, 2020
3 months agomrpa27 multidrug resistance associated protein27:
 
   Kun Zhang et al. 2024. Root Morphological Identification and Candidate Gene Discovery of Maize Inbred Lines at Seedling Stage J Plant Genet Resour. 25:84-96.     Reference: January 16th, 2024
Gene Product: July 11th, 2019
3 months agomate13 multidrug and toxic compound extrusion13:
 
   Kun Zhang et al. 2024. Root Morphological Identification and Candidate Gene Discovery of Maize Inbred Lines at Seedling Stage J Plant Genet Resour. 25:84-96.     Reference: January 16th, 2024
Gene Product: August 17th, 2015
3 months agohsf1 hairy sheath frayed1:
5.06 - 5.07
GRMZM2G151223
Bocianowski, J 2024. Using NGS Technology and Association Mapping to Identify Candidate Genes Associated with Fusarium Stalk Rot Resistance Genes. 15:106.     Reference: January 16th, 2024
Gene Product: May 20th, 2016
Variation: August 23rd, 2019
Gene Model: August 23rd, 2019
3 months agoarftf27 ARF-transcription factor 27:
 
   Kun Zhang et al. 2024. Root Morphological Identification and Candidate Gene Discovery of Maize Inbred Lines at Seedling Stage J Plant Genet Resour. 25:84-96.     Reference: January 16th, 2024
Gene Product: January 29th, 2022
3 months agogrp3 glycine-rich protein3:
5.03
   Bocianowski, J 2024. Using NGS Technology and Association Mapping to Identify Candidate Genes Associated with Fusarium Stalk Rot Resistance Genes. 15:106.     Reference: January 16th, 2024
Gene Product: September 18th, 2020
Variation: September 1st, 2003
3 months agomate11 multidrug and toxic compound extrusion11:
1.08
GRMZM5G800723
Kun Zhang et al. 2024. Root Morphological Identification and Candidate Gene Discovery of Maize Inbred Lines at Seedling Stage J Plant Genet Resour. 25:84-96.     Reference: January 16th, 2024
Gene Product: August 17th, 2015
Gene Model: March 23rd, 2022
3 months agonas9 nicotianamine synthase9:
 
GRMZM2G124785
Kun Zhang et al. 2024. Root Morphological Identification and Candidate Gene Discovery of Maize Inbred Lines at Seedling Stage J Plant Genet Resour. 25:84-96.     Reference: January 16th, 2024
Gene Product: July 26th, 2013
Gene Model: July 26th, 2013
3 months agocpps3 copalyl diphosphate synthase3:
 
GRMZM2G068808
Kun Zhang et al. 2024. Root Morphological Identification and Candidate Gene Discovery of Maize Inbred Lines at Seedling Stage J Plant Genet Resour. 25:84-96.     Reference: January 16th, 2024
Gene Product: August 16th, 2012
Gene Model: October 27th, 2014
3 months agogpat12 glycerol-3-phosphate acyltransferase12:
 
GRMZM2G166176
Kun Zhang et al. 2024. Root Morphological Identification and Candidate Gene Discovery of Maize Inbred Lines at Seedling Stage J Plant Genet Resour. 25:84-96.     Reference: January 16th, 2024
Gene Product: March 25th, 2019
Gene Model: March 25th, 2019
3 months agomrpa10 multidrug resistance protein associated10:
 
AC234203.1_FG004
Bocianowski, J 2024. Using NGS Technology and Association Mapping to Identify Candidate Genes Associated with Fusarium Stalk Rot Resistance Genes. 15:106.     Reference: January 16th, 2024
Gene Product: July 11th, 2019
Gene Model: July 12th, 2019
3 months agoysl13 yellow stripe-like transporter13:
 
GRMZM2G024196
Kun Zhang et al. 2024. Root Morphological Identification and Candidate Gene Discovery of Maize Inbred Lines at Seedling Stage J Plant Genet Resour. 25:84-96.     Reference: January 16th, 2024
Gene Product: September 1st, 2003
Gene Model: July 8th, 2020
3 months agochls3 chalcone synthase3:
 
GRMZM2G175812
Kun Zhang et al. 2024. Root Morphological Identification and Candidate Gene Discovery of Maize Inbred Lines at Seedling Stage J Plant Genet Resour. 25:84-96.     Reference: January 16th, 2024
Gene Product: September 1st, 2003
Gene Model: December 20th, 2020
3 months agobsk5 brassinosteroid-signaling kinase5:
 
GRMZM2G382104
Bocianowski, J 2024. Using NGS Technology and Association Mapping to Identify Candidate Genes Associated with Fusarium Stalk Rot Resistance Genes. 15:106.     Reference: January 16th, 2024
Gene Product: May 13th, 2014
Gene Model: April 20th, 2021
3 months agochn28 chitinase28:
 
GRMZM2G057766
Sadaf Anwaar et al. 2024. Cloning of maize chitinase 1 gene and its expression in genetically transformed rice to confer resistance against rice blast caused by Pyricularia oryzae PLoS One. 19:e0291939.     Reference: January 16th, 2024
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
3 months agosrt101 sirtuin 101:
10.04
GRMZM2G058573
Kun Zhang et al. 2024. Root Morphological Identification and Candidate Gene Discovery of Maize Inbred Lines at Seedling Stage J Plant Genet Resour. 25:84-96.     Reference: January 16th, 2024
Gene Product: February 12th, 2020
Variation: February 12th, 2020
Gene Model: February 12th, 2020
3 months agocka2 CK2 protein kinase alpha 2:
1.10
   Kun Zhang et al. 2024. Root Morphological Identification and Candidate Gene Discovery of Maize Inbred Lines at Seedling Stage J Plant Genet Resour. 25:84-96.     Reference: January 16th, 2024
Gene Product: December 3rd, 2013
Variation: November 16th, 2012
3 months agobm4 brown midrib4:
9.08
GRMZM2G393334
Maksim Suslov et al. 2024. Real-Time Dynamics of Water Transport in the Roots of Intact Maize Plants in Response to Water Stress: The Role of Aquaporins and the Contribution of Different Water Transport Pathways Cells. 13:154.     Reference: January 15th, 2024
Gene Product: December 17th, 2014
Variation: December 17th, 2014
Gene Model: December 17th, 2014
3 months agorpp9 resistance to Puccinia polysora and Puccinia sorghi9:
10.01
   He, B et al. 2024. Maize Improvement Based on Modern Breeding Strategies: Progress and Perspective ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00427.     Reference: January 15th, 2024
Gene Product: January 17th, 2022
Variation: January 17th, 2022
3 months agosod3 superoxide dismutase3:
6.05
   Wang, YH et al. 2024. Physiological Mechanisms Underlying Tassel Symptom Formation in Maize Infected with Sporisorium reilianum Plants. 13:238.     Reference: January 15th, 2024
Gene Product: October 4th, 2021
Variation: July 10th, 2015
3 months agotip1 tonoplast intrinsic protein1:
10.04
GRMZM2G168439
Maksim Suslov et al. 2024. Real-Time Dynamics of Water Transport in the Roots of Intact Maize Plants in Response to Water Stress: The Role of Aquaporins and the Contribution of Different Water Transport Pathways Cells. 13:154.     Reference: January 15th, 2024
Gene Product: January 27th, 2022
Variation: September 1st, 2003
Gene Model: February 5th, 2015
3 months agopip1a plasma membrane intrinsic protein1:
2.03
GRMZM2G174807
Maksim Suslov et al. 2024. Real-Time Dynamics of Water Transport in the Roots of Intact Maize Plants in Response to Water Stress: The Role of Aquaporins and the Contribution of Different Water Transport Pathways Cells. 13:154.     Reference: January 15th, 2024
Gene Product: January 27th, 2022
Variation: June 6th, 2005
Gene Model: October 29th, 2014
3 months agopip1d plasma membrane intrinsic protein1:
4.06
GRMZM2G392975
Virginia Protto et al. 2024. Primary, seminal and lateral roots of maize show type-specific growth and hydraulic responses to water deficit. Plant Physiol. :doi: 10.1093/plphys/kiad675.     Reference: January 15th, 2024
Gene Product: January 27th, 2022
Variation: October 29th, 2014
Gene Model: October 29th, 2014
3 months agopip1e plasma membrane intrinsic protein1:
4.06
   Maksim Suslov et al. 2024. Real-Time Dynamics of Water Transport in the Roots of Intact Maize Plants in Response to Water Stress: The Role of Aquaporins and the Contribution of Different Water Transport Pathways Cells. 13:154.     Reference: January 15th, 2024
Gene Product: January 27th, 2022
Variation: October 24th, 2014
3 months agopip1f plasma membrane intrinsic protein1:
9.01
GRMZM2G136032
Virginia Protto et al. 2024. Primary, seminal and lateral roots of maize show type-specific growth and hydraulic responses to water deficit. Plant Physiol. :doi: 10.1093/plphys/kiad675.     Reference: January 15th, 2024
Gene Product: January 27th, 2022
Variation: September 1st, 2003
Gene Model: January 25th, 2020
3 months agopip2e plasma membrane intrinsic protein2:
7.02
   Maksim Suslov et al. 2024. Real-Time Dynamics of Water Transport in the Roots of Intact Maize Plants in Response to Water Stress: The Role of Aquaporins and the Contribution of Different Water Transport Pathways Cells. 13:154.     Reference: January 15th, 2024
Gene Product: September 1st, 2003
Variation: June 6th, 2005
3 months agopip2b plasma membrane intrinsic protein2:
2.06
   Maksim Suslov et al. 2024. Real-Time Dynamics of Water Transport in the Roots of Intact Maize Plants in Response to Water Stress: The Role of Aquaporins and the Contribution of Different Water Transport Pathways Cells. 13:154.     Reference: January 15th, 2024
Gene Product: September 1st, 2003
Variation: March 19th, 2013
3 months agopip2c plasma membrane intrinsic protein2:
4.06
   Maksim Suslov et al. 2024. Real-Time Dynamics of Water Transport in the Roots of Intact Maize Plants in Response to Water Stress: The Role of Aquaporins and the Contribution of Different Water Transport Pathways Cells. 13:154.     Reference: January 15th, 2024
Gene Product: September 1st, 2003
Variation: March 25th, 2013
3 months agopip2d plasma membrane intrinsic protein2:
5.05
   Maksim Suslov et al. 2024. Real-Time Dynamics of Water Transport in the Roots of Intact Maize Plants in Response to Water Stress: The Role of Aquaporins and the Contribution of Different Water Transport Pathways Cells. 13:154.     Reference: January 15th, 2024
Gene Product: September 1st, 2003
Variation: March 7th, 2007
3 months agotip2a tonoplast intrinsic protein2:
4.06
GRMZM2G027098
Maksim Suslov et al. 2024. Real-Time Dynamics of Water Transport in the Roots of Intact Maize Plants in Response to Water Stress: The Role of Aquaporins and the Contribution of Different Water Transport Pathways Cells. 13:154.     Reference: January 15th, 2024
Gene Product: January 27th, 2022
Variation: September 1st, 2003
Gene Model: February 5th, 2015
3 months agopip2g plasma membrane intrinsic protein2:
 
   Virginia Protto et al. 2024. Primary, seminal and lateral roots of maize show type-specific growth and hydraulic responses to water deficit. Plant Physiol. :doi: 10.1093/plphys/kiad675.     Reference: January 15th, 2024
Gene Product: September 1st, 2003
Variation: September 1st, 2003
3 months agouce4 ubiquitin conjugating enzyme4:
2.01
   Maksim Suslov et al. 2024. Real-Time Dynamics of Water Transport in the Roots of Intact Maize Plants in Response to Water Stress: The Role of Aquaporins and the Contribution of Different Water Transport Pathways Cells. 13:154.     Reference: January 15th, 2024
Gene Product: December 19th, 2019
Variation: July 29th, 2004
3 months agozar8 Zea mays ARGOS8:
 
GRMZM2G354338
He, B et al. 2024. Maize Improvement Based on Modern Breeding Strategies: Progress and Perspective ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00427.     Reference: January 15th, 2024
Gene Product: August 3rd, 2015
Gene Model: August 1st, 2015
3 months agomyb72 MYB-transcription factor 72:
2.04
   Wu, HY et al. 2023. Identification and characterization of waterlogging-responsive genes in the parental line of maize hybrid An’nong 876 Genet Mol Biol. 46:e20230026.     Reference: January 12th, 2024
Variation: September 25th, 2007
3 months agomybr96 MYB-related-transcription factor 96:
5.03
   Wu, HY et al. 2023. Identification and characterization of waterlogging-responsive genes in the parental line of maize hybrid An’nong 876 Genet Mol Biol. 46:e20230026.     Reference: January 12th, 2024
Variation: September 25th, 2007
3 months agocol4 C2C2-CO-like-transcription factor 4:
 
   Wu, HY et al. 2023. Identification and characterization of waterlogging-responsive genes in the parental line of maize hybrid An’nong 876 Genet Mol Biol. 46:e20230026.     Reference: January 12th, 2024
Gene Product: June 18th, 2018
3 months agopap25 purple acid phosphatase25:
 
   Wu, HY et al. 2023. Identification and characterization of waterlogging-responsive genes in the parental line of maize hybrid An’nong 876 Genet Mol Biol. 46:e20230026.     Reference: January 12th, 2024
Gene Product: November 21st, 2018
3 months agopap28 purple acid phosphatase28:
 
   Wu, HY et al. 2023. Identification and characterization of waterlogging-responsive genes in the parental line of maize hybrid An’nong 876 Genet Mol Biol. 46:e20230026.     Reference: January 12th, 2024
Gene Product: November 21st, 2018
3 months agohsftf25 HSF-transcription factor 25:
 
   Wu, HY et al. 2023. Identification and characterization of waterlogging-responsive genes in the parental line of maize hybrid An’nong 876 Genet Mol Biol. 46:e20230026.     Reference: January 12th, 2024
Gene Product: May 15th, 2020
3 months agonlp17 NLP-transcription factor 17:
 
   Wu, HY et al. 2023. Identification and characterization of waterlogging-responsive genes in the parental line of maize hybrid An’nong 876 Genet Mol Biol. 46:e20230026.     Reference: January 12th, 2024
Gene Product: December 3rd, 2019
3 months agozhd6 ZF-HD-transcription factor 6:
 
   Wu, HY et al. 2023. Identification and characterization of waterlogging-responsive genes in the parental line of maize hybrid An’nong 876 Genet Mol Biol. 46:e20230026.     Reference: January 12th, 2024
Gene Product: August 24th, 2022
3 months agobhlh96 bHLH-transcription factor 96:
 
   Wu, HY et al. 2023. Identification and characterization of waterlogging-responsive genes in the parental line of maize hybrid An’nong 876 Genet Mol Biol. 46:e20230026.   AT3G26744 (TAIR) Reference: January 12th, 2024
Gene Product: September 14th, 2016
3 months agodcl4 dicer-like4:
1.09
GRMZM2G024466
Eliandro Espindula et al. 2024. Maize—Azospirillum brasilense interaction: accessing maize’s miRNA expression under the effect of an inhibitor of indole-3-acetic acid production by the plant Braz J Microbiol. :doi: 10.1007/s42770-023-01236-3.     Reference: January 12th, 2024
Gene Product: September 5th, 2006
Variation: July 27th, 2015
Gene Model: July 27th, 2015
3 months agocyp26 cytochrome P-450 26:
 
GRMZM2G087875
Wu, HY et al. 2023. Identification and characterization of waterlogging-responsive genes in the parental line of maize hybrid An’nong 876 Genet Mol Biol. 46:e20230026.     Reference: January 12th, 2024
Gene Product: December 30th, 2022
Gene Model: November 30th, 2018
3 months agonpf10 nitrate transporter/peptide transporter family10:
 
GRMZM2G044851
Wu, HY et al. 2023. Identification and characterization of waterlogging-responsive genes in the parental line of maize hybrid An’nong 876 Genet Mol Biol. 46:e20230026.     Reference: January 12th, 2024
Gene Product: September 1st, 2003
Gene Model: May 21st, 2019
3 months agolaz6 lazarus ortholog6:
 
GRMZM2G071688
Wu, HY et al. 2023. Identification and characterization of waterlogging-responsive genes in the parental line of maize hybrid An’nong 876 Genet Mol Biol. 46:e20230026.     Reference: January 12th, 2024
Gene Product: July 27th, 2019
Gene Model: July 27th, 2019
3 months agonlp15 NLP-transcription factor 15:
5.03
GRMZM2G042278
Wu, HY et al. 2023. Identification and characterization of waterlogging-responsive genes in the parental line of maize hybrid An’nong 876 Genet Mol Biol. 46:e20230026.     Reference: January 12th, 2024
Gene Product: December 3rd, 2019
Variation: December 3rd, 2019
Gene Model: October 7th, 2017
3 months agofae2 fatty acid elongase2:
9.03
   Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Variation: January 9th, 2019
3 months agoad1 adherent1:
1.08
GRMZM2G167438
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Gene Product: November 1st, 2018
Variation: February 13th, 2020
Gene Model: February 13th, 2020
3 months agogl4 glossy4:
4.06
GRMZM2G003501
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Gene Product: November 1st, 2018
Variation: November 1st, 2018
Gene Model: October 31st, 2018
3 months agokcs15 3-ketoacyl-CoA synthase15:
1.08
GRMZM2G162508
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Gene Product: November 1st, 2018
Variation: November 4th, 2016
Gene Model: November 4th, 2016
3 months agokcs31 3-ketoacyl-CoA synthase31:
5.03
GRMZM2G137694
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Gene Product: November 1st, 2018
Variation: September 1st, 2003
Gene Model: June 23rd, 2018
3 months agokcs35 3-ketoacyl-CoA synthase35:
3.09
GRMZM2G409312
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Gene Product: November 1st, 2018
Gene Model: April 10th, 2020
3 months agokcs19 3-ketoacyl-CoA synthase19:
 
GRMZM2G062718
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Gene Product: November 1st, 2018
Gene Model: February 13th, 2020
3 months agokcs9 3-ketoacyl-CoA synthase9:
 
GRMZM2G104626
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Gene Product: November 1st, 2018
Gene Model: February 13th, 2020
3 months agokcs11 3-ketoacyl-CoA synthase11:
 
GRMZM2G149636
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Gene Product: November 1st, 2018
Gene Model: February 13th, 2020
3 months agokcs18 3-ketoacyl-CoA synthase18:
 
GRMZM2G156620
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Gene Product: November 1st, 2018
Gene Model: February 13th, 2020
3 months agokcs16 3-ketoacyl-CoA synthase16:
 
GRMZM2G160417
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Gene Product: November 1st, 2018
Gene Model: February 13th, 2020
3 months agokcs28 3-ketoacyl-CoA synthase28:
 
GRMZM2G164974
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Gene Product: November 1st, 2018
Gene Model: February 13th, 2020
3 months agokcs24 3-ketoacyl-CoA synthase24:
 
GRMZM5G894016
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Gene Product: November 1st, 2018
Variation: January 11th, 2024
Gene Model: February 13th, 2020
3 months agokcs36 3-ketoacyl-CoA synthase36:
 
AC233893.1_FG003
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Gene Product: November 1st, 2018
Gene Model: May 19th, 2020
3 months agokcs34 3-ketoacyl-CoA synthase34:
 
GRMZM2G060481
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Gene Product: November 1st, 2018
Gene Model: May 19th, 2020
3 months agokcs29 3-ketoacyl-CoA synthase29:
 
GRMZM2G569948
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Gene Product: November 1st, 2018
Gene Model: March 23rd, 2022
3 months agokcs30 3-ketoacyl-CoA synthase30:
 
GRMZM2G031790
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.   AT1G04220 (TAIR) Reference: January 11th, 2024
Gene Product: November 1st, 2018
Gene Model: March 23rd, 2022
3 months agokcs33 3-ketoacyl-CoA synthase33:
 
GRMZM2G168304
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Gene Product: November 1st, 2018
Gene Model: March 23rd, 2022
3 months agokcs37 3-ketoacyl-CoA synthase37:
 
GRMZM2G032095
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Gene Product: November 1st, 2018
Variation: January 11th, 2024
Gene Model: March 23rd, 2022
3 months agokcs38 3-ketoacyl-CoA synthase38:
 
GRMZM2G020740
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Gene Product: November 1st, 2018
Gene Model: March 23rd, 2022
3 months agokcs39 3-ketoacyl-CoA synthase39:
 
GRMZM2G003138
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Gene Product: November 1st, 2018
Gene Model: March 23rd, 2022
3 months agokcs40 3-ketoacyl-CoA synthase40:
 
GRMZM2G151476
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Gene Product: November 1st, 2018
Gene Model: March 23rd, 2022
3 months agokcs1 3-ketoacyl-CoA synthase1:
8.03
GRMZM2G393897
Stenback, KE et al. 2022. Modifying the yeast very long chain fatty acid biosynthetic machinery by the expression of plant 3-ketoacyl CoA synthase isozymes. Sci. Rep.. 12:13235.     Reference: January 11th, 2024
Gene Product: November 1st, 2018
Gene Model: March 12th, 2019
3 months agogl15 glossy15:
9.03
   Poethig, RS et al. 2024. Temporal regulation of vegetative phase change in plants. Dev Cell. 59:4-19.     Reference: January 10th, 2024
Variation: October 5th, 2012
3 months agotp1 teopod1:
7.03
   Poethig, RS et al. 2024. Temporal regulation of vegetative phase change in plants. Dev Cell. 59:4-19.     Reference: January 10th, 2024
Variation: October 24th, 2005
3 months agotp2 teopod2:
10.04 - 10.05
   Poethig, RS et al. 2024. Temporal regulation of vegetative phase change in plants. Dev Cell. 59:4-19.     Reference: January 10th, 2024
Variation: October 24th, 2005
3 months agots4 tasselseed4:
3.05 - 3.05
   Poethig, RS et al. 2024. Temporal regulation of vegetative phase change in plants. Dev Cell. 59:4-19.     Reference: January 10th, 2024
Gene Product: June 17th, 2016
Variation: October 25th, 2023
3 months agowrky111 WRKY-transcription factor 111:
 
   Niharika Sharma et al. 2024. Molecular Basis and Engineering Strategies for Transcription Factor-Mediated Reproductive-Stage Heat Tolerance in Crop Plants Agronomy. 14:159.     Reference: January 10th, 2024
Gene Product: July 24th, 2017
Variation: July 24th, 2017
4 months agotcptf24 TCP-transcription factor 24:
 
   Xuanlong Lv et al. 2024. Heat stress and sexual reproduction in maize: unveiling the most pivotal factors and the biggest opportunities. J Exp Bot. :doi: 10.1093/jxb/erad506.     Reference: January 8th, 2024
Gene Product: September 27th, 2019
4 months agotcptf7 TCP-transcription factor 7:
 
   Xuanlong Lv et al. 2024. Heat stress and sexual reproduction in maize: unveiling the most pivotal factors and the biggest opportunities. J Exp Bot. :doi: 10.1093/jxb/erad506.     Reference: January 8th, 2024
Gene Product: September 27th, 2019
4 months agotrx2 thioredoxin2:
 
GRMZM2G082886
Xuanlong Lv et al. 2024. Heat stress and sexual reproduction in maize: unveiling the most pivotal factors and the biggest opportunities. J Exp Bot. :doi: 10.1093/jxb/erad506.     Reference: January 8th, 2024
Gene Product: August 31st, 2020
Gene Model: August 31st, 2020
4 months agoea1 egg apparatus1:
7.04
   Xuanlong Lv et al. 2024. Heat stress and sexual reproduction in maize: unveiling the most pivotal factors and the biggest opportunities. J Exp Bot. :doi: 10.1093/jxb/erad506.     Reference: January 8th, 2024
Gene Product: December 4th, 2021
4 months agoaldh31 aldehyde dehydrogenase31:
 
   Zhang, SW et al. 2024. Genome-Wide Characterization of the Aldehyde Dehydrogenase Gene Superfamily in Maize and Its Potential Role in Anther Development ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00430.     Reference: January 5th, 2024
Gene Product: June 28th, 2005
4 months agoaldh35 aldehyde dehydrogenase35:
 
   Zhang, SW et al. 2024. Genome-Wide Characterization of the Aldehyde Dehydrogenase Gene Superfamily in Maize and Its Potential Role in Anther Development ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00430.     Reference: January 5th, 2024
Gene Product: June 28th, 2005
4 months agoaldh32 aldehyde dehydrogenase32:
 
   Zhang, SW et al. 2024. Genome-Wide Characterization of the Aldehyde Dehydrogenase Gene Superfamily in Maize and Its Potential Role in Anther Development ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00430.     Reference: January 5th, 2024
Gene Product: January 5th, 2024
4 months agoaldh22 aldehyde dehydrogenase22:
7.06
GRMZM2G135341
Zhang, SW et al. 2024. Genome-Wide Characterization of the Aldehyde Dehydrogenase Gene Superfamily in Maize and Its Potential Role in Anther Development ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00430.     Reference: January 5th, 2024
Gene Product: January 5th, 2024
Variation: April 11th, 2017
Gene Model: April 11th, 2017
4 months agogpn1 glyceraldehyde-3-phosphate deHaseN1:
4.05
GRMZM2G035268
Zhang, SW et al. 2024. Genome-Wide Characterization of the Aldehyde Dehydrogenase Gene Superfamily in Maize and Its Potential Role in Anther Development ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00430.     Reference: January 5th, 2024
Gene Product: September 1st, 2003
Variation: June 8th, 2010
Gene Model: July 27th, 2016
4 months agomis1 putative aldehyde dehydrogenase MIS1:
 
GRMZM2G090087
Zhang, SW et al. 2024. Genome-Wide Characterization of the Aldehyde Dehydrogenase Gene Superfamily in Maize and Its Potential Role in Anther Development ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00430.     Reference: January 5th, 2024
Gene Product: January 5th, 2024
Variation: January 15th, 2011
Gene Model: January 22nd, 2016
4 months agoaldh8 aldehyde dehydrogenase8:
 
GRMZM2G325115
Zhang, SW et al. 2024. Genome-Wide Characterization of the Aldehyde Dehydrogenase Gene Superfamily in Maize and Its Potential Role in Anther Development ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00430.     Reference: January 5th, 2024
Gene Product: January 5th, 2024
Gene Model: October 2nd, 2019
4 months agoaldh14 aldehyde dehydrogenase14:
 
GRMZM2G013214
Zhang, SW et al. 2024. Genome-Wide Characterization of the Aldehyde Dehydrogenase Gene Superfamily in Maize and Its Potential Role in Anther Development ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00430.     Reference: January 5th, 2024
Gene Product: January 5th, 2024
Gene Model: October 2nd, 2019
4 months agoaldh15 aldehyde dehydrogenase15:
 
GRMZM2G119482
Zhang, SW et al. 2024. Genome-Wide Characterization of the Aldehyde Dehydrogenase Gene Superfamily in Maize and Its Potential Role in Anther Development ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00430.     Reference: January 5th, 2024
Gene Product: January 5th, 2024
Gene Model: October 2nd, 2019
4 months agoaldh16 aldehyde dehydrogenase16:
 
GRMZM2G128114
Zhang, SW et al. 2024. Genome-Wide Characterization of the Aldehyde Dehydrogenase Gene Superfamily in Maize and Its Potential Role in Anther Development ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00430.     Reference: January 5th, 2024
Gene Product: January 5th, 2024
Gene Model: October 2nd, 2019
4 months agoaldh19 aldehyde dehydrogenase19:
 
GRMZM2G365440
Zhang, SW et al. 2024. Genome-Wide Characterization of the Aldehyde Dehydrogenase Gene Superfamily in Maize and Its Potential Role in Anther Development ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00430.     Reference: January 5th, 2024
Gene Product: January 5th, 2024
Gene Model: October 2nd, 2019
4 months agoaldh25 aldehyde dehydrogenase25:
 
GRMZM2G103546
Zhang, SW et al. 2024. Genome-Wide Characterization of the Aldehyde Dehydrogenase Gene Superfamily in Maize and Its Potential Role in Anther Development ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00430.     Reference: January 5th, 2024
Gene Product: January 5th, 2024
Gene Model: October 2nd, 2019
4 months agoaldh28 aldehyde dehydrogenase28:
 
GRMZM2G354187
Zhang, SW et al. 2024. Genome-Wide Characterization of the Aldehyde Dehydrogenase Gene Superfamily in Maize and Its Potential Role in Anther Development ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00430.     Reference: January 5th, 2024
Gene Product: January 5th, 2024
Gene Model: October 2nd, 2019
4 months agoaldh10 aldehyde dehydrogenase10:
 
GRMZM5G811837
Zhou, ML et al. 2012. Funct Integr Genomics 12:683-691     Reference: October 2nd, 2019
Gene Product: January 5th, 2024
Gene Model: October 2nd, 2019
4 months agoaldh12 aldehyde dehydrogenase12:
 
GRMZM5G820733
Zhang, SW et al. 2024. Genome-Wide Characterization of the Aldehyde Dehydrogenase Gene Superfamily in Maize and Its Potential Role in Anther Development ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00430.     Reference: January 5th, 2024
Gene Product: January 5th, 2024
Gene Model: October 2nd, 2019
4 months agoaldh20 aldehyde dehydrogenase20:
 
GRMZM2G130440
Zhang, SW et al. 2024. Genome-Wide Characterization of the Aldehyde Dehydrogenase Gene Superfamily in Maize and Its Potential Role in Anther Development ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00430.     Reference: January 5th, 2024
Gene Product: January 5th, 2024
Gene Model: October 2nd, 2019
4 months agoaldh21 aldehyde dehydrogenase21:
7.02
GRMZM2G108076
Zhang, SW et al. 2024. Genome-Wide Characterization of the Aldehyde Dehydrogenase Gene Superfamily in Maize and Its Potential Role in Anther Development ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00430.     Reference: January 5th, 2024
Gene Product: January 5th, 2024
Gene Model: October 2nd, 2019
4 months agoLOC100383797  :
 
   Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: February 1st, 2023
4 months agoflr10 feronia-like receptor10:
 
   Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: July 10th, 2019
4 months agoflr7 feronia-like receptor7:
 
   Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: July 10th, 2019
4 months agoZm00001d034240  :
 
   Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: February 1st, 2023
4 months agoflr4 feronia-like receptor4:
 
   Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: July 10th, 2019
4 months agoflr5 feronia-like receptor5:
 
   Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: July 10th, 2019
4 months agoZm00001d015971  :
 
   Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: February 1st, 2023
4 months agoZm00001d033652  :
 
   Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: February 1st, 2023
4 months agoZm00001d022066  :
 
   Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: February 1st, 2023
4 months agoZm00001d048822  :
 
   Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: February 1st, 2023
4 months agoZm00001d045013  :
 
   Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: February 1st, 2023
4 months agoZm00001d013162  :
 
   Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: February 1st, 2023
4 months agoZm00001d006420  :
 
   Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: February 1st, 2023
4 months agoZm00001d014971  :
 
   Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: February 1st, 2023
4 months agoZm00001d014063  :
 
   Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: February 1st, 2023
4 months agoZm00001d015891  :
 
   Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: February 1st, 2023
4 months agopza02462  :
5.01
   Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: February 1st, 2023
Variation: September 25th, 2007
4 months agoer3 erecta-like3:
9.03
   Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: July 10th, 2019
4 months agobnlg2271  :
7.03
GRMZM2G313643
Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: February 1st, 2023
Variation: September 1st, 2003
Gene Model: September 10th, 2018
4 months agoeno1 enolase1:
9.02
   Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: September 1st, 2003
Variation: September 25th, 2007
4 months agoumc83a  :
1.08
GRMZM2G001812
Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: February 1st, 2023
Gene Model: January 31st, 2017
4 months agommp150  :
6.05
GRMZM2G095588
Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: February 1st, 2023
Gene Model: August 29th, 2018
4 months agohdt103 histone deacetylase103:
6.07
GRMZM2G159032
Wang, XD et al. 2024. ZmHDT103 Negatively Regulates Drought Stress Tolerance in Maize Seedlings Agronomy. 14:134.     Reference: January 4th, 2024
Gene Product: February 12th, 2020
Variation: January 4th, 2024
Gene Model: July 27th, 2016
4 months agostk2 serine-threonine kinase2:
2.04
GRMZM2G179268
Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: May 13th, 2014
Gene Model: January 9th, 2017
4 months agobrl2 bri1-like receptor kinase2:
 
GRMZM2G002515
Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.   AT2G01950 (TAIR)
LOC_Os10g02500 (MSU/TIGR)
Reference: January 4th, 2024
Gene Product: February 1st, 2023
Variation: July 17th, 2015
Gene Model: July 16th, 2015
4 months agoflr6 feronia-like receptor6:
 
GRMZM2G180071
Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: July 10th, 2019
Gene Model: February 8th, 2019
4 months agoer1 erecta-like1:
 
GRMZM2G463904
Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: July 10th, 2019
Gene Model: July 10th, 2019
4 months agoflr3 feronia-like receptor3:
 
GRMZM2G042055
Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.   AT3G51550 (TAIR) Reference: January 4th, 2024
Gene Product: July 10th, 2019
Gene Model: March 17th, 2020
4 months agorlk7 receptor-like protein kinase7:
 
GRMZM2G149051
Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.   LOC_Os09g30190 (MSU/TIGR) Reference: January 4th, 2024
Gene Product: July 10th, 2019
Gene Model: November 11th, 2020
4 months agorlk2 receptor-like protein kinase2:
 
GRMZM2G039431
Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: July 10th, 2019
Gene Model: November 11th, 2020
4 months agorlk5 receptor-like protein kinase5:
 
AC233861.1_FG001
Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: July 10th, 2019
Gene Model: November 11th, 2020
4 months agoZm00001d049588  :
 
GRMZM2G039934
Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: February 1st, 2023
Gene Model: February 22nd, 2021
4 months agoflr2 feronia-like receptor2:
 
GRMZM2G100288
Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.   AT3G51550 (TAIR) Reference: January 4th, 2024
Gene Product: July 10th, 2019
Gene Model: May 21st, 2022
4 months agoer2 erecta-like2:
6.05
GRMZM5G809695
Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: July 10th, 2019
Gene Model: July 10th, 2019
4 months agoflr9 feronia-like receptor9:
9.03
   Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: July 10th, 2019
4 months agostk1 serine threonine kinase1:
9.02
   Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: May 13th, 2014
Variation: October 10th, 2018
4 months agoeno2 enolase2:
1.05
GRMZM2G048371
Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: September 1st, 2003
Variation: May 1st, 2014
Gene Model: September 5th, 2012
4 months agoflr12 feronia-like receptor12:
6.05
GRMZM5G897958
Zhu, L et al. 2024. Receptor-like kinases and their signaling cascades for plant male fertility: loyal messengers New Phytol. :doi: 10.1111/nph.19527.     Reference: January 4th, 2024
Gene Product: July 10th, 2019
Gene Model: January 11th, 2020
4 months agoa2 anthocyaninless2:
5.03
   Chen, WW et al. 2024. Genome-wide association study of kernel colour traits and mining of elite alleles from the major loci in maize BMC Plant Biology. 24:25.     Reference: January 3rd, 2024
Gene Product: June 7th, 2012
Variation: September 1st, 2003
4 months agochi3 chalcone flavanone isomerase3:
5.00
GRMZM2G119186
Chen, WW et al. 2024. Genome-wide association study of kernel colour traits and mining of elite alleles from the major loci in maize BMC Plant Biology. 24:25.     Reference: January 3rd, 2024
Gene Product: January 26th, 2021
Variation: May 13th, 2012
Gene Model: May 9th, 2012
4 months agochi1 chalcone flavanone isomerase1:
1.11
GRMZM2G155329
Chen, WW et al. 2024. Genome-wide association study of kernel colour traits and mining of elite alleles from the major loci in maize BMC Plant Biology. 24:25.     Reference: January 3rd, 2024
Gene Product: January 26th, 2021
Variation: October 10th, 2012
Gene Model: May 9th, 2012
4 months agocgt1 C-glucosyl transferase1:
 
GRMZM2G162783
Chen, WW et al. 2024. Genome-wide association study of kernel colour traits and mining of elite alleles from the major loci in maize BMC Plant Biology. 24:25.     Reference: January 3rd, 2024
Gene Product: September 24th, 2018
Gene Model: September 24th, 2018
4 months agoprp25 pathogenesis-related protein25:
 
   Bangtai Wang et al. 2024. Genome-wide association study for stalk lodging resistance related traits in maize (Zea mays L.) BMC Genomics. 25:19.     Reference: January 2nd, 2024
Gene Product: December 12th, 2022
4 months agorpn10 regulatory particle non-ATPase 10:
 
   Zhang, L et al. 2024. Genetic variation in ZmKW1 contributes to kernel weight and size in dent corn and popcorn. Plant Biotechnol J.   AT4G38630 (TAIR) Reference: January 2nd, 2024
Variation: December 22nd, 2022
4 months agoplt30 phospholipid transfer protein30:
 
   Zhang, L et al. 2024. Genetic variation in ZmKW1 contributes to kernel weight and size in dent corn and popcorn. Plant Biotechnol J.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
4 months agoZm00001eb057120  :
 
   Zhang, H et al. 2024. Reveal the kernel dehydration mechanisms in maize based on proteomic and metabolomic analysis. BMC Plant Biology. 24:15.     Reference: January 2nd, 2024
Gene Product: January 31st, 2019
4 months agoZm00001d019358  :
 
   Zainab M Almutairi 2022. In Silico Identification and Characterization of B12D Family Proteins in Viridiplantae. Evol Bioinform. 18:11769343221106795.     Reference: January 2nd, 2024
Gene Product: January 2nd, 2024
4 months agoZm00001d005500  :
 
   Zainab M Almutairi 2022. In Silico Identification and Characterization of B12D Family Proteins in Viridiplantae. Evol Bioinform. 18:11769343221106795.     Reference: January 2nd, 2024
Gene Product: January 2nd, 2024
4 months agoysl21 yellow stripe-like transporter21:
 
   Song, ZZ et al. 2024. Identification and characterization of yellow stripe-like genes in maize suggest their roles in the uptake and transport of zinc and iron. BMC Plant Biology. 24:3.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
4 months agoysl22 yellow stripe-like transporter22:
 
   Song, ZZ et al. 2024. Identification and characterization of yellow stripe-like genes in maize suggest their roles in the uptake and transport of zinc and iron. BMC Plant Biology. 24:3.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
4 months agoysl23 yellow stripe-like transporter23:
 
   Song, ZZ et al. 2024. Identification and characterization of yellow stripe-like genes in maize suggest their roles in the uptake and transport of zinc and iron. BMC Plant Biology. 24:3.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
4 months agoysl19 yellow stripe-like transporter19:
 
   Song, ZZ et al. 2024. Identification and characterization of yellow stripe-like genes in maize suggest their roles in the uptake and transport of zinc and iron. BMC Plant Biology. 24:3.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
4 months agomyb63 MYB-transcription factor 63:
4.08
   Bangtai Wang et al. 2024. Genome-wide association study for stalk lodging resistance related traits in maize (Zea mays L.) BMC Genomics. 25:19.     Reference: January 2nd, 2024
Gene Product: July 25th, 2017
Variation: August 24th, 2017
4 months agoIDP4955  :
10.06
GRMZM2G402027
Liu, HF et al. 2024. ZmC2H2-149 negatively regulates drought tolerance by repressing ZmHSD1 in maize. Plant Cell Environ. :doi: 10.1111/pce.14798.     Reference: January 2nd, 2024
Variation: January 2nd, 2024
Gene Model: July 21st, 2021
4 months agofl3 floury3:
8.03
GRMZM2G006585
Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Gene Product: September 7th, 2017
Variation: September 7th, 2017
Gene Model: September 7th, 2017
4 months agoal9 aleurone9:
8.08
GRMZM2G091054
Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Variation: October 14th, 2009
Gene Model: January 14th, 2016
4 months agoesr6 embryo surrounding region6:
4.09
GRMZM2G048353
Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Gene Product: December 12th, 2022
Variation: January 5th, 2016
Gene Model: January 5th, 2016
4 months agomc1 mucronate1:
2.06
GRMZM2G518638
Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Gene Product: September 17th, 2010
Variation: September 16th, 2010
Gene Model: July 8th, 2013
4 months agomch1 maize CRY1 homolog1:
 
GRMZM5G805627
Zhang, H et al. 2024. Reveal the kernel dehydration mechanisms in maize based on proteomic and metabolomic analysis. BMC Plant Biology. 24:15.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
Variation: October 14th, 2010
Gene Model: August 31st, 2018
4 months agomn1 miniature seed1:
2.04
   Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Gene Product: June 12th, 2018
Variation: April 13th, 2015
4 months agoms8 male sterile8:
8.06
GRMZM2G119265
Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Gene Product: July 29th, 2013
Variation: July 29th, 2013
Gene Model: July 29th, 2013
4 months agoo11 opaque endosperm11:
 
GRMZM2G147685
Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.   AT1G49770 (TAIR) Reference: January 2nd, 2024
Gene Product: September 14th, 2016
Variation: February 8th, 2018
Gene Model: February 8th, 2018
4 months agosh4 shrunken4:
5.05
GRMZM2G135291
Song, ZZ et al. 2024. Identification and characterization of yellow stripe-like genes in maize suggest their roles in the uptake and transport of zinc and iron. BMC Plant Biology. 24:3.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
Variation: November 29th, 2023
Gene Model: May 8th, 2021
4 months agoys1 yellow stripe1:
5.05 - 5.06
   Song, ZZ et al. 2024. Identification and characterization of yellow stripe-like genes in maize suggest their roles in the uptake and transport of zinc and iron. BMC Plant Biology. 24:3.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
Variation: March 9th, 2018
4 months agoesr1 embryo surrounding region1:
1.02
GRMZM2G046086
Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
Variation: June 12th, 2012
Gene Model: January 5th, 2016
4 months agoesr2 embryo surrounding region2:
1.02
GRMZM2G315601
Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
Variation: June 12th, 2012
Gene Model: January 5th, 2016
4 months agosam2 S-adenosyl methionine decarboxylase2:
2.04
   Bangtai Wang et al. 2024. Genome-wide association study for stalk lodging resistance related traits in maize (Zea mays L.) BMC Genomics. 25:19.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
Variation: July 13th, 2013
4 months agoarftf7 ARF-transcription factor 7:
 
   Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Gene Product: January 29th, 2022
4 months agofarl1 FAR1-like-transcription factor 1:
 
   Huaijun Tang et al. 2024. Genome-Wide Identification and Expression Analyses of the FAR1/FHY3 Gene Family Provide Insight into Inflorescence Development in Maize Curr Issues Mol Biol. 46:430-449.     Reference: January 2nd, 2024
Gene Product: June 28th, 2019
4 months agofarl10 FAR1-like-transcription factor 10:
 
   Huaijun Tang et al. 2024. Genome-Wide Identification and Expression Analyses of the FAR1/FHY3 Gene Family Provide Insight into Inflorescence Development in Maize Curr Issues Mol Biol. 46:430-449.     Reference: January 2nd, 2024
Gene Product: June 28th, 2019
4 months agofarl12 FAR1-like-transcription factor 12:
 
   Huaijun Tang et al. 2024. Genome-Wide Identification and Expression Analyses of the FAR1/FHY3 Gene Family Provide Insight into Inflorescence Development in Maize Curr Issues Mol Biol. 46:430-449.     Reference: January 2nd, 2024
Gene Product: June 28th, 2019
4 months agofarl13 FAR1-like-transcription factor 13:
 
   Huaijun Tang et al. 2024. Genome-Wide Identification and Expression Analyses of the FAR1/FHY3 Gene Family Provide Insight into Inflorescence Development in Maize Curr Issues Mol Biol. 46:430-449.     Reference: January 2nd, 2024
Gene Product: June 28th, 2019
4 months agofarl14 FAR1-like-transcription factor 14:
 
   Huaijun Tang et al. 2024. Genome-Wide Identification and Expression Analyses of the FAR1/FHY3 Gene Family Provide Insight into Inflorescence Development in Maize Curr Issues Mol Biol. 46:430-449.     Reference: January 2nd, 2024
Gene Product: June 28th, 2019
4 months agofarl15 FAR1-like-transcription factor 15:
 
   Huaijun Tang et al. 2024. Genome-Wide Identification and Expression Analyses of the FAR1/FHY3 Gene Family Provide Insight into Inflorescence Development in Maize Curr Issues Mol Biol. 46:430-449.     Reference: January 2nd, 2024
Gene Product: June 28th, 2019
4 months agofarl2 FAR1-like-transcription factor 2:
 
   Huaijun Tang et al. 2024. Genome-Wide Identification and Expression Analyses of the FAR1/FHY3 Gene Family Provide Insight into Inflorescence Development in Maize Curr Issues Mol Biol. 46:430-449.     Reference: January 2nd, 2024
Gene Product: June 28th, 2019
4 months agofarl3 FAR1-like-transcription factor 3:
 
   Huaijun Tang et al. 2024. Genome-Wide Identification and Expression Analyses of the FAR1/FHY3 Gene Family Provide Insight into Inflorescence Development in Maize Curr Issues Mol Biol. 46:430-449.     Reference: January 2nd, 2024
Gene Product: June 28th, 2019
4 months agofarl5 FAR1-like-transcription factor 5:
 
   Huaijun Tang et al. 2024. Genome-Wide Identification and Expression Analyses of the FAR1/FHY3 Gene Family Provide Insight into Inflorescence Development in Maize Curr Issues Mol Biol. 46:430-449.     Reference: January 2nd, 2024
Gene Product: June 28th, 2019
4 months agofarl6 FAR1-like-transcription factor 6:
 
   Huaijun Tang et al. 2024. Genome-Wide Identification and Expression Analyses of the FAR1/FHY3 Gene Family Provide Insight into Inflorescence Development in Maize Curr Issues Mol Biol. 46:430-449.     Reference: January 2nd, 2024
Gene Product: June 28th, 2019
4 months agofarl7 FAR1-like-transcription factor 7:
 
   Huaijun Tang et al. 2024. Genome-Wide Identification and Expression Analyses of the FAR1/FHY3 Gene Family Provide Insight into Inflorescence Development in Maize Curr Issues Mol Biol. 46:430-449.     Reference: January 2nd, 2024
Gene Product: June 28th, 2019
4 months agofarl8 FAR1-like-transcription factor 8:
 
   Huaijun Tang et al. 2024. Genome-Wide Identification and Expression Analyses of the FAR1/FHY3 Gene Family Provide Insight into Inflorescence Development in Maize Curr Issues Mol Biol. 46:430-449.     Reference: January 2nd, 2024
Gene Product: June 28th, 2019
4 months agofarl9 FAR1-like-transcription factor 9:
 
   Huaijun Tang et al. 2024. Genome-Wide Identification and Expression Analyses of the FAR1/FHY3 Gene Family Provide Insight into Inflorescence Development in Maize Curr Issues Mol Biol. 46:430-449.     Reference: January 2nd, 2024
Gene Product: June 28th, 2019
4 months agowrky15 WRKY-transcription factor 15:
 
   Gu, L et al. 2023. ZmB12D, a target of transcription factor ZmWRKY70, enhances the tolerance of Arabidopsis to submergence Plant Physiol Biochem. 206:108322.     Reference: January 2nd, 2024
Gene Product: July 24th, 2017
4 months agosweet15a sugars will eventually be exported transporter15a:
4.05
GRMZM2G168365
Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Gene Product: November 4th, 2015
Variation: September 1st, 2003
Gene Model: November 3rd, 2015
4 months agonkd2 naked endosperm2:
10.06
GRMZM5G884137
Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Gene Product: January 3rd, 2015
Variation: December 21st, 2017
Gene Model: December 21st, 2017
4 months agozp27 27-kDa zein protein:
7.02
   Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Gene Product: September 17th, 2010
Variation: December 10th, 2019
4 months agotar1 tryptophan aminotransferase related1:
6.05
GRMZM2G127160
Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Gene Product: April 30th, 2011
Gene Model: June 4th, 2012
4 months agoole1 oleosin1:
2.03
   Zhang, L et al. 2024. Genetic variation in ZmKW1 contributes to kernel weight and size in dent corn and popcorn. Plant Biotechnol J.     Reference: January 2nd, 2024
Gene Product: July 23rd, 2018
Variation: February 20th, 2015
4 months agoAY110393  :
1.04
GRMZM2G084783
Bangtai Wang et al. 2024. Genome-wide association study for stalk lodging resistance related traits in maize (Zea mays L.) BMC Genomics. 25:19.     Reference: January 2nd, 2024
Variation: September 25th, 2007
Gene Model: February 10th, 2017
4 months agofarl16 FAR1-like-transcription factor 16:
2.04
   Huaijun Tang et al. 2024. Genome-Wide Identification and Expression Analyses of the FAR1/FHY3 Gene Family Provide Insight into Inflorescence Development in Maize Curr Issues Mol Biol. 46:430-449.     Reference: January 2nd, 2024
Gene Product: June 28th, 2019
Variation: May 20th, 2006
4 months agohag103a histone acetyl transferase GNAT/MYST103a:
2.04
GRMZM2G100872
Can Hu et al. 2024. Genetic dissection of resistance to gray leaf spot by genome-wide association study in a multi-parent maize population. BMC Plant Biology. 24:10.     Reference: January 2nd, 2024
Gene Product: January 4th, 2018
Variation: September 1st, 2003
Gene Model: January 4th, 2018
4 months agohmg9 HMG-transcription factor 9:
5.04
GRMZM2G060253
Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Variation: September 1st, 2003
Gene Model: August 28th, 2021
4 months agosina4 seven in absentia4:
1.04
GRMZM2G061624
Zhang, L et al. 2024. Genetic variation in ZmKW1 contributes to kernel weight and size in dent corn and popcorn. Plant Biotechnol J.     Reference: January 2nd, 2024
Gene Product: January 24th, 2021
Variation: January 2nd, 2024
Gene Model: February 7th, 2020
4 months agopco099353  :
2.08
GRMZM2G151826
Zhang, L et al. 2024. Genetic variation in ZmKW1 contributes to kernel weight and size in dent corn and popcorn. Plant Biotechnol J.     Reference: January 2nd, 2024
Variation: September 25th, 2007
Gene Model: March 21st, 2020
4 months agoapt1 aberrant pollen transmission1:
9.04
GRMZM2G448687
Zhang, H et al. 2024. Reveal the kernel dehydration mechanisms in maize based on proteomic and metabolomic analysis. BMC Plant Biology. 24:15.     Reference: January 2nd, 2024
Variation: October 15th, 2012
Gene Model: May 31st, 2014
4 months agode18 defective18:
10.03
GRMZM2G091819
Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Gene Product: June 18th, 2018
Variation: January 21st, 2016
Gene Model: September 11th, 2012
4 months agomeg14 maternally expressed gene14:
 
GRMZM2G145466
Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Variation: August 29th, 2014
Gene Model: August 29th, 2014
4 months agoysl15 yellow stripe-like transporter15:
4.06
GRMZM2G368398
Song, ZZ et al. 2024. Identification and characterization of yellow stripe-like genes in maize suggest their roles in the uptake and transport of zinc and iron. BMC Plant Biology. 24:3.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
Gene Model: April 18th, 2020
4 months agodef2 defensin-like protein2:
 
GRMZM2G368861
Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Gene Product: December 12th, 2022
Gene Model: June 10th, 2016
4 months agosbt1 subtilisin1:
 
GRMZM2G437435
Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Gene Product: November 11th, 2016
Variation: November 11th, 2016
Gene Model: November 11th, 2016
4 months agovpp7 vacuolar proton pump7:
 
GRMZM2G069095
Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
Gene Model: August 25th, 2018
4 months agolea14 late embryogenesis abundant protein14:
 
GRMZM2G050607
Zhang, H et al. 2024. Reveal the kernel dehydration mechanisms in maize based on proteomic and metabolomic analysis. BMC Plant Biology. 24:15.     Reference: January 2nd, 2024
Gene Product: January 31st, 2019
Gene Model: January 31st, 2019
4 months agoysl20 yellow stripe-like transporter20:
 
GRMZM2G358051
Song, ZZ et al. 2024. Identification and characterization of yellow stripe-like genes in maize suggest their roles in the uptake and transport of zinc and iron. BMC Plant Biology. 24:3.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
Gene Model: July 10th, 2019
4 months agothx35 Trihelix-transcription factor 35:
 
GRMZM2G081445
Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Gene Product: November 9th, 2021
Gene Model: August 7th, 2019
4 months agokw9 kernel weight9:
 
GRMZM2G171994
Zhang, L et al. 2024. Genetic variation in ZmKW1 contributes to kernel weight and size in dent corn and popcorn. Plant Biotechnol J.     Reference: January 2nd, 2024
Gene Product: December 27th, 2016
Gene Model: June 2nd, 2020
4 months agoysl1 yellow stripe-like transporter1:
 
GRMZM2G051179
Song, ZZ et al. 2024. Identification and characterization of yellow stripe-like genes in maize suggest their roles in the uptake and transport of zinc and iron. BMC Plant Biology. 24:3.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
Gene Model: July 8th, 2020
4 months agoysl6 yellow stripe-like transporter6:
 
GRMZM2G085833
Song, ZZ et al. 2024. Identification and characterization of yellow stripe-like genes in maize suggest their roles in the uptake and transport of zinc and iron. BMC Plant Biology. 24:3.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
Gene Model: July 8th, 2020
4 months agoysl11 yellow stripe-like transporter11:
 
GRMZM5G812538
Song, ZZ et al. 2024. Identification and characterization of yellow stripe-like genes in maize suggest their roles in the uptake and transport of zinc and iron. BMC Plant Biology. 24:3.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
Gene Model: July 8th, 2020
4 months agoysl9 yellow stripe-like transporter9:
 
GRMZM5G814926
Song, ZZ et al. 2024. Identification and characterization of yellow stripe-like genes in maize suggest their roles in the uptake and transport of zinc and iron. BMC Plant Biology. 24:3.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
Gene Model: July 8th, 2020
4 months agoysl12 yellow stripe-like transporter12:
 
GRMZM5G893444
Song, ZZ et al. 2024. Identification and characterization of yellow stripe-like genes in maize suggest their roles in the uptake and transport of zinc and iron. BMC Plant Biology. 24:3.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
Gene Model: July 8th, 2020
4 months agoysl17 yellow stripe-like transporter17:
 
GRMZM2G049238
Song, ZZ et al. 2024. Identification and characterization of yellow stripe-like genes in maize suggest their roles in the uptake and transport of zinc and iron. BMC Plant Biology. 24:3.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
Gene Model: July 8th, 2020
4 months agoysl10 yellow stripe-like transporter10:
 
GRMZM2G062844
Song, ZZ et al. 2024. Identification and characterization of yellow stripe-like genes in maize suggest their roles in the uptake and transport of zinc and iron. BMC Plant Biology. 24:3.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
Gene Model: July 8th, 2020
4 months agoysl14 yellow stripe-like transporter14:
 
GRMZM2G120922
Song, ZZ et al. 2024. Identification and characterization of yellow stripe-like genes in maize suggest their roles in the uptake and transport of zinc and iron. BMC Plant Biology. 24:3.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
Gene Model: July 8th, 2020
4 months agoysl18 yellow stripe-like transporter18:
 
GRMZM2G004440
Song, ZZ et al. 2024. Identification and characterization of yellow stripe-like genes in maize suggest their roles in the uptake and transport of zinc and iron. BMC Plant Biology. 24:3.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
Gene Model: July 8th, 2020
4 months agoysl8 yellow stripe-like transporter8:
 
GRMZM2G018148
Song, ZZ et al. 2024. Identification and characterization of yellow stripe-like genes in maize suggest their roles in the uptake and transport of zinc and iron. BMC Plant Biology. 24:3.     Reference: January 2nd, 2024
Gene Product: September 1st, 2003
Gene Model: July 9th, 2020
4 months agoZm00001d022084  :
 
GRMZM2G045155
Zainab M Almutairi 2022. In Silico Identification and Characterization of B12D Family Proteins in Viridiplantae. Evol Bioinform. 18:11769343221106795.   AT3G29970 (TAIR) Reference: January 2nd, 2024
Gene Product: January 2nd, 2024
Gene Model: August 27th, 2021
4 months agoZm00001d039695  :
 
GRMZM2G033126
Bangtai Wang et al. 2024. Genome-wide association study for stalk lodging resistance related traits in maize (Zea mays L.) BMC Genomics. 25:19.   At4g36470 (TAIR) Reference: January 2nd, 2024
Gene Product: January 5th, 2023
Gene Model: November 1st, 2021
4 months agopco110104  :
6.04
GRMZM2G360339
Zainab M Almutairi 2022. In Silico Identification and Characterization of B12D Family Proteins in Viridiplantae. Evol Bioinform. 18:11769343221106795.     Reference: January 2nd, 2024
Gene Product: January 2nd, 2024
Gene Model: January 13th, 2020
4 months agodef1 defensin-like protein1:
10.03
GRMZM2G368890
Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Gene Product: December 12th, 2022
Gene Model: June 10th, 2016
4 months agoAY103944  :
2.04
GRMZM2G352129
Zhang, L et al. 2024. Genetic variation in ZmKW1 contributes to kernel weight and size in dent corn and popcorn. Plant Biotechnol J.     Reference: January 2nd, 2024
Variation: September 25th, 2007
Gene Model: May 30th, 2017
4 months agoAY106518  :
3.07
GRMZM2G425629
Zhang, H et al. 2024. Reveal the kernel dehydration mechanisms in maize based on proteomic and metabolomic analysis. BMC Plant Biology. 24:15.     Reference: January 2nd, 2024
Gene Product: January 31st, 2019
Gene Model: April 8th, 2020
4 months agocrd101 chromdomain-containing protein101:
5.03
GRMZM2G117100
Bangtai Wang et al. 2024. Genome-wide association study for stalk lodging resistance related traits in maize (Zea mays L.) BMC Genomics. 25:19.     Reference: January 2nd, 2024
Gene Product: July 7th, 2022
Gene Model: May 10th, 2020
4 months agoIDP694  :
9.00
GRMZM2G027392
Zainab M Almutairi 2022. In Silico Identification and Characterization of B12D Family Proteins in Viridiplantae. Evol Bioinform. 18:11769343221106795.     Reference: January 2nd, 2024
Gene Product: January 2nd, 2024
Variation: March 31st, 2005
Gene Model: January 22nd, 2019
4 months agobi1 bax inhibitor1:
5.03
GRMZM2G029087
Yuan, Y et al. 2024. Decoding the gene regulatory network of endosperm differentiation in maize Nat Commun. 15:34.     Reference: January 2nd, 2024
Gene Product: October 26th, 2020
Gene Model: October 26th, 2020
4 months agorboh11 respiratory burst oxidase11:
 
   Li, J et al. 2023. Identification of ZmRBOHD1 interacting with ZmCDPK32 in maize J Beijing Normal Univ (Nat Sci). 59:629-636.     Reference: December 29th, 2023
Gene Product: February 18th, 2023
4 months agorboh12 respiratory burst oxidase12:
 
   Li, J et al. 2023. Identification of ZmRBOHD1 interacting with ZmCDPK32 in maize J Beijing Normal Univ (Nat Sci). 59:629-636.     Reference: December 29th, 2023
Gene Product: February 18th, 2023
4 months agorboh13 respiratory burst oxidase13:
 
   Li, J et al. 2023. Identification of ZmRBOHD1 interacting with ZmCDPK32 in maize J Beijing Normal Univ (Nat Sci). 59:629-636.     Reference: December 29th, 2023
Gene Product: February 18th, 2023
4 months agorboh15 respiratory burst oxidase15:
 
   Li, J et al. 2023. Identification of ZmRBOHD1 interacting with ZmCDPK32 in maize J Beijing Normal Univ (Nat Sci). 59:629-636.     Reference: December 29th, 2023
Gene Product: February 18th, 2023
4 months agoLOC103654750  :
 
   Nowak, B et al. 2024. Identification and Analysis of Candidate Genes Associated with Yield Structure Traits and Maize Yield Using Next-Generation Sequencing Technology Genes. 15:56.   AT1G17110 (TAIR) Reference: December 29th, 2023
Gene Product: November 16th, 2023
4 months agobx14 benzoxazinone synthesis14:
2.05
GRMZM2G127418
Zhang, L et al. 2023. Genome-wide identification and functional study of caffeic acid O-methyltransferase in maize Fujian J Agric Sci. 38:1−9.     Reference: December 29th, 2023
Gene Product: July 8th, 2013
Variation: June 20th, 2016
Gene Model: June 20th, 2016
4 months agorboh9 respiratory burst oxidase9:
2.09
GRMZM2G358619
Li, J et al. 2023. Identification of ZmRBOHD1 interacting with ZmCDPK32 in maize J Beijing Normal Univ (Nat Sci). 59:629-636.     Reference: December 29th, 2023
Gene Product: February 18th, 2023
Gene Model: May 5th, 2021
4 months agohb120 Homeobox-transcription factor 120:
 
   Nowak, B et al. 2024. Identification and Analysis of Candidate Genes Associated with Yield Structure Traits and Maize Yield Using Next-Generation Sequencing Technology Genes. 15:56.     Reference: December 29th, 2023
Variation: August 26th, 2023
4 months agobhlh81 bHLH-transcription factor 81:
 
   Nowak, B et al. 2024. Identification and Analysis of Candidate Genes Associated with Yield Structure Traits and Maize Yield Using Next-Generation Sequencing Technology Genes. 15:56.     Reference: December 29th, 2023
Variation: July 24th, 2018
4 months agobx7 benzoxazinone synthesis7:
4.03
GRMZM2G441753
Zhang, L et al. 2023. Genome-wide identification and functional study of caffeic acid O-methyltransferase in maize Fujian J Agric Sci. 38:1−9.     Reference: December 29th, 2023
Gene Product: October 31st, 2011
Variation: October 26th, 2011
Gene Model: October 19th, 2011
4 months agortp1 root preferential1:
4.03 - 4.04
   Zhang, L et al. 2023. Genome-wide identification and functional study of caffeic acid O-methyltransferase in maize Fujian J Agric Sci. 38:1−9.     Reference: December 29th, 2023
Gene Product: September 1st, 2003
Variation: July 7th, 2013
4 months agorboh1 respiratory burst oxidase1:
3.06
GRMZM2G426953
Li, J et al. 2023. Identification of ZmRBOHD1 interacting with ZmCDPK32 in maize J Beijing Normal Univ (Nat Sci). 59:629-636.     Reference: December 29th, 2023
Gene Product: February 18th, 2023
Variation: June 7th, 2014
Gene Model: July 2nd, 2013
4 months agorboh3 respiratory burst oxidase3:
 
GRMZM2G043435
Li, J et al. 2023. Identification of ZmRBOHD1 interacting with ZmCDPK32 in maize J Beijing Normal Univ (Nat Sci). 59:629-636.     Reference: December 29th, 2023
Gene Product: February 18th, 2023
Gene Model: July 2nd, 2013
4 months agonanmt1 nicotinate N-methyltransferase1:
4.06
GRMZM2G082007
Zhang, L et al. 2023. Genome-wide identification and functional study of caffeic acid O-methyltransferase in maize Fujian J Agric Sci. 38:1−9.     Reference: December 29th, 2023
Gene Product: March 10th, 2021
Gene Model: June 23rd, 2016
4 months agorboh7 respiratory burst oxidase7:
 
GRMZM2G300965
Li, J et al. 2023. Identification of ZmRBOHD1 interacting with ZmCDPK32 in maize J Beijing Normal Univ (Nat Sci). 59:629-636.     Reference: December 29th, 2023
Gene Product: February 18th, 2023
Gene Model: June 24th, 2021
4 months agofomt3 flavonoid O-methyltransferase 3:
 
GRMZM2G106172
Zhang, L et al. 2023. Genome-wide identification and functional study of caffeic acid O-methyltransferase in maize Fujian J Agric Sci. 38:1−9.     Reference: December 29th, 2023
Gene Product: February 16th, 2011
Gene Model: November 1st, 2021
4 months agorboh5 respiratory burst oxidase5:
 
GRMZM2G323731
Li, J et al. 2023. Identification of ZmRBOHD1 interacting with ZmCDPK32 in maize J Beijing Normal Univ (Nat Sci). 59:629-636.     Reference: December 29th, 2023
Gene Product: February 18th, 2023
Gene Model: January 5th, 2022
4 months agorboh6 respiratory burst oxidase6:
 
GRMZM2G401179
Li, J et al. 2023. Identification of ZmRBOHD1 interacting with ZmCDPK32 in maize J Beijing Normal Univ (Nat Sci). 59:629-636.     Reference: December 29th, 2023
Gene Product: February 18th, 2023
Gene Model: January 5th, 2022
4 months agorboh8 respiratory burst oxidase8:
 
GRMZM2G448185
Li, J et al. 2023. Identification of ZmRBOHD1 interacting with ZmCDPK32 in maize J Beijing Normal Univ (Nat Sci). 59:629-636.     Reference: December 29th, 2023
Gene Product: February 18th, 2023
Gene Model: February 15th, 2022
4 months agofomt5 flavonoid O-methyltransferase 5:
4.07
GRMZM2G099297
Zhang, L et al. 2023. Genome-wide identification and functional study of caffeic acid O-methyltransferase in maize Fujian J Agric Sci. 38:1−9.     Reference: December 29th, 2023
Gene Product: February 16th, 2011
Variation: March 31st, 2005
Gene Model: May 24th, 2021
4 months agorboh2 respiratory burst oxidase2:
3.07
GRMZM2G138152
Li, J et al. 2023. Identification of ZmRBOHD1 interacting with ZmCDPK32 in maize J Beijing Normal Univ (Nat Sci). 59:629-636.     Reference: December 29th, 2023
Gene Product: February 18th, 2023
Gene Model: July 2nd, 2013
4 months agohb151 homeobox-transcription factor 151:
 
   Xuanxuan Chen et al. 2024. A Comprehensive Identification and Expression Analysis of the WUSCHEL Homeobox-Containing Protein Family Reveals Their Special Role in Development and Abiotic Stress Response in Zea mays L. Int J Mol Sci. 25:441.     Reference: December 28th, 2023
Gene Product: August 25th, 2017
4 months agons2 narrow sheath2:
4.08
   Xuanxuan Chen et al. 2024. A Comprehensive Identification and Expression Analysis of the WUSCHEL Homeobox-Containing Protein Family Reveals Their Special Role in Development and Abiotic Stress Response in Zea mays L. Int J Mol Sci. 25:441.     Reference: December 28th, 2023
Gene Product: August 25th, 2017
Variation: June 29th, 2005
4 months agowox9c WUSCHEL related homeobox 9c:
 
GRMZM2G409881
Xuanxuan Chen et al. 2024. A Comprehensive Identification and Expression Analysis of the WUSCHEL Homeobox-Containing Protein Family Reveals Their Special Role in Development and Abiotic Stress Response in Zea mays L. Int J Mol Sci. 25:441.     Reference: December 28th, 2023
Gene Product: August 25th, 2017
Variation: September 6th, 2007
Gene Model: December 21st, 2015
4 months agowox9b WUSCHEL related homeobox 9b:
 
GRMZM2G031882
Xuanxuan Chen et al. 2024. A Comprehensive Identification and Expression Analysis of the WUSCHEL Homeobox-Containing Protein Family Reveals Their Special Role in Development and Abiotic Stress Response in Zea mays L. Int J Mol Sci. 25:441.     Reference: December 28th, 2023
Gene Product: August 25th, 2017
Variation: September 6th, 2007
Gene Model: December 21st, 2015
4 months agomyb152 MYB-transcription factor 152:
7.03
GRMZM2G104551
Wang, LP et al. 2024. Functional identification of maize transcription factor ZmMYB12 to enhance drought resistance and low phosphorus tolerance in plants Acta Agron Sin. 50:76-88.     Reference: December 28th, 2023
Variation: September 1st, 2003
Gene Model: September 9th, 2018
4 months agowox11 WUSCHEL-related homeobox transcription factor 11:
 
   Xuanxuan Chen et al. 2024. A Comprehensive Identification and Expression Analysis of the WUSCHEL Homeobox-Containing Protein Family Reveals Their Special Role in Development and Abiotic Stress Response in Zea mays L. Int J Mol Sci. 25:441.     Reference: December 28th, 2023
Gene Product: August 25th, 2017
4 months agowox13b WUSCHEL-related homeobox transcription factor 13b:
 
   Xuanxuan Chen et al. 2024. A Comprehensive Identification and Expression Analysis of the WUSCHEL Homeobox-Containing Protein Family Reveals Their Special Role in Development and Abiotic Stress Response in Zea mays L. Int J Mol Sci. 25:441.     Reference: December 28th, 2023
Gene Product: August 25th, 2017
4 months agowox13a WUSCHEL-related homeobox-transcription factor 13a:
 
   Xuanxuan Chen et al. 2024. A Comprehensive Identification and Expression Analysis of the WUSCHEL Homeobox-Containing Protein Family Reveals Their Special Role in Development and Abiotic Stress Response in Zea mays L. Int J Mol Sci. 25:441.     Reference: December 28th, 2023
Gene Product: August 25th, 2017
4 months agowox3b WUSCHEL-related homeobox 3b:
 
   Xuanxuan Chen et al. 2024. A Comprehensive Identification and Expression Analysis of the WUSCHEL Homeobox-Containing Protein Family Reveals Their Special Role in Development and Abiotic Stress Response in Zea mays L. Int J Mol Sci. 25:441.     Reference: December 28th, 2023
Gene Product: August 25th, 2017
4 months agowox5a WUSCHEL-homeobox-transcription factor 5A:
 
   Xuanxuan Chen et al. 2024. A Comprehensive Identification and Expression Analysis of the WUSCHEL Homeobox-Containing Protein Family Reveals Their Special Role in Development and Abiotic Stress Response in Zea mays L. Int J Mol Sci. 25:441.     Reference: December 28th, 2023
Gene Product: August 25th, 2017
4 months agowox5b WUSCHEL-homeobox-transcription factor 5b:
 
   Xuanxuan Chen et al. 2024. A Comprehensive Identification and Expression Analysis of the WUSCHEL Homeobox-Containing Protein Family Reveals Their Special Role in Development and Abiotic Stress Response in Zea mays L. Int J Mol Sci. 25:441.     Reference: December 28th, 2023
Gene Product: August 25th, 2017
4 months agowox2b WUSCHEL-related homeobox 2b:
 
   Xuanxuan Chen et al. 2024. A Comprehensive Identification and Expression Analysis of the WUSCHEL Homeobox-Containing Protein Family Reveals Their Special Role in Development and Abiotic Stress Response in Zea mays L. Int J Mol Sci. 25:441.     Reference: December 28th, 2023
Gene Product: August 25th, 2017
4 months agofdl1 fused leaves1:
7.04
GRMZM2G056407
Wang, LP et al. 2024. Functional identification of maize transcription factor ZmMYB12 to enhance drought resistance and low phosphorus tolerance in plants Acta Agron Sin. 50:76-88.     Reference: December 28th, 2023
Gene Product: September 1st, 2003
Variation: February 13th, 2020
Gene Model: September 12th, 2018
4 months agowox9a WUSCHEL related homeobox 9a:
 
GRMZM2G133972
Xuanxuan Chen et al. 2024. A Comprehensive Identification and Expression Analysis of the WUSCHEL Homeobox-Containing Protein Family Reveals Their Special Role in Development and Abiotic Stress Response in Zea mays L. Int J Mol Sci. 25:441.     Reference: December 28th, 2023
Gene Product: August 25th, 2017
Variation: January 31st, 2011
Gene Model: December 21st, 2015
4 months agowox4 wuschel-related homeobox4:
 
   Xuanxuan Chen et al. 2024. A Comprehensive Identification and Expression Analysis of the WUSCHEL Homeobox-Containing Protein Family Reveals Their Special Role in Development and Abiotic Stress Response in Zea mays L. Int J Mol Sci. 25:441.     Reference: December 28th, 2023
Gene Product: August 25th, 2017
Variation: May 1st, 2016
4 months agowox12a wuschel-related homeobox12A:
 
   Xuanxuan Chen et al. 2024. A Comprehensive Identification and Expression Analysis of the WUSCHEL Homeobox-Containing Protein Family Reveals Their Special Role in Development and Abiotic Stress Response in Zea mays L. Int J Mol Sci. 25:441.     Reference: December 28th, 2023
Gene Product: August 25th, 2017
4 months agozip6 zinc-regulated, iron-regulated transporter-like protein6:
 
GRMZM2G034551
An, TT et al. 2023. Unveiling Si’s shield: A holistic examination of Cd stress alleviation in maize through physiological and transcriptomic insights Environ Exp Bot. :doi: 10.1016/j.envexpbot.2023.105626.     Reference: December 28th, 2023
Gene Product: June 5th, 2019
Gene Model: June 5th, 2019
4 months agosod10 superoxide dismutase10:
 
GRMZM2G124455
An, TT et al. 2023. Unveiling Si’s shield: A holistic examination of Cd stress alleviation in maize through physiological and transcriptomic insights Environ Exp Bot. :doi: 10.1016/j.envexpbot.2023.105626.     Reference: December 28th, 2023
Gene Product: October 4th, 2021
Gene Model: June 22nd, 2020
4 months agoflz32 FCS-like zinc finger32:
 
GRMZM2G125020
An, TT et al. 2023. Unveiling Si’s shield: A holistic examination of Cd stress alleviation in maize through physiological and transcriptomic insights Environ Exp Bot. :doi: 10.1016/j.envexpbot.2023.105626.     Reference: December 28th, 2023
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
4 months agocyp51 cytochrome P450 51:
 
   Yactayo-Chang, JP et al. 2023. Maize terpene synthase 1 impacts insect behavior via the production of monoterpene volatiles β-myrcene and linalool Phytochemistry. :doi: 10.1016/j.phytochem.2023.113957.     Reference: December 27th, 2023
Gene Product: December 30th, 2022
4 months agotps1 terpene synthase1:
2.02
GRMZM2G049538
Yactayo-Chang, JP et al. 2023. Maize terpene synthase 1 impacts insect behavior via the production of monoterpene volatiles β-myrcene and linalool Phytochemistry. :doi: 10.1016/j.phytochem.2023.113957.     Reference: December 27th, 2023
Gene Product: May 28th, 2012
Variation: December 27th, 2023
Gene Model: May 28th, 2012
4 months agocoi2 coronatine insensitive2:
 
GRMZM2G151536
Yactayo-Chang, JP et al. 2023. Maize terpene synthase 1 impacts insect behavior via the production of monoterpene volatiles β-myrcene and linalool Phytochemistry. :doi: 10.1016/j.phytochem.2023.113957.     Reference: December 27th, 2023
Gene Product: November 2nd, 2018
Gene Model: November 2nd, 2018
4 months agoflr11 feronia-like receptor11:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: July 10th, 2019
4 months agoflr14 feronia-like receptor14:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: July 10th, 2019
4 months agoflr13 feronia-like receptor13:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: July 10th, 2019
4 months agoflr8 feronia-like receptor8:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: July 10th, 2019
4 months agoflr15 feronia-like receptor15:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: July 10th, 2019
4 months agoralf1 rapid alkalinization factor1:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
4 months agoralf2 rapid alkalinization factor2:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
4 months agoralf5 rapid alkalinization factor5:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
4 months agollg4 lorelei-like glycosylphosphatidylinositol-anchor:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
4 months agopex4 pollen extensin-like4:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: September 1st, 2003
4 months agoralf4 rapid alkalinization factor4:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
4 months agoralf6 rapid alkalinization factor6:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
4 months agoralf8 rapid alkalinization factor8:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
4 months agoralf10 rapid alkalinization factor10:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
4 months agoralf11 rapid alkalinization factor11:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
4 months agoralf13 rapid alkalinization factor13:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
4 months agoralf14 rapid alkalinization factor14:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
4 months agoralf15 rapid alkalinization factor15:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
4 months agoralf16 rapid alkalinization factor16:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
4 months agoralf17 rapid alkalinization factor17:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
4 months agoralf18 rapid alkalinization factor18:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
4 months agoralf19 rapid alkalinization factor19:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
4 months agoralf20 rapid alkalinization factor20:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
4 months agoralf21 rapid alkalinization factor21:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
4 months agoralf22 rapid alkalinization factor22:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
4 months agoralf23 rapid alkalinization factor23:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
4 months agoralf33 rapid alkalinization factor33:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
4 months agolrx15 leucine-rich repeat/extensin-like chimera protein15:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 25th, 2023
4 months agolrx8 leucine-rich repeat/extensin-like chimera protein8:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 25th, 2023
4 months agolrx11 leucine-rich repeat/extensin-like chimera protein11:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 25th, 2023
4 months agolrx10 leucine-rich repeat/extensin-like chimera protein10:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 25th, 2023
4 months agolrx13 leucine-rich repeat/extensin-like chimera protein13:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 25th, 2023
4 months agolrx9 leucine-rich repeat/extensin-like chimera protein9:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 25th, 2023
4 months agolrx6 leucine-rich repeat/extensin-like chimera protein6:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 25th, 2023
4 months agolrx1 leucine-rich repeat/extensin-like chimera protein1:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 25th, 2023
4 months agolrx4 leucine-rich repeat/extensin-like chimera protein4:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 25th, 2023
4 months agolrx7 leucine-rich repeat/extensin-like chimera protein7:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 25th, 2023
4 months agolrx12 leucine-rich repeat/extensin-like chimera protein12:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 25th, 2023
4 months agolrx5 leucine-rich repeat/extensin-like chimera protein5:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 25th, 2023
4 months agolrx2 leucine-rich repeat/extensin-like chimera protein2:
 
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 25th, 2023
4 months agopex1 pollen extensin-like1:
2.09
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
4 months agopex2 pollen extensin-like2:
4.01
GRMZM2G478929
Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: December 28th, 2016
4 months agoralf9 rapid alkalinization factor9:
3.04
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
Variation: September 1st, 2003
4 months agolrx14 leucine-rich repeat/extensin-like chimera protein14:
3.04
GRMZM2G169182
Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 25th, 2023
Variation: September 1st, 2003
Gene Model: March 4th, 2021
4 months agoralf12 rapid alkalinization factor12:
10.03
GRMZM2G153206
Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.   AT3G16570 (TAIR) Reference: December 25th, 2023
Gene Product: December 24th, 2023
Variation: September 1st, 2003
Gene Model: December 14th, 2017
4 months agopex3 pollen extensin-like3:
10.03
GRMZM2G300969
Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: December 15th, 2017
4 months agollg1 lorelei-like glycosylphosphatidylinositol-anchor1:
2.04
GRMZM2G121256
Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
Gene Model: February 23rd, 2018
4 months agoclpp2 chloroplast protease complex P2:
1.09
GRMZM2G056373
José Hernandes-Lopes et al. 2023. Enabling genome editing in tropical maize lines through an improved, morphogenic regulator-assisted transformation protocol. Frontiers in Genome Editing. 5:1241035.     Reference: December 25th, 2023
Gene Product: June 3rd, 2014
Variation: June 2nd, 2014
Gene Model: May 9th, 2013
4 months agoralf3 rapid alkalinization factor3:
3.02
GRMZM2G357124
Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
Gene Model: March 25th, 2020
4 months agocul2 cullin2:
 
GRMZM2G166694
Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: May 10th, 2018
Gene Model: May 10th, 2018
4 months agoralf7 rapid alkalinization factor7:
6.05
GRMZM2G424509
Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.   AT1G28270 (TAIR) Reference: December 25th, 2023
Gene Product: December 24th, 2023
Gene Model: January 10th, 2020
4 months agollg2 lorelei-like glycosylphosphatidylinositol-anchor2:
7.03
GRMZM2G079499
Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
Gene Model: June 8th, 2022
4 months agolrx3 leucine-rich repeat/extensin-like chimera protein3:
8.03
   Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 25th, 2023
4 months agov30 virescent30:
9.05
GRMZM2G121456
José Hernandes-Lopes et al. 2023. Enabling genome editing in tropical maize lines through an improved, morphogenic regulator-assisted transformation protocol. Frontiers in Genome Editing. 5:1241035.     Reference: December 25th, 2023
Gene Product: June 3rd, 2014
Variation: October 13th, 2014
Gene Model: May 9th, 2013
4 months agollg3 lorelei-like glycosylphosphatidylinositol-anchor3:
4.06
GRMZM2G014994
Zhou, LZ et al. 2023. The RALF signaling pathway regulates cell wall integrity during pollen tube growth in maize. Plant Cell. :doi: 10.1093/plcell/koad324.     Reference: December 25th, 2023
Gene Product: December 24th, 2023
Gene Model: April 20th, 2020
4 months agoexpa8 alpha expansin8:
 
   Xingjie Zhang et al. 2024. Hotspot Regions of Quantitative Trait Loci and Candidate Genes for Ear-Related Traits in Maize: A Literature Review Genes. 15:15.     Reference: December 22nd, 2023
Gene Product: March 12th, 2008
4 months agoppr503 pentatricopeptide repeat protein503:
 
   Xingjie Zhang et al. 2024. Hotspot Regions of Quantitative Trait Loci and Candidate Genes for Ear-Related Traits in Maize: A Literature Review Genes. 15:15.     Reference: December 22nd, 2023
Gene Product: December 27th, 2016
4 months agozmm4 Zea mays MADS4:
1.10
GRMZM2G032339
Fereshteh Jafari et al. 2023. Breeding maize of ideal plant architecture for high-density planting tolerance through modulating shade avoidance response and beyond. J Integr Plant Biol. :doi: 10.1111/jipb.13603.     Reference: December 22nd, 2023
Gene Product: September 10th, 2021
Gene Model: November 18th, 2021
4 months agocry2 cryptochrome2:
2.04
GRMZM2G049549
Fereshteh Jafari et al. 2023. Breeding maize of ideal plant architecture for high-density planting tolerance through modulating shade avoidance response and beyond. J Integr Plant Biol. :doi: 10.1111/jipb.13603.     Reference: December 22nd, 2023
Gene Product: August 31st, 2018
Variation: November 6th, 2023
Gene Model: September 5th, 2014
4 months agomatK (cp) maturase K:
 
   Rehab M Rizk et al. 2024. Effectiveness of DNA barcoding, SCOT markers and phytochemical characterization in biodiversity assessment of some Zea mays hybrids S Afr J Bot. 165:59-69.     Reference: December 22nd, 2023
Gene Product: September 1st, 2003
4 months agoba1 barren stalk1:
3.06
   Fereshteh Jafari et al. 2023. Breeding maize of ideal plant architecture for high-density planting tolerance through modulating shade avoidance response and beyond. J Integr Plant Biol. :doi: 10.1111/jipb.13603.     Reference: December 22nd, 2023
Gene Product: July 19th, 2012
Variation: March 18th, 2015
4 months agobif1 barren inflorescence1:
8.03 - 8.03
GRMZM2G130953
Xingjie Zhang et al. 2024. Hotspot Regions of Quantitative Trait Loci and Candidate Genes for Ear-Related Traits in Maize: A Literature Review Genes. 15:15.     Reference: December 22nd, 2023
Gene Product: October 16th, 2015
Variation: October 16th, 2015
Gene Model: October 16th, 2015
4 months agod5 dwarf plant5:
2.02
   Fereshteh Jafari et al. 2023. Breeding maize of ideal plant architecture for high-density planting tolerance through modulating shade avoidance response and beyond. J Integr Plant Biol. :doi: 10.1111/jipb.13603.     Reference: December 22nd, 2023
Gene Product: September 1st, 2003
Variation: December 3rd, 2015
4 months agospi1 sparse inflorescence1:
3.08
GRMZM2G025222
Fereshteh Jafari et al. 2023. Breeding maize of ideal plant architecture for high-density planting tolerance through modulating shade avoidance response and beyond. J Integr Plant Biol. :doi: 10.1111/jipb.13603.     Reference: December 22nd, 2023
Gene Product: June 18th, 2018
Variation: September 5th, 2019
Gene Model: April 24th, 2013
4 months agolgn1 liguleless narrow1:
 
GRMZM2G134382
Fereshteh Jafari et al. 2023. Breeding maize of ideal plant architecture for high-density planting tolerance through modulating shade avoidance response and beyond. J Integr Plant Biol. :doi: 10.1111/jipb.13603.     Reference: December 22nd, 2023
Gene Product: July 10th, 2019
Variation: January 15th, 2016
Gene Model: January 3rd, 2013
4 months agotan1 tangled1:
6.05
   Fereshteh Jafari et al. 2023. Breeding maize of ideal plant architecture for high-density planting tolerance through modulating shade avoidance response and beyond. J Integr Plant Biol. :doi: 10.1111/jipb.13603.     Reference: December 22nd, 2023
Variation: June 29th, 2005
4 months agorpot1 RNA polymerase T phage-like 1:
7.04
   Xingjie Zhang et al. 2024. Hotspot Regions of Quantitative Trait Loci and Candidate Genes for Ear-Related Traits in Maize: A Literature Review Genes. 15:15.     Reference: December 22nd, 2023
Gene Product: September 1st, 2003
Variation: June 27th, 2013
4 months agobige1 big embryo1:
5.00
GRMZM2G148937
Fereshteh Jafari et al. 2023. Breeding maize of ideal plant architecture for high-density planting tolerance through modulating shade avoidance response and beyond. J Integr Plant Biol. :doi: 10.1111/jipb.13603.   At1g71870 (TAIR)
LOC_Os03g62270 (MSU/TIGR)
Reference: December 22nd, 2023
Gene Product: August 17th, 2015
Variation: August 27th, 2015
Gene Model: August 16th, 2015
4 months agoereb24 AP2-EREBP-transcription factor 24:
2.02
GRMZM2G086573
Ren, ZZ et al. 2023. Analysis of the molecular mechanisms regulating how ZmEREB24 improves drought tolerance in maize (Zea mays) seedlings Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108292.     Reference: December 22nd, 2023
Variation: September 1st, 2003
Gene Model: February 21st, 2018
4 months agohb48 Homeobox-transcription factor 48:
 
   Fereshteh Jafari et al. 2023. Breeding maize of ideal plant architecture for high-density planting tolerance through modulating shade avoidance response and beyond. J Integr Plant Biol. :doi: 10.1111/jipb.13603.     Reference: December 22nd, 2023
Variation: April 7th, 2017
4 months agohb76 Homeobox-transcription factor 76:
 
   Fereshteh Jafari et al. 2023. Breeding maize of ideal plant architecture for high-density planting tolerance through modulating shade avoidance response and beyond. J Integr Plant Biol. :doi: 10.1111/jipb.13603.     Reference: December 22nd, 2023
Variation: April 7th, 2017
4 months agosbp13 SBP-transcription factor 13:
 
   Fereshteh Jafari et al. 2023. Breeding maize of ideal plant architecture for high-density planting tolerance through modulating shade avoidance response and beyond. J Integr Plant Biol. :doi: 10.1111/jipb.13603.     Reference: December 22nd, 2023
Gene Product: July 5th, 2019
Variation: June 5th, 2023
4 months agowrky98 WRKY-transcription factor 98:
4.06
GRMZM2G377217
Xingjie Zhang et al. 2024. Hotspot Regions of Quantitative Trait Loci and Candidate Genes for Ear-Related Traits in Maize: A Literature Review Genes. 15:15.     Reference: December 22nd, 2023
Gene Product: July 24th, 2017
Variation: March 15th, 2017
Gene Model: March 15th, 2017
4 months agobif2 barren inflorescence2:
1.05
   Fereshteh Jafari et al. 2023. Breeding maize of ideal plant architecture for high-density planting tolerance through modulating shade avoidance response and beyond. J Integr Plant Biol. :doi: 10.1111/jipb.13603.   AT2G34650 (TAIR) Reference: December 22nd, 2023
Gene Product: July 19th, 2012
Variation: October 23rd, 2013
4 months agoprh2 protein phosphatase homolog2:
7.04
GRMZM2G140288
Xingjie Zhang et al. 2024. Hotspot Regions of Quantitative Trait Loci and Candidate Genes for Ear-Related Traits in Maize: A Literature Review Genes. 15:15.     Reference: December 22nd, 2023
Gene Product: October 18th, 2016
Variation: December 14th, 2012
Gene Model: May 9th, 2013
4 months agoabp4 auxin binding protein homolog4:
10.03
   Xingjie Zhang et al. 2024. Hotspot Regions of Quantitative Trait Loci and Candidate Genes for Ear-Related Traits in Maize: A Literature Review Genes. 15:15.     Reference: December 22nd, 2023
Gene Product: September 1st, 2003
Variation: May 26th, 2005
4 months agommp245  :
3.05
   Fereshteh Jafari et al. 2023. Breeding maize of ideal plant architecture for high-density planting tolerance through modulating shade avoidance response and beyond. J Integr Plant Biol. :doi: 10.1111/jipb.13603.     Reference: December 22nd, 2023
Gene Product: June 23rd, 2021
4 months agodrl2 drooping leaf2:
9.06
GRMZM2G102218
Fereshteh Jafari et al. 2023. Breeding maize of ideal plant architecture for high-density planting tolerance through modulating shade avoidance response and beyond. J Integr Plant Biol. :doi: 10.1111/jipb.13603.   AT1G69180 (TAIR)
LOC_Os03g11600 (MSU/TIGR)
Reference: December 22nd, 2023
Gene Product: October 16th, 2015
Variation: July 12th, 2017
Gene Model: October 16th, 2015
4 months agovt2 vanishing tassel2:
 
GRMZM2G127308
Xingjie Zhang et al. 2024. Hotspot Regions of Quantitative Trait Loci and Candidate Genes for Ear-Related Traits in Maize: A Literature Review Genes. 15:15.   AT1G70560 (TAIR) Reference: December 22nd, 2023
Gene Product: April 30th, 2011
Variation: June 24th, 2011
Gene Model: May 2nd, 2012
4 months agoyuc2 Yucca2:
 
GRMZM2G159393
Fereshteh Jafari et al. 2023. Breeding maize of ideal plant architecture for high-density planting tolerance through modulating shade avoidance response and beyond. J Integr Plant Biol. :doi: 10.1111/jipb.13603.     Reference: December 22nd, 2023
Gene Product: June 18th, 2018
Gene Model: September 12th, 2012
4 months agopin4 PIN-formed protein4:
4.08
GRMZM2G171702
Xingjie Zhang et al. 2024. Hotspot Regions of Quantitative Trait Loci and Candidate Genes for Ear-Related Traits in Maize: A Literature Review Genes. 15:15.     Reference: December 22nd, 2023
Gene Product: April 21st, 2014
Gene Model: January 24th, 2013
4 months agoga2ox10 gibberellin 2-oxidase10:
 
GRMZM2G031724
Fereshteh Jafari et al. 2023. Breeding maize of ideal plant architecture for high-density planting tolerance through modulating shade avoidance response and beyond. J Integr Plant Biol. :doi: 10.1111/jipb.13603.     Reference: December 22nd, 2023
Gene Product: October 27th, 2014
Gene Model: October 29th, 2014
4 months agoknr6 kernel number per row6:
 
GRMZM2G119714
Xingjie Zhang et al. 2024. Hotspot Regions of Quantitative Trait Loci and Candidate Genes for Ear-Related Traits in Maize: A Literature Review Genes. 15:15.     Reference: December 22nd, 2023
Gene Product: May 13th, 2014
Variation: February 20th, 2020
Gene Model: February 20th, 2020
4 months agocsu60a  :
 
GRMZM2G084719
Xingjie Zhang et al. 2024. Hotspot Regions of Quantitative Trait Loci and Candidate Genes for Ear-Related Traits in Maize: A Literature Review Genes. 15:15.     Reference: December 22nd, 2023
Gene Product: December 27th, 2016
Gene Model: October 14th, 2020
4 months agoat1 alkali tolerance1:
 
GRMZM2G139878
Xingjie Zhang et al. 2024. Hotspot Regions of Quantitative Trait Loci and Candidate Genes for Ear-Related Traits in Maize: A Literature Review Genes. 15:15.   Os03g0407400 (Gramene) Reference: December 22nd, 2023
Gene Product: April 15th, 2021
Variation: March 23rd, 2023
Gene Model: January 28th, 2021
4 months agoyige1 yige1:
 
GRMZM2G008490
Xingjie Zhang et al. 2024. Hotspot Regions of Quantitative Trait Loci and Candidate Genes for Ear-Related Traits in Maize: A Literature Review Genes. 15:15.     Reference: December 22nd, 2023
Gene Product: November 29th, 2021
Variation: November 29th, 2021
Gene Model: November 29th, 2021
4 months agodro1 deeper rooting1:
 
GRMZM2G700200
Fereshteh Jafari et al. 2023. Breeding maize of ideal plant architecture for high-density planting tolerance through modulating shade avoidance response and beyond. J Integr Plant Biol. :doi: 10.1111/jipb.13603.   LOC_Os09g26840 (MSU/TIGR)
Os09g0439800 (Gramene)
Reference: December 22nd, 2023
Variation: July 7th, 2022
Gene Model: July 7th, 2022
4 months agosbp29 SBP-transcription factor 29:
7.03
GRMZM2G067624
Fereshteh Jafari et al. 2023. Breeding maize of ideal plant architecture for high-density planting tolerance through modulating shade avoidance response and beyond. J Integr Plant Biol. :doi: 10.1111/jipb.13603.     Reference: December 22nd, 2023
Gene Product: July 5th, 2019
Variation: July 7th, 2021
Gene Model: July 11th, 2018
4 months agoIDP689  :
8.05
GRMZM2G141922
Xingjie Zhang et al. 2024. Hotspot Regions of Quantitative Trait Loci and Candidate Genes for Ear-Related Traits in Maize: A Literature Review Genes. 15:15.     Reference: December 22nd, 2023
Variation: March 31st, 2005
Gene Model: June 10th, 2020
4 months agoelm1 elongated mesocotyl1:
8.06
   Fereshteh Jafari et al. 2023. Breeding maize of ideal plant architecture for high-density planting tolerance through modulating shade avoidance response and beyond. J Integr Plant Biol. :doi: 10.1111/jipb.13603.   AT3G09150 (TAIR) Reference: December 22nd, 2023
Gene Product: May 7th, 2006
Variation: March 30th, 2009
4 months agogpdh1 glucose-6-phosphate dehydrogenase1:
2.04
GRMZM2G130230
Xingjie Zhang et al. 2024. Hotspot Regions of Quantitative Trait Loci and Candidate Genes for Ear-Related Traits in Maize: A Literature Review Genes. 15:15.     Reference: December 22nd, 2023
Gene Product: September 1st, 2003
Gene Model: April 10th, 2015
4 months agodcl101 dicer-like 101:
1.01
GRMZM2G040762
Xingjie Zhang et al. 2024. Hotspot Regions of Quantitative Trait Loci and Candidate Genes for Ear-Related Traits in Maize: A Literature Review Genes. 15:15.     Reference: December 22nd, 2023
Gene Product: September 5th, 2006
Variation: February 20th, 2023
Gene Model: November 12th, 2014
4 months agoppr130 pentatricopeptide repeat protein130:
 
   M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: December 27th, 2016
4 months agoppr193 pentatricopeptide repeat protein193:
 
   M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: December 27th, 2016
4 months agoppr469 pentatricopeptide repeat protein469:
 
   M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: December 27th, 2016
4 months agoppr456 pentatricopeptide repeat protein456:
 
   M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: December 27th, 2016
4 months agoZm00001d020006  :
 
   Yi-Hsuan Lin et al. 2023. Exogenous Methylglyoxal Alleviates Drought-Induced ''Plant Diabetes'' and Leaf Senescence in Maize. J Exp Bot. :doi: 10.1093/jxb/erad503.     Reference: December 21st, 2023
Gene Product: August 12th, 2016
4 months agoLOC541869  :
 
   M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: February 13th, 2008
4 months agohcf60 high chlorophyll fluorescence60:
 
   M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.   At1g79850 (TAIR) Reference: December 21st, 2023
Variation: August 23rd, 2023
4 months agoGRMZM2G149273  :
 
   Yi-Hsuan Lin et al. 2023. Exogenous Methylglyoxal Alleviates Drought-Induced ''Plant Diabetes'' and Leaf Senescence in Maize. J Exp Bot. :doi: 10.1093/jxb/erad503.     Reference: December 21st, 2023
Gene Product: September 18th, 2015
4 months agoGRMZM2G329300  :
 
   Zhou, Y et al. 2022. Genes 13:456     Reference: December 21st, 2023
Gene Product: June 1st, 2022
4 months agoppr182 pentatricopeptide repeat protein182:
3.05
GRMZM2G118362
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: December 27th, 2016
Gene Model: February 24th, 2019
4 months agouaz251b(rpS11)  :
2.02
GRMZM2G044800
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: September 1st, 2003
Gene Model: January 12th, 2018
4 months agophm4880  :
2.05
GRMZM2G325749
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Variation: November 3rd, 2017
Gene Model: April 29th, 2021
4 months agorpl13 60S ribosomal protein L13:
6.05
GRMZM2G409407
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: January 13th, 2020
Gene Model: January 11th, 2020
4 months agomagi53573  :
1.07
GRMZM2G144387
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Variation: April 7th, 2021
Gene Model: February 14th, 2019
4 months agorps21b 40S ribosomal protein S21b:
 
GRMZM2G134109
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: September 1st, 2003
Variation: July 14th, 2008
Gene Model: January 8th, 2020
4 months agorpl19 ribosomal protein L19:
5.06
GRMZM2G171444
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: July 28th, 2016
4 months agogl2 glossy2:
2.02
   Delzer, B et al. 2023. Elite, transformable haploid inducers in maize Crop J. :doi: 10.1016/j.cj.2023.10.016.   AT4G24510 (TAIR) Reference: December 21st, 2023
Gene Product: February 28th, 2020
Variation: December 7th, 2012
4 months agorps27c ribosomal protein S27c:
5.01
GRMZM2G132121
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Variation: March 14th, 2015
Gene Model: March 14th, 2015
4 months agorpl29 ribosomal protein L29:
4.08
GRMZM2G028216
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: September 1st, 2003
Gene Model: July 28th, 2016
4 months agoumc1313  :
4.09
GRMZM2G054149
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Variation: September 1st, 2003
Gene Model: March 6th, 2021
4 months agorps8 ribosomal protein S8 homolog:
4.09
GRMZM2G336875
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: September 1st, 2003
Variation: April 17th, 2015
Gene Model: April 15th, 2015
4 months agoomt2 Caffeoyl CoA O-methyltransferase2:
9.02
GRMZM2G099363
Yi-Hsuan Lin et al. 2023. Exogenous Methylglyoxal Alleviates Drought-Induced ''Plant Diabetes'' and Leaf Senescence in Maize. J Exp Bot. :doi: 10.1093/jxb/erad503.     Reference: December 21st, 2023
Gene Product: January 5th, 2014
Variation: May 13th, 2016
Gene Model: September 17th, 2014
4 months agorpl40 50S ribosomal protein L40:
8.01
GRMZM2G157007
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Variation: April 12th, 2017
Gene Model: April 12th, 2017
4 months agocsu36b(rpL19)  :
5.04
GRMZM5G887054
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: September 1st, 2003
Gene Model: May 13th, 2020
4 months agorps8 (cp) 30S ribosomal protein S8 gene:
 
GRMZM5G845244
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: September 1st, 2003
Gene Model: December 26th, 2016
4 months agorps4 (cp) 30S ribosomal protein S4 gene:
 
   M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: September 1st, 2003
4 months agorps2 (cp) 30S ribosomal protein S2 gene:
 
   M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: September 1st, 2003
4 months agorps16 (cp) 30S ribosomal protein S16 gene:
 
   M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: September 1st, 2003
4 months agoLOC103642224  :
 
GRMZM2G038013
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.   At1g79850 (TAIR) Reference: December 21st, 2023
Gene Product: September 1st, 2003
Gene Model: February 17th, 2015
4 months agorpl5a 60S ribosomal protein L5-1 homolog a:
3.05
GRMZM5G815894
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: December 1st, 2019
Variation: April 9th, 2011
Gene Model: December 28th, 2016
4 months agonzp1 non-zein protein1:
8.05
GRMZM2G024838
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: October 13th, 2021
Variation: October 13th, 2021
Gene Model: September 20th, 2018
4 months agoemb18 embryo specific18:
9.03
GRMZM2G136559
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: March 9th, 2013
Variation: August 22nd, 2013
Gene Model: March 9th, 2013
4 months agoqm1 QM1 homolog1:
5.03
   M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: October 2nd, 2006
Variation: September 1st, 2003
4 months agorps5 ribosomal protein S5:
8.01
GRMZM2G156673
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: September 1st, 2003
Variation: August 25th, 2015
Gene Model: April 15th, 2015
4 months agorps12 ribosomal proteinS12 (homolog):
7.02
GRMZM2G063340
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: September 1st, 2003
Variation: July 14th, 2008
Gene Model: April 15th, 2015
4 months agorpl35 60S ribosomal protein L35:
5.04
GRMZM2G043279
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: August 22nd, 2019
Gene Model: June 19th, 2017
4 months agoAY109733  :
5.01
GRMZM2G130544
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Variation: July 29th, 2004
Gene Model: June 15th, 2018
4 months agoarpp2a-2 acidic ribosomal protein P2a-2:
8.03
GRMZM2G102891
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Variation: January 14th, 2016
Gene Model: August 28th, 2015
4 months agorpl17c ribosomal protein L17c:
 
GRMZM2G148744
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Variation: June 7th, 2013
Gene Model: July 28th, 2016
4 months agotrps5 trehalose-6-phosphate synthase5:
 
GRMZM2G527891
Yi-Hsuan Lin et al. 2023. Exogenous Methylglyoxal Alleviates Drought-Induced ''Plant Diabetes'' and Leaf Senescence in Maize. J Exp Bot. :doi: 10.1093/jxb/erad503.     Reference: December 21st, 2023
Gene Product: October 3rd, 2020
Gene Model: September 15th, 2013
4 months agotrps13 trehalose-6-phosphate synthase13:
 
GRMZM2G019183
Yi-Hsuan Lin et al. 2023. Exogenous Methylglyoxal Alleviates Drought-Induced ''Plant Diabetes'' and Leaf Senescence in Maize. J Exp Bot. :doi: 10.1093/jxb/erad503.     Reference: December 21st, 2023
Gene Product: October 3rd, 2020
Gene Model: September 15th, 2013
4 months agoppr315 pentatricopeptide repeat protein315:
5.05
GRMZM2G165290
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: December 27th, 2016
Gene Model: May 21st, 2020
4 months agoupl2 ubiquitin-protein ligase2:
 
GRMZM2G049141
Delzer, B et al. 2023. Elite, transformable haploid inducers in maize Crop J. :doi: 10.1016/j.cj.2023.10.016.     Reference: December 21st, 2023
Gene Product: November 26th, 2019
Gene Model: November 19th, 2019
4 months agoGRMZM2G059392  :
 
GRMZM2G059392
Zhou, Y et al. 2022. Genes 13:456   AT3G53450 (TAIR) Reference: December 21st, 2023
Gene Product: November 21st, 2019
Gene Model: November 21st, 2019
4 months agorpl5c 60S ribosomal protein L5, mitochondrial-like homolog c:
 
GRMZM5G831780
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: December 1st, 2019
Gene Model: December 1st, 2019
4 months agocdpk31 calcium dependent protein kinase31:
 
GRMZM2G463464
Srikanth Burra et al. 2023. Genome-wide identification, characterization, and phylogenetic analysis of calcium-dependent protein kinase in Zea mays Chelonian Conserv Bi. 18:1424-1434.     Reference: December 21st, 2023
Gene Product: December 3rd, 2013
Gene Model: December 13th, 2019
4 months agorps21c 40S ribosomal protein S21c:
 
   M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: September 1st, 2003
4 months agorpl23a 60S ribosomal protein L23a:
 
GRMZM2G166659
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: September 1st, 2003
Gene Model: January 12th, 2020
4 months agotrpp6 trehalose-6-phosphate phosphatase6:
5.06
GRMZM2G112830
Yi-Hsuan Lin et al. 2023. Exogenous Methylglyoxal Alleviates Drought-Induced ''Plant Diabetes'' and Leaf Senescence in Maize. J Exp Bot. :doi: 10.1093/jxb/erad503.     Reference: December 21st, 2023
Gene Product: October 3rd, 2020
Gene Model: February 7th, 2018
4 months agocdpk44 calcium dependent protein kinase44:
 
GRMZM2G347047
Srikanth Burra et al. 2023. Genome-wide identification, characterization, and phylogenetic analysis of calcium-dependent protein kinase in Zea mays Chelonian Conserv Bi. 18:1424-1434.     Reference: December 21st, 2023
Gene Product: December 3rd, 2013
Gene Model: December 18th, 2020
4 months agorpl14a 60S ribosomal protein L14:
 
GRMZM2G140116
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: August 18th, 2021
Gene Model: August 18th, 2021
4 months agopco123006  :
7.02
GRMZM5G843748
Yi-Hsuan Lin et al. 2023. Exogenous Methylglyoxal Alleviates Drought-Induced ''Plant Diabetes'' and Leaf Senescence in Maize. J Exp Bot. :doi: 10.1093/jxb/erad503.     Reference: December 21st, 2023
Variation: September 25th, 2007
Gene Model: July 25th, 2020
4 months agopco154872  :
8.03
   M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Variation: September 25th, 2007
4 months agopco138567b  :
9.04
GRMZM5G862107
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Variation: September 25th, 2007
Gene Model: June 25th, 2020
4 months agolem1 lethal embryo mutant1:
1.10
   M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: March 29th, 2004
Variation: January 4th, 2013
4 months agomagi32402  :
1.07
GRMZM2G057608
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Variation: March 31st, 2005
Gene Model: February 14th, 2019
4 months agoIDP2420  :
1.01
GRMZM2G176820
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Variation: March 31st, 2005
Gene Model: February 10th, 2019
4 months agoIDP644  :
1.07
GRMZM2G025855
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Variation: March 31st, 2005
Gene Model: February 14th, 2019
4 months agoIDP810  :
1.02
GRMZM2G164965
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Variation: April 10th, 2021
Gene Model: February 11th, 2019
4 months agoIDP3811  :
1.01
GRMZM2G119471
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Variation: April 9th, 2021
Gene Model: April 9th, 2021
4 months agoIDP483  :
4.01
GRMZM2G165208
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Variation: March 31st, 2005
Gene Model: April 11th, 2020
4 months agoIDP486  :
5.03
GRMZM2G026216
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Variation: March 31st, 2005
Gene Model: May 8th, 2020
4 months agoIDP758  :
5.05
GRMZM2G061938
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Variation: March 31st, 2005
Gene Model: May 22nd, 2020
4 months agoIDP65  :
9.07
GRMZM2G150058
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Variation: March 31st, 2005
Gene Model: February 3rd, 2020
4 months agoIDP756  :
9.04
GRMZM2G007103
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Variation: September 25th, 2007
Gene Model: January 22nd, 2019
4 months agopdh3 pyruvate dehydrogenase3:
2.07
GRMZM2G097226
Yi-Hsuan Lin et al. 2023. Exogenous Methylglyoxal Alleviates Drought-Induced ''Plant Diabetes'' and Leaf Senescence in Maize. J Exp Bot. :doi: 10.1093/jxb/erad503.     Reference: December 21st, 2023
Gene Product: February 14th, 2008
Variation: February 14th, 2008
Gene Model: April 10th, 2015
4 months agorpl15b 60S ribosomal protein L15:
7.03
GRMZM2G180724
M Regina Scarpin et al. 2022. An updated nomenclature for plant ribosomal protein genes. Plant Cell. :doi: 10.1093/plcell/koac333.     Reference: December 21st, 2023
Gene Product: September 1st, 2003
Variation: June 2nd, 2013
Gene Model: July 28th, 2016
4 months agoLOC100502532  :
 
   Tingru Zeng et al. 2017. The Cloning of ZmCLCa Gene in Maize and Its Functional Verification of Nitrogen Absorption J Plant Genet Res. 18:112-116.   AT5G40890 (TAIR) Reference: December 19th, 2023
Gene Product: November 30th, 2021
4 months agoclc1 chloride channel1:
1.09
GRMZM2G397836
Lulu Liu et al. 2024. The Role of Chloride Channels in Plant Responses to NaCl Int J Mol Sci. 25:19.   AT5G26240 (TAIR) Reference: December 19th, 2023
Gene Product: November 30th, 2021
Gene Model: April 10th, 2021
4 months agodek1 defective kernel1:
1.03
   Lid, SE et al. 2002. The defective kernel 1 (dek1) gene required for aleurone cell development in the endosperm of maize grains encodes a membrane protein of the calpain gene superfamily. Proc Natl Acad Sci, USA 99:5460-5465     Reference: December 19th, 2023
Gene Product: September 1st, 2003
Variation: February 18th, 2022
4 months agozmm31 Zea mays MADS31:
5.01
GRMZM2G071620
Binghao Zhao et al. 2023. Genetic basis of maize stalk strength decoded via linkage and association mapping. Plant J. :doi: 10.1111/tpj.16583.     Reference: December 19th, 2023
Variation: August 7th, 2008
Gene Model: July 2nd, 2014
4 months agorfz1 rat frizzled homolog1:
 
GRMZM2G084812
Binghao Zhao et al. 2023. Genetic basis of maize stalk strength decoded via linkage and association mapping. Plant J. :doi: 10.1111/tpj.16583.     Reference: December 19th, 2023
Gene Product: September 1st, 2003
Variation: December 30th, 2010
Gene Model: November 29th, 2017
4 months agopyrd1 pyrimidine deaminase1:
1.01
GRMZM2G320099
Binghao Zhao et al. 2023. Genetic basis of maize stalk strength decoded via linkage and association mapping. Plant J. :doi: 10.1111/tpj.16583.     Reference: December 19th, 2023
Gene Product: January 29th, 2013
Variation: June 24th, 2016
Gene Model: January 29th, 2013
4 months agostiff1 stiff stalk1:
 
GRMZM2G360081
Binghao Zhao et al. 2023. Genetic basis of maize stalk strength decoded via linkage and association mapping. Plant J. :doi: 10.1111/tpj.16583.   AT1G30950 (TAIR)
LOC_Os06g45460 (MSU/TIGR)
Os06g0665400 (Gramene)
Reference: December 19th, 2023
Gene Product: April 27th, 2022
Variation: November 5th, 2019
Gene Model: November 5th, 2019
4 months agomate29 multidrug and toxic compound extrusion29:
 
   Liang, XY et al. 2023. Designing salt stress-resilient crops: Current progress and future challenges. J Integr Plant Biol. :doi: 10.1111/jipb.13599.     Reference: December 18th, 2023
Gene Product: August 17th, 2015
4 months agopx22 peroxidase22:
7.00
   Liang, XY et al. 2023. Designing salt stress-resilient crops: Current progress and future challenges. J Integr Plant Biol. :doi: 10.1111/jipb.13599.     Reference: December 18th, 2023
Gene Product: September 18th, 2015
4 months agobnlg1176a  :
8.05
GRMZM2G375222
Liu, BB et al. 2023. Heritable changes of epialleles near genes in maize can be triggered in the absence of CHH methylatio Plant Physiol. :doi: 10.1093/plphys/kiad668.     Reference: December 18th, 2023
Variation: September 1st, 2003
Gene Model: September 19th, 2018
4 months agormr1 required to maintain repression1:
6.07
   Liu, BB et al. 2023. Heritable changes of epialleles near genes in maize can be triggered in the absence of CHH methylatio Plant Physiol. :doi: 10.1093/plphys/kiad668.     Reference: December 18th, 2023
Gene Product: April 30th, 2008
Variation: May 10th, 2013
4 months agohb102 Homeobox-transcription factor 102:
1.02
GRMZM2G139963
Jiao, P et al. 2023. Zmhdz9, an HD-Zip transcription factor, promotes drought stress resistance in maize by modulating ABA and lignin accumulation Int J Biol Macromol. :doi: 10.1016/j.ijbiomac.2023.128849.     Reference: December 18th, 2023
Variation: September 1st, 2003
Gene Model: March 9th, 2016
4 months agohp2 histidine-containing phosphotransfer protein2:
2.06
GRMZM2G014154
Liang, XY et al. 2023. Designing salt stress-resilient crops: Current progress and future challenges. J Integr Plant Biol. :doi: 10.1111/jipb.13599.     Reference: December 18th, 2023
Gene Product: September 1st, 2003
Variation: June 26th, 2014
Gene Model: June 26th, 2014
4 months agotcptf19 TCP-transcription factor 19:
 
   Jiao, P et al. 2023. Zmhdz9, an HD-Zip transcription factor, promotes drought stress resistance in maize by modulating ABA and lignin accumulation Int J Biol Macromol. :doi: 10.1016/j.ijbiomac.2023.128849.     Reference: December 18th, 2023
Gene Product: September 27th, 2019
4 months agophyA1 phytochromeA1:
1.10
GRMZM2G157727
Cao, Y et al. 2023. Molecular characterization and functional analyses of maize phytochrome A photoreceptors. Plant Physiol. :doi: 10.1093/plphys/kiad667.     Reference: December 18th, 2023
Gene Product: June 30th, 2009
Variation: September 25th, 2007
Gene Model: August 13th, 2014
4 months agogbp2 GTP binding protein2:
1.09
GRMZM2G045314
Liang, XY et al. 2023. Designing salt stress-resilient crops: Current progress and future challenges. J Integr Plant Biol. :doi: 10.1111/jipb.13599.     Reference: December 18th, 2023
Gene Product: May 1st, 2018
Variation: December 19th, 2019
Gene Model: July 27th, 2016
4 months agosdg105 set domain gene105:
8.05 - 8.05
   Liu, BB et al. 2023. Heritable changes of epialleles near genes in maize can be triggered in the absence of CHH methylatio Plant Physiol. :doi: 10.1093/plphys/kiad668.     Reference: December 18th, 2023
Gene Product: June 30th, 2017
Variation: June 29th, 2017
4 months agoago4a argonaute4a:
 
GRMZM2G589579
Liu, BB et al. 2023. Heritable changes of epialleles near genes in maize can be triggered in the absence of CHH methylatio Plant Physiol. :doi: 10.1093/plphys/kiad668.     Reference: December 18th, 2023
Gene Product: August 12th, 2016
Gene Model: August 13th, 2016
4 months agoago6 argonaute6:
 
GRMZM2G347402
Liu, BB et al. 2023. Heritable changes of epialleles near genes in maize can be triggered in the absence of CHH methylatio Plant Physiol. :doi: 10.1093/plphys/kiad668.     Reference: December 18th, 2023
Gene Product: August 12th, 2016
Gene Model: August 13th, 2016
4 months agolac9 laccase9:
 
GRMZM2G132169
Liang, XY et al. 2023. Designing salt stress-resilient crops: Current progress and future challenges. J Integr Plant Biol. :doi: 10.1111/jipb.13599.     Reference: December 18th, 2023
Gene Product: March 31st, 2018
Gene Model: September 28th, 2016
4 months agonc1 Na+ content1:
 
GRMZM2G047616
Liang, XY et al. 2023. Designing salt stress-resilient crops: Current progress and future challenges. J Integr Plant Biol. :doi: 10.1111/jipb.13599.     Reference: December 18th, 2023
Gene Product: November 15th, 2017
Variation: November 15th, 2017
Gene Model: November 15th, 2017
4 months agonc2 Na+ content2:
 
GRMZM2G135674
Liang, XY et al. 2023. Designing salt stress-resilient crops: Current progress and future challenges. J Integr Plant Biol. :doi: 10.1111/jipb.13599.     Reference: December 18th, 2023
Gene Product: November 15th, 2017
Gene Model: November 15th, 2017
4 months agonhx7 Na+/H+ antiporter 7:
 
GRMZM2G098494
Liang, XY et al. 2023. Designing salt stress-resilient crops: Current progress and future challenges. J Integr Plant Biol. :doi: 10.1111/jipb.13599.   AT1G14660 (TAIR) Reference: December 18th, 2023
Gene Product: April 26th, 2021
Gene Model: August 20th, 2018
4 months agolac18 laccase18:
 
GRMZM2G388587
Liang, XY et al. 2023. Designing salt stress-resilient crops: Current progress and future challenges. J Integr Plant Biol. :doi: 10.1111/jipb.13599.     Reference: December 18th, 2023
Gene Product: March 31st, 2018
Gene Model: March 3rd, 2020
4 months agonhx9 Na+/H+ antiporter 9:
 
GRMZM2G171507
Liang, XY et al. 2023. Designing salt stress-resilient crops: Current progress and future challenges. J Integr Plant Biol. :doi: 10.1111/jipb.13599.     Reference: December 18th, 2023
Gene Product: April 26th, 2021
Gene Model: March 23rd, 2020
4 months agocyp40 cytochrome P450 40:
 
GRMZM2G013956
Liang, XY et al. 2023. Designing salt stress-resilient crops: Current progress and future challenges. J Integr Plant Biol. :doi: 10.1111/jipb.13599.     Reference: December 18th, 2023
Gene Product: December 30th, 2022
Gene Model: December 3rd, 2020
4 months agoGRMZM2G071119  :
 
GRMZM2G071119
Liang, XY et al. 2023. Designing salt stress-resilient crops: Current progress and future challenges. J Integr Plant Biol. :doi: 10.1111/jipb.13599.     Reference: December 18th, 2023
Gene Product: November 30th, 2021
Gene Model: May 3rd, 2021
4 months agostl1 salt-tolerant locus1:
 
GRMZM2G472278
Liang, XY et al. 2023. Designing salt stress-resilient crops: Current progress and future challenges. J Integr Plant Biol. :doi: 10.1111/jipb.13599.     Reference: December 18th, 2023
Gene Product: April 25th, 2022
Variation: April 25th, 2022
Gene Model: April 25th, 2022
4 months agocbl4 calcineurin B-like2:
6.06
GRMZM2G001221
Liang, XY et al. 2023. Designing salt stress-resilient crops: Current progress and future challenges. J Integr Plant Biol. :doi: 10.1111/jipb.13599.     Reference: December 18th, 2023
Gene Product: October 19th, 2016
Gene Model: October 19th, 2016
4 months agocgt2 C-glucosyl transferase2:
6.05
   Liang, XY et al. 2023. Designing salt stress-resilient crops: Current progress and future challenges. J Integr Plant Biol. :doi: 10.1111/jipb.13599.     Reference: December 18th, 2023
Gene Product: November 18th, 2020
Variation: September 25th, 2007
4 months agocl54662_1  :
3.09
   Leyla Nazari et al. 2023. Identification of biomarker genes from multiple studies for abiotic stress in maize through machine learning J Biosciences. 49:1.     Reference: December 16th, 2023
Variation: September 25th, 2007
4 months agohrg1 hydroxyproline rich glycoprotein1:
2.04
GRMZM2G168651
Leyla Nazari et al. 2023. Identification of biomarker genes from multiple studies for abiotic stress in maize through machine learning J Biosciences. 49:1.     Reference: December 16th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: February 6th, 2018
4 months agoabh2 abscisic acid 8'-hydroxylase2:
 
GRMZM2G126505
Dating Zhong et al. 2023. Targeted A-to-T and A-to-C base replacement in maize using an optimized adenine base editor Plant Biotechnol J. :doi: 10.1111/pbi.14256.     Reference: December 16th, 2023
Gene Product: February 15th, 2013
Variation: September 1st, 2011
Gene Model: February 15th, 2013
4 months agoIDP183  :
2.05
GRMZM2G152089
Leyla Nazari et al. 2023. Identification of biomarker genes from multiple studies for abiotic stress in maize through machine learning J Biosciences. 49:1.     Reference: December 16th, 2023
Variation: March 31st, 2005
Gene Model: February 19th, 2019
4 months agobhlh202 bHLH-transcription factor 202:
 
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Gene Product: September 14th, 2016
4 months agobhlh204 bHLH-transcription factor 204:
 
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Gene Product: September 14th, 2016
Variation: October 24th, 2022
4 months agobhlh190 bHLH-transcription factor 190:
 
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Gene Product: September 14th, 2016
4 months agobhlh148 bHLH-transcription factor 148:
2.02
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Variation: September 25th, 2007
4 months agocsu845  :
3.09
GRMZM2G364528
Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Variation: September 1st, 2003
Gene Model: March 23rd, 2018
4 months agobhlh19 bHLH-transcription factor 19:
8.01 - 8.02
GRMZM2G066057
Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Variation: September 1st, 2003
Gene Model: September 16th, 2018
4 months agobnlg1754  :
3.09
GRMZM2G087769
Carvalho, VP et al. 2023. Recurrent selection effects on the genetic structure of maize landrace assessed by SSR markers Cuad Edu Desarrollo. 15:16063–16081.     Reference: December 15th, 2023
Variation: September 1st, 2003
Gene Model: March 22nd, 2018
4 months agobnlg2323  :
5.04
GRMZM2G121366
Carvalho, VP et al. 2023. Recurrent selection effects on the genetic structure of maize landrace assessed by SSR markers Cuad Edu Desarrollo. 15:16063–16081.     Reference: December 15th, 2023
Variation: September 1st, 2003
Gene Model: June 29th, 2018
4 months agobhlh104  :
3.04
GRMZM5G821755
Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Variation: April 5th, 2018
Gene Model: March 30th, 2018
4 months agoumc1252  :
2.09
GRMZM2G023585
Carvalho, VP et al. 2023. Recurrent selection effects on the genetic structure of maize landrace assessed by SSR markers Cuad Edu Desarrollo. 15:16063–16081.     Reference: December 15th, 2023
Variation: May 5th, 2021
Gene Model: February 16th, 2018
4 months agoumc1352a  :
6.05
GRMZM2G032896
Carvalho, VP et al. 2023. Recurrent selection effects on the genetic structure of maize landrace assessed by SSR markers Cuad Edu Desarrollo. 15:16063–16081.     Reference: December 15th, 2023
Variation: August 26th, 2018
Gene Model: August 27th, 2018
4 months agoumc1354  :
1.00
   Carvalho, VP et al. 2023. Recurrent selection effects on the genetic structure of maize landrace assessed by SSR markers Cuad Edu Desarrollo. 15:16063–16081.     Reference: December 15th, 2023
Variation: September 1st, 2003
4 months agoumc1394  :
3.01
GRMZM2G097959
Carvalho, VP et al. 2023. Recurrent selection effects on the genetic structure of maize landrace assessed by SSR markers Cuad Edu Desarrollo. 15:16063–16081.     Reference: December 15th, 2023
Variation: September 1st, 2003
Gene Model: April 2nd, 2018
4 months agoumc1486  :
1.07
GRMZM2G389567
Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Variation: September 1st, 2003
Gene Model: November 10th, 2016
4 months agoumc1524  :
5.06
AC185464.3_FG003
Carvalho, VP et al. 2023. Recurrent selection effects on the genetic structure of maize landrace assessed by SSR markers Cuad Edu Desarrollo. 15:16063–16081.     Reference: December 15th, 2023
Variation: September 1st, 2003
Gene Model: July 12th, 2018
4 months agoumc1538a  :
1.11
GRMZM5G831951
Carvalho, VP et al. 2023. Recurrent selection effects on the genetic structure of maize landrace assessed by SSR markers Cuad Edu Desarrollo. 15:16063–16081.     Reference: December 15th, 2023
Variation: September 1st, 2003
Gene Model: November 16th, 2016
4 months agobhlh10 bHLH-transcription factor 10:
 
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Gene Product: September 14th, 2016
Variation: December 17th, 2018
4 months agobhlh12 bHLH-transcription factor 12:
 
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Gene Product: September 14th, 2016
4 months agobhlh121 bHLH-transcription factor 121:
 
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Variation: March 20th, 2023
4 months agobhlh136 bHLH-transcription factor 136:
 
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Variation: March 17th, 2021
4 months agobhlh172 bHLH-transcription factor 172:
 
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.   AT1G51070 (TAIR) Reference: December 15th, 2023
Gene Product: September 14th, 2016
4 months agobhlh175 bHLH-transcription factor 175:
 
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.   AT3G26744 (TAIR) Reference: December 15th, 2023
Gene Product: September 14th, 2016
4 months agobhlh35 bHLH-transcription factor 35:
 
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Variation: May 10th, 2016
4 months agobhlh36 bHLH-transcription factor 36:
 
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Variation: August 9th, 2018
4 months agobhlh52 bHLH-transcription factor 52:
 
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Gene Product: September 14th, 2016
4 months agobhlh59 bHLH-transcription factor 59:
 
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Gene Product: September 14th, 2016
4 months agobhlh61 bHLH-transcription factor 61:
 
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Gene Product: September 14th, 2016
4 months agobhlh68 bHLH-transcription factor 68:
 
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Variation: August 5th, 2022
4 months agobhlh82 bHLH-transcription factor 82:
 
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Gene Product: September 14th, 2016
Variation: August 30th, 2019
4 months agobhlh85 bHLH-transcription factor 85:
 
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Gene Product: September 14th, 2016
4 months agobhlh87 bHLH-transcription factor 87:
 
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Gene Product: September 14th, 2016
4 months agobhlh88 bHLH-transcription factor 88:
 
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Gene Product: September 14th, 2016
4 months agobhlh93 bHLH-transcription factor 93:
 
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Gene Product: September 14th, 2016
4 months agobhlh97 bHLH-transcription factor 97:
9.07
AC149829.2_FG004
Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Variation: September 1st, 2003
Gene Model: March 8th, 2018
4 months agoumc1961  :
2.02
GRMZM2G155217
Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Variation: March 17th, 2021
Gene Model: February 27th, 2018
4 months agoumc2227  :
1.04
GRMZM2G412430
Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Variation: January 6th, 2017
Gene Model: January 6th, 2017
4 months agobhlh141 bHLH-transcription factor 141:
4.03
GRMZM2G080168
Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Variation: June 11th, 2018
Gene Model: June 11th, 2018
4 months agoptf1 Pi starvation-induced transcription factor1:
9.01 - 9.02
GRMZM2G024530
Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.   LOC_Os02g35660 (MSU/TIGR)
Os02g0564700 (Gramene)
Reference: December 15th, 2023
Gene Product: September 14th, 2016
Variation: April 23rd, 2011
Gene Model: April 19th, 2011
4 months agobhlh132 bHLH-transcription factor 132:
3.05
GRMZM2G114873
Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Gene Product: September 14th, 2016
Gene Model: September 12th, 2016
4 months agoupb1 upbeat1:
 
GRMZM2G040364
Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.   AT2G47270 (TAIR) Reference: December 15th, 2023
Gene Product: September 14th, 2016
Gene Model: September 22nd, 2018
4 months agolrl3 ljrhl1-like3:
5.08
GRMZM5G832135
Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.   AT5G58010 (TAIR) Reference: December 15th, 2023
Gene Product: September 14th, 2016
Gene Model: December 17th, 2018
4 months agobhlh185 bHLH-transcription factor 185:
 
GRMZM2G350312
Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.   AT3G47640 (TAIR)
LOC_Os03g26210 (MSU/TIGR)
Os03g0379300 (Gramene)
Reference: December 15th, 2023
Gene Product: September 14th, 2016
Gene Model: May 2nd, 2022
4 months agopco129491  :
8.07
   Corinna Thoben et al. 2023. Automatic annotation of the bHLH gene family in plants BMC Genomics. 24:780.     Reference: December 15th, 2023
Variation: September 25th, 2007
4 months agomn7 miniature seed7:
2.04
GRMZM2G018059
Jianrui Li et al. 2023. ZmELP1, an Elongator complex subunit, is required for the maintenance of histone acetylation and RNA Pol II phosphorylation in maize kernels. Plant Biotechnol J. :doi: 10.1111/pbi.14262.     Reference: December 15th, 2023
Gene Product: December 15th, 2023
Variation: December 15th, 2023
Gene Model: February 19th, 2019
4 months agoimpb9 importin beta9:
 
   Huang, X et al. 2023. Maize DDK1 encoding an Importin-4 β protein is essential for seed development and grain filling by mediating nuclear exporting of eIF1A. New Phytol.     Reference: December 14th, 2023
Gene Product: November 15th, 2022
Variation: December 14th, 2023
4 months agocdk3 cyclin-dependent kinase3:
 
   Xinran Gao et al. 2023. Identification of ceRNA-vsiRNA-mRNA network for exploring the mechanism underlying pathogenesis of sugarcane mosaic virus in resistant and susceptible maize inbred lines Phytopathol Res. 5:60.     Reference: December 14th, 2023
Gene Product: October 19th, 2022
4 months agoles8 lesion8:
9.02
   Li, JK et al. 2023. Characterization and fine mapping of a maize lesion mimic mutant (Les8) with enhanced resistance to Curvularia leaf spot and southern leaf blight. Theor Appl Genet. 137:7.     Reference: December 14th, 2023
Variation: September 1st, 2003
4 months agoumc1204  :
 
GRMZM2G164088
Xinran Gao et al. 2023. Identification of ceRNA-vsiRNA-mRNA network for exploring the mechanism underlying pathogenesis of sugarcane mosaic virus in resistant and susceptible maize inbred lines Phytopathol Res. 5:60.     Reference: December 14th, 2023
Variation: September 1st, 2003
Gene Model: February 15th, 2020
4 months agoarftf11 ARF-transcription factor 11:
 
   Xinran Gao et al. 2023. Identification of ceRNA-vsiRNA-mRNA network for exploring the mechanism underlying pathogenesis of sugarcane mosaic virus in resistant and susceptible maize inbred lines Phytopathol Res. 5:60.     Reference: December 14th, 2023
Gene Product: January 29th, 2022
Variation: July 7th, 2017
4 months agohb13 Homeobox-transcription factor 13:
 
   Gallagher, JP et al. 2023. GRASSY TILLERS1 (GT1) and SIX-ROWED SPIKE1 (VRS1) homologs share conserved roles in growth repression Proc Natl Acad Sci, USA. 120:e2311961120.     Reference: December 14th, 2023
Variation: December 14th, 2023
4 months agoftr1 ferredoxin-thioredoxin1:
9.01
GRMZM2G122793
Li, JK et al. 2023. Characterization and fine mapping of a maize lesion mimic mutant (Les8) with enhanced resistance to Curvularia leaf spot and southern leaf blight. Theor Appl Genet. 137:7.     Reference: December 14th, 2023
Gene Product: August 31st, 2020
Variation: September 2nd, 2015
Gene Model: September 2nd, 2015
4 months agosdg127 set domain gene127:
 
GRMZM2G473138
Shu, GP et al. 2023. Identification of QTNs, QTN-by-environment interactions for plant height and ear height in maize multi-environment GWAS. Frontiers in Plant Science. 14:1284403.     Reference: December 14th, 2023
Gene Product: June 30th, 2017
Gene Model: June 29th, 2017
4 months agomkk2 mitogen-activated protein kinase kinase2:
 
GRMZM2G400470
Li, JK et al. 2023. Characterization and fine mapping of a maize lesion mimic mutant (Les8) with enhanced resistance to Curvularia leaf spot and southern leaf blight. Theor Appl Genet. 137:7.   AT4G29810 (TAIR) Reference: December 14th, 2023
Gene Product: July 12th, 2013
Gene Model: September 22nd, 2018
4 months agosaur76 small auxin up RNA76:
 
GRMZM2G425072
Shu, GP et al. 2023. Identification of QTNs, QTN-by-environment interactions for plant height and ear height in maize multi-environment GWAS. Frontiers in Plant Science. 14:1284403.     Reference: December 14th, 2023
Gene Product: November 26th, 2021
Gene Model: November 15th, 2019
4 months agogogat1 glutamate synthase1:
 
GRMZM2G077054
Stefania Fortunato et al. 2023. The Role of Glutamine Synthetase (GS) and Glutamate Synthase (GOGAT) in the Improvement of Nitrogen Use Efficiency in Cereals Biomolecules. 13:1771.     Reference: December 14th, 2023
Gene Product: January 2nd, 2022
Gene Model: January 2nd, 2022
4 months agoeif1 eukaryotic initiation factor1:
 
GRMZM2G101859
Huang, X et al. 2023. Maize DDK1 encoding an Importin-4 β protein is essential for seed development and grain filling by mediating nuclear exporting of eIF1A. New Phytol.     Reference: December 14th, 2023
Gene Product: March 4th, 2022
Gene Model: March 4th, 2022
4 months agohug1 heat up-regulated gene1:
 
GRMZM2G103179
Li, JK et al. 2023. Characterization and fine mapping of a maize lesion mimic mutant (Les8) with enhanced resistance to Curvularia leaf spot and southern leaf blight. Theor Appl Genet. 137:7.     Reference: December 14th, 2023
Gene Product: June 17th, 2022
Variation: June 17th, 2022
Gene Model: June 17th, 2022
4 months agoatpB (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agondhB-II (cp) nicotinamide adenine dinucleotide dehydrogenaseB2:
 
GRMZM5G810298
Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
Gene Model: June 2nd, 2020
4 months agoatpE (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agondhF (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agopsbK (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agopsbI (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnT (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnD (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnE (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agopsbM (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agondhJ (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agoORF185 (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agocemA (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agopsbT (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agopsbN (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agoinfA (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agoORF321 (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agondhG (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agomus1 MutS homolog1:
7.04
GRMZM2G056075
Xinran Gao et al. 2023. Whole-transcriptome characterization and functional analysis of lncRNA-miRNA-mRNA regulatory networks responsive to sugarcane mosaic virus in maize resistant and susceptible inbred lines Int J Biol Macromol. :doi: 10.1016/j.ijbiomac.2023.128685.     Reference: December 13th, 2023
Gene Product: August 15th, 2005
Variation: January 28th, 2013
Gene Model: August 5th, 2015
4 months agotpi5 triose phosphate isomerase5:
8.07 - 8.08
GRMZM2G146206
Xinran Gao et al. 2023. Whole-transcriptome characterization and functional analysis of lncRNA-miRNA-mRNA regulatory networks responsive to sugarcane mosaic virus in maize resistant and susceptible inbred lines Int J Biol Macromol. :doi: 10.1016/j.ijbiomac.2023.128685.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
Gene Model: January 15th, 2015
4 months agochn1 chitinase chem1:
3.08
GRMZM2G453805
Guo, HL et al. 2023. Phenotypic and Proteomic Insights into Differential Cadmium Accumulation in Maize Kernels Genes. 14:2204.     Reference: December 13th, 2023
Gene Product: May 31st, 2021
Variation: November 30th, 2007
Gene Model: June 21st, 2015
4 months agocta1 chitinase A1:
2.04
   Guo, HL et al. 2023. Phenotypic and Proteomic Insights into Differential Cadmium Accumulation in Maize Kernels Genes. 14:2204.     Reference: December 13th, 2023
Gene Product: May 31st, 2021
Variation: September 1st, 2003
4 months agosbp25 SBP-transcription factor 25:
 
   Xinran Gao et al. 2023. Whole-transcriptome characterization and functional analysis of lncRNA-miRNA-mRNA regulatory networks responsive to sugarcane mosaic virus in maize resistant and susceptible inbred lines Int J Biol Macromol. :doi: 10.1016/j.ijbiomac.2023.128685.     Reference: December 13th, 2023
Gene Product: July 5th, 2019
4 months agoatpH (cp) ATPaseH:
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: October 21st, 2003
4 months agopsbB (cp)  :
 
GRMZM5G808939
Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
Gene Model: June 16th, 2020
4 months agopsbF (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agopetD (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agopetB (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agopetA (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agopetL (cp) ORF of 31 residues:
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agopetG (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agopsaC (cp) psaC:
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agondhD (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnA(UGC)-I (cp) plastid Ala tDNA isoacceptor (UGC):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnI(GAU)-I (cp) plastid Ile tDNA isoacceptor (GAU):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnfM(CAU) (cp) plastid initiator Met tDNA isoacceptor (CAU):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnG(GCC) (cp) plastid Gly tDNA isoacceptor (GCC):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnG(UCC) (cp) plastid Gly tDNA isoacceptor (UCC):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnR(UCU) (cp) plastid Arg tDNA isoacceptor (UCU):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnS(GCU) (cp) plastid Ser tDNA isoacceptor (GCU):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnP(UGG) (cp) plastid Pro tDNA isoacceptor (UGG):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnW(CCA) (cp) plastid Trp tDNA isoacceptor (CCA):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnS(GGA) (cp) plastid Ser tDNA isoacceptor (GGA):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnF(GAA) (cp) plastid Phe tDNA isoacceptor (GAA):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnT(UGU) (cp) plastid Thr tDNA isoacceptor (UGU):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnL(CAA)-I (cp) plastid Leu tDNA isoacceptor (CAA):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnV(UAC) (cp) plastid Val tDNA isoacceptor (UAC):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnL(UAA) (cp) plastid Leu tDNA isoacceptor (UAA):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnS(UGA) (cp) plastid Ser tDNA isoacceptor (UGA):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnR(ACG)-I (cp) plastid Arg tDNA isoacceptor (ACG):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnN(GUU)-I (cp) plastid Asn tDNA isoacceptor (GUU):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnH(GUG)-I (cp) plastid His tDNA isoacceptor (GUG)a:
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnV(GAC)-I (cp) plastid Val tDNA isoacceptor (GAC):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agondhE (cp) NADH-plastoquinone oxidoreductase, chain 4L, plast:
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agondhA (cp) NADH-plastoquinone oxidoreductase chain 1, plastid:
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agorps7-I (cp) 30S ribosomal protein S7 gene:
 
GRMZM5G806488
Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
Gene Model: June 23rd, 2021
4 months agorps7-II (cp) 30S ribosomal protein S7 gene:
 
GRMZM5G844628
Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
Gene Model: June 23rd, 2021
4 months agorpl22 (cp) 50S ribosomal protein L22 gene:
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agorpl16 (cp) 50S ribosomal protein L16 gene:
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agorpoA (cp) Plastid DNA-directed RNA polymerase alpha chain:
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agopsbH (cp)  :
 
GRMZM5G831399
Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
Gene Model: September 3rd, 2021
4 months agorpl20 (cp) 50S ribosomal protein L20 gene:
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agopsbE (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agopsbL (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agondhC (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agondhK (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agorps14 (cp) 30S ribosomal protein S14 gene:
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agoatpA (cp)  :
 
GRMZM5G875287
Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
Gene Model: July 7th, 2022
4 months agoatpF (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agoatpI (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agorpoC2 (cp) plastid DNA-directed RNA polymerase beta'' chain:
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agorpoC1 (cp) plastid DNA-directed RNA polymerase beta' chain:
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agorpoB (cp) plastid DNA-directed RNA polymerase beta chain:
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agopsbC (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnA(UGC)-II (cp) plastid Ala tDNA isoacceptor (UGC):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnH(GUG)-II (cp) plastid His tDNA isoacceptor (GUG):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnI(GAU)-II (cp) plastid Ile tDNA isoacceptor (GAU):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnL(CAA)-II (cp) plastid Leu tDNA isoacceptor (CAA):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnN(GUU)-II (cp) plastid Asn tDNA isoacceptor (GUU):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnR(ACG)-II (cp) plastid Arg tDNA isoacceptor (ACG):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agotrnV(GAC)-II (cp) plastid Val tDNA isoacceptor (GAC):
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agondhB-I (cp) nicotinamide adenine dinucleotide dehydrogenaseB1:
 
GRMZM5G876106
Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
Gene Model: June 2nd, 2020
4 months agorps3 (cp) 30S ribosomal protein S3 gene:
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agorpl32 (cp) 50S ribosomal protein L32 gene:
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agondhI (cp)  :
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agopsaJ (cp) photosystemI, subunitJ:
 
   Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
4 months agopsbJ (cp)  :
 
GRMZM5G834496
Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
Gene Model: December 26th, 2016
4 months agocbp2 calmodulin binding protein2:
4.09
GRMZM2G018837
Xinran Gao et al. 2023. Whole-transcriptome characterization and functional analysis of lncRNA-miRNA-mRNA regulatory networks responsive to sugarcane mosaic virus in maize resistant and susceptible inbred lines Int J Biol Macromol. :doi: 10.1016/j.ijbiomac.2023.128685.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
Variation: September 26th, 2012
Gene Model: July 27th, 2016
4 months agohmt4 homocysteine S-methyltransferase4:
3.07
GRMZM2G039166
Guo, HL et al. 2023. Phenotypic and Proteomic Insights into Differential Cadmium Accumulation in Maize Kernels Genes. 14:2204.     Reference: December 13th, 2023
Gene Product: July 19th, 2004
Variation: September 25th, 2007
Gene Model: March 3rd, 2015
4 months agopdi8 protein disulfide isomerase8:
7.02
GRMZM2G389173
Guo, HL et al. 2023. Phenotypic and Proteomic Insights into Differential Cadmium Accumulation in Maize Kernels Genes. 14:2204.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
Variation: January 13th, 2016
Gene Model: December 18th, 2015
4 months agoprdx1 peroxiredoxin1:
 
GRMZM2G129761
Guo, HL et al. 2023. Phenotypic and Proteomic Insights into Differential Cadmium Accumulation in Maize Kernels Genes. 14:2204.     Reference: December 13th, 2023
Gene Product: February 4th, 2021
Gene Model: June 22nd, 2021
4 months agorps19-III (cp) chloroplast 30S ribosomal protein S19:
 
GRMZM2G427404
Hope Y Hua et al. 2023. RIP-Seq analysis of non-PPR chloroplast editing factors reveals broad RNA interactions and enrichment of less efficiently translated RNAs by OZ1 and ORRM1 complexes. Plant J. :doi: 10.1111/tpj.16581.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
Gene Model: August 28th, 2021
4 months agopx20 peroxidase20:
 
GRMZM2G320269
Guo, HL et al. 2023. Phenotypic and Proteomic Insights into Differential Cadmium Accumulation in Maize Kernels Genes. 14:2204.     Reference: December 13th, 2023
Gene Product: September 18th, 2015
Gene Model: September 1st, 2021
4 months agommt1 methionine S-methyltransferase1:
8.05
GRMZM2G098031
Xinran Gao et al. 2023. Whole-transcriptome characterization and functional analysis of lncRNA-miRNA-mRNA regulatory networks responsive to sugarcane mosaic virus in maize resistant and susceptible inbred lines Int J Biol Macromol. :doi: 10.1016/j.ijbiomac.2023.128685.     Reference: December 13th, 2023
Gene Product: October 25th, 2019
Variation: September 20th, 2018
Gene Model: September 20th, 2018
4 months agocel10 cellulase10:
8.03
GRMZM2G331566
Guo, HL et al. 2023. Phenotypic and Proteomic Insights into Differential Cadmium Accumulation in Maize Kernels Genes. 14:2204.     Reference: December 13th, 2023
Gene Product: March 20th, 2023
Gene Model: June 24th, 2022
4 months agomsf1 mRNA splicing factor1:
4.00
GRMZM2G057450
Xinran Gao et al. 2023. Whole-transcriptome characterization and functional analysis of lncRNA-miRNA-mRNA regulatory networks responsive to sugarcane mosaic virus in maize resistant and susceptible inbred lines Int J Biol Macromol. :doi: 10.1016/j.ijbiomac.2023.128685.     Reference: December 13th, 2023
Gene Product: September 1st, 2003
Variation: January 27th, 2013
Gene Model: July 28th, 2016
4 months agowakl54 wall associated kinase like54:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agorlk12 receptor-like protein kinase12:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: July 10th, 2019
Variation: December 29th, 2022
4 months agorlk13 receptor-like protein kinase13:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: July 10th, 2019
4 months agoZm00001eb257480  :
 
   Duan, HY et al. 2023. Identification of novel loci associated with starch content in maize kernels by a genome-wide association study using an enlarged SNP panel Mol Breed. 43:91.     Reference: December 12th, 2023
Gene Product: November 27th, 2023
4 months agowakl3 wall-associated receptor kinase-like3:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl1 wall associated kinase like1:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl4 wall associated kinase like4:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl6 wall associated kinase like6:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl8 wall associated kinase like8:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl9 wall associated kinase like9:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl10 wall associated kinase like10:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl13 wall associated kinase like13:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl15 wall associated kinase like15:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl17 wall associated kinase like17:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl18 wall associated kinase like18:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl20 wall associated kinase like20:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl23 wall associated kinase like23:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl26 wall associated kinase like26:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl27 wall associated kinase like27:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl28 wall associated kinase like28:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl29 wall associated kinase like29:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl31 wall associated kinase like31:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl32 wall associated kinase like32:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl33 wall associated kinase like33:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl34 wall associated kinase like34:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl35 wall associated kinase like35:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl36 wall associated kinase like36:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl38 wall associated kinase like38:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl41 wall associated kinase like41:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl43 wall associated kinase like43:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl45 wall associated kinase like45:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl46 wall associated kinase like46:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl48 wall associated kinase like48:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl51 wall associated kinase like51:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl55 wall associated kinase like55:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl56 wall associated kinase like56:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl57 wall associated kinase like57:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agowakl58 wall associated kinase like58:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agosrk1 S-receptor kinase1:
2.09
AC217293.3_FG007
Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: July 10th, 2019
Variation: September 1st, 2003
Gene Model: July 1st, 2015
4 months agowakl37 wall associated kinase like37:
6.07
GRMZM2G017157
Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
Gene Model: July 3rd, 2021
4 months agowakl14 wall associated kinase like14:
2.04
GRMZM2G145045
Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
Gene Model: April 24th, 2021
4 months agowakl50 wall associated kinase like50:
8.02
GRMZM2G172368
Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
Gene Model: July 9th, 2021
4 months agowakl22 wall associated kinase like22:
3.04
GRMZM2G013790
Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
Gene Model: May 10th, 2021
4 months agowakl2a wall associated kinase like2a:
1.06
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
4 months agoclx2 calnexin homolog2:
10.04
GRMZM2G022180
Duan, HY et al. 2023. Identification of novel loci associated with starch content in maize kernels by a genome-wide association study using an enlarged SNP panel Mol Breed. 43:91.     Reference: December 12th, 2023
Gene Product: September 1st, 2003
Variation: September 29th, 2015
Gene Model: September 29th, 2015
4 months agobnlg1740  :
6.07
GRMZM2G023133
Duan, HY et al. 2023. Identification of novel loci associated with starch content in maize kernels by a genome-wide association study using an enlarged SNP panel Mol Breed. 43:91.     Reference: December 12th, 2023
Variation: September 1st, 2003
Gene Model: August 29th, 2018
4 months agoptk5 receptor-like kinase4:
8.02
GRMZM2G473511
Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: July 10th, 2019
Gene Model: July 1st, 2015
4 months agoabi35 ABI3-VP1-transcription factor 35:
 
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: January 29th, 2022
4 months agohtn1 Helminthosporium turcicum resistanceN1:
8.06
GRMZM2G164612
Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.   At1g66980 (TAIR)
LOC_Os01g49580 (MSU/TIGR)
Reference: December 12th, 2023
Gene Product: July 10th, 2019
Variation: July 14th, 2015
Gene Model: July 1st, 2015
4 months agoohp2 opaque2 heterodimerizing protein2:
5.01
   Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: September 1st, 2003
Variation: April 25th, 2015
4 months agowakl2 wall associated kinase like2:
1.06
GRMZM2G115981
Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
Variation: March 21st, 2006
Gene Model: June 7th, 2017
4 months agolrk1 Ser/Thr receptor-like kinase1:
8.02
GRMZM2G064750
Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
Variation: January 8th, 2013
Gene Model: August 21st, 2015
4 months agowakl25 wall associated kinase like25:
 
GRMZM2G028568
Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
Gene Model: May 5th, 2020
4 months agoRSZ20  :
 
GRMZM2G080930
Duan, HY et al. 2023. Identification of novel loci associated with starch content in maize kernels by a genome-wide association study using an enlarged SNP panel Mol Breed. 43:91.     Reference: December 12th, 2023
Gene Product: October 18th, 2023
Gene Model: January 25th, 2021
4 months agorlk8 receptor-like protein kinase8:
 
GRMZM2G144028
Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: July 10th, 2019
Gene Model: February 3rd, 2021
4 months agoaaap38 amino acid/auxin permease38:
 
GRMZM2G080843
Duan, HY et al. 2023. Identification of novel loci associated with starch content in maize kernels by a genome-wide association study using an enlarged SNP panel Mol Breed. 43:91.     Reference: December 12th, 2023
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
4 months agowakl42 wall associated kinase like42:
 
GRMZM2G333045
Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
Gene Model: April 9th, 2021
4 months agowakl24 wall associated kinase like24:
 
GRMZM2G041544
Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
Gene Model: April 24th, 2021
4 months agosaur62 small auxin up RNA62:
 
GRMZM2G021049
Duan, HY et al. 2023. Identification of novel loci associated with starch content in maize kernels by a genome-wide association study using an enlarged SNP panel Mol Breed. 43:91.     Reference: December 12th, 2023
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
4 months agonip3b NOD26-like membrane intrinsic protein3b:
 
GRMZM2G358161
Duan, HY et al. 2023. Identification of novel loci associated with starch content in maize kernels by a genome-wide association study using an enlarged SNP panel Mol Breed. 43:91.     Reference: December 12th, 2023
Gene Product: January 27th, 2022
Gene Model: January 27th, 2022
4 months agowakl7 wall associated kinase like7:
 
GRMZM2G059012
Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
Gene Model: March 24th, 2022
4 months agowakl49 wall associated kinase like49:
 
GRMZM2G172396
Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
Gene Model: June 27th, 2022
4 months agodar3 monodehydroascorbate reductase3:
10.03
GRMZM5G828229
Duan, HY et al. 2023. Identification of novel loci associated with starch content in maize kernels by a genome-wide association study using an enlarged SNP panel Mol Breed. 43:91.     Reference: December 12th, 2023
Gene Product: October 15th, 2020
Variation: March 31st, 2005
Gene Model: January 3rd, 2018
4 months agowakl5 wall-associated receptor kinase-like5:
1.06
GRMZM2G134205
Hu, K et al. 2023. Insights into ZmWAKL in maize kernel development: genome-wide investigation and GA-mediated transcription BMC Genomics. 24:760.     Reference: December 12th, 2023
Gene Product: December 7th, 2023
Gene Model: August 25th, 2017
4 months agoFJ184378  :
 
   Lin, YN et al. 2023. A P-type pentatricopeptide repeat protein ZmRF5 promotes 5' region partial cleavages of atp6c transcripts to restore the fertility of CMS-C maize by recruiting a splicing factor. Plant Biotechnol J. :doi: 10.1111/pbi.14263.     Reference: December 11th, 2023
Gene Product: December 27th, 2016
5 months agoglpdh1 glycerol-3-phosphate dehydrogenase1:
 
GRMZM2G155348
Zhu, H et al. 2023. Genetic dissection of maize (Zea maysL.) trace element traits using genome-wide association studies. BMC Plant Biology. 23:631.     Reference: December 8th, 2023
Gene Product: July 12th, 2018
Gene Model: July 11th, 2018
5 months agomagi62468  :
1.12
GRMZM2G023242
Zhu, H et al. 2023. Genetic dissection of maize (Zea maysL.) trace element traits using genome-wide association studies. BMC Plant Biology. 23:631.     Reference: December 8th, 2023
Variation: March 31st, 2005
Gene Model: February 16th, 2019
5 months agocdk2 cyclin-dependent kinase2:
8.04
GRMZM2G149286
Zhu, H et al. 2023. Genetic dissection of maize (Zea maysL.) trace element traits using genome-wide association studies. BMC Plant Biology. 23:631.     Reference: December 8th, 2023
Gene Product: October 19th, 2022
Gene Model: August 30th, 2019
5 months agotps29 terpene synthase29:
 
   Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: December 6th, 2023
5 months agotps30 terpene synthase30:
 
   Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: December 6th, 2023
5 months agotps31 terpene synthase31:
 
   Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: December 6th, 2023
5 months agotps22 terpene synthase22:
 
   Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: December 6th, 2023
5 months agotps16 terpene synthase16:
 
   Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: December 6th, 2023
5 months agotps32 terpene synthase32:
 
   Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: December 6th, 2023
5 months agotps35 terpene synthase35:
 
   Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: December 6th, 2023
5 months agotps25 terpene synthase25:
 
   Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: December 6th, 2023
5 months agotps36 terpene synthase36:
 
   Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: December 6th, 2023
5 months agotps34 terpene synthase34:
 
   Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: December 6th, 2023
5 months agotps33 terpene synthase33:
 
   Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: December 6th, 2023
5 months agodek58 defective kernel58:
 
   Bing Ma et al. 2023. Defective kernel 58 encodes an Rrp15p domain-containing protein essential to ribosome biogenesis and seed development in maize. New Phytol. :doi: 10.1111/nph.19460.     Reference: December 7th, 2023
Gene Product: December 7th, 2023
Variation: December 7th, 2023
5 months agossf1 suppressor of SWI4 1:
 
   Bing Ma et al. 2023. Defective kernel 58 encodes an Rrp15p domain-containing protein essential to ribosome biogenesis and seed development in maize. New Phytol. :doi: 10.1111/nph.19460.     Reference: December 7th, 2023
Gene Product: December 7th, 2023
5 months agowak4 wall-associated receptor kinase4:
 
   Dai, ZK et al. 2023. ZmWAK02 encoding an RD-WAK protein confers maize resistance against gray leaf spot. New Phytol. :doi: 10.1111/nph.19465.     Reference: December 7th, 2023
Gene Product: December 7th, 2023
5 months agotps4 terpene synthase4:
10.03
GRMZM2G117319
Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: September 4th, 2008
Variation: September 4th, 2008
Gene Model: May 28th, 2012
5 months agotps5 terpene synthase5:
10.03
GRMZM2G074309
Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: September 4th, 2008
Variation: September 4th, 2008
Gene Model: May 26th, 2012
5 months agotps26 terpene synthase26:
6.04
GRMZM2G030583
Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: September 5th, 2008
Variation: September 5th, 2008
Gene Model: August 22nd, 2012
5 months agobnlg1079  :
10.03
   Muhammad Ilyas et al. 2023. Association Mapping for Evaluation of Population Structure, Genetic Diversity, and Physiochemical Traits in Drought-Stressed Maize Germplasm Using SSR Markers Plants. 12:4092.     Reference: December 7th, 2023
Variation: September 1st, 2003
5 months agobnlg1484  :
1.03
GRMZM2G019567
Muhammad Ilyas et al. 2023. Association Mapping for Evaluation of Population Structure, Genetic Diversity, and Physiochemical Traits in Drought-Stressed Maize Germplasm Using SSR Markers Plants. 12:4092.     Reference: December 7th, 2023
Variation: September 1st, 2003
Gene Model: July 12th, 2017
5 months agoumc1134  :
7.03
GRMZM2G105253
Muhammad Ilyas et al. 2023. Association Mapping for Evaluation of Population Structure, Genetic Diversity, and Physiochemical Traits in Drought-Stressed Maize Germplasm Using SSR Markers Plants. 12:4092.     Reference: December 7th, 2023
Variation: September 1st, 2003
Gene Model: September 10th, 2018
5 months agosmk501 small kernel 501:
8.01
GRMZM2G007915
Muhammad Ilyas et al. 2023. Association Mapping for Evaluation of Population Structure, Genetic Diversity, and Physiochemical Traits in Drought-Stressed Maize Germplasm Using SSR Markers Plants. 12:4092.     Reference: December 7th, 2023
Gene Product: March 23rd, 2021
Variation: March 23rd, 2021
Gene Model: September 14th, 2018
5 months agothx43 Trihelix-transcription factor 43:
10.03
GRMZM2G110145
Muhammad Ilyas et al. 2023. Association Mapping for Evaluation of Population Structure, Genetic Diversity, and Physiochemical Traits in Drought-Stressed Maize Germplasm Using SSR Markers Plants. 12:4092.     Reference: December 7th, 2023
Gene Product: November 9th, 2021
Variation: September 1st, 2003
Gene Model: December 9th, 2017
5 months agoumc1330  :
10.04
AC225176.2_FG003
Muhammad Ilyas et al. 2023. Association Mapping for Evaluation of Population Structure, Genetic Diversity, and Physiochemical Traits in Drought-Stressed Maize Germplasm Using SSR Markers Plants. 12:4092.     Reference: December 7th, 2023
Variation: September 1st, 2003
Gene Model: December 12th, 2017
5 months agoexpa6 expansin-like6:
1.01
GRMZM2G095968
Muhammad Ilyas et al. 2023. Association Mapping for Evaluation of Population Structure, Genetic Diversity, and Physiochemical Traits in Drought-Stressed Maize Germplasm Using SSR Markers Plants. 12:4092.     Reference: December 7th, 2023
Variation: May 3rd, 2016
Gene Model: May 3rd, 2016
5 months agoumc1608  :
3.04
GRMZM5G871336
Muhammad Ilyas et al. 2023. Association Mapping for Evaluation of Population Structure, Genetic Diversity, and Physiochemical Traits in Drought-Stressed Maize Germplasm Using SSR Markers Plants. 12:4092.     Reference: December 7th, 2023
Variation: September 1st, 2003
Gene Model: April 2nd, 2018
5 months agoprp17 pathogenesis-related protein17:
8.03
GRMZM2G156857
Muhammad Ilyas et al. 2023. Association Mapping for Evaluation of Population Structure, Genetic Diversity, and Physiochemical Traits in Drought-Stressed Maize Germplasm Using SSR Markers Plants. 12:4092.     Reference: December 7th, 2023
Gene Product: December 12th, 2022
Variation: July 13th, 2017
Gene Model: July 14th, 2015
5 months agotrpp4 trehalose-6-phosphate phosphatase4:
4.08
GRMZM2G151044
Muhammad Ilyas et al. 2023. Association Mapping for Evaluation of Population Structure, Genetic Diversity, and Physiochemical Traits in Drought-Stressed Maize Germplasm Using SSR Markers Plants. 12:4092.     Reference: December 7th, 2023
Gene Product: October 3rd, 2020
Variation: April 2nd, 2019
Gene Model: June 7th, 2018
5 months agoprmt3 protein arginine methyltransferase3:
7.05
GRMZM2G041328
Muhammad Ilyas et al. 2023. Association Mapping for Evaluation of Population Structure, Genetic Diversity, and Physiochemical Traits in Drought-Stressed Maize Germplasm Using SSR Markers Plants. 12:4092.     Reference: December 7th, 2023
Gene Product: October 24th, 2022
Variation: September 1st, 2003
Gene Model: July 30th, 2020
5 months agonbcs1 nucleobase:cation symporter1:
1.05
GRMZM2G041050
Muhammad Ilyas et al. 2023. Association Mapping for Evaluation of Population Structure, Genetic Diversity, and Physiochemical Traits in Drought-Stressed Maize Germplasm Using SSR Markers Plants. 12:4092.     Reference: December 7th, 2023
Gene Product: July 14th, 2018
Gene Model: December 17th, 2016
5 months agoumc1959  :
8.05
GRMZM2G090963
Muhammad Ilyas et al. 2023. Association Mapping for Evaluation of Population Structure, Genetic Diversity, and Physiochemical Traits in Drought-Stressed Maize Germplasm Using SSR Markers Plants. 12:4092.     Reference: December 7th, 2023
Variation: September 1st, 2003
Gene Model: September 19th, 2018
5 months agogst17 glutathione transferase17:
5.05
GRMZM2G064255
Muhammad Ilyas et al. 2023. Association Mapping for Evaluation of Population Structure, Genetic Diversity, and Physiochemical Traits in Drought-Stressed Maize Germplasm Using SSR Markers Plants. 12:4092.     Reference: December 7th, 2023
Gene Product: September 1st, 2003
Variation: August 17th, 2010
Gene Model: April 18th, 2017
5 months agostc1 sesquiterpene cyclase1:
9.01
GRMZM2G177098
Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: September 5th, 2008
Variation: June 30th, 2012
Gene Model: August 22nd, 2012
5 months agotps8 terpene synthase8:
1.04 - 1.04
GRMZM2G038153
Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: December 6th, 2023
Variation: May 29th, 2012
Gene Model: May 28th, 2012
5 months agopmm1 phosphomannomutase1:
2.00
GRMZM2G165535
Muhammad Ilyas et al. 2023. Association Mapping for Evaluation of Population Structure, Genetic Diversity, and Physiochemical Traits in Drought-Stressed Maize Germplasm Using SSR Markers Plants. 12:4092.     Reference: December 7th, 2023
Gene Product: October 21st, 2020
Gene Model: February 23rd, 2018
5 months agoumc2356  :
8.06
GRMZM2G054341
Muhammad Ilyas et al. 2023. Association Mapping for Evaluation of Population Structure, Genetic Diversity, and Physiochemical Traits in Drought-Stressed Maize Germplasm Using SSR Markers Plants. 12:4092.     Reference: December 7th, 2023
Variation: September 23rd, 2018
Gene Model: September 23rd, 2018
5 months agotps3 terpene synthase3:
 
GRMZM2G064406
Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: December 6th, 2023
Variation: May 28th, 2012
Gene Model: May 28th, 2012
5 months agotps7 terpene synthase7:
 
AC217050.4_FG007
Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: July 17th, 2016
Variation: May 28th, 2012
Gene Model: June 8th, 2012
5 months agotps9 terpene synthase9:
 
GRMZM2G465812
Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: September 4th, 2008
Variation: May 28th, 2012
Gene Model: May 28th, 2012
5 months agoks1 kaurene synthase1:
 
GRMZM2G016922
Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: August 16th, 2012
Gene Model: October 27th, 2014
5 months agotps17 terpene synthase17:
 
GRMZM2G010356
Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: December 6th, 2023
Variation: July 17th, 2016
Gene Model: July 17th, 2016
5 months agotps21 terpene synthase21:
 
GRMZM2G011151
Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: December 6th, 2023
Gene Model: September 22nd, 2017
5 months agocpps4 copalyl diphosphate synthase4:
 
AC218998.2_FG011
Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: August 16th, 2012
Gene Model: November 9th, 2018
5 months agohma8 heavy metal ATPase8:
 
GRMZM5G855347
Yan, PS et al. 2023. Biofortification of iron content by regulating a NAC transcription factor in maize Science. 382:1159-1165.     Reference: December 7th, 2023
Gene Product: October 23rd, 2019
Gene Model: October 23rd, 2019
5 months agotps14 terpene synthase14:
 
GRMZM2G319445
Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: December 6th, 2023
Gene Model: July 20th, 2020
5 months agotps27 terpene synthase27:
 
AC205502.4_FG004
Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: December 6th, 2023
Gene Model: July 20th, 2020
5 months agotps12 terpene synthase12:
 
   Kollner, TG et al. 2023. The terpene synthase gene family in maize – a clarification of existing community nomenclature BMC Genomics. 24:744.     Reference: December 7th, 2023
Gene Product: September 3rd, 2008
5 months agoerdh3 early response to dehydration 15-homolog3:
6.05
GRMZM2G093325
Muhammad Ilyas et al. 2023. Association Mapping for Evaluation of Population Structure, Genetic Diversity, and Physiochemical Traits in Drought-Stressed Maize Germplasm Using SSR Markers Plants. 12:4092.     Reference: December 7th, 2023
Gene Product: December 23rd, 2022
Gene Model: May 26th, 2022
5 months agonrat3 nramp aluminum transporter3:
9.06
GRMZM2G178190
Yan, PS et al. 2023. Biofortification of iron content by regulating a NAC transcription factor in maize Science. 382:1159-1165.     Reference: December 7th, 2023
Gene Product: August 17th, 2015
Variation: September 17th, 2022
Gene Model: June 26th, 2020
5 months agocka1 CK2 protein kinase alpha 1:
1.10
   Bing Ma et al. 2023. Defective kernel 58 encodes an Rrp15p domain-containing protein essential to ribosome biogenesis and seed development in maize. New Phytol. :doi: 10.1111/nph.19460.     Reference: December 7th, 2023
Gene Product: December 3rd, 2013
Variation: February 15th, 2006
5 months agoglk28 G2-like-transcription factor 28:
 
   Qiu, YT et al. 2023. Identification of loci conferring resistance to four foliar diseases of maize G3. :doi: 10.1093/g3journal/jkad275.     Reference: December 5th, 2023
Variation: July 15th, 2021
5 months agotdm1 three division mutant1:
 
   Zhang, T et al. 2023. ZmTDM1 encodes a tetratricopeptide repeat domain protein and is required for meiotic exit in maize. Plant J. :doi: 10.1111/tpj.16579.   AT4G20900 (TAIR) Reference: December 4th, 2023
Gene Product: May 20th, 2017
Variation: December 4th, 2023
5 months agohpl1 hydroperoxide lyase1:
 
   Bo Lang et al. 2023. Trichoderma harzianum Cellulase Gene thph2 Affects Trichoderma Root Colonization and Induces Resistance to Southern Leaf Blight in Maize J Fungi. 9:1168.     Reference: December 4th, 2023
Variation: August 1st, 2008
5 months agoaos2 allene oxide synthesis2:
 
GRMZM2G002178
Bo Lang et al. 2023. Trichoderma harzianum Cellulase Gene thph2 Affects Trichoderma Root Colonization and Induces Resistance to Southern Leaf Blight in Maize J Fungi. 9:1168.     Reference: December 4th, 2023
Gene Product: September 1st, 2003
Gene Model: November 25th, 2013
5 months agonrh2 nucleoside N-ribohydrolase2:
 
GRMZM2G134149
Eva Ľuptáková et al. 2023. Plant nucleoside N-ribohydrolases: riboside binding and role in nitrogen storage mobilization Plant J. :doi: 10.1111/tpj.16572.     Reference: December 4th, 2023
Gene Product: April 22nd, 2020
Gene Model: April 22nd, 2020
5 months agonrh4 nucleoside N-ribohydrolase4:
 
GRMZM2G085960
Eva Ľuptáková et al. 2023. Plant nucleoside N-ribohydrolases: riboside binding and role in nitrogen storage mobilization Plant J. :doi: 10.1111/tpj.16572.     Reference: December 4th, 2023
Gene Product: April 22nd, 2020
Gene Model: April 22nd, 2020
5 months agonrh5 nucleoside N-ribohydrolase5:
 
GRMZM2G015344
Eva Ľuptáková et al. 2023. Plant nucleoside N-ribohydrolases: riboside binding and role in nitrogen storage mobilization Plant J. :doi: 10.1111/tpj.16572.     Reference: December 4th, 2023
Gene Product: April 22nd, 2020
Gene Model: April 22nd, 2020
5 months agosina6 seven in absentia6:
 
GRMZM2G009265
Zhang, T et al. 2023. ZmTDM1 encodes a tetratricopeptide repeat domain protein and is required for meiotic exit in maize. Plant J. :doi: 10.1111/tpj.16579.     Reference: December 4th, 2023
Gene Product: January 24th, 2021
Gene Model: January 24th, 2021
5 months agoZm00001d027649  :
 
GRMZM2G062724
Zhang, T et al. 2023. ZmTDM1 encodes a tetratricopeptide repeat domain protein and is required for meiotic exit in maize. Plant J. :doi: 10.1111/tpj.16579.     Reference: December 4th, 2023
Gene Product: January 9th, 2020
Gene Model: April 8th, 2021
5 months agonrh1 nucleoside N-ribohydrolase1:
8.01
GRMZM2G029845
Eva Ľuptáková et al. 2023. Plant nucleoside N-ribohydrolases: riboside binding and role in nitrogen storage mobilization Plant J. :doi: 10.1111/tpj.16572.     Reference: December 4th, 2023
Gene Product: April 22nd, 2020
Gene Model: April 22nd, 2020
5 months agonrh3 nucleoside N-ribohydrolase3:
2.06
GRMZM2G104999
Eva Ľuptáková et al. 2023. Plant nucleoside N-ribohydrolases: riboside binding and role in nitrogen storage mobilization Plant J. :doi: 10.1111/tpj.16572.     Reference: December 4th, 2023
Gene Product: April 22nd, 2020
Gene Model: March 19th, 2020
5 months agosaur37 small auxin up RNA37:
4.04
GRMZM2G420812
Zhao, XQ et al. 2023. Exogenous Serotonin (5-HT) Promotes Mesocotyl and Coleoptile Elongation in Maize Seedlings under Deep-Seeding Stress through Enhancing Auxin Accumulation and Inhibiting Lignin Formation Int J Mol Sci. 24:17061.     Reference: December 2nd, 2023
Gene Product: November 26th, 2021
Gene Model: May 22nd, 2021
5 months agoacco3 1-aminocyclopropane-1-carboxylate oxidase3:
 
GRMZM2G166616
Zhiying Zhu et al. 2023. Dynamic physiological and transcriptomic changes reveal memory effects of salt stress in maize. BMC Genomics. 24:726.     Reference: December 2nd, 2023
Gene Product: May 16th, 2016
Gene Model: May 16th, 2016
5 months agoaas5 auxin amido synthetase5:
 
GRMZM2G060991
Zhao, XQ et al. 2023. Exogenous Serotonin (5-HT) Promotes Mesocotyl and Coleoptile Elongation in Maize Seedlings under Deep-Seeding Stress through Enhancing Auxin Accumulation and Inhibiting Lignin Formation Int J Mol Sci. 24:17061.     Reference: December 2nd, 2023
Gene Product: October 21st, 2019
Gene Model: October 21st, 2019
5 months agosaur79 small auxin up RNA79:
 
GRMZM2G442000
Zhao, XQ et al. 2023. Exogenous Serotonin (5-HT) Promotes Mesocotyl and Coleoptile Elongation in Maize Seedlings under Deep-Seeding Stress through Enhancing Auxin Accumulation and Inhibiting Lignin Formation Int J Mol Sci. 24:17061.     Reference: December 2nd, 2023
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
5 months agowrky128 WRKY-transcription factor 128:
 
GRMZM2G036711
Zhiying Zhu et al. 2023. Dynamic physiological and transcriptomic changes reveal memory effects of salt stress in maize. BMC Genomics. 24:726.     Reference: December 2nd, 2023
Gene Product: July 24th, 2017
Gene Model: December 2nd, 2021
5 months agosmr5 siamese-related5:
9.08 - 9.08
GRMZM2G413337
Ma, XL et al. 2023. Identification and validation of seed dormancy loci and candidate genes and construction of regulatory networks by WGCNA in maize introgression lines. Theor Appl Genet. 136:259.     Reference: December 1st, 2023
Gene Product: March 8th, 2017
Variation: September 1st, 2003
Gene Model: June 27th, 2020
5 months agoumc1715  :
1.09
GRMZM2G171559
Jihai Zhang et al. 2023. Kernel Bioassay Evaluation of Maize Ear Rot and Genome-Wide Association Analysis for Identifying Genetic Loci Associated with Resistance to Fusarium graminearum Infection J Fungi. 9:1157.     Reference: December 1st, 2023
Variation: December 8th, 2016
Gene Model: December 8th, 2016
5 months agoumc1748  :
1.06
GRMZM2G386209
Ma, XL et al. 2023. Identification and validation of seed dormancy loci and candidate genes and construction of regulatory networks by WGCNA in maize introgression lines. Theor Appl Genet. 136:259.     Reference: December 1st, 2023
Variation: December 8th, 2016
Gene Model: December 8th, 2016
5 months agomtl2 metallothionein2:
1.05
GRMZM2G402564
Ma, XL et al. 2023. Identification and validation of seed dormancy loci and candidate genes and construction of regulatory networks by WGCNA in maize introgression lines. Theor Appl Genet. 136:259.     Reference: December 1st, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: July 28th, 2016
5 months agohct13 hydroxycinnamoyltransferase13:
 
GRMZM2G129266
Jihai Zhang et al. 2023. Kernel Bioassay Evaluation of Maize Ear Rot and Genome-Wide Association Analysis for Identifying Genetic Loci Associated with Resistance to Fusarium graminearum Infection J Fungi. 9:1157.     Reference: December 1st, 2023
Gene Product: November 7th, 2015
Gene Model: May 18th, 2016
5 months agovq36 VQ motif-transcription factor36:
 
GRMZM2G174558
Ma, XL et al. 2023. Identification and validation of seed dormancy loci and candidate genes and construction of regulatory networks by WGCNA in maize introgression lines. Theor Appl Genet. 136:259.     Reference: December 1st, 2023
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
5 months agoxgt1 xyloglucan glycosyltransferase1:
 
GRMZM2G142685
Ma, XL et al. 2023. Identification and validation of seed dormancy loci and candidate genes and construction of regulatory networks by WGCNA in maize introgression lines. Theor Appl Genet. 136:259.     Reference: December 1st, 2023
Gene Product: July 2nd, 2020
Gene Model: July 2nd, 2020
5 months agoiqd24 IQ-domain 24:
 
GRMZM2G030882
Ma, XL et al. 2023. Identification and validation of seed dormancy loci and candidate genes and construction of regulatory networks by WGCNA in maize introgression lines. Theor Appl Genet. 136:259.     Reference: December 1st, 2023
Gene Product: May 23rd, 2021
Gene Model: May 23rd, 2021
5 months agostp15 sugar transport protein15:
 
GRMZM2G049372
Ma, XL et al. 2023. Identification and validation of seed dormancy loci and candidate genes and construction of regulatory networks by WGCNA in maize introgression lines. Theor Appl Genet. 136:259.     Reference: December 1st, 2023
Gene Product: January 2nd, 2023
Gene Model: January 12th, 2022
5 months agoperk4 proline-rich extensin-like receptor kinase4:
 
   Mei Liu et al. 2023. Coronatine-Induced Maize Defense against Gibberella Stalk Rot by Activating Antioxidants and Phytohormone Signaling J Fungi. 9:1155.     Reference: November 30th, 2023
Gene Product: September 7th, 2022
5 months agoba2 barren stalk2:
2.04 - 2.05
GRMZM2G399641
Ni, JX et al. 2023. Deploying QTL-seq rapid identification and separation of the major QTLs of tassel branch number for fine-mapping in advanced maize populations Mol Breed. 43:88.     Reference: November 30th, 2023
Gene Product: January 26th, 2019
Variation: January 26th, 2019
Gene Model: January 26th, 2019
5 months agobaf1 barren stalk fastigiate1:
9.02
GRMZM2G072274
Ni, JX et al. 2023. Deploying QTL-seq rapid identification and separation of the major QTLs of tassel branch number for fine-mapping in advanced maize populations Mol Breed. 43:88.   LOC_Os06g04540 (MSU/TIGR)
Os06g0136900 (Gramene)
Reference: November 30th, 2023
Gene Product: November 11th, 2017
Variation: August 15th, 2011
Gene Model: December 8th, 2014
5 months agoln1 linoleic acid1:
6.04 - 6.04
GRMZM2G169089
Yang, N et al. 2023. Two teosintes made modern maize. Science 282: 6674     Reference: November 30th, 2023
Gene Product: August 12th, 2018
Variation: August 16th, 2014
Gene Model: August 16th, 2014
5 months agoumc1483  :
8.01
GRMZM5G872442
Yang, N et al. 2023. Two teosintes made modern maize. Science 282: 6674     Reference: November 30th, 2023
Variation: March 30th, 2007
Gene Model: September 14th, 2018
5 months agogst12 glutathione S-transferase12:
1.01
GRMZM2G096269
Mei Liu et al. 2023. Coronatine-Induced Maize Defense against Gibberella Stalk Rot by Activating Antioxidants and Phytohormone Signaling J Fungi. 9:1155.     Reference: November 30th, 2023
Gene Product: September 1st, 2003
Variation: March 17th, 2006
Gene Model: July 27th, 2016
5 months agopat7 protein S-acyltransferase7:
2.02
GRMZM2G010011
Ni, JX et al. 2023. Deploying QTL-seq rapid identification and separation of the major QTLs of tassel branch number for fine-mapping in advanced maize populations Mol Breed. 43:88.     Reference: November 30th, 2023
Gene Product: February 26th, 2022
Gene Model: December 10th, 2021
5 months agotif5A eukaryotic translation initiation factor 5A:
7.04
   Yang, N et al. 2023. Two teosintes made modern maize. Science 282: 6674     Reference: November 30th, 2023
Variation: January 13th, 2016
5 months agoatm1 ataxia-telangiectasia mutated1:
 
GRMZM2G425751
Yang, N et al. 2023. Two teosintes made modern maize. Science 282: 6674   (AT3G48190 (TAIR) Reference: November 30th, 2023
Gene Product: May 13th, 2014
Variation: June 5th, 2021
Gene Model: November 23rd, 2017
5 months agocct43 CO CO-LIKE TIMING OF CAB1 protein domain43:
 
GRMZM2G005732
Yang, N et al. 2023. Two teosintes made modern maize. Science 282: 6674     Reference: November 30th, 2023
Gene Product: January 11th, 2018
Gene Model: January 11th, 2018
5 months agofut2 galactoside 2-alpha-L-fucosyltransferase2:
 
GRMZM2G127184
Yang, N et al. 2023. Two teosintes made modern maize. Science 282: 6674     Reference: November 30th, 2023
Gene Product: July 2nd, 2020
Gene Model: July 2nd, 2020
5 months agokea1 K+ efflux antiporter 1:
 
GRMZM2G169114
Yang, N et al. 2023. Two teosintes made modern maize. Science 282: 6674     Reference: November 30th, 2023
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
5 months agoacat2 acetyl-CoA acetyltransferase2:
8.01
GRMZM5G860137
Yang, N et al. 2023. Two teosintes made modern maize. Science 282: 6674     Reference: November 30th, 2023
Gene Product: September 1st, 2003
Variation: September 25th, 2007
Gene Model: September 5th, 2021
5 months agotoc34 translocon at outer membrane of chloroplast34:
9.06
GRMZM2G159777
Yang, N et al. 2023. Two teosintes made modern maize. Science 282: 6674     Reference: November 30th, 2023
Gene Product: September 1st, 2003
Variation: August 3rd, 2013
Gene Model: July 28th, 2016
5 months agopmi2 phosphomannose isomerase2:
4.02
GRMZM2G456471
Zhang, HK et al. 2023. Functional analysis of ZmG6PE reveals its role in responses to low-phosphorus stress and regulation of grain yield in maize. Frontiers in Plant Science. 14:1286699.     Reference: November 29th, 2023
Gene Product: October 21st, 2020
Gene Model: April 11th, 2020
5 months agoamo1 amine oxidase1:
10.04
GRMZM2G359298
Zhang, HK et al. 2023. Functional analysis of ZmG6PE reveals its role in responses to low-phosphorus stress and regulation of grain yield in maize. Frontiers in Plant Science. 14:1286699.     Reference: November 29th, 2023
Gene Product: September 1st, 2003
Gene Model: September 29th, 2015
5 months agochn2 chitinase2:
6.01
   Rebecca M Lyon et al. 2023. Undesirable protein sequence variations in maize genes that confer resistance to fungal pathogens and insect pests Plant Gene. :doi: 10.1016/j.plgene.2023.100441.     Reference: November 29th, 2023
Gene Product: May 31st, 2021
Variation: September 1st, 2003
5 months agoabh3 abscisic acid 8'-hydroxylase3:
 
GRMZM2G105954
Yu, T et al. 2023. Identification of Multiple Genetic Loci Related to Low-Temperature Tolerance during Germination in Maize (Zea maize L.) through a Genome-Wide Association Study Curr Issues Mol Biol. 45:9634-9655.     Reference: November 29th, 2023
Gene Product: February 15th, 2013
Gene Model: February 15th, 2013
5 months agopao6 polyamine oxidase6:
2.00
GRMZM2G078033
Zhang, HK et al. 2023. Functional analysis of ZmG6PE reveals its role in responses to low-phosphorus stress and regulation of grain yield in maize. Frontiers in Plant Science. 14:1286699.     Reference: November 29th, 2023
Gene Product: June 10th, 2020
Gene Model: March 7th, 2020
5 months agopropep3 precursor elicitor peptide3:
 
GRMZM2G339117
Wang, L et al. 2024. Feeding Assay to Study the Effect of Phytocytokines on Direct and Indirect Defense in Maize. Methods in Molecular Biology. 2731:133-142.     Reference: November 29th, 2023
Gene Product: October 16th, 2020
Gene Model: May 17th, 2013
5 months agospx5 SPX domain-containing membrane protein5:
4.09
GRMZM2G171423
Zhang, HK et al. 2023. Functional analysis of ZmG6PE reveals its role in responses to low-phosphorus stress and regulation of grain yield in maize. Frontiers in Plant Science. 14:1286699.     Reference: November 29th, 2023
Gene Product: October 9th, 2021
Gene Model: April 26th, 2020
5 months agohex6 hexokinase6:
 
GRMZM2G171373
Zhang, HK et al. 2023. Functional analysis of ZmG6PE reveals its role in responses to low-phosphorus stress and regulation of grain yield in maize. Frontiers in Plant Science. 14:1286699.     Reference: November 29th, 2023
Gene Product: September 15th, 2013
Gene Model: September 15th, 2013
5 months agochn33 chitinase33:
 
GRMZM2G117942
Rebecca M Lyon et al. 2023. Undesirable protein sequence variations in maize genes that confer resistance to fungal pathogens and insect pests Plant Gene. :doi: 10.1016/j.plgene.2023.100441.     Reference: November 29th, 2023
Gene Product: May 31st, 2021
Gene Model: September 16th, 2017
5 months agoggt1 geranylgeranyl transferase1:
 
GRMZM2G151087
Rebecca M Lyon et al. 2023. Undesirable protein sequence variations in maize genes that confer resistance to fungal pathogens and insect pests Plant Gene. :doi: 10.1016/j.plgene.2023.100441.     Reference: November 29th, 2023
Gene Product: January 9th, 2018
Gene Model: January 8th, 2018
5 months agochi4 chalcone flavanone isomerase4:
 
GRMZM2G095778
Rebecca M Lyon et al. 2023. Undesirable protein sequence variations in maize genes that confer resistance to fungal pathogens and insect pests Plant Gene. :doi: 10.1016/j.plgene.2023.100441.     Reference: November 29th, 2023
Gene Product: January 26th, 2021
Gene Model: January 15th, 2018
5 months agodef3 defensin-like protein3:
 
GRMZM2G149869
Rebecca M Lyon et al. 2023. Undesirable protein sequence variations in maize genes that confer resistance to fungal pathogens and insect pests Plant Gene. :doi: 10.1016/j.plgene.2023.100441.     Reference: November 29th, 2023
Gene Product: December 12th, 2022
Variation: July 25th, 2018
Gene Model: July 25th, 2018
5 months agopao3 polyamine oxidase3:
 
GRMZM2G396856
Zhang, HK et al. 2023. Functional analysis of ZmG6PE reveals its role in responses to low-phosphorus stress and regulation of grain yield in maize. Frontiers in Plant Science. 14:1286699.     Reference: November 29th, 2023
Gene Product: June 10th, 2020
Gene Model: June 9th, 2020
5 months agophi2 phosphohexose isomerase2:
 
GRMZM2G076075
Zhang, HK et al. 2023. Functional analysis of ZmG6PE reveals its role in responses to low-phosphorus stress and regulation of grain yield in maize. Frontiers in Plant Science. 14:1286699.     Reference: November 29th, 2023
Gene Product: September 1st, 2003
Gene Model: October 21st, 2020
5 months agochn29 chitinase29:
 
GRMZM2G358153
Rebecca M Lyon et al. 2023. Undesirable protein sequence variations in maize genes that confer resistance to fungal pathogens and insect pests Plant Gene. :doi: 10.1016/j.plgene.2023.100441.     Reference: November 29th, 2023
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
5 months agocipk38 calcineurin B-like-interacting protein kinase38:
 
GRMZM2G170552
Yu, T et al. 2023. Identification of Multiple Genetic Loci Related to Low-Temperature Tolerance during Germination in Maize (Zea maize L.) through a Genome-Wide Association Study Curr Issues Mol Biol. 45:9634-9655.     Reference: November 29th, 2023
Gene Product: August 25th, 2018
Gene Model: July 12th, 2021
5 months agogpe1 glucose-6-phosphate 1-epimerase1:
 
GRMZM2G039588
Zhang, HK et al. 2023. Functional analysis of ZmG6PE reveals its role in responses to low-phosphorus stress and regulation of grain yield in maize. Frontiers in Plant Science. 14:1286699.     Reference: November 29th, 2023
Gene Product: November 29th, 2023
Gene Model: August 27th, 2021
5 months agoalte1 acyl-lipid thioesterase1:
 
GRMZM2G170509
Yu, T et al. 2023. Identification of Multiple Genetic Loci Related to Low-Temperature Tolerance during Germination in Maize (Zea maize L.) through a Genome-Wide Association Study Curr Issues Mol Biol. 45:9634-9655.     Reference: November 29th, 2023
Gene Product: January 3rd, 2023
Gene Model: December 9th, 2021
5 months agoqor1 quinone oxidoreductase1:
5.08
GRMZM2G008728
Rebecca M Lyon et al. 2023. Undesirable protein sequence variations in maize genes that confer resistance to fungal pathogens and insect pests Plant Gene. :doi: 10.1016/j.plgene.2023.100441.     Reference: November 29th, 2023
Gene Product: July 14th, 2023
Variation: July 14th, 2023
Gene Model: May 25th, 2020
5 months agoglu25 beta-glucosidase25:
 
   Gracia Gómez-Anduro et al. 2011. Genome-wide analysis of the beta-glucosidase gene family in maize (Zea mays L. var B73). Plant Mol Biol. 77:159-83.     Reference: November 28th, 2023
Gene Product: June 26th, 2019
5 months agoglu24 beta-glucosidase24:
 
   Gracia Gómez-Anduro et al. 2011. Genome-wide analysis of the beta-glucosidase gene family in maize (Zea mays L. var B73). Plant Mol Biol. 77:159-83.     Reference: November 28th, 2023
Gene Product: June 26th, 2019
5 months agogrf27 general regulatory factor27:
 
   Su, HH et al. 2023. ZmELF6-ZmPRR37 module regulates maize flowering and salt response. Plant Biotechnol J. :doi: 10.1111/pbi.14236.     Reference: November 28th, 2023
Gene Product: March 6th, 2023
5 months agoglu6 beta-glucosidase6:
 
   Gracia Gómez-Anduro et al. 2011. Genome-wide analysis of the beta-glucosidase gene family in maize (Zea mays L. var B73). Plant Mol Biol. 77:159-83.     Reference: November 28th, 2023
Gene Product: June 26th, 2019
5 months agoglu14 beta-glucosidase14:
 
   Gracia Gómez-Anduro et al. 2011. Genome-wide analysis of the beta-glucosidase gene family in maize (Zea mays L. var B73). Plant Mol Biol. 77:159-83.     Reference: November 28th, 2023
Gene Product: June 26th, 2019
5 months agoglu7 beta-glucosidase7:
 
   Gracia Gómez-Anduro et al. 2011. Genome-wide analysis of the beta-glucosidase gene family in maize (Zea mays L. var B73). Plant Mol Biol. 77:159-83.     Reference: November 28th, 2023
Gene Product: June 26th, 2019
5 months agoglu11 beta-glucosidase11:
 
   Gracia Gómez-Anduro et al. 2011. Genome-wide analysis of the beta-glucosidase gene family in maize (Zea mays L. var B73). Plant Mol Biol. 77:159-83.     Reference: November 28th, 2023
Gene Product: June 26th, 2019
5 months agoglu15 beta-glucosidase15:
 
   Gracia Gómez-Anduro et al. 2011. Genome-wide analysis of the beta-glucosidase gene family in maize (Zea mays L. var B73). Plant Mol Biol. 77:159-83.     Reference: November 28th, 2023
Gene Product: June 26th, 2019
5 months agoglu19 beta-glucosidase19:
 
   Gracia Gómez-Anduro et al. 2011. Genome-wide analysis of the beta-glucosidase gene family in maize (Zea mays L. var B73). Plant Mol Biol. 77:159-83.     Reference: November 28th, 2023
Gene Product: June 26th, 2019
5 months agoglu22 beta-glucosidase22:
10.04
GRMZM2G031660
Gracia Gómez-Anduro et al. 2011. Genome-wide analysis of the beta-glucosidase gene family in maize (Zea mays L. var B73). Plant Mol Biol. 77:159-83.     Reference: November 28th, 2023
Gene Product: June 26th, 2019
Gene Model: July 20th, 2021
5 months agowri2 wrinkled1 transcription factor2:
4.08
GRMZM2G174834
Li, H et al. 2023. Multi-omics-driven advances in the understanding of triacylglycerol biosynthesis in oil seeds. Plant J. :doi: 10.1111/tpj.16545.   AT3G54320 (TAIR) Reference: November 28th, 2023
Gene Product: July 5th, 2019
Variation: April 11th, 2011
Gene Model: April 7th, 2011
5 months agoglu26 beta-glucosidase26:
9.06
GRMZM5G828987
Gracia Gómez-Anduro et al. 2011. Genome-wide analysis of the beta-glucosidase gene family in maize (Zea mays L. var B73). Plant Mol Biol. 77:159-83.     Reference: November 28th, 2023
Gene Product: June 26th, 2019
Gene Model: July 17th, 2021
5 months agodek33 defective kernel33:
5.04 - 5.05
GRMZM2G090068
Li, H et al. 2023. Multi-omics-driven advances in the understanding of triacylglycerol biosynthesis in oil seeds. Plant J. :doi: 10.1111/tpj.16545.     Reference: November 28th, 2023
Gene Product: November 13th, 2018
Variation: November 13th, 2018
Gene Model: November 13th, 2018
5 months agoburp8 BURP domain-containing protein-RD22-like8:
4.05
GRMZM2G147756
Su, HH et al. 2023. ZmELF6-ZmPRR37 module regulates maize flowering and salt response. Plant Biotechnol J. :doi: 10.1111/pbi.14236.     Reference: November 28th, 2023
Gene Product: August 18th, 2017
Variation: August 18th, 2017
Gene Model: August 18th, 2017
5 months agoabi20 ABI3-VP1-transcription factor 20:
 
   Su, HH et al. 2023. ZmELF6-ZmPRR37 module regulates maize flowering and salt response. Plant Biotechnol J. :doi: 10.1111/pbi.14236.     Reference: November 28th, 2023
Gene Product: January 29th, 2022
5 months agoabi39 ABI3-VP1-transcription factor 39:
 
   Su, HH et al. 2023. ZmELF6-ZmPRR37 module regulates maize flowering and salt response. Plant Biotechnol J. :doi: 10.1111/pbi.14236.     Reference: November 28th, 2023
Gene Product: January 29th, 2022
5 months agoca5p5 CCAAT-HAP5-transcription factor 55:
 
   Su, HH et al. 2023. ZmELF6-ZmPRR37 module regulates maize flowering and salt response. Plant Biotechnol J. :doi: 10.1111/pbi.14236.     Reference: November 28th, 2023
Gene Product: August 9th, 2016
5 months agojmj20 JUMONJI-transcription factor 20:
 
   Su, HH et al. 2023. ZmELF6-ZmPRR37 module regulates maize flowering and salt response. Plant Biotechnol J. :doi: 10.1111/pbi.14236.   AT5G04240 (TAIR) Reference: November 28th, 2023
Gene Product: April 3rd, 2019
Variation: November 28th, 2023
5 months agoumc1684  :
7.04
GRMZM2G057281
Su, HH et al. 2023. ZmELF6-ZmPRR37 module regulates maize flowering and salt response. Plant Biotechnol J. :doi: 10.1111/pbi.14236.     Reference: November 28th, 2023
Variation: September 1st, 2003
Gene Model: March 17th, 2021
5 months agohdt104 histone deacetylase 104:
 
GRMZM5G898314
Moiseeva, YM et al. 2023. Analysis of Mutations of the Maize Genes of Autonomous Embryo- and Endospermogenesis Russ J Genet. 59:967–969.     Reference: November 28th, 2023
Gene Product: February 12th, 2020
Gene Model: October 12th, 2017
5 months agoglu2 beta-glucosidase2:
2.04
   Coneva, V; Zhu, T; Colasanti, JJ. 2007. J Exp Bot. 58:3679-3693     Reference: November 28th, 2023
Gene Product: June 26th, 2019
Variation: April 16th, 2013
5 months agoglu18 beta-glucosidase18:
1.09
GRMZM2G118003
Gracia Gómez-Anduro et al. 2011. Genome-wide analysis of the beta-glucosidase gene family in maize (Zea mays L. var B73). Plant Mol Biol. 77:159-83.     Reference: November 28th, 2023
Gene Product: June 26th, 2019
Gene Model: February 15th, 2020
5 months agoglu17 beta-glucosidase17:
1.09
AC217401.3_FG001
Chuang Liu et al. 2023. A dual-subcellular localized β-glucosidase confers pathogen and insect resistance without a yield penalty in maize. Plant Biotechnol J. :doi: 10.1111/pbi.14242.     Reference: November 28th, 2023
Gene Product: June 26th, 2019
Variation: November 28th, 2023
Gene Model: March 18th, 2022
5 months agowri1 wrinkled1 transcription factor1:
 
GRMZM2G124524
Li, H et al. 2023. Multi-omics-driven advances in the understanding of triacylglycerol biosynthesis in oil seeds. Plant J. :doi: 10.1111/tpj.16545.   AT3G54320 (TAIR) Reference: November 28th, 2023
Gene Product: July 5th, 2019
Variation: April 11th, 2011
Gene Model: April 8th, 2011
5 months agoglu12 beta-glucosidase12:
3.06
GRMZM2G069024
Gracia Gómez-Anduro et al. 2011. Genome-wide analysis of the beta-glucosidase gene family in maize (Zea mays L. var B73). Plant Mol Biol. 77:159-83.     Reference: November 28th, 2023
Gene Product: June 26th, 2019
Gene Model: April 6th, 2020
5 months agoglu3 beta-glucosidase3:
 
GRMZM2G014844
Gracia Gómez-Anduro et al. 2011. Genome-wide analysis of the beta-glucosidase gene family in maize (Zea mays L. var B73). Plant Mol Biol. 77:159-83.     Reference: November 28th, 2023
Gene Product: June 26th, 2019
Gene Model: January 24th, 2015
5 months agosnrkII10 SnRK2 serine threonine kinase10:
 
GRMZM2G066867
Su, HH et al. 2023. ZmELF6-ZmPRR37 module regulates maize flowering and salt response. Plant Biotechnol J. :doi: 10.1111/pbi.14236.     Reference: November 28th, 2023
Gene Product: April 14th, 2018
Gene Model: February 11th, 2015
5 months agogcs1 generative cell specific1:
 
GRMZM2G412911
Moiseeva, YM et al. 2023. Analysis of Mutations of the Maize Genes of Autonomous Embryo- and Endospermogenesis Russ J Genet. 59:967–969.   AT4G11720 (TAIR)
LOC_Os05g18730 (MSU/TIGR)
Reference: November 28th, 2023
Variation: May 9th, 2017
Gene Model: April 10th, 2017
5 months agogex2 gamete expressed2:
 
GRMZM2G036832
Moiseeva, YM et al. 2023. Analysis of Mutations of the Maize Genes of Autonomous Embryo- and Endospermogenesis Russ J Genet. 59:967–969.   AT5G49150 (TAIR) Reference: November 28th, 2023
Gene Product: February 25th, 2020
Variation: February 25th, 2020
Gene Model: February 25th, 2020
5 months agohsftf31 HSF-transcription factor 31:
 
GRMZM2G051448
Su, HH et al. 2023. ZmELF6-ZmPRR37 module regulates maize flowering and salt response. Plant Biotechnol J. :doi: 10.1111/pbi.14236.     Reference: November 28th, 2023
Gene Product: May 15th, 2020
Gene Model: May 15th, 2020
5 months agodhn15 dehydrin15:
 
GRMZM2G147014
Su, HH et al. 2023. ZmELF6-ZmPRR37 module regulates maize flowering and salt response. Plant Biotechnol J. :doi: 10.1111/pbi.14236.     Reference: November 28th, 2023
Gene Product: August 5th, 2017
Gene Model: July 3rd, 2020
5 months agoglu20 beta-glucosidase20:
5.03
GRMZM2G163544
Gracia Gómez-Anduro et al. 2011. Genome-wide analysis of the beta-glucosidase gene family in maize (Zea mays L. var B73). Plant Mol Biol. 77:159-83.     Reference: November 28th, 2023
Gene Product: June 26th, 2019
Gene Model: May 16th, 2022
5 months agomca11 metacaspase11:
 
GRMZM2G022799
Su, HH et al. 2023. ZmELF6-ZmPRR37 module regulates maize flowering and salt response. Plant Biotechnol J. :doi: 10.1111/pbi.14236.     Reference: November 28th, 2023
Gene Product: October 27th, 2020
Gene Model: October 27th, 2020
5 months agoglu13 beta-glucosidase13:
 
GRMZM2G376416
Gracia Gómez-Anduro et al. 2011. Genome-wide analysis of the beta-glucosidase gene family in maize (Zea mays L. var B73). Plant Mol Biol. 77:159-83.     Reference: November 28th, 2023
Gene Product: June 26th, 2019
Gene Model: October 31st, 2020
5 months agoaaap48 amino acid/auxin permease48:
 
GRMZM2G010433
Su, HH et al. 2023. ZmELF6-ZmPRR37 module regulates maize flowering and salt response. Plant Biotechnol J. :doi: 10.1111/pbi.14236.     Reference: November 28th, 2023
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
5 months agoglu10 beta-glucosidase 10:
 
GRMZM2G362368
Gracia Gómez-Anduro et al. 2011. Genome-wide analysis of the beta-glucosidase gene family in maize (Zea mays L. var B73). Plant Mol Biol. 77:159-83.     Reference: November 28th, 2023
Gene Product: June 26th, 2019
Gene Model: November 30th, 2021
5 months agogsk6 glycogen synthase kinase6:
 
GRMZM5G835235
Su, HH et al. 2023. ZmELF6-ZmPRR37 module regulates maize flowering and salt response. Plant Biotechnol J. :doi: 10.1111/pbi.14236.     Reference: November 28th, 2023
Gene Product: February 22nd, 2022
Gene Model: February 22nd, 2022
5 months agoIDP809  :
9.04
GRMZM5G842855
Su, HH et al. 2023. ZmELF6-ZmPRR37 module regulates maize flowering and salt response. Plant Biotechnol J. :doi: 10.1111/pbi.14236.     Reference: November 28th, 2023
Variation: March 31st, 2005
Gene Model: January 24th, 2019
5 months agoglu8 beta-glucosidase8:
10.03
GRMZM2G174699
Gracia Gómez-Anduro et al. 2011. Genome-wide analysis of the beta-glucosidase gene family in maize (Zea mays L. var B73). Plant Mol Biol. 77:159-83.     Reference: November 28th, 2023
Gene Product: June 26th, 2019
Variation: March 31st, 2005
Gene Model: July 19th, 2021
5 months agosacd1 stearoyl-acyl-carrier-protein desaturase1:
3.05
GRMZM5G852502
Li, H et al. 2023. Multi-omics-driven advances in the understanding of triacylglycerol biosynthesis in oil seeds. Plant J. :doi: 10.1111/tpj.16545.     Reference: November 28th, 2023
Gene Product: October 10th, 2016
Variation: June 15th, 2016
Gene Model: June 15th, 2016
5 months agochn20 chitinase20:
5.03
GRMZM2G064360
Su, HH et al. 2023. ZmELF6-ZmPRR37 module regulates maize flowering and salt response. Plant Biotechnol J. :doi: 10.1111/pbi.14236.     Reference: November 28th, 2023
Gene Product: May 31st, 2021
Gene Model: May 11th, 2020
5 months agomat-r(mtNB) maturase related:
 
GRMZM5G851769
Dharam B Khandhar et al. 2023. The Itemization of Variations in Tassel-Ear Mutant and Normal Maize (Zea mays L.) Plants: 1. Organelle Genomes Russ J Genet. 59:919–929.     Reference: November 28th, 2023
Gene Product: September 1st, 2003
Gene Model: June 16th, 2020
5 months agoacx1 acyl-coenzyme A oxidase1:
 
   Jiawen He et al. 2023. Proteomics Analysis Reveals Hormone Metabolic Process Involved in the Regulation of Kernel Water Content Induced by Exogenous Abscisic Acid in Maize Agronomy. 13:2897.     Reference: November 27th, 2023
Gene Product: September 17th, 2022
5 months agosbt8 subtilisin8:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt5 subtilisin5:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt6 subtilisin6:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt17 subtilisin17:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt18 subtilisin18:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt19 subtilisin19:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt33 subtilisin33:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt54 subtilisin54:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt59 subtilisin59:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt46 subtilisin46:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt43 subtilisin43:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt60 subtilisin60:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt61 subtilisin61:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt56 subtilisin56:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt26 subtilisin26:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt21 subtilisin21:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt39 subtilisin39:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt34 subtilisin34:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt27 subtilisin27:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt55 subtilisin55:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt29 subtilisin29:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt25 subtilisin25:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt30 subtilisin30:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt31 subtilisin31:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt35 subtilisin35:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt38 subtilisin38:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt41 subtilisin41:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt42 subtilisin42:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt44 subtilisin44:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt48 subtilisin48:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt49 subtilisin49:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt51 subtilisin51:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt58 subtilisin58:
 
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agoZm00001d018918  :
 
   Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
5 months agoZm00001eb097780  :
 
   Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
5 months agoZm00001eb118420  :
 
   Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
5 months agoZm00001eb081780  :
 
   Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
5 months agoZm00001eb134710  :
 
   Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
5 months agoZm00001eb155880  :
 
   Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
5 months agoZm00001eb169870  :
 
   Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
5 months agoZm00001eb204240  :
 
   Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
5 months agoZm00001eb218670  :
 
   Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
5 months agoZm00001eb245270  :
 
   Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
5 months agoZm00001eb277950  :
 
   Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
5 months agoZm00001eb309390  :
 
   Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
5 months agoZm00001eb301120  :
 
   Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
5 months agoZm00001eb361580  :
 
   Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
5 months agoZm00001eb369820  :
 
   Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
5 months agosbt13 subtilisin13:
6.03
GRMZM2G073223
Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
Gene Model: June 30th, 2021
5 months agosbt47 subtilisin47:
1.08
GRMZM5G891371
Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
Gene Model: April 1st, 2021
5 months agosbt7 subtilisin7:
2.08
GRMZM2G057159
Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
Gene Model: May 4th, 2021
5 months agopco147657  :
7.03
GRMZM2G135651
Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
Gene Model: September 9th, 2018
5 months agosbt40 subtilisin40:
2.09
GRMZM2G345622
Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
Variation: September 1st, 2003
Gene Model: March 2nd, 2021
5 months agosbt52 subtilisin52:
9.03
GRMZM2G306915
Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
Variation: September 1st, 2003
Gene Model: October 13th, 2018
5 months agokch6 potassium channel6:
8.03
AC234152.1_FG007
Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
Variation: April 14th, 2017
Gene Model: September 12th, 2017
5 months agosbt36 subtilisin36:
6.05
AC204292.4_FG006
Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
Variation: July 29th, 2004
Gene Model: August 10th, 2017
5 months agosbt11 subtilisin11:
3.06
GRMZM2G052365
Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
Variation: July 29th, 2004
Gene Model: March 16th, 2018
5 months agosbt62 subtilisin62:
 
GRMZM2G013986
Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
Gene Model: February 3rd, 2020
5 months agosbt24 subtilisin24:
1.10
GRMZM2G091578
Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
Gene Model: February 15th, 2020
5 months agobx9 benzoxazinone synthesis9:
1.06
GRMZM2G161335
Jiawen He et al. 2023. Proteomics Analysis Reveals Hormone Metabolic Process Involved in the Regulation of Kernel Water Content Induced by Exogenous Abscisic Acid in Maize Agronomy. 13:2897.     Reference: November 27th, 2023
Gene Product: October 11th, 2021
Variation: October 27th, 2011
Gene Model: October 20th, 2011
5 months agosbt22 subtilisin22:
3.07
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agoipt2 isopentenyl transferase2:
 
GRMZM2G084462
Jiawen He et al. 2023. Proteomics Analysis Reveals Hormone Metabolic Process Involved in the Regulation of Kernel Water Content Induced by Exogenous Abscisic Acid in Maize Agronomy. 13:2897.     Reference: November 27th, 2023
Gene Product: March 19th, 2014
Variation: July 11th, 2013
Gene Model: July 10th, 2013
5 months agosbt2 subtilisin2:
 
GRMZM2G039538
Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
Variation: November 11th, 2016
Gene Model: November 11th, 2016
5 months agosbt3 subtilisin3:
 
GRMZM2G363552
Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
Variation: November 6th, 2023
Gene Model: November 11th, 2016
5 months agomcm4 minichromosome maintenance4:
 
GRMZM2G066101
Jiawen He et al. 2023. Proteomics Analysis Reveals Hormone Metabolic Process Involved in the Regulation of Kernel Water Content Induced by Exogenous Abscisic Acid in Maize Agronomy. 13:2897.     Reference: November 27th, 2023
Gene Product: August 2nd, 2017
Gene Model: July 31st, 2017
5 months agokch7 potassium channel7:
 
GRMZM2G178356
Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
Variation: September 12th, 2017
Gene Model: September 12th, 2017
5 months agokch8 potassium channel8:
 
GRMZM5G838773
Gao, Y-Q et al. 2017. Plant J pp.doi: 10.1111/tpj.13712     Reference: September 12th, 2017
Gene Product: November 27th, 2023
Gene Model: September 12th, 2017
5 months agosbt16 subtilisin16:
 
GRMZM2G157313
Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
Gene Model: March 14th, 2018
5 months agocl19485_1  :
5.07
GRMZM2G161800
Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
Gene Model: May 9th, 2022
5 months agosbt4 subtilisin4:
 
GRMZM2G429842
Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
Gene Model: November 2nd, 2020
5 months agoznf9 zinc finger protein9:
 
GRMZM2G125775
Liu, TD et al. 2023. Transcriptome-based network analysis cell cycle-related genes in response to blue and red light in maize AoB Plants. :doi: 10.1093/aobpla/plad079.     Reference: November 27th, 2023
Gene Product: November 14th, 2022
Gene Model: May 25th, 2021
5 months agosbt12 subtilisin12:
 
GRMZM5G836501
Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
Gene Model: July 7th, 2021
5 months agodhad2 dihydroxy-acid dehydratase2:
 
GRMZM2G014069
Jiawen He et al. 2023. Proteomics Analysis Reveals Hormone Metabolic Process Involved in the Regulation of Kernel Water Content Induced by Exogenous Abscisic Acid in Maize Agronomy. 13:2897.     Reference: November 27th, 2023
Gene Product: August 29th, 2021
Gene Model: August 29th, 2021
5 months agoZm00001d017281  :
 
GRMZM2G068904
Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
Gene Model: February 15th, 2022
5 months agosbt28 subtilisin28:
5.04
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosbt45 subtilisin45:
7.03
GRMZM2G132032
Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
Gene Model: May 15th, 2019
5 months agocl14040_1  :
8.06
GRMZM2G080767
Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
Gene Model: June 13th, 2022
5 months agosbt50 subtilisin50:
8.08
   Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
5 months agosi946031d03b  :
9.02
   Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
5 months agosbt57 subtilisin57:
10.04
GRMZM2G414915
Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
Variation: September 25th, 2007
Gene Model: July 7th, 2020
5 months agoIDP494  :
3.09
GRMZM2G049866
Jiawen He et al. 2023. Proteomics Analysis Reveals Hormone Metabolic Process Involved in the Regulation of Kernel Water Content Induced by Exogenous Abscisic Acid in Maize Agronomy. 13:2897.     Reference: November 27th, 2023
Variation: March 31st, 2005
Gene Model: February 25th, 2019
5 months agosbt14 subtilisin14:
5.03
GRMZM2G099452
Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
Variation: March 31st, 2005
Gene Model: May 10th, 2020
5 months agokch4 potassium channel4:
3.02
GRMZM2G093313
Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
Variation: February 20th, 2008
Gene Model: April 22nd, 2011
5 months agosbt32 subtilisin32:
5.07
GRMZM2G163749
Wang, XD et al. 2023. Genome-Wide Identification and Characterization of the SBT Gene Family in maize and Its Expression in the Various tissues Plant Mol Biol Rep. :doi: 10.1007/s11105-023-01422-5.     Reference: November 27th, 2023
Gene Product: November 11th, 2016
Gene Model: May 25th, 2020
5 months agogpm871  :
4.09
GRMZM2G148118
Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
Gene Model: April 25th, 2020
5 months agokch2 potassium channel2:
6.05
GRMZM2G020859
Li, J et al. 2023. Integrated Transcriptomic and Proteomic Analyses of Low-Nitrogen-Stress Tolerance and Function Analysis of ZmGST42 Gene in Maize Antioxidants. 12:1831.     Reference: October 5th, 2023
Gene Product: November 27th, 2023
Variation: October 25th, 2017
Gene Model: July 23rd, 2014
5 months agokch1 potassium channel 1:
3.08
GRMZM2G022915
Anna Fiorillo et al. 2023. 14-3-3 Proteins and the Plasma Membrane H+-ATPase Are Involved in Maize (Zea mays) Magnetic Induction. Plants. 12:2887.     Reference: August 12th, 2023
Gene Product: November 27th, 2023
Variation: July 22nd, 2014
Gene Model: April 22nd, 2011
5 months agokch3 potassium channel3:
2.06
GRMZM2G081666
Mallikarjuna, MG et al. 2023. Genome-wide identification of potassium channels in maize showed evolutionary patterns and variable functional responses to abiotic stresses Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108235.     Reference: November 27th, 2023
Gene Product: November 27th, 2023
Variation: April 22nd, 2011
Gene Model: April 22nd, 2011
5 months agoprx69 peroxidase69:
 
   Ren, Y et al. 2023. Application of Methionine Increases the Germination Rate of Maize Seeds by Triggering Multiple Phenylpropanoid Biosynthetic Genes at Transcript Levels. Plants. 12:3802.     Reference: November 26th, 2023
Gene Product: September 18th, 2015
5 months agobm2 brown midrib2:
1.11
GRMZM2G099363
Ren, Y et al. 2023. Application of Methionine Increases the Germination Rate of Maize Seeds by Triggering Multiple Phenylpropanoid Biosynthetic Genes at Transcript Levels. Plants. 12:3802.     Reference: November 26th, 2023
Gene Product: August 28th, 2012
Variation: November 30th, 2013
Gene Model: November 30th, 2013
5 months agomets2 methionine synthase2:
5.02
GRMZM2G112149
Ren, Y et al. 2023. Application of Methionine Increases the Germination Rate of Maize Seeds by Triggering Multiple Phenylpropanoid Biosynthetic Genes at Transcript Levels. Plants. 12:3802.     Reference: November 26th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: June 27th, 2018
5 months agofah2 ferulic acid 5-hydroxylase2:
 
GRMZM2G100158
Ren, Y et al. 2023. Application of Methionine Increases the Germination Rate of Maize Seeds by Triggering Multiple Phenylpropanoid Biosynthetic Genes at Transcript Levels. Plants. 12:3802.   AT4G36220 (TAIR)
LOC_Os10g36848 (MSU/TIGR)
Reference: November 26th, 2023
Gene Product: May 4th, 2018
Gene Model: May 4th, 2018
5 months agoacco5 1-aminocyclopropane-1-carboxylate oxidase5:
 
GRMZM2G013448
Ren, Y et al. 2023. Application of Methionine Increases the Germination Rate of Maize Seeds by Triggering Multiple Phenylpropanoid Biosynthetic Genes at Transcript Levels. Plants. 12:3802.     Reference: November 26th, 2023
Gene Product: May 16th, 2016
Gene Model: June 15th, 2021
5 months agoccp17 cysteine protease17:
 
GRMZM2G166870
Ren, Y et al. 2023. Application of Methionine Increases the Germination Rate of Maize Seeds by Triggering Multiple Phenylpropanoid Biosynthetic Genes at Transcript Levels. Plants. 12:3802.     Reference: November 26th, 2023
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
5 months agoexpb13 beta expansin13:
 
   Keyu Tao et al. 2023. Overexpression of ZmEXPA5 reduces anthesis-silking interval and increases grain yield under drought and well-watered conditions in maize Mol Breed. :doi: 10.1007/s11032-023-01432-x.     Reference: November 24th, 2023
Gene Product: April 24th, 2008
5 months agoGRMZM2G108077  :
 
   Shi, X et al. 2019. Sci. Rep. 9:212     Reference: November 24th, 2023
Gene Product: September 18th, 2015
5 months agomam2 mRNA adenosine methylase2:
 
   Luo, JH et al. 2023. RNA m6A modification facilitates DNA methylation during maize kernel development. Plant Physiol. :doi: 10.1093/plphys/kiad625.   AT4G09980 (TAIR) Reference: November 24th, 2023
Gene Product: November 24th, 2023
5 months agoexpb18 beta expansin18:
 
   Keyu Tao et al. 2023. Overexpression of ZmEXPA5 reduces anthesis-silking interval and increases grain yield under drought and well-watered conditions in maize Mol Breed. :doi: 10.1007/s11032-023-01432-x.     Reference: November 24th, 2023
Gene Product: April 24th, 2008
5 months agoexpb10d beta expansin10d:
3.04
GRMZM2G164785
Keyu Tao et al. 2023. Overexpression of ZmEXPA5 reduces anthesis-silking interval and increases grain yield under drought and well-watered conditions in maize Mol Breed. :doi: 10.1007/s11032-023-01432-x.     Reference: November 24th, 2023
Gene Product: April 24th, 2008
Variation: April 23rd, 2008
Gene Model: March 2nd, 2016
5 months agotubtf4 TUB-transcription factor 4:
2.03
GRMZM2G108228
Shi, X et al. 2019. Sci. Rep. 9:212     Reference: November 24th, 2023
Gene Product: September 29th, 2015
Variation: September 1st, 2003
Gene Model: September 29th, 2015
5 months agoarftf5 ARF-transcription factor 5:
 
   Shi, X et al. 2019. Sci. Rep. 9:212     Reference: November 24th, 2023
Gene Product: January 29th, 2022
5 months agoexpa2 alpha expansin2:
5.05
GRMZM2G105844
Keyu Tao et al. 2023. Overexpression of ZmEXPA5 reduces anthesis-silking interval and increases grain yield under drought and well-watered conditions in maize Mol Breed. :doi: 10.1007/s11032-023-01432-x.     Reference: November 24th, 2023
Gene Product: March 12th, 2008
Variation: September 1st, 2003
Gene Model: March 2nd, 2016
5 months agoexpa5 alpha expansin5:
6.06
GRMZM2G361064
Keyu Tao et al. 2023. Overexpression of ZmEXPA5 reduces anthesis-silking interval and increases grain yield under drought and well-watered conditions in maize Mol Breed. :doi: 10.1007/s11032-023-01432-x.     Reference: November 24th, 2023
Gene Product: March 12th, 2008
Variation: November 24th, 2023
Gene Model: March 2nd, 2016
5 months agoexpb10a beta expansin10a:
9.07
GRMZM2G089699
Keyu Tao et al. 2023. Overexpression of ZmEXPA5 reduces anthesis-silking interval and increases grain yield under drought and well-watered conditions in maize Mol Breed. :doi: 10.1007/s11032-023-01432-x.     Reference: November 24th, 2023
Gene Product: April 24th, 2008
Variation: May 31st, 2010
Gene Model: March 2nd, 2016
5 months agoexpb11 beta expansin11:
5.06
GRMZM2G127106
Keyu Tao et al. 2023. Overexpression of ZmEXPA5 reduces anthesis-silking interval and increases grain yield under drought and well-watered conditions in maize Mol Breed. :doi: 10.1007/s11032-023-01432-x.     Reference: November 24th, 2023
Gene Product: April 24th, 2008
Variation: May 22nd, 2014
Gene Model: March 2nd, 2016
5 months agoexpb14 beta expansin14:
 
GRMZM2G118873
Keyu Tao et al. 2023. Overexpression of ZmEXPA5 reduces anthesis-silking interval and increases grain yield under drought and well-watered conditions in maize Mol Breed. :doi: 10.1007/s11032-023-01432-x.     Reference: November 24th, 2023
Gene Product: April 24th, 2008
Gene Model: January 4th, 2019
5 months agoexpb15 beta expansin15:
 
GRMZM2G121308
Keyu Tao et al. 2023. Overexpression of ZmEXPA5 reduces anthesis-silking interval and increases grain yield under drought and well-watered conditions in maize Mol Breed. :doi: 10.1007/s11032-023-01432-x.     Reference: November 24th, 2023
Gene Product: April 24th, 2008
Gene Model: January 4th, 2019
5 months agoexpa7 alpha expansin7:
 
GRMZM2G127029
Keyu Tao et al. 2023. Overexpression of ZmEXPA5 reduces anthesis-silking interval and increases grain yield under drought and well-watered conditions in maize Mol Breed. :doi: 10.1007/s11032-023-01432-x.     Reference: November 24th, 2023
Gene Product: March 12th, 2008
Gene Model: November 9th, 2020
5 months agocl6407_1a  :
2.03
   Shi, X et al. 2019. Sci. Rep. 9:212     Reference: November 24th, 2023
Gene Product: November 26th, 2019
5 months agoexpb10c beta expansin10c:
3.04
GRMZM2G007685
Keyu Tao et al. 2023. Overexpression of ZmEXPA5 reduces anthesis-silking interval and increases grain yield under drought and well-watered conditions in maize Mol Breed. :doi: 10.1007/s11032-023-01432-x.     Reference: November 24th, 2023
Gene Product: April 24th, 2008
Variation: April 23rd, 2008
Gene Model: March 2nd, 2016
5 months agolox4 lipoxygenase4:
1.09
GRMZM2G109056
Yequn Wu et al. 2023. DNA methylation and lipid metabolism are involved in GA-induced maize aleurone layers PCD as revealed by transcriptome analysis. 23:584.     Reference: November 23rd, 2023
Gene Product: January 3rd, 2018
Variation: February 25th, 2021
Gene Model: June 10th, 2014
5 months agoprx39 peroxidase39:
 
GRMZM2G085967
Yequn Wu et al. 2023. DNA methylation and lipid metabolism are involved in GA-induced maize aleurone layers PCD as revealed by transcriptome analysis. 23:584.     Reference: November 23rd, 2023
Gene Product: September 18th, 2015
Gene Model: September 22nd, 2018
5 months agosod16 superoxide dismutase16:
 
GRMZM2G173628
Yequn Wu et al. 2023. DNA methylation and lipid metabolism are involved in GA-induced maize aleurone layers PCD as revealed by transcriptome analysis. 23:584.     Reference: November 23rd, 2023
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
5 months agoAF546188.1_FG006  :
 
   Hurst, JP et al. 2023. Editing the 19 kDa alpha-zein gene family generates non-opaque2-based quality protein maize. Plant Biotechnol J. :doi: 10.1111/pbi.14237.     Reference: November 21st, 2023
Gene Product: September 1st, 2003
5 months agoppr264 pentatricopeptide repeat protein264:
 
   Williams, MM, II et al. 2023. First report of severe tolpyralate sensitivity in corn (Zea mays) discovers a novel genetic factor conferring crop response to an herbicide. Pest Manag Sci.     Reference: November 21st, 2023
Gene Product: December 27th, 2016
5 months agozpl2b zein polypeptidesL2b:
7.02
AF546188.1_FG002
Hurst, JP et al. 2023. Editing the 19 kDa alpha-zein gene family generates non-opaque2-based quality protein maize. Plant Biotechnol J. :doi: 10.1111/pbi.14237.     Reference: November 21st, 2023
Gene Product: September 1st, 2003
Variation: January 14th, 2015
Gene Model: January 14th, 2015
5 months agozpl3a zein polypeptidesL3a:
4.08
   Hurst, JP et al. 2023. Editing the 19 kDa alpha-zein gene family generates non-opaque2-based quality protein maize. Plant Biotechnol J. :doi: 10.1111/pbi.14237.     Reference: November 21st, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
5 months agoumc1240  :
5.00
AC220970.4_FG002
Williams, MM, II et al. 2023. First report of severe tolpyralate sensitivity in corn (Zea mays) discovers a novel genetic factor conferring crop response to an herbicide. Pest Manag Sci.     Reference: November 21st, 2023
Variation: September 1st, 2003
Gene Model: January 25th, 2020
5 months agoumc1253  :
5.00
GRMZM2G084164
Williams, MM, II et al. 2023. First report of severe tolpyralate sensitivity in corn (Zea mays) discovers a novel genetic factor conferring crop response to an herbicide. Pest Manag Sci.     Reference: November 21st, 2023
Variation: March 18th, 2021
Gene Model: June 13th, 2018
5 months agoumc1491  :
5.00
GRMZM2G019866
Williams, MM, II et al. 2023. First report of severe tolpyralate sensitivity in corn (Zea mays) discovers a novel genetic factor conferring crop response to an herbicide. Pest Manag Sci.     Reference: November 21st, 2023
Variation: September 1st, 2003
Gene Model: November 28th, 2017
5 months agohsftf22 HSF-transcription factor 22:
 
   Williams, MM, II et al. 2023. First report of severe tolpyralate sensitivity in corn (Zea mays) discovers a novel genetic factor conferring crop response to an herbicide. Pest Manag Sci.     Reference: November 21st, 2023
Gene Product: May 15th, 2020
5 months agoumc1811  :
1.06
AC187262.4_FG007
Hurst, JP et al. 2023. Editing the 19 kDa alpha-zein gene family generates non-opaque2-based quality protein maize. Plant Biotechnol J. :doi: 10.1111/pbi.14237.     Reference: November 21st, 2023
Variation: February 1st, 2017
Gene Model: February 1st, 2017
5 months agoumc1976  :
1.02
GRMZM2G162535
Hurst, JP et al. 2023. Editing the 19 kDa alpha-zein gene family generates non-opaque2-based quality protein maize. Plant Biotechnol J. :doi: 10.1111/pbi.14237.     Reference: November 21st, 2023
Variation: December 22nd, 2016
Gene Model: December 23rd, 2016
5 months agoben1 bentazon resistance1:
5.01
GRMZM2G090432
Williams, MM, II et al. 2023. First report of severe tolpyralate sensitivity in corn (Zea mays) discovers a novel genetic factor conferring crop response to an herbicide. Pest Manag Sci.     Reference: November 21st, 2023
Gene Product: December 30th, 2022
Variation: February 12th, 2010
Gene Model: July 27th, 2016
5 months agoznod1 Zea nodulation homolog1:
9.02
GRMZM2G052562
Hurst, JP et al. 2023. Editing the 19 kDa alpha-zein gene family generates non-opaque2-based quality protein maize. Plant Biotechnol J. :doi: 10.1111/pbi.14237.     Reference: November 21st, 2023
Variation: September 29th, 2015
Gene Model: September 29th, 2015
5 months agopco066796  :
1.06
GRMZM2G392791
Hurst, JP et al. 2023. Editing the 19 kDa alpha-zein gene family generates non-opaque2-based quality protein maize. Plant Biotechnol J. :doi: 10.1111/pbi.14237.     Reference: November 21st, 2023
Variation: September 25th, 2007
Gene Model: February 9th, 2020
5 months agoz1A-1 alpha zein 19kDa A-1:
4.02
GRMZM2G026939
Hurst, JP et al. 2023. Editing the 19 kDa alpha-zein gene family generates non-opaque2-based quality protein maize. Plant Biotechnol J. :doi: 10.1111/pbi.14237.     Reference: November 21st, 2023
Gene Product: September 1st, 2003
Gene Model: April 28th, 2021
5 months agomstr4 monosaccharide transporter4:
9.04
GRMZM2G034061
Nan Sun et al. 2023. Genome-wide analysis of sugar transporter genes in maize (Zea mays L.): identification, characterization and their expression profiles during kernel development PeerJ. :doi: 10.7717/peerj.16423.     Reference: November 21st, 2023
Gene Product: January 2nd, 2023
Variation: July 14th, 2008
Gene Model: September 17th, 2015
5 months agosut5 sucrose transporter5:
 
GRMZM2G081589
Nan Sun et al. 2023. Genome-wide analysis of sugar transporter genes in maize (Zea mays L.): identification, characterization and their expression profiles during kernel development PeerJ. :doi: 10.7717/peerj.16423.     Reference: November 21st, 2023
Gene Product: September 14th, 2013
Variation: April 13th, 2017
Gene Model: November 3rd, 2015
5 months agoimpb14 importin beta14:
5.00
GRMZM2G022258
Williams, MM, II et al. 2023. First report of severe tolpyralate sensitivity in corn (Zea mays) discovers a novel genetic factor conferring crop response to an herbicide. Pest Manag Sci.     Reference: November 21st, 2023
Gene Product: November 15th, 2022
Gene Model: March 11th, 2022
5 months agoakin3 AKINbetagamma-1 protein kinase3:
 
GRMZM2G014170
Williams, MM, II et al. 2023. First report of severe tolpyralate sensitivity in corn (Zea mays) discovers a novel genetic factor conferring crop response to an herbicide. Pest Manag Sci.     Reference: November 21st, 2023
Gene Product: December 4th, 2020
Gene Model: December 4th, 2020
5 months agosro4 similar to RCD one4:
5.00
   Williams, MM, II et al. 2023. First report of severe tolpyralate sensitivity in corn (Zea mays) discovers a novel genetic factor conferring crop response to an herbicide. Pest Manag Sci.     Reference: November 21st, 2023
Gene Product: September 7th, 2018
Variation: September 25th, 2007
5 months agosig6 sigma-like factor6:
5.00
GRMZM2G144196
Williams, MM, II et al. 2023. First report of severe tolpyralate sensitivity in corn (Zea mays) discovers a novel genetic factor conferring crop response to an herbicide. Pest Manag Sci.     Reference: November 21st, 2023
Gene Product: December 24th, 2019
Variation: June 24th, 2015
Gene Model: May 8th, 2015
5 months agoz1B1 alpha zein 19kDa B1:
 
AF546188.1_FG001
Hurst, JP et al. 2023. Editing the 19 kDa alpha-zein gene family generates non-opaque2-based quality protein maize. Plant Biotechnol J. :doi: 10.1111/pbi.14237.     Reference: November 21st, 2023
Gene Product: September 1st, 2003
Gene Model: September 20th, 2021
5 months agostp24 sugar transport protein24:
 
GRMZM2G159559
Nan Sun et al. 2023. Genome-wide analysis of sugar transporter genes in maize (Zea mays L.): identification, characterization and their expression profiles during kernel development PeerJ. :doi: 10.7717/peerj.16423.     Reference: November 21st, 2023
Gene Product: January 2nd, 2023
Gene Model: January 12th, 2022
5 months agoandr1 anthocyanidin reductase1:
 
GRMZM2G097854
Hurst, JP et al. 2023. Editing the 19 kDa alpha-zein gene family generates non-opaque2-based quality protein maize. Plant Biotechnol J. :doi: 10.1111/pbi.14237.   AT1G61720 (TAIR) Reference: November 21st, 2023
Gene Product: August 14th, 2022
Gene Model: August 14th, 2022
5 months agomctp16 multiple C2 domain and transmembrane region protein16:
9.04
GRMZM2G108149
Hurst, JP et al. 2023. Editing the 19 kDa alpha-zein gene family generates non-opaque2-based quality protein maize. Plant Biotechnol J. :doi: 10.1111/pbi.14237.     Reference: November 21st, 2023
Gene Product: August 3rd, 2022
Gene Model: June 20th, 2020
5 months agoIDP669  :
1.08
GRMZM2G064605
Hurst, JP et al. 2023. Editing the 19 kDa alpha-zein gene family generates non-opaque2-based quality protein maize. Plant Biotechnol J. :doi: 10.1111/pbi.14237.     Reference: November 21st, 2023
Variation: March 31st, 2005
Gene Model: February 14th, 2019
5 months agoIDP3872  :
2.06
GRMZM2G140041
Hurst, JP et al. 2023. Editing the 19 kDa alpha-zein gene family generates non-opaque2-based quality protein maize. Plant Biotechnol J. :doi: 10.1111/pbi.14237.     Reference: November 21st, 2023
Variation: March 31st, 2005
Gene Model: May 2nd, 2021
5 months agoIDP1619  :
5.00
GRMZM2G019695
Williams, MM, II et al. 2023. First report of severe tolpyralate sensitivity in corn (Zea mays) discovers a novel genetic factor conferring crop response to an herbicide. Pest Manag Sci.     Reference: November 21st, 2023
Variation: March 31st, 2005
Gene Model: November 28th, 2017
5 months agotst1 tonoplast sugar transporter1:
1.05
GRMZM2G083173
Nan Sun et al. 2023. Genome-wide analysis of sugar transporter genes in maize (Zea mays L.): identification, characterization and their expression profiles during kernel development PeerJ. :doi: 10.7717/peerj.16423.     Reference: November 21st, 2023
Gene Product: October 28th, 2021
Gene Model: February 8th, 2020
5 months agonpf6 nitrate transporter/peptide transporter family6:
 
GRMZM2G137421
Mengqiu He et al. 2023. Maize genotypes regulate the feedbacks between maize nitrogen uptake and soil nitrogen transformations Soil Biol Biochem. :doi: 10.1016/j.soilbio.2023.109251.     Reference: November 20th, 2023
Gene Product: September 1st, 2003
Gene Model: May 21st, 2019
5 months agoamt6 ammonium transporter6:
 
GRMZM2G080045
Mengqiu He et al. 2023. Maize genotypes regulate the feedbacks between maize nitrogen uptake and soil nitrogen transformations Soil Biol Biochem. :doi: 10.1016/j.soilbio.2023.109251.     Reference: November 20th, 2023
Gene Product: July 8th, 2013
Gene Model: May 21st, 2019
5 months agoZm00001d004248  :
2.05
GRMZM2G083935
Li, HG et al. 2023. Characterization of Glycosyltransferase Family 1 (GT1) and Their Potential Roles in Anthocyanin Biosynthesis in Maize Genes. 14:2099.     Reference: November 18th, 2023
Variation: September 25th, 2007
Gene Model: August 13th, 2021
5 months agosk1 silkless ears1:
2.03 - 2.04
GRMZM2G021786
Li, HG et al. 2023. Characterization of Glycosyltransferase Family 1 (GT1) and Their Potential Roles in Anthocyanin Biosynthesis in Maize Genes. 14:2099.   AT3G22250 (TAIR)
LOC_Os04g44354 (MSU/TIGR)
Reference: November 18th, 2023
Gene Product: September 24th, 2018
Variation: August 21st, 2018
Gene Model: October 31st, 2016
5 months agosm2 salmon silk2:
2.07
GRMZM2G180283
Li, HG et al. 2023. Characterization of Glycosyltransferase Family 1 (GT1) and Their Potential Roles in Anthocyanin Biosynthesis in Maize Genes. 14:2099.     Reference: November 18th, 2023
Gene Product: May 26th, 2016
Variation: May 26th, 2016
Gene Model: May 26th, 2016
5 months agoczog1 cis-zeatin O-glucosyltransferase1:
2.03
GRMZM2G168474
Li, HG et al. 2023. Characterization of Glycosyltransferase Family 1 (GT1) and Their Potential Roles in Anthocyanin Biosynthesis in Maize Genes. 14:2099.     Reference: November 18th, 2023
Gene Product: March 20th, 2014
Variation: October 25th, 2012
Gene Model: March 20th, 2014
5 months agoiaglu1 indol-3-ylacetyl glucosyl transferase1:
1.09
GRMZM2G024131
Li, HG et al. 2023. Characterization of Glycosyltransferase Family 1 (GT1) and Their Potential Roles in Anthocyanin Biosynthesis in Maize Genes. 14:2099.     Reference: November 18th, 2023
Gene Product: September 1st, 2003
Variation: January 30th, 2015
Gene Model: January 30th, 2015
5 months agobx8 benzoxazinone synthesis8:
4.01
GRMZM2G085054
Li, HG et al. 2023. Characterization of Glycosyltransferase Family 1 (GT1) and Their Potential Roles in Anthocyanin Biosynthesis in Maize Genes. 14:2099.     Reference: November 18th, 2023
Gene Product: October 11th, 2021
Variation: October 31st, 2011
Gene Model: October 20th, 2011
5 months agougt1 UDP-glucosyl transferase1:
 
GRMZM2G162755
Li, HG et al. 2023. Characterization of Glycosyltransferase Family 1 (GT1) and Their Potential Roles in Anthocyanin Biosynthesis in Maize Genes. 14:2099.     Reference: November 18th, 2023
Gene Product: September 24th, 2018
Gene Model: May 6th, 2016
5 months agoufgt2 UDP-flavonol-glycosyltransferase2:
 
GRMZM2G117878
Li, HG et al. 2023. Characterization of Glycosyltransferase Family 1 (GT1) and Their Potential Roles in Anthocyanin Biosynthesis in Maize Genes. 14:2099.     Reference: November 18th, 2023
Gene Product: July 4th, 2018
Variation: July 4th, 2018
Gene Model: July 4th, 2018
5 months agougt9250 uridinediphosphate-dependent glycosyltransferase9250:
 
GRMZM2G156127
Li, HG et al. 2023. Characterization of Glycosyltransferase Family 1 (GT1) and Their Potential Roles in Anthocyanin Biosynthesis in Maize Genes. 14:2099.     Reference: November 18th, 2023
Gene Product: October 11th, 2021
Gene Model: May 12th, 2020
5 months agocep2 C-terminally encoded peptide2:
 
GRMZM2G156026
Li, HG et al. 2023. Characterization of Glycosyltransferase Family 1 (GT1) and Their Potential Roles in Anthocyanin Biosynthesis in Maize Genes. 14:2099.     Reference: November 18th, 2023
Gene Product: October 23rd, 2020
Gene Model: October 23rd, 2020
5 months agoufgt4 UDP-flavonol-glycosyltransferase4:
 
GRMZM2G015709
Li, HG et al. 2023. Characterization of Glycosyltransferase Family 1 (GT1) and Their Potential Roles in Anthocyanin Biosynthesis in Maize Genes. 14:2099.     Reference: November 18th, 2023
Gene Product: July 4th, 2018
Gene Model: November 20th, 2020
5 months agougt5174 uridinediphosphate-dependent glycosyltransferase5174:
 
GRMZM2G463996
Li, HG et al. 2023. Characterization of Glycosyltransferase Family 1 (GT1) and Their Potential Roles in Anthocyanin Biosynthesis in Maize Genes. 14:2099.     Reference: November 18th, 2023
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
5 months agoIDP641  :
1.07
GRMZM2G373124
Li, HG et al. 2023. Characterization of Glycosyltransferase Family 1 (GT1) and Their Potential Roles in Anthocyanin Biosynthesis in Maize Genes. 14:2099.     Reference: November 18th, 2023
Variation: March 31st, 2005
Gene Model: February 14th, 2019
5 months agoczog2 cis-zeatin O-glucosyltransferase2:
8.07
GRMZM2G110511
Li, HG et al. 2023. Characterization of Glycosyltransferase Family 1 (GT1) and Their Potential Roles in Anthocyanin Biosynthesis in Maize Genes. 14:2099.     Reference: November 18th, 2023
Gene Product: March 20th, 2014
Variation: March 25th, 2009
Gene Model: March 21st, 2014
5 months agogl8 glossy8:
5.05
   Liu, J et al. 2023. Trade-offs between the accumulation of cuticular wax and jasmonic acid-mediated herbivory resistance in maize. J Integr Plant Biol. :doi: 10.1111/jipb.13586.     Reference: November 17th, 2023
Gene Product: September 1st, 2003
Variation: November 17th, 2023
5 months agowrky29 WRKY-transcription factor 29:
 
   Fu, JY et al. 2022. ZmEREB92 interacts with ZmMYC2 to activate maize terpenoid phytoalexin biosynthesis upon Fusarium graminearum infection through Jasmonic acid/Ethylene signaling New Phytol. :doi: 10.1111/nph.18590.     Reference: November 17th, 2023
Gene Product: July 24th, 2017
5 months agoelfa7 elongation factor alpha7:
8.03
GRMZM2G110509
Fu, JY et al. 2023. ZmEREB92 plays a negative role in seed germination by regulating ethylene signaling and starch mobilization in maize PLoS Genetics. 19:e1011052.     Reference: November 17th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: July 27th, 2016
5 months agoetr2 ethylene receptor homolog2:
10.04
GRMZM2G420801
Fu, JY et al. 2023. ZmEREB92 plays a negative role in seed germination by regulating ethylene signaling and starch mobilization in maize PLoS Genetics. 19:e1011052.     Reference: November 17th, 2023
Variation: October 2nd, 2015
Gene Model: October 2nd, 2015
5 months agocyp18 cytochrome P-450 18:
 
GRMZM2G470442
Katral, A et al. 2023. Multilocus functional characterization of indigenous and exotic inbreds for dgat1-2, fatb, ge2 and wri1a genes affecting kernel oil and fatty acid profile in maize Gene. :doi: 10.1016/j.gene.2023.148001.   LOC_Os03g30420 (MSU/TIGR) Reference: November 17th, 2023
Gene Product: August 18th, 2015
Variation: March 25th, 2023
Gene Model: August 18th, 2015
5 months agocipk16 calcineurin B-like-interacting protein kinase16:
 
GRMZM2G330049
Fu, JY et al. 2023. ZmEREB92 plays a negative role in seed germination by regulating ethylene signaling and starch mobilization in maize PLoS Genetics. 19:e1011052.   AT5G10930 (TAIR) Reference: November 17th, 2023
Gene Product: May 13th, 2014
Gene Model: August 20th, 2018
5 months agosnrkII3 SnRK2 serine threonine protein kinase3:
1.05
GRMZM2G180916
Fu, JY et al. 2023. ZmEREB92 plays a negative role in seed germination by regulating ethylene signaling and starch mobilization in maize PLoS Genetics. 19:e1011052.     Reference: November 17th, 2023
Gene Product: April 14th, 2018
Gene Model: February 11th, 2015
5 months agovpe4 vacuolar processing enzyme4:
 
   Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.     Reference: November 16th, 2023
Gene Product: September 29th, 2022
5 months agoGRMZM2G048775  :
 
   Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.     Reference: November 16th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G361475  :
 
   Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.     Reference: November 16th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G150134  :
 
   Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.     Reference: November 16th, 2023
Gene Product: September 18th, 2015
5 months agoLOC103626998  :
 
   Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.   AT1G17110 (TAIR) Reference: November 16th, 2023
Gene Product: November 16th, 2023
5 months agoarftf9 ARF-transcription factor 9:
3.04
   Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.     Reference: November 16th, 2023
Gene Product: January 29th, 2022
Variation: September 25th, 2007
5 months agomyb28 MYB-transcription factor 28:
4.05
   Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.     Reference: November 16th, 2023
Variation: September 25th, 2007
5 months agopsei2 cystatin2:
8.08
   Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.     Reference: November 16th, 2023
Gene Product: April 21st, 2008
Variation: January 15th, 2015
5 months agomyb83 MYB-transcription factor 83:
1.07
   Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.     Reference: November 16th, 2023
Variation: November 4th, 2016
5 months agosee2b senescence enhanced2b:
 
GRMZM2G093032
Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.     Reference: November 16th, 2023
Variation: August 1st, 2011
Gene Model: November 20th, 2014
5 months agoabi27 ABI3-VP1-transcription factor 27:
 
   Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.     Reference: November 16th, 2023
Gene Product: January 29th, 2022
5 months agoarftf10 ARF-transcription factor 10:
 
   Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.     Reference: November 16th, 2023
Gene Product: January 29th, 2022
5 months agobzip22 bZIP-transcription factor 22:
 
   Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.   AT1G43700 (TAIR) Reference: November 16th, 2023
Gene Product: August 21st, 2018
Variation: September 24th, 2018
5 months agobzip4 bZIP-transcription factor 4:
 
   Zhang, C et al. 2023. Comparative Transcriptome Analysis Reveals the Underlying Response Mechanism to Salt Stress in Maize Seedling Roots Metabolites. 13:1155.     Reference: November 16th, 2023
Gene Product: August 21st, 2018
Variation: August 21st, 2018
5 months agoelfa6 elongation factor alpha6:
7.04
GRMZM2G057535
Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.     Reference: November 16th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: February 20th, 2021
5 months agobb1 big brother1:
9.07
GRMZM2G141084
Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.   AT3G63530 (TAIR) Reference: November 16th, 2023
Gene Product: March 26th, 2020
Gene Model: October 14th, 2018
5 months agortl2 reversion-to-ethylene sensitivity1 like2:
3.08
GRMZM2G077293
Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.     Reference: November 16th, 2023
Variation: June 10th, 2016
Gene Model: June 10th, 2016
5 months agogte102 global transcription factor group E:
5.05
GRMZM2G006707
Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.     Reference: November 16th, 2023
Variation: September 1st, 2003
Gene Model: May 20th, 2020
5 months agosnrkII6 SnRK2 serine threonine protein kinase6:
4.05
GRMZM2G130018
Zhang, C et al. 2023. Comparative Transcriptome Analysis Reveals the Underlying Response Mechanism to Salt Stress in Maize Seedling Roots Metabolites. 13:1155.     Reference: November 16th, 2023
Gene Product: April 14th, 2018
Variation: November 12th, 2014
Gene Model: November 12th, 2014
5 months agoatl1 auxin transporter-like1:
 
GRMZM2G128918
Zhang, PY et al. 2023. Molecular mechanism analysis of ZmRL6 positively regulating drought stress tolerance in maize Stress Biol. :doi: 10.1007/s44154-023-00125-x.   AT2G38120 (TAIR)
LOC_Os01g63770 (MSU/TIGR)
Reference: November 16th, 2023
Gene Product: April 19th, 2017
Variation: April 19th, 2017
Gene Model: March 12th, 2015
5 months agocyp17 cytochrome P-450 17:
 
GRMZM2G138008
Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.   LOC_Os07g41240 (MSU/TIGR)
Os07g0603700 (Gramene)
Reference: November 16th, 2023
Gene Product: August 18th, 2015
Gene Model: August 18th, 2015
5 months agopmei21 pectin methylesterase inhibitor21:
 
GRMZM2G458200
Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.     Reference: November 16th, 2023
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
5 months agopgl14 polygalacturonase14:
 
GRMZM5G814803
Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.     Reference: November 16th, 2023
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
5 months agopgl53 polygalacturonase53:
 
GRMZM2G435380
Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.     Reference: November 16th, 2023
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
5 months agoccp34 cysteine protease34:
 
GRMZM2G099765
Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.     Reference: November 16th, 2023
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
5 months agoprh41 protein phosphatase homolog41:
 
GRMZM2G103247
Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.     Reference: November 16th, 2023
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
5 months agowrky142 WRKY-transcription factor 142:
 
   Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.     Reference: November 16th, 2023
Gene Product: July 24th, 2017
5 months agoasg75  :
1.04
GRMZM5G882821
Jihong Zhang et al. 2023. Dynamic transcriptome landscape of maize pericarp development. Plant J. :doi: 10.1111/tpj.16548.     Reference: November 16th, 2023
Variation: September 19th, 2009
Gene Model: June 30th, 2017
5 months agoms44 male sterile44:
4.08
AC225127.3_FG003
Xing, JP et al. 2023. Mining genic resources regulating nitrogen-use efficiency based on integrative biological analyses and their breeding applications in maize and other crops. Plant J. :doi: 10.1111/tpj.16550.     Reference: November 15th, 2023
Gene Product: September 1st, 2003
Variation: January 6th, 2017
Gene Model: January 6th, 2017
5 months agots5 tassel seed5:
4.03 - 4.05
GRMZM2G177668
Cristina Guerrero-Méndez et al. 2023. Factors specifying sex determination in maize. Plant Reproduction. :doi: 10.1007/s00497-023-00485-4.     Reference: November 15th, 2023
Gene Product: December 30th, 2022
Variation: March 25th, 2019
Gene Model: March 25th, 2019
5 months agopbf1 prolamin-box binding factor1:
2.06
   Xing, JP et al. 2023. Mining genic resources regulating nitrogen-use efficiency based on integrative biological analyses and their breeding applications in maize and other crops. Plant J. :doi: 10.1111/tpj.16550.     Reference: November 15th, 2023
Gene Product: September 1st, 2003
Variation: April 20th, 2005
5 months agobnlg2057  :
1.06
GRMZM2G017629
Xing, JP et al. 2023. Mining genic resources regulating nitrogen-use efficiency based on integrative biological analyses and their breeding applications in maize and other crops. Plant J. :doi: 10.1111/tpj.16550.     Reference: November 15th, 2023
Variation: March 17th, 2021
Gene Model: August 25th, 2017
5 months agogbss1 granule-bound starch synthase1:
 
GRMZM2G008263
Xing, JP et al. 2023. Mining genic resources regulating nitrogen-use efficiency based on integrative biological analyses and their breeding applications in maize and other crops. Plant J. :doi: 10.1111/tpj.16550.     Reference: November 15th, 2023
Gene Product: June 4th, 2008
Variation: August 4th, 2011
Gene Model: November 20th, 2014
5 months agomads26 MADS-transcription factor 26:
 
   Xing, JP et al. 2023. Mining genic resources regulating nitrogen-use efficiency based on integrative biological analyses and their breeding applications in maize and other crops. Plant J. :doi: 10.1111/tpj.16550.     Reference: November 15th, 2023
Variation: March 7th, 2022
5 months agonlp4 NLP-transcription factor 4:
 
   Xing, JP et al. 2023. Mining genic resources regulating nitrogen-use efficiency based on integrative biological analyses and their breeding applications in maize and other crops. Plant J. :doi: 10.1111/tpj.16550.     Reference: November 15th, 2023
Gene Product: December 3rd, 2019
5 months agonlp6 NLP-transcription factor 6:
 
   Xing, JP et al. 2023. Mining genic resources regulating nitrogen-use efficiency based on integrative biological analyses and their breeding applications in maize and other crops. Plant J. :doi: 10.1111/tpj.16550.     Reference: November 15th, 2023
Gene Product: December 3rd, 2019
5 months agonlp8 NLP-transcription factor 8:
 
   Xing, JP et al. 2023. Mining genic resources regulating nitrogen-use efficiency based on integrative biological analyses and their breeding applications in maize and other crops. Plant J. :doi: 10.1111/tpj.16550.     Reference: November 15th, 2023
Gene Product: December 3rd, 2019
5 months agotcptf10 TCP-transcription factor 10:
 
   Xing, JP et al. 2023. Mining genic resources regulating nitrogen-use efficiency based on integrative biological analyses and their breeding applications in maize and other crops. Plant J. :doi: 10.1111/tpj.16550.     Reference: November 15th, 2023
Gene Product: September 27th, 2019
5 months agotcptf26 TCP-transcription factor 26:
 
   Xing, JP et al. 2023. Mining genic resources regulating nitrogen-use efficiency based on integrative biological analyses and their breeding applications in maize and other crops. Plant J. :doi: 10.1111/tpj.16550.     Reference: November 15th, 2023
Gene Product: September 27th, 2019
5 months agotcptf9 TCP-transcription factor 9:
 
   Xing, JP et al. 2023. Mining genic resources regulating nitrogen-use efficiency based on integrative biological analyses and their breeding applications in maize and other crops. Plant J. :doi: 10.1111/tpj.16550.     Reference: November 15th, 2023
Gene Product: September 27th, 2019
5 months agodof1 DNA-binding with one finger1:
1.06
   Xing, JP et al. 2023. Mining genic resources regulating nitrogen-use efficiency based on integrative biological analyses and their breeding applications in maize and other crops. Plant J. :doi: 10.1111/tpj.16550.     Reference: November 15th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
5 months agots3 tassel seed3:
1.09
   Cristina Guerrero-Méndez et al. 2023. Factors specifying sex determination in maize. Plant Reproduction. :doi: 10.1007/s00497-023-00485-4.     Reference: November 15th, 2023
Variation: September 1st, 2003
5 months agoamt3 ammonium transporter3:
 
GRMZM2G118950
Xing, JP et al. 2023. Mining genic resources regulating nitrogen-use efficiency based on integrative biological analyses and their breeding applications in maize and other crops. Plant J. :doi: 10.1111/tpj.16550.     Reference: November 15th, 2023
Gene Product: July 8th, 2013
Gene Model: July 8th, 2013
5 months agonrt4 nitrate transport4:
 
GRMZM2G163494
Xing, JP et al. 2023. Mining genic resources regulating nitrogen-use efficiency based on integrative biological analyses and their breeding applications in maize and other crops. Plant J. :doi: 10.1111/tpj.16550.     Reference: November 15th, 2023
Gene Product: September 1st, 2003
Gene Model: September 10th, 2014
5 months agorhcp1 ring hc protein1:
 
GRMZM2G024690
Xing, JP et al. 2023. Mining genic resources regulating nitrogen-use efficiency based on integrative biological analyses and their breeding applications in maize and other crops. Plant J. :doi: 10.1111/tpj.16550.     Reference: November 15th, 2023
Gene Product: November 14th, 2022
Variation: April 3rd, 2017
Gene Model: April 3rd, 2017
5 months agoamt7 ammonium transporter7:
 
GRMZM2G335218
Xing, JP et al. 2023. Mining genic resources regulating nitrogen-use efficiency based on integrative biological analyses and their breeding applications in maize and other crops. Plant J. :doi: 10.1111/tpj.16550.     Reference: November 15th, 2023
Gene Product: July 8th, 2013
Gene Model: May 21st, 2019
5 months agoxyl4 xylanase4:
 
GRMZM2G004856
Xing, JP et al. 2023. Mining genic resources regulating nitrogen-use efficiency based on integrative biological analyses and their breeding applications in maize and other crops. Plant J. :doi: 10.1111/tpj.16550.     Reference: November 15th, 2023
Gene Product: March 4th, 2020
Gene Model: March 4th, 2020
5 months agotcptf45 TCP-transcription factor 45:
 
   Xing, JP et al. 2023. Mining genic resources regulating nitrogen-use efficiency based on integrative biological analyses and their breeding applications in maize and other crops. Plant J. :doi: 10.1111/tpj.16550.     Reference: November 15th, 2023
Gene Product: September 27th, 2019
5 months agonpf1 nitrate transporter/peptide transporter family1:
10.03
GRMZM2G086496
Xing, JP et al. 2023. Mining genic resources regulating nitrogen-use efficiency based on integrative biological analyses and their breeding applications in maize and other crops. Plant J. :doi: 10.1111/tpj.16550.   AT1G12110 (TAIR) Reference: November 15th, 2023
Gene Product: September 1st, 2003
Variation: September 11th, 2017
Gene Model: September 11th, 2017
5 months agoGRMZM2G068699  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G116846  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G116902  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G136534  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G341934  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoAC211164.5_FGT004  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G029144  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G067096  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G443885  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoAC230013.2_FGT002  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G000107  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G029479  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G101221  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoAC205154.3_FGT005  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G061230  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G419953  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G028219  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G035506  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G061776  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G142011  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G176085  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G081928  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G042347  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G129935  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G138450  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G150780  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G323182  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G404676  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoAC208341.4_FGT007  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G037156  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G136158  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G365774  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G382379  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G015280  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G097934  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G116452  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G438129  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G006727  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G050829  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G136525  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G160062  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G407740  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agoGRMZM2G448051  :
 
   Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
5 months agopx13 peroxidase 13:
5.03
GRMZM2G134947
Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
Variation: September 1st, 2003
Gene Model: February 23rd, 2015
5 months agoumc1243  :
1.05 - 1.05
GRMZM2G085198
Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Variation: September 30th, 2016
Gene Model: October 1st, 2016
5 months agoprx112 peroxidase112:
 
GRMZM2G033985
Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
Gene Model: September 22nd, 2018
5 months agoprx59 peroxidase59:
 
GRMZM2G130904
Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
Gene Model: January 5th, 2022
5 months agoprx65 peroxidase65:
 
GRMZM2G442008
Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
Variation: April 8th, 2022
Gene Model: April 8th, 2022
5 months agoprx60 peroxidase60:
9.07
GRMZM2G063435
Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 18th, 2015
Gene Model: July 5th, 2022
5 months agoapx5 Cytosolic ascorbate peroxidase5:
6.07
GRMZM2G093346
Wang, Y et al. 2015. Systematic analysis of maize class III peroxidase gene family reveals a conserved subfamily involved in abiotic stress response. Gene. 566:95-108.     Reference: November 14th, 2023
Gene Product: September 1st, 2003
Variation: August 10th, 2012
Gene Model: August 29th, 2018
5 months agoamt8 ammonium transporter8:
1.11
GRMZM2G338809
Torres-Morales, B et al. 2023. Genetic diversity characterization of maize populations using molecular markers Ital J Agron. 18:2206.     Reference: November 13th, 2023
Gene Product: July 8th, 2013
Gene Model: May 21st, 2019
5 months agophi121  :
8.03
GRMZM2G136567
Torres-Morales, B et al. 2023. Genetic diversity characterization of maize populations using molecular markers Ital J Agron. 18:2206.     Reference: November 13th, 2023
Variation: September 1st, 2003
Gene Model: September 18th, 2018
5 months agomtl1 metallothionein1:
4.00
GRMZM2G164229
Torres-Morales, B et al. 2023. Genetic diversity characterization of maize populations using molecular markers Ital J Agron. 18:2206.     Reference: November 13th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: April 9th, 2015
5 months agotub1 beta tubulin1:
1.01
GRMZM2G164696
Torres-Morales, B et al. 2023. Genetic diversity characterization of maize populations using molecular markers Ital J Agron. 18:2206.     Reference: November 13th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: October 25th, 2013
5 months agoarftf35 ARF-transcription factor 35:
 
   Li, PC et al. 2023. Dynamics and genetic regulation of macronutrient concentrations during grain development in maize J Integr Agric. :doi: 10.1016/j.jia.2023.11.003.     Reference: November 13th, 2023
Gene Product: January 29th, 2022
5 months agoumc155  :
10.03
GRMZM2G101926
Torres-Morales, B et al. 2023. Genetic diversity characterization of maize populations using molecular markers Ital J Agron. 18:2206.     Reference: November 13th, 2023
Variation: September 1st, 2003
Gene Model: December 14th, 2017
5 months agogst3 glutathione transferase3:
3.05
GRMZM2G146246
Torres-Morales, B et al. 2023. Genetic diversity characterization of maize populations using molecular markers Ital J Agron. 18:2206.     Reference: November 13th, 2023
Gene Product: September 1st, 2003
Variation: August 17th, 2010
Gene Model: February 15th, 2021
5 months agocyp6 cytochrome P450:
7.02
   Torres-Morales, B et al. 2023. Genetic diversity characterization of maize populations using molecular markers Ital J Agron. 18:2206.     Reference: November 13th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
5 months agovq3 VQ motif-transcription factor3:
 
GRMZM2G318652
Torres-Morales, B et al. 2023. Genetic diversity characterization of maize populations using molecular markers Ital J Agron. 18:2206.     Reference: November 13th, 2023
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
5 months agolac11 laccase11:
 
GRMZM2G305526
Li, PC et al. 2023. Dynamics and genetic regulation of macronutrient concentrations during grain development in maize J Integr Agric. :doi: 10.1016/j.jia.2023.11.003.     Reference: November 13th, 2023
Gene Product: March 31st, 2018
Gene Model: March 3rd, 2020
5 months agolac12 laccase12:
 
GRMZM5G814718
Li, PC et al. 2023. Dynamics and genetic regulation of macronutrient concentrations during grain development in maize J Integr Agric. :doi: 10.1016/j.jia.2023.11.003.     Reference: November 13th, 2023
Gene Product: March 31st, 2018
Gene Model: March 3rd, 2020
5 months agocipk15 calcineurin B-like-interacting protein kinase15:
 
GRMZM2G113967
Li, PC et al. 2023. Dynamics and genetic regulation of macronutrient concentrations during grain development in maize J Integr Agric. :doi: 10.1016/j.jia.2023.11.003.     Reference: November 13th, 2023
Gene Product: August 25th, 2018
Variation: December 6th, 2021
Gene Model: September 8th, 2021
5 months agoppr60 pentatricopeptide repeat protein60:
1.08
GRMZM2G164018
Zang, J et al. 2023. DEFECTIVE KERNEL 56 functions in mitochondrial RNA editing and maize seed development. Plant Physiol. :doi: 10.1093/plphys/kiad598.     Reference: November 13th, 2023
Gene Product: December 27th, 2016
Variation: March 31st, 2005
Gene Model: February 14th, 2019
5 months agomate15 multidrug and toxic compound extrusion15:
 
   Zhou, L et al. 2023. A carbonic anhydrase, ZmCA4, contributes to photosynthetic efficiency, and modulates CO2 signaling gene expression by interacting with aquaporin ZmPIP2;6 in maize Plant Cell Physiol. :doi: 10.1093/pcp/pcad145.     Reference: November 11th, 2023
Gene Product: August 17th, 2015
5 months agocah6 carbonic anhydrase6:
8.06
GRMZM2G094165
Zhou, L et al. 2023. A carbonic anhydrase, ZmCA4, contributes to photosynthetic efficiency, and modulates CO2 signaling gene expression by interacting with aquaporin ZmPIP2;6 in maize Plant Cell Physiol. :doi: 10.1093/pcp/pcad145.     Reference: November 11th, 2023
Gene Product: February 26th, 2019
Variation: March 2nd, 2022
Gene Model: July 31st, 2014
5 months agoumc1039  :
4.09 - 4.09
GRMZM2G046024
Dennis O Omondi et al. 2023. Combination of linkage and association mapping with genomic prediction to infer QTL regions associated with gray leaf spot and northern corn leaf blight resistance in tropical maize Frontiers in Genetics. 14:1282673.     Reference: November 11th, 2023
Variation: September 1st, 2003
Gene Model: March 6th, 2021
5 months agoumc1965  :
3.04
GRMZM2G100881
Zhang, HR et al. 2023. Genome wide association analysis reveals multiple QTLs controlling root development in maize J Integr Agric. :doi: 10.1016/j.jia.2023.10.040.     Reference: November 11th, 2023
Variation: September 1st, 2003
Gene Model: March 5th, 2021
5 months agocah2 carbonic anhydrase2:
 
GRMZM2G348512
Zhou, L et al. 2023. A carbonic anhydrase, ZmCA4, contributes to photosynthetic efficiency, and modulates CO2 signaling gene expression by interacting with aquaporin ZmPIP2;6 in maize Plant Cell Physiol. :doi: 10.1093/pcp/pcad145.     Reference: November 11th, 2023
Gene Product: February 26th, 2019
Variation: May 25th, 2018
Gene Model: July 31st, 2014
5 months agocah3 carbonic anhydrase3:
 
GRMZM2G348512
Zhou, L et al. 2023. A carbonic anhydrase, ZmCA4, contributes to photosynthetic efficiency, and modulates CO2 signaling gene expression by interacting with aquaporin ZmPIP2;6 in maize Plant Cell Physiol. :doi: 10.1093/pcp/pcad145.     Reference: November 11th, 2023
Gene Product: February 26th, 2019
Gene Model: August 5th, 2014
5 months agocah1 carbonic anhydrase1:
 
GRMZM2G121878
Zhou, L et al. 2023. A carbonic anhydrase, ZmCA4, contributes to photosynthetic efficiency, and modulates CO2 signaling gene expression by interacting with aquaporin ZmPIP2;6 in maize Plant Cell Physiol. :doi: 10.1093/pcp/pcad145.     Reference: November 11th, 2023
Gene Product: February 26th, 2019
Variation: May 25th, 2018
Gene Model: July 31st, 2014
5 months agocah4 carbonic anhydrase4:
 
GRMZM2G414528
Zhou, L et al. 2023. A carbonic anhydrase, ZmCA4, contributes to photosynthetic efficiency, and modulates CO2 signaling gene expression by interacting with aquaporin ZmPIP2;6 in maize Plant Cell Physiol. :doi: 10.1093/pcp/pcad145.     Reference: November 11th, 2023
Gene Product: February 26th, 2019
Variation: November 11th, 2023
Gene Model: July 31st, 2014
5 months agocah5 carbonic anhydrase5:
 
GRMZM2G145101
Zhou, L et al. 2023. A carbonic anhydrase, ZmCA4, contributes to photosynthetic efficiency, and modulates CO2 signaling gene expression by interacting with aquaporin ZmPIP2;6 in maize Plant Cell Physiol. :doi: 10.1093/pcp/pcad145.     Reference: November 11th, 2023
Gene Product: February 26th, 2019
Gene Model: July 31st, 2014
5 months agoslac4 slow anion channel-associated4:
 
GRMZM2G169951
Zhou, L et al. 2023. A carbonic anhydrase, ZmCA4, contributes to photosynthetic efficiency, and modulates CO2 signaling gene expression by interacting with aquaporin ZmPIP2;6 in maize Plant Cell Physiol. :doi: 10.1093/pcp/pcad145.     Reference: November 11th, 2023
Gene Product: February 1st, 2018
Gene Model: February 1st, 2018
5 months agopgip2 polygalacturonase-inhibiting protein2:
 
GRMZM2G121312
Dennis O Omondi et al. 2023. Combination of linkage and association mapping with genomic prediction to infer QTL regions associated with gray leaf spot and northern corn leaf blight resistance in tropical maize Frontiers in Genetics. 14:1282673.     Reference: November 11th, 2023
Gene Product: September 4th, 2019
Gene Model: September 4th, 2019
5 months agosnrkII11 SnRK2 serine threonine protein kinase 11:
6.05
GRMZM2G063961
Zhou, L et al. 2023. A carbonic anhydrase, ZmCA4, contributes to photosynthetic efficiency, and modulates CO2 signaling gene expression by interacting with aquaporin ZmPIP2;6 in maize Plant Cell Physiol. :doi: 10.1093/pcp/pcad145.     Reference: November 11th, 2023
Gene Product: April 14th, 2018
Gene Model: February 11th, 2015
5 months agoIDP2557  :
5.00
GRMZM2G110881
Dennis O Omondi et al. 2023. Combination of linkage and association mapping with genomic prediction to infer QTL regions associated with gray leaf spot and northern corn leaf blight resistance in tropical maize Frontiers in Genetics. 14:1282673.     Reference: November 11th, 2023
Variation: March 31st, 2005
Gene Model: May 2nd, 2020
5 months agospk1 stress-induced protein kinase1:
5.05
GRMZM2G000278
Zhou, L et al. 2023. A carbonic anhydrase, ZmCA4, contributes to photosynthetic efficiency, and modulates CO2 signaling gene expression by interacting with aquaporin ZmPIP2;6 in maize Plant Cell Physiol. :doi: 10.1093/pcp/pcad145.     Reference: November 11th, 2023
Gene Product: April 14th, 2018
Variation: November 12th, 2014
Gene Model: February 12th, 2015
6 months agocrk5 crumpled kernel5:
 
   Zhang, H et al. 2023. A peptide chain release factor 2a gene regulates maize kernel development by modulating mitochondrial function Crop J. :doi: 10.1016/j.cj.2023.10.006.   AT1G56350 (TAIR) Reference: November 10th, 2023
Gene Product: November 10th, 2023
Variation: November 10th, 2023
6 months agonlp7 NLP-transcription factor 7:
1.01
GRMZM2G109509
Evandrei S Rossi et al. 2020. Genomic-wide association study for white spot resistance in a tropical maize germplasm Euphytica. 216:15.     Reference: November 10th, 2023
Gene Product: December 3rd, 2019
Gene Model: October 7th, 2017
6 months agoomt3 Caffeoyl CoA O-methyltransferase3:
 
GRMZM2G077486
Jatin Sharma et al. 2023. Surveying the genomic landscape of silage-quality traits in maize (Zea mays L.) Crop J. :doi: 10.1016/j.cj.2023.10.007.     Reference: November 10th, 2023
Gene Product: January 5th, 2014
Gene Model: May 13th, 2016
6 months agopld9 phospholipase D9:
 
GRMZM2G133943
Stella Bigirwa Ayesiga et al. 2023. Genome-wide association study and pathway analysis to decipher loci associated with Fusarium ear rot resistance in tropical maize germplasm Genet Resour Crop Evol. :doi: 10.1007/s10722-023-01793-4.     Reference: November 10th, 2023
Gene Product: August 9th, 2016
Gene Model: August 9th, 2016
6 months agocl3313_1  :
5.03
GRMZM2G089119
Evandrei S Rossi et al. 2020. Genomic-wide association study for white spot resistance in a tropical maize germplasm Euphytica. 216:15.     Reference: November 10th, 2023
Variation: September 25th, 2007
Gene Model: May 10th, 2020
6 months agogst2 glutathione S-transferase2:
10.03
GRMZM2G132093
Nengde Zeng et al. 2023. Expeditious profiling of polycyclic aromatic hydrocarbons transport and obstruction mechanisms in crop xylem sap proteins via proteomics and molecular docking. Environ Pollut. :doi: 10.1016/j.envpol.2023.122854.     Reference: November 9th, 2023
Gene Product: September 1st, 2003
Variation: July 7th, 2010
Gene Model: October 29th, 2015
6 months agoact5 actin5:
5.01
GRMZM2G152328
Nengde Zeng et al. 2023. Expeditious profiling of polycyclic aromatic hydrocarbons transport and obstruction mechanisms in crop xylem sap proteins via proteomics and molecular docking. Environ Pollut. :doi: 10.1016/j.envpol.2023.122854.     Reference: November 9th, 2023
Gene Product: September 1st, 2003
Variation: April 29th, 2020
Gene Model: April 29th, 2020
6 months agogpa1 glyceraldehyde-3-phosphate dehydrogenase1:
8.03
   Nengde Zeng et al. 2023. Expeditious profiling of polycyclic aromatic hydrocarbons transport and obstruction mechanisms in crop xylem sap proteins via proteomics and molecular docking. Environ Pollut. :doi: 10.1016/j.envpol.2023.122854.     Reference: November 9th, 2023
Gene Product: September 1st, 2003
Variation: April 12th, 2013
6 months agoaps1 ATP sulfurylase1:
1.10
GRMZM2G149952
Doyel Roy et al. 2023. Untying the regulatory roles of miRNAs in CuO-NPs stress response mechanism in maize: A genome-wide sRNA transcriptome analysis Chemosphere. :doi: 10.1016/j.chemosphere.2023.140628.     Reference: November 9th, 2023
Gene Product: September 1st, 2003
Variation: September 26th, 2017
Gene Model: September 26th, 2017
6 months agoumc1742  :
3.04
GRMZM2G114552
Nengde Zeng et al. 2023. Expeditious profiling of polycyclic aromatic hydrocarbons transport and obstruction mechanisms in crop xylem sap proteins via proteomics and molecular docking. Environ Pollut. :doi: 10.1016/j.envpol.2023.122854.     Reference: November 9th, 2023
Variation: September 1st, 2003
Gene Model: April 2nd, 2018
6 months agotls1 tasselless1:
1.11 - 1.12
GRMZM2G176209
Bienert, MD et al. 2023. Boron deficiency responses in maize (Zea mays L.) roots J Plant Nutr Soil Sci. :doi: 10.1002/jpln.202300173.     Reference: November 9th, 2023
Gene Product: January 27th, 2022
Variation: July 29th, 2014
Gene Model: April 2nd, 2014
6 months agotub4 beta tubulin4:
5.03
   Nengde Zeng et al. 2023. Expeditious profiling of polycyclic aromatic hydrocarbons transport and obstruction mechanisms in crop xylem sap proteins via proteomics and molecular docking. Environ Pollut. :doi: 10.1016/j.envpol.2023.122854.     Reference: November 9th, 2023
Gene Product: September 1st, 2003
Variation: August 20th, 2013
6 months agoprp2 pathogenesis-related protein2:
2.04
   Nengde Zeng et al. 2023. Expeditious profiling of polycyclic aromatic hydrocarbons transport and obstruction mechanisms in crop xylem sap proteins via proteomics and molecular docking. Environ Pollut. :doi: 10.1016/j.envpol.2023.122854.     Reference: November 9th, 2023
Gene Product: December 12th, 2022
Variation: September 1st, 2003
6 months agoccp35 cysteine protease35:
1.07
GRMZM2G456217
Nengde Zeng et al. 2023. Expeditious profiling of polycyclic aromatic hydrocarbons transport and obstruction mechanisms in crop xylem sap proteins via proteomics and molecular docking. Environ Pollut. :doi: 10.1016/j.envpol.2023.122854.     Reference: November 9th, 2023
Gene Product: October 11th, 2021
Gene Model: February 11th, 2020
6 months agolac22 laccase22:
 
GRMZM2G336337
Doyel Roy et al. 2023. Untying the regulatory roles of miRNAs in CuO-NPs stress response mechanism in maize: A genome-wide sRNA transcriptome analysis Chemosphere. :doi: 10.1016/j.chemosphere.2023.140628.     Reference: November 9th, 2023
Gene Product: March 31st, 2018
Gene Model: March 3rd, 2020
6 months agoIDP610  :
2.09
GRMZM2G152258
Nengde Zeng et al. 2023. Expeditious profiling of polycyclic aromatic hydrocarbons transport and obstruction mechanisms in crop xylem sap proteins via proteomics and molecular docking. Environ Pollut. :doi: 10.1016/j.envpol.2023.122854.     Reference: November 9th, 2023
Variation: March 31st, 2005
Gene Model: February 20th, 2019
6 months agodar2 monodehydroascorbate reductase2:
4.05
GRMZM2G134708
Nengde Zeng et al. 2023. Expeditious profiling of polycyclic aromatic hydrocarbons transport and obstruction mechanisms in crop xylem sap proteins via proteomics and molecular docking. Environ Pollut. :doi: 10.1016/j.envpol.2023.122854.     Reference: November 9th, 2023
Gene Product: October 15th, 2020
Gene Model: April 16th, 2020
6 months agostsl4 strictosidine synthase-like4:
 
   Pinto, VB et al. 2023. Transcriptome-based strategies for identifying aluminum tolerance genes in popcorn (Zea mays L. var. everta). Sci. Rep.. 13:19400.     Reference: November 8th, 2023
Gene Product: September 29th, 2023
6 months agobnlg149  :
1.00
GRMZM5G833153
Sen, S et al. 2023. Maize Feature Store: A centralized resource to manage and analyze curated maize multi-omics features for machine learning applications. Database. 2023:doi: 10.1093/database/baad078.     Reference: November 8th, 2023
Variation: September 1st, 2003
Gene Model: August 1st, 2017
6 months agobnlg2190  :
10.06
GRMZM2G019986
Pinto, VB et al. 2023. Transcriptome-based strategies for identifying aluminum tolerance genes in popcorn (Zea mays L. var. everta). Sci. Rep.. 13:19400.     Reference: November 8th, 2023
Variation: September 1st, 2003
Gene Model: January 16th, 2018
6 months agoole4 oleosin4:
1.09
GRMZM2G480954
Fu, YX et al. 2023. Spatial transcriptomics uncover sucrose post-phloem transport during maize kernel development Nat Commun. 14:7191.     Reference: November 8th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: October 9th, 2015
6 months agogst7 glutathione transferase7:
3.05
GRMZM2G028556
Pinto, VB et al. 2023. Transcriptome-based strategies for identifying aluminum tolerance genes in popcorn (Zea mays L. var. everta). Sci. Rep.. 13:19400.     Reference: November 8th, 2023
Gene Product: September 1st, 2003
Variation: August 9th, 2010
Gene Model: July 27th, 2016
6 months agosodh1 sorbitol dehydrogenase homolog1:
1.07
   Fu, YX et al. 2023. Spatial transcriptomics uncover sucrose post-phloem transport during maize kernel development Nat Commun. 14:7191.     Reference: November 8th, 2023
Gene Product: September 1st, 2003
Variation: August 13th, 2013
6 months agombd105 methyl binding domain105:
3.04
GRMZM2G476933
Dong, XM et al. 2023. The conservation of allelic DNA methylation and its relationship with imprinting in maize J Exp Bot. :doi: 10.1093/jxb/erad440     Reference: November 8th, 2023
Gene Product: December 24th, 2015
Variation: February 6th, 2010
Gene Model: December 24th, 2015
6 months agosweet4a sugars will eventually be exported transporter4a:
 
GRMZM2G000812
Pinto, VB et al. 2023. Transcriptome-based strategies for identifying aluminum tolerance genes in popcorn (Zea mays L. var. everta). Sci. Rep.. 13:19400.     Reference: November 8th, 2023
Gene Product: November 4th, 2015
Gene Model: November 3rd, 2015
6 months agosweet14a sugars will eventually be exported transporter14a:
 
GRMZM2G094955
Fu, YX et al. 2023. Spatial transcriptomics uncover sucrose post-phloem transport during maize kernel development Nat Commun. 14:7191.     Reference: November 8th, 2023
Gene Product: November 4th, 2015
Gene Model: November 3rd, 2015
6 months agophos3 phosphate transporter3:
 
GRMZM5G815128
Fu, YX et al. 2023. Spatial transcriptomics uncover sucrose post-phloem transport during maize kernel development Nat Commun. 14:7191.   LOC_Os02g56510 (MSU/TIGR) Reference: November 8th, 2023
Gene Product: February 27th, 2016
Variation: September 13th, 2017
Gene Model: September 13th, 2017
6 months agogbss2 granule-bound starch synthase2:
 
   Sen, S et al. 2023. Maize Feature Store: A centralized resource to manage and analyze curated maize multi-omics features for machine learning applications. Database. 2023:doi: 10.1093/database/baad078.     Reference: November 8th, 2023
Gene Product: June 4th, 2008
6 months agopip2h plasma membrane intrinsic protein, PIP2h:
 
GRMZM2G432926
Pinto, VB et al. 2023. Transcriptome-based strategies for identifying aluminum tolerance genes in popcorn (Zea mays L. var. everta). Sci. Rep.. 13:19400.     Reference: November 8th, 2023
Gene Product: January 27th, 2022
Gene Model: November 6th, 2021
6 months agofad17 fatty acid desaturase17:
 
GRMZM2G169261
Pinto, VB et al. 2023. Transcriptome-based strategies for identifying aluminum tolerance genes in popcorn (Zea mays L. var. everta). Sci. Rep.. 13:19400.     Reference: November 8th, 2023
Gene Product: January 6th, 2022
Gene Model: January 6th, 2022
6 months agopip2i plasma membrane intrinsic protein, PIP2i:
 
GRMZM2G018649
Pinto, VB et al. 2023. Transcriptome-based strategies for identifying aluminum tolerance genes in popcorn (Zea mays L. var. everta). Sci. Rep.. 13:19400.     Reference: November 8th, 2023
Gene Product: January 27th, 2022
Gene Model: January 27th, 2022
6 months agotip3d tonoplast intrinsic protein3d:
 
GRMZM2G039845
Fu, YX et al. 2023. Spatial transcriptomics uncover sucrose post-phloem transport during maize kernel development Nat Commun. 14:7191.     Reference: November 8th, 2023
Gene Product: January 27th, 2022
Gene Model: January 27th, 2022
6 months agoppr408 pentatricopeptide repeat protein408:
7.04
GRMZM2G044023
Fu Qian et al. 2023. GWAS and Meta-QTL Analysis of Yield-Related Ear Traits in Maize Plants. 12:3806.     Reference: November 8th, 2023
Gene Product: December 27th, 2016
Gene Model: August 14th, 2021
6 months agosacd9 stearoyl-acyl-carrier-protein desaturase9:
8.06
GRMZM2G316362
Pinto, VB et al. 2023. Transcriptome-based strategies for identifying aluminum tolerance genes in popcorn (Zea mays L. var. everta). Sci. Rep.. 13:19400.     Reference: November 8th, 2023
Gene Product: October 10th, 2016
Gene Model: October 10th, 2016
6 months agogpm458  :
4.06
GRMZM2G044627
Fu, YX et al. 2023. Spatial transcriptomics uncover sucrose post-phloem transport during maize kernel development Nat Commun. 14:7191.     Reference: November 8th, 2023
Variation: September 25th, 2007
Gene Model: August 23rd, 2021
6 months agocry3 cryptochrome3:
9.03
GRMZM2G172152
Shizhan Chen et al. 2023. Cryptochrome 1b represses gibberellin signaling to enhance lodging resistance in maize Plant Physiol. :doi: 10.1093/plphys/kiad546.     Reference: November 6th, 2023
Gene Product: August 31st, 2018
Variation: September 25th, 2007
Gene Model: September 9th, 2021
6 months agocol2 C2C2-CO-like-transcription factor 2:
 
   Shizhan Chen et al. 2023. Cryptochrome 1b represses gibberellin signaling to enhance lodging resistance in maize Plant Physiol. :doi: 10.1093/plphys/kiad546.     Reference: November 6th, 2023
Gene Product: June 18th, 2018
6 months agohct9 hydroxycinnamoyltransferase9:
 
GRMZM2G131165
Wang, Y et al. 2023. Genome-wide association and transcriptome reveal genetic basis for Southern Corn Rust in maize J Integr Agric. :doi: 10.1016/j.jia.2023.10.039.     Reference: November 6th, 2023
Gene Product: November 7th, 2015
Gene Model: November 7th, 2015
6 months agobbx33 b-box33:
 
GRMZM2G085218
Shizhan Chen et al. 2023. Cryptochrome 1b represses gibberellin signaling to enhance lodging resistance in maize Plant Physiol. :doi: 10.1093/plphys/kiad546.     Reference: November 6th, 2023
Gene Product: January 11th, 2019
Gene Model: January 4th, 2017
6 months agodbb2 double B-box zinc finger protein2:
 
GRMZM2G131982
Shizhan Chen et al. 2023. Cryptochrome 1b represses gibberellin signaling to enhance lodging resistance in maize Plant Physiol. :doi: 10.1093/plphys/kiad546.     Reference: November 6th, 2023
Gene Product: May 10th, 2017
Variation: March 17th, 2021
Gene Model: May 10th, 2017
6 months agodbb3 double B-box zinc finger protein3:
 
GRMZM5G834596
Shizhan Chen et al. 2023. Cryptochrome 1b represses gibberellin signaling to enhance lodging resistance in maize Plant Physiol. :doi: 10.1093/plphys/kiad546.     Reference: November 6th, 2023
Gene Product: May 10th, 2017
Variation: May 10th, 2017
Gene Model: May 10th, 2017
6 months agodbb8 double B-box zinc finger protein8:
 
GRMZM2G070446
Shizhan Chen et al. 2023. Cryptochrome 1b represses gibberellin signaling to enhance lodging resistance in maize Plant Physiol. :doi: 10.1093/plphys/kiad546.     Reference: November 6th, 2023
Gene Product: May 10th, 2017
Variation: May 10th, 2017
Gene Model: May 10th, 2017
6 months agodbb11 double B-box zinc finger protein11:
 
GRMZM2G028594
Shizhan Chen et al. 2023. Cryptochrome 1b represses gibberellin signaling to enhance lodging resistance in maize Plant Physiol. :doi: 10.1093/plphys/kiad546.     Reference: November 6th, 2023
Gene Product: May 10th, 2017
Variation: May 10th, 2017
Gene Model: May 10th, 2017
6 months agodbb12 double B-box zinc finger protein12:
 
GRMZM2G098442
Shizhan Chen et al. 2023. Cryptochrome 1b represses gibberellin signaling to enhance lodging resistance in maize Plant Physiol. :doi: 10.1093/plphys/kiad546.     Reference: November 6th, 2023
Gene Product: May 10th, 2017
Gene Model: May 10th, 2017
6 months agobbx13 b-box13:
 
GRMZM2G438979
Shizhan Chen et al. 2023. Cryptochrome 1b represses gibberellin signaling to enhance lodging resistance in maize Plant Physiol. :doi: 10.1093/plphys/kiad546.     Reference: November 6th, 2023
Gene Product: January 11th, 2019
Gene Model: January 10th, 2019
6 months agobbx17 b-box17:
 
GRMZM2G146614
Shizhan Chen et al. 2023. Cryptochrome 1b represses gibberellin signaling to enhance lodging resistance in maize Plant Physiol. :doi: 10.1093/plphys/kiad546.     Reference: November 6th, 2023
Gene Product: January 11th, 2019
Gene Model: January 10th, 2019
6 months agobbx26 b-box26:
 
GRMZM2G415711
Shizhan Chen et al. 2023. Cryptochrome 1b represses gibberellin signaling to enhance lodging resistance in maize Plant Physiol. :doi: 10.1093/plphys/kiad546.     Reference: November 6th, 2023
Gene Product: January 11th, 2019
Gene Model: January 10th, 2019
6 months agoupl14 ubiquitin-protein ligase14:
 
GRMZM2G126795
Shizhan Chen et al. 2023. Cryptochrome 1b represses gibberellin signaling to enhance lodging resistance in maize Plant Physiol. :doi: 10.1093/plphys/kiad546.   AT2G32950 (TAIR) Reference: November 6th, 2023
Gene Product: March 26th, 2020
Gene Model: March 26th, 2020
6 months agobbx10 b-box10:
 
GRMZM2G081577
Shizhan Chen et al. 2023. Cryptochrome 1b represses gibberellin signaling to enhance lodging resistance in maize Plant Physiol. :doi: 10.1093/plphys/kiad546.     Reference: November 6th, 2023
Gene Product: January 11th, 2019
Gene Model: August 15th, 2022
6 months agodof4 C2C2-Dof-transcription factor 4:
3.08
GRMZM2G327189
Zhuoyun Wei et al. 2023. The Dof transcription factor COG1 acts as a key regulator of plant biomass by promoting photosynthesis and starch accumulation Molecular Plant. 16:1759-1772.     Reference: November 6th, 2023
Variation: March 31st, 2005
Gene Model: November 28th, 2014
6 months agocol15 C2C2-CO-like-transcription factor 1:
1.04
GRMZM2G134671
Shizhan Chen et al. 2023. Cryptochrome 1b represses gibberellin signaling to enhance lodging resistance in maize Plant Physiol. :doi: 10.1093/plphys/kiad546.     Reference: November 6th, 2023
Gene Product: June 18th, 2018
Gene Model: June 16th, 2018
6 months agoimp4 importin4:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: November 15th, 2022
6 months agoimp6 importin6:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: November 15th, 2022
6 months agoimp7 importin7:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: November 15th, 2022
6 months agoarm50 armadillo domain protein50:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoarm2 armadillo domain protein2:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoarm17 armadillo domain protein17:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoarm18 armadillo domain protein18:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoarm19 armadillo domain protein19:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoarm20 armadillo domain protein20:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoarm21 armadillo domain protein21:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoarm27 armadillo domain protein27:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoarm30 armadillo domain protein30:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoarm31 armadillo domain protein31:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoarm32 armadillo domain protein32:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoarm33 armadillo domain protein33:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoarm34 armadillo domain protein34:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoarm35 armadillo domain protein35:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoarm37 armadillo domain protein37:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoarm45 armadillo domain protein45:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoarm48 armadillo domain protein48:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoarm51 armadillo domain protein51:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoarm52 armadillo domain protein52:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoarm56 armadillo domain protein56:
 
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoimp3 importin3:
8.01
GRMZM2G088231
Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: November 15th, 2022
Gene Model: January 16th, 2021
6 months agoarm28 armadillo domain protein28:
3.05 - 3.05
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
Variation: September 1st, 2003
6 months agoimp1 importin1:
8.03
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: November 15th, 2022
Variation: July 7th, 2017
6 months agoarm36 armadillo domain protein36:
4.01
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoimp2 importin 2:
 
GRMZM2G009845
Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: November 15th, 2022
Gene Model: January 11th, 2020
6 months agoaro2 armadillo repeat only2:
 
GRMZM2G133282
Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.   AT4G34940 (TAIR) Reference: November 3rd, 2023
Gene Product: February 1st, 2021
Gene Model: February 1st, 2021
6 months agotraf27 TNF receptor-associated factor 27:
 
GRMZM2G098227
Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: June 30th, 2021
Gene Model: June 30th, 2021
6 months agotraf28 TNF receptor-associated factor 28:
 
GRMZM2G100946
Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: June 30th, 2021
Gene Model: June 30th, 2021
6 months agoarm55 armadillo domain protein55:
 
GRMZM2G079031
Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
Gene Model: February 8th, 2022
6 months agoarm44 armadillo domain protein44:
 
GRMZM2G094599
Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
Gene Model: July 19th, 2022
6 months agoarm49 armadillo domain protein49:
6.01
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agoarm29 armadillo domain protein29:
8.01
   Zhijia Yu et al. 2023. Exploring the roles of ZmARM gene family in maize development and abiotic stress response. PeerJ. 11:e16254.     Reference: November 3rd, 2023
Gene Product: February 1st, 2021
6 months agocsu456(uce)  :
3.08
GRMZM5G814314
Ma, YT et al. 2023. Genetic analysis of phenotypic plasticity identifies BBX6 as the candidate gene for maize adaptation to temperate regions Frontiers in Plant Science. 14:1280331.     Reference: November 2nd, 2023
Gene Product: December 19th, 2019
Gene Model: November 26th, 2019
6 months agoAY110217  :
9.04
GRMZM2G131785
Ma, B et al. 2023. Two ABCI family transporters, OsABCI15 and OsABCI16, are involved in grain-filling in rice. J Genet Genomics. :doi: 10.1016/j.jgg.2023.10.007.     Reference: November 2nd, 2023
Variation: September 25th, 2007
Gene Model: February 28th, 2018
6 months agobbx6 b-box6:
 
GRMZM2G422644
Ma, YT et al. 2023. Genetic analysis of phenotypic plasticity identifies BBX6 as the candidate gene for maize adaptation to temperate regions Frontiers in Plant Science. 14:1280331.     Reference: November 2nd, 2023
Gene Product: January 11th, 2019
Gene Model: January 10th, 2019
6 months agoumc1103  :
7.04
GRMZM2G414043
Ma, YT et al. 2023. Identification of Allele-Specific Expression Genes Associated with Maize Heterosis Agronomy. 13:2722.     Reference: November 1st, 2023
Variation: August 16th, 2017
Gene Model: August 16th, 2017
6 months agotcptf12 TCP-transcription factor 12:
 
   Ma, YT et al. 2023. Identification of Allele-Specific Expression Genes Associated with Maize Heterosis Agronomy. 13:2722.     Reference: November 1st, 2023
Gene Product: September 27th, 2019
6 months agocyc7 cyclin7:
3.06
GRMZM2G073003
Ma, YT et al. 2023. Identification of Allele-Specific Expression Genes Associated with Maize Heterosis Agronomy. 13:2722.     Reference: November 1st, 2023
Gene Product: June 26th, 2009
Variation: October 23rd, 2012
Gene Model: August 16th, 2019
6 months agortl1 reversion-to-ethylene sensitivity1 like1:
 
GRMZM5G832994
Yang, F et al. 2023. Comparative physiological and transcriptome analysis of leaf nitrogen fluxes in stay-green maize during the vegetative stage Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108147.     Reference: November 1st, 2023
Variation: June 10th, 2016
Gene Model: June 10th, 2016
6 months agompk17 MAP kinase17:
 
GRMZM2G374088
Ma, YT et al. 2023. Identification of Allele-Specific Expression Genes Associated with Maize Heterosis Agronomy. 13:2722.     Reference: November 1st, 2023
Gene Product: July 12th, 2013
Variation: March 18th, 2021
Gene Model: October 2nd, 2017
6 months agourb2 unhealthy ribosome biogenesis2:
 
GRMZM2G457178
Ma, YT et al. 2023. Identification of Allele-Specific Expression Genes Associated with Maize Heterosis Agronomy. 13:2722.     Reference: November 1st, 2023
Variation: February 26th, 2018
Gene Model: February 26th, 2018
6 months agoxlg2 extra-large guanine nucleotide-binding protein2:
 
GRMZM2G016858
Ma, YT et al. 2023. Identification of Allele-Specific Expression Genes Associated with Maize Heterosis Agronomy. 13:2722.     Reference: November 1st, 2023
Gene Product: May 1st, 2018
Variation: May 1st, 2018
Gene Model: May 1st, 2018
6 months agonye1 non-yellowing1:
 
GRMZM2G091837
Yang, F et al. 2023. Comparative physiological and transcriptome analysis of leaf nitrogen fluxes in stay-green maize during the vegetative stage Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.108147.     Reference: November 1st, 2023
Gene Product: August 26th, 2020
Gene Model: August 26th, 2020
6 months agoiqd19 IQ-domain 19:
 
GRMZM2G170766
Ma, YT et al. 2023. Identification of Allele-Specific Expression Genes Associated with Maize Heterosis Agronomy. 13:2722.     Reference: November 1st, 2023
Gene Product: May 23rd, 2021
Gene Model: May 23rd, 2021
6 months agothi2 thiamine biosynthesis2:
3.09
GRMZM2G074097
Sheng Ying et al. 2023. Multi-scale physiological responses to nitrogen supplementation of maize hybrids Plant Physiol. :doi: 10.1093/plphys/kiad583.     Reference: October 31st, 2023
Gene Product: February 1st, 2013
Variation: August 3rd, 2013
Gene Model: January 31st, 2013
6 months agocrr2 cytokinin response regulator2:
10.07
   Sheng Ying et al. 2023. Multi-scale physiological responses to nitrogen supplementation of maize hybrids Plant Physiol. :doi: 10.1093/plphys/kiad583.     Reference: October 31st, 2023
Gene Product: June 30th, 2017
Variation: October 1st, 2015
6 months agoelip1 early light inducible protein1:
 
GRMZM2G355752
Sheng Ying et al. 2023. Multi-scale physiological responses to nitrogen supplementation of maize hybrids Plant Physiol. :doi: 10.1093/plphys/kiad583.     Reference: October 31st, 2023
Gene Product: July 27th, 2013
Gene Model: July 27th, 2013
6 months agolic2 lichenase2:
 
GRMZM2G137535
Sheng Ying et al. 2023. Multi-scale physiological responses to nitrogen supplementation of maize hybrids Plant Physiol. :doi: 10.1093/plphys/kiad583.     Reference: October 31st, 2023
Gene Product: February 1st, 2021
Variation: February 1st, 2021
Gene Model: January 7th, 2020
6 months agoht1 Helminthosporium turcicum resistance1:
2.08
   Ludwig Navarro, B et al. 2023. Photosynthetic costs and impact on epidemiological parameters associated with Ht resistance genes in maize lines infected with Exserohilum turcicum. Phytopathology. :doi: 10.1094/PHYTO-07-23-0247-R.     Reference: October 28th, 2023
Gene Product: February 1st, 2023
Variation: September 1st, 2003
6 months agoht2 Helminthosporium turcicum resistance2:
8.05 - 8.06
   Ludwig Navarro, B et al. 2023. Photosynthetic costs and impact on epidemiological parameters associated with Ht resistance genes in maize lines infected with Exserohilum turcicum. Phytopathology. :doi: 10.1094/PHYTO-07-23-0247-R.     Reference: October 28th, 2023
Variation: September 1st, 2003
6 months agoht3 Helminthosporium turcicum resistance3:
 
   Ludwig Navarro, B et al. 2023. Photosynthetic costs and impact on epidemiological parameters associated with Ht resistance genes in maize lines infected with Exserohilum turcicum. Phytopathology. :doi: 10.1094/PHYTO-07-23-0247-R.     Reference: October 28th, 2023
Variation: September 1st, 2003
6 months agocchh150 Cys2His2 Zinc Finger150:
 
   Liu, C et al. 2023. Overexpression of ZmSTOP1-A Enhances Aluminum Tolerance in Arabidopsis by Stimulating Organic Acid Secretion and Reactive Oxygen Species Scavenging Int J Mol Sci. 24:15669.     Reference: October 27th, 2023
Gene Product: November 14th, 2022
6 months agocchh35 Cys2His2 Zinc Finger35:
10.02
GRMZM2G068710
Liu, C et al. 2023. Overexpression of ZmSTOP1-A Enhances Aluminum Tolerance in Arabidopsis by Stimulating Organic Acid Secretion and Reactive Oxygen Species Scavenging Int J Mol Sci. 24:15669.     Reference: October 27th, 2023
Gene Product: November 14th, 2022
Gene Model: January 23rd, 2018
6 months agocchh5 Cys2His2 Zinc Finger5:
 
   Liu, C et al. 2023. Overexpression of ZmSTOP1-A Enhances Aluminum Tolerance in Arabidopsis by Stimulating Organic Acid Secretion and Reactive Oxygen Species Scavenging Int J Mol Sci. 24:15669.     Reference: October 27th, 2023
Gene Product: November 14th, 2022
6 months agocchh3 Cys2His2 Zinc Finger3:
5.05
GRMZM2G023988
Liu, C et al. 2023. Overexpression of ZmSTOP1-A Enhances Aluminum Tolerance in Arabidopsis by Stimulating Organic Acid Secretion and Reactive Oxygen Species Scavenging Int J Mol Sci. 24:15669.     Reference: October 27th, 2023
Gene Product: November 14th, 2022
Gene Model: January 23rd, 2018
6 months agol15 luteus15:
6.02 - 6.03
GRMZM2G177169
Lukas Dorian Dittiger et al. 2023. Plant Responses of Maize to Two formae speciales of Sporisorium reilianum Support Recent Fungal Host Jump Int J Mol Sci. 24:15604.   AT2G18940 (TAIR)
LOC_Os05g19380 (MSU/TIGR)
Os05g0275000 (Gramene)
Reference: October 26th, 2023
Gene Product: December 30th, 2015
Variation: November 7th, 2012
Gene Model: November 6th, 2012
6 months agoumc1246  :
10.04
GRMZM2G075315
Lukas Dorian Dittiger et al. 2023. Plant Responses of Maize to Two formae speciales of Sporisorium reilianum Support Recent Fungal Host Jump Int J Mol Sci. 24:15604.     Reference: October 26th, 2023
Variation: September 1st, 2003
Gene Model: December 9th, 2017
6 months agosalt1 SalT homolog1:
10.02
GRMZM2G142891
Lukas Dorian Dittiger et al. 2023. Plant Responses of Maize to Two formae speciales of Sporisorium reilianum Support Recent Fungal Host Jump Int J Mol Sci. 24:15604.     Reference: October 26th, 2023
Gene Product: September 1st, 2003
Variation: January 9th, 2018
Gene Model: December 12th, 2017
6 months agoprp1 pathogenesis-related protein1:
8.03
   Lukas Dorian Dittiger et al. 2023. Plant Responses of Maize to Two formae speciales of Sporisorium reilianum Support Recent Fungal Host Jump Int J Mol Sci. 24:15604.     Reference: October 26th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
6 months agoga3ox1 gibberellin 3-oxidase1:
 
GRMZM2G044358
Allen, EM et al. 2020. Methods and compositions for short stature plants through manipulation of gibberellin metabolism to increase harvestable yield; Patent No. US 10,724,047 B     Reference: October 26th, 2023
Gene Product: October 25th, 2014
Variation: October 25th, 2014
Gene Model: October 25th, 2014
6 months agoga20ox2 gibberellin 20-oxidase2:
 
GRMZM2G021051
Allen, EM et al. 2020. Methods and compositions for short stature plants through manipulation of gibberellin metabolism to increase harvestable yield; Patent No. US 10,724,047 B     Reference: October 26th, 2023
Gene Product: October 28th, 2014
Gene Model: October 27th, 2014
6 months agoga20ox7 gibberellin 20-oxidase7:
 
AC234528.1_FG006
Allen, EM et al. 2020. Methods and compositions for short stature plants through manipulation of gibberellin metabolism to increase harvestable yield; Patent No. US 10,724,047 B     Reference: October 26th, 2023
Gene Product: October 28th, 2014
Gene Model: May 8th, 2021
6 months agoga20ox9 gibberellin 20-oxidase9:
 
GRMZM2G127668
Allen, EM et al. 2020. Methods and compositions for short stature plants through manipulation of gibberellin metabolism to increase harvestable yield; Patent No. US 10,724,047 B     Reference: October 26th, 2023
Gene Product: October 28th, 2014
Gene Model: May 8th, 2021
6 months agoglk1 G2-like1:
9.00
GRMZM2G026833
Julia Lambret-Frotte et al. 2023. GOLDEN2-like is sufficient but not necessary for chloroplast biogenesis in mesophyll cells of C4 grasses. Plant J. :doi: 10.1111/tpj.16498.     Reference: October 26th, 2023
Gene Product: July 11th, 2019
Variation: May 9th, 2009
Gene Model: September 27th, 2012
6 months agonhl1 NDR1/HIN1-like 1:
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.   AT3G11660 (TAIR) Reference: October 25th, 2023
Gene Product: January 31st, 2019
6 months agohin13 hairpin-induced13:
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: February 1st, 2021
6 months agocel19 cellulase19:
 
   Angelo Raffaele Marcotrigiano et al. 2023. Hydroxamic acids: New players in the multifactorial mechanisms of maize resistance to Striga hermonthica Plant Physiol Biochem. 204:108134.     Reference: October 25th, 2023
Gene Product: March 20th, 2023
6 months agohin12 hairpin-induced12:
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: February 1st, 2021
6 months agohin15 hairpin-induced15:
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: February 1st, 2021
6 months agohin16 hairpin-induced16:
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: February 1st, 2021
6 months agohin17 hairpin-induced17:
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: February 1st, 2021
6 months agohin11 hairpin-induced11:
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: February 1st, 2021
6 months agohin14 hairpin-induced14:
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: February 1st, 2021
6 months agohin18 hairpin-induced18:
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: February 1st, 2021
6 months agohin20 hairpin-induced20:
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: February 1st, 2021
6 months agohin22 hairpin-induced22:
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: February 1st, 2021
6 months agohin24 hairpin-induced24:
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: February 1st, 2021
6 months agoppr9 pentatricopeptide repeat protein9:
 
   Sanchez, DL et al. 2023. Phenotypic and genome-wide association analyses for nitrogen use efficiency related traits in maize (Zea mays L.) exotic introgression lines. Frontiers in Plant Science. 14:1270166.     Reference: October 25th, 2023
Gene Product: December 27th, 2016
6 months agoZm00001eb022900  :
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: January 31st, 2019
6 months agoZm00001eb047600  :
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: January 31st, 2019
6 months agoZm00001eb071160  :
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: January 31st, 2019
6 months agoZm00001eb083540  :
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: January 31st, 2019
6 months agoZm00001eb159430  :
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: January 31st, 2019
6 months agoZm00001eb160190  :
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: January 31st, 2019
6 months agoZm00001eb211120  :
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: January 31st, 2019
6 months agoZm00001eb247790  :
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: January 31st, 2019
6 months agoZm00001eb259940  :
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: January 31st, 2019
6 months agoZm00001eb308610  :
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: January 31st, 2019
6 months agoZm00001eb358640  :
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: January 31st, 2019
6 months agoZm00001eb405330  :
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: January 31st, 2019
6 months agoZm00001eb422110  :
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: January 31st, 2019
6 months agopza00818  :
5.00
GRMZM2G146158
Angelo Raffaele Marcotrigiano et al. 2023. Hydroxamic acids: New players in the multifactorial mechanisms of maize resistance to Striga hermonthica Plant Physiol Biochem. 204:108134.     Reference: October 25th, 2023
Variation: September 25th, 2007
Gene Model: May 1st, 2020
6 months agoaco5 aconitase5:
2.07
   Sanchez, DL et al. 2023. Phenotypic and genome-wide association analyses for nitrogen use efficiency related traits in maize (Zea mays L.) exotic introgression lines. Frontiers in Plant Science. 14:1270166.     Reference: October 25th, 2023
Gene Product: September 1st, 2003
Variation: April 5th, 2019
6 months agoesp1 embryo specific protein1:
6.05
AC233879.1_FG002
Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: January 31st, 2019
Variation: September 1st, 2003
Gene Model: July 27th, 2016
6 months agorab30 responsive to abscisic acid30:
1.01
GRMZM2G472236
Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: September 1st, 2003
Variation: May 2nd, 2011
Gene Model: June 1st, 2017
6 months agoccp3 cysteine protease3:
10.07
GRMZM2G073465
Angelo Raffaele Marcotrigiano et al. 2023. Hydroxamic acids: New players in the multifactorial mechanisms of maize resistance to Striga hermonthica Plant Physiol Biochem. 204:108134.     Reference: October 25th, 2023
Gene Product: October 11th, 2021
Variation: September 1st, 2003
Gene Model: January 16th, 2018
6 months agobnlg1452  :
3.04
GRMZM2G410916
Angelo Raffaele Marcotrigiano et al. 2023. Hydroxamic acids: New players in the multifactorial mechanisms of maize resistance to Striga hermonthica Plant Physiol Biochem. 204:108134.     Reference: October 25th, 2023
Variation: September 1st, 2003
Gene Model: March 21st, 2018
6 months agoumc1128  :
1.07
GRMZM2G031893
Jiang Shi et al. 2023. Physiological, Metabolic, and Transcriptomic Analyses Reveal the Effect of Sweet Corn Plants Treated with a New Biostimulant on the Growth Enhancement, Focusing on Enhancing Gibberellin Synthesis and Signal Transduction ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00177.     Reference: October 25th, 2023
Variation: September 1st, 2003
Gene Model: June 9th, 2017
6 months agoumc1248  :
6.08
GRMZM2G021794
Angelo Raffaele Marcotrigiano et al. 2023. Hydroxamic acids: New players in the multifactorial mechanisms of maize resistance to Striga hermonthica Plant Physiol Biochem. 204:108134.     Reference: October 25th, 2023
Variation: September 1st, 2003
Gene Model: March 14th, 2021
6 months agoesp5 embryo specific protein5:
6.05
GRMZM2G162659
Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Variation: September 1st, 2003
Gene Model: July 27th, 2016
6 months agogras53 GRAS-transcription factor 53:
 
   Jiang Shi et al. 2023. Physiological, Metabolic, and Transcriptomic Analyses Reveal the Effect of Sweet Corn Plants Treated with a New Biostimulant on the Growth Enhancement, Focusing on Enhancing Gibberellin Synthesis and Signal Transduction ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00177.     Reference: October 25th, 2023
Variation: August 16th, 2016
6 months agohsftf2 HSF-transcription factor 2:
 
   Sanchez, DL et al. 2023. Phenotypic and genome-wide association analyses for nitrogen use efficiency related traits in maize (Zea mays L.) exotic introgression lines. Frontiers in Plant Science. 14:1270166.     Reference: October 25th, 2023
Gene Product: May 15th, 2020
6 months agonup58 nucleoporin58:
2.07
GRMZM2G134508
Sanchez, DL et al. 2023. Phenotypic and genome-wide association analyses for nitrogen use efficiency related traits in maize (Zea mays L.) exotic introgression lines. Frontiers in Plant Science. 14:1270166.     Reference: October 25th, 2023
Gene Product: June 1st, 2022
Variation: June 1st, 2022
Gene Model: March 2nd, 2021
6 months agocyp25 cytochrome P-450 25:
4.09
GRMZM2G070508
Angelo Raffaele Marcotrigiano et al. 2023. Hydroxamic acids: New players in the multifactorial mechanisms of maize resistance to Striga hermonthica Plant Physiol Biochem. 204:108134.     Reference: October 25th, 2023
Gene Product: December 30th, 2022
Gene Model: June 8th, 2018
6 months agogst21 glutathione transferase21:
3.05
GRMZM2G428168
Jiang Shi et al. 2023. Physiological, Metabolic, and Transcriptomic Analyses Reveal the Effect of Sweet Corn Plants Treated with a New Biostimulant on the Growth Enhancement, Focusing on Enhancing Gibberellin Synthesis and Signal Transduction ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00177.     Reference: October 25th, 2023
Gene Product: September 1st, 2003
Variation: August 18th, 2010
Gene Model: April 18th, 2017
6 months agogst30 glutathione transferase30:
1.04
GRMZM2G044383
Jiang Shi et al. 2023. Physiological, Metabolic, and Transcriptomic Analyses Reveal the Effect of Sweet Corn Plants Treated with a New Biostimulant on the Growth Enhancement, Focusing on Enhancing Gibberellin Synthesis and Signal Transduction ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00177.     Reference: October 25th, 2023
Gene Product: September 1st, 2003
Variation: August 21st, 2010
Gene Model: July 27th, 2016
6 months agogst34 glutathione transferase34:
 
GRMZM2G145069
Jiang Shi et al. 2023. Physiological, Metabolic, and Transcriptomic Analyses Reveal the Effect of Sweet Corn Plants Treated with a New Biostimulant on the Growth Enhancement, Focusing on Enhancing Gibberellin Synthesis and Signal Transduction ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00177.     Reference: October 25th, 2023
Gene Product: September 1st, 2003
Gene Model: April 18th, 2017
6 months agoobf3 octopine synthase binding factor3:
 
GRMZM2G019907
Jiang Shi et al. 2023. Physiological, Metabolic, and Transcriptomic Analyses Reveal the Effect of Sweet Corn Plants Treated with a New Biostimulant on the Growth Enhancement, Focusing on Enhancing Gibberellin Synthesis and Signal Transduction ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00177.     Reference: October 25th, 2023
Gene Product: September 1st, 2003
Variation: October 29th, 2010
Gene Model: April 11th, 2013
6 months agocyp33 cytochrome P450 CYP81A39:
1.10
GRMZM2G154828
Jiang Shi et al. 2023. Physiological, Metabolic, and Transcriptomic Analyses Reveal the Effect of Sweet Corn Plants Treated with a New Biostimulant on the Growth Enhancement, Focusing on Enhancing Gibberellin Synthesis and Signal Transduction ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00177.     Reference: October 25th, 2023
Gene Product: December 30th, 2022
Gene Model: February 15th, 2020
6 months agoumc2230  :
1.05
GRMZM2G070271
Sanchez, DL et al. 2023. Phenotypic and genome-wide association analyses for nitrogen use efficiency related traits in maize (Zea mays L.) exotic introgression lines. Frontiers in Plant Science. 14:1270166.     Reference: October 25th, 2023
Variation: January 10th, 2017
Gene Model: June 15th, 2017
6 months agodhn3 dehydrin3:
4.06
GRMZM2G373522
Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: August 5th, 2017
Variation: June 18th, 2011
Gene Model: October 16th, 2016
6 months agochn3 chitinase3:
5.03
   Jiang Shi et al. 2023. Physiological, Metabolic, and Transcriptomic Analyses Reveal the Effect of Sweet Corn Plants Treated with a New Biostimulant on the Growth Enhancement, Focusing on Enhancing Gibberellin Synthesis and Signal Transduction ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00177.     Reference: October 25th, 2023
Gene Product: May 31st, 2021
Variation: September 1st, 2003
6 months agoAY109703  :
7.06
GRMZM2G386824
Angelo Raffaele Marcotrigiano et al. 2023. Hydroxamic acids: New players in the multifactorial mechanisms of maize resistance to Striga hermonthica Plant Physiol Biochem. 204:108134.     Reference: October 25th, 2023
Variation: September 25th, 2007
Gene Model: September 13th, 2018
6 months agospx12 SPX domain-containing membrane protein12:
1.09
AC177897.2_FG002
Angelo Raffaele Marcotrigiano et al. 2023. Hydroxamic acids: New players in the multifactorial mechanisms of maize resistance to Striga hermonthica Plant Physiol Biochem. 204:108134.     Reference: October 25th, 2023
Gene Product: October 9th, 2021
Gene Model: February 15th, 2020
6 months agomate21 multidrug and toxic compound extrusion21:
2.07
GRMZM2G470075
Sanchez, DL et al. 2023. Phenotypic and genome-wide association analyses for nitrogen use efficiency related traits in maize (Zea mays L.) exotic introgression lines. Frontiers in Plant Science. 14:1270166.     Reference: October 25th, 2023
Gene Product: August 17th, 2015
Gene Model: March 21st, 2020
6 months agosnrkII4 SnRK2 serine threonine protein kinase 4:
3.06
GRMZM2G110922
Sanchez, DL et al. 2023. Phenotypic and genome-wide association analyses for nitrogen use efficiency related traits in maize (Zea mays L.) exotic introgression lines. Frontiers in Plant Science. 14:1270166.     Reference: October 25th, 2023
Gene Product: April 14th, 2018
Gene Model: February 11th, 2015
6 months agomlo9 barley mlo defense gene homolog9:
2.01
GRMZM2G051974
Jiang Shi et al. 2023. Physiological, Metabolic, and Transcriptomic Analyses Reveal the Effect of Sweet Corn Plants Treated with a New Biostimulant on the Growth Enhancement, Focusing on Enhancing Gibberellin Synthesis and Signal Transduction ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00177.     Reference: October 25th, 2023
Variation: September 4th, 2014
Gene Model: September 4th, 2014
6 months agopdi12 protein disulfide isomerase12:
2.07
GRMZM2G067063
Sanchez, DL et al. 2023. Phenotypic and genome-wide association analyses for nitrogen use efficiency related traits in maize (Zea mays L.) exotic introgression lines. Frontiers in Plant Science. 14:1270166.     Reference: October 25th, 2023
Gene Product: September 1st, 2003
Variation: December 29th, 2015
Gene Model: December 18th, 2015
6 months agopal8 phenylalanine ammonia lyase8:
 
GRMZM2G334660
Angelo Raffaele Marcotrigiano et al. 2023. Hydroxamic acids: New players in the multifactorial mechanisms of maize resistance to Striga hermonthica Plant Physiol Biochem. 204:108134.     Reference: October 25th, 2023
Gene Product: August 13th, 2022
Gene Model: May 17th, 2016
6 months agocyp24 cytochrome P-450 24:
 
GRMZM2G023952
Angelo Raffaele Marcotrigiano et al. 2023. Hydroxamic acids: New players in the multifactorial mechanisms of maize resistance to Striga hermonthica Plant Physiol Biochem. 204:108134.     Reference: October 25th, 2023
Gene Product: December 30th, 2022
Gene Model: February 27th, 2018
6 months agovq6 VQ motif-transcription factor6:
 
GRMZM2G158976
Sanchez, DL et al. 2023. Phenotypic and genome-wide association analyses for nitrogen use efficiency related traits in maize (Zea mays L.) exotic introgression lines. Frontiers in Plant Science. 14:1270166.     Reference: October 25th, 2023
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
6 months agoxt2 beta-1,4-xylosyltransferase2:
 
GRMZM2G448834
Angelo Raffaele Marcotrigiano et al. 2023. Hydroxamic acids: New players in the multifactorial mechanisms of maize resistance to Striga hermonthica Plant Physiol Biochem. 204:108134.     Reference: October 25th, 2023
Gene Product: August 12th, 2022
Gene Model: July 2nd, 2020
6 months agoxt6 beta-1,4-xylosyltransferase6:
 
GRMZM2G000581
Angelo Raffaele Marcotrigiano et al. 2023. Hydroxamic acids: New players in the multifactorial mechanisms of maize resistance to Striga hermonthica Plant Physiol Biochem. 204:108134.     Reference: October 25th, 2023
Gene Product: August 12th, 2022
Gene Model: July 2nd, 2020
6 months agoskus17 skewed root growth similar17:
 
GRMZM2G163535
Angelo Raffaele Marcotrigiano et al. 2023. Hydroxamic acids: New players in the multifactorial mechanisms of maize resistance to Striga hermonthica Plant Physiol Biochem. 204:108134.     Reference: October 25th, 2023
Gene Product: October 9th, 2020
Gene Model: October 9th, 2020
6 months agoskus18 skewed root growth similar18:
 
GRMZM2G141376
Angelo Raffaele Marcotrigiano et al. 2023. Hydroxamic acids: New players in the multifactorial mechanisms of maize resistance to Striga hermonthica Plant Physiol Biochem. 204:108134.     Reference: October 25th, 2023
Gene Product: October 9th, 2020
Gene Model: October 9th, 2020
6 months agopoll1 pollux-like1:
 
GRMZM2G110897
Sanchez, DL et al. 2023. Phenotypic and genome-wide association analyses for nitrogen use efficiency related traits in maize (Zea mays L.) exotic introgression lines. Frontiers in Plant Science. 14:1270166.     Reference: October 25th, 2023
Gene Product: November 20th, 2020
Gene Model: November 20th, 2020
6 months agoA0A1D6JQ00  :
 
GRMZM2G063287
Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: January 31st, 2019
Gene Model: June 22nd, 2021
6 months agoccp28 cysteine protease28:
 
GRMZM2G367701
Angelo Raffaele Marcotrigiano et al. 2023. Hydroxamic acids: New players in the multifactorial mechanisms of maize resistance to Striga hermonthica Plant Physiol Biochem. 204:108134.     Reference: October 25th, 2023
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
6 months agodhn18 dehydrin18:
 
   Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: August 5th, 2017
6 months agolea2 late embryogenesis abundant protein2:
 
GRMZM2G704475
Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: January 31st, 2019
Gene Model: January 3rd, 2022
6 months agolea7 late embryogenesis abundant protein7:
 
GRMZM2G412436
Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: January 31st, 2019
Gene Model: January 3rd, 2022
6 months agocel25 cellulase25:
 
GRMZM2G151257
Angelo Raffaele Marcotrigiano et al. 2023. Hydroxamic acids: New players in the multifactorial mechanisms of maize resistance to Striga hermonthica Plant Physiol Biochem. 204:108134.     Reference: October 25th, 2023
Gene Product: March 20th, 2023
Gene Model: February 15th, 2022
6 months agohin7 hairpin-induced7:
 
GRMZM2G042488
Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Gene Product: February 1st, 2021
Gene Model: March 26th, 2022
6 months agoIDP3824  :
2.07
GRMZM2G114322
Angelo Raffaele Marcotrigiano et al. 2023. Hydroxamic acids: New players in the multifactorial mechanisms of maize resistance to Striga hermonthica Plant Physiol Biochem. 204:108134.     Reference: October 25th, 2023
Variation: March 31st, 2005
Gene Model: May 3rd, 2021
6 months agoIDP3971  :
7.02
GRMZM2G053637
Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Variation: March 31st, 2005
Gene Model: July 6th, 2021
6 months agoIDP387  :
8.08
AC204359.3_FG005
Angelo Raffaele Marcotrigiano et al. 2023. Hydroxamic acids: New players in the multifactorial mechanisms of maize resistance to Striga hermonthica Plant Physiol Biochem. 204:108134.     Reference: October 25th, 2023
Variation: March 31st, 2005
Gene Model: September 3rd, 2019
6 months agoIDP708  :
9.04
GRMZM2G152417
Jiang Shi et al. 2023. Physiological, Metabolic, and Transcriptomic Analyses Reveal the Effect of Sweet Corn Plants Treated with a New Biostimulant on the Growth Enhancement, Focusing on Enhancing Gibberellin Synthesis and Signal Transduction ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00177.     Reference: October 25th, 2023
Variation: March 31st, 2005
Gene Model: January 22nd, 2019
6 months agomagi2594  :
1.11
GRMZM2G352415
Zhang, Yaping et al. 2023. Identification of the Maize LEA Gene Family and Its Relationship with Kernel Dehydration Plants. 12:3674.     Reference: October 25th, 2023
Variation: April 24th, 2006
Gene Model: February 16th, 2020
6 months agoumi12 ustilago maydis induced12:
1.10
GRMZM2G149923
Jiang Shi et al. 2023. Physiological, Metabolic, and Transcriptomic Analyses Reveal the Effect of Sweet Corn Plants Treated with a New Biostimulant on the Growth Enhancement, Focusing on Enhancing Gibberellin Synthesis and Signal Transduction ACS Agric Sci Technol. :doi: 10.1021/acsagscitech.3c00177.     Reference: October 25th, 2023
Gene Product: January 12th, 2015
Variation: April 17th, 2008
Gene Model: January 12th, 2015
6 months agocah7 carbonic anhydrase7:
 
   Qiqi Zhang et al. 2023. Regulatory NADH dehydrogenase-like complex optimizes C4 photosynthetic carbon flow and cellular redox in maize. New Phytol. :doi: 10.1111/nph.19332.     Reference: October 24th, 2023
Gene Product: February 26th, 2019
6 months agorbcL2 ribulose-1-5-bisphosphate carboxylase-large subunit2:
 
   Qiqi Zhang et al. 2023. Regulatory NADH dehydrogenase-like complex optimizes C4 photosynthetic carbon flow and cellular redox in maize. New Phytol. :doi: 10.1111/nph.19332.     Reference: October 24th, 2023
Gene Product: September 1st, 2003
6 months agozmm1 Zea mays MADS1:
10.03
GRMZM2G010669
Lipps, S et al. 2023. Inhibition of ethylene involved in resistance to E. turcicum in an exotic-derived double haploid maize population. Frontiers in Plant Science. 14:1272951.     Reference: October 24th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: July 3rd, 2012
6 months agondhn1 NADH dehydrogenase I subunit N1:
3.06
GRMZM2G110277
Qiqi Zhang et al. 2023. Regulatory NADH dehydrogenase-like complex optimizes C4 photosynthetic carbon flow and cellular redox in maize. New Phytol. :doi: 10.1111/nph.19332.     Reference: October 24th, 2023
Gene Product: March 22nd, 2022
Variation: September 3rd, 2021
Gene Model: April 5th, 2020
6 months agoremo1 remorin1:
 
GRMZM2G107774
Lipps, S et al. 2023. Inhibition of ethylene involved in resistance to E. turcicum in an exotic-derived double haploid maize population. Frontiers in Plant Science. 14:1272951.     Reference: October 24th, 2023
Gene Product: September 24th, 2018
Variation: February 6th, 2016
Gene Model: February 6th, 2016
6 months agogpat20 glycerol-3-phosphate acyltransferase20:
 
GRMZM2G075295
Lipps, S et al. 2023. Inhibition of ethylene involved in resistance to E. turcicum in an exotic-derived double haploid maize population. Frontiers in Plant Science. 14:1272951.     Reference: October 24th, 2023
Gene Product: March 25th, 2019
Gene Model: April 25th, 2019
6 months agondho1 NADH-plastoquinone oxidoreductase1:
8.06
GRMZM2G133844
Qiqi Zhang et al. 2023. Regulatory NADH dehydrogenase-like complex optimizes C4 photosynthetic carbon flow and cellular redox in maize. New Phytol. :doi: 10.1111/nph.19332.     Reference: October 24th, 2023
Gene Product: September 1st, 2003
Variation: September 6th, 2021
Gene Model: September 5th, 2021
6 months agogtr3 glutamyl-tRNA reductase3:
 
   Yang, WZ et al. 2023. ZmGluTR1 is involved in chlorophyll biosynthesis and is essential for maize development. J Plant Physiol. 290:doi: 10.1016/j.jplph.2023.154115.     Reference: October 23rd, 2023
Gene Product: October 23rd, 2023
6 months agozmm6 Zea mays MADS6:
1.06
   Mirzakhmedov Mukhammadjon et al. 2023. Target genes utilized for drought tolerance enhancement in maize Plant Science Today. :doi: 10.14719/pst.2561.     Reference: October 23rd, 2023
Gene Product: September 10th, 2021
Variation: August 8th, 2008
6 months agohscf1 heat shock complementing factor1:
9.03
GRMZM2G139082
Zuo, WL et al. 2023. A transcriptional activator effector of Ustilago maydis regulates hyperplasia in maize during pathogen-induced tumor formation Nat Commun. 14:6722.     Reference: October 23rd, 2023
Variation: December 22nd, 2012
Gene Model: July 28th, 2016
6 months agorafs1 raffinose synthase1:
3.03
GRMZM2G150906
Mirzakhmedov Mukhammadjon et al. 2023. Target genes utilized for drought tolerance enhancement in maize Plant Science Today. :doi: 10.14719/pst.2561.     Reference: October 23rd, 2023
Gene Product: October 25th, 2019
Variation: March 23rd, 2018
Gene Model: March 23rd, 2018
6 months agoAY110625  :
5.00
GRMZM2G305216
Zuo, WL et al. 2023. A transcriptional activator effector of Ustilago maydis regulates hyperplasia in maize during pathogen-induced tumor formation Nat Commun. 14:6722.     Reference: October 23rd, 2023
Variation: September 25th, 2007
Gene Model: June 13th, 2018
6 months agomkkk16 MAP kinase kinase kinase16:
2.06
GRMZM2G098828
Mirzakhmedov Mukhammadjon et al. 2023. Target genes utilized for drought tolerance enhancement in maize Plant Science Today. :doi: 10.14719/pst.2561.     Reference: October 23rd, 2023
Gene Product: March 14th, 2022
Gene Model: July 11th, 2013
6 months agoyab9 yabby9:
5.03
   Zuo, WL et al. 2023. A transcriptional activator effector of Ustilago maydis regulates hyperplasia in maize during pathogen-induced tumor formation Nat Commun. 14:6722.     Reference: October 23rd, 2023
Gene Product: October 16th, 2015
Variation: March 23rd, 2009
6 months agoplc1 phospholipase C1:
 
GRMZM5G889467
Mirzakhmedov Mukhammadjon et al. 2023. Target genes utilized for drought tolerance enhancement in maize Plant Science Today. :doi: 10.14719/pst.2561.     Reference: October 23rd, 2023
Gene Product: January 12th, 2021
Gene Model: December 6th, 2016
6 months agoslac1 slow anion channel-associated1:
 
GRMZM2G106881
Mirzakhmedov Mukhammadjon et al. 2023. Target genes utilized for drought tolerance enhancement in maize Plant Science Today. :doi: 10.14719/pst.2561.     Reference: October 23rd, 2023
Gene Product: February 1st, 2018
Variation: September 9th, 2021
Gene Model: February 1st, 2018
6 months agotipd1 tip growth defective1:
 
GRMZM2G087806
Mirzakhmedov Mukhammadjon et al. 2023. Target genes utilized for drought tolerance enhancement in maize Plant Science Today. :doi: 10.14719/pst.2561.   AT5G20350 (TAIR) Reference: October 23rd, 2023
Gene Product: February 26th, 2022
Variation: November 8th, 2019
Gene Model: November 8th, 2019
6 months agopis1 phosphatidylinositol synthase1:
 
GRMZM2G110646
Mirzakhmedov Mukhammadjon et al. 2023. Target genes utilized for drought tolerance enhancement in maize Plant Science Today. :doi: 10.14719/pst.2561.     Reference: October 23rd, 2023
Gene Product: September 18th, 2020
Gene Model: September 18th, 2020
6 months agoyab15 yabby15:
5.05
   Zuo, WL et al. 2023. A transcriptional activator effector of Ustilago maydis regulates hyperplasia in maize during pathogen-induced tumor formation Nat Commun. 14:6722.     Reference: October 23rd, 2023
Gene Product: October 16th, 2015
Variation: December 30th, 2014
6 months agomocos1 molybdenum cofactor sulfurase1:
 
GRMZM2G048092
Mirzakhmedov Mukhammadjon et al. 2023. Target genes utilized for drought tolerance enhancement in maize Plant Science Today. :doi: 10.14719/pst.2561.   AT1G16540 (TAIR) Reference: October 23rd, 2023
Gene Product: January 23rd, 2021
Gene Model: January 23rd, 2021
6 months agoZm00001d010720  :
 
   Ran Tian et al. 2023. Identification of Morphogenesis-Related NDR Kinase Signaling Network and Its Regulation on Cold Tolerance in Maize Plants. 12:3639.     Reference: October 21st, 2023
Variation: October 21st, 2023
6 months agowrky67 WRKY-transcription factor 67:
 
   Mei Zhou et al. 2023. Important Factors Controlling Gibberellin Homeostasis in Plant Height Regulation J Agric Food Chem. :doi: 10.1021/acs.jafc.3c03560.     Reference: October 21st, 2023
Gene Product: July 24th, 2017
6 months agocl11011_1  :
1.10
   Ran Tian et al. 2023. Identification of Morphogenesis-Related NDR Kinase Signaling Network and Its Regulation on Cold Tolerance in Maize Plants. 12:3639.     Reference: October 21st, 2023
Variation: September 25th, 2007
6 months agoIDP511  :
1.04
GRMZM5G862467
Ran Tian et al. 2023. Identification of Morphogenesis-Related NDR Kinase Signaling Network and Its Regulation on Cold Tolerance in Maize Plants. 12:3639.     Reference: October 21st, 2023
Variation: March 31st, 2005
Gene Model: February 13th, 2019
6 months agotua5 alpha tubulin5:
2.08
   Zhao, YP et al. 2022. The evening complex promotes maize flowering and adaptation to temperate regions Plant Cell. :doi: 10.1093/plcell/koac296.     Reference: October 20th, 2023
Gene Product: September 1st, 2003
Variation: August 16th, 2013
6 months agoalt4 L-alanine:2-oxoglutarate aminotransferase4:
5.03
GRMZM2G088064
Claeys, H et al. 2023. Coordinated gene upregulation in maize through CRISPR/Cas-mediated enhancer insertion. Plant Biotechnol J. :doi: 10.1111/pbi.14191.     Reference: October 20th, 2023
Gene Product: October 2nd, 2020
Variation: February 26th, 2010
Gene Model: July 23rd, 2014
6 months agoaic3 auxin import carrier3:
1.03
GRMZM2G149481
Zheng, ZG et al. 2023. Local Auxin Biosynthesis Regulates Brace Root Angle and Lodging Resistance in Maize. New Phytol. :doi: 10.1111/nph.18733.     Reference: October 20th, 2023
Gene Product: April 19th, 2017
Gene Model: April 19th, 2017
6 months agoyuc3 Yucca3:
 
GRMZM2G107761
Zheng, ZG et al. 2023. Local Auxin Biosynthesis Regulates Brace Root Angle and Lodging Resistance in Maize. New Phytol. :doi: 10.1111/nph.18733.     Reference: October 20th, 2023
Gene Product: June 18th, 2018
Gene Model: September 12th, 2012
6 months agoyuc7 yucca7:
 
GRMZM2G480386
Zheng, ZG et al. 2023. Local Auxin Biosynthesis Regulates Brace Root Angle and Lodging Resistance in Maize. New Phytol. :doi: 10.1111/nph.18733.     Reference: October 20th, 2023
Gene Product: June 18th, 2018
Gene Model: August 19th, 2017
6 months agoyuc8 yucca8:
 
GRMZM2G017193
Zheng, ZG et al. 2023. Local Auxin Biosynthesis Regulates Brace Root Angle and Lodging Resistance in Maize. New Phytol. :doi: 10.1111/nph.18733.     Reference: October 20th, 2023
Gene Product: June 18th, 2018
Gene Model: August 19th, 2017
6 months agoaic4 auxin import carrier4:
 
GRMZM2G067022
Zheng, ZG et al. 2023. Local Auxin Biosynthesis Regulates Brace Root Angle and Lodging Resistance in Maize. New Phytol. :doi: 10.1111/nph.18733.     Reference: October 20th, 2023
Gene Product: April 19th, 2017
Gene Model: December 28th, 2018
6 months agoalt12 alanine aminotransferase12:
 
GRMZM5G828630
Claeys, H et al. 2023. Coordinated gene upregulation in maize through CRISPR/Cas-mediated enhancer insertion. Plant Biotechnol J. :doi: 10.1111/pbi.14191.     Reference: October 20th, 2023
Gene Product: October 2nd, 2020
Gene Model: July 22nd, 2020
6 months agoyuc10 yucca10:
 
GRMZM2G013045
Zheng, ZG et al. 2023. Local Auxin Biosynthesis Regulates Brace Root Angle and Lodging Resistance in Maize. New Phytol. :doi: 10.1111/nph.18733.     Reference: October 20th, 2023
Gene Product: June 18th, 2018
Gene Model: October 6th, 2021
6 months agosaur42 small auxin up RNA42:
 
GRMZM2G015049
Kong, DX et al. 2022. UB2/UB3/TSH4-anchored transcriptional networks regulate early maize inflorescence development in response to simulated shade. Plant Cell. :doi: 10.1093/plcell/koac352.     Reference: October 20th, 2023
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
6 months agogogat2 glutamate synthase2:
 
GRMZM2G085078
Claeys, H et al. 2023. Coordinated gene upregulation in maize through CRISPR/Cas-mediated enhancer insertion. Plant Biotechnol J. :doi: 10.1111/pbi.14191.     Reference: October 20th, 2023
Gene Product: January 2nd, 2022
Gene Model: January 2nd, 2022
6 months agoyuc11 yucca11:
 
GRMZM2G328780
Zheng, ZG et al. 2023. Local Auxin Biosynthesis Regulates Brace Root Angle and Lodging Resistance in Maize. New Phytol. :doi: 10.1111/nph.18733.     Reference: October 20th, 2023
Gene Product: June 18th, 2018
Gene Model: June 17th, 2022
6 months agoyuc12 yucca12:
 
GRMZM2G025748
Zheng, ZG et al. 2023. Local Auxin Biosynthesis Regulates Brace Root Angle and Lodging Resistance in Maize. New Phytol. :doi: 10.1111/nph.18733.     Reference: October 20th, 2023
Gene Product: June 18th, 2018
Gene Model: June 17th, 2022
6 months agoyuc13 yucca13:
 
GRMZM2G333035
Zheng, ZG et al. 2023. Local Auxin Biosynthesis Regulates Brace Root Angle and Lodging Resistance in Maize. New Phytol. :doi: 10.1111/nph.18733.     Reference: October 20th, 2023
Gene Product: June 18th, 2018
Gene Model: June 17th, 2022
6 months agoyuc5 Yucca5:
7.02
GRMZM2G132489
Zheng, ZG et al. 2023. Local Auxin Biosynthesis Regulates Brace Root Angle and Lodging Resistance in Maize. New Phytol. :doi: 10.1111/nph.18733.     Reference: October 20th, 2023
Gene Product: June 18th, 2018
Gene Model: June 17th, 2016
6 months agoZm00001eb018140  :
 
   Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
6 months agoZm00001eb282350  :
 
   Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
6 months agoZm00001eb208490  :
 
   Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
6 months agophm5798  :
5.03
GRMZM5G872147
Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
Gene Model: August 27th, 2021
6 months agoRS2Z35  :
6.01
   Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
6 months agoRS2Z37B  :
6.01
GRMZM2G099317
Rauch, HB et al. 2013. Mol Biol Evol 31:605-613     Reference: January 25th, 2021
Gene Product: October 18th, 2023
Gene Model: December 17th, 2019
6 months agoTIDP3152  :
2.08
GRMZM2G077823
Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
Gene Model: February 20th, 2019
6 months agomagi9101  :
4.05
GRMZM2G107896
Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
Gene Model: April 18th, 2020
6 months agoasrp2 arginine/serine-rich splicing factor2:
2.05
GRMZM2G021223
Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
Variation: February 7th, 2009
Gene Model: February 1st, 2018
6 months agoAY109715  :
4.00
GRMZM2G145725
Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
Variation: July 29th, 2004
Gene Model: April 12th, 2018
6 months agoSC32  :
1.06
   Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
Variation: September 25th, 2007
6 months agopco118328a  :
4.07
GRMZM2G070239
Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
Gene Model: April 22nd, 2020
6 months agosrp32 serine/ariginine domain protein32:
 
GRMZM2G436092
Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
Gene Model: June 25th, 2020
6 months agosrp30 serine/ariginine domain protein30:
 
GRMZM2G331811
Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
Gene Model: June 25th, 2020
6 months agoRS2Z37A  :
 
GRMZM2G175419
Rauch, HB et al. 2013. Mol Biol Evol 31:605-613     Reference: January 25th, 2021
Gene Product: October 18th, 2023
Gene Model: January 25th, 2021
6 months agoSC30  :
 
GRMZM2G016296
Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
Gene Model: January 25th, 2021
6 months agoSC26  :
 
GRMZM2G104353
Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
Gene Model: January 25th, 2021
6 months agoSCL28  :
 
   Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
6 months agoSCL25A  :
 
GRMZM2G426229
Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
Gene Model: January 25th, 2021
6 months agosr45_1 splicing regulator45_1:
 
GRMZM2G060540
Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
Gene Model: January 25th, 2021
6 months agosr45_2 splicing regulator45_2:
 
GRMZM2G133926
Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
Gene Model: January 25th, 2021
6 months agoSR30  :
 
GRMZM2G390729
Rauch, HB et al. 2013. Mol Biol Evol 31:605-613     Reference: January 25th, 2021
Gene Product: October 18th, 2023
Gene Model: January 25th, 2021
6 months agoRSZ28  :
5.05
GRMZM2G027105
Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
Gene Model: May 20th, 2020
6 months agoSCL25B  :
7.04
GRMZM5G867185
Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
Gene Model: January 25th, 2021
6 months agosi618042d11  :
7.04
   Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
6 months agoRSZ21  :
9.02
GRMZM2G151923
Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
Gene Model: January 25th, 2021
6 months agoRS2Z39  :
8.05
GRMZM2G474658
Rauch, HB et al. 2013. Mol Biol Evol 31:605-613     Reference: January 25th, 2021
Gene Product: October 18th, 2023
Gene Model: January 25th, 2021
6 months agoasrp1 arginine/serine-rich splicing factor1:
10.04
GRMZM2G052166
Nan, G et al. 2022. Plant Cell pp.doi: 10.1093/plcell/koac007     Reference: January 10th, 2022
Gene Product: October 18th, 2023
Variation: February 7th, 2009
Gene Model: January 3rd, 2018
6 months agosrp31 serine/ariginine domain protein31:
6.05
GRMZM2G170365
Rui Gao et al. 2023. Comprehensive study of serine/arginine-rich (SR) gene family in rice: characterization, evolution and expression analysis. PeerJ. 11:e16193.     Reference: October 18th, 2023
Gene Product: October 18th, 2023
Gene Model: January 8th, 2020
6 months agoSCL30  :
1.05
GRMZM2G065066
Rauch, HB et al. 2013. Mol Biol Evol 31:605-613     Reference: January 25th, 2021
Gene Product: October 18th, 2023
Gene Model: February 9th, 2020
6 months agobak6 brassinosteroid insensitive1-associated receptor kinase like6:
 
   Runze Di et al. 2023. Sheath Blight of Maize: An Overview and Prospects for Future Research Directions Agriculture. 13:2006.     Reference: October 16th, 2023
Gene Product: January 18th, 2021
6 months agohak3 potassium high-affinity transporter3:
 
GRMZM2G477457
Guo, S et al. 2023. Dynamic transcriptome analysis unravels key regulatory genes of maize root growth and development in response to potassium deficiency. Planta. 258:99.     Reference: October 16th, 2023
Gene Product: March 12th, 2020
Gene Model: March 12th, 2020
6 months agohak6 potassium high-affinity transporter6:
 
GRMZM2G097505
Guo, S et al. 2023. Dynamic transcriptome analysis unravels key regulatory genes of maize root growth and development in response to potassium deficiency. Planta. 258:99.     Reference: October 16th, 2023
Gene Product: March 12th, 2020
Gene Model: March 12th, 2020
6 months agowrky131 WRKY-transcription factor 131:
 
GRMZM5G894568
Guo, S et al. 2023. Dynamic transcriptome analysis unravels key regulatory genes of maize root growth and development in response to potassium deficiency. Planta. 258:99.     Reference: October 16th, 2023
Gene Product: July 24th, 2017
Gene Model: December 2nd, 2021
6 months agoork1 outward rectifying potassium channel1:
4.05
GRMZM2G156255
Guo, S et al. 2023. Dynamic transcriptome analysis unravels key regulatory genes of maize root growth and development in response to potassium deficiency. Planta. 258:99.     Reference: October 16th, 2023
Gene Product: February 19th, 2008
Variation: February 19th, 2008
Gene Model: June 3rd, 2017
6 months agopgl49 polygalacturonase49:
8.03
GRMZM2G026804
Yingni Huang et al. 2023. The Resistance of Maize to Ustilago maydis Infection Is Correlated with the Degree of Methyl Esterification of Pectin in the Cell Wall. Int J Mol Sci. 24:14737.     Reference: October 14th, 2023
Gene Product: October 4th, 2021
Gene Model: July 10th, 2021
6 months agoumc1489  :
3.07
GRMZM2G077307
Yingni Huang et al. 2023. The Resistance of Maize to Ustilago maydis Infection Is Correlated with the Degree of Methyl Esterification of Pectin in the Cell Wall. Int J Mol Sci. 24:14737.     Reference: October 14th, 2023
Variation: September 1st, 2003
Gene Model: April 2nd, 2018
6 months agopme10 pectin methylesterase10:
 
GRMZM2G321870
Yingni Huang et al. 2023. The Resistance of Maize to Ustilago maydis Infection Is Correlated with the Degree of Methyl Esterification of Pectin in the Cell Wall. Int J Mol Sci. 24:14737.     Reference: October 14th, 2023
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
6 months agopme16 pectin methylesterase16:
 
GRMZM2G119864
Yingni Huang et al. 2023. The Resistance of Maize to Ustilago maydis Infection Is Correlated with the Degree of Methyl Esterification of Pectin in the Cell Wall. Int J Mol Sci. 24:14737.     Reference: October 14th, 2023
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
6 months agopme17 pectin methylesterase17:
 
GRMZM2G128682
Yingni Huang et al. 2023. The Resistance of Maize to Ustilago maydis Infection Is Correlated with the Degree of Methyl Esterification of Pectin in the Cell Wall. Int J Mol Sci. 24:14737.     Reference: October 14th, 2023
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
6 months agopmei26 pectin methylesterase inhibitor26:
 
GRMZM2G133146
Yingni Huang et al. 2023. The Resistance of Maize to Ustilago maydis Infection Is Correlated with the Degree of Methyl Esterification of Pectin in the Cell Wall. Int J Mol Sci. 24:14737.     Reference: October 14th, 2023
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
6 months agopmtr1 phytomelatonin receptor1 :
 
GRMZM2G123732
Dipankar Barman et al. 2023. Identification of rice melatonin receptor OsPMTR and its comparative in silico analysis with arabidopsis AtCAND2 receptor S Afr J Bot. 162:813-829.   AT3G05010 (TAIR) Reference: October 14th, 2023
Gene Product: December 20th, 2021
Variation: December 20th, 2021
Gene Model: December 20th, 2021
6 months agoprp16 pathogenesis-related protein116:
5.08
GRMZM5G852886
Lopez-Coria, M et al. 2023. Maize plant expresses SWEET transporters differently when interacting with Trichoderma asperellum and Fusarium verticillioides, two fungi with different lifestyles. Frontiers in Plant Science. 14:1253741.     Reference: October 13th, 2023
Gene Product: December 12th, 2022
Variation: September 1st, 2003
Gene Model: July 14th, 2018
6 months agoaos1 allene oxide synthase1:
9.06
GRMZM2G067225
Lopez-Coria, M et al. 2023. Maize plant expresses SWEET transporters differently when interacting with Trichoderma asperellum and Fusarium verticillioides, two fungi with different lifestyles. Frontiers in Plant Science. 14:1253741.     Reference: October 13th, 2023
Gene Product: September 1st, 2003
Variation: September 24th, 2010
Gene Model: October 29th, 2015
6 months agosweet2 sugars will eventually be exported transporter2:
 
GRMZM2G324903
Lopez-Coria, M et al. 2023. Maize plant expresses SWEET transporters differently when interacting with Trichoderma asperellum and Fusarium verticillioides, two fungi with different lifestyles. Frontiers in Plant Science. 14:1253741.     Reference: October 13th, 2023
Gene Product: November 4th, 2015
Variation: March 19th, 2021
Gene Model: November 3rd, 2015
6 months agosweet3b sugars will eventually be exported transporter3b:
 
GRMZM2G060974
Lopez-Coria, M et al. 2023. Maize plant expresses SWEET transporters differently when interacting with Trichoderma asperellum and Fusarium verticillioides, two fungi with different lifestyles. Frontiers in Plant Science. 14:1253741.     Reference: October 13th, 2023
Gene Product: November 4th, 2015
Gene Model: November 3rd, 2015
6 months agosweet12a sugars will eventually be exported transporter12a:
 
GRMZM2G133322
Lopez-Coria, M et al. 2023. Maize plant expresses SWEET transporters differently when interacting with Trichoderma asperellum and Fusarium verticillioides, two fungi with different lifestyles. Frontiers in Plant Science. 14:1253741.     Reference: October 13th, 2023
Gene Product: November 4th, 2015
Gene Model: November 3rd, 2015
6 months agosweet14b sugars will eventually be exported transporter14b:
 
GRMZM2G015976
Lopez-Coria, M et al. 2023. Maize plant expresses SWEET transporters differently when interacting with Trichoderma asperellum and Fusarium verticillioides, two fungi with different lifestyles. Frontiers in Plant Science. 14:1253741.     Reference: October 13th, 2023
Gene Product: November 4th, 2015
Gene Model: November 3rd, 2015
6 months agosweet17a sugars will eventually be exported transporter17a:
 
GRMZM2G106462
Lopez-Coria, M et al. 2023. Maize plant expresses SWEET transporters differently when interacting with Trichoderma asperellum and Fusarium verticillioides, two fungi with different lifestyles. Frontiers in Plant Science. 14:1253741.     Reference: October 13th, 2023
Gene Product: November 4th, 2015
Variation: February 23rd, 2019
Gene Model: November 3rd, 2015
6 months agoaprt2 adenine phosphoribosyltransferase2:
3.04
GRMZM2G093347
Feizollah A Maleki et al. 2023. Stomatal closure prevents xylem transport of green leaf volatiles and impairs their systemic function in plants. Plant Cell Environ. :doi: 10.1111/pce.14735.     Reference: October 13th, 2023
Gene Product: April 17th, 2008
Gene Model: November 7th, 2021
6 months agoknox5 knotted related homeobox5:
8.05
GRMZM5G832409
Desbiez-Piat, A et al. 2023. Pervasive GxE interactions shape adaptive trajectories and the exploration of the phenotypic space in artificial selection experiments. Genetics. :doi:10.1093/genetics/iyad186.     Reference: October 12th, 2023
Gene Product: September 1st, 2003
Variation: March 9th, 2012
Gene Model: March 8th, 2012
7 months agoshki3 shikimate kinase3:
 
   Washburn, JD et al. 2023. GWAS analysis of maize host plant resistance to western corn rootworm (Coleoptera: Chrysomelidae) reveals candidate small effect loci for resistance breeding. J Econ Entomol.   AT2G21940 (TAIR) Reference: October 11th, 2023
Gene Product: January 2nd, 2023
7 months agovq23 VQ motif-transcription factor23:
 
GRMZM2G322950
Washburn, JD et al. 2023. GWAS analysis of maize host plant resistance to western corn rootworm (Coleoptera: Chrysomelidae) reveals candidate small effect loci for resistance breeding. J Econ Entomol.     Reference: October 11th, 2023
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
7 months agodhn2 dehydrin2:
9.03
GRMZM2G098750
Tang, X et al. 2023. Identification and Functional Analysis of Drought-Responsive Long Noncoding RNAs in Maize Roots Int J Mol Sci. 24:15039.     Reference: October 10th, 2023
Gene Product: September 1st, 2003
Gene Model: October 12th, 2018
7 months agosyd1 splayed ATPase1:
6.05
GRMZM2G387890
Yan, HY et al. 2023. PlantCHRs: a comprehensive database of plant chromatin remodeling factors Comput Struct Biotechnol J. :doi: 10.1016/j.csbj.2023.10.005.     Reference: October 10th, 2023
Variation: September 1st, 2003
Gene Model: August 15th, 2017
7 months agohsftf29 HSF-transcription factor 29:
 
   Erika L Ellison et al. 2023. Mutator transposon insertions within maize genes often provide a novel outward reading promoter Genetics. :doi: 10.1093/genetics/iyad171.     Reference: October 10th, 2023
Gene Product: May 15th, 2020
7 months agohsftf6 HSF-transcription factor 6:
 
   Erika L Ellison et al. 2023. Mutator transposon insertions within maize genes often provide a novel outward reading promoter Genetics. :doi: 10.1093/genetics/iyad171.     Reference: October 10th, 2023
Gene Product: May 15th, 2020
7 months agojmj13 JUMONJI-transcription factor 13:
 
   Erika L Ellison et al. 2023. Mutator transposon insertions within maize genes often provide a novel outward reading promoter Genetics. :doi: 10.1093/genetics/iyad171.     Reference: October 10th, 2023
Gene Product: April 3rd, 2019
7 months agosbp20 SBP-transcription factor 20:
 
   Erika L Ellison et al. 2023. Mutator transposon insertions within maize genes often provide a novel outward reading promoter Genetics. :doi: 10.1093/genetics/iyad171.     Reference: October 10th, 2023
Gene Product: July 5th, 2019
Variation: February 22nd, 2018
7 months agobrm1 brahma1:
 
GRMZM2G163849
Yan, HY et al. 2023. PlantCHRs: a comprehensive database of plant chromatin remodeling factors Comput Struct Biotechnol J. :doi: 10.1016/j.csbj.2023.10.005.   AT2G46020 (TAIR)
LOC_Os02g02290 (MSU/TIGR)
Reference: October 10th, 2023
Gene Product: July 7th, 2015
Variation: July 6th, 2015
Gene Model: July 6th, 2015
7 months agochr112a chromatin complex subunit A:
4.05
GRMZM2G030768
Yan, HY et al. 2023. PlantCHRs: a comprehensive database of plant chromatin remodeling factors Comput Struct Biotechnol J. :doi: 10.1016/j.csbj.2023.10.005.     Reference: October 10th, 2023
Variation: September 1st, 2003
Gene Model: November 14th, 2021
7 months agochr118 chromatin complex subunit A:
6.07
GRMZM2G168096
Yan, HY et al. 2023. PlantCHRs: a comprehensive database of plant chromatin remodeling factors Comput Struct Biotechnol J. :doi: 10.1016/j.csbj.2023.10.005.     Reference: October 10th, 2023
Variation: September 1st, 2003
Gene Model: November 10th, 2018
7 months agochr12 chromatin complex subunit A 12:
2.08
GRMZM2G097289
Yan, HY et al. 2023. PlantCHRs: a comprehensive database of plant chromatin remodeling factors Comput Struct Biotechnol J. :doi: 10.1016/j.csbj.2023.10.005.     Reference: October 10th, 2023
Variation: September 1st, 2003
Gene Model: July 27th, 2016
7 months agochr125a chromatin complex subunit A 125a:
9.04
GRMZM2G007922
Yan, HY et al. 2023. PlantCHRs: a comprehensive database of plant chromatin remodeling factors Comput Struct Biotechnol J. :doi: 10.1016/j.csbj.2023.10.005.     Reference: October 10th, 2023
Variation: September 1st, 2003
Gene Model: November 10th, 2018
7 months agochr125b chromatin complex subunit A:
1.04
GRMZM2G469162
Yan, HY et al. 2023. PlantCHRs: a comprehensive database of plant chromatin remodeling factors Comput Struct Biotechnol J. :doi: 10.1016/j.csbj.2023.10.005.     Reference: October 10th, 2023
Variation: September 1st, 2003
Gene Model: November 10th, 2018
7 months agochr126a chromatin complex subunit A 126a:
8.03
AC235535.1_FG001
Yan, HY et al. 2023. PlantCHRs: a comprehensive database of plant chromatin remodeling factors Comput Struct Biotechnol J. :doi: 10.1016/j.csbj.2023.10.005.     Reference: October 10th, 2023
Variation: September 1st, 2003
Gene Model: November 10th, 2018
7 months agochr126b chromatin complex subunit A 126b:
3.04
GRMZM2G015277
Yan, HY et al. 2023. PlantCHRs: a comprehensive database of plant chromatin remodeling factors Comput Struct Biotechnol J. :doi: 10.1016/j.csbj.2023.10.005.     Reference: October 10th, 2023
Variation: September 1st, 2003
Gene Model: November 10th, 2018
7 months agochr127  :
4.05
GRMZM2G574858
Yan, HY et al. 2023. PlantCHRs: a comprehensive database of plant chromatin remodeling factors Comput Struct Biotechnol J. :doi: 10.1016/j.csbj.2023.10.005.     Reference: October 10th, 2023
Variation: September 25th, 2007
Gene Model: August 22nd, 2021
7 months agoIDP2558  :
4.04
GRMZM2G449355
Yan, HY et al. 2023. PlantCHRs: a comprehensive database of plant chromatin remodeling factors Comput Struct Biotechnol J. :doi: 10.1016/j.csbj.2023.10.005.     Reference: October 10th, 2023
Variation: March 31st, 2005
Gene Model: April 13th, 2020
7 months agoIDP1673  :
7.05
GRMZM2G148249
Yan, HY et al. 2023. PlantCHRs: a comprehensive database of plant chromatin remodeling factors Comput Struct Biotechnol J. :doi: 10.1016/j.csbj.2023.10.005.     Reference: October 10th, 2023
Variation: March 31st, 2005
Gene Model: February 6th, 2019
7 months agohmg1 high mobility group protein1:
5.03
   Maman, S et al. 2023. Low expression of lipoxygenase 3 (LOX3) enhances the retention of kernel tocopherols in maize during storage. Mol Biol Rep. :doi: 10.1007/s11033-023-08820-8..     Reference: October 9th, 2023
Gene Product: September 1st, 2003
Variation: July 26th, 2013
7 months agocl5926_1a  :
1.06
GRMZM2G075003
Du, L et al. 2023. Transcriptome Analysis and QTL Mapping Identify Candidate Genes and Regulatory Mechanisms Related to Low-Temperature Germination Ability in Maize Genes. 14:1917.     Reference: October 9th, 2023
Variation: September 25th, 2007
Gene Model: August 8th, 2021
7 months agoso1 sulfite oxidase1:
1.06
GRMZM2G114739
Du, L et al. 2023. Transcriptome Analysis and QTL Mapping Identify Candidate Genes and Regulatory Mechanisms Related to Low-Temperature Germination Ability in Maize Genes. 14:1917.     Reference: October 9th, 2023
Gene Product: April 16th, 2013
Gene Model: April 16th, 2013
7 months agolox7 lipoxygenase7:
10.04
GRMZM2G070092
Maman, S et al. 2023. Low expression of lipoxygenase 3 (LOX3) enhances the retention of kernel tocopherols in maize during storage. Mol Biol Rep. :doi: 10.1007/s11033-023-08820-8..     Reference: October 9th, 2023
Gene Product: January 3rd, 2018
Variation: April 23rd, 2009
Gene Model: June 10th, 2014
7 months agolox9 lipoxygenase9:
1.02
GRMZM2G017616
Maman, S et al. 2023. Low expression of lipoxygenase 3 (LOX3) enhances the retention of kernel tocopherols in maize during storage. Mol Biol Rep. :doi: 10.1007/s11033-023-08820-8..     Reference: October 9th, 2023
Gene Product: January 3rd, 2018
Variation: June 12th, 2014
Gene Model: October 23rd, 2013
7 months agodsc2 Discolored-paralog2:
 
GRMZM5G872204
Du, L et al. 2023. Transcriptome Analysis and QTL Mapping Identify Candidate Genes and Regulatory Mechanisms Related to Low-Temperature Germination Ability in Maize Genes. 14:1917.     Reference: October 9th, 2023
Gene Product: June 23rd, 2012
Gene Model: June 22nd, 2012
7 months agonbcs4 nucleobase:cation symporter4:
 
GRMZM2G045781
Shu, GP et al. 2023. Identification of southern corn rust resistance QTNs in Chinese summer maize germplasm via multi-locus GWAS and post-GWAS analysis. Frontiers in Plant Science. 14:1221395.     Reference: October 9th, 2023
Gene Product: July 14th, 2018
Gene Model: July 14th, 2018
7 months agocct23 CO CO-LIKE TIMING OF CAB1 protein domain23:
 
GRMZM2G488465
Shu, GP et al. 2023. Identification of southern corn rust resistance QTNs in Chinese summer maize germplasm via multi-locus GWAS and post-GWAS analysis. Frontiers in Plant Science. 14:1221395.     Reference: October 9th, 2023
Gene Product: June 18th, 2018
Gene Model: August 17th, 2021
7 months agorlk10 receptor-like protein kinase10:
 
GRMZM2G132212
Shu, GP et al. 2023. Identification of southern corn rust resistance QTNs in Chinese summer maize germplasm via multi-locus GWAS and post-GWAS analysis. Frontiers in Plant Science. 14:1221395.     Reference: October 9th, 2023
Gene Product: July 10th, 2019
Variation: September 17th, 2021
Gene Model: September 17th, 2021
7 months agoIDP716  :
1.07
GRMZM5G882446
Du, L et al. 2023. Transcriptome Analysis and QTL Mapping Identify Candidate Genes and Regulatory Mechanisms Related to Low-Temperature Germination Ability in Maize Genes. 14:1917.     Reference: October 9th, 2023
Variation: March 31st, 2005
Gene Model: February 14th, 2019
7 months agouce14 ubiquitin conjugating enzyme14:
 
GRMZM2G074479
Dong, XM et al. 2023. Transcriptome-wide identification and characterization of genes exhibit allele-specific imprinting in maize embryo and endosperm. BMC Plant Biology. 23:470.     Reference: October 7th, 2023
Gene Product: December 19th, 2019
Gene Model: November 26th, 2019
7 months agomcm5 minichromosome maintenance5:
5.08
GRMZM2G075978
Dong, XM et al. 2023. Transcriptome-wide identification and characterization of genes exhibit allele-specific imprinting in maize embryo and endosperm. BMC Plant Biology. 23:470.     Reference: October 7th, 2023
Gene Product: August 2nd, 2017
Gene Model: July 31st, 2017
7 months agoctr2 constitutive triple response2:
 
GRMZM2G098187
Dong, XM et al. 2023. Transcriptome-wide identification and characterization of genes exhibit allele-specific imprinting in maize embryo and endosperm. BMC Plant Biology. 23:470.     Reference: October 7th, 2023
Gene Product: May 13th, 2014
Gene Model: June 24th, 2021
7 months agopat1 protein S-acyltransferase1:
 
GRMZM2G111191
Dong, XM et al. 2023. Transcriptome-wide identification and characterization of genes exhibit allele-specific imprinting in maize embryo and endosperm. BMC Plant Biology. 23:470.     Reference: October 7th, 2023
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
7 months agoIDP2450  :
1.10
GRMZM5G837018
Dong, XM et al. 2023. Transcriptome-wide identification and characterization of genes exhibit allele-specific imprinting in maize embryo and endosperm. BMC Plant Biology. 23:470.     Reference: October 7th, 2023
Variation: March 31st, 2005
Gene Model: February 15th, 2019
7 months agoIDP343  :
1.02
GRMZM2G023575
Dong, XM et al. 2023. Transcriptome-wide identification and characterization of genes exhibit allele-specific imprinting in maize embryo and endosperm. BMC Plant Biology. 23:470.     Reference: October 7th, 2023
Variation: March 31st, 2005
Gene Model: February 11th, 2019
7 months agoIDP3835  :
7.05
GRMZM2G083580
Dong, XM et al. 2023. Transcriptome-wide identification and characterization of genes exhibit allele-specific imprinting in maize embryo and endosperm. BMC Plant Biology. 23:470.     Reference: October 7th, 2023
Variation: March 31st, 2005
Gene Model: July 8th, 2021
7 months agomdh2 malate dehydrogenase2:
6.07
   Qu, LL et al. 2023. Leaf photosynthetic characteristics of waxy maize in response to different degrees of heat stress during grain filling BMC Plant Biology. 23:469.     Reference: October 6th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
7 months agomdh4 malate dehydrogenase4:
1.08
   Qu, LL et al. 2023. Leaf photosynthetic characteristics of waxy maize in response to different degrees of heat stress during grain filling BMC Plant Biology. 23:469.     Reference: October 6th, 2023
Gene Product: September 1st, 2003
Variation: May 22nd, 2020
7 months agorlsb1 rbcl rna s1-binding domain protein1:
 
GRMZM2G087628
Qu, LL et al. 2023. Leaf photosynthetic characteristics of waxy maize in response to different degrees of heat stress during grain filling BMC Plant Biology. 23:469.   AT1G71720 (TAIR) Reference: October 6th, 2023
Gene Product: July 1st, 2016
Variation: April 10th, 2019
Gene Model: October 19th, 2013
7 months agorlsb2 rbcl rna s1-binding domain protein2:
 
GRMZM2G546254
Qu, LL et al. 2023. Leaf photosynthetic characteristics of waxy maize in response to different degrees of heat stress during grain filling BMC Plant Biology. 23:469.   AT1G71720 (TAIR) Reference: October 6th, 2023
Gene Product: July 1st, 2016
Variation: July 1st, 2016
Gene Model: July 1st, 2016
7 months agoxgt2 xyloglucan glycosyltransferase2:
 
GRMZM2G135286
Francesco Pancaldi et al. 2023. Highly differentiated genomic properties underpin the different cell walls of Poaceae and eudicots Plant Physiol. :doi: 10.1093/plphys/kiad267.   AT3G28180 (TAIR) Reference: October 6th, 2023
Gene Product: July 2nd, 2020
Gene Model: July 2nd, 2020
7 months agocipk29 calcineurin B-like-interacting protein kinase29:
 
GRMZM2G177050
Ningning Zhang et al. 2023. Molecular mechanisms of drought resistance using genome-wide association mapping in maize (Zea mays L.) BMC Plant Biology. 23:468.     Reference: October 6th, 2023
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
7 months agoplt20 phospholipid transfer protein20:
2.04
GRMZM2G136364
Ningning Zhang et al. 2023. Molecular mechanisms of drought resistance using genome-wide association mapping in maize (Zea mays L.) BMC Plant Biology. 23:468.     Reference: October 6th, 2023
Gene Product: September 1st, 2003
Variation: March 31st, 2005
Gene Model: February 19th, 2019
7 months agoprp18 pathogenesis-related protein18:
 
   Li, J et al. 2023. Integrated Transcriptomic and Proteomic Analyses of Low-Nitrogen-Stress Tolerance and Function Analysis of ZmGST42 Gene in Maize Antioxidants. 12:1831.     Reference: October 5th, 2023
Gene Product: December 12th, 2022
7 months agoplt18 phospholipid transfer protein18:
 
   Li, J et al. 2023. Integrated Transcriptomic and Proteomic Analyses of Low-Nitrogen-Stress Tolerance and Function Analysis of ZmGST42 Gene in Maize Antioxidants. 12:1831.     Reference: October 5th, 2023
Gene Product: September 1st, 2003
7 months agowrky132 WRKY-transcription factor 132:
 
   Wang, Y et al. 2023. Genome-Wide Characterization of the Maize (Zea mays L.) WRKY Transcription Factor Family and Their Responses to U. maydis Int J Mol Sci. 24:14916.     Reference: October 5th, 2023
Gene Product: July 24th, 2017
7 months agowrky139 WRKY-transcription factor 139:
 
   Wang, Y et al. 2023. Genome-Wide Characterization of the Maize (Zea mays L.) WRKY Transcription Factor Family and Their Responses to U. maydis Int J Mol Sci. 24:14916.     Reference: October 5th, 2023
Gene Product: July 24th, 2017
7 months agocdpk13 calcium dependent protein kinase13:
 
GRMZM2G173928
Hao Wu et al. 2023. NAKED ENDOSPERM1, NAKED ENDOSPERM2, and OPAQUE2 interact to regulate gene networks in maize endosperm development. Plant Cell. :doi: 10.1093/plcell/koad247.     Reference: October 5th, 2023
Gene Product: December 3rd, 2013
Variation: November 15th, 2013
Gene Model: March 31st, 2015
7 months agogap1 Golgi associated protein homolog:
1.08
GRMZM2G073725
Hao Wu et al. 2023. NAKED ENDOSPERM1, NAKED ENDOSPERM2, and OPAQUE2 interact to regulate gene networks in maize endosperm development. Plant Cell. :doi: 10.1093/plcell/koad247.     Reference: October 5th, 2023
Gene Product: September 1st, 2003
Variation: January 29th, 2015
Gene Model: January 29th, 2015
7 months agowrky22 WRKY-transcription factor 22:
8.09
GRMZM2G111354
Wang, Y et al. 2023. Genome-Wide Characterization of the Maize (Zea mays L.) WRKY Transcription Factor Family and Their Responses to U. maydis Int J Mol Sci. 24:14916.     Reference: October 5th, 2023
Variation: September 1st, 2003
Gene Model: September 24th, 2018
7 months agowrky70 WRKY-transcription factor 70:
2.02
GRMZM2G024898
Wang, Y et al. 2023. Genome-Wide Characterization of the Maize (Zea mays L.) WRKY Transcription Factor Family and Their Responses to U. maydis Int J Mol Sci. 24:14916.     Reference: October 5th, 2023
Variation: September 1st, 2003
Gene Model: October 2nd, 2018
7 months agowrky27 WRKY-transcription factor 27:
3.02
GRMZM2G475984
Wang, Y et al. 2023. Genome-Wide Characterization of the Maize (Zea mays L.) WRKY Transcription Factor Family and Their Responses to U. maydis Int J Mol Sci. 24:14916.     Reference: October 5th, 2023
Variation: September 1st, 2003
Gene Model: March 22nd, 2018
7 months agohb75 Homeobox-transcription factor 75:
2.02
GRMZM2G001289
Hao Wu et al. 2023. NAKED ENDOSPERM1, NAKED ENDOSPERM2, and OPAQUE2 interact to regulate gene networks in maize endosperm development. Plant Cell. :doi: 10.1093/plcell/koad247.     Reference: October 5th, 2023
Variation: September 1st, 2003
Gene Model: February 6th, 2018
7 months agotubtf6 TUB-transcription factor 6:
 
   Hao Wu et al. 2023. NAKED ENDOSPERM1, NAKED ENDOSPERM2, and OPAQUE2 interact to regulate gene networks in maize endosperm development. Plant Cell. :doi: 10.1093/plcell/koad247.     Reference: October 5th, 2023
Gene Product: September 29th, 2015
7 months agowrky105 WRKY-transcription factor 105:
 
   Wang, Y et al. 2023. Genome-Wide Characterization of the Maize (Zea mays L.) WRKY Transcription Factor Family and Their Responses to U. maydis Int J Mol Sci. 24:14916.     Reference: October 5th, 2023
Variation: September 2nd, 2017
7 months agowrky122 WRKY-transcription factor 122:
 
   Wang, Y et al. 2023. Genome-Wide Characterization of the Maize (Zea mays L.) WRKY Transcription Factor Family and Their Responses to U. maydis Int J Mol Sci. 24:14916.     Reference: October 5th, 2023
Gene Product: July 24th, 2017
Variation: December 14th, 2016
7 months agowrky26 WRKY-transcription factor 26:
 
   Wang, Y et al. 2023. Genome-Wide Characterization of the Maize (Zea mays L.) WRKY Transcription Factor Family and Their Responses to U. maydis Int J Mol Sci. 24:14916.     Reference: October 5th, 2023
Gene Product: July 24th, 2017
Variation: September 18th, 2021
7 months agowrky38 WRKY-transcription factor 38:
 
   Wang, Y et al. 2023. Genome-Wide Characterization of the Maize (Zea mays L.) WRKY Transcription Factor Family and Their Responses to U. maydis Int J Mol Sci. 24:14916.     Reference: October 5th, 2023
Variation: July 21st, 2022
7 months agowrky54 WRKY-transcription factor 54:
 
   Wang, Y et al. 2023. Genome-Wide Characterization of the Maize (Zea mays L.) WRKY Transcription Factor Family and Their Responses to U. maydis Int J Mol Sci. 24:14916.     Reference: October 5th, 2023
Gene Product: July 24th, 2017
7 months agowrky127 WRKY-transcription factor 127:
5.06
   Wang, Y et al. 2023. Genome-Wide Characterization of the Maize (Zea mays L.) WRKY Transcription Factor Family and Their Responses to U. maydis Int J Mol Sci. 24:14916.     Reference: October 5th, 2023
Gene Product: July 24th, 2017
Variation: March 30th, 2017
7 months agogst42 glutathione transferase42:
1.04
GRMZM2G025190
Li, J et al. 2023. Integrated Transcriptomic and Proteomic Analyses of Low-Nitrogen-Stress Tolerance and Function Analysis of ZmGST42 Gene in Maize Antioxidants. 12:1831.     Reference: October 5th, 2023
Gene Product: September 1st, 2003
Gene Model: July 27th, 2016
7 months agoumc2332  :
7.04
GRMZM2G131243
Li, J et al. 2023. Integrated Transcriptomic and Proteomic Analyses of Low-Nitrogen-Stress Tolerance and Function Analysis of ZmGST42 Gene in Maize Antioxidants. 12:1831.     Reference: October 5th, 2023
Variation: September 11th, 2018
Gene Model: September 11th, 2018
7 months agoatp2 ATP synthase2:
8.03
GRMZM2G021331
Li, J et al. 2023. Integrated Transcriptomic and Proteomic Analyses of Low-Nitrogen-Stress Tolerance and Function Analysis of ZmGST42 Gene in Maize Antioxidants. 12:1831.     Reference: October 5th, 2023
Gene Product: September 1st, 2003
Variation: August 22nd, 2014
Gene Model: August 21st, 2014
7 months agomate27 multidrug and toxic compound extrusion27:
4.05
GRMZM2G043075
Li, J et al. 2023. Integrated Transcriptomic and Proteomic Analyses of Low-Nitrogen-Stress Tolerance and Function Analysis of ZmGST42 Gene in Maize Antioxidants. 12:1831.     Reference: October 5th, 2023
Gene Product: August 17th, 2015
Variation: September 25th, 2007
Gene Model: April 17th, 2020
7 months agonkd1 naked endosperm1:
 
GRMZM2G129261
Hao Wu et al. 2023. NAKED ENDOSPERM1, NAKED ENDOSPERM2, and OPAQUE2 interact to regulate gene networks in maize endosperm development. Plant Cell. :doi: 10.1093/plcell/koad247.     Reference: October 5th, 2023
Gene Product: January 3rd, 2015
Variation: January 3rd, 2015
Gene Model: January 2nd, 2015
7 months agoepf2 epidermal patterning factor-like2:
 
GRMZM2G431783
Li, J et al. 2023. Integrated Transcriptomic and Proteomic Analyses of Low-Nitrogen-Stress Tolerance and Function Analysis of ZmGST42 Gene in Maize Antioxidants. 12:1831.     Reference: October 5th, 2023
Gene Product: July 10th, 2019
Gene Model: July 10th, 2019
7 months agowrky126 WRKY-transcription factor 126:
 
GRMZM5G851490
Wang, Y et al. 2023. Genome-Wide Characterization of the Maize (Zea mays L.) WRKY Transcription Factor Family and Their Responses to U. maydis Int J Mol Sci. 24:14916.     Reference: October 5th, 2023
Gene Product: July 24th, 2017
Gene Model: September 9th, 2020
7 months agowrky136 WRKY-transcription factor 136:
 
   Wang, Y et al. 2023. Genome-Wide Characterization of the Maize (Zea mays L.) WRKY Transcription Factor Family and Their Responses to U. maydis Int J Mol Sci. 24:14916.     Reference: October 5th, 2023
Gene Product: July 24th, 2017
7 months agocsu308  :
5.04
GRMZM2G113332
Li, J et al. 2023. Integrated Transcriptomic and Proteomic Analyses of Low-Nitrogen-Stress Tolerance and Function Analysis of ZmGST42 Gene in Maize Antioxidants. 12:1831.     Reference: October 5th, 2023
Variation: September 25th, 2007
Gene Model: August 28th, 2021
7 months agowrky9 WRKY-transcription factor 9:
4.08
GRMZM2G169564
Wang, Y et al. 2023. Genome-Wide Characterization of the Maize (Zea mays L.) WRKY Transcription Factor Family and Their Responses to U. maydis Int J Mol Sci. 24:14916.     Reference: October 5th, 2023
Gene Product: July 24th, 2017
Variation: March 31st, 2005
Gene Model: May 24th, 2021
7 months agoIDP535  :
8.05
GRMZM2G101664
Li, J et al. 2023. Integrated Transcriptomic and Proteomic Analyses of Low-Nitrogen-Stress Tolerance and Function Analysis of ZmGST42 Gene in Maize Antioxidants. 12:1831.     Reference: October 5th, 2023
Variation: March 31st, 2005
Gene Model: July 12th, 2021
7 months agoIDP103  :
10.01
GRMZM5G822449
Li, J et al. 2023. Integrated Transcriptomic and Proteomic Analyses of Low-Nitrogen-Stress Tolerance and Function Analysis of ZmGST42 Gene in Maize Antioxidants. 12:1831.     Reference: October 5th, 2023
Variation: March 31st, 2005
Gene Model: December 31st, 2017
7 months agopgd3 phosphogluconate dehydrogenase3:
4.03
GRMZM2G440208
Cao, HR et al. 2023. ZmNRT1.1B (ZmNPF6.6) determines nitrogen use efficiency via regulation of nitrate transport and signalling in maize. Plant Biotechnol J.     Reference: October 3rd, 2023
Gene Product: December 16th, 2020
Variation: March 4th, 2021
Gene Model: July 28th, 2016
7 months agoctr1 constitutive triple response1:
5.04
GRMZM2G059671
Xie, SY et al. 2023. Striking a growth-defense balance: Stress regulators that function in maize development. J Integr Plant Biol. :doi: 10.1111/jipb.13570.     Reference: October 3rd, 2023
Gene Product: May 13th, 2014
Gene Model: June 24th, 2021
7 months agovp2 viviparous2:
5.03
   Xie, SY et al. 2023. Striking a growth-defense balance: Stress regulators that function in maize development. J Integr Plant Biol. :doi: 10.1111/jipb.13570.     Reference: October 3rd, 2023
Variation: November 11th, 2010
7 months agow3 white seedling3:
2.08 - 2.07
GRMZM2G113476
Xie, SY et al. 2023. Striking a growth-defense balance: Stress regulators that function in maize development. J Integr Plant Biol. :doi: 10.1111/jipb.13570.   AT3G11945 (TAIR) Reference: October 3rd, 2023
Gene Product: January 8th, 2018
Variation: January 8th, 2018
Gene Model: January 8th, 2018
7 months agovp10 viviparous10:
10.07
   Xie, SY et al. 2023. Striking a growth-defense balance: Stress regulators that function in maize development. J Integr Plant Biol. :doi: 10.1111/jipb.13570.     Reference: October 3rd, 2023
Gene Product: February 22nd, 2007
Variation: June 23rd, 2012
7 months agosi1 silky1:
6.01
   Xie, SY et al. 2023. Striking a growth-defense balance: Stress regulators that function in maize development. J Integr Plant Biol. :doi: 10.1111/jipb.13570.     Reference: October 3rd, 2023
Variation: November 2nd, 2015
7 months agovp15 viviparous15:
5.05
   Xie, SY et al. 2023. Striking a growth-defense balance: Stress regulators that function in maize development. J Integr Plant Biol. :doi: 10.1111/jipb.13570.     Reference: October 3rd, 2023
Gene Product: February 22nd, 2007
Variation: July 27th, 2009
7 months agoipt6 isopentenyl transferase6:
 
GRMZM2G116878
Cao, HR et al. 2023. ZmNRT1.1B (ZmNPF6.6) determines nitrogen use efficiency via regulation of nitrate transport and signalling in maize. Plant Biotechnol J.     Reference: October 3rd, 2023
Gene Product: March 19th, 2014
Gene Model: July 10th, 2013
7 months agozar1 Zea mays ARGOS1:
 
GRMZM2G446201
Xie, SY et al. 2023. Striking a growth-defense balance: Stress regulators that function in maize development. J Integr Plant Biol. :doi: 10.1111/jipb.13570.     Reference: October 3rd, 2023
Gene Product: August 3rd, 2015
Gene Model: April 14th, 2014
7 months agonpf3 nitrate transporter/peptide transporter family3:
 
GRMZM2G112154
Cao, HR et al. 2023. ZmNRT1.1B (ZmNPF6.6) determines nitrogen use efficiency via regulation of nitrate transport and signalling in maize. Plant Biotechnol J.     Reference: October 3rd, 2023
Gene Product: September 1st, 2003
Gene Model: May 10th, 2018
7 months agonpf4 nitrate transporter/peptide transporter family4:
 
GRMZM2G161483
Cao, HR et al. 2023. ZmNRT1.1B (ZmNPF6.6) determines nitrogen use efficiency via regulation of nitrate transport and signalling in maize. Plant Biotechnol J.     Reference: October 3rd, 2023
Gene Product: September 1st, 2003
Gene Model: May 10th, 2018
7 months agosro6 similar to RCD one6:
 
GRMZM2G177878
Xie, SY et al. 2023. Striking a growth-defense balance: Stress regulators that function in maize development. J Integr Plant Biol. :doi: 10.1111/jipb.13570.     Reference: October 3rd, 2023
Gene Product: September 7th, 2018
Gene Model: August 10th, 2018
7 months agondl1 needle1:
 
GRMZM2G038401
Xie, SY et al. 2023. Striking a growth-defense balance: Stress regulators that function in maize development. J Integr Plant Biol. :doi: 10.1111/jipb.13570.     Reference: October 3rd, 2023
Gene Product: September 10th, 2019
Variation: September 10th, 2019
Gene Model: September 10th, 2019
7 months agovp16 viviparous16:
 
   Xie, SY et al. 2023. Striking a growth-defense balance: Stress regulators that function in maize development. J Integr Plant Biol. :doi: 10.1111/jipb.13570.     Reference: October 3rd, 2023
Variation: November 8th, 2019
7 months agodrg5 dark response gene5:
 
GRMZM2G135877
Xie, SY et al. 2023. Striking a growth-defense balance: Stress regulators that function in maize development. J Integr Plant Biol. :doi: 10.1111/jipb.13570.     Reference: October 3rd, 2023
Gene Product: August 17th, 2015
Variation: October 3rd, 2023
Gene Model: June 6th, 2020
7 months agosi3 silky3:
 
AC209624.2_FG001
Xie, SY et al. 2023. Striking a growth-defense balance: Stress regulators that function in maize development. J Integr Plant Biol. :doi: 10.1111/jipb.13570.     Reference: October 3rd, 2023
Gene Product: October 2nd, 2020
Variation: October 2nd, 2020
Gene Model: October 1st, 2020
7 months agogrx5 glutaredoxin5:
 
GRMZM2G470756
Xie, SY et al. 2023. Striking a growth-defense balance: Stress regulators that function in maize development. J Integr Plant Biol. :doi: 10.1111/jipb.13570.     Reference: October 3rd, 2023
Gene Product: January 21st, 2021
Variation: December 14th, 2021
Gene Model: November 16th, 2021
7 months agogrx2 glutaredoxin2:
 
GRMZM2G480903
Xie, SY et al. 2023. Striking a growth-defense balance: Stress regulators that function in maize development. J Integr Plant Biol. :doi: 10.1111/jipb.13570.     Reference: October 3rd, 2023
Gene Product: January 21st, 2021
Variation: December 14th, 2021
Gene Model: December 14th, 2021
7 months agomdh8 malate dehydrogenase8:
 
GRMZM2G161245
Cao, HR et al. 2023. ZmNRT1.1B (ZmNPF6.6) determines nitrogen use efficiency via regulation of nitrate transport and signalling in maize. Plant Biotechnol J.     Reference: October 3rd, 2023
Gene Product: September 1st, 2003
Gene Model: June 20th, 2022
7 months agoskus1 skewed root growth similar1:
3.06
GRMZM2G157929
Xie, SY et al. 2023. Striking a growth-defense balance: Stress regulators that function in maize development. J Integr Plant Biol. :doi: 10.1111/jipb.13570.     Reference: October 3rd, 2023
Gene Product: May 29th, 2019
Variation: October 9th, 2020
Gene Model: September 28th, 2020
7 months agoidh6 isocitrate dehydrogenase6:
 
   Wei, NN et al. 2023. Characterization of the Isocitrate Dehydrogenase Gene Family and Their Response to Drought Stress in Maize Plants. 12:3466.     Reference: October 2nd, 2023
Gene Product: October 2nd, 2023
7 months agoidh4 isocitrate dehydrogenase4:
 
   Wei, NN et al. 2023. Characterization of the Isocitrate Dehydrogenase Gene Family and Their Response to Drought Stress in Maize Plants. 12:3466.     Reference: October 2nd, 2023
Gene Product: October 2nd, 2023
7 months agoidh5 isocitrate dehydrogenase5:
 
   Wei, NN et al. 2023. Characterization of the Isocitrate Dehydrogenase Gene Family and Their Response to Drought Stress in Maize Plants. 12:3466.     Reference: October 2nd, 2023
Gene Product: October 2nd, 2023
7 months agoidh9 isocitrate dehydrogenase9:
 
   Wei, NN et al. 2023. Characterization of the Isocitrate Dehydrogenase Gene Family and Their Response to Drought Stress in Maize Plants. 12:3466.     Reference: October 2nd, 2023
Gene Product: October 2nd, 2023
7 months agoidh1 isocitrate dehydrogenase1:
8.06 - 8.06
GRMZM2G432128
Wei, NN et al. 2023. Characterization of the Isocitrate Dehydrogenase Gene Family and Their Response to Drought Stress in Maize Plants. 12:3466.     Reference: October 2nd, 2023
Gene Product: October 2nd, 2023
Variation: September 1st, 2003
Gene Model: July 18th, 2014
7 months agoidh2 isocitrate dehydrogenase2:
6.07
GRMZM5G829778
Wei, NN et al. 2023. Characterization of the Isocitrate Dehydrogenase Gene Family and Their Response to Drought Stress in Maize Plants. 12:3466.     Reference: October 2nd, 2023
Gene Product: October 2nd, 2023
Variation: September 1st, 2003
Gene Model: July 18th, 2014
7 months agoidh8 isocitrate dehydrogenase8:
3.08
GRMZM2G033515
Wei, NN et al. 2023. Characterization of the Isocitrate Dehydrogenase Gene Family and Their Response to Drought Stress in Maize Plants. 12:3466.     Reference: October 2nd, 2023
Gene Product: October 2nd, 2023
Gene Model: April 22nd, 2022
7 months agoimd1 isopropylmalate dehydrogenase1:
1.03
GRMZM2G120857
Wei, NN et al. 2023. Characterization of the Isocitrate Dehydrogenase Gene Family and Their Response to Drought Stress in Maize Plants. 12:3466.     Reference: October 2nd, 2023
Gene Product: September 1st, 2003
Variation: May 14th, 2010
Gene Model: July 18th, 2014
7 months agostsl10 strictosidine synthase-like10:
 
   Gu, L et al. 2023. The Genome-Wide Identification, Characterization, and Expression Analysis of the Strictosidine Synthase-like Family in Maize (Zea mays L.). 10.3390/ijms241914733 Int J Mol Sci. 24:14733.     Reference: September 29th, 2023
Gene Product: September 29th, 2023
7 months agostsl5 strictosidine synthase-like5:
 
   Gu, L et al. 2023. The Genome-Wide Identification, Characterization, and Expression Analysis of the Strictosidine Synthase-like Family in Maize (Zea mays L.). 10.3390/ijms241914733 Int J Mol Sci. 24:14733.     Reference: September 29th, 2023
Gene Product: September 29th, 2023
7 months agostsl7 strictosidine synthase-like7:
 
   Gu, L et al. 2023. The Genome-Wide Identification, Characterization, and Expression Analysis of the Strictosidine Synthase-like Family in Maize (Zea mays L.). 10.3390/ijms241914733 Int J Mol Sci. 24:14733.     Reference: September 29th, 2023
Gene Product: September 29th, 2023
7 months agostsl9 strictosidine synthase-like9:
 
   Gu, L et al. 2023. The Genome-Wide Identification, Characterization, and Expression Analysis of the Strictosidine Synthase-like Family in Maize (Zea mays L.). 10.3390/ijms241914733 Int J Mol Sci. 24:14733.     Reference: September 29th, 2023
Gene Product: September 29th, 2023
7 months agostsl1 strictosidine synthase-like1:
 
   Gu, L et al. 2023. The Genome-Wide Identification, Characterization, and Expression Analysis of the Strictosidine Synthase-like Family in Maize (Zea mays L.). 10.3390/ijms241914733 Int J Mol Sci. 24:14733.     Reference: September 29th, 2023
Gene Product: September 29th, 2023
7 months agostsl2 strictosidine synthase-like2:
 
   Gu, L et al. 2023. The Genome-Wide Identification, Characterization, and Expression Analysis of the Strictosidine Synthase-like Family in Maize (Zea mays L.). 10.3390/ijms241914733 Int J Mol Sci. 24:14733.     Reference: September 29th, 2023
Gene Product: September 29th, 2023
7 months agostsl3 strictosidine synthase-like3:
 
   Gu, L et al. 2023. The Genome-Wide Identification, Characterization, and Expression Analysis of the Strictosidine Synthase-like Family in Maize (Zea mays L.). 10.3390/ijms241914733 Int J Mol Sci. 24:14733.     Reference: September 29th, 2023
Gene Product: September 29th, 2023
7 months agostsl6 strictosidine synthase-like6:
 
   Gu, L et al. 2023. The Genome-Wide Identification, Characterization, and Expression Analysis of the Strictosidine Synthase-like Family in Maize (Zea mays L.). 10.3390/ijms241914733 Int J Mol Sci. 24:14733.     Reference: September 29th, 2023
Gene Product: September 29th, 2023
7 months agostsl8 strictosidine synthase-like8:
 
   Gu, L et al. 2023. The Genome-Wide Identification, Characterization, and Expression Analysis of the Strictosidine Synthase-like Family in Maize (Zea mays L.). 10.3390/ijms241914733 Int J Mol Sci. 24:14733.     Reference: September 29th, 2023
Gene Product: September 29th, 2023
7 months agostsl11 strictosidine synthase-like11:
 
   Gu, L et al. 2023. The Genome-Wide Identification, Characterization, and Expression Analysis of the Strictosidine Synthase-like Family in Maize (Zea mays L.). 10.3390/ijms241914733 Int J Mol Sci. 24:14733.     Reference: September 29th, 2023
Gene Product: September 29th, 2023
7 months agostsl12 strictosidine synthase-like12:
 
   Gu, L et al. 2023. The Genome-Wide Identification, Characterization, and Expression Analysis of the Strictosidine Synthase-like Family in Maize (Zea mays L.). 10.3390/ijms241914733 Int J Mol Sci. 24:14733.     Reference: September 29th, 2023
Gene Product: September 29th, 2023
7 months agostsl13 strictosidine synthase-like13:
 
   Gu, L et al. 2023. The Genome-Wide Identification, Characterization, and Expression Analysis of the Strictosidine Synthase-like Family in Maize (Zea mays L.). 10.3390/ijms241914733 Int J Mol Sci. 24:14733.     Reference: September 29th, 2023
Gene Product: September 29th, 2023
7 months agostsl14 strictosidine synthase-like14:
 
   Gu, L et al. 2023. The Genome-Wide Identification, Characterization, and Expression Analysis of the Strictosidine Synthase-like Family in Maize (Zea mays L.). 10.3390/ijms241914733 Int J Mol Sci. 24:14733.     Reference: September 29th, 2023
Gene Product: September 29th, 2023
7 months agostsl15 strictosidine synthase-like15:
 
   Gu, L et al. 2023. The Genome-Wide Identification, Characterization, and Expression Analysis of the Strictosidine Synthase-like Family in Maize (Zea mays L.). 10.3390/ijms241914733 Int J Mol Sci. 24:14733.     Reference: September 29th, 2023
Gene Product: September 29th, 2023
7 months agostsl16 strictosidine synthase-like16:
 
   Gu, L et al. 2023. The Genome-Wide Identification, Characterization, and Expression Analysis of the Strictosidine Synthase-like Family in Maize (Zea mays L.). 10.3390/ijms241914733 Int J Mol Sci. 24:14733.     Reference: September 29th, 2023
Gene Product: September 29th, 2023
7 months agostsl17 strictosidine synthase-like17:
 
   Gu, L et al. 2023. The Genome-Wide Identification, Characterization, and Expression Analysis of the Strictosidine Synthase-like Family in Maize (Zea mays L.). 10.3390/ijms241914733 Int J Mol Sci. 24:14733.     Reference: September 29th, 2023
Gene Product: September 29th, 2023
7 months agostsl18 strictosidine synthase-like18:
 
   Gu, L et al. 2023. The Genome-Wide Identification, Characterization, and Expression Analysis of the Strictosidine Synthase-like Family in Maize (Zea mays L.). 10.3390/ijms241914733 Int J Mol Sci. 24:14733.     Reference: September 29th, 2023
Gene Product: September 29th, 2023
7 months agostsl19 strictosidine synthase-like19:
 
   Gu, L et al. 2023. The Genome-Wide Identification, Characterization, and Expression Analysis of the Strictosidine Synthase-like Family in Maize (Zea mays L.). 10.3390/ijms241914733 Int J Mol Sci. 24:14733.     Reference: September 29th, 2023
Gene Product: September 29th, 2023
7 months agocsu928  :
6.07
GRMZM2G154648
Veronica Santoro et al. 2023. Phosphorus Acquisition Efficiency and Transcriptomic Changes in Maize Plants Treated with Two Lignohumates Plants. 12:3291.     Reference: September 29th, 2023
Variation: March 21st, 2007
Gene Model: December 27th, 2019
7 months agocipk44 calcineurin B-like-interacting protein kinase44:
3.09
GRMZM2G181081
Veronica Santoro et al. 2023. Phosphorus Acquisition Efficiency and Transcriptomic Changes in Maize Plants Treated with Two Lignohumates Plants. 12:3291.     Reference: September 29th, 2023
Gene Product: August 25th, 2018
Gene Model: February 25th, 2019
7 months agogsht1 glutathione transporter1:
 
GRMZM2G421491
Veronica Santoro et al. 2023. Phosphorus Acquisition Efficiency and Transcriptomic Changes in Maize Plants Treated with Two Lignohumates Plants. 12:3291.     Reference: September 29th, 2023
Gene Product: April 23rd, 2013
Gene Model: April 23rd, 2013
7 months agoglk8 G2-like-transcription factor 8:
 
   Veronica Santoro et al. 2023. Phosphorus Acquisition Efficiency and Transcriptomic Changes in Maize Plants Treated with Two Lignohumates Plants. 12:3291.     Reference: September 29th, 2023
Variation: March 17th, 2021
7 months agonrx1 nucleoredoxin1:
1.04
GRMZM2G048324
Veronica Santoro et al. 2023. Phosphorus Acquisition Efficiency and Transcriptomic Changes in Maize Plants Treated with Two Lignohumates Plants. 12:3291.     Reference: September 29th, 2023
Gene Product: September 1st, 2003
Variation: September 11th, 2014
Gene Model: September 11th, 2014
7 months agondk1 nucleotide diphosphate kinase1:
7.03
   Veronica Santoro et al. 2023. Phosphorus Acquisition Efficiency and Transcriptomic Changes in Maize Plants Treated with Two Lignohumates Plants. 12:3291.     Reference: September 29th, 2023
Gene Product: December 23rd, 2019
Variation: September 9th, 2014
7 months agoc3h32 C3H-transcription factor32:
7.04
GRMZM5G842019
Xiaoling Ma et al. 2023. Expression of maize OXS2a in Arabidopsis stunts plant growth but enhances heat tolerance Plant Sci. :doi: 10.1016/j.plantsci.2023.111877.     Reference: September 29th, 2023
Variation: July 29th, 2004
Gene Model: September 11th, 2018
7 months agoGRMZM2G095400  :
 
GRMZM2G095400
Veronica Santoro et al. 2023. Phosphorus Acquisition Efficiency and Transcriptomic Changes in Maize Plants Treated with Two Lignohumates Plants. 12:3291.     Reference: September 29th, 2023
Gene Product: September 16th, 2019
Gene Model: September 16th, 2019
7 months agoipp1 inositol-x-phosphate phosphatase1:
 
GRMZM2G029731
Veronica Santoro et al. 2023. Phosphorus Acquisition Efficiency and Transcriptomic Changes in Maize Plants Treated with Two Lignohumates Plants. 12:3291.     Reference: September 29th, 2023
Gene Product: December 17th, 2019
Gene Model: December 17th, 2019
7 months agorbp1 ran-binding protein1:
 
AC213884.3_FG001
Veronica Santoro et al. 2023. Phosphorus Acquisition Efficiency and Transcriptomic Changes in Maize Plants Treated with Two Lignohumates Plants. 12:3291.     Reference: September 29th, 2023
Gene Product: January 7th, 2020
Gene Model: January 7th, 2020
7 months agodrg6 dark response gene6:
 
GRMZM2G112538
Jiang, LY et al. 2023. ZmMPK6-1 positively regulates maize resistance to E. turcicum through enhancing ZmERF061 activity J Plant Interactions. :doi: 10.1080/17429145.2023.2261772.     Reference: September 29th, 2023
Gene Product: December 12th, 2022
Gene Model: June 6th, 2020
7 months agoGRMZM2G355906  :
 
GRMZM2G355906
Veronica Santoro et al. 2023. Phosphorus Acquisition Efficiency and Transcriptomic Changes in Maize Plants Treated with Two Lignohumates Plants. 12:3291.     Reference: September 29th, 2023
Gene Product: December 9th, 2021
Gene Model: December 6th, 2021
7 months agoIDP683  :
6.06
GRMZM2G163468
Veronica Santoro et al. 2023. Phosphorus Acquisition Efficiency and Transcriptomic Changes in Maize Plants Treated with Two Lignohumates Plants. 12:3291.     Reference: September 29th, 2023
Variation: March 31st, 2005
Gene Model: July 3rd, 2021
7 months agoIDP4038  :
9.02
AC231745.1_FG003
Veronica Santoro et al. 2023. Phosphorus Acquisition Efficiency and Transcriptomic Changes in Maize Plants Treated with Two Lignohumates Plants. 12:3291.     Reference: September 29th, 2023
Variation: March 31st, 2005
Gene Model: July 14th, 2021
7 months agodzr1 zein-protein regulator:
4.01 - 4.02
   Taylor D Hintch et al. 2023. Development of maize inbred lines with elevated grain methionine concentration from a high methionine population Crop Sci. :doi: 10.1002/csc2.20983.     Reference: September 28th, 2023
Variation: August 27th, 2009
7 months agow14 white seedling14:
6.05 - 6.06
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 27th, 2023
7 months agoumc1716  :
4.11
GRMZM2G119393
Sa, KJ et al. 2023. Genetic Variation and Association Analysis of Elite Waxy Maize Inbred Lines in South Korea Plant Mol Biol Rep. :DOI: 10.1007/s11105-023-01405-6.     Reference: September 27th, 2023
Variation: September 1st, 2003
Gene Model: March 7th, 2021
7 months agogdcp1 glycine decarboxylase1:
10.01
GRMZM2G104310
Huang, C-F et al. 2023. C4 leaf development and evolution. Curr Opin Plant Biol. :doi: 10.1016/j.pbi.2023.102454.     Reference: September 25th, 2023
Gene Product: September 1st, 2003
Variation: July 18th, 2021
Gene Model: October 6th, 2015
7 months agoant1 adenine nucleotide translocator1:
5.06
GRMZM5G837108
Huang, C-F et al. 2023. C4 leaf development and evolution. Curr Opin Plant Biol. :doi: 10.1016/j.pbi.2023.102454.     Reference: September 25th, 2023
Gene Product: September 1st, 2003
Variation: July 31st, 2012
Gene Model: June 2nd, 2014
7 months agobr1 brachytic1:
1.07
   Huang, C-F et al. 2023. C4 leaf development and evolution. Curr Opin Plant Biol. :doi: 10.1016/j.pbi.2023.102454.     Reference: September 25th, 2023
Gene Product: July 25th, 2017
Variation: September 22nd, 2023
7 months agomdh1 malate dehydrogenase1:
8.03
   Huang, C-F et al. 2023. C4 leaf development and evolution. Curr Opin Plant Biol. :doi: 10.1016/j.pbi.2023.102454.     Reference: September 25th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
7 months agoppt1 plastid phosphate/phosphoenolpyruvate translocator1:
2.06
GRMZM2G047404
Huang, C-F et al. 2023. C4 leaf development and evolution. Curr Opin Plant Biol. :doi: 10.1016/j.pbi.2023.102454.     Reference: September 25th, 2023
Gene Product: September 1st, 2003
Gene Model: October 9th, 2014
7 months agoabi17 ABI3-VP1-transcription factor 17:
 
   Huang, C-F et al. 2023. C4 leaf development and evolution. Curr Opin Plant Biol. :doi: 10.1016/j.pbi.2023.102454.     Reference: September 25th, 2023
Gene Product: January 29th, 2022
7 months agogras58 GRAS-transcription factor 58:
 
   Huang, C-F et al. 2023. C4 leaf development and evolution. Curr Opin Plant Biol. :doi: 10.1016/j.pbi.2023.102454.     Reference: September 25th, 2023
Gene Product: June 24th, 2019
Variation: April 9th, 2014
7 months agotcptf40 TCP-transcription factor 40:
 
   Huang, C-F et al. 2023. C4 leaf development and evolution. Curr Opin Plant Biol. :doi: 10.1016/j.pbi.2023.102454.     Reference: September 25th, 2023
Gene Product: September 27th, 2019
7 months agotcptf5 TCP-transcription factor 5:
 
   Huang, C-F et al. 2023. C4 leaf development and evolution. Curr Opin Plant Biol. :doi: 10.1016/j.pbi.2023.102454.     Reference: September 25th, 2023
Gene Product: September 27th, 2019
7 months agosweet3a sugars will eventually be exported transporter3a:
8.04
GRMZM2G179679
Erick Amombo et al. 2023. Insights on the SWEET Gene Role in Soluble Sugar Accumulation via the CO2 Fixation Pathway in Forage Maize Under Salt Stress J Plant Growth Reg. :doi: 10.1007/s00344-023-11112-x.     Reference: September 25th, 2023
Gene Product: November 4th, 2015
Gene Model: September 19th, 2018
7 months agosweet4b sugars will eventually be exported transporter4b:
5.04
GRMZM2G144581
Erick Amombo et al. 2023. Insights on the SWEET Gene Role in Soluble Sugar Accumulation via the CO2 Fixation Pathway in Forage Maize Under Salt Stress J Plant Growth Reg. :doi: 10.1007/s00344-023-11112-x.     Reference: September 25th, 2023
Gene Product: November 4th, 2015
Gene Model: November 3rd, 2015
7 months agotpt1 triose phosphate translocator1:
 
   Huang, C-F et al. 2023. C4 leaf development and evolution. Curr Opin Plant Biol. :doi: 10.1016/j.pbi.2023.102454.     Reference: September 25th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
7 months agoscro1 scarecrow1:
4.08
GRMZM2G131516
Huang, C-F et al. 2023. C4 leaf development and evolution. Curr Opin Plant Biol. :doi: 10.1016/j.pbi.2023.102454.     Reference: September 25th, 2023
Gene Product: June 24th, 2019
Variation: June 24th, 2019
Gene Model: November 11th, 2012
7 months agoabph2 aberrant phyllotaxy2:
 
   Awale, P et al. 2023. Hormonal regulation of inflorescence and intercalary meristems in grasses. Curr Opin Plant Biol. :doi: 10.1016/j.pbi.2023.102451.     Reference: September 25th, 2023
Gene Product: January 21st, 2021
Variation: January 27th, 2015
7 months agosweet6b sugars will eventually be exported transporter6b:
 
GRMZM2G416965
Erick Amombo et al. 2023. Insights on the SWEET Gene Role in Soluble Sugar Accumulation via the CO2 Fixation Pathway in Forage Maize Under Salt Stress J Plant Growth Reg. :doi: 10.1007/s00344-023-11112-x.     Reference: September 25th, 2023
Gene Product: November 4th, 2015
Gene Model: November 3rd, 2015
7 months agosweet12b sugars will eventually be exported transporter12b:
 
GRMZM2G099609
Erick Amombo et al. 2023. Insights on the SWEET Gene Role in Soluble Sugar Accumulation via the CO2 Fixation Pathway in Forage Maize Under Salt Stress J Plant Growth Reg. :doi: 10.1007/s00344-023-11112-x.     Reference: September 25th, 2023
Gene Product: November 4th, 2015
Gene Model: November 3rd, 2015
7 months agosweet17b sugars will eventually be exported transporter17b:
 
GRMZM2G111926
Erick Amombo et al. 2023. Insights on the SWEET Gene Role in Soluble Sugar Accumulation via the CO2 Fixation Pathway in Forage Maize Under Salt Stress J Plant Growth Reg. :doi: 10.1007/s00344-023-11112-x.     Reference: September 25th, 2023
Gene Product: November 4th, 2015
Variation: March 18th, 2021
Gene Model: November 3rd, 2015
7 months agosweet16 sugars will eventually be exported transporter16:
 
GRMZM2G107597
Erick Amombo et al. 2023. Insights on the SWEET Gene Role in Soluble Sugar Accumulation via the CO2 Fixation Pathway in Forage Maize Under Salt Stress J Plant Growth Reg. :doi: 10.1007/s00344-023-11112-x.     Reference: September 25th, 2023
Gene Product: November 4th, 2015
Gene Model: November 3rd, 2015
7 months agome8 NAD-dependent malic enzyme8:
 
GRMZM2G085747
Huang, C-F et al. 2023. C4 leaf development and evolution. Curr Opin Plant Biol. :doi: 10.1016/j.pbi.2023.102454.     Reference: September 25th, 2023
Gene Product: June 4th, 2020
Gene Model: June 4th, 2020
7 months agosweet6a sugars will eventually be exported transporter6a:
3.09
GRMZM2G157675
Erick Amombo et al. 2023. Insights on the SWEET Gene Role in Soluble Sugar Accumulation via the CO2 Fixation Pathway in Forage Maize Under Salt Stress J Plant Growth Reg. :doi: 10.1007/s00344-023-11112-x.     Reference: September 25th, 2023
Gene Product: November 4th, 2015
Variation: March 31st, 2005
Gene Model: November 3rd, 2015
7 months agotil1 temperature-induced lipocalin1:
5.05
GRMZM2G072034
Huang, C-F et al. 2023. C4 leaf development and evolution. Curr Opin Plant Biol. :doi: 10.1016/j.pbi.2023.102454.     Reference: September 25th, 2023
Gene Product: May 20th, 2020
Gene Model: May 20th, 2020
7 months agosig1 sigma70-like-transcription factor 1:
1.03
GRMZM2G003182
Huang, C-F et al. 2023. C4 leaf development and evolution. Curr Opin Plant Biol. :doi: 10.1016/j.pbi.2023.102454.     Reference: September 25th, 2023
Gene Product: December 24th, 2019
Gene Model: October 16th, 2020
7 months agopbac3 proteasome biogenesis-associated chaperone3:
 
   Long, Y et al. 2023. Molecular mechanisms controlling grain size and weight and their biotechnological breeding applications in maize and other cereal crops J Adv Res. :doi: 10.1016/j.jare.2023.09.016.     Reference: September 24th, 2023
Gene Product: June 13th, 2019
7 months agoarftf20 ARF-transcription factor 20:
5.03
   Zhenwei Yan et al. 2023. The ZmbHLH32-ZmIAA9-ZmARF1 module regulates salt tolerance in maize. Int J Biol Macromol. :126978.     Reference: September 24th, 2023
Gene Product: January 29th, 2022
7 months agobt1 brittle endosperm1:
5.04
   Long, Y et al. 2023. Molecular mechanisms controlling grain size and weight and their biotechnological breeding applications in maize and other cereal crops J Adv Res. :doi: 10.1016/j.jare.2023.09.016.     Reference: September 24th, 2023
Gene Product: February 24th, 2015
Variation: December 14th, 2020
7 months agodek5 defective kernel5:
3.02
GRMZM2G083374
Long, Y et al. 2023. Molecular mechanisms controlling grain size and weight and their biotechnological breeding applications in maize and other cereal crops J Adv Res. :doi: 10.1016/j.jare.2023.09.016.     Reference: September 24th, 2023
Gene Product: June 28th, 2019
Variation: June 27th, 2019
Gene Model: June 27th, 2019
7 months agoo5 opaque endosperm5:
7.02
GRMZM2G142873
Long, Y et al. 2023. Molecular mechanisms controlling grain size and weight and their biotechnological breeding applications in maize and other cereal crops J Adv Res. :doi: 10.1016/j.jare.2023.09.016.     Reference: September 24th, 2023
Gene Product: June 17th, 2011
Variation: August 29th, 2011
Gene Model: September 19th, 2011
7 months agoscl1 scarecrow-like1:
8.03
GRMZM2G023872
Long, Y et al. 2023. Molecular mechanisms controlling grain size and weight and their biotechnological breeding applications in maize and other cereal crops J Adv Res. :doi: 10.1016/j.jare.2023.09.016.     Reference: September 24th, 2023
Gene Product: June 24th, 2019
Variation: August 26th, 2015
Gene Model: August 26th, 2015
7 months agoemb2 embryo specific2:
9.00 - 9.03
GRMZM5G884466
Long, Y et al. 2023. Molecular mechanisms controlling grain size and weight and their biotechnological breeding applications in maize and other cereal crops J Adv Res. :doi: 10.1016/j.jare.2023.09.016.     Reference: September 24th, 2023
Gene Product: September 15th, 2012
Variation: September 8th, 2012
Gene Model: September 7th, 2012
7 months agoemb12 embryo specific12:
1.00 - 1.04
   Long, Y et al. 2023. Molecular mechanisms controlling grain size and weight and their biotechnological breeding applications in maize and other cereal crops J Adv Res. :doi: 10.1016/j.jare.2023.09.016.     Reference: September 24th, 2023
Variation: March 8th, 2013
7 months agomcsf1 mitochondrial CAF-like splicing factor1:
 
GRMZM2G087395
Long, Y et al. 2023. Molecular mechanisms controlling grain size and weight and their biotechnological breeding applications in maize and other cereal crops J Adv Res. :doi: 10.1016/j.jare.2023.09.016.     Reference: September 24th, 2023
Gene Product: July 23rd, 2009
Variation: July 1st, 2019
Gene Model: July 1st, 2019
7 months agovps29 vacuolar protein sorting29:
 
GRMZM2G068489
Long, Y et al. 2023. Molecular mechanisms controlling grain size and weight and their biotechnological breeding applications in maize and other cereal crops J Adv Res. :doi: 10.1016/j.jare.2023.09.016.     Reference: September 24th, 2023
Gene Product: March 3rd, 2023
Variation: September 26th, 2019
Gene Model: September 26th, 2019
7 months agotrx1 thioredoxin1:
 
GRMZM2G166877
Long, Y et al. 2023. Molecular mechanisms controlling grain size and weight and their biotechnological breeding applications in maize and other cereal crops J Adv Res. :doi: 10.1016/j.jare.2023.09.016.     Reference: September 24th, 2023
Gene Product: August 31st, 2020
Gene Model: August 31st, 2020
7 months agomn6 miniature seed6:
6.05
GRMZM2G035526
Long, Y et al. 2023. Molecular mechanisms controlling grain size and weight and their biotechnological breeding applications in maize and other cereal crops J Adv Res. :doi: 10.1016/j.jare.2023.09.016.     Reference: September 24th, 2023
Gene Product: December 21st, 2020
Variation: December 21st, 2020
Gene Model: January 8th, 2020
7 months agolimtf4 LIM-transcription factor 4:
1.05
GRMZM2G099328
Long, Y et al. 2023. Molecular mechanisms controlling grain size and weight and their biotechnological breeding applications in maize and other cereal crops J Adv Res. :doi: 10.1016/j.jare.2023.09.016.   AT4G36860 (TAIR) Reference: September 24th, 2023
Gene Product: December 16th, 2019
Variation: May 31st, 2017
Gene Model: May 31st, 2017
7 months agomtl5 metallothionein5:
6.01
GRMZM2G430807
Leyla Nazari et al. 2023. Integrated transcriptomic meta-analysis and comparative artificial intelligence models in maize under biotic stress Sci. Rep.. :doi: 10.1038/s41598-023-42984-4.     Reference: September 23rd, 2023
Gene Product: September 1st, 2003
Gene Model: August 20th, 2018
7 months agomrpa3 multidrug resistance-associated protein3:
9.02
   Matthes, MS et al. 2023. Enhancement of developmental defects in the boron‐deficient maize mutant tassel‐less1 by reduced auxin levels J Plant Nutr Soil Sci. :doi: 10.1002/jpln.202300155.     Reference: September 23rd, 2023
Gene Product: July 11th, 2019
Variation: November 11th, 2009
7 months agoaas1 auxin amido synthetase1:
 
GRMZM2G068701
Matthes, MS et al. 2023. Enhancement of developmental defects in the boron‐deficient maize mutant tassel‐less1 by reduced auxin levels J Plant Nutr Soil Sci. :doi: 10.1002/jpln.202300155.     Reference: September 23rd, 2023
Gene Product: October 21st, 2019
Gene Model: October 21st, 2019
7 months agoprp9 pathogenesis-related protein9:
 
GRMZM2G075283
Leyla Nazari et al. 2023. Integrated transcriptomic meta-analysis and comparative artificial intelligence models in maize under biotic stress Sci. Rep.. :doi: 10.1038/s41598-023-42984-4.     Reference: September 23rd, 2023
Gene Product: December 12th, 2022
Gene Model: June 16th, 2020
7 months agomdh9 malate dehydrogenase9:
 
   Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: September 1st, 2003
7 months agomate39 multidrug and toxic compound extrusion39:
 
   Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: August 17th, 2015
7 months agoppr374 pentatricopeptide repeat protein374:
 
   Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: December 27th, 2016
7 months agoknox1 knotted related homeobox1:
1.01
GRMZM2G159431
Wesley Neher et al. 2023. The maize preligule band is subdivided into distinct domains with contrasting cellular properties prior to ligule outgrowth. Development. :doi: 10.1242/dev.201608.     Reference: September 22nd, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: March 7th, 2012
7 months agoask1 aspartate kinase1:
1.12
GRMZM2G024686
Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: September 1st, 2003
Variation: September 10th, 2010
Gene Model: October 21st, 2020
7 months agocsu582  :
7.00
GRMZM2G120652
Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Variation: September 1st, 2003
Gene Model: September 4th, 2018
7 months agocgs1 cystathionine gamma-synthase1:
9.04
   Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: September 1st, 2003
Variation: November 14th, 2012
7 months agoumc1137  :
9.07
GRMZM2G178106
Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Variation: September 1st, 2003
Gene Model: March 7th, 2018
7 months agoumc1254  :
1.04
GRMZM2G045135
He, KH et al. 2023. QTL mapping and transcriptome analysis identify candidate genes influencing water–nitrogen interaction in maize Crop J. :doi: 10.1016/j.cj.2023.09.001.     Reference: September 22nd, 2023
Variation: October 4th, 2016
Gene Model: October 4th, 2016
7 months agoabi33 ABI3-VP1-transcription factor 33:
 
GRMZM2G065538
Chang, YM et al. 2019. Comparative transcriptomics method to infer gene coexpression networks and its applications to maize and rice leaf transcriptomes. Proc Natl Acad Sci, USA. 116:3091-3099.     Reference: September 22nd, 2023
Gene Product: January 29th, 2022
Gene Model: March 23rd, 2019
7 months agoarftf8 ARF-transcription factor 8:
 
   Chang, YM et al. 2019. Comparative transcriptomics method to infer gene coexpression networks and its applications to maize and rice leaf transcriptomes. Proc Natl Acad Sci, USA. 116:3091-3099.     Reference: September 22nd, 2023
Gene Product: January 29th, 2022
7 months agorz672a(cgs)  :
1.04
   Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: September 1st, 2003
7 months agoaaap57 amino acid/auxin permease57:
8.08
GRMZM2G036448
He, KH et al. 2023. QTL mapping and transcriptome analysis identify candidate genes influencing water–nitrogen interaction in maize Crop J. :doi: 10.1016/j.cj.2023.09.001.     Reference: September 22nd, 2023
Gene Product: March 31st, 2021
Gene Model: September 24th, 2018
7 months agoakh1 aspartate kinase-homoserine dehydrogenase1:
4.05
GRMZM2G365423
Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: September 1st, 2003
Variation: September 10th, 2010
Gene Model: May 9th, 2018
7 months agoakh2 aspartate kinase homoserine dehydrogenase2:
2.06
   Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
7 months agoAY110365  :
10.04
GRMZM2G128319
Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Variation: July 29th, 2004
Gene Model: January 12th, 2018
7 months agosat1 serine acetyltransferase1:
8.06
GRMZM2G069203
Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: December 31st, 2014
Variation: March 19th, 2021
Gene Model: December 31st, 2014
7 months agosat2 serine acetyltransferase2:
1.02
GRMZM2G013430
Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: December 31st, 2014
Variation: July 21st, 2008
Gene Model: December 31st, 2014
7 months agosat3 serine acetyltransferase3:
6.06
GRMZM5G816110
Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: December 31st, 2014
Variation: March 19th, 2021
Gene Model: December 31st, 2014
7 months agoaprl1 adenosine 5'-phosphosulfate reductase-like1:
7.03
AC189750.4_FG004
Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: October 10th, 2017
Variation: January 13th, 2016
Gene Model: December 18th, 2015
7 months agoaprl2 adenosine 5'-phosphosulfate reductase-like2:
2.07
GRMZM2G087254
Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: October 10th, 2017
Variation: December 23rd, 2015
Gene Model: December 18th, 2015
7 months agoaprl3 adenosine 5'-phosphosulfate reductase-like3:
4.08
GRMZM2G042582
Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: October 10th, 2017
Variation: December 31st, 2015
Gene Model: December 18th, 2015
7 months agoaprl4 adenosine 5'-phosphosulfate reductase-like4:
5.07
GRMZM2G159535
Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: October 10th, 2017
Variation: December 23rd, 2015
Gene Model: December 18th, 2015
7 months agoaprl5 adenosine 5'-phosphosulfate reductase-like5:
1.07
GRMZM2G085249
Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: October 10th, 2017
Variation: December 23rd, 2015
Gene Model: December 18th, 2015
7 months agoaprl7 adenosine 5'-phosphosulfate reductase-like7:
3.05
GRMZM2G155073
Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: October 10th, 2017
Variation: December 30th, 2015
Gene Model: December 18th, 2015
7 months agoaprl8 adenosine 5'-phosphosulfate reductase-like8:
1.11
GRMZM2G046231
Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: October 10th, 2017
Variation: December 23rd, 2015
Gene Model: December 18th, 2015
7 months agoaprl9 adenosine 5'-phosphosulfate reductase-like9:
5.01
GRMZM2G025248
Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: October 10th, 2017
Variation: January 5th, 2016
Gene Model: December 18th, 2015
7 months agoelip2 early light inducible protein2:
 
GRMZM2G425728
Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: July 27th, 2013
Gene Model: July 27th, 2013
7 months agotrps4 trehalose-6-phosphate synthase4:
 
GRMZM2G008226
Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: October 3rd, 2020
Gene Model: September 15th, 2013
7 months agophos4 phosphate transporter4:
 
GRMZM2G064657
He, KH et al. 2023. QTL mapping and transcriptome analysis identify candidate genes influencing water–nitrogen interaction in maize Crop J. :doi: 10.1016/j.cj.2023.09.001.   AT1G68740 (TAIR) Reference: September 22nd, 2023
Gene Product: February 27th, 2016
Gene Model: February 27th, 2016
7 months agoapx9 ascorbate peroxidase9:
 
GRMZM2G460406
He, KH et al. 2023. QTL mapping and transcriptome analysis identify candidate genes influencing water–nitrogen interaction in maize Crop J. :doi: 10.1016/j.cj.2023.09.001.     Reference: September 22nd, 2023
Gene Product: October 15th, 2020
Gene Model: October 15th, 2020
7 months agosat4 serine acetyltransferase4:
 
GRMZM2G048740
Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: December 31st, 2014
Variation: March 19th, 2021
Gene Model: March 19th, 2021
7 months agocipk14 calcineurin B-like-interacting protein kinase14:
 
GRMZM2G125001
He, KH et al. 2023. QTL mapping and transcriptome analysis identify candidate genes influencing water–nitrogen interaction in maize Crop J. :doi: 10.1016/j.cj.2023.09.001.     Reference: September 22nd, 2023
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
7 months agoIDP603  :
1.11
GRMZM2G024267
Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Variation: March 31st, 2005
Gene Model: February 16th, 2019
7 months agoaprl6 adenosine 5'-phosphosulfate reductase6:
10.03
GRMZM2G141848
Veena Devi et al. 2023. Genetic and molecular understanding for the development of methionine-rich maize: a holistic approach Frontiers in Plant Science. 14:1249230.     Reference: September 22nd, 2023
Gene Product: October 10th, 2017
Variation: December 23rd, 2015
Gene Model: January 24th, 2015
7 months agosfp3 sulfate transporter3:
1.02
GRMZM2G042171
He, KH et al. 2023. QTL mapping and transcriptome analysis identify candidate genes influencing water–nitrogen interaction in maize Crop J. :doi: 10.1016/j.cj.2023.09.001.     Reference: September 22nd, 2023
Gene Product: May 8th, 2020
Gene Model: November 13th, 2017
7 months agowipf2 WAS/WASL interacting protein family, member 2:
 
   Zhang, ZH et al. 2023. ZmCCT regulates drought tolerance in maize by interacting with ZmFra a 1, E3 ligase ZmWIPF2 and auxin response factor ZmAux/IAA8. J Exp Bot. :doi: 10.1093/jxb/erad372.     Reference: September 21st, 2023
Gene Product: September 21st, 2023
7 months agozmm7 Zea mays MADS7:
7.03
   Shen, XM et al. 2023. Dynamic transcriptome landscape of developing maize ear Plant J. :doi: 10.1111/tpj.16457.     Reference: September 21st, 2023
Gene Product: September 10th, 2021
Variation: August 8th, 2008
7 months agozmm8 Zea mays MADS8:
9.06
GRMZM2G102161
Shen, XM et al. 2023. Dynamic transcriptome landscape of developing maize ear Plant J. :doi: 10.1111/tpj.16457.     Reference: September 21st, 2023
Gene Product: September 10th, 2021
Variation: September 10th, 2021
Gene Model: September 10th, 2021
7 months agoabph1 aberrant phyllotaxy1:
2.03
   Shen, XM et al. 2023. Dynamic transcriptome landscape of developing maize ear Plant J. :doi: 10.1111/tpj.16457.     Reference: September 21st, 2023
Gene Product: April 20th, 2009
Variation: July 4th, 2009
7 months agospx11 SPX domain-containing membrane protein11:
10.04
GRMZM2G018018
Luo, BW et al. 2023. Chromatin remodeling analysis reveals the RdDM pathway responds to low-phosphorus stress in maize. Plant J. :doi: 10.1111/tpj.16468.     Reference: September 21st, 2023
Gene Product: October 9th, 2021
Gene Model: July 21st, 2021
7 months agozmm14 Zea mays MADS14:
1.02
GRMZM2G099522
Shen, XM et al. 2023. Dynamic transcriptome landscape of developing maize ear Plant J. :doi: 10.1111/tpj.16457.     Reference: September 21st, 2023
Variation: August 28th, 2013
Gene Model: August 14th, 2017
7 months agozmm18 Zea mays MADS18:
8.03
GRMZM5G805387
Shen, XM et al. 2023. Dynamic transcriptome landscape of developing maize ear Plant J. :doi: 10.1111/tpj.16457.     Reference: September 21st, 2023
Gene Product: September 1st, 2003
Variation: August 27th, 2013
Gene Model: July 2nd, 2014
7 months agozmm29 Zea mays MADS29:
8.03
GRMZM2G152862
Shen, XM et al. 2023. Dynamic transcriptome landscape of developing maize ear Plant J. :doi: 10.1111/tpj.16457.     Reference: September 21st, 2023
Gene Product: September 1st, 2003
Variation: August 27th, 2013
Gene Model: July 2nd, 2014
7 months agoknox7 knotted related homeobox7:
4.09 - 4.10
GRMZM2G433591
Shen, XM et al. 2023. Dynamic transcriptome landscape of developing maize ear Plant J. :doi: 10.1111/tpj.16457.     Reference: September 21st, 2023
Gene Product: September 1st, 2003
Variation: August 12th, 2014
Gene Model: August 12th, 2014
7 months agozag4 zea agamous4:
3.03
GRMZM2G471089
Shen, XM et al. 2023. Dynamic transcriptome landscape of developing maize ear Plant J. :doi: 10.1111/tpj.16457.     Reference: September 21st, 2023
Gene Product: September 10th, 2021
Variation: September 1st, 2003
Gene Model: April 1st, 2019
7 months agobde1 bearded-ear1:
5.06
   Shen, XM et al. 2023. Dynamic transcriptome landscape of developing maize ear Plant J. :doi: 10.1111/tpj.16457.   AT2G45650 (TAIR) Reference: September 21st, 2023
Gene Product: April 1st, 2011
Variation: October 5th, 2009
7 months agozag5 zea agamous5:
4.06 - 4.06
   Shen, XM et al. 2023. Dynamic transcriptome landscape of developing maize ear Plant J. :doi: 10.1111/tpj.16457.   AT2G45650 (TAIR) Reference: September 21st, 2023
Gene Product: September 10th, 2021
Variation: October 7th, 2009
7 months agozag1 Zea AGAMOUS homolog1:
6.05
   Shen, XM et al. 2023. Dynamic transcriptome landscape of developing maize ear Plant J. :doi: 10.1111/tpj.16457.     Reference: September 21st, 2023
Gene Product: September 1st, 2003
Variation: January 2nd, 2015
7 months agotsh1 tassel sheath1:
6.07
   Shen, XM et al. 2023. Dynamic transcriptome landscape of developing maize ear Plant J. :doi: 10.1111/tpj.16457.     Reference: September 21st, 2023
Gene Product: November 14th, 2022
Variation: October 6th, 2011
7 months agoufg25  :
5.01
GRMZM2G094900
Shen, XM et al. 2023. Dynamic transcriptome landscape of developing maize ear Plant J. :doi: 10.1111/tpj.16457.     Reference: September 21st, 2023
Variation: October 15th, 2019
Gene Model: June 16th, 2018
7 months agozag6 agamous-like6:
 
GRMZM2G026223
Shen, XM et al. 2023. Dynamic transcriptome landscape of developing maize ear Plant J. :doi: 10.1111/tpj.16457.     Reference: September 21st, 2023
Variation: June 9th, 2014
Gene Model: June 9th, 2014
7 months agoapx10 ascorbate peroxidase10:
 
GRMZM2G120517
Shen, XM et al. 2023. Dynamic transcriptome landscape of developing maize ear Plant J. :doi: 10.1111/tpj.16457.     Reference: September 21st, 2023
Gene Product: October 15th, 2020
Gene Model: October 15th, 2020
7 months agospx3 SPX domain-containing membrane protein3:
 
GRMZM2G122108
Luo, BW et al. 2023. Chromatin remodeling analysis reveals the RdDM pathway responds to low-phosphorus stress in maize. Plant J. :doi: 10.1111/tpj.16468.     Reference: September 21st, 2023
Gene Product: October 9th, 2021
Gene Model: October 9th, 2021
7 months agospx10 SPX domain-containing membrane protein10:
 
GRMZM2G050329
Luo, BW et al. 2023. Chromatin remodeling analysis reveals the RdDM pathway responds to low-phosphorus stress in maize. Plant J. :doi: 10.1111/tpj.16468.     Reference: September 21st, 2023
Gene Product: October 9th, 2021
Gene Model: October 9th, 2021
7 months agospx6 SPX domain-containing membrane protein6:
 
GRMZM2G083655
Luo, BW et al. 2023. Chromatin remodeling analysis reveals the RdDM pathway responds to low-phosphorus stress in maize. Plant J. :doi: 10.1111/tpj.16468.     Reference: September 21st, 2023
Gene Product: October 9th, 2021
Gene Model: October 9th, 2021
7 months agoauxrp1 auxin-regulated protein1:
 
GRMZM2G063298
Liu, HH et al. 2023. Isolation and Identification of the Causal Agent of Top Rot and the Genetic Architecture of Resistance in Maize. Plant Dis. :PDIS02230276RE.     Reference: September 20th, 2023
Variation: October 30th, 2018
Gene Model: October 30th, 2018
7 months agosbt10 subtilisin10:
 
   Hou, QC et al. 2023. A systematic analysis of the subtilase gene family and expression and subcellular localization investigation of anther-specific members in maize Plant Physiol Biochem. 203:108041.     Reference: September 19th, 2023
Gene Product: November 11th, 2016
7 months agosbt20 subtilisin20:
 
   Hou, QC et al. 2023. A systematic analysis of the subtilase gene family and expression and subcellular localization investigation of anther-specific members in maize Plant Physiol Biochem. 203:108041.     Reference: September 19th, 2023
Gene Product: November 11th, 2016
7 months agosbt23 subtilisin23:
 
   Hou, QC et al. 2023. A systematic analysis of the subtilase gene family and expression and subcellular localization investigation of anther-specific members in maize Plant Physiol Biochem. 203:108041.     Reference: September 19th, 2023
Gene Product: November 11th, 2016
7 months agosbt37 subtilisin37:
 
   Hou, QC et al. 2023. A systematic analysis of the subtilase gene family and expression and subcellular localization investigation of anther-specific members in maize Plant Physiol Biochem. 203:108041.     Reference: September 19th, 2023
Gene Product: November 11th, 2016
7 months agoarftf22 ARF-transcription factor 22:
 
   Eliandro Espindula et al. 2023. Effects on gene expression during maize-Azospirillum interaction in the presence of a plant-specific inhibitor of indole-3-acetic acid production. Genet Mol Biol. 46:e20230100.     Reference: September 19th, 2023
Gene Product: January 29th, 2022
7 months agoarftf24 ARF-transcription factor 24:
 
   Eliandro Espindula et al. 2023. Effects on gene expression during maize-Azospirillum interaction in the presence of a plant-specific inhibitor of indole-3-acetic acid production. Genet Mol Biol. 46:e20230100.     Reference: September 19th, 2023
Gene Product: January 29th, 2022
Variation: March 3rd, 2023
7 months agotlc17 TRAM/LAG/CRN8 17:
8.08
GRMZM5G825226
Eliandro Espindula et al. 2023. Effects on gene expression during maize-Azospirillum interaction in the presence of a plant-specific inhibitor of indole-3-acetic acid production. Genet Mol Biol. 46:e20230100.     Reference: September 19th, 2023
Gene Product: November 4th, 2019
Gene Model: September 2nd, 2018
7 months agocyc1 cyclin1:
8.05
   Eliandro Espindula et al. 2023. Effects on gene expression during maize-Azospirillum interaction in the presence of a plant-specific inhibitor of indole-3-acetic acid production. Genet Mol Biol. 46:e20230100.     Reference: September 19th, 2023
Gene Product: June 26th, 2009
Variation: September 25th, 2007
7 months agocki4 cyclin-dependent kinase inhibitor4:
 
GRMZM2G358931
Eliandro Espindula et al. 2023. Effects on gene expression during maize-Azospirillum interaction in the presence of a plant-specific inhibitor of indole-3-acetic acid production. Genet Mol Biol. 46:e20230100.     Reference: September 19th, 2023
Gene Product: March 8th, 2017
Variation: May 26th, 2017
Gene Model: March 7th, 2017
7 months agotlc9 TRAM/LAG/CRN8 9:
 
AC210013.4_FG012
Eliandro Espindula et al. 2023. Effects on gene expression during maize-Azospirillum interaction in the presence of a plant-specific inhibitor of indole-3-acetic acid production. Genet Mol Biol. 46:e20230100.     Reference: September 19th, 2023
Gene Product: November 4th, 2019
Gene Model: November 4th, 2019
7 months agosaur41 small auxin up RNA41:
 
GRMZM2G432060
Eliandro Espindula et al. 2023. Effects on gene expression during maize-Azospirillum interaction in the presence of a plant-specific inhibitor of indole-3-acetic acid production. Genet Mol Biol. 46:e20230100.     Reference: September 19th, 2023
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
7 months agochlh2 Mg chelatase subunit H 2:
 
GRMZM2G105319
Zhou, Y et al. 2023. The G protein-coupled receptor COLD1 promotes chilling tolerance in maize during germination. Int J Biol Macromol. :doi: 10.1016/j.ijbiomac.2023.126877.     Reference: September 18th, 2023
Gene Product: June 11th, 2007
Gene Model: December 15th, 2021
7 months agokrp9 kinesin-related protein9:
6.05
GRMZM5G881464
Lawrence, CJ et al. 2002. J Mol Evol 54:42-53     Reference: September 1st, 2003
Gene Product: September 18th, 2023
Variation: September 1st, 2003
Gene Model: August 26th, 2018
7 months agoereb147 AP2-EREBP-transcription factor 147:
 
   Zhou, Y et al. 2023. The G protein-coupled receptor COLD1 promotes chilling tolerance in maize during germination. Int J Biol Macromol. :doi: 10.1016/j.ijbiomac.2023.126877.     Reference: September 18th, 2023
Variation: June 20th, 2022
7 months agocyc13 cyclin13:
4.07
GRMZM2G075117
Romero-Sanchez, D et al. 2023. Tissue and subcellular localization of CycD2 and KRPs are dissimilarly distributed by glucose and sucrose during early maize germination. Acta Histochem. 125:152092.     Reference: September 18th, 2023
Gene Product: June 26th, 2009
Variation: March 15th, 2017
Gene Model: March 15th, 2017
7 months agocki1 cyclin-dependent kinase inhibitor1:
1.08
GRMZM2G116885
Romero-Sanchez, D et al. 2023. Tissue and subcellular localization of CycD2 and KRPs are dissimilarly distributed by glucose and sucrose during early maize germination. Acta Histochem. 125:152092.     Reference: September 18th, 2023
Gene Product: March 8th, 2017
Variation: December 6th, 2016
Gene Model: December 6th, 2016
7 months agokrp1 kinesin-related protein1:
4.06
GRMZM2G129569
Gao, J et al. 2021. BMC Plant Biology 21:434     Reference: September 24th, 2021
Gene Product: September 18th, 2023
Gene Model: March 3rd, 2016
7 months agokrp3 kinesin-related protein3:
8.05
GRMZM2G173700
Lawrence, CJ et al. 2002. J Mol Evol 54:42-53     Reference: September 1st, 2003
Gene Product: September 18th, 2023
Gene Model: March 3rd, 2016
7 months agokrp4 kinesin-related protein4:
1.07
GRMZM2G320689
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: September 18th, 2023
Variation: April 22nd, 2006
Gene Model: March 3rd, 2016
7 months agokrp5 kinesin-related protein5:
6.04
GRMZM2G093391
Zhao, XQ et al. 2023. New insights into light spectral quality inhibits the plasticity elongation of maize mesocotyl and coleoptile during seed germination. Frontiers in Plant Science. 14:1152399.     Reference: April 3rd, 2023
Gene Product: September 18th, 2023
Gene Model: August 13th, 2014
7 months agokrp8 kinesin-related protein8:
4.08
GRMZM2G132371
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: September 18th, 2023
Variation: April 4th, 2015
Gene Model: April 4th, 2015
7 months agokrp11 kinesin-related protein11:
7.00
GRMZM2G436981
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: September 18th, 2023
Variation: April 9th, 2019
Gene Model: July 30th, 2015
7 months agokrp15 kinesin-related protein15:
10.04
GRMZM2G054418
Zhang, J et al. 2019. Physiol Plant pp.doi: 10.1111/ppl.13048     Reference: November 15th, 2019
Gene Product: September 18th, 2023
Variation: January 3rd, 2013
Gene Model: March 3rd, 2016
7 months agokrp16 kinesin-related protein16:
8.09
GRMZM2G124883
Lawrence, CJ et al. 2002. J Mol Evol 54:42-53     Reference: September 1st, 2003
Gene Product: September 18th, 2023
Variation: January 4th, 2013
Gene Model: March 3rd, 2016
7 months agocki2 cyclin-dependent kinase inhibitor2:
 
GRMZM2G037926
Romero-Sanchez, D et al. 2023. Tissue and subcellular localization of CycD2 and KRPs are dissimilarly distributed by glucose and sucrose during early maize germination. Acta Histochem. 125:152092.     Reference: September 18th, 2023
Gene Product: March 8th, 2017
Variation: May 17th, 2017
Gene Model: March 7th, 2017
7 months agomex1 maltose excess protein1:
 
GRMZM2G156356
Chen, GP et al. 2023. Improved photosynthetic performance under unilateral weak light conditions in a wide-narrow-row intercropping system is associated with altered sugar transport. J Exp Bot. :doi: 10.1093/jxb/erad370.     Reference: September 18th, 2023
Gene Product: December 15th, 2018
Gene Model: December 15th, 2018
7 months agoamyb3 beta-amylase3:
 
GRMZM2G347708
Chen, GP et al. 2023. Improved photosynthetic performance under unilateral weak light conditions in a wide-narrow-row intercropping system is associated with altered sugar transport. J Exp Bot. :doi: 10.1093/jxb/erad370.     Reference: September 18th, 2023
Gene Product: February 26th, 2021
Gene Model: December 15th, 2018
7 months agotrkin1 tandem repeat kinesin1:
 
   Dawe, RK. 2022. Chromosome Res pp.doi: 10.1007/s10577-022-09693-6     Reference: June 2nd, 2022
Gene Product: September 18th, 2023
7 months agokindr1 kinesin driver1:
 
   Swentowsky, KW et al. 2020. Genes Dev pp.doi: 10.1101/gad.340679.120     Reference: August 21st, 2020
Gene Product: September 18th, 2023
7 months agogeb2 glucan endo-1,3-beta-glucosidase homolog2:
 
GRMZM2G433365
Yu-Han Lin et al. 2023. Ustilago maydis PR-1-like protein has evolved two distinct domains for dual virulence activities Nat Commun. 14:5755.     Reference: September 16th, 2023
Gene Product: September 1st, 2003
Gene Model: April 4th, 2020
7 months agoccp4 cysteine protease4:
7.03
GRMZM2G108849
Yu-Han Lin et al. 2023. Ustilago maydis PR-1-like protein has evolved two distinct domains for dual virulence activities Nat Commun. 14:5755.     Reference: September 16th, 2023
Gene Product: October 11th, 2021
Gene Model: February 13th, 2014
7 months agoccp5 cysteine protease5:
6.01
GRMZM2G066326
Yu-Han Lin et al. 2023. Ustilago maydis PR-1-like protein has evolved two distinct domains for dual virulence activities Nat Commun. 14:5755.     Reference: September 16th, 2023
Gene Product: October 11th, 2021
Variation: March 31st, 2005
Gene Model: February 13th, 2014
7 months agorip1 ribosome-inactivating protein1:
8.03
GRMZM2G063536
Zhu, JM et al. 2023. PER-seq: a simple method to screen transcriptional regulation in plants. Plant Physiol. :doi: 10.1093/plphys/kiad495.     Reference: September 14th, 2023
Gene Product: September 1st, 2003
Variation: April 19th, 2005
Gene Model: April 18th, 2017
7 months agolip15 low temperature-induced protein15:
6.01
GRMZM2G448607
Zhu, JM et al. 2023. PER-seq: a simple method to screen transcriptional regulation in plants. Plant Physiol. :doi: 10.1093/plphys/kiad495.     Reference: September 14th, 2023
Gene Product: September 1st, 2003
Variation: March 14th, 2007
Gene Model: July 28th, 2016
7 months agozim21 ZIM-transcription factor 21:
 
   Zhu, JM et al. 2023. PER-seq: a simple method to screen transcriptional regulation in plants. Plant Physiol. :doi: 10.1093/plphys/kiad495.     Reference: September 14th, 2023
Gene Product: February 24th, 2021
7 months agolkrsdh1 lysine-ketoglutarate reductase/saccharopine dehydrogenase1:
4.07
   Zhu, JM et al. 2023. PER-seq: a simple method to screen transcriptional regulation in plants. Plant Physiol. :doi: 10.1093/plphys/kiad495.     Reference: September 14th, 2023
Gene Product: September 1st, 2003
Variation: April 18th, 2008
7 months agogz50 50kD gamma zein:
7.02
GRMZM2G138689
Zhu, JM et al. 2023. PER-seq: a simple method to screen transcriptional regulation in plants. Plant Physiol. :doi: 10.1093/plphys/kiad495.     Reference: September 14th, 2023
Gene Product: September 22nd, 2010
Variation: September 16th, 2010
Gene Model: November 21st, 2014
7 months agozp3 zein protein3:
 
GRMZM2G160739
Zhu, JM et al. 2023. PER-seq: a simple method to screen transcriptional regulation in plants. Plant Physiol. :doi: 10.1093/plphys/kiad495.     Reference: September 14th, 2023
Gene Product: September 1st, 2003
Gene Model: August 1st, 2016
7 months agoIDP336  :
7.01
GRMZM2G443668
Zhu, JM et al. 2023. PER-seq: a simple method to screen transcriptional regulation in plants. Plant Physiol. :doi: 10.1093/plphys/kiad495.     Reference: September 14th, 2023
Variation: March 31st, 2005
Gene Model: January 30th, 2019
7 months agotar3 tryptophan aminotransferase related3:
6.05
GRMZM2G141810
Zhu, JM et al. 2023. PER-seq: a simple method to screen transcriptional regulation in plants. Plant Physiol. :doi: 10.1093/plphys/kiad495.     Reference: September 14th, 2023
Gene Product: April 30th, 2011
Gene Model: August 22nd, 2013
7 months agopum9 pumilio9:
 
   Feng, WQ et al. 2023. Comprehensive Identification of the Pum Gene Family and Its Involvement in Kernel Development in Maize Int J Mol Sci. 24:14036.     Reference: September 13th, 2023
Gene Product: September 13th, 2023
7 months agoisca2 iron sulfur cluster assembly2:
 
   Wang, JL et al. 2023. Investigating the genetic basis of maize ear characteristics: a comprehensive genome-wide study utilizing high-throughput phenotypic measurement method and system. Frontiers in Plant Science. 14:1248446.     Reference: September 13th, 2023
Gene Product: August 12th, 2023
7 months agopum1 pumilio1:
 
   Feng, WQ et al. 2023. Comprehensive Identification of the Pum Gene Family and Its Involvement in Kernel Development in Maize Int J Mol Sci. 24:14036.     Reference: September 13th, 2023
Gene Product: September 13th, 2023
7 months agopum2 pumilio2:
 
   Feng, WQ et al. 2023. Comprehensive Identification of the Pum Gene Family and Its Involvement in Kernel Development in Maize Int J Mol Sci. 24:14036.     Reference: September 13th, 2023
Gene Product: September 13th, 2023
7 months agopum3 pumilio3:
 
   Feng, WQ et al. 2023. Comprehensive Identification of the Pum Gene Family and Its Involvement in Kernel Development in Maize Int J Mol Sci. 24:14036.     Reference: September 13th, 2023
Gene Product: September 13th, 2023
7 months agopum6 pumilio6:
 
   Feng, WQ et al. 2023. Comprehensive Identification of the Pum Gene Family and Its Involvement in Kernel Development in Maize Int J Mol Sci. 24:14036.     Reference: September 13th, 2023
Gene Product: September 13th, 2023
7 months agopum7 pumilio7:
 
   Feng, WQ et al. 2023. Comprehensive Identification of the Pum Gene Family and Its Involvement in Kernel Development in Maize Int J Mol Sci. 24:14036.     Reference: September 13th, 2023
Gene Product: September 13th, 2023
7 months agopum12 pumilio12:
 
   Feng, WQ et al. 2023. Comprehensive Identification of the Pum Gene Family and Its Involvement in Kernel Development in Maize Int J Mol Sci. 24:14036.     Reference: September 13th, 2023
Gene Product: September 13th, 2023
7 months agopum14 pumilio14:
 
   Feng, WQ et al. 2023. Comprehensive Identification of the Pum Gene Family and Its Involvement in Kernel Development in Maize Int J Mol Sci. 24:14036.     Reference: September 13th, 2023
Gene Product: September 13th, 2023
7 months agopum16 pumilio16:
 
   Feng, WQ et al. 2023. Comprehensive Identification of the Pum Gene Family and Its Involvement in Kernel Development in Maize Int J Mol Sci. 24:14036.     Reference: September 13th, 2023
Gene Product: September 13th, 2023
7 months agopum19 pumilio19:
 
   Feng, WQ et al. 2023. Comprehensive Identification of the Pum Gene Family and Its Involvement in Kernel Development in Maize Int J Mol Sci. 24:14036.     Reference: September 13th, 2023
Gene Product: September 13th, 2023
7 months agopum15 pumilio15:
8.05
GRMZM2G112769
Feng, WQ et al. 2023. Comprehensive Identification of the Pum Gene Family and Its Involvement in Kernel Development in Maize Int J Mol Sci. 24:14036.     Reference: September 13th, 2023
Gene Product: September 13th, 2023
Variation: September 1st, 2003
Gene Model: September 1st, 2019
7 months agopum5 pumilio5:
1.11
GRMZM2G114692
Feng, WQ et al. 2023. Comprehensive Identification of the Pum Gene Family and Its Involvement in Kernel Development in Maize Int J Mol Sci. 24:14036.     Reference: September 13th, 2023
Gene Product: September 13th, 2023
Gene Model: August 9th, 2021
7 months agofad8 fatty acid desaturase8:
1.03
GRMZM2G074401
Wang, JL et al. 2023. Investigating the genetic basis of maize ear characteristics: a comprehensive genome-wide study utilizing high-throughput phenotypic measurement method and system. Frontiers in Plant Science. 14:1248446.     Reference: September 13th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: January 29th, 2015
7 months agopdc3 pyruvate decarboxylase3:
1.03
   Wang, JL et al. 2023. Investigating the genetic basis of maize ear characteristics: a comprehensive genome-wide study utilizing high-throughput phenotypic measurement method and system. Frontiers in Plant Science. 14:1248446.     Reference: September 13th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
7 months agopum17 pumilio17:
10.03
GRMZM2G160279
Feng, WQ et al. 2023. Comprehensive Identification of the Pum Gene Family and Its Involvement in Kernel Development in Maize Int J Mol Sci. 24:14036.     Reference: September 13th, 2023
Gene Product: September 13th, 2023
Gene Model: December 15th, 2017
7 months agoagrr21  :
8.09
GRMZM2G302639
Wang, JL et al. 2023. Investigating the genetic basis of maize ear characteristics: a comprehensive genome-wide study utilizing high-throughput phenotypic measurement method and system. Frontiers in Plant Science. 14:1248446.     Reference: September 13th, 2023
Variation: September 25th, 2007
Gene Model: April 19th, 2017
7 months agopum4 pumilio4:
1.06
GRMZM2G449123
Feng, WQ et al. 2023. Comprehensive Identification of the Pum Gene Family and Its Involvement in Kernel Development in Maize Int J Mol Sci. 24:14036.     Reference: September 13th, 2023
Gene Product: September 13th, 2023
Gene Model: April 10th, 2021
7 months agosmk1 small kernel1:
 
GRMZM2G030148
Wang, JL et al. 2023. Investigating the genetic basis of maize ear characteristics: a comprehensive genome-wide study utilizing high-throughput phenotypic measurement method and system. Frontiers in Plant Science. 14:1248446.     Reference: September 13th, 2023
Gene Product: June 14th, 2014
Variation: June 14th, 2014
Gene Model: June 14th, 2014
7 months agodapat1 diaminopimelate aminotransferase1:
 
GRMZM2G010328
Wang, JL et al. 2023. Investigating the genetic basis of maize ear characteristics: a comprehensive genome-wide study utilizing high-throughput phenotypic measurement method and system. Frontiers in Plant Science. 14:1248446.     Reference: September 13th, 2023
Gene Product: October 21st, 2020
Gene Model: October 21st, 2020
7 months agopum13 pumilio13:
 
GRMZM2G704349
Feng, WQ et al. 2023. Comprehensive Identification of the Pum Gene Family and Its Involvement in Kernel Development in Maize Int J Mol Sci. 24:14036.     Reference: September 13th, 2023
Gene Product: September 13th, 2023
Gene Model: April 28th, 2021
7 months agopum11 pumilio11:
 
GRMZM2G038818
Feng, WQ et al. 2023. Comprehensive Identification of the Pum Gene Family and Its Involvement in Kernel Development in Maize Int J Mol Sci. 24:14036.     Reference: September 13th, 2023
Gene Product: September 13th, 2023
Gene Model: July 21st, 2021
7 months agopum10 pumilio10:
 
GRMZM2G049623
Feng, WQ et al. 2023. Comprehensive Identification of the Pum Gene Family and Its Involvement in Kernel Development in Maize Int J Mol Sci. 24:14036.     Reference: September 13th, 2023
Gene Product: September 13th, 2023
Gene Model: November 16th, 2021
7 months agoZm00001d029087  :
 
GRMZM2G011240
Du, K et al. 2023. Auxin and abscisic acid play important roles in promoting glucose metabolism of reactivated young kernels of maize (Zea mays L.) Physiol Plant. :doi: 10.1111/ppl.14019.     Reference: September 13th, 2023
Gene Product: October 25th, 2006
Gene Model: January 12th, 2022
7 months agopum18 pumilio18:
10.03
GRMZM2G006287
Feng, WQ et al. 2023. Comprehensive Identification of the Pum Gene Family and Its Involvement in Kernel Development in Maize Int J Mol Sci. 24:14036.     Reference: September 13th, 2023
Gene Product: September 13th, 2023
Gene Model: June 30th, 2020
7 months agoIDP3865  :
1.03
GRMZM2G135456
Wang, JL et al. 2023. Investigating the genetic basis of maize ear characteristics: a comprehensive genome-wide study utilizing high-throughput phenotypic measurement method and system. Frontiers in Plant Science. 14:1248446.     Reference: September 13th, 2023
Variation: March 31st, 2005
Gene Model: March 24th, 2021
7 months agopum8 pumilio8:
4.05
GRMZM2G035118
Feng, WQ et al. 2023. Comprehensive Identification of the Pum Gene Family and Its Involvement in Kernel Development in Maize Int J Mol Sci. 24:14036.     Reference: September 13th, 2023
Gene Product: September 13th, 2023
Variation: March 31st, 2005
Gene Model: May 22nd, 2021
7 months agouce12 ubiquitin conjugating enzyme12:
8.03
GRMZM2G015287
Wang, JL et al. 2023. Investigating the genetic basis of maize ear characteristics: a comprehensive genome-wide study utilizing high-throughput phenotypic measurement method and system. Frontiers in Plant Science. 14:1248446.     Reference: September 13th, 2023
Gene Product: December 19th, 2019
Variation: March 31st, 2005
Gene Model: July 25th, 2018
7 months agosi945020c09  :
5.03
GRMZM2G098370
Cai, Q et al. 2023. Multiomics comparative analysis of the maize large grain mutant tc19 identified pathways related to kernel development. BMC Genomics. 24:537.     Reference: September 12th, 2023
Variation: September 25th, 2007
Gene Model: August 27th, 2021
7 months agoabi5 ABI3-VP1-transcription factor 5:
 
   Singh, A et al. 2023. Drought stress in maize: stress perception to molecular response and strategies for its improvement. Funct Integr Genomics. 23:296.     Reference: September 12th, 2023
Gene Product: January 29th, 2022
7 months agowee1 wee1:
4.11
GRMZM5G878541
Singh, A et al. 2023. Drought stress in maize: stress perception to molecular response and strategies for its improvement. Funct Integr Genomics. 23:296.     Reference: September 12th, 2023
Variation: March 21st, 2017
Gene Model: March 17th, 2017
7 months agomrpa4 multidrug resistance-associated protein 4:
1.01
GRMZM5G820122
Singh, A et al. 2023. Drought stress in maize: stress perception to molecular response and strategies for its improvement. Funct Integr Genomics. 23:296.     Reference: September 12th, 2023
Gene Product: July 11th, 2019
Variation: July 12th, 2019
Gene Model: October 17th, 2016
7 months agopyl9 pyrabactin resistance-like protein9:
 
GRMZM2G133631
Singh, A et al. 2023. Drought stress in maize: stress perception to molecular response and strategies for its improvement. Funct Integr Genomics. 23:296.     Reference: September 12th, 2023
Gene Product: January 31st, 2021
Gene Model: April 21st, 2018
7 months agoprh28 protein phosphatase homolog28:
 
GRMZM2G108355
Singh, A et al. 2023. Drought stress in maize: stress perception to molecular response and strategies for its improvement. Funct Integr Genomics. 23:296.     Reference: September 12th, 2023
Gene Product: October 25th, 2021
Gene Model: October 25th, 2021
8 months agoprh141 protein phosphatase homolog141:
 
   Huan Wu et al. 2023. Genome-Wide Identification and Characterization of the PP2C Family from Zea mays and Its Role in Long-Distance Signaling. Plants. 12:3153.     Reference: September 11th, 2023
Gene Product: October 25th, 2021
8 months agoprh138 protein phosphatase homolog138:
 
   Huan Wu et al. 2023. Genome-Wide Identification and Characterization of the PP2C Family from Zea mays and Its Role in Long-Distance Signaling. Plants. 12:3153.     Reference: September 11th, 2023
Gene Product: October 25th, 2021
8 months agoiaa49 auxin-responsive Aux/IAA family member 49:
 
   Huan Wu et al. 2023. Genome-Wide Identification and Characterization of the PP2C Family from Zea mays and Its Role in Long-Distance Signaling. Plants. 12:3153.     Reference: September 11th, 2023
Gene Product: October 25th, 2021
8 months agoprh142 protein phosphatase homolog142:
 
   Huan Wu et al. 2023. Genome-Wide Identification and Characterization of the PP2C Family from Zea mays and Its Role in Long-Distance Signaling. Plants. 12:3153.     Reference: September 11th, 2023
Gene Product: October 25th, 2021
8 months agofha7 FHA-transcription factor 7:
 
   Huan Wu et al. 2023. Genome-Wide Identification and Characterization of the PP2C Family from Zea mays and Its Role in Long-Distance Signaling. Plants. 12:3153.     Reference: September 11th, 2023
Gene Product: October 25th, 2021
8 months agoprh143 protein phosphatase homolog143:
9.07
GRMZM2G004377
Huan Wu et al. 2023. Genome-Wide Identification and Characterization of the PP2C Family from Zea mays and Its Role in Long-Distance Signaling. Plants. 12:3153.     Reference: September 11th, 2023
Gene Product: October 25th, 2021
Variation: September 1st, 2003
Gene Model: March 8th, 2018
8 months agoprh140 protein phosphatase homolog140:
 
GRMZM2G063841
Huan Wu et al. 2023. Genome-Wide Identification and Characterization of the PP2C Family from Zea mays and Its Role in Long-Distance Signaling. Plants. 12:3153.     Reference: September 11th, 2023
Gene Product: January 31st, 2021
Gene Model: January 31st, 2021
8 months agoprh124 protein phosphatase homolog124:
 
GRMZM2G053722
Huan Wu et al. 2023. Genome-Wide Identification and Characterization of the PP2C Family from Zea mays and Its Role in Long-Distance Signaling. Plants. 12:3153.     Reference: September 11th, 2023
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
8 months agoprh83 protein phosphatase homolog83:
 
GRMZM2G377904
Huan Wu et al. 2023. Genome-Wide Identification and Characterization of the PP2C Family from Zea mays and Its Role in Long-Distance Signaling. Plants. 12:3153.     Reference: September 11th, 2023
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
8 months agoprh87 protein phosphatase homolog87:
 
GRMZM2G407623
Huan Wu et al. 2023. Genome-Wide Identification and Characterization of the PP2C Family from Zea mays and Its Role in Long-Distance Signaling. Plants. 12:3153.     Reference: September 11th, 2023
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
8 months agoprh139 protein phosphatase homolog139:
5.03
GRMZM2G071087
Huan Wu et al. 2023. Genome-Wide Identification and Characterization of the PP2C Family from Zea mays and Its Role in Long-Distance Signaling. Plants. 12:3153.     Reference: September 11th, 2023
Gene Product: October 25th, 2021
Gene Model: May 9th, 2020
8 months agopr1 red aleurone1:
5.05
GRMZM2G025832
Anirban, A et al. 2023. Mol Genet Genomics. doi: 10.1007/s00438-023-02060-y     Reference: September 8th, 2023
Gene Product: June 20th, 2018
Variation: June 10th, 2011
Gene Model: September 22nd, 2011
8 months agonrat1 nramp aluminum transporter1:
 
GRMZM2G069198
Rabby, MG et al. 2023. In Silico Functional Prediction, and Expression Analysis in Response to Drought Stress of Natural Resistance-Associated Macrophage Protein (NRAMP) Gene Family in Maize J Data Mining Genomics Proteomics. 14:1000302.     Reference: September 8th, 2023
Gene Product: August 17th, 2015
Variation: August 17th, 2015
Gene Model: August 17th, 2015
8 months agonrat2 nramp aluminum transporter2:
 
GRMZM2G168747
Rabby, MG et al. 2023. In Silico Functional Prediction, and Expression Analysis in Response to Drought Stress of Natural Resistance-Associated Macrophage Protein (NRAMP) Gene Family in Maize J Data Mining Genomics Proteomics. 14:1000302.     Reference: September 8th, 2023
Gene Product: August 17th, 2015
Variation: May 5th, 2023
Gene Model: May 1st, 2020
8 months agonrat4 nramp aluminum transporter4:
 
GRMZM2G028036
Rabby, MG et al. 2023. In Silico Functional Prediction, and Expression Analysis in Response to Drought Stress of Natural Resistance-Associated Macrophage Protein (NRAMP) Gene Family in Maize J Data Mining Genomics Proteomics. 14:1000302.     Reference: September 8th, 2023
Gene Product: August 17th, 2015
Gene Model: March 5th, 2021
8 months agonrat6 nramp aluminum transporter6:
 
GRMZM2G025680
Rabby, MG et al. 2023. In Silico Functional Prediction, and Expression Analysis in Response to Drought Stress of Natural Resistance-Associated Macrophage Protein (NRAMP) Gene Family in Maize J Data Mining Genomics Proteomics. 14:1000302.     Reference: September 8th, 2023
Gene Product: August 17th, 2015
Gene Model: April 27th, 2022
8 months agonrat7 nramp aluminum transporter7:
 
GRMZM2G366919
Rabby, MG et al. 2023. In Silico Functional Prediction, and Expression Analysis in Response to Drought Stress of Natural Resistance-Associated Macrophage Protein (NRAMP) Gene Family in Maize J Data Mining Genomics Proteomics. 14:1000302.     Reference: September 8th, 2023
Gene Product: August 17th, 2015
Gene Model: June 6th, 2022
8 months agoprd4 putative recombination initiation defect4:
 
   Guo, SJ et al. 2023. Using High-Throughput Phenotyping Analysis to Decipher the Phenotypic Components and Genetic Architecture of Maize Seedling Salt Tolerance Genes. 14:1771.   AT1G01690 (TAIR) Reference: September 7th, 2023
Variation: October 12th, 2022
8 months agoago18a argonaute18a:
2.07
   Kelliher, T; Walbot, V. 2014. Plant J pp.DOI: 10.1111/tpj.12414     Reference: September 7th, 2023
Gene Product: August 12th, 2016
8 months agohm1 Helminthosporium carbonum susceptibility1:
1.06
   Choudhary, M et al. 2023. Conventional and Molecular Breeding for Genetic Improvement of Maize (Zea mays L.); In: Advanced Crop Improvement Volume 2, Aamir Raina, Mohammad Rafiq Wani, Rafiul Amin Laskar, Nasya Tomlekova, Samiullah Khan (Editors), Springer Nature :317–350.     Reference: September 7th, 2023
Gene Product: May 23rd, 2014
Variation: September 1st, 2003
8 months agobnl8.45a  :
2.01
GRMZM2G084252
Guo, SJ et al. 2023. Using High-Throughput Phenotyping Analysis to Decipher the Phenotypic Components and Genetic Architecture of Maize Seedling Salt Tolerance Genes. 14:1771.     Reference: September 7th, 2023
Variation: September 1st, 2003
Gene Model: April 21st, 2021
8 months agoago5b argonaute5b:
2.09
GRMZM2G059033
Kelliher, T; Walbot, V. 2014. Plant J pp.DOI: 10.1111/tpj.12414     Reference: September 7th, 2023
Gene Product: August 12th, 2016
Gene Model: April 5th, 2022
8 months agoufg75b  :
10.07
GRMZM2G120136
Guo, SJ et al. 2023. Using High-Throughput Phenotyping Analysis to Decipher the Phenotypic Components and Genetic Architecture of Maize Seedling Salt Tolerance Genes. 14:1771.     Reference: September 7th, 2023
Variation: October 24th, 2018
Gene Model: October 24th, 2018
8 months agospr1 signal recognition particle receptor homolog1:
1.00
GRMZM2G060296
Guo, SJ et al. 2023. Using High-Throughput Phenotyping Analysis to Decipher the Phenotypic Components and Genetic Architecture of Maize Seedling Salt Tolerance Genes. 14:1771.     Reference: September 7th, 2023
Gene Product: September 1st, 2003
Variation: April 14th, 2011
Gene Model: July 28th, 2016
8 months agosmk2 small kernel2:
4.10
GRMZM2G023528
Lu, CC et al. 2022. Multiple forms of vitamin B6 regulate salt tolerance by balancing ROS and abscisic acid levels in maize root. Stress Biol. 2:39.     Reference: September 7th, 2023
Gene Product: April 14th, 2017
Variation: April 14th, 2017
Gene Model: April 14th, 2017
8 months agoago108 argonaute108:
5.01
GRMZM2G461936
Kelliher, T; Walbot, V. 2014. Plant J pp.DOI: 10.1111/tpj.12414     Reference: September 7th, 2023
Gene Product: August 12th, 2016
Variation: September 11th, 2007
Gene Model: August 13th, 2016
8 months agoppr152 pentatricopeptide repeat protein152:
 
GRMZM2G050697
Guo, SJ et al. 2023. Using High-Throughput Phenotyping Analysis to Decipher the Phenotypic Components and Genetic Architecture of Maize Seedling Salt Tolerance Genes. 14:1771.     Reference: September 7th, 2023
Gene Product: April 29th, 2013
Gene Model: April 26th, 2013
8 months agodmag4 DNA-3-methyladenine glycosylase4:
 
GRMZM2G113228
Kelliher, T; Walbot, V. 2014. Plant J pp.DOI: 10.1111/tpj.12414     Reference: September 7th, 2023
Gene Product: January 1st, 2022
Gene Model: February 13th, 2014
8 months agocl14668_1  :
4.09
GRMZM2G037185
Guo, SJ et al. 2023. Using High-Throughput Phenotyping Analysis to Decipher the Phenotypic Components and Genetic Architecture of Maize Seedling Salt Tolerance Genes. 14:1771.     Reference: September 7th, 2023
Variation: September 25th, 2007
Gene Model: August 24th, 2021
8 months agonl4 narrow leaf4:
4.01
GRMZM2G070553
Guo, SJ et al. 2023. Using High-Throughput Phenotyping Analysis to Decipher the Phenotypic Components and Genetic Architecture of Maize Seedling Salt Tolerance Genes. 14:1771.     Reference: September 7th, 2023
Gene Product: May 19th, 2021
Variation: May 19th, 2021
Gene Model: April 11th, 2020
8 months agoago1d argonaute1d:
 
GRMZM2G361518
Kelliher, T; Walbot, V. 2014. Plant J pp.DOI: 10.1111/tpj.12414   AT1G48410 (TAIR) Reference: September 7th, 2023
Gene Product: August 12th, 2016
Gene Model: February 6th, 2016
8 months agoago1b argonaute1b:
 
AC209206.3_FG011
Kelliher, T; Walbot, V. 2014. Plant J pp.DOI: 10.1111/tpj.12414   AT1G48410 (TAIR) Reference: September 7th, 2023
Gene Product: August 12th, 2016
Gene Model: February 6th, 2016
8 months agoago1a argonaute1a:
 
GRMZM2G441583
Kelliher, T; Walbot, V. 2014. Plant J pp.DOI: 10.1111/tpj.12414   AT1G48410 (TAIR) Reference: September 7th, 2023
Gene Product: August 12th, 2016
Gene Model: February 6th, 2016
8 months agodmc1 disrupted meiotic cDNA homolog1:
 
GRMZM2G109618
Kelliher, T; Walbot, V. 2014. Plant J pp.DOI: 10.1111/tpj.12414     Reference: September 7th, 2023
Variation: May 12th, 2017
Gene Model: January 27th, 2017
8 months agosro1 similar to RCD one1:
 
GRMZM2G122543
Tian, T et al. 2023. CIMBL55: a repository for maize drought resistance alleles. Stress Biol. 3:13.     Reference: September 7th, 2023
Gene Product: September 7th, 2018
Variation: November 20th, 2020
Gene Model: August 10th, 2018
8 months agordr1 RNA-dependent RNA polymerase1:
 
GRMZM2G481730
Kelliher, T; Walbot, V. 2014. Plant J pp.DOI: 10.1111/tpj.12414     Reference: September 7th, 2023
Gene Product: August 8th, 2006
Gene Model: June 20th, 2019
8 months agoppr365 pentatricopeptide repeat protein365:
6.06
AC218148.2_FG008
Guo, SJ et al. 2023. Using High-Throughput Phenotyping Analysis to Decipher the Phenotypic Components and Genetic Architecture of Maize Seedling Salt Tolerance Genes. 14:1771.     Reference: September 7th, 2023
Gene Product: December 27th, 2016
Gene Model: December 31st, 2019
8 months agoAY112175  :
1.11
   Guo, SJ et al. 2023. Using High-Throughput Phenotyping Analysis to Decipher the Phenotypic Components and Genetic Architecture of Maize Seedling Salt Tolerance Genes. 14:1771.     Reference: September 7th, 2023
Variation: September 25th, 2007
8 months agoago101 argonaute101:
9.03
AC189879.3_FG003
Kelliher, T; Walbot, V. 2014. Plant J pp.DOI: 10.1111/tpj.12414     Reference: September 7th, 2023
Gene Product: August 12th, 2016
Variation: September 11th, 2007
Gene Model: January 30th, 2015
8 months agoarftf13 ARF-transcription factor 13:
 
   Hongyan Xing et al. 2011. Genome-wide identification and expression profiling of auxin response factor (ARF) gene family in maize. BMC Genomics. 12:178.     Reference: September 6th, 2023
Gene Product: January 29th, 2022
8 months agoarftf14 ARF-transcription factor 14:
 
   Hongyan Xing et al. 2011. Genome-wide identification and expression profiling of auxin response factor (ARF) gene family in maize. BMC Genomics. 12:178.     Reference: September 6th, 2023
Gene Product: January 29th, 2022
8 months agoarftf23 ARF-transcription factor 23:
 
   Hongyan Xing et al. 2011. Genome-wide identification and expression profiling of auxin response factor (ARF) gene family in maize. BMC Genomics. 12:178.     Reference: September 6th, 2023
Gene Product: January 29th, 2022
Variation: July 7th, 2017
8 months agoarftf26 ARF-transcription factor 26:
 
   Hongyan Xing et al. 2011. Genome-wide identification and expression profiling of auxin response factor (ARF) gene family in maize. BMC Genomics. 12:178.     Reference: September 6th, 2023
Gene Product: January 29th, 2022
Variation: July 7th, 2017
8 months agoarftf31 ARF-transcription factor 31:
 
   Hongyan Xing et al. 2011. Genome-wide identification and expression profiling of auxin response factor (ARF) gene family in maize. BMC Genomics. 12:178.     Reference: September 6th, 2023
Gene Product: January 29th, 2022
Variation: August 7th, 2016
8 months agoarftf39 ARF-transcription factor 39:
 
   Hongyan Xing et al. 2011. Genome-wide identification and expression profiling of auxin response factor (ARF) gene family in maize. BMC Genomics. 12:178.     Reference: September 6th, 2023
Gene Product: January 29th, 2022
8 months agotu1 tunicate1:
4.08 - 4.08
GRMZM2G370777
Xie, P et al. 2023. Evolution of cereal floral architecture and threshability Trends Plant Sci. :doi: 10.1016/j.tplants.2023.08.003.     Reference: September 5th, 2023
Gene Product: June 12th, 2012
Variation: February 3rd, 2011
Gene Model: May 9th, 2012
8 months agozap1 zea apetala homolog1:
2.10
   Xie, P et al. 2023. Evolution of cereal floral architecture and threshability Trends Plant Sci. :doi: 10.1016/j.tplants.2023.08.003.     Reference: September 5th, 2023
Variation: February 2nd, 2011
8 months agozag2 Zea AGAMOUS homolog2:
3.05 - 3.05
   Xie, P et al. 2023. Evolution of cereal floral architecture and threshability Trends Plant Sci. :doi: 10.1016/j.tplants.2023.08.003.     Reference: September 5th, 2023
Gene Product: September 10th, 2021
Variation: October 22nd, 2014
8 months agofht2 flavanone 3-hydroxylase2:
1.04
GRMZM2G703582
Xu, YF et al. 2023. Increasing Fusarium verticillioides resistance in maize by genomics-assisted breeding: Methods, progress, and prospects Crop J. :doi: 10.1016/j.cj.2023.07.004.     Reference: September 5th, 2023
Gene Product: June 8th, 2012
Gene Model: June 7th, 2017
8 months agomha6 membrane H(+)-ATPase6:
 
GRMZM2G008122
Ming Ju et al. 2017. Dissecting the genetic architecture of Fusarium verticillioides seed rot resistance in maize by combining QTL mapping and genome-wide association analysis. Sci. Rep.. 7:46446.     Reference: September 5th, 2023
Gene Product: September 1st, 2003
Gene Model: January 10th, 2020
8 months agoaga1 alkaline galactosidase1:
 
GRMZM2G340656
Chen, Y et al. 2023. Genes and pathways correlated with heat stress responses and heat tolerance in maize kernels. Frontiers in Plant Science. 14:1228213.     Reference: September 4th, 2023
Gene Product: March 1st, 2018
Gene Model: March 1st, 2018
8 months agoLOC103640768  :
 
   Tripathi, D et al. 2023. Ribonucleotide and R-Loop Damage in Plastid DNA and Mitochondrial DNA during Maize Development Plants. 12:3161.   AT2G25100 (TAIR) Reference: September 2nd, 2023
Gene Product: September 2nd, 2023
8 months agoLOC103640774  :
 
   Tripathi, D et al. 2023. Ribonucleotide and R-Loop Damage in Plastid DNA and Mitochondrial DNA during Maize Development Plants. 12:3161.   AT2G25100 (TAIR) Reference: September 2nd, 2023
Gene Product: September 2nd, 2023
8 months agoTIDP3662  :
5.04
GRMZM2G005998
  AT2G39440 (TAIR) Gene Product: September 2nd, 2023
Gene Model: May 14th, 2020
8 months agosi660065b07  :
2.04
GRMZM2G148211
    Gene Product: September 2nd, 2023
Gene Model: August 23rd, 2022
8 months agoAY110479  :
1.11
   Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Variation: September 25th, 2007
8 months agomyb33 MYB-transcription factor 33:
1.07
   Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Variation: September 25th, 2007
8 months agocsu904  :
7.04
GRMZM2G102786
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Variation: September 1st, 2003
Gene Model: February 6th, 2019
8 months agopza01735  :
2.06
   Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: August 12th, 2018
8 months agomyb42 myb transcription factor 42:
4.09
   Hou, QC et al. 2022. Plants 11:627   LOC_Os08g43550 (MSU/TIGR) Reference: September 1st, 2023
Gene Product: February 16th, 2011
Variation: November 7th, 2017
8 months agodhar1 dehydroascorbate reductase like1:
8.05
GRMZM5G855672
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: March 28th, 2013
Gene Model: April 1st, 2013
8 months agomets3 methionine synthase3:
1.09
GRMZM2G165747
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: September 1st, 2003
Gene Model: July 12th, 2017
8 months agopao4 polyamine oxidase4:
10.07
GRMZM2G150248
Hassani, SB et al. 2023. Response to Cadmium Toxicity: Orchestration of Polyamines and microRNAs in Maize Plant. 12:1991.     Reference: September 1st, 2023
Gene Product: June 10th, 2020
Gene Model: January 25th, 2018
8 months agohb2 hemoglobin2:
6.06
GRMZM2G168898
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: February 20th, 2018
Gene Model: May 15th, 2014
8 months agoIDP8938  :
2.01
GRMZM2G150496
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: April 18th, 2023
Gene Model: April 21st, 2021
8 months agonaat1 nicotianamine aminotransferase1:
4.09
GRMZM2G096958
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: January 18th, 2022
Variation: April 9th, 2015
Gene Model: April 9th, 2015
8 months agoin1 intensifier1:
7.02
   Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Variation: September 1st, 2003
8 months agodhar3 dehydroascorbate reductase like3:
6.01
GRMZM2G035502
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: March 28th, 2013
Gene Model: March 28th, 2013
8 months agogcsh1 glycine cleavage system protein H1:
10.03
GRMZM2G399183
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: October 2nd, 2015
8 months agotua1 alpha tubulin1:
1.10
GRMZM2G153292
Lian, T et al. 2022. Int J Mol Sci 23:1708     Reference: September 1st, 2023
Gene Product: September 1st, 2003
Variation: August 9th, 2013
Gene Model: October 24th, 2013
8 months agotua2 alpha tubulin2:
1.10
GRMZM2G153292
Lian, T et al. 2022. Int J Mol Sci 23:1708     Reference: September 1st, 2023
Gene Product: September 1st, 2003
Variation: August 9th, 2013
Gene Model: May 8th, 2015
8 months agomets1 methionine synthase1:
1.06
GRMZM2G149751
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: September 1st, 2003
Gene Model: February 9th, 2020
8 months agofad7 fatty acid desaturase7:
9.06
GRMZM2G128971
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: September 1st, 2003
Variation: September 25th, 2007
Gene Model: August 23rd, 2014
8 months agoocl1 outer cell layer1:
3.04
   Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: September 1st, 2003
Variation: April 12th, 2005
8 months agoumc1320  :
3.08
GRMZM5G831142
Hao, YF et al. 2023. Genetic and Transcriptomic Dissection of Host Defense to Goss's Bacterial Wilt and Leaf Blight of Maize. G3. :doi: 10.1093/g3journal/jkad197.     Reference: September 1st, 2023
Variation: September 1st, 2003
Gene Model: April 1st, 2018
8 months agofer1 ferritin1:
4.08
   Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: July 28th, 2021
Variation: December 4th, 2012
8 months agofer2 ferritin homolog2:
10.00
   Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: July 28th, 2021
Variation: December 4th, 2012
8 months agoumc1390  :
4.05
   Lian, T et al. 2022. Int J Mol Sci 23:1708     Reference: September 1st, 2023
Variation: September 1st, 2003
8 months agomate1 multidrug and toxic compound extrusion1:
 
GRMZM5G870170
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: August 17th, 2015
Variation: March 19th, 2013
Gene Model: March 19th, 2013
8 months agoabi49 ABI3-VP1-transcription factor 49:
 
   Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: January 29th, 2022
8 months agosbp7 SBP-transcription factor 7:
 
   Lian, T et al. 2022. Int J Mol Sci 23:1708     Reference: September 1st, 2023
Gene Product: July 5th, 2019
8 months agodrts4 bifunctional dihydrofolate reductase-thymidylate synthase4:
4.03
GRMZM2G139880
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: April 12th, 2020
8 months agopao1 polyamine oxidase1:
10.03
GRMZM2G034152
Hassani, SB et al. 2023. Response to Cadmium Toxicity: Orchestration of Polyamines and microRNAs in Maize Plant. 12:1991.     Reference: September 1st, 2023
Gene Product: June 10th, 2020
Variation: October 7th, 2015
Gene Model: October 7th, 2015
8 months agoglpdh2 glycerol-3-phosphate dehydrogenase2:
8.08
GRMZM2G090747
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: July 12th, 2018
Variation: May 17th, 2016
Gene Model: May 17th, 2016
8 months agosbe3 starch branching enzyme3:
8.06
GRMZM2G005298
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: June 6th, 2011
Variation: June 1st, 2011
Gene Model: September 23rd, 2018
8 months agoabi47 ABI3-VP1-transcription factor 47:
4.08
GRMZM2G125596
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: January 29th, 2022
Gene Model: June 10th, 2018
8 months agomthfr2 methylenetetrahydrofolate reductase2:
5.00
GRMZM2G034182
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: August 28th, 2012
Gene Model: August 28th, 2012
8 months agoumc2236  :
1.06
GRMZM2G017110
Lian, T et al. 2022. Int J Mol Sci 23:1708     Reference: September 1st, 2023
Variation: June 16th, 2017
Gene Model: June 16th, 2017
8 months agoumc2311  :
6.01
GRMZM2G036908
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Variation: September 25th, 2007
Gene Model: August 18th, 2018
8 months agoole3 oleosin3:
5.01 - 5.04
   Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
8 months agotub7 beta tubulin7:
9.03
   Lian, T et al. 2022. Int J Mol Sci 23:1708     Reference: September 1st, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
8 months agothr1 threonine synthase1:
3.08
GRMZM2G050570
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: September 1st, 2003
Variation: March 25th, 2015
Gene Model: March 25th, 2015
8 months agopap22 purple acid phosphatase22:
1.08
GRMZM2G174549
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
8 months agodrts3 bifunctional dihydrofolate reductase-thymidylate synthase3:
2.08
   Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: September 1st, 2003
8 months agogldh1 galactono lactone dehydrogenase1:
2.05
GRMZM2G469969
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: March 29th, 2013
Gene Model: March 29th, 2013
8 months agofold1 bifunctional protein FolD1:
2.05
GRMZM2G130790
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: January 15th, 2021
Gene Model: March 20th, 2020
8 months agoadcl2 aminodeoxychorismate lyase2:
3.00
GRMZM2G087103
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: January 14th, 2021
Gene Model: March 24th, 2020
8 months agobm6 brown midrib6:
 
   Leonard, AL et al. 2022. The maize brown midrib6 (bm6) mutation encodes a functional GTP Cyclohydrolase1 Maydica. 66:17.   AT3G07270 (TAIR) Reference: September 1st, 2023
Gene Product: January 14th, 2021
Variation: September 1st, 2023
8 months agodhar2 dehydroascorbate reductase like2:
 
GRMZM2G005710
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: March 28th, 2013
Gene Model: August 14th, 2017
8 months agonas8 nicotianamine synthase8:
 
GRMZM2G312481
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: July 26th, 2013
Gene Model: July 26th, 2013
8 months agonas10 nicotianamine synthase10:
 
GRMZM2G034956
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: July 26th, 2013
Gene Model: July 26th, 2013
8 months agoppck1 phosphoenolpyruvate carboxylase kinase1:
 
GRMZM2G178074
Hao, YF et al. 2023. Genetic and Transcriptomic Dissection of Host Defense to Goss's Bacterial Wilt and Leaf Blight of Maize. G3. :doi: 10.1093/g3journal/jkad197.     Reference: September 1st, 2023
Gene Product: September 1st, 2003
Gene Model: August 7th, 2014
8 months agoftcl1 5-formyltetrahydrofolate cyclo-ligase1:
 
GRMZM2G001904
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: August 20th, 2014
Gene Model: August 20th, 2014
8 months agofgp2 folylpolyglutamate synthetase2:
 
GRMZM5G869779
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: December 17th, 2014
Variation: December 17th, 2014
Gene Model: December 17th, 2014
8 months agomate3 multidrug and toxic compound extrusion3:
 
GRMZM2G163154
Hou, QC et al. 2022. Plants 11:627   LOC_Os03g11734 (MSU/TIGR) Reference: September 1st, 2023
Gene Product: August 17th, 2015
Gene Model: August 17th, 2015
8 months agoss5 starch synthase5:
 
GRMZM2G130043
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: October 14th, 2016
Gene Model: December 5th, 2015
8 months agotom3 transporter of mugineic acid3:
 
GRMZM2G141081
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: September 23rd, 2016
Gene Model: September 23rd, 2016
8 months agoglpdh3 glycerol-3-phosphate dehydrogenase3:
 
GRMZM2G173195
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: July 12th, 2018
Gene Model: July 11th, 2018
8 months agoglpdh4 glycerol-3-phosphate dehydrogenase4:
 
   Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: July 12th, 2018
8 months agoglpdh5 glycerol-3-phosphate dehydrogenase5:
 
GRMZM2G063258
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: July 12th, 2018
Gene Model: July 11th, 2018
8 months agoglpdh6 glycerol-3-phosphate dehydrogenase6:
 
GRMZM2G446108
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: July 12th, 2018
Gene Model: July 11th, 2018
8 months agoss7 starch synthase7:
 
   Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: October 14th, 2016
8 months agodgati2 diacylglycerol acyltransferase-typeI2:
 
GRMZM2G130749
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: August 12th, 2018
Gene Model: July 23rd, 2018
8 months agoadcs1 aminodeoxychorismate synthase1:
 
GRMZM2G416386
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: January 14th, 2021
Gene Model: October 23rd, 2018
8 months agopap2 purple acid phosphatase2:
 
GRMZM2G134054
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: November 21st, 2018
Gene Model: November 21st, 2018
8 months agogpat14 glycerol-3-phosphate acyltransferase14:
 
GRMZM2G123987
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: March 25th, 2019
Gene Model: March 25th, 2019
8 months agogpat19 glycerol-3-phosphate acyltransferase19:
 
GRMZM2G165681
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: March 25th, 2019
Gene Model: April 25th, 2019
8 months agozip8 zinc-regulated, iron-regulated transporter-like protein8:
 
GRMZM2G093276
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: June 5th, 2019
Gene Model: June 5th, 2019
8 months agohma2 heavy metal ATPase2:
 
GRMZM2G099191
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: October 23rd, 2019
Gene Model: October 23rd, 2019
8 months agoss3 starch synthase3:
 
GRMZM2G121612
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: October 14th, 2016
Gene Model: March 20th, 2020
8 months agoss2 starch synthase3:
 
GRMZM5G897776
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: October 14th, 2016
Gene Model: March 20th, 2020
8 months agosaur24 small auxin up RNA24:
 
GRMZM2G479596
Hao, YF et al. 2023. Genetic and Transcriptomic Dissection of Host Defense to Goss's Bacterial Wilt and Leaf Blight of Maize. G3. :doi: 10.1093/g3journal/jkad197.     Reference: September 1st, 2023
Gene Product: November 26th, 2021
Gene Model: April 3rd, 2020
8 months agomips2 myo-inositol phosphate synthase2:
 
GRMZM2G004528
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: July 13th, 2019
Gene Model: May 8th, 2020
8 months agopao5 polyamine oxidase5:
 
GRMZM2G035994
Hassani, SB et al. 2023. Response to Cadmium Toxicity: Orchestration of Polyamines and microRNAs in Maize Plant. 12:1991.     Reference: September 1st, 2023
Gene Product: June 10th, 2020
Gene Model: June 9th, 2020
8 months agonye2 non-yellowing2:
 
GRMZM2G379563
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: August 26th, 2020
Gene Model: August 26th, 2020
8 months agogpp1 galactose-1-phosphate phosphatase1:
 
GRMZM2G034417
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: October 21st, 2020
Gene Model: October 21st, 2020
8 months agofad1 fatty acid desaturase1:
 
GRMZM2G064701
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: November 27th, 2020
Gene Model: November 27th, 2020
8 months agogch2 GTP cyclohydrolase2:
 
GRMZM2G106376
Leonard, AL et al. 2022. The maize brown midrib6 (bm6) mutation encodes a functional GTP Cyclohydrolase1 Maydica. 66:17.     Reference: September 1st, 2023
Gene Product: January 14th, 2021
Gene Model: January 14th, 2021
8 months agodhna1 dihydroneopterin aldolase1:
 
GRMZM2G015588
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: January 14th, 2021
Gene Model: January 14th, 2021
8 months agodhna2 dihydroneopterin aldolase2:
 
GRMZM2G095579
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: January 14th, 2021
Gene Model: January 14th, 2021
8 months agohppk1 hydroxymethyldihydropterin pyrophosphokinase1:
 
GRMZM2G095806
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: January 14th, 2021
Gene Model: January 14th, 2021
8 months agoadcl3 aminodeoxychorismate lyase3:
 
GRMZM2G069596
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: January 14th, 2021
Gene Model: January 14th, 2021
8 months agodhfs2 dihydrofolate synthetase2:
 
GRMZM2G169481
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: January 14th, 2021
Gene Model: January 14th, 2021
8 months agodrts1 bifunctional dihydrofolate reductase-thymidylate synthase1:
 
GRMZM2G072608
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: September 1st, 2003
Gene Model: January 14th, 2021
8 months agodrts2 bifunctional dihydrofolate reductase-thymidylate synthase2:
 
GRMZM2G421493
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: September 1st, 2003
Gene Model: January 14th, 2021
8 months agogcsh2 glycine cleavage system protein H2:
 
GRMZM2G010321
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: September 1st, 2003
Gene Model: January 14th, 2021
8 months agogcsh3 glycine cleavage system protein H3:
 
GRMZM2G051208
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: September 1st, 2003
Gene Model: January 14th, 2021
8 months agogcsh4 glycine cleavage system protein H4:
 
GRMZM2G020288
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: September 1st, 2003
Gene Model: January 14th, 2021
8 months agofold3 bifunctional protein FolD3:
 
AC233922.1_FG005
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: January 15th, 2021
Gene Model: January 14th, 2021
8 months agoftd1 formyltetrahydrofolate deformylase1:
 
GRMZM2G168281
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: January 14th, 2021
Gene Model: January 14th, 2021
8 months agofths1 formate--tetrahydrofolate ligase1:
 
GRMZM5G824944
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: January 14th, 2021
Gene Model: January 14th, 2021
8 months agoftcl2 5-formyltetrahydrofolate cyclo-ligase2:
 
GRMZM5G807835
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: August 20th, 2014
Gene Model: January 14th, 2021
8 months agofad9 fatty acid desaturase9:
 
GRMZM2G129209
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: November 27th, 2020
Gene Model: May 7th, 2021
8 months agosaur78 small auxin up RNA78:
 
GRMZM2G354209
Hao, YF et al. 2023. Genetic and Transcriptomic Dissection of Host Defense to Goss's Bacterial Wilt and Leaf Blight of Maize. G3. :doi: 10.1093/g3journal/jkad197.     Reference: September 1st, 2023
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
8 months agofad16 fatty acid desaturase16:
 
GRMZM2G161792
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: January 6th, 2022
Gene Model: January 6th, 2022
8 months agofad18 fatty acid desaturase18:
 
GRMZM2G174766
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: January 6th, 2022
Gene Model: January 6th, 2022
8 months agofad3 fatty acid desaturase3:
 
GRMZM2G354558
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: November 27th, 2020
Gene Model: January 6th, 2022
8 months agotom8 transporter of mugineic acid8:
 
GRMZM2G456923
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: September 23rd, 2016
Gene Model: January 18th, 2022
8 months agofold2 bifunctional protein FolD2:
8.05
GRMZM2G150485
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: January 15th, 2021
Gene Model: September 1st, 2019
8 months agonas1 nicotianamine synthase1:
9.04
GRMZM2G385200
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: July 26th, 2013
Variation: March 19th, 2008
Gene Model: July 26th, 2013
8 months agogaldh1 galactose dehydrogenase1:
10.03
GRMZM2G126002
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: October 21st, 2020
Gene Model: June 29th, 2020
8 months agogme1 GDP-mannose-3'5'-epimerase1:
1.08
GRMZM2G124434
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: October 21st, 2020
Variation: March 31st, 2005
Gene Model: February 14th, 2019
8 months agoshmt1 serine hydroxymethyltransferase1:
1.10
GRMZM2G135283
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: September 1st, 2003
Variation: March 31st, 2005
Gene Model: February 13th, 2019
8 months agoIDP871  :
1.02
AC166636.1_FG008
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Variation: March 31st, 2005
Gene Model: February 11th, 2019
8 months agoammt1 aminomethyltransferase1:
2.02
GRMZM5G876898
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: January 14th, 2021
Variation: March 31st, 2005
Gene Model: February 18th, 2019
8 months agohmt1 homocysteine S-methyltransferase 1:
 
   Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: July 19th, 2004
Variation: June 3rd, 2017
8 months agozmm27 Zea mays MADS27:
2.07
GRMZM2G129034
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Variation: February 2nd, 2011
Gene Model: July 2nd, 2014
8 months agonas3 nicotianamine synthase 3:
1.09
GRMZM2G478568
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: July 26th, 2013
Variation: March 19th, 2008
Gene Model: July 26th, 2013
8 months agogme2 GDP-mannose-3'5'-epimerase2:
4.02
GRMZM2G138907
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: October 21st, 2020
Variation: September 25th, 2007
Gene Model: April 11th, 2020
8 months agoadcl1 aminodeoxychorismate lyase1:
1.04
GRMZM2G108416
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: January 14th, 2021
Gene Model: February 7th, 2020
8 months agonaat4 nicotianamine aminotransferase4:
5.04
GRMZM2G412604
Hou, QC et al. 2022. Plants 11:627     Reference: September 1st, 2023
Gene Product: January 18th, 2022
Gene Model: May 17th, 2020
8 months agodhfs1 dihydrofolate synthetase1:
10.03
GRMZM2G304915
Lian, T et al. 2015. BMC Plant Biology 15:204     Reference: September 1st, 2023
Gene Product: January 14th, 2021
Gene Model: June 30th, 2020
8 months agogly1 glycine1:
5.03
GRMZM2G078143
Lian, T et al. 2022. Int J Mol Sci 23:1708     Reference: September 1st, 2023
Gene Product: September 1st, 2003
Variation: May 26th, 2015
Gene Model: May 26th, 2015
8 months agorida1 reactive Intermediate deaminase A homolog1:
 
   Niehaus, T et al. 2014. Arabidopsis and maize RidA proteins preempt reactive enamine/imine damage to branched-chain amino acid biosynthesis in plastids. Plant Cell. 26:3010-22.   At3g20390 (TAIR) Reference: August 31st, 2023
Gene Product: August 31st, 2023
8 months agoGRMZM2G155323  :
 
   Niehaus, T et al. 2014. Arabidopsis and maize RidA proteins preempt reactive enamine/imine damage to branched-chain amino acid biosynthesis in plastids. Plant Cell. 26:3010-22.     Reference: August 31st, 2023
Gene Product: August 31st, 2023
8 months agoZm00001eb404340  :
 
   Niehaus, T et al. 2014. Arabidopsis and maize RidA proteins preempt reactive enamine/imine damage to branched-chain amino acid biosynthesis in plastids. Plant Cell. 26:3010-22.   AT5G65780 (TAIR)
LOC_Os03g01600 (MSU/TIGR)
Reference: August 31st, 2023
Gene Product: August 31st, 2023
8 months agopco098993  :
1.05
GRMZM2G071208
Niehaus, T et al. 2014. Arabidopsis and maize RidA proteins preempt reactive enamine/imine damage to branched-chain amino acid biosynthesis in plastids. Plant Cell. 26:3010-22.     Reference: August 31st, 2023
Gene Product: August 31st, 2023
Gene Model: February 8th, 2020
8 months agopia1 postmeiotic irregular anther1:
 
   Yujie Lian et al. 2023. Postmeiotic irregular anther1 (PIA1) is required for anther cuticle and pollen exine development in maize (Zea mays L.) Plant Breed. :doi: 10.1111/pbr.13139.     Reference: August 30th, 2023
Variation: August 30th, 2023
8 months agoopr2 12-oxo-phytodienoic acid reductase2:
8.05
GRMZM2G000236
Huang, PC et al. 2023. Maize OPR2 and LOX10 Mediate Defense against Fall Armyworm and Western Corn Rootworm by Tissue-Specific Regulation of Jasmonic Acid and Ketol Metabolism Genes. 14:1732.     Reference: August 30th, 2023
Gene Product: September 3rd, 2010
Variation: January 30th, 2023
Gene Model: November 27th, 2013
8 months agoglk58 G2-like-transcription factor 58:
6.06
GRMZM2G117854
Ruidong Sun et al. 2023. Identification of QTLs and their candidate genes for the number of maize tassel branches in F2 from two higher generation sister lines using QTL mapping and RNA-seq analysis. Frontiers in Plant Science. 14:1202755.     Reference: August 29th, 2023
Gene Product: July 25th, 2017
Variation: July 11th, 2019
Gene Model: February 2nd, 2018
8 months agoIDP2396b  :
6.06
GRMZM2G129031
Ruidong Sun et al. 2023. Identification of QTLs and their candidate genes for the number of maize tassel branches in F2 from two higher generation sister lines using QTL mapping and RNA-seq analysis. Frontiers in Plant Science. 14:1202755.     Reference: August 29th, 2023
Variation: March 31st, 2005
Gene Model: July 3rd, 2021
8 months agocki7 cyclin-dependent kinase inhibitor7:
 
GRMZM2G343769
Li, ZY et al. 2023. Genomic analysis of a new heterotic maize group reveals key loci for pedigree breeding. Frontiers in Plant Science. 14:1213675.     Reference: August 28th, 2023
Gene Product: March 8th, 2017
Gene Model: March 7th, 2017
8 months agoincw5 invertase cell wall5:
 
GRMZM2G095725
Li, ZY et al. 2023. Genomic analysis of a new heterotic maize group reveals key loci for pedigree breeding. Frontiers in Plant Science. 14:1213675.   LOC_Os04g33740 (MSU/TIGR) Reference: August 28th, 2023
Gene Product: June 12th, 2018
Variation: August 16th, 2017
Gene Model: August 16th, 2017
8 months agoZm00001d042795  :
 
   Xi Wang et al. 2023. QTG-Miner aids rapid dissection of the genetic base of tassel branch number in maize Nat Commun. 14:5232.     Reference: August 26th, 2023
Variation: August 26th, 2023
8 months agoIDP2392  :
10.04
GRMZM2G155543
Xi Wang et al. 2023. QTG-Miner aids rapid dissection of the genetic base of tassel branch number in maize Nat Commun. 14:5232.     Reference: August 26th, 2023
Variation: March 31st, 2005
Gene Model: January 1st, 2018
8 months agopfk5 phosphofructose kinase5:
 
   Yuanyuan Wang et al. 2023. Heat-dependent postpollination limitations on maize pollen tube growth and kernel sterility. Plant Cell Environ. :doi: 10.1111/pce.14702.     Reference: August 25th, 2023
Gene Product: August 12th, 2016
8 months agopfk7 phosphofructose kinase7:
3.07
GRMZM5G879882
Yuanyuan Wang et al. 2023. Heat-dependent postpollination limitations on maize pollen tube growth and kernel sterility. Plant Cell Environ. :doi: 10.1111/pce.14702.     Reference: August 25th, 2023
Gene Product: August 12th, 2016
Gene Model: May 16th, 2021
8 months agopfk6 phosphofructose kinase6:
3.02
GRMZM2G132069
Yuanyuan Wang et al. 2023. Heat-dependent postpollination limitations on maize pollen tube growth and kernel sterility. Plant Cell Environ. :doi: 10.1111/pce.14702.     Reference: August 25th, 2023
Gene Product: August 12th, 2016
Gene Model: November 28th, 2021
8 months agoeif4 eucaryotic initiation factor4:
5.03
GRMZM2G116034
Laura Cuyas et al. 2023. Identification and interest of molecular markers to monitor plant Pi status. BMC Plant Biology. 23:401.     Reference: August 24th, 2023
Gene Product: September 1st, 2003
Variation: February 24th, 2014
Gene Model: January 15th, 2015
8 months agohcf102 high chlorophyll fluorescence102:
8.04 - 8.09
   Miles, CD. Personal communication     Reference: August 24th, 2023
Variation: September 1st, 2003
8 months agohcf49 high chlorophyll fluorescence49:
 
   Miles, CD. Personal communication     Reference: August 24th, 2023
Variation: September 1st, 2003
8 months agospx2 SPX domain-containing membrane protein2:
 
GRMZM2G024705
Laura Cuyas et al. 2023. Identification and interest of molecular markers to monitor plant Pi status. BMC Plant Biology. 23:401.     Reference: August 24th, 2023
Gene Product: October 9th, 2021
Gene Model: October 9th, 2021
8 months agogsr2 glutathione reductase2:
5.08
GRMZM5G806449
Saghir Abbas et al. 2023. Exogenously applied sodium nitroprusside alleviates nickel toxicity in maize by regulating antioxidant activities and defense-related gene expression. Physiol Plant. 175:e13985.     Reference: August 24th, 2023
Gene Product: September 1st, 2003
Gene Model: May 25th, 2020
8 months agocrs1 chloroplast RNA splicing1:
1.07
GRMZM2G078412
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   AT5G16180 (TAIR)
LOC_Os08g27150 (MSU/TIGR)
Os08g0360100 (Gramene)
Reference: August 23rd, 2023
Gene Product: July 22nd, 2009
Variation: October 13th, 2021
Gene Model: July 14th, 2011
8 months agocrs2 chloroplast RNA splicing2:
8.02
GRMZM2G132021
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   AT5G16140 (TAIR)
LOC_Os01g04130 (MSU/TIGR)
Os01g0132800 (Gramene)
Reference: August 23rd, 2023
Gene Product: December 24th, 2015
Variation: August 17th, 2011
Gene Model: July 15th, 2011
8 months agobnlg609  :
5.06
GRMZM2G076313
Lihua Jia et al. 2023. Genome-Wide Identification and Functional Analysis of Nitrate Transporter Genes (NPF, NRT2 and NRT3) in Maize Int J Mol Sci. 24:12941.     Reference: August 23rd, 2023
Variation: September 1st, 2003
Gene Model: July 12th, 2018
8 months agocsy1 chloroplast SecY-1:
5.03
   Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   AT2G18710 (TAIR)
LOC_Os08g15460 (MSU/TIGR)
Os08g0254500 (Gramene)
Reference: August 23rd, 2023
Gene Product: July 22nd, 2009
Variation: July 23rd, 2011
8 months agopgl104 polygalacturonase104:
1.11
GRMZM2G092758
Yangyang Li et al. 2023. Coordinated regulation of sucrose and lignin metabolism for arrested silk elongation under drought stress in maize Environ Exp Bot. :doi: 10.1016/j.envexpbot.2023.105482.     Reference: August 23rd, 2023
Gene Product: October 4th, 2021
Gene Model: April 10th, 2021
8 months agoakr1 aldo/keto reductase AKR1:
6.01
GRMZM2G052812
Mehak Sethi et al. 2023. Unravelling the genetic framework associated with grain quality and yield-related traits in maize (Zea mays L.). 14:1248697.     Reference: August 23rd, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: December 24th, 2015
8 months agohcf1 high chlorophyll fluorescence1:
2.05 - 2.10
   Miles, D. 1994. Maydica 39:35-45     Reference: August 23rd, 2023
Variation: September 1st, 2003
8 months agohcf101 high chlorophyll fluorescence101:
7.02 - 7.06
   Miles, D. 1994. Maydica 39:35-45     Reference: August 23rd, 2023
Variation: September 1st, 2003
8 months agohcf103 high chlorophyll fluorescence103:
7.02 - 7.06
   Miles, D. 1994. Maydica 39:35-45     Reference: August 23rd, 2023
Variation: September 1st, 2003
8 months agohcf104 high chlorophyll fluorescence104:
7.02 - 7.06
   Miles, D. 1994. Maydica 39:35-45     Reference: August 23rd, 2023
Variation: September 1st, 2003
8 months agohcf106 high chlorophyll fluorescence106:
2.04
   Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016     Reference: August 23rd, 2023
Gene Product: September 1st, 2003
Variation: December 17th, 2012
8 months agohcf108 high chlorophyll fluorescence108:
5.01
   Miles, D. 1994. Maydica 39:35-45     Reference: August 23rd, 2023
Variation: September 1st, 2003
8 months agohcf19 high chlorophyll fluorescence19:
3.06
   Miles, D. 1994. Maydica 39:35-45     Reference: August 23rd, 2023
Variation: May 19th, 2006
8 months agohcf2 high chlorophyll fluorescence2:
1.06 - 1.08
   Miles, D. 1994. Maydica 39:35-45     Reference: August 23rd, 2023
Variation: September 1st, 2003
8 months agohcf3 high chlorophyll fluorescence3:
1.03
GRMZM2G121960
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016     Reference: August 23rd, 2023
Gene Product: December 1st, 2015
Variation: August 19th, 2020
Gene Model: December 1st, 2015
8 months agohcf38 high chlorophyll fluorescence38:
5.04 - 5.09
   Miles, D. 1994. Maydica 39:35-45     Reference: August 23rd, 2023
Variation: May 19th, 2006
8 months agohcf42 high chlorophyll fluorescence42:
9.03 - 9.08
   Miles, D. 1994. Maydica 39:35-45     Reference: August 23rd, 2023
Variation: September 1st, 2003
8 months agohcf44 high chlorophyll fluorescence44:
1.06 - 1.12
   Miles, D. 1994. Maydica 39:35-45     Reference: August 23rd, 2023
Variation: September 1st, 2003
8 months agohcf50 high chlorophyll fluorescence50:
1.06 - 1.07
   Miles, D. 1994. Maydica 39:35-45     Reference: August 23rd, 2023
Variation: September 1st, 2003
8 months agohcf6 high chlorophyll fluorescence6:
1.00 - 1.05
   Miles, D. 1994. Maydica 39:35-45     Reference: August 23rd, 2023
Variation: September 1st, 2003
8 months agowtf1 what's this factor1:
8.03
GRMZM2G403797
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   AT4G01037 (TAIR)
LOC_Os05g49610 (MSU/TIGR)
Os05g0571100 (Gramene)
Reference: August 23rd, 2023
Gene Product: July 21st, 2009
Variation: May 9th, 2009
Gene Model: July 15th, 2011
8 months agowhy1 WHIRLY-transcription factor 1:
6.01
GRMZM2G155662
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   AT1G14410 (TAIR)
LOC_Os06g05350 (MSU/TIGR)
Os06g0145800 (Gramene)
Reference: August 23rd, 2023
Gene Product: November 18th, 2021
Variation: July 1st, 2013
Gene Model: July 14th, 2011
8 months agoppr5 pentatricopeptide repeat 5:
4.08
GRMZM2G025409
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   AT4G39620 (TAIR)
LOC_Os02g51480 (MSU/TIGR)
Os02g0750400 (Gramene)
Reference: August 23rd, 2023
Gene Product: September 15th, 2012
Variation: August 5th, 2011
Gene Model: July 14th, 2011
8 months agoij1 iojap striping1:
7.03
   Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016     Reference: August 23rd, 2023
Gene Product: September 1st, 2003
Variation: November 28th, 2012
8 months agooy1 oil yellow1:
10.02
   Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016     Reference: August 23rd, 2023
Gene Product: June 8th, 2007
Variation: March 17th, 2011
8 months agosm1 salmon silks1:
6.05 - 6.05
GRMZM2G031311
Yangyang Li et al. 2023. Coordinated regulation of sucrose and lignin metabolism for arrested silk elongation under drought stress in maize Environ Exp Bot. :doi: 10.1016/j.envexpbot.2023.105482.     Reference: August 23rd, 2023
Gene Product: May 26th, 2016
Variation: May 26th, 2016
Gene Model: May 26th, 2016
8 months agow2 white seedling2:
10.07 - 10.07
GRMZM2G480171
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016     Reference: August 23rd, 2023
Gene Product: September 19th, 2012
Variation: June 8th, 2019
Gene Model: September 19th, 2012
8 months agolpe1 leaf permease1:
1.09
GRMZM5G858417
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016     Reference: August 23rd, 2023
Gene Product: September 1st, 2003
Variation: March 29th, 2012
Gene Model: February 17th, 2015
8 months agonpf13 nitrate transporter/peptide transporter family13:
2.08
GRMZM2G127134
Lihua Jia et al. 2023. Genome-Wide Identification and Functional Analysis of Nitrate Transporter Genes (NPF, NRT2 and NRT3) in Maize Int J Mol Sci. 24:12941.     Reference: August 23rd, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: January 29th, 2022
8 months agocsr1 chloroplast srp54 receptor1:
10.06
   Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   AT2G45770 (TAIR)
LOC_Os01g72800 (MSU/TIGR)
Os01g0958100 (Gramene)
Reference: August 23rd, 2023
Gene Product: July 23rd, 2009
Variation: July 23rd, 2009
8 months agopsa1 photosystemI1:
6.02
GRMZM2G100976
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016     Reference: August 23rd, 2023
Variation: November 10th, 2020
Gene Model: April 4th, 2017
8 months agoptac12 plastid transcriptionally active chromosome 12 homolog:
 
GRMZM5G897926
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   At2g34640 (TAIR) Reference: August 23rd, 2023
Gene Product: December 4th, 2015
Variation: January 21st, 2015
Gene Model: January 21st, 2015
8 months agoera1 E. coli Ras-like protein1:
8.03 - 8.03
GRMZM2G158024
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016     Reference: August 23rd, 2023
Variation: November 10th, 2020
Gene Model: February 17th, 2015
8 months agopet2 photosynthetic electron transport2:
 
GRMZM2G087063
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   At5g52110 (TAIR)
LOC_Os10g37840 (MSU/TIGR)
Os10g0522500 (Gramene)
Reference: August 23rd, 2023
Gene Product: May 11th, 2021
Variation: August 19th, 2020
Gene Model: April 19th, 2011
8 months agopet3 photosynthetic electron transport3:
 
GRMZM2G177145
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   AT1G59840 (TAIR)
LOC_Os04g55690 (MSU/TIGR)
Reference: August 23rd, 2023
Gene Product: May 11th, 2021
Variation: September 1st, 2003
Gene Model: September 6th, 2011
8 months agocrp1 chloroplast RNA processing1:
7.03 - 7.06
   Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   AT5G42310 (TAIR)
LOC_Os07g36390 (MSU/TIGR)
Os07g0548300 (Gramene)
Reference: August 23rd, 2023
Gene Product: December 27th, 2016
Variation: July 23rd, 2009
8 months agocps1 chloroplast protein synthesis1:
1.06 - 1.12
GRMZM2G156565
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016     Reference: August 23rd, 2023
Gene Product: October 3rd, 2011
Variation: September 15th, 2011
Gene Model: September 6th, 2011
8 months agotha1 thylakoid assembly1:
3.04
GRMZM5G880102
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   AT4G01800 (TAIR)
LOC_Os01g21820 (MSU/TIGR)
Os01g0321300 (Gramene)
Reference: August 23rd, 2023
Gene Product: July 22nd, 2009
Variation: June 25th, 2004
Gene Model: April 3rd, 2020
8 months agorh4 RNA helicase4:
 
GRMZM2G163072
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   At5g26742 (TAIR)
LOC_Os03g61220 (MSU/TIGR)
Os03g0827700 (Gramene)
Reference: August 23rd, 2023
Gene Product: December 13th, 2022
Variation: November 10th, 2020
Gene Model: May 17th, 2012
8 months agomterf4 mTERF-domain protein4:
 
   Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   At4g02990 (TAIR) Reference: August 23rd, 2023
Gene Product: December 15th, 2015
Variation: February 14th, 2014
8 months agoprc3 proteasome component3:
1.01
GRMZM2G472167
Lihua Jia et al. 2023. Genome-Wide Identification and Functional Analysis of Nitrate Transporter Genes (NPF, NRT2 and NRT3) in Maize Int J Mol Sci. 24:12941.     Reference: August 23rd, 2023
Gene Product: September 1st, 2003
Variation: April 28th, 2011
Gene Model: May 7th, 2013
8 months agoprpo1 protoporphyrinogen IX oxidase1:
8.01
GRMZM2G039396
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016     Reference: August 23rd, 2023
Gene Product: December 17th, 2014
Variation: December 30th, 2015
Gene Model: December 1st, 2014
8 months agoepr4 endochitinase precursor4:
 
GRMZM2G129189
Yangyang Li et al. 2023. Coordinated regulation of sucrose and lignin metabolism for arrested silk elongation under drought stress in maize Environ Exp Bot. :doi: 10.1016/j.envexpbot.2023.105482.     Reference: August 23rd, 2023
Gene Product: May 31st, 2021
Variation: July 14th, 2016
Gene Model: July 14th, 2016
8 months agocps5 chloroplast protein synthesis5:
8.02
GRMZM2G566786
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016     Reference: August 23rd, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: April 12th, 2017
8 months agopsb1 photosystem II1:
6.01 - 6.08
GRMZM2G102838
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016     Reference: August 23rd, 2023
Variation: July 8th, 2015
Gene Model: February 17th, 2015
8 months agoppr2 pentatricopeptide repeat 2:
7.00
GRMZM2G341621
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   AT3G06430 (TAIR)
LOC_Os03g19650 (MSU/TIGR)
Os03g0309800 (Gramene)
Reference: August 23rd, 2023
Gene Product: July 23rd, 2009
Variation: July 23rd, 2009
Gene Model: July 14th, 2011
8 months agocaf2 crs2 associated factor2:
3.04
AC199526.5_FG003
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   AT1G23400 (TAIR)
LOC_Os01g21990 (MSU/TIGR)
Os01g0323300 (Gramene)
Reference: August 23rd, 2023
Gene Product: July 23rd, 2009
Variation: July 22nd, 2009
Gene Model: July 14th, 2011
8 months agocaf1 crs2 associated factor1:
7.02
GRMZM2G173923
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   AT2G20020 (TAIR)
LOC_Os01g31110 (MSU/TIGR)
Os01g0495900 (Gramene)
Reference: August 23rd, 2023
Gene Product: July 23rd, 2009
Variation: July 23rd, 2009
Gene Model: February 17th, 2015
8 months agoccs1 C-type cytochrome synthesis protein1:
1.10
GRMZM2G038301
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016     Reference: August 23rd, 2023
Variation: August 9th, 2021
Gene Model: August 9th, 2021
8 months agoycf54 ycf54 homolog:
1.04
GRMZM2G010196
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016     Reference: August 23rd, 2023
Variation: November 10th, 2020
Gene Model: February 17th, 2015
8 months agohcf148 high chlorophyll fluorescence148:
3.06
GRMZM2G002165
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016     Reference: August 23rd, 2023
Variation: November 25th, 2020
Gene Model: February 17th, 2015
8 months agotha4 thylakoid assembly4:
1.08
GRMZM2G472651
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   AT5G28750 (TAIR)
LOC_Os03g43430 (MSU/TIGR)
Os03g0634000 (Gramene)
Reference: August 23rd, 2023
Gene Product: July 22nd, 2009
Variation: August 13th, 2011
Gene Model: July 14th, 2011
8 months agotha5 thylakoid assembly5:
 
GRMZM2G300408
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   AT4G14870 (TAIR)
LOC_Os08g30830 (MSU/TIGR)
Os08g0399050 (Gramene)
Reference: August 23rd, 2023
Gene Product: April 21st, 2011
Variation: August 26th, 2010
Gene Model: April 12th, 2011
8 months agotha8 thylakoid assembly8:
2.06
AC217965.2_FG012
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016     Reference: August 23rd, 2023
Variation: May 9th, 2009
Gene Model: July 15th, 2011
8 months agocf1 camouflage1:
5.04
   Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   AT5G08280 (TAIR)
LOC_Os02g0168800 (MSU/TIGR)
Reference: August 23rd, 2023
Gene Product: December 8th, 2014
Variation: September 9th, 2009
8 months agocrp4 chloroplast RNA processing4:
 
GRMZM2G377761
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   AT3G03710 (TAIR)
LOC_Os07g07310 (MSU/TIGR)
Os07g0168000 (Gramene)
Reference: August 23rd, 2023
Gene Product: April 12th, 2011
Variation: April 21st, 2011
Gene Model: April 12th, 2011
8 months agoatp4 ATP synthase4:
 
GRMZM2G128665
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016     Reference: August 23rd, 2023
Gene Product: December 30th, 2015
Variation: June 15th, 2013
Gene Model: June 15th, 2013
8 months agoptac2 plastid transcriptionally active chromosome homolog2:
 
GRMZM2G122116
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   At1g74850 (TAIR) Reference: August 23rd, 2023
Gene Product: December 30th, 2015
Variation: January 22nd, 2015
Gene Model: January 21st, 2015
8 months agomurE1 mureinE1:
 
GRMZM2G009070
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   At1g63680 (TAIR) Reference: August 23rd, 2023
Gene Product: April 19th, 2018
Variation: January 22nd, 2015
Gene Model: January 21st, 2015
8 months agoprin2 plastid redox insensitive2:
 
GRMZM2G119906
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   At1g10522 (TAIR) Reference: August 23rd, 2023
Variation: January 22nd, 2015
Gene Model: January 21st, 2015
8 months agoprda1 pep-related development arrested1 homolog:
 
GRMZM2G079452
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   AT5G48470 (TAIR)
LOC_Os11g23790 (MSU/TIGR)
Reference: August 23rd, 2023
Variation: November 10th, 2020
Gene Model: February 17th, 2015
8 months agopgr3 proton gradient regulation3 homolog:
 
GRMZM2G372632
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   AT4G31850 (TAIR)
LOC_Os10g28600 (MSU/TIGR)
Reference: August 23rd, 2023
Gene Product: December 27th, 2016
Variation: December 30th, 2015
Gene Model: February 17th, 2015
8 months agotab2 translation chloroplast psaB mRNA2 homolog:
 
GRMZM2G081955
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016     Reference: August 23rd, 2023
Variation: November 10th, 2020
Gene Model: February 17th, 2015
8 months agogun4 genomes uncoupled4 homolog:
 
GRMZM2G464328
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016     Reference: August 23rd, 2023
Variation: December 30th, 2015
Gene Model: February 17th, 2015
8 months agomha3 membrane H(+)-ATPase3:
 
GRMZM2G104325
Mehak Sethi et al. 2023. Unravelling the genetic framework associated with grain quality and yield-related traits in maize (Zea mays L.). 14:1248697.     Reference: August 23rd, 2023
Gene Product: September 1st, 2003
Variation: January 22nd, 2016
Gene Model: January 22nd, 2016
8 months agochn5 chitinase5:
 
GRMZM2G051921
Yangyang Li et al. 2023. Coordinated regulation of sucrose and lignin metabolism for arrested silk elongation under drought stress in maize Environ Exp Bot. :doi: 10.1016/j.envexpbot.2023.105482.     Reference: August 23rd, 2023
Gene Product: May 31st, 2021
Gene Model: September 16th, 2017
8 months agonpf7 nitrate transporter/peptide transporter family7:
 
GRMZM2G064091
Lihua Jia et al. 2023. Genome-Wide Identification and Functional Analysis of Nitrate Transporter Genes (NPF, NRT2 and NRT3) in Maize Int J Mol Sci. 24:12941.     Reference: August 23rd, 2023
Gene Product: September 1st, 2003
Gene Model: May 21st, 2019
8 months agonpf8 nitrate transporter/peptide transporter family8:
 
GRMZM2G476069
Lihua Jia et al. 2023. Genome-Wide Identification and Functional Analysis of Nitrate Transporter Genes (NPF, NRT2 and NRT3) in Maize Int J Mol Sci. 24:12941.     Reference: August 23rd, 2023
Gene Product: September 1st, 2003
Gene Model: May 21st, 2019
8 months agonpf9 nitrate transporter/peptide transporter family9:
 
GRMZM2G176253
Lihua Jia et al. 2023. Genome-Wide Identification and Functional Analysis of Nitrate Transporter Genes (NPF, NRT2 and NRT3) in Maize Int J Mol Sci. 24:12941.     Reference: August 23rd, 2023
Gene Product: September 1st, 2003
Gene Model: May 21st, 2019
8 months agolacs2 long chain acyl-CoA synthetase2:
 
GRMZM2G104847
XiuChen Wang et al. 2023. Genome-Wide Analysis of the Maize Lacs Gene Family and Functional Analysis of the Zmlacs9 Gene SSRN. :doi: 10.2139/ssrn.4548585.     Reference: August 23rd, 2023
Gene Product: October 31st, 2018
Gene Model: February 13th, 2020
8 months agonrt6 nitrate transport6:
 
GRMZM2G141491
Lihua Jia et al. 2023. Genome-Wide Identification and Functional Analysis of Nitrate Transporter Genes (NPF, NRT2 and NRT3) in Maize Int J Mol Sci. 24:12941.     Reference: August 23rd, 2023
Gene Product: September 1st, 2003
Gene Model: September 18th, 2020
8 months agocyp29 cytochrome P450 CYP71Z19:
 
GRMZM2G122654
Yangyang Li et al. 2023. Coordinated regulation of sucrose and lignin metabolism for arrested silk elongation under drought stress in maize Environ Exp Bot. :doi: 10.1016/j.envexpbot.2023.105482.     Reference: August 23rd, 2023
Gene Product: December 30th, 2022
Gene Model: October 27th, 2020
8 months agonpf12 nitrate transporter/peptide transporter family12:
 
GRMZM2G127134
Lihua Jia et al. 2023. Genome-Wide Identification and Functional Analysis of Nitrate Transporter Genes (NPF, NRT2 and NRT3) in Maize Int J Mol Sci. 24:12941.     Reference: August 23rd, 2023
Gene Product: September 1st, 2003
Gene Model: January 2nd, 2022
8 months agornc1 ribonuclease III domain protein1:
3.06
GRMZM2G035820
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   AT4G37510 (TAIR)
LOC_Os01g5951 (MSU/TIGR)
Os01g0810100 (Gramene)
Reference: August 23rd, 2023
Gene Product: July 22nd, 2009
Variation: October 18th, 2010
Gene Model: July 14th, 2011
8 months agoabcg11 ABC transporter G family member 11:
2.02
GRMZM2G177812
Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016     Reference: August 23rd, 2023
Gene Product: December 28th, 2015
Variation: December 30th, 2015
Gene Model: February 17th, 2015
8 months agoppr4 pentatricopeptide repeat 4:
 
   Belcher, S et al. 2015. Biochem Biophys Acta 1847:1004-1016   AT5G04810 (TAIR)
LOC_Os04g58780 (MSU/TIGR)
Os04g0684500 (Gramene)
Reference: August 23rd, 2023
Gene Product: September 15th, 2012
Variation: July 24th, 2009
8 months agocsu193  :
9.03
GRMZM2G019586
Liu, ZG et al. 2023. Hybrid performance evaluation and genome-wide association analysis of root system architecture in a maize association population. Theor Appl Genet. 136:194.     Reference: August 22nd, 2023
Variation: September 1st, 2003
Gene Model: January 14th, 2019
8 months agonbcs5 nucleobase:cation symporter5:
2.06
GRMZM2G100484
Liu, ZG et al. 2023. Hybrid performance evaluation and genome-wide association analysis of root system architecture in a maize association population. Theor Appl Genet. 136:194.     Reference: August 22nd, 2023
Gene Product: July 14th, 2018
Variation: July 29th, 2004
Gene Model: January 31st, 2018
8 months agoxt5 beta-1,4-xylosyltransferase5:
 
GRMZM5G898668
Liu, ZG et al. 2023. Hybrid performance evaluation and genome-wide association analysis of root system architecture in a maize association population. Theor Appl Genet. 136:194.     Reference: August 22nd, 2023
Gene Product: August 12th, 2022
Gene Model: July 2nd, 2020
8 months agoIDP88  :
8.03
GRMZM2G074103
Liu, ZG et al. 2023. Hybrid performance evaluation and genome-wide association analysis of root system architecture in a maize association population. Theor Appl Genet. 136:194.     Reference: August 22nd, 2023
Variation: March 31st, 2005
Gene Model: June 6th, 2020
8 months agoLOC542589  :
 
   Li, CP; Larkins, BA. 1995. Plant Physiol 109:339     Reference: August 21st, 2023
Gene Product: September 1st, 2003
8 months agotbp1 TATA-binding protein1:
1.09
GRMZM2G149238
Uyehara, AN et al. 2023. Cytokinin Promotes Jasmonic Acid Accumulation in the Control of Maize Leaf Growth Plants. 12:3014.     Reference: August 21st, 2023
Gene Product: September 1st, 2003
Variation: February 4th, 2015
Gene Model: February 4th, 2015
8 months agoelfg1 elongation factor gamma1:
6.04
   Huaijun Tang et al. 2023. QTL mapping for flowering time in a maize-teosinte population under well-watered and water-stressed conditions. Mol Breed. 43:67.     Reference: August 21st, 2023
Gene Product: October 22nd, 2022
Variation: July 9th, 2017
8 months agoaos4 allene oxide synthesis4:
 
GRMZM2G072653
Uyehara, AN et al. 2023. Cytokinin Promotes Jasmonic Acid Accumulation in the Control of Maize Leaf Growth Plants. 12:3014.     Reference: August 21st, 2023
Gene Product: September 1st, 2003
Gene Model: October 29th, 2015
8 months agoppr346 pentatricopeptide repeat protein346:
 
GRMZM2G129783
Huaijun Tang et al. 2023. QTL mapping for flowering time in a maize-teosinte population under well-watered and water-stressed conditions. Mol Breed. 43:67.     Reference: August 21st, 2023
Gene Product: December 27th, 2016
Gene Model: June 11th, 2018
8 months agoaas11 auxin amido synthetase11:
 
GRMZM2G162413
Uyehara, AN et al. 2023. Cytokinin Promotes Jasmonic Acid Accumulation in the Control of Maize Leaf Growth Plants. 12:3014.     Reference: August 21st, 2023
Gene Product: October 21st, 2019
Gene Model: October 21st, 2019
8 months agozim1 ZIM-transcription factor 1:
 
   Wang, L et al. 2023. Immature leaves are the dominant volatile-sensing organs of maize Curr Biol. :doi: 10.1016/j.cub.2023.07.045.     Reference: August 18th, 2023
Gene Product: February 24th, 2021
8 months agozim12 ZIM-transcription factor 12:
 
   Wang, L et al. 2023. Immature leaves are the dominant volatile-sensing organs of maize Curr Biol. :doi: 10.1016/j.cub.2023.07.045.     Reference: August 18th, 2023
Gene Product: February 24th, 2021
Variation: March 17th, 2021
8 months agozim32 ZIM-transcription factor 32:
 
   Wang, L et al. 2023. Immature leaves are the dominant volatile-sensing organs of maize Curr Biol. :doi: 10.1016/j.cub.2023.07.045.     Reference: August 18th, 2023
Gene Product: February 24th, 2021
Variation: February 17th, 2019
8 months agozim34 ZIM-transcription factor 34:
 
   Wang, L et al. 2023. Immature leaves are the dominant volatile-sensing organs of maize Curr Biol. :doi: 10.1016/j.cub.2023.07.045.     Reference: August 18th, 2023
Gene Product: February 24th, 2021
8 months agozim36 ZIM-transcription factor 36:
 
   Wang, L et al. 2023. Immature leaves are the dominant volatile-sensing organs of maize Curr Biol. :doi: 10.1016/j.cub.2023.07.045.     Reference: August 18th, 2023
Gene Product: February 24th, 2021
8 months agozim4 ZIM-transcription factor 4:
 
   Wang, L et al. 2023. Immature leaves are the dominant volatile-sensing organs of maize Curr Biol. :doi: 10.1016/j.cub.2023.07.045.     Reference: August 18th, 2023
Gene Product: February 24th, 2021
8 months agoumc2308  :
5.09
GRMZM5G848768
Wang, L et al. 2023. Immature leaves are the dominant volatile-sensing organs of maize Curr Biol. :doi: 10.1016/j.cub.2023.07.045.     Reference: August 18th, 2023
Variation: June 25th, 2021
Gene Model: July 15th, 2018
8 months agoech1 enoyl-CoA hydratase1:
8.03
GRMZM2G132903
Wang, L et al. 2023. Immature leaves are the dominant volatile-sensing organs of maize Curr Biol. :doi: 10.1016/j.cub.2023.07.045.     Reference: August 18th, 2023
Gene Product: September 1st, 2003
Variation: February 15th, 2014
Gene Model: July 27th, 2016
8 months agocoi1 coronatine insensitive1:
3.06
GRMZM2G125411
Wang, L et al. 2023. Immature leaves are the dominant volatile-sensing organs of maize Curr Biol. :doi: 10.1016/j.cub.2023.07.045.     Reference: August 18th, 2023
Gene Product: November 2nd, 2018
Gene Model: November 2nd, 2018
8 months agoopr5 12-oxo-phytodienoic acid reductase5:
2.04
GRMZM2G087192
Wang, L et al. 2023. Immature leaves are the dominant volatile-sensing organs of maize Curr Biol. :doi: 10.1016/j.cub.2023.07.045.     Reference: August 18th, 2023
Gene Product: September 3rd, 2010
Variation: July 21st, 2008
Gene Model: November 27th, 2013
8 months agoaos3 allene oxide synthesis3:
 
GRMZM2G376661
Wang, L et al. 2023. Immature leaves are the dominant volatile-sensing organs of maize Curr Biol. :doi: 10.1016/j.cub.2023.07.045.     Reference: August 18th, 2023
Gene Product: September 1st, 2003
Gene Model: October 29th, 2015
8 months agocyp20 cytochrome P-450 20:
 
GRMZM2G139467
Wang, L et al. 2023. Immature leaves are the dominant volatile-sensing organs of maize Curr Biol. :doi: 10.1016/j.cub.2023.07.045.     Reference: August 18th, 2023
Gene Product: September 26th, 2016
Gene Model: September 26th, 2016
8 months agopgip1 polygalacturonase-inhibiting protein1:
 
GRMZM2G333980
Kumar, R et al. 2023. Genetic architecture of source-sink-regulated senescence in maize. Plant Physiol. :doi: 10.1093/plphys/kiad460.     Reference: August 18th, 2023
Gene Product: September 4th, 2019
Gene Model: September 4th, 2019
8 months agoaas13 auxin amido synthetase13:
 
GRMZM2G091276
Wang, L et al. 2023. Immature leaves are the dominant volatile-sensing organs of maize Curr Biol. :doi: 10.1016/j.cub.2023.07.045.     Reference: August 18th, 2023
Gene Product: October 21st, 2019
Gene Model: October 21st, 2019
8 months agorh48 RNA helicase48:
 
GRMZM2G171801
Yang, Y-Z et al. 2023. The DEAD-box RNA helicase ZmRH48 is required for the splicing of multiple mitochondrial introns, mitochondrial complex biosynthesis, and seed development in maize. J Integr Plant Biol. :doi: 10.1111/jipb.13558.     Reference: August 18th, 2023
Gene Product: December 13th, 2022
Variation: August 18th, 2023
Gene Model: May 5th, 2020
8 months agocoi5 coronatine insensitive5:
 
GRMZM2G035314
Wang, L et al. 2023. Immature leaves are the dominant volatile-sensing organs of maize Curr Biol. :doi: 10.1016/j.cub.2023.07.045.     Reference: August 18th, 2023
Gene Product: November 2nd, 2018
Gene Model: January 20th, 2021
8 months agomyo1 myosin1:
3.09
AC155377.1_FG001
Kumar, R et al. 2023. Genetic architecture of source-sink-regulated senescence in maize. Plant Physiol. :doi: 10.1093/plphys/kiad460.     Reference: August 18th, 2023
Gene Product: September 1st, 2003
Variation: February 21st, 2008
Gene Model: March 3rd, 2015
8 months agouaz248a(his3)  :
1.04
GRMZM2G171387
Petroli, CD et al. 2023. Genetic variation among elite inbred lines suggests potential to breed for BNI-capacity in maize Sci. Rep.. 13:13422.     Reference: August 17th, 2023
Gene Product: September 1st, 2003
Variation: July 5th, 2017
Gene Model: July 5th, 2017
8 months agopgd2 6-phosphogluconate dehydrogenase2:
3.05
   Ivica Djalovic et al. 2023. Maize and heat stress: Physiological, genetic, and molecular insights. Plant Genome. :doi: 10.1002/tpg2.20378.     Reference: August 17th, 2023
Gene Product: December 16th, 2020
Variation: September 1st, 2003
8 months agorop1 Rho-related protein from plants 1:
5.07
GRMZM2G415327
Petroli, CD et al. 2023. Genetic variation among elite inbred lines suggests potential to breed for BNI-capacity in maize Sci. Rep.. 13:13422.     Reference: August 17th, 2023
Gene Product: April 1st, 2004
Variation: January 25th, 2011
Gene Model: January 1st, 2015
8 months agohsftf3 HSF-transcription factor 3:
 
   Ivica Djalovic et al. 2023. Maize and heat stress: Physiological, genetic, and molecular insights. Plant Genome. :doi: 10.1002/tpg2.20378.     Reference: August 17th, 2023
Gene Product: May 15th, 2020
8 months agoumc1702  :
4.05
GRMZM2G125529
Petroli, CD et al. 2023. Genetic variation among elite inbred lines suggests potential to breed for BNI-capacity in maize Sci. Rep.. 13:13422.     Reference: August 17th, 2023
Variation: September 1st, 2003
Gene Model: June 7th, 2018
8 months agopap30 purple acid phosphatase30:
 
GRMZM5G831009
Ivica Djalovic et al. 2023. Maize and heat stress: Physiological, genetic, and molecular insights. Plant Genome. :doi: 10.1002/tpg2.20378.     Reference: August 17th, 2023
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
8 months agomrpa13 multidrug resistance protein associated13:
 
   Mengxue Qu et al. 2023. Differences of cadmium uptake and accumulation in roots of two maize varieties (Zea mays L.) Environ Sci Pollut Res. :doi: 10.1007/s11356-023-29340-9.     Reference: August 16th, 2023
Gene Product: July 11th, 2019
8 months agokip1 knotted interacting protein1:
1.09
   Yu, J et al. 2023. ZmBELL10 interacts with other ZmBELLs and recognizes specific motifs for transcriptional activation to modulate internode patterning in maize. New Phytol. :doi: 10.1111/nph.19192.     Reference: August 16th, 2023
Gene Product: January 3rd, 2008
Variation: January 2nd, 2008
8 months agohb38 Homeobox-transcription factor 38:
 
   Yu, J et al. 2023. ZmBELL10 interacts with other ZmBELLs and recognizes specific motifs for transcriptional activation to modulate internode patterning in maize. New Phytol. :doi: 10.1111/nph.19192.     Reference: August 16th, 2023
Variation: August 16th, 2023
8 months agohb84 Homeobox-transcription factor 84:
1.06
GRMZM2G099319
Yu, J et al. 2023. ZmBELL10 interacts with other ZmBELLs and recognizes specific motifs for transcriptional activation to modulate internode patterning in maize. New Phytol. :doi: 10.1111/nph.19192.     Reference: August 16th, 2023
Variation: December 30th, 2016
Gene Model: December 30th, 2016
8 months agohb36 Homeobox-transcription factor 36:
1.10
GRMZM2G396114
Yu, J et al. 2023. ZmBELL10 interacts with other ZmBELLs and recognizes specific motifs for transcriptional activation to modulate internode patterning in maize. New Phytol. :doi: 10.1111/nph.19192.     Reference: August 16th, 2023
Variation: January 3rd, 2017
Gene Model: January 3rd, 2017
8 months agohb30 Homeobox-transcription factor 30:
1.01
GRMZM2G327059
Yu, J et al. 2023. ZmBELL10 interacts with other ZmBELLs and recognizes specific motifs for transcriptional activation to modulate internode patterning in maize. New Phytol. :doi: 10.1111/nph.19192.     Reference: August 16th, 2023
Variation: July 26th, 2016
Gene Model: July 26th, 2016
8 months agoole2 oleosin2:
5.02
   Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
8 months agophi069  :
7.05
GRMZM2G448739
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: September 1st, 2003
Gene Model: September 12th, 2018
8 months agobnlg197  :
3.06
GRMZM5G851026
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: September 1st, 2003
Gene Model: March 22nd, 2018
8 months agobnlg1371  :
6.01
   Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: September 1st, 2003
8 months agobnlg1429  :
1.02
   Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: February 11th, 2019
8 months agobnlg1792  :
7.02
GRMZM2G024615
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: September 1st, 2003
Gene Model: September 6th, 2018
8 months agodof5 C2C2-Dof-transcription factor 5:
8.05
GRMZM5G880268
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: September 20th, 2018
Gene Model: September 20th, 2018
8 months agoincw3 invertase cell wall3:
10.04
   Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Gene Product: June 12th, 2018
Variation: March 8th, 2022
8 months agoumc1154  :
7.05
GRMZM2G349655
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: September 1st, 2003
Gene Model: March 16th, 2021
8 months agoumc1156  :
2.06
GRMZM2G063643
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: September 1st, 2003
Gene Model: February 27th, 2021
8 months agoumc1245  :
1.07
GRMZM2G113781
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: September 1st, 2003
Gene Model: September 30th, 2016
8 months agoumc1279  :
9.00
GRMZM2G000623
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: September 1st, 2003
Gene Model: February 20th, 2020
8 months agoumc1288  :
4.02
GRMZM5G881498
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: March 18th, 2021
Gene Model: March 6th, 2021
8 months agoumc1304  :
8.02
GRMZM2G133552
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: September 1st, 2003
Gene Model: September 16th, 2018
8 months agoumc1296  :
6.07
GRMZM2G021406
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: August 29th, 2018
Gene Model: August 29th, 2018
8 months agoumc1444  :
6.01
GRMZM2G473788
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: September 1st, 2003
Gene Model: August 20th, 2018
8 months agoumc1472  :
1.04
GRMZM2G124576
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: November 9th, 2016
Gene Model: November 9th, 2016
8 months agoumc1500  :
1.11
GRMZM2G069218
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: September 1st, 2003
Gene Model: November 14th, 2016
8 months agoumc1551  :
2.09
GRMZM2G052507
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: September 1st, 2003
Gene Model: March 2nd, 2021
8 months agosbp3 SBP-domain protein3:
6.02
GRMZM2G101499
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Gene Product: July 5th, 2019
Variation: September 1st, 2003
Gene Model: December 18th, 2014
8 months agotcptf29 TCP-transcription factor 29:
8.09
GRMZM2G148022
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Gene Product: September 27th, 2019
Gene Model: September 24th, 2018
8 months agoumc1673  :
8.08
GRMZM2G139374
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: September 1st, 2003
Gene Model: September 24th, 2018
8 months agoumc1720  :
4.10
GRMZM2G165931
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: September 1st, 2003
Gene Model: March 8th, 2021
8 months agosaur1 small auxin up RNA1:
6.02
GRMZM2G466908
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: July 28th, 2016
8 months agopre2 premature senescence2:
4.09
GRMZM2G125342
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.   At1G72390 (TAIR) Reference: August 15th, 2023
Gene Product: December 30th, 2020
Variation: December 30th, 2020
Gene Model: June 9th, 2018
8 months agotcptf33 TCP-transcription factor 33:
3.01
GRMZM2G589470
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Gene Product: September 27th, 2019
Gene Model: March 28th, 2018
8 months agogst13 glutathione transferase13:
9.07
GRMZM2G126781
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Gene Product: September 1st, 2003
Variation: August 6th, 2010
Gene Model: July 27th, 2016
8 months agoumc2118  :
3.00 - 3.01
GRMZM5G884242
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: April 3rd, 2018
Gene Model: April 3rd, 2018
8 months agoidd12 indeterminate domain12:
3.09
GRMZM2G177693
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Gene Product: January 3rd, 2015
Gene Model: April 3rd, 2018
8 months agoglr1 glutamic acid- and lysine-rich1:
3.00
GRMZM2G123558
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Gene Product: September 4th, 2019
Gene Model: April 3rd, 2018
8 months agoumc2313  :
6.01
GRMZM2G063462
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: January 15th, 2021
Gene Model: August 19th, 2018
8 months agoumc1662  :
4.05
GRMZM2G145972
Shankarappa Varalakshmi et al. 2023. Marker–Trait Association for Protein Content among Maize Wild Accessions and Coix Using SSR Markers Agronomy. 13:2138.     Reference: August 15th, 2023
Variation: March 18th, 2021
Gene Model: April 13th, 2020
8 months agoZm00001d014532  :
 
   Kun Zhang et al. 2023. Natural polymorphisms in ZmIRX15A affect water-use efficiency by modulating stomatal density in maize. Plant Biotechnol J. :doi: 10.1111/pbi.14153.     Reference: August 13th, 2023
Variation: August 13th, 2023
9 months agolcd1 L-cysteine desulfhydrase1:
 
   Jiaqi Wang et al. 2023. The Essential Role of H2S-ABA Crosstalk in Maize Thermotolerance through the ROS-Scavenging System. Int J Mol Sci. 24:12264.     Reference: August 12th, 2023
Gene Product: November 24th, 2022
9 months agoNM_001366967  :
 
   Jiaqi Wang et al. 2023. The Essential Role of H2S-ABA Crosstalk in Maize Thermotolerance through the ROS-Scavenging System. Int J Mol Sci. 24:12264.     Reference: August 12th, 2023
Gene Product: November 24th, 2022
9 months agogrf2 general regulatory factor2:
10.04
GRMZM2G078641
Anna Fiorillo et al. 2023. 14-3-3 Proteins and the Plasma Membrane H+-ATPase Are Involved in Maize (Zea mays) Magnetic Induction. Plants. 12:2887.     Reference: August 12th, 2023
Gene Product: March 6th, 2023
Variation: June 5th, 2014
Gene Model: October 8th, 2015
9 months agoisca1 iron sulfur cluster assembly1:
3.04
GRMZM2G163996
Anna Fiorillo et al. 2023. 14-3-3 Proteins and the Plasma Membrane H+-ATPase Are Involved in Maize (Zea mays) Magnetic Induction. Plants. 12:2887.     Reference: August 12th, 2023
Gene Product: August 12th, 2023
Gene Model: May 11th, 2021
9 months agoga2ox1 gibberellin 2-oxidase1:
 
GRMZM2G078798
Anna Fiorillo et al. 2023. 14-3-3 Proteins and the Plasma Membrane H+-ATPase Are Involved in Maize (Zea mays) Magnetic Induction. Plants. 12:2887.     Reference: August 12th, 2023
Gene Product: October 27th, 2014
Variation: November 20th, 2012
Gene Model: November 20th, 2012
9 months agosod1 superoxide dismutase1:
 
GRMZM5G891739
Anna Fiorillo et al. 2023. 14-3-3 Proteins and the Plasma Membrane H+-ATPase Are Involved in Maize (Zea mays) Magnetic Induction. Plants. 12:2887.     Reference: August 12th, 2023
Gene Product: October 4th, 2021
Gene Model: June 17th, 2021
9 months agogrf1 general regulatory factor1:
2.04
   Anna Fiorillo et al. 2023. 14-3-3 Proteins and the Plasma Membrane H+-ATPase Are Involved in Maize (Zea mays) Magnetic Induction. Plants. 12:2887.     Reference: August 12th, 2023
Gene Product: March 6th, 2023
Variation: December 13th, 2012
9 months agocax1 calcium exchanger1:
4.08
GRMZM5G809587
Anna Fiorillo et al. 2023. 14-3-3 Proteins and the Plasma Membrane H+-ATPase Are Involved in Maize (Zea mays) Magnetic Induction. Plants. 12:2887.     Reference: August 12th, 2023
Variation: September 21st, 2012
Gene Model: July 27th, 2016
9 months agodar1 monodehydroascorbate reductase homolog1:
2.06
GRMZM2G084881
Jiaqi Wang et al. 2023. The Essential Role of H2S-ABA Crosstalk in Maize Thermotolerance through the ROS-Scavenging System. Int J Mol Sci. 24:12264.     Reference: August 12th, 2023
Gene Product: September 1st, 2003
Variation: November 17th, 2012
Gene Model: July 27th, 2016
9 months agocdpk1 calcium dependent protein kinase1:
6.01
GRMZM2G115518
Anna Fiorillo et al. 2023. 14-3-3 Proteins and the Plasma Membrane H+-ATPase Are Involved in Maize (Zea mays) Magnetic Induction. Plants. 12:2887.     Reference: August 12th, 2023
Gene Product: December 3rd, 2013
Variation: November 16th, 2013
Gene Model: August 12th, 2013
9 months agobrl1 bri1-like receptor kinase1:
 
GRMZM2G092604
Anna Fiorillo et al. 2023. 14-3-3 Proteins and the Plasma Membrane H+-ATPase Are Involved in Maize (Zea mays) Magnetic Induction. Plants. 12:2887.   AT1G55610 (TAIR)
LOC_Os09g12240 (MSU/TIGR)
Reference: August 12th, 2023
Variation: July 17th, 2015
Gene Model: July 16th, 2015
9 months agosbp6 SBP-transcription factor 6:
5.00
GRMZM2G138421
Borba, AR et al. 2023. Compartmentation of photosynthesis gene expression in C4 maize depends on time of day. Plant Physiol. :doi: 10.1093/plphys/kiad447.     Reference: August 9th, 2023
Gene Product: July 5th, 2019
Variation: September 1st, 2003
Gene Model: June 14th, 2018
9 months agoarftf32 ARF-transcription factor 32:
 
   Mira, MM et al. 2020. Stem cell fate in hypoxic root apical meristems is influenced by phytoglobin expression. J Exp Bot. 71:1350-1362.     Reference: August 9th, 2023
Gene Product: January 29th, 2022
9 months agohsftf19 HSF-transcription factor 19:
 
   Borba, AR et al. 2023. Compartmentation of photosynthesis gene expression in C4 maize depends on time of day. Plant Physiol. :doi: 10.1093/plphys/kiad447.     Reference: August 9th, 2023
Gene Product: May 15th, 2020
9 months agomyb14 MYB-transcription factor 14:
 
   Borba, AR et al. 2023. Compartmentation of photosynthesis gene expression in C4 maize depends on time of day. Plant Physiol. :doi: 10.1093/plphys/kiad447.     Reference: August 9th, 2023
Gene Product: July 25th, 2017
9 months agonlp13 NLP-transcription factor 13:
 
   Borba, AR et al. 2023. Compartmentation of photosynthesis gene expression in C4 maize depends on time of day. Plant Physiol. :doi: 10.1093/plphys/kiad447.     Reference: August 9th, 2023
Gene Product: December 3rd, 2019
9 months agophp06005  :
10.03
GRMZM2G571844
Duan, HY et al. 2023. The genetic architecture of prolificacy in maize revealed by association mapping and bulk segregant analysis. Theor Appl Genet. 136:182.     Reference: August 9th, 2023
Variation: September 1st, 2003
Gene Model: September 2nd, 2018
9 months agodof2 DNA binding with one finger2:
2.07
   Borba, AR et al. 2023. Compartmentation of photosynthesis gene expression in C4 maize depends on time of day. Plant Physiol. :doi: 10.1093/plphys/kiad447.     Reference: August 9th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
9 months agoapx4 ascorbate peroxidase4:
 
GRMZM2G316256
Mira, MM et al. 2020. Stem cell fate in hypoxic root apical meristems is influenced by phytoglobin expression. J Exp Bot. 71:1350-1362.     Reference: August 9th, 2023
Gene Product: October 15th, 2020
Variation: June 5th, 2017
Gene Model: June 5th, 2017
9 months agocct41 CO CO-LIKE TIMING OF CAB1 protein domain41:
 
GRMZM2G179024
Borba, AR et al. 2023. Compartmentation of photosynthesis gene expression in C4 maize depends on time of day. Plant Physiol. :doi: 10.1093/plphys/kiad447.     Reference: August 9th, 2023
Gene Product: June 18th, 2018
Gene Model: December 22nd, 2017
9 months agoIDP3794  :
10.02
GRMZM2G093950
Duan, HY et al. 2023. The genetic architecture of prolificacy in maize revealed by association mapping and bulk segregant analysis. Theor Appl Genet. 136:182.     Reference: August 9th, 2023
Variation: March 31st, 2005
Gene Model: July 18th, 2021
9 months agosbp17 SBP-transcription factor 17:
1.11
GRMZM2G156756
Borba, AR et al. 2023. Compartmentation of photosynthesis gene expression in C4 maize depends on time of day. Plant Physiol. :doi: 10.1093/plphys/kiad447.     Reference: August 9th, 2023
Gene Product: July 5th, 2019
Gene Model: August 9th, 2021
9 months agoimpb1 importin beta1:
 
   Jin Lu et al. 2022. Identification of the Karyopherin Superfamily in Maize and Its Functional Cues in Plant Development Int J Mol Sci. 23:14103.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
9 months agoimpb3 mportin beta3:
 
   Jin Lu et al. 2022. Identification of the Karyopherin Superfamily in Maize and Its Functional Cues in Plant Development Int J Mol Sci. 23:14103.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
9 months agoimpb4 importin beta4:
 
   Jin Lu et al. 2022. Identification of the Karyopherin Superfamily in Maize and Its Functional Cues in Plant Development Int J Mol Sci. 23:14103.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
9 months agoimpb5 importin beta5:
 
   Jin Lu et al. 2022. Identification of the Karyopherin Superfamily in Maize and Its Functional Cues in Plant Development Int J Mol Sci. 23:14103.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
9 months agoimpb6 importin beta6:
 
   Jin Lu et al. 2022. Identification of the Karyopherin Superfamily in Maize and Its Functional Cues in Plant Development Int J Mol Sci. 23:14103.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
9 months agoimpb8 importin beta8:
 
   Jin Lu et al. 2022. Identification of the Karyopherin Superfamily in Maize and Its Functional Cues in Plant Development Int J Mol Sci. 23:14103.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
9 months agoimpb10 importin beta10:
 
   Jin Lu et al. 2022. Identification of the Karyopherin Superfamily in Maize and Its Functional Cues in Plant Development Int J Mol Sci. 23:14103.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
9 months agoimpb11 importin beta11:
 
   Jin Lu et al. 2022. Identification of the Karyopherin Superfamily in Maize and Its Functional Cues in Plant Development Int J Mol Sci. 23:14103.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
9 months agoimpb12 importin beta12:
 
   Jin Lu et al. 2022. Identification of the Karyopherin Superfamily in Maize and Its Functional Cues in Plant Development Int J Mol Sci. 23:14103.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
9 months agoimpb13 importin beta13:
 
   Jin Lu et al. 2022. Identification of the Karyopherin Superfamily in Maize and Its Functional Cues in Plant Development Int J Mol Sci. 23:14103.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
9 months agoimpb16 importin beta16:
 
   Jin Lu et al. 2022. Identification of the Karyopherin Superfamily in Maize and Its Functional Cues in Plant Development Int J Mol Sci. 23:14103.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
9 months agoimpb17 importin beta17:
 
   Jin Lu et al. 2022. Identification of the Karyopherin Superfamily in Maize and Its Functional Cues in Plant Development Int J Mol Sci. 23:14103.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
9 months agoimpb18 importin beta18:
 
   Sauer, M et al. 2023. Identification of the Teopod1, Teopod2, and Early Phase Change genes in maize G3. :doi: 10.1093/g3journal/jkad179.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
9 months agoimpb19 importin beta19:
 
   Sauer, M et al. 2023. Identification of the Teopod1, Teopod2, and Early Phase Change genes in maize G3. :doi: 10.1093/g3journal/jkad179.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
9 months agoimpb22 importin beta22:
 
   Sauer, M et al. 2023. Identification of the Teopod1, Teopod2, and Early Phase Change genes in maize G3. :doi: 10.1093/g3journal/jkad179.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
9 months agoimpb23 importin beta23:
 
   Sauer, M et al. 2023. Identification of the Teopod1, Teopod2, and Early Phase Change genes in maize G3. :doi: 10.1093/g3journal/jkad179.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
9 months agoimpb26 importin beta26:
 
   Jin Lu et al. 2022. Identification of the Karyopherin Superfamily in Maize and Its Functional Cues in Plant Development Int J Mol Sci. 23:14103.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
9 months agoimpb27 importin beta27:
 
   Jin Lu et al. 2022. Identification of the Karyopherin Superfamily in Maize and Its Functional Cues in Plant Development Int J Mol Sci. 23:14103.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
9 months agopza01619  :
10.04
GRMZM2G176998
Yu, T et al. 2023. Hub Gene Mining and Co-Expression Network Construction of Low-Temperature Response in Maize of Seedling by WGCNA Genes. 14:1598.     Reference: August 7th, 2023
Variation: September 25th, 2007
Gene Model: September 12th, 2021
9 months agoepc1 early phase change1:
8.03
   Sauer, M et al. 2023. Identification of the Teopod1, Teopod2, and Early Phase Change genes in maize G3. :doi: 10.1093/g3journal/jkad179.   At3g05040 (TAIR) Reference: August 7th, 2023
Gene Product: November 15th, 2022
Variation: September 24th, 2022
9 months agoimpb20 importin beta20:
1.08
GRMZM2G406043
Jin Lu et al. 2022. Identification of the Karyopherin Superfamily in Maize and Its Functional Cues in Plant Development Int J Mol Sci. 23:14103.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
Gene Model: April 18th, 2021
9 months agoirl1 isoflavone reductase-like1:
3.04
AC226235.2_FG001
Yu, T et al. 2023. Hub Gene Mining and Co-Expression Network Construction of Low-Temperature Response in Maize of Seedling by WGCNA Genes. 14:1598.     Reference: August 7th, 2023
Gene Product: September 1st, 2003
Variation: July 14th, 2008
Gene Model: March 3rd, 2015
9 months agoimpb24 importin beta24:
5.03
GRMZM5G854036
Sauer, M et al. 2023. Identification of the Teopod1, Teopod2, and Early Phase Change genes in maize G3. :doi: 10.1093/g3journal/jkad179.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
Gene Model: June 22nd, 2018
9 months agosbp21 SBP-transcription factor 21:
 
   Sauer, M et al. 2023. Identification of the Teopod1, Teopod2, and Early Phase Change genes in maize G3. :doi: 10.1093/g3journal/jkad179.   AT1G27370 (TAIR) Reference: August 7th, 2023
Gene Product: July 5th, 2019
9 months agoimpb25 importin beta25:
1.08
GRMZM2G010362
Sauer, M et al. 2023. Identification of the Teopod1, Teopod2, and Early Phase Change genes in maize G3. :doi: 10.1093/g3journal/jkad179.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
Gene Model: September 13th, 2017
9 months agoimpb7 importin beta7:
7.04
GRMZM5G887631
Jin Lu et al. 2022. Identification of the Karyopherin Superfamily in Maize and Its Functional Cues in Plant Development Int J Mol Sci. 23:14103.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
Gene Model: January 7th, 2022
9 months agowsd1 wax ester synthase/diacylglycerol acyltransferase1:
3.08
GRMZM2G077375
Castorina, G et al. 2023. Roles of the MYB94/FUSED LEAVES1 (ZmFDL1) and GLOSSY2 (ZmGL2) genes in cuticle biosynthesis and potential impacts on Fusarium verticillioides growth on maize silks Frontiers in Plant Science. 14:1228394.     Reference: August 7th, 2023
Gene Product: July 23rd, 2018
Variation: September 1st, 2003
Gene Model: January 3rd, 2022
9 months agogst8 glutathione transferase8:
 
GRMZM2G156877
Yu, T et al. 2023. Hub Gene Mining and Co-Expression Network Construction of Low-Temperature Response in Maize of Seedling by WGCNA Genes. 14:1598.     Reference: August 7th, 2023
Gene Product: September 1st, 2003
Gene Model: July 27th, 2016
9 months agogst25 glutathione transferase25:
9.08
GRMZM2G161905
Yu, T et al. 2023. Hub Gene Mining and Co-Expression Network Construction of Low-Temperature Response in Maize of Seedling by WGCNA Genes. 14:1598.     Reference: August 7th, 2023
Gene Product: September 1st, 2003
Gene Model: July 27th, 2016
9 months agoimpb2 importin beta2:
3.04
   Jin Lu et al. 2022. Identification of the Karyopherin Superfamily in Maize and Its Functional Cues in Plant Development Int J Mol Sci. 23:14103.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
9 months agocer1 eceriferum1:
 
GRMZM2G075255
Castorina, G et al. 2023. Roles of the MYB94/FUSED LEAVES1 (ZmFDL1) and GLOSSY2 (ZmGL2) genes in cuticle biosynthesis and potential impacts on Fusarium verticillioides growth on maize silks Frontiers in Plant Science. 14:1228394.     Reference: August 7th, 2023
Gene Product: February 13th, 2020
Variation: June 24th, 2021
Gene Model: February 13th, 2020
9 months agoimp5 importin5:
 
GRMZM2G169878
Jin Lu et al. 2022. Identification of the Karyopherin Superfamily in Maize and Its Functional Cues in Plant Development Int J Mol Sci. 23:14103.     Reference: August 7th, 2023
Gene Product: November 15th, 2022
Gene Model: December 16th, 2020
9 months agochn27 chitinase27:
 
GRMZM2G133781
Castorina, G et al. 2023. Roles of the MYB94/FUSED LEAVES1 (ZmFDL1) and GLOSSY2 (ZmGL2) genes in cuticle biosynthesis and potential impacts on Fusarium verticillioides growth on maize silks Frontiers in Plant Science. 14:1228394.     Reference: August 7th, 2023
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
9 months agoena2 efflux transporter of NA2:
 
GRMZM2G432480
Yu, T et al. 2023. Hub Gene Mining and Co-Expression Network Construction of Low-Temperature Response in Maize of Seedling by WGCNA Genes. 14:1598.     Reference: August 7th, 2023
Gene Product: January 18th, 2022
Gene Model: January 18th, 2022
9 months agojih2 jasmonoyl-l-isoleucine hydrolase2:
 
GRMZM5G833406
Yu, T et al. 2023. Hub Gene Mining and Co-Expression Network Construction of Low-Temperature Response in Maize of Seedling by WGCNA Genes. 14:1598.     Reference: August 7th, 2023
Gene Product: June 10th, 2022
Gene Model: June 10th, 2022
9 months agoIDP79  :
2.07
GRMZM2G080466
Yu, T et al. 2023. Hub Gene Mining and Co-Expression Network Construction of Low-Temperature Response in Maize of Seedling by WGCNA Genes. 14:1598.     Reference: August 7th, 2023
Variation: March 31st, 2005
Gene Model: February 20th, 2019
9 months agoplt21 phospholipid transfer protein21:
2.05
GRMZM2G099867
Yu, T et al. 2023. Hub Gene Mining and Co-Expression Network Construction of Low-Temperature Response in Maize of Seedling by WGCNA Genes. 14:1598.     Reference: August 7th, 2023
Gene Product: September 1st, 2003
Gene Model: March 17th, 2020
9 months agopcs1 pyrroline-5-carboxylate synthase1:
 
AC203754.4_FG008
Sakil Mahmud et al. 2023. Acetic acid positively modulates proline metabolism for mitigating PEG-mediated drought stress in Maize and Arabidopsis. Frontiers in Plant Science. 14:1167238.     Reference: August 5th, 2023
Gene Product: March 19th, 2015
Gene Model: March 2nd, 2021
9 months agoemb15 embryo specific15:
 
GRMZM2G165694
Li, QG et al. 2023. White and green striate leaves 1, predicted to encode a 16S rRNA processing protein, plays a critical role in the processing of chloroplast ribosomes in maize (Zea mays L.) Mol Breed. 43:65.     Reference: August 4th, 2023
Variation: August 4th, 2023
Gene Model: January 16th, 2021
9 months agodhs1 deoxyhypusine synthase1:
 
   Niknik Nurhayati et al. 2009. Evolution of pyrrolizidine alkaloids in Phalaenopsis orchids and other monocotyledons: identification of deoxyhypusine synthase, homospermidine synthase and related pseudogenes Phytochemistry. 70:508-16.     Reference: August 3rd, 2023
Gene Product: August 3rd, 2023
9 months agoacp1 acid phosphatase1:
9.03
AC211394.4_FG004
Wei Yang Zhang et al. 2014. Transcriptional analyses of natural leaf senescence in maize. PLoS One. 9:e115617.     Reference: August 3rd, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: July 27th, 2016
9 months agobf1 blue fluorescent1:
9.07 - 9.07
GRMZM2G051219
Wei Yang Zhang et al. 2014. Transcriptional analyses of natural leaf senescence in maize. PLoS One. 9:e115617.     Reference: August 3rd, 2023
Gene Product: October 23rd, 2013
Variation: October 22nd, 2013
Gene Model: October 21st, 2013
9 months agoumc1464  :
2.08
GRMZM2G365160
Wei Yang Zhang et al. 2014. Transcriptional analyses of natural leaf senescence in maize. PLoS One. 9:e115617.     Reference: August 3rd, 2023
Variation: September 1st, 2003
Gene Model: March 2nd, 2021
9 months agosee2a senescence enhanced2a:
 
GRMZM2G081626
Wei Yang Zhang et al. 2014. Transcriptional analyses of natural leaf senescence in maize. PLoS One. 9:e115617.     Reference: August 3rd, 2023
Variation: August 1st, 2011
Gene Model: November 20th, 2014
9 months agoAY110170  :
4.09
GRMZM2G155253
Wei Yang Zhang et al. 2014. Transcriptional analyses of natural leaf senescence in maize. PLoS One. 9:e115617.     Reference: August 3rd, 2023
Variation: July 29th, 2004
Gene Model: April 13th, 2018
9 months agoAY109934  :
3.08
GRMZM2G004183
Wei Yang Zhang et al. 2014. Transcriptional analyses of natural leaf senescence in maize. PLoS One. 9:e115617.     Reference: August 3rd, 2023
Variation: July 29th, 2004
Gene Model: March 20th, 2018
9 months agoans2 anthranilate synthase component II homolog2:
 
GRMZM2G171383
Wei Yang Zhang et al. 2014. Transcriptional analyses of natural leaf senescence in maize. PLoS One. 9:e115617.     Reference: August 3rd, 2023
Gene Product: June 15th, 2021
Variation: October 23rd, 2018
Gene Model: October 22nd, 2013
9 months agopld11 phospholipase D11:
 
GRMZM2G140811
Wei Yang Zhang et al. 2014. Transcriptional analyses of natural leaf senescence in maize. PLoS One. 9:e115617.     Reference: August 3rd, 2023
Gene Product: August 9th, 2016
Gene Model: August 9th, 2016
9 months agobrc1 brassinosteroid catabolism1:
 
GRMZM2G107322
Elizabeth A Dun et al. 2023. Strigolactones and shoot branching: what is the real hormone and how does it work? Plant Cell Physiol. :doi: 10.1093/pcp/pcad088.   AT2G26710 (TAIR)
LOC_Os02g11020 (MSU/TIGR)
Reference: August 3rd, 2023
Gene Product: July 6th, 2017
Gene Model: July 6th, 2017
9 months agohma5 heavy metal ATPase5:
 
GRMZM2G144083
Wei Yang Zhang et al. 2014. Transcriptional analyses of natural leaf senescence in maize. PLoS One. 9:e115617.     Reference: August 3rd, 2023
Gene Product: October 23rd, 2019
Gene Model: October 23rd, 2019
9 months agofbp2 fructose bisphosphatase2:
 
GRMZM2G306732
Wei Yang Zhang et al. 2014. Transcriptional analyses of natural leaf senescence in maize. PLoS One. 9:e115617.     Reference: August 3rd, 2023
Gene Product: June 9th, 2021
Gene Model: June 9th, 2021
9 months agomctp2 multiple C2 domain and transmembrane region protein2:
 
GRMZM2G123122
Wei Yang Zhang et al. 2014. Transcriptional analyses of natural leaf senescence in maize. PLoS One. 9:e115617.     Reference: August 3rd, 2023
Gene Product: August 3rd, 2022
Gene Model: August 3rd, 2022
9 months agoiaa19 Aux/IAA-transcription factor 19:
5.01
GRMZM2G152796
Wang, Yijun et al. 2010. Mol Biol Rep 37:3991-4001     Reference: August 2nd, 2023
Variation: September 25th, 2007
Gene Model: August 26th, 2021
9 months agoiaa11 Aux/IAA-transcription factor 11:
3.04
GRMZM2G167794
Wang, Yijun et al. 2010. Mol Biol Rep 37:3991-4001     Reference: August 2nd, 2023
Variation: September 1st, 2003
Gene Model: April 2nd, 2018
9 months agobk4 brittle stalk4:
7.03
   Neelakandan, AK et al. 2023. Characterization of integration sites and T-DNA structures in Agrobacterium-mediated transgenic events of maize inbred B104. G3. :doi: 10.1093/g3journal/jkad166.     Reference: July 31st, 2023
Gene Product: May 31st, 2021
Variation: September 7th, 2019
9 months agohct1 hydroxycinnamoyltransferase1:
 
GRMZM2G061806
Neelakandan, AK et al. 2023. Characterization of integration sites and T-DNA structures in Agrobacterium-mediated transgenic events of maize inbred B104. G3. :doi: 10.1093/g3journal/jkad166.     Reference: July 31st, 2023
Gene Product: November 7th, 2015
Gene Model: November 7th, 2015
9 months agohct2 hydroxycinnamoyltransferase2:
 
GRMZM2G114918
Neelakandan, AK et al. 2023. Characterization of integration sites and T-DNA structures in Agrobacterium-mediated transgenic events of maize inbred B104. G3. :doi: 10.1093/g3journal/jkad166.     Reference: July 31st, 2023
Gene Product: November 7th, 2015
Gene Model: November 7th, 2015
9 months agolht1 Lysine histidine transporter 1:
 
GRMZM2G127328
Neelakandan, AK et al. 2023. Characterization of integration sites and T-DNA structures in Agrobacterium-mediated transgenic events of maize inbred B104. G3. :doi: 10.1093/g3journal/jkad166.     Reference: July 31st, 2023
Gene Product: March 31st, 2021
Variation: February 11th, 2023
Gene Model: December 14th, 2019
9 months agoaaap40 amino acid/auxin permease40:
 
GRMZM2G127342
Neelakandan, AK et al. 2023. Characterization of integration sites and T-DNA structures in Agrobacterium-mediated transgenic events of maize inbred B104. G3. :doi: 10.1093/g3journal/jkad166.     Reference: July 31st, 2023
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
9 months agodcl105 dicer-like 105:
 
GRMZM2G301405
Berube, B et al. 2023. Teosinte Pollen Drive guides maize domestication and evolution by RNAi. bioRxiv preprint. :doi: 10.1101/2023.07.12.548689.   AT3G03300 (TAIR) Reference: July 28th, 2023
Gene Product: September 5th, 2006
Variation: July 28th, 2023
Gene Model: January 29th, 2015
9 months agocncr2 cinnamoyl CoA reductase2:
7.02
GRMZM2G131836
Wang, J et al. 2023. Transcriptome Analysis Revealed the Potential Molecular Mechanism of Anthocyanidins’ Improved Salt Tolerance in Maize Seedlings Plants. 12:2793.     Reference: July 27th, 2023
Gene Product: September 1st, 2003
Variation: October 11th, 2009
Gene Model: June 23rd, 2016
9 months agohmga102 high mobility group family A 102:
1.07
GRMZM2G106133
Wang, J et al. 2023. Transcriptome Analysis Revealed the Potential Molecular Mechanism of Anthocyanidins’ Improved Salt Tolerance in Maize Seedlings Plants. 12:2793.     Reference: July 27th, 2023
Gene Product: September 1st, 2003
Variation: December 9th, 2007
Gene Model: June 24th, 2014
9 months agocyp5 cytochrome P450 5:
 
GRMZM2G119067
Wang, J et al. 2023. Transcriptome Analysis Revealed the Potential Molecular Mechanism of Anthocyanidins’ Improved Salt Tolerance in Maize Seedlings Plants. 12:2793.     Reference: July 27th, 2023
Gene Product: June 20th, 2018
Gene Model: September 28th, 2016
9 months agoels5 early leaf senescence5:
 
   Gao, Y et al. 2023. Mapping the gene of a maize leaf senescence mutant and understanding the senescence pathways by expression analysis Plant Cell Rep. :doi: 10.1007/s00299-023-03051-4.     Reference: July 27th, 2023
Variation: November 22nd, 2019
9 months agomrpa19 multidrug resistance protein associated19:
 
   Craig L Cowling et al. 2023. Roles of auxin pathways in maize biology. J Exp Bot.     Reference: July 26th, 2023
Gene Product: July 11th, 2019
9 months agoppr206 pentatricopeptide repeat protein206:
 
   Shichao Sun et al. 2023. Unraveling prevalence and effects of deleterious mutations in maize elite lines across decades of modern breeding Mol Biol Evol. :doi: 10.1093/molbev/msad170.     Reference: July 26th, 2023
Gene Product: December 27th, 2016
9 months agoarftf33 ARF-transcription factor 33:
 
   Craig L Cowling et al. 2023. Roles of auxin pathways in maize biology. J Exp Bot.     Reference: July 26th, 2023
Gene Product: January 29th, 2022
9 months agoafb2 auxin signaling F-box2:
2.04
GRMZM5G848945
Craig L Cowling et al. 2023. Roles of auxin pathways in maize biology. J Exp Bot.     Reference: July 26th, 2023
Gene Product: April 27th, 2022
Gene Model: August 27th, 2021
9 months agotir2 transport inhibitor response2:
 
GRMZM2G155849
Craig L Cowling et al. 2023. Roles of auxin pathways in maize biology. J Exp Bot.     Reference: July 26th, 2023
Gene Product: April 27th, 2022
Gene Model: May 29th, 2019
9 months agoafb1 auxin signaling F-box1:
 
GRMZM2G137451
Craig L Cowling et al. 2023. Roles of auxin pathways in maize biology. J Exp Bot.     Reference: July 26th, 2023
Gene Product: April 27th, 2022
Gene Model: April 27th, 2022
9 months agodek66 defective kernel66:
 
   Wei, YM et al. 2023. Defective kernel 66 encodes a GTPase essential for kernel development in maize J Exp Bot. :doi: 10.1093/jxb/erad289.     Reference: July 25th, 2023
Variation: July 25th, 2023
9 months agofad2 fatty acid desaturase2:
 
GRMZM2G056252
Gao, L et al. 2023. Genetic and lipidomic analyses reveal the key role of lipid metabolism for cold tolerance in maize J Genet Genomics. :doi: 10.1016/j.jgg.2023.07.004.     Reference: July 24th, 2023
Gene Product: November 27th, 2020
Gene Model: January 6th, 2022
9 months agosacd2 stearoyl-acyl-carrier-protein desaturase2:
8.06
GRMZM2G180399
Gao, L et al. 2023. Genetic and lipidomic analyses reveal the key role of lipid metabolism for cold tolerance in maize J Genet Genomics. :doi: 10.1016/j.jgg.2023.07.004.     Reference: July 24th, 2023
Gene Product: October 10th, 2016
Variation: June 15th, 2016
Gene Model: June 15th, 2016
9 months agoIDP49  :
3.05
GRMZM2G136262
Gao, L et al. 2023. Genetic and lipidomic analyses reveal the key role of lipid metabolism for cold tolerance in maize J Genet Genomics. :doi: 10.1016/j.jgg.2023.07.004.     Reference: July 24th, 2023
Variation: March 31st, 2005
Gene Model: February 24th, 2019
9 months agoarr6 ARR-B-transcription factor 6:
 
   Dong, ZY et al. 2023. The Genetic Structures and Molecular Mechanisms Underlying Ear Traits in Maize (Zea mays L.) Cells. 12:1900.     Reference: July 21st, 2023
Gene Product: June 30th, 2017
9 months agofas1 fascicled ear1:
9.06 - 9.07
   Dong, ZY et al. 2023. The Genetic Structures and Molecular Mechanisms Underlying Ear Traits in Maize (Zea mays L.) Cells. 12:1900.     Reference: July 21st, 2023
Variation: February 13th, 2021
9 months agoslp1 saposin like protein1:
3.04
GRMZM5G877259
Han, ZP et al. 2023. Multi-Omics Revealed the Molecular Mechanism of Maize (Zea mays L.) Seed Germination Regulated by GA3 Agronomy. 13:1929.     Reference: July 21st, 2023
Gene Product: July 21st, 2023
Gene Model: March 28th, 2020
9 months agofea1 fasciated ear1:
 
   Dong, ZY et al. 2023. The Genetic Structures and Molecular Mechanisms Underlying Ear Traits in Maize (Zea mays L.) Cells. 12:1900.     Reference: July 21st, 2023
Variation: October 17th, 2010
9 months agotir1 transport inhibitor response1:
 
GRMZM2G135978
Dong, ZY et al. 2023. The Genetic Structures and Molecular Mechanisms Underlying Ear Traits in Maize (Zea mays L.) Cells. 12:1900.   LOC_Os05g05800 (MSU/TIGR)
Os05g0150500 (Gramene)
Reference: July 21st, 2023
Gene Product: April 27th, 2022
Gene Model: December 28th, 2018
9 months agozb9 zebra crossbands9:
 
GRMZM2G038598
Zhou, YS et al. 2023. A maize epimerase modulates cell wall synthesis and glycosylation during stomatal morphogenesis Nature communications. 14:4384.     Reference: July 21st, 2023
Gene Product: January 23rd, 2021
Variation: July 20th, 2023
Gene Model: January 23rd, 2021
9 months agoead1 ear apical degeneration1 :
 
GRMZM2G329229
Dong, ZY et al. 2023. The Genetic Structures and Molecular Mechanisms Underlying Ear Traits in Maize (Zea mays L.) Cells. 12:1900.     Reference: July 21st, 2023
Variation: March 16th, 2022
Gene Model: March 16th, 2022
9 months agobz2 bronze2:
1.08
   Nan Lu et al. 2023. An unconventional proanthocyanidin pathway in maize Nature communications. 14:4349.     Reference: July 20th, 2023
Gene Product: September 1st, 2003
Variation: March 31st, 2008
9 months agozim20 ZIM-transcription factor 20:
 
   Yuchao Hu et al. 2023. Identification, Characterization, and Expression Profiling of Maize GATA Gene Family in Response to Abiotic and Biotic Stresses Agronomy. 13:1921.     Reference: July 20th, 2023
Gene Product: February 24th, 2021
Variation: March 18th, 2021
9 months agozim47 ZIM-transcription factor 47:
 
   Yuchao Hu et al. 2023. Identification, Characterization, and Expression Profiling of Maize GATA Gene Family in Response to Abiotic and Biotic Stresses Agronomy. 13:1921.     Reference: July 20th, 2023
Gene Product: February 24th, 2021
9 months agoandr2 anthocyanidin reductase2:
 
GRMZM2G097841
Nan Lu et al. 2023. An unconventional proanthocyanidin pathway in maize Nature communications. 14:4349.   AT1G61720 (TAIR) Reference: July 20th, 2023
Gene Product: August 14th, 2022
Gene Model: August 13th, 2022
9 months agogata11 C2C2-GATA-transcription factor 11:
2.03
   Yuchao Hu et al. 2023. Identification, Characterization, and Expression Profiling of Maize GATA Gene Family in Response to Abiotic and Biotic Stresses Agronomy. 13:1921.     Reference: July 20th, 2023
Variation: September 25th, 2007
9 months agobzip91 bZIP-transcription factor 91:
2.08
GRMZM2G060109
Li, ZX; Tang, J; Srivastava, R; Bassham, DC; Howell, SH. 2020. Plant Cell. 0:doi: 10.1105/tpc.20.00260.     Reference: July 19th, 2023
Variation: September 25th, 2007
Gene Model: August 16th, 2021
9 months agohstf2 heat shock transcription factor2:
8.09
GRMZM2G118453
Yang, ZR et al. 2023. Genetic and Molecular Exploration of Maize Environmental Stress Resilience: Towards Sustainable Agriculture Molecular Plant. :doi: 10.1016/j.molp.2023.07.005.     Reference: July 19th, 2023
Gene Product: May 15th, 2020
Variation: December 23rd, 2012
Gene Model: July 28th, 2016
9 months agocipk24 calcineurin B-like-interacting protein kinase24:
6.03
GRMZM2G137569
Yang, ZR et al. 2023. Genetic and Molecular Exploration of Maize Environmental Stress Resilience: Towards Sustainable Agriculture Molecular Plant. :doi: 10.1016/j.molp.2023.07.005.     Reference: July 19th, 2023
Gene Product: August 25th, 2018
Gene Model: August 24th, 2018
9 months agosal1 supernumerary aleurone1:
9.03
   Li, ZX; Tang, J; Srivastava, R; Bassham, DC; Howell, SH. 2020. Plant Cell. 0:doi: 10.1105/tpc.20.00260.     Reference: July 19th, 2023
Variation: April 3rd, 2007
9 months agopmpm5 proteolipid membrane potential regulator5:
7.04 - 7.05
GRMZM2G477325
Yang, ZR et al. 2023. Genetic and Molecular Exploration of Maize Environmental Stress Resilience: Towards Sustainable Agriculture Molecular Plant. :doi: 10.1016/j.molp.2023.07.005.     Reference: July 19th, 2023
Variation: May 3rd, 2021
Gene Model: April 19th, 2013
9 months agocbl11 calcineurin B-like11:
 
GRMZM2G007555
Yang, ZR et al. 2023. Genetic and Molecular Exploration of Maize Environmental Stress Resilience: Towards Sustainable Agriculture Molecular Plant. :doi: 10.1016/j.molp.2023.07.005.     Reference: July 19th, 2023
Gene Product: October 19th, 2016
Gene Model: October 19th, 2016
9 months agonhx8 Na+/H+ antiporter 8:
 
GRMZM2G067747
Yang, ZR et al. 2023. Genetic and Molecular Exploration of Maize Environmental Stress Resilience: Towards Sustainable Agriculture Molecular Plant. :doi: 10.1016/j.molp.2023.07.005.   AT1G79610 (TAIR) Reference: July 19th, 2023
Gene Product: April 26th, 2021
Gene Model: August 25th, 2018
9 months agoosca1 hyperosmolality-gated calcium-permeable channels1:
 
GRMZM2G064189
Yang, ZR et al. 2023. Genetic and Molecular Exploration of Maize Environmental Stress Resilience: Towards Sustainable Agriculture Molecular Plant. :doi: 10.1016/j.molp.2023.07.005.     Reference: July 19th, 2023
Gene Product: January 6th, 2020
Gene Model: January 6th, 2020
9 months agogsk5 glycogen synthase kinase5:
 
GRMZM2G024151
Li, JF et al. 2023. Inhibition of the maize salt overly sensitive pathway by ZmSK3 and ZmSK4 Journal of Genetics and Genomics. :doi: 10.1016/j.jgg.2023.04.010.     Reference: July 19th, 2023
Gene Product: February 22nd, 2022
Gene Model: February 22nd, 2022
9 months agogsk10 glycogen synthase kinase10:
 
GRMZM2G075992
Li, JF et al. 2023. Inhibition of the maize salt overly sensitive pathway by ZmSK3 and ZmSK4 Journal of Genetics and Genomics. :doi: 10.1016/j.jgg.2023.04.010.     Reference: July 19th, 2023
Gene Product: February 22nd, 2022
Gene Model: February 22nd, 2022
9 months agogsk11 glycogen synthase kinase11:
5.00
GRMZM2G138676
Li, JF et al. 2023. Inhibition of the maize salt overly sensitive pathway by ZmSK3 and ZmSK4 Journal of Genetics and Genomics. :doi: 10.1016/j.jgg.2023.04.010.     Reference: July 19th, 2023
Gene Product: February 22nd, 2022
Gene Model: May 2nd, 2020
9 months agofad5 fatty acid desaturase5:
 
GRMZM2G097509
Baisakh, N et al. 2023. Comprehensive meta-analysis of QTL and gene expression studies identify candidate genes associated with Aspergillus flavus resistance in maize Frontiers in Plant Science. 14:1214907.     Reference: July 18th, 2023
Gene Product: September 1st, 2003
Gene Model: January 6th, 2022
9 months agoAQK70872  :
 
   Li, GL et al. 2023. Cloning and expression study of a high-affinity nitrate transporter gene from Zea mays L Plant Signaling and Behavior. 18:2163342.     Reference: July 17th, 2023
Gene Product: September 1st, 2003
9 months agozim13 ZIM-transcription factor 13:
 
   Xing, LJ et al. 2023. ZmmiR169q/ZmNF-YA8 is a module that homeostatically regulates primary root growth and salt tolerance in maize Frontiers in Plant Science. 14:1163228.     Reference: July 17th, 2023
Gene Product: February 24th, 2021
9 months agoaprt1 adenine phosphoribosyltransferase1:
2.04
GRMZM2G170101
Yasuhiro Tanaka et al. 2023. Structure-activity relationship of volatile compounds that induce defense-related genes in maize seedlings. Plant Signal Behav. :2234115.     Reference: July 17th, 2023
Gene Product: April 17th, 2008
Variation: September 8th, 2008
Gene Model: July 27th, 2016
9 months agofh1 frataxin1:
1.06
   Celeste Buchensky et al. 2017. Identification of two frataxin isoforms in Zea mays: Structural and functional studies. Biochimie. 140:34-47.     Reference: July 15th, 2023
Gene Product: July 15th, 2023
9 months agofh2 frataxin2:
3.06
   Celeste Buchensky et al. 2017. Identification of two frataxin isoforms in Zea mays: Structural and functional studies. Biochimie. 140:34-47.     Reference: July 15th, 2023
Gene Product: July 15th, 2023
9 months agoaldr9 aldose reductase9:
 
   Li, J et al. 2023. Exogenous Sorbitol Application Confers Drought Tolerance to Maize Seedlings through Up-Regulating Antioxidant System and Endogenous Sorbitol Biosynthesis. Plants. 12:2456.     Reference: July 14th, 2023
Gene Product: September 28th, 2020
9 months agodmas1 deoxymugineic acid synthase 1:
 
GRMZM2G060952
Li, J et al. 2023. Exogenous Sorbitol Application Confers Drought Tolerance to Maize Seedlings through Up-Regulating Antioxidant System and Endogenous Sorbitol Biosynthesis. Plants. 12:2456.     Reference: July 14th, 2023
Gene Product: April 27th, 2021
Gene Model: April 27th, 2021
9 months agocals3 callose synthase3:
 
GRMZM2G059212
Xue Zhang et al. 2023. Evaluation of Resistance Resources and Analysis of Resistance Mechanism of Maize to Stalk Rot Caused by Fusarium graminearum. Plant Dis. :doi: 10.1094/PDIS-04-23-0825-RE.     Reference: July 14th, 2023
Gene Product: July 5th, 2021
Gene Model: July 5th, 2021
9 months agoaldr3 aldose reductase3:
 
GRMZM2G169943
Li, J et al. 2023. Exogenous Sorbitol Application Confers Drought Tolerance to Maize Seedlings through Up-Regulating Antioxidant System and Endogenous Sorbitol Biosynthesis. Plants. 12:2456.     Reference: July 14th, 2023
Gene Product: September 28th, 2020
Gene Model: July 25th, 2021
9 months agodmas3 deoxymugineic acid synthase3:
 
GRMZM2G087507
Li, J et al. 2023. Exogenous Sorbitol Application Confers Drought Tolerance to Maize Seedlings through Up-Regulating Antioxidant System and Endogenous Sorbitol Biosynthesis. Plants. 12:2456.     Reference: July 14th, 2023
Gene Product: April 27th, 2021
Gene Model: July 26th, 2021
9 months agoaldr8 aldose reductase8:
10.05
AF466202.2_FG007
Li, J et al. 2023. Exogenous Sorbitol Application Confers Drought Tolerance to Maize Seedlings through Up-Regulating Antioxidant System and Endogenous Sorbitol Biosynthesis. Plants. 12:2456.     Reference: July 14th, 2023
Gene Product: September 28th, 2020
Gene Model: July 10th, 2022
9 months agoaldr7 aldose reductase7:
2.10
GRMZM2G016236
Li, J et al. 2023. Exogenous Sorbitol Application Confers Drought Tolerance to Maize Seedlings through Up-Regulating Antioxidant System and Endogenous Sorbitol Biosynthesis. Plants. 12:2456.     Reference: July 14th, 2023
Gene Product: September 28th, 2020
Gene Model: March 24th, 2020
9 months agoaldr1 aldose reductase1:
3.06
GRMZM2G479423
Li, J et al. 2023. Exogenous Sorbitol Application Confers Drought Tolerance to Maize Seedlings through Up-Regulating Antioxidant System and Endogenous Sorbitol Biosynthesis. Plants. 12:2456.     Reference: July 14th, 2023
Gene Product: September 28th, 2020
Gene Model: September 28th, 2020
10 months agoccamk1 calcium/calmodulin dependent protein kinase1:
 
GRMZM2G062772
Francisco Roberto Quiroz-Figueroa et al. 2023. Cell wall-related genes and lignin accumulation contribute to the root resistance in different maize (Zea mays L.) genotypes to Fusarium verticillioides (Sacc.) Nirenberg infection. Frontiers in Plant Science. 14:1195794.     Reference: July 13th, 2023
Gene Product: December 3rd, 2013
Variation: July 7th, 2017
Gene Model: April 23rd, 2013
10 months agotsa1 tryptophan synthase alpha subunit1:
 
GRMZM5G841619
Francisco Roberto Quiroz-Figueroa et al. 2023. Cell wall-related genes and lignin accumulation contribute to the root resistance in different maize (Zea mays L.) genotypes to Fusarium verticillioides (Sacc.) Nirenberg infection. Frontiers in Plant Science. 14:1195794.     Reference: July 13th, 2023
Gene Product: October 21st, 2011
Gene Model: October 14th, 2011
10 months agosnrkII8 SnRK2 serine threonine protein kinase8:
 
GRMZM2G138861
Francisco Roberto Quiroz-Figueroa et al. 2023. Cell wall-related genes and lignin accumulation contribute to the root resistance in different maize (Zea mays L.) genotypes to Fusarium verticillioides (Sacc.) Nirenberg infection. Frontiers in Plant Science. 14:1195794.     Reference: July 13th, 2023
Gene Product: April 14th, 2018
Variation: August 31st, 2018
Gene Model: February 11th, 2015
10 months agotrpp13 trehalose-6-phosphate phosphatase13:
 
GRMZM5G890599
Francisco Roberto Quiroz-Figueroa et al. 2023. Cell wall-related genes and lignin accumulation contribute to the root resistance in different maize (Zea mays L.) genotypes to Fusarium verticillioides (Sacc.) Nirenberg infection. Frontiers in Plant Science. 14:1195794.     Reference: July 13th, 2023
Gene Product: October 3rd, 2020
Gene Model: April 2nd, 2019
10 months agoacco7 1-aminocyclopropane-1-carboxylate oxidase7:
 
GRMZM2G089856
Francisco Roberto Quiroz-Figueroa et al. 2023. Cell wall-related genes and lignin accumulation contribute to the root resistance in different maize (Zea mays L.) genotypes to Fusarium verticillioides (Sacc.) Nirenberg infection. Frontiers in Plant Science. 14:1195794.     Reference: July 13th, 2023
Gene Product: May 16th, 2016
Gene Model: June 24th, 2021
10 months agopti2 pto-interacting2:
10.03
GRMZM2G061447
Francisco Roberto Quiroz-Figueroa et al. 2023. Cell wall-related genes and lignin accumulation contribute to the root resistance in different maize (Zea mays L.) genotypes to Fusarium verticillioides (Sacc.) Nirenberg infection. Frontiers in Plant Science. 14:1195794.     Reference: July 13th, 2023
Gene Product: May 13th, 2014
Gene Model: November 25th, 2019
10 months agoIDP3879  :
4.05
GRMZM2G064695
Francisco Roberto Quiroz-Figueroa et al. 2023. Cell wall-related genes and lignin accumulation contribute to the root resistance in different maize (Zea mays L.) genotypes to Fusarium verticillioides (Sacc.) Nirenberg infection. Frontiers in Plant Science. 14:1195794.     Reference: July 13th, 2023
Variation: March 31st, 2005
Gene Model: May 22nd, 2021
10 months agoftsh1 filamentation temperature-sensitive H 2A homolog1:
9.04
   Xuehang Xiong et al. 2023. Genetic dissection of maize (Zea mays L.) chlorophyll content using multi-locus genome-wide association studies. BMC Genomics. 24:384.     Reference: July 11th, 2023
Gene Product: September 10th, 2019
10 months agobnlg1136a  :
6.07
GRMZM5G847466
Zhang, YC et al. 2023. Comprehensive analysis of transcriptional data on seed germination of two maize inbred lines under low-temperature conditions. Plant Physiol Biochem. 201:107874.     Reference: July 11th, 2023
Variation: September 1st, 2003
Gene Model: August 30th, 2018
10 months agoim30p1 IM30 protein homolog1:
3.06
   Xuehang Xiong et al. 2023. Genetic dissection of maize (Zea mays L.) chlorophyll content using multi-locus genome-wide association studies. BMC Genomics. 24:384.     Reference: July 11th, 2023
Gene Product: September 1st, 2003
Variation: March 2nd, 2015
10 months agopyl8 pyrabactin resistance-like protein8:
8.04
GRMZM2G165567
Zhang, YC et al. 2023. Comprehensive analysis of transcriptional data on seed germination of two maize inbred lines under low-temperature conditions. Plant Physiol Biochem. 201:107874.     Reference: July 11th, 2023
Gene Product: January 31st, 2021
Gene Model: April 21st, 2018
10 months agosaur38 small auxin up RNA38:
4.05
GRMZM2G076345
Zhang, YC et al. 2023. Comprehensive analysis of transcriptional data on seed germination of two maize inbred lines under low-temperature conditions. Plant Physiol Biochem. 201:107874.     Reference: July 11th, 2023
Gene Product: November 26th, 2021
Gene Model: April 16th, 2020
10 months agorafs2 raffinose synthase2:
 
GRMZM2G050273
Yu, S et al. 2023. Identification and expression analysis of 21-nt and 24-nt phased small interfering RNAs in maize tissues Plant Growth Regulation. :doi: 10.1007/s10725-023-01040-x.     Reference: July 11th, 2023
Gene Product: October 25th, 2019
Gene Model: March 1st, 2018
10 months agopyl12 pyrabactin resistance-like protein12:
 
GRMZM2G405064
Zhang, YC et al. 2023. Comprehensive analysis of transcriptional data on seed germination of two maize inbred lines under low-temperature conditions. Plant Physiol Biochem. 201:107874.     Reference: July 11th, 2023
Gene Product: January 31st, 2021
Gene Model: April 21st, 2018
10 months agopyl1 pyrabactin resistance-like protein1:
 
AC194914.3_FG002
Zhang, YC et al. 2023. Comprehensive analysis of transcriptional data on seed germination of two maize inbred lines under low-temperature conditions. Plant Physiol Biochem. 201:107874.     Reference: July 11th, 2023
Gene Product: January 31st, 2021
Gene Model: January 31st, 2021
10 months agoIDP1458  :
10.02
GRMZM2G005848
Xuehang Xiong et al. 2023. Genetic dissection of maize (Zea mays L.) chlorophyll content using multi-locus genome-wide association studies. BMC Genomics. 24:384.     Reference: July 11th, 2023
Variation: March 31st, 2005
Gene Model: December 31st, 2017
10 months agodbf3 DRE-binding protein3:
2.07
   Zhang, YC et al. 2023. Comprehensive analysis of transcriptional data on seed germination of two maize inbred lines under low-temperature conditions. Plant Physiol Biochem. 201:107874.     Reference: July 11th, 2023
Gene Product: April 10th, 2013
Variation: October 23rd, 2019
10 months agoumc1951  :
3.06
GRMZM2G429982
Asmaa A Sharf-Eldin et al. 2023. Response of Maize Seedlings to Silicon Dioxide Nanoparticles (SiO2NPs) under Drought Stress Plants. 12:2592.     Reference: July 8th, 2023
Variation: September 1st, 2003
Gene Model: March 5th, 2021
10 months agowhp1 white pollen1:
2.08
   Liping Chen et al. 2023. ZmCOP1 Regulates Maize Mesocotyl Length and Plant Height through the Phytohormone Pathways Life. 13:1522.     Reference: July 7th, 2023
Gene Product: September 1st, 2003
Variation: August 24th, 2013
10 months agoflz14 FCS-like zinc finger14:
 
GRMZM2G099166
Yang, C et al. 2023. A Positive Feedback Regulation of SnRK1 Signaling by Autophagy in Plants. Molecular Plant. :doi: 10.1016/j.molp.2023.07.001.     Reference: July 6th, 2023
Gene Product: March 29th, 2021
Gene Model: February 21st, 2020
10 months agorhw1 regulator of husk leaf width1:
 
   Xia, AA et al. 2023. The RHW1-ZCN4 regulatory pathway confers natural variation of husk leaf width in maize. New Phytol. :doi: 10.1111/nph.19116.     Reference: July 5th, 2023
Variation: July 5th, 2023
10 months agoiqd13 IQ-domain 13:
4.04
GRMZM2G162020
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Gene Model: May 22nd, 2021
10 months agorpo1 RNA polymerase II homolog1:
1.08
GRMZM2G113928
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: July 5th, 2023
Variation: September 1st, 2003
Gene Model: August 18th, 2019
10 months agoumc2069  :
10.02
GRMZM5G803992
Chen, QQ et al. 2023. RNA polymerase common subunit ZmRPABC5b is transcriptionally activated by Opaque2 and essential for endosperm development in maize Nucl Acid Res. :doi: 10.1093/nar/gkad571.     Reference: July 5th, 2023
Gene Product: July 5th, 2023
Gene Model: January 18th, 2018
10 months agoiqd4 IQ-domain 4:
1.08
GRMZM2G038988
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Gene Model: February 14th, 2020
10 months agoiqd9 IQ-domain 9:
3.06
GRMZM2G155954
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Gene Model: April 5th, 2020
10 months agoaga2 alkaline galactosidase2:
 
GRMZM2G127147
Junhao Xu et al. 2023. Identification and Alternative Splicing Profile of the Raffinose synthase Gene in Grass Species Int J Mol Sci. 24:11120.     Reference: July 5th, 2023
Gene Product: March 1st, 2018
Gene Model: March 1st, 2018
10 months agoaga3 alkaline galactosidase3:
 
GRMZM2G037265
Junhao Xu et al. 2023. Identification and Alternative Splicing Profile of the Raffinose synthase Gene in Grass Species Int J Mol Sci. 24:11120.     Reference: July 5th, 2023
Gene Product: March 1st, 2018
Gene Model: March 1st, 2018
10 months agoaga4 alkaline galactosidase4:
 
GRMZM2G077181
Junhao Xu et al. 2023. Identification and Alternative Splicing Profile of the Raffinose synthase Gene in Grass Species Int J Mol Sci. 24:11120.     Reference: July 5th, 2023
Gene Product: March 1st, 2018
Gene Model: March 1st, 2018
10 months agoaga5 alkaline galactosidase5:
 
GRMZM2G047292
Junhao Xu et al. 2023. Identification and Alternative Splicing Profile of the Raffinose synthase Gene in Grass Species Int J Mol Sci. 24:11120.     Reference: July 5th, 2023
Gene Product: March 1st, 2018
Gene Model: March 1st, 2018
10 months agoiqd15 IQ-domain 15:
 
GRMZM5G826979
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: September 1st, 2003
Gene Model: December 17th, 2019
10 months agoiqd1 IQ-domain 1:
 
GRMZM2G102497
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Gene Model: May 23rd, 2021
10 months agoiqd2 IQ-domain 2:
 
GRMZM2G018030
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Gene Model: May 23rd, 2021
10 months agoiqd3 IQ-domain 3:
 
GRMZM2G070673
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Gene Model: May 23rd, 2021
10 months agoiqd5 IQ-domain 5:
 
GRMZM2G039187
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Gene Model: May 23rd, 2021
10 months agoiqd6 IQ-domain 6:
 
GRMZM2G433557
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Gene Model: May 23rd, 2021
10 months agoiqd7 IQ-domain 7:
 
GRMZM2G371176
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Gene Model: May 23rd, 2021
10 months agoiqd8 IQ-domain 8:
 
GRMZM2G342821
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Gene Model: May 23rd, 2021
10 months agoiqd10 IQ-domain 10:
 
GRMZM2G177929
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Gene Model: May 23rd, 2021
10 months agoiqd12 IQ-domain 12:
 
GRMZM2G008764
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Gene Model: May 23rd, 2021
10 months agoiqd14 IQ-domain 14:
 
GRMZM2G028813
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Gene Model: May 23rd, 2021
10 months agoiqd16 IQ-domain 16:
 
GRMZM2G406674
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: September 1st, 2003
Gene Model: May 23rd, 2021
10 months agoiqd17 IQ-domain 17:
 
GRMZM5G892879
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Gene Model: May 23rd, 2021
10 months agoiqd18 IQ-domain 18:
 
GRMZM2G147840
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Gene Model: May 23rd, 2021
10 months agoiqd20 IQ-domain 20:
 
GRMZM2G058690
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Gene Model: May 23rd, 2021
10 months agoiqd23 IQ-domain 23:
 
AC203173.3_FG001
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Gene Model: May 23rd, 2021
10 months agoiqd22 IQ-domain 22:
 
GRMZM2G100229
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Gene Model: May 23rd, 2021
10 months agoiqd26 IQ-domain 26:
 
GRMZM2G095892
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Gene Model: May 23rd, 2021
10 months agoiqd28 IQ-domain 28:
8.06
GRMZM2G024799
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Variation: July 5th, 2023
Gene Model: September 3rd, 2019
10 months agodek701 defective kernel701:
8.06
GRMZM5G834335
Chen, QQ et al. 2023. RNA polymerase common subunit ZmRPABC5b is transcriptionally activated by Opaque2 and essential for endosperm development in maize Nucl Acid Res. :doi: 10.1093/nar/gkad571.     Reference: July 5th, 2023
Gene Product: July 5th, 2023
Variation: July 5th, 2023
Gene Model: September 3rd, 2019
10 months agoiqd25 IQ-domain 25:
10.04
GRMZM5G845601
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Variation: March 31st, 2005
Gene Model: January 18th, 2018
10 months agoiqd21 IQ-domain 21:
8.05
GRMZM2G012584
Li, H et al. 2023. IQ domain-containing protein ZmIQD27 modulates water transport in maize. Plant Physiol. :doi: 10.1093/plphys/kiad390.     Reference: July 5th, 2023
Gene Product: May 23rd, 2021
Gene Model: September 1st, 2019
10 months agovdac3 voltage-dependent anion channel protein3:
 
   Carolina Rodríguez-Saavedra et al. 2023. Identification and Characterization of VDAC Family in Maize Plants. 12:2542.     Reference: July 4th, 2023
Gene Product: July 4th, 2023
10 months agovdac4 voltage-dependent anion channel protein4:
 
   Carolina Rodríguez-Saavedra et al. 2023. Identification and Characterization of VDAC Family in Maize Plants. 12:2542.     Reference: July 4th, 2023
Gene Product: July 4th, 2023
10 months agovdac5 voltage-dependent anion channel protein5:
 
   Carolina Rodríguez-Saavedra et al. 2023. Identification and Characterization of VDAC Family in Maize Plants. 12:2542.     Reference: July 4th, 2023
Gene Product: July 4th, 2023
10 months agovdac6 voltage-dependent anion channel protein6:
 
   Carolina Rodríguez-Saavedra et al. 2023. Identification and Characterization of VDAC Family in Maize Plants. 12:2542.     Reference: July 4th, 2023
Gene Product: July 4th, 2023
10 months agovdac1a voltage-dependent anion channel protein1a:
2.06
GRMZM2G150616
Carolina Rodríguez-Saavedra et al. 2023. Identification and Characterization of VDAC Family in Maize Plants. 12:2542.     Reference: July 4th, 2023
Gene Product: January 24th, 2014
Variation: July 14th, 2009
Gene Model: July 29th, 2015
10 months agoommp1 outer mitochondrial membrane porin1:
1.01
GRMZM2G018417
Carolina Rodríguez-Saavedra et al. 2023. Identification and Characterization of VDAC Family in Maize Plants. 12:2542.     Reference: July 4th, 2023
Gene Product: July 4th, 2023
Variation: September 25th, 2007
Gene Model: April 26th, 2016
10 months agopor1 porin1:
8.06
GRMZM2G155021
Carolina Rodríguez-Saavedra et al. 2023. Identification and Characterization of VDAC Family in Maize Plants. 12:2542.     Reference: July 4th, 2023
Gene Product: September 1st, 2003
Variation: August 20th, 2015
Gene Model: February 5th, 2015
10 months agovdac1b voltage-dependent anion channel protein1b:
7.02
GRMZM2G146670
Carolina Rodríguez-Saavedra et al. 2023. Identification and Characterization of VDAC Family in Maize Plants. 12:2542.     Reference: July 4th, 2023
Gene Product: July 4th, 2023
Variation: January 13th, 2016
Gene Model: July 29th, 2015
10 months agovdac2 voltage-dependent anion channel protein2:
6.07
GRMZM2G115049
Carolina Rodríguez-Saavedra et al. 2023. Identification and Characterization of VDAC Family in Maize Plants. 12:2542.     Reference: July 4th, 2023
Gene Product: July 4th, 2023
Variation: January 7th, 2016
Gene Model: July 29th, 2015
10 months agomsl2 mechanosensitive channel of small conductance-like2:
2.02
   Olivia S Hazelwood et al. 2023. Characterization of mechanosensitive MSL gene family expression in Zea mays aerial and subterranean brace roots. MicroPubl Biol. 2023:doi: 10.17912/micropub.biology.000759.     Reference: July 3rd, 2023
Gene Product: October 8th, 2020
Variation: November 16th, 2017
10 months agosbp22 SBP-transcription factor 22:
 
   Li, ZW et al. 2023. Jasmonic acid-mediated stress responses share the molecular mechanism underlying male sterility induced by deficiency of ZmMs33 in maize The Crop Journal. :doi: 10.1016/j.cj.2023.06.002.     Reference: July 3rd, 2023
Gene Product: July 5th, 2019
10 months agomsl1 mechanosensitive channel of small conductance-like1:
 
GRMZM2G028914
Olivia S Hazelwood et al. 2023. Characterization of mechanosensitive MSL gene family expression in Zea mays aerial and subterranean brace roots. MicroPubl Biol. 2023:doi: 10.17912/micropub.biology.000759.     Reference: July 3rd, 2023
Gene Product: October 8th, 2020
Gene Model: October 8th, 2020
10 months agomsl4 mechanosensitive channel of small conductance-like4:
 
GRMZM2G303244
Olivia S Hazelwood et al. 2023. Characterization of mechanosensitive MSL gene family expression in Zea mays aerial and subterranean brace roots. MicroPubl Biol. 2023:doi: 10.17912/micropub.biology.000759.     Reference: July 3rd, 2023
Gene Product: October 8th, 2020
Gene Model: October 8th, 2020
10 months agomsl5 mechanosensitive channel of small conductance-like5:
 
GRMZM2G005996
Olivia S Hazelwood et al. 2023. Characterization of mechanosensitive MSL gene family expression in Zea mays aerial and subterranean brace roots. MicroPubl Biol. 2023:doi: 10.17912/micropub.biology.000759.     Reference: July 3rd, 2023
Gene Product: October 8th, 2020
Gene Model: October 8th, 2020
10 months agomsl6 mechanosensitive channel of small conductance-like6:
 
AY530952.1_FG001
Olivia S Hazelwood et al. 2023. Characterization of mechanosensitive MSL gene family expression in Zea mays aerial and subterranean brace roots. MicroPubl Biol. 2023:doi: 10.17912/micropub.biology.000759.     Reference: July 3rd, 2023
Gene Product: October 8th, 2020
Gene Model: October 8th, 2020
10 months agomsl7 mechanosensitive channel of small conductance-like7:
 
GRMZM2G005013
Olivia S Hazelwood et al. 2023. Characterization of mechanosensitive MSL gene family expression in Zea mays aerial and subterranean brace roots. MicroPubl Biol. 2023:doi: 10.17912/micropub.biology.000759.     Reference: July 3rd, 2023
Gene Product: October 8th, 2020
Gene Model: October 8th, 2020
10 months agomsl8 mechanosensitive channel of small conductance-like8:
 
GRMZM2G090627
Olivia S Hazelwood et al. 2023. Characterization of mechanosensitive MSL gene family expression in Zea mays aerial and subterranean brace roots. MicroPubl Biol. 2023:doi: 10.17912/micropub.biology.000759.     Reference: July 3rd, 2023
Gene Product: October 8th, 2020
Gene Model: October 8th, 2020
10 months agork1 reversed kernel1:
 
   Wang, Y et al. 2023. BSA-Seq and Transcriptomic Analysis Provide Candidate Genes Associated with Inflorescence Architecture and Kernel Orientation by Phytohormone Homeostasis in Maize Int J Mol Sci. 24:10728.     Reference: June 29th, 2023
Variation: June 29th, 2023
10 months agoppr100 pentatricopeptide repeat100:
 
GRMZM2G428579
Wang, Y et al. 2023. BSA-Seq and Transcriptomic Analysis Provide Candidate Genes Associated with Inflorescence Architecture and Kernel Orientation by Phytohormone Homeostasis in Maize Int J Mol Sci. 24:10728.   At2g01860 (TAIR)
LOC_Os02g02590 (MSU/TIGR)
Reference: June 29th, 2023
Gene Product: December 27th, 2016
Gene Model: May 20th, 2017
10 months agodhn13 dehydrin13:
1.09
GRMZM2G169372
Qin, L et al. 2023. Molecular and functional dissection of LIGULELESS1 (LG1) in plants. Frontiers in Plant Science. 14:1190004.     Reference: June 28th, 2023
Gene Product: August 5th, 2017
Variation: October 13th, 2016
Gene Model: October 14th, 2016
10 months agopza01360  :
3.09
   Chenchen Zhang et al. 2023. Identification and Functional Characterization of ZmSCYL2 Involved in Phytosterol Accumulation in Plants. Int J Mol Sci. 24:10411.     Reference: June 28th, 2023
Variation: November 7th, 2017
10 months agoumc1117  :
4.04
GRMZM2G050982
Anika Kovincic et al. 2023. Efficiency of Biological Typing Methods in Maize Hybrid Genetic Purity Estimation. Genes. 14:1195.     Reference: June 28th, 2023
Variation: September 1st, 2003
Gene Model: April 17th, 2018
10 months agoumc1133  :
6.01
GRMZM2G466498
Anika Kovincic et al. 2023. Efficiency of Biological Typing Methods in Maize Hybrid Genetic Purity Estimation. Genes. 14:1195.     Reference: June 28th, 2023
Variation: September 1st, 2003
Gene Model: February 20th, 2021
10 months agorcc1 regulator of chromosome condensation1:
3.06
GRMZM2G302245
Anika Kovincic et al. 2023. Efficiency of Biological Typing Methods in Maize Hybrid Genetic Purity Estimation. Genes. 14:1195.     Reference: June 28th, 2023
Gene Product: August 2nd, 2021
Variation: March 28th, 2018
Gene Model: March 28th, 2018
10 months agobzip121 bZIP-transcription factor 121:
2.04
GRMZM2G112483
Anika Kovincic et al. 2023. Efficiency of Biological Typing Methods in Maize Hybrid Genetic Purity Estimation. Genes. 14:1195.     Reference: June 28th, 2023
Variation: September 1st, 2003
Gene Model: February 21st, 2018
10 months agoumc1478  :
5.01
GRMZM2G007260
Anika Kovincic et al. 2023. Efficiency of Biological Typing Methods in Maize Hybrid Genetic Purity Estimation. Genes. 14:1195.     Reference: June 28th, 2023
Variation: September 1st, 2003
Gene Model: May 3rd, 2020
10 months agocbl9 calcineurin B-like9:
 
GRMZM2G015324
Jiawei Li et al. 2023. Research Progress on the Mechanism of Salt Tolerance in Maize: A Classic Field That Needs New Efforts. Plants. 12:2356.     Reference: June 28th, 2023
Gene Product: October 19th, 2016
Gene Model: October 19th, 2016
10 months agotrl1 tassels replace upper ears-like1:
 
GRMZM2G060723
Qin, L et al. 2023. Molecular and functional dissection of LIGULELESS1 (LG1) in plants. Frontiers in Plant Science. 14:1190004.   AT3G57130 (TAIR) Reference: June 28th, 2023
Gene Product: June 30th, 2021
Gene Model: December 25th, 2018
10 months agotraf7 TNF receptor-associated factor 7:
 
GRMZM2G022606
Qin, L et al. 2023. Molecular and functional dissection of LIGULELESS1 (LG1) in plants. Frontiers in Plant Science. 14:1190004.     Reference: June 28th, 2023
Gene Product: June 30th, 2021
Gene Model: May 20th, 2019
10 months agoalmt2 aluminum-activated malate transporter homolog2:
 
GRMZM5G858653
Jiawei Li et al. 2023. Research Progress on the Mechanism of Salt Tolerance in Maize: A Classic Field That Needs New Efforts. Plants. 12:2356.     Reference: June 28th, 2023
Gene Product: March 16th, 2022
Gene Model: April 28th, 2021
10 months agorpe1 Ribulose-phosphate 3-epimerase1:
1.02
   Ikkurti Gopinath et al. 2023. Meta-QTL analysis and identification of candidate genes governing popping quality attributes in maize S Afr J Bot. 159:461-471.     Reference: June 26th, 2023
Variation: August 4th, 2017
10 months agogras37 GRAS-transcription factor 37:
 
   McFarland, FL et al. 2023. A key to totipotency: Wuschel-like homeobox 2a unlocks embryogenic culture response in maize (Zea mays L.). Plant Biotechnol J. :doi: 10.1111/pbi.14098.     Reference: June 26th, 2023
Gene Product: June 24th, 2019
Variation: June 24th, 2019
10 months agozmm15 Zea mays MADS-box 15:
5.01
GRMZM2G553379
Li, CH, et al. 2022. Nature Plants. doi: 10.1038/s41477-022-01190-2     Reference: June 26th, 2023
Variation: June 15th, 2018
Gene Model: June 15th, 2018
10 months agoAY104289  :
6.07
GRMZM2G381709
Ikkurti Gopinath et al. 2023. Meta-QTL analysis and identification of candidate genes governing popping quality attributes in maize S Afr J Bot. 159:461-471.     Reference: June 26th, 2023
Variation: September 25th, 2007
Gene Model: August 29th, 2018
10 months agoremo3 remorin3:
 
GRMZM2G122937
Alpana Joshi et al. 2023. Integrated Molecular and Bioinformatics Approaches for Disease-Related Genes in Plants Plants. 12:2454.     Reference: June 26th, 2023
Gene Product: September 24th, 2018
Variation: April 16th, 2019
Gene Model: April 16th, 2019
10 months agopsk1 phytosulfokine peptide precursor1:
7.00
GRMZM2G044194
Cao, YY et al. 2023. Single-cell RNA sequencing profiles reveal cell type-specific transcriptional regulation networks conditioning fungal invasion in maize roots. Plant Biotechnol J.     Reference: June 23rd, 2023
Variation: May 9th, 2009
Gene Model: December 30th, 2015
10 months agopal10 phenylalanine ammonia lyase homolog10:
 
GRMZM2G326335
Cao, YY et al. 2023. Single-cell RNA sequencing profiles reveal cell type-specific transcriptional regulation networks conditioning fungal invasion in maize roots. Plant Biotechnol J.     Reference: June 23rd, 2023
Gene Product: August 13th, 2022
Gene Model: September 6th, 2019
10 months agogst55 glutathione S-transferase55:
 
   Sina Barghahn et al. 2023. Combination of transcriptomic, proteomic and degradomic profiling reveals common and distinct patterns of pathogen-induced cell death in maize. Plant J. :doi: 10.1111/tpj.16356.     Reference: June 21st, 2023
Gene Product: September 1st, 2003
10 months agorpnu1 regulator of pollen number1:
 
   Ting Guo et al. 2023. ZmRPN1 confers quantitative variation in pollen number and boosts hybrid seed production in maize. Plant Biotechnol J. :doi: 10.1111/pbi.14105.     Reference: June 21st, 2023
Variation: June 21st, 2023
10 months agolon1 LON peptidase1:
7.03
GRMZM2G109560
Sina Barghahn et al. 2023. Combination of transcriptomic, proteomic and degradomic profiling reveals common and distinct patterns of pathogen-induced cell death in maize. Plant J. :doi: 10.1111/tpj.16356.     Reference: June 21st, 2023
Gene Product: September 1st, 2003
Variation: January 8th, 2013
Gene Model: July 28th, 2016
10 months agogst35 glutathione transferase35:
9.08
GRMZM2G161891
Sina Barghahn et al. 2023. Combination of transcriptomic, proteomic and degradomic profiling reveals common and distinct patterns of pathogen-induced cell death in maize. Plant J. :doi: 10.1111/tpj.16356.     Reference: June 21st, 2023
Gene Product: September 1st, 2003
Gene Model: July 27th, 2016
10 months agoago18b argonaute18b:
1.08
GRMZM2G457370
Dai, ZK et al. 2023. ZmAGO18b negatively regulates maize resistance against southern leaf blight. Theor Appl Genet. 136:158.     Reference: June 21st, 2023
Gene Product: August 12th, 2016
Variation: August 17th, 2019
Gene Model: August 12th, 2016
10 months agoago1c argonaute1c:
 
GRMZM2G039455
Dai, ZK et al. 2023. ZmAGO18b negatively regulates maize resistance against southern leaf blight. Theor Appl Genet. 136:158.   AT1G48410 (TAIR) Reference: June 21st, 2023
Gene Product: August 12th, 2016
Gene Model: February 6th, 2016
10 months agoago2a argonaute2a:
 
GRMZM2G007791
Dai, ZK et al. 2023. ZmAGO18b negatively regulates maize resistance against southern leaf blight. Theor Appl Genet. 136:158.     Reference: June 21st, 2023
Gene Product: August 12th, 2016
Gene Model: August 13th, 2016
10 months agoago2b argonaute2b:
 
GRMZM2G354867
Dai, ZK et al. 2023. ZmAGO18b negatively regulates maize resistance against southern leaf blight. Theor Appl Genet. 136:158.     Reference: June 21st, 2023
Gene Product: August 12th, 2016
Gene Model: August 13th, 2016
10 months agoms28 male sterile28:
 
GRMZM2G123063
Dai, ZK et al. 2023. ZmAGO18b negatively regulates maize resistance against southern leaf blight. Theor Appl Genet. 136:158.     Reference: June 21st, 2023
Gene Product: August 12th, 2016
Variation: March 3rd, 2021
Gene Model: August 13th, 2016
10 months agoago10b argonaute10b:
 
GRMZM2G079080
Dai, ZK et al. 2023. ZmAGO18b negatively regulates maize resistance against southern leaf blight. Theor Appl Genet. 136:158.     Reference: June 21st, 2023
Gene Product: August 12th, 2016
Gene Model: August 13th, 2016
10 months agomca10 metacaspase10:
 
GRMZM2G066041
Sina Barghahn et al. 2023. Combination of transcriptomic, proteomic and degradomic profiling reveals common and distinct patterns of pathogen-induced cell death in maize. Plant J. :doi: 10.1111/tpj.16356.     Reference: June 21st, 2023
Gene Product: October 27th, 2020
Gene Model: October 27th, 2020
10 months agoccp31 cysteine protease31:
 
GRMZM2G010435
Sina Barghahn et al. 2023. Combination of transcriptomic, proteomic and degradomic profiling reveals common and distinct patterns of pathogen-induced cell death in maize. Plant J. :doi: 10.1111/tpj.16356.     Reference: June 21st, 2023
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
10 months agoago104 argonaute104:
6.07
GRMZM2G141818
Dai, ZK et al. 2023. ZmAGO18b negatively regulates maize resistance against southern leaf blight. Theor Appl Genet. 136:158.     Reference: June 21st, 2023
Gene Product: August 12th, 2016
Variation: September 4th, 2013
Gene Model: March 31st, 2011
10 months agozp1 zein alpha protein1:
4.04
   Jessica AS Barros et al. 2023. Autophagy during Maize Endosperm Development Dampens Oxidative Stress and Promotes Mitochondrial Clearance. Plant Physiol.     Reference: June 19th, 2023
Gene Product: September 1st, 2003
Variation: May 19th, 2015
10 months agocts1 citrate synthase1:
5.04
GRMZM2G063851
Jessica AS Barros et al. 2023. Autophagy during Maize Endosperm Development Dampens Oxidative Stress and Promotes Mitochondrial Clearance. Plant Physiol.     Reference: June 19th, 2023
Gene Product: July 5th, 2019
Variation: June 10th, 2014
Gene Model: June 10th, 2014
10 months agoapx11 ascorbate peroxidase11:
10.02
GRMZM2G014397
Jessica AS Barros et al. 2023. Autophagy during Maize Endosperm Development Dampens Oxidative Stress and Promotes Mitochondrial Clearance. Plant Physiol.     Reference: June 19th, 2023
Gene Product: October 15th, 2020
Gene Model: January 25th, 2018
10 months agoaco1 aconitase1:
4.04
GRMZM2G020801
Jessica AS Barros et al. 2023. Autophagy during Maize Endosperm Development Dampens Oxidative Stress and Promotes Mitochondrial Clearance. Plant Physiol.     Reference: June 19th, 2023
Gene Product: September 1st, 2003
Variation: March 28th, 2015
Gene Model: March 28th, 2015
10 months agofl1 floury endosperm1:
2.04
GRMZM2G094532
Jessica AS Barros et al. 2023. Autophagy during Maize Endosperm Development Dampens Oxidative Stress and Promotes Mitochondrial Clearance. Plant Physiol.     Reference: June 19th, 2023
Gene Product: July 8th, 2013
Variation: September 16th, 2010
Gene Model: July 8th, 2013
10 months agocsu849(atpb)  :
8.03
GRMZM2G021331
Jessica AS Barros et al. 2023. Autophagy during Maize Endosperm Development Dampens Oxidative Stress and Promotes Mitochondrial Clearance. Plant Physiol.     Reference: June 19th, 2023
Gene Product: September 1st, 2003
Gene Model: August 21st, 2014
10 months agommc0312a  :
3.04
GRMZM2G018951
Jessica AS Barros et al. 2023. Autophagy during Maize Endosperm Development Dampens Oxidative Stress and Promotes Mitochondrial Clearance. Plant Physiol.     Reference: June 19th, 2023
Variation: September 1st, 2003
Gene Model: March 23rd, 2018
10 months agopme1 pectin methylesterase1:
10.04
GRMZM2G125356
Xiaohong Yuan et al. 2023. The NAC transcription factor ZmNAC132 regulates leaf senescence and male fertility in maize. Plant Sci. doi: 10.1016/j.plantsci.2023.111774     Reference: June 19th, 2023
Gene Product: September 10th, 2018
Variation: October 8th, 2015
Gene Model: October 8th, 2015
10 months agolimtf14 LIM-transcription factor 14:
 
   Xiaohong Yuan et al. 2023. The NAC transcription factor ZmNAC132 regulates leaf senescence and male fertility in maize. Plant Sci. doi: 10.1016/j.plantsci.2023.111774     Reference: June 19th, 2023
Gene Product: December 16th, 2019
10 months agolimtf8 LIM-transcription factor 8:
 
   Xiaohong Yuan et al. 2023. The NAC transcription factor ZmNAC132 regulates leaf senescence and male fertility in maize. Plant Sci. doi: 10.1016/j.plantsci.2023.111774     Reference: June 19th, 2023
Gene Product: December 16th, 2019
10 months agolimtf9 LIM-transcription factor 9:
 
   Xiaohong Yuan et al. 2023. The NAC transcription factor ZmNAC132 regulates leaf senescence and male fertility in maize. Plant Sci. doi: 10.1016/j.plantsci.2023.111774     Reference: June 19th, 2023
Gene Product: December 16th, 2019
10 months agoaaap3 amino acid/auxin permease3:
1.05
GRMZM2G017170
Xiaohong Yuan et al. 2023. The NAC transcription factor ZmNAC132 regulates leaf senescence and male fertility in maize. Plant Sci. doi: 10.1016/j.plantsci.2023.111774     Reference: June 19th, 2023
Gene Product: March 31st, 2021
Variation: January 10th, 2017
Gene Model: June 15th, 2017
10 months agosam1 S-adenosylmethionine decarboxylase1:
10.04 - 10.05
GRMZM2G125635
Jessica AS Barros et al. 2023. Autophagy during Maize Endosperm Development Dampens Oxidative Stress and Promotes Mitochondrial Clearance. Plant Physiol.     Reference: June 19th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: January 24th, 2015
10 months agofl4 floury4:
 
GRMZM2G353097
Jessica AS Barros et al. 2023. Autophagy during Maize Endosperm Development Dampens Oxidative Stress and Promotes Mitochondrial Clearance. Plant Physiol.     Reference: June 19th, 2023
Gene Product: April 9th, 2014
Variation: April 8th, 2014
Gene Model: April 8th, 2014
10 months agosudh7 succinate dehydrogenase7:
 
GRMZM2G134134
Jessica AS Barros et al. 2023. Autophagy during Maize Endosperm Development Dampens Oxidative Stress and Promotes Mitochondrial Clearance. Plant Physiol.     Reference: June 19th, 2023
Gene Product: October 25th, 2016
Variation: October 25th, 2016
Gene Model: October 25th, 2016
10 months agoatg12 autophagy12:
 
GRMZM5G842517
Jessica AS Barros et al. 2023. Autophagy during Maize Endosperm Development Dampens Oxidative Stress and Promotes Mitochondrial Clearance. Plant Physiol.     Reference: June 19th, 2023
Variation: August 15th, 2017
Gene Model: August 15th, 2017
10 months agokgdh1 alpha-ketoglutarate dehydrogenase:
 
GRMZM2G079538
Jessica AS Barros et al. 2023. Autophagy during Maize Endosperm Development Dampens Oxidative Stress and Promotes Mitochondrial Clearance. Plant Physiol.     Reference: June 19th, 2023
Gene Product: March 25th, 2020
Gene Model: December 30th, 2019
10 months agornrl1 ribonucleotide reductase large subunit1:
 
GRMZM2G304362
Jessica AS Barros et al. 2023. Autophagy during Maize Endosperm Development Dampens Oxidative Stress and Promotes Mitochondrial Clearance. Plant Physiol.     Reference: June 19th, 2023
Gene Product: October 6th, 2020
Variation: April 27th, 2023
Gene Model: October 6th, 2020
10 months agoz1C1 alpha zein 19kDa C1:
 
GRMZM2G088273
Jessica AS Barros et al. 2023. Autophagy during Maize Endosperm Development Dampens Oxidative Stress and Promotes Mitochondrial Clearance. Plant Physiol.     Reference: June 19th, 2023
Gene Product: September 1st, 2003
Gene Model: September 20th, 2021
10 months agoebe2 embryo-sac basal-endosperm-layer embryo-surrounding-region2:
6.04
GRMZM2G167733
Jessica AS Barros et al. 2023. Autophagy during Maize Endosperm Development Dampens Oxidative Stress and Promotes Mitochondrial Clearance. Plant Physiol.     Reference: June 19th, 2023
Variation: May 6th, 2004
Gene Model: August 20th, 2015
10 months agosudh15 succinate dehydrogenase15:
 
   Eprintsev, AT et al. 2023. Light-Dependent Expression and Promoter Methylation of the Genes Encoding Succinate Dehydrogenase, Fumarase, and NAD-Malate Dehydrogenase in Maize (Zea mays L.) Leaves Int J Mol Sci. 24:10211.     Reference: June 16th, 2023
Gene Product: October 25th, 2016
10 months agoAY110141  :
9.06
GRMZM2G119627
Zhu, JT et al. 2023. ZmEREB57 regulates OPDA synthesis and enhances salt stress tolerance through two distinct signalling pathways in Zea mays. Plant Cell Environ. :doi: 10.1111/pce.14644.     Reference: June 16th, 2023
Variation: September 25th, 2007
Gene Model: September 9th, 2021
10 months agosudh3 succinate dehydrogenase3:
 
GRMZM2G056912
Eprintsev, AT et al. 2023. Light-Dependent Expression and Promoter Methylation of the Genes Encoding Succinate Dehydrogenase, Fumarase, and NAD-Malate Dehydrogenase in Maize (Zea mays L.) Leaves Int J Mol Sci. 24:10211.     Reference: June 16th, 2023
Gene Product: October 25th, 2016
Gene Model: October 25th, 2016
10 months agoereb214 AP2-EREBP-transcription factor 214:
 
   Huanhuan Qi et al. 2023. Advances of Apetala2/Ethylene Response Factors in Regulating Development and Stress Response in Maize Int J Mol Sci. 24:5416.     Reference: June 15th, 2023
Gene Product: July 5th, 2019
10 months agoereb215 AP2-EREBP-transcription factor 215:
 
   Huanhuan Qi et al. 2023. Advances of Apetala2/Ethylene Response Factors in Regulating Development and Stress Response in Maize Int J Mol Sci. 24:5416.     Reference: June 15th, 2023
Gene Product: July 5th, 2019
10 months agoereb217 AP2-EREBP-transcription factor 217:
 
   Huanhuan Qi et al. 2023. Advances of Apetala2/Ethylene Response Factors in Regulating Development and Stress Response in Maize Int J Mol Sci. 24:5416.     Reference: June 15th, 2023
Gene Product: July 5th, 2019
10 months agoereb222 AP2-EREBP-transcription factor 222:
 
   Huanhuan Qi et al. 2023. Advances of Apetala2/Ethylene Response Factors in Regulating Development and Stress Response in Maize Int J Mol Sci. 24:5416.     Reference: June 15th, 2023
Gene Product: July 5th, 2019
10 months agoereb223 AP2-EREBP-transcription factor 223:
 
   Huanhuan Qi et al. 2023. Advances of Apetala2/Ethylene Response Factors in Regulating Development and Stress Response in Maize Int J Mol Sci. 24:5416.     Reference: June 15th, 2023
Gene Product: July 5th, 2019
10 months agoereb224 AP2-EREBP-transcription factor 224:
 
   Huanhuan Qi et al. 2023. Advances of Apetala2/Ethylene Response Factors in Regulating Development and Stress Response in Maize Int J Mol Sci. 24:5416.     Reference: June 15th, 2023
Gene Product: July 5th, 2019
10 months agoereb225 AP2-EREBP-transcription factor 225:
 
   Huanhuan Qi et al. 2023. Advances of Apetala2/Ethylene Response Factors in Regulating Development and Stress Response in Maize Int J Mol Sci. 24:5416.     Reference: June 15th, 2023
Gene Product: July 5th, 2019
10 months agoereb228 AP2-EREBP-transcription factor 228:
 
   Huanhuan Qi et al. 2023. Advances of Apetala2/Ethylene Response Factors in Regulating Development and Stress Response in Maize Int J Mol Sci. 24:5416.     Reference: June 15th, 2023
Gene Product: July 5th, 2019
10 months agoereb230 AP2-EREBP-transcription factor 230:
 
   Huanhuan Qi et al. 2023. Advances of Apetala2/Ethylene Response Factors in Regulating Development and Stress Response in Maize Int J Mol Sci. 24:5416.     Reference: June 15th, 2023
Gene Product: July 5th, 2019
10 months agoereb231 AP2-EREBP-transcription factor 231:
 
   Huanhuan Qi et al. 2023. Advances of Apetala2/Ethylene Response Factors in Regulating Development and Stress Response in Maize Int J Mol Sci. 24:5416.     Reference: June 15th, 2023
Gene Product: July 5th, 2019
10 months agoereb233 AP2-EREBP-transcription factor 233:
 
   Huanhuan Qi et al. 2023. Advances of Apetala2/Ethylene Response Factors in Regulating Development and Stress Response in Maize Int J Mol Sci. 24:5416.     Reference: June 15th, 2023
Gene Product: July 5th, 2019
10 months agoereb236 AP2-EREBP-transcription factor 236:
 
   Huanhuan Qi et al. 2023. Advances of Apetala2/Ethylene Response Factors in Regulating Development and Stress Response in Maize Int J Mol Sci. 24:5416.     Reference: June 15th, 2023
Gene Product: July 5th, 2019
10 months agoereb239 AP2-EREBP-transcription factor 239:
 
   Huanhuan Qi et al. 2023. Advances of Apetala2/Ethylene Response Factors in Regulating Development and Stress Response in Maize Int J Mol Sci. 24:5416.     Reference: June 15th, 2023
Gene Product: July 5th, 2019
10 months agoaox4 alternative oxidase:
 
   Shaoqing Wang et al. 2023. Identification of miRNAs Involved in Maize-Induced Systemic Resistance Primed by Trichoderma harzianum T28 against Cochliobolus heterostrophus Journal of Fungi. 9:278.     Reference: February 22nd, 2023
Gene Product: June 15th, 2023
10 months agoZm00001d005203  :
 
   Huanhuan Qi et al. 2023. Advances of Apetala2/Ethylene Response Factors in Regulating Development and Stress Response in Maize Int J Mol Sci. 24:5416.     Reference: June 15th, 2023
Gene Product: July 5th, 2019
10 months agogpdh4 glucose-6-phosphate dehydrogenase4:
 
   Mamani-Huarcaya, BM et al. 2023. Leaf Proteomic Analysis in Seedlings of Two Maize Landraces with Different Tolerance to Boron Toxicity Plants. 12:2322.     Reference: June 15th, 2023
Gene Product: September 1st, 2003
10 months agomcca1 3-methylcrotonoyl-CoA carboxylase-α-subunit1:
 
   Mamani-Huarcaya, BM et al. 2023. Leaf Proteomic Analysis in Seedlings of Two Maize Landraces with Different Tolerance to Boron Toxicity Plants. 12:2322.     Reference: June 15th, 2023
Variation: April 1st, 2023
10 months agochlh1 Mg chelatase subunit H 1:
 
GRMZM2G323024
Mamani-Huarcaya, BM et al. 2023. Leaf Proteomic Analysis in Seedlings of Two Maize Landraces with Different Tolerance to Boron Toxicity Plants. 12:2322.   AT5G13630 (TAIR)
LOC_Os03g20700 (MSU/TIGR)
Reference: June 15th, 2023
Gene Product: June 11th, 2007
Gene Model: May 15th, 2017
10 months agolhcb3 light harvesting chlorophyll a/b binding protein3:
8.03
   Jingxia Zhang et al. 2023. Multiomics reveals Claroideoglomus etunicatum regulates plant hormone signal transduction, photosynthesis and La compartmentalization in maize to promote growth under La stress. Ecotoxicol Environ Safety. 262:115128.     Reference: June 15th, 2023
Gene Product: January 8th, 2005
Variation: August 20th, 2014
10 months agogl6 glossy6:
3.05 - 3.05
GRMZM2G139786
Mamani-Huarcaya, BM et al. 2023. Leaf Proteomic Analysis in Seedlings of Two Maize Landraces with Different Tolerance to Boron Toxicity Plants. 12:2322.     Reference: June 15th, 2023
Gene Product: March 28th, 2019
Variation: July 28th, 2018
Gene Model: July 28th, 2018
10 months agossu3 small subunit Rubisco3:
 
   Mamani-Huarcaya, BM et al. 2023. Leaf Proteomic Analysis in Seedlings of Two Maize Landraces with Different Tolerance to Boron Toxicity Plants. 12:2322.     Reference: June 15th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
10 months agoereb117 AP2-EREBP-transcription factor 117:
8.05
GRMZM2G113078
Huanhuan Qi et al. 2023. Advances of Apetala2/Ethylene Response Factors in Regulating Development and Stress Response in Maize Int J Mol Sci. 24:5416.     Reference: June 15th, 2023
Variation: September 1st, 2003
Gene Model: September 20th, 2018
10 months agoabi13 ABI3-VP1-transcription factor 33:
 
GRMZM2G018336
Cheng, C et al. 2023. Wide-Range Portrayal of AP2/ERF Transcription Factor Family in Maize (Zea mays L.) Development and Stress Responses. Genes. 14     Reference: June 15th, 2023
Gene Product: January 29th, 2022
Gene Model: March 23rd, 2019
10 months agoereb202 AP2-EREBP-transcription factor 202:
 
   Huanhuan Qi et al. 2023. Advances of Apetala2/Ethylene Response Factors in Regulating Development and Stress Response in Maize Int J Mol Sci. 24:5416.     Reference: June 15th, 2023
Variation: January 22nd, 2021
10 months agoereb94 AP2-EREBP-transcription factor 94:
 
   Huanhuan Qi et al. 2023. Advances of Apetala2/Ethylene Response Factors in Regulating Development and Stress Response in Maize Int J Mol Sci. 24:5416.     Reference: June 15th, 2023
Variation: May 9th, 2017
10 months agoaox1 alternative oxidase1 :
2.02
AC233960.1_FG002
Dai, DW et al. 2020. J Exp Bot pp.doi: 10.1093/jxb/eraa348     Reference: July 27th, 2020
Gene Product: June 15th, 2023
Variation: February 22nd, 2012
Gene Model: February 17th, 2012
10 months agocol12 2C2-CO-like-transcription factor 12:
5.07
GRMZM2G041991
Wang, YF et al. 2023. Integrative transcriptome and metabolome analysis reveals the mechanism of exogenous melatonin alleviating drought stress in maize roots Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.107723.     Reference: June 15th, 2023
Gene Product: September 1st, 2003
Variation: March 31st, 2017
Gene Model: March 31st, 2017
10 months agohis1a histone1a:
7.01
GRMZM2G401308
Mamani-Huarcaya, BM et al. 2023. Leaf Proteomic Analysis in Seedlings of Two Maize Landraces with Different Tolerance to Boron Toxicity Plants. 12:2322.     Reference: June 15th, 2023
Gene Product: October 24th, 2017
Variation: October 31st, 2017
Gene Model: July 24th, 2015
10 months agoeif3 eukaryotic initiation factor3:
3.02
GRMZM2G093050
Mamani-Huarcaya, BM et al. 2023. Leaf Proteomic Analysis in Seedlings of Two Maize Landraces with Different Tolerance to Boron Toxicity Plants. 12:2322.     Reference: June 15th, 2023
Gene Product: September 1st, 2003
Variation: February 24th, 2014
Gene Model: January 15th, 2015
10 months agoAY109870  :
3.04
GRMZM2G111014
Mamani-Huarcaya, BM et al. 2023. Leaf Proteomic Analysis in Seedlings of Two Maize Landraces with Different Tolerance to Boron Toxicity Plants. 12:2322.     Reference: June 15th, 2023
Variation: July 29th, 2004
Gene Model: March 20th, 2018
10 months agohon110 histone one (H1):
1.11
GRMZM2G164020
Mamani-Huarcaya, BM et al. 2023. Leaf Proteomic Analysis in Seedlings of Two Maize Landraces with Different Tolerance to Boron Toxicity Plants. 12:2322.     Reference: June 15th, 2023
Variation: June 25th, 2014
Gene Model: October 25th, 2013
10 months agonfc103a nucleosome/chromatin assembly factor C:
1.08
GRMZM2G090217
Mamani-Huarcaya, BM et al. 2023. Leaf Proteomic Analysis in Seedlings of Two Maize Landraces with Different Tolerance to Boron Toxicity Plants. 12:2322.     Reference: June 15th, 2023
Variation: September 1st, 2003
Gene Model: December 11th, 2012
10 months agoabcf1 ABC family1:
2.09
GRMZM2G105570
Mamani-Huarcaya, BM et al. 2023. Leaf Proteomic Analysis in Seedlings of Two Maize Landraces with Different Tolerance to Boron Toxicity Plants. 12:2322.     Reference: June 15th, 2023
Gene Product: December 28th, 2015
Variation: December 24th, 2015
Gene Model: December 24th, 2015
10 months agosun2 SUN domain protein2:
 
GRMZM2G440614
Mamani-Huarcaya, BM et al. 2023. Leaf Proteomic Analysis in Seedlings of Two Maize Landraces with Different Tolerance to Boron Toxicity Plants. 12:2322.     Reference: June 15th, 2023
Variation: April 20th, 2011
Gene Model: April 20th, 2011
10 months agoaox3 alternative oxidase3:
 
GRMZM2G074743
Shaoqing Wang et al. 2023. Identification of miRNAs Involved in Maize-Induced Systemic Resistance Primed by Trichoderma harzianum T28 against Cochliobolus heterostrophus Journal of Fungi. 9:278.     Reference: February 22nd, 2023
Gene Product: June 15th, 2023
Gene Model: February 17th, 2012
10 months agokea4 K+ efflux antiporter 4:
 
GRMZM2G058948
Mamani-Huarcaya, BM et al. 2023. Leaf Proteomic Analysis in Seedlings of Two Maize Landraces with Different Tolerance to Boron Toxicity Plants. 12:2322.     Reference: June 15th, 2023
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
10 months agoptac16 plastid transcriptionally active16:
 
GRMZM2G449496
Mamani-Huarcaya, BM et al. 2023. Leaf Proteomic Analysis in Seedlings of Two Maize Landraces with Different Tolerance to Boron Toxicity Plants. 12:2322.     Reference: June 15th, 2023
Gene Product: December 21st, 2022
Gene Model: November 16th, 2021
10 months agoereb218 AP2-EREBP-transcription factor 218:
 
GRMZM2G099326
Huanhuan Qi et al. 2023. Advances of Apetala2/Ethylene Response Factors in Regulating Development and Stress Response in Maize Int J Mol Sci. 24:5416.     Reference: June 15th, 2023
Gene Product: July 5th, 2019
Gene Model: August 13th, 2022
10 months agoereb235 AP2-EREBP-transcription factor 235:
6.05
GRMZM2G067036
Huanhuan Qi et al. 2023. Advances of Apetala2/Ethylene Response Factors in Regulating Development and Stress Response in Maize Int J Mol Sci. 24:5416.     Reference: June 15th, 2023
Gene Product: July 5th, 2019
Variation: March 31st, 2005
Gene Model: July 2nd, 2021
10 months agocbs1 cystathionine beta synthase domain protein1:
1.10
GRMZM2G416388
Wenting Wan et al. 2023. Genome-wide association analysis of kernel nutritional quality in two natural maize populations. Mol Breed. 43:18.     Reference: June 14th, 2023
Gene Product: February 15th, 2015
Variation: February 14th, 2015
Gene Model: February 14th, 2015
10 months agosqs1 squalene synthase1:
1.11
GRMZM2G108225
Wenting Wan et al. 2023. Genome-wide association analysis of kernel nutritional quality in two natural maize populations. Mol Breed. 43:18.     Reference: June 14th, 2023
Gene Product: September 1st, 2003
Variation: January 27th, 2011
Gene Model: December 19th, 2014
10 months agofdad1 false DAD1:
9.03
GRMZM5G847530
Wenting Wan et al. 2023. Genome-wide association analysis of kernel nutritional quality in two natural maize populations. Mol Breed. 43:18.     Reference: June 14th, 2023
Variation: September 1st, 2015
Gene Model: September 1st, 2015
10 months agosqsh1 squalene synthase homolog1:
 
GRMZM2G029396
Wenting Wan et al. 2023. Genome-wide association analysis of kernel nutritional quality in two natural maize populations. Mol Breed. 43:18.     Reference: June 14th, 2023
Variation: January 27th, 2011
Gene Model: June 1st, 2017
10 months agobbx7 b-box7:
 
GRMZM5G813532
Dong, Y et al. 2023. Genome-wide association analysis for grain moisture content and dehydration rate on maize hybrids. Mol Breed. 43:5.     Reference: June 14th, 2023
Gene Product: January 11th, 2019
Gene Model: January 10th, 2019
10 months agoinvinh1 invertase inhibitor1:
 
GRMZM2G162447
Dong, Y et al. 2023. Genome-wide association analysis for grain moisture content and dehydration rate on maize hybrids. Mol Breed. 43:5.     Reference: June 14th, 2023
Gene Product: August 7th, 2019
Gene Model: August 7th, 2019
10 months agocct54 CO CO-LIKE TIMING OF CAB1 protein domain54:
 
GRMZM2G057529
Dong, Y et al. 2023. Genome-wide association analysis for grain moisture content and dehydration rate on maize hybrids. Mol Breed. 43:5.     Reference: June 14th, 2023
Gene Product: June 18th, 2018
Gene Model: August 17th, 2021
10 months agoatg8b autophagy8b:
10.06
GRMZM2G419694
Wenting Wan et al. 2023. Genome-wide association analysis of kernel nutritional quality in two natural maize populations. Mol Breed. 43:18.     Reference: June 14th, 2023
Variation: March 31st, 2005
Gene Model: August 15th, 2017
11 months agoZm00001d010801  :
 
   Mira, MM et al. 2023. Plant stem cells under low oxygen: metabolic rewiring by phytoglobin underlies stem cell functionality. Plant Physiol. :doi: 10.1093/plphys/kiad344.     Reference: June 13th, 2023
Gene Product: October 25th, 2006
11 months agotpi2 triose phosphate isomerase2:
2.07 - 2.07
GRMZM2G002807
Mira, MM et al. 2023. Plant stem cells under low oxygen: metabolic rewiring by phytoglobin underlies stem cell functionality. Plant Physiol. :doi: 10.1093/plphys/kiad344.     Reference: June 13th, 2023
Gene Product: March 6th, 2023
Gene Model: January 15th, 2015
11 months agosudh2 succinate dehydrogenase2:
4.05
GRMZM2G302259
Mira, MM et al. 2023. Plant stem cells under low oxygen: metabolic rewiring by phytoglobin underlies stem cell functionality. Plant Physiol. :doi: 10.1093/plphys/kiad344.     Reference: June 13th, 2023
Gene Product: October 25th, 2016
Variation: October 25th, 2016
Gene Model: July 28th, 2016
11 months agosbp2 SBP-domain protein2:
4.09
GRMZM2G168229
Dongdong Dang et al. 2023. Genome-Wide Association Study and Genomic Prediction on Plant Architecture Traits in Sweet Corn and Waxy Corn. 12:303.     Reference: June 13th, 2023
Gene Product: July 5th, 2019
Variation: October 8th, 2011
Gene Model: December 18th, 2014
11 months agoabi32 ABI3-VP1-transcription factor 32:
 
   Dongdong Dang et al. 2023. Genome-Wide Association Study and Genomic Prediction on Plant Architecture Traits in Sweet Corn and Waxy Corn. 12:303.     Reference: June 13th, 2023
Gene Product: January 29th, 2022
11 months agorca4 RUBISCO activase4:
2.02 - 2.02
GRMZM2G039345
Dongdong Dang et al. 2023. Genome-Wide Association Study and Genomic Prediction on Plant Architecture Traits in Sweet Corn and Waxy Corn. 12:303.     Reference: June 13th, 2023
Gene Product: October 28th, 2014
Gene Model: March 2nd, 2021
11 months agommp18  :
7.01
GRMZM2G066290
Mira, MM et al. 2023. Plant stem cells under low oxygen: metabolic rewiring by phytoglobin underlies stem cell functionality. Plant Physiol. :doi: 10.1093/plphys/kiad344.     Reference: June 13th, 2023
Variation: September 4th, 2018
Gene Model: September 4th, 2018
11 months agohvp1 human viral protein homolog1:
9.02
GRMZM5G852396
Mira, MM et al. 2023. Plant stem cells under low oxygen: metabolic rewiring by phytoglobin underlies stem cell functionality. Plant Physiol. :doi: 10.1093/plphys/kiad344.     Reference: June 13th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: June 1st, 2017
11 months agogrftf2 GRF-transcription factor 2:
2.07
   Peng, B et al. 2021. Genome-wide association studies of leaf angle in maize. Mol Breed. 41:50.     Reference: June 13th, 2023
Variation: September 25th, 2007
11 months agomyo3 myosin3:
1.07
GRMZM2G113202
Dongdong Dang et al. 2023. Genome-Wide Association Study and Genomic Prediction on Plant Architecture Traits in Sweet Corn and Waxy Corn. 12:303.     Reference: June 13th, 2023
Gene Product: September 1st, 2003
Variation: January 31st, 2015
Gene Model: February 1st, 2015
11 months agosi606008c01  :
1.08
GRMZM2G103672
Dongdong Dang et al. 2023. Genome-Wide Association Study and Genomic Prediction on Plant Architecture Traits in Sweet Corn and Waxy Corn. 12:303.     Reference: June 13th, 2023
Gene Product: April 24th, 2008
Gene Model: February 14th, 2020
11 months agosi683003d07  :
1.08
GRMZM2G103672
Dongdong Dang et al. 2023. Genome-Wide Association Study and Genomic Prediction on Plant Architecture Traits in Sweet Corn and Waxy Corn. 12:303.     Reference: June 13th, 2023
Gene Product: April 24th, 2008
Gene Model: August 12th, 2022
11 months agorld2 rolled leaf2:
1.01
GRMZM2G042250
Dongdong Dang et al. 2023. Genome-Wide Association Study and Genomic Prediction on Plant Architecture Traits in Sweet Corn and Waxy Corn. 12:303.     Reference: June 13th, 2023
Gene Product: October 6th, 2015
Variation: January 18th, 2010
Gene Model: October 6th, 2015
11 months agocl1480_2a  :
4.09
GRMZM2G161969
Mira, MM et al. 2023. Plant stem cells under low oxygen: metabolic rewiring by phytoglobin underlies stem cell functionality. Plant Physiol. :doi: 10.1093/plphys/kiad344.     Reference: June 13th, 2023
Variation: September 25th, 2007
Gene Model: May 26th, 2021
11 months agosudh4 succinate dehydrogenase4:
 
GRMZM2G079888
Mira, MM et al. 2023. Plant stem cells under low oxygen: metabolic rewiring by phytoglobin underlies stem cell functionality. Plant Physiol. :doi: 10.1093/plphys/kiad344.     Reference: June 13th, 2023
Gene Product: October 25th, 2016
Variation: October 25th, 2016
Gene Model: October 25th, 2016
11 months agosudh5 succinate dehydrogenase5:
 
GRMZM2G109271
Mira, MM et al. 2023. Plant stem cells under low oxygen: metabolic rewiring by phytoglobin underlies stem cell functionality. Plant Physiol. :doi: 10.1093/plphys/kiad344.     Reference: June 13th, 2023
Gene Product: October 25th, 2016
Gene Model: October 25th, 2016
11 months agosudh6 succinate dehydrogenase6:
 
GRMZM2G398876
Mira, MM et al. 2023. Plant stem cells under low oxygen: metabolic rewiring by phytoglobin underlies stem cell functionality. Plant Physiol. :doi: 10.1093/plphys/kiad344.     Reference: June 13th, 2023
Gene Product: October 25th, 2016
Gene Model: October 25th, 2016
11 months agosudh12 succinate dehydrogenase12:
 
GRMZM2G146965
Mira, MM et al. 2023. Plant stem cells under low oxygen: metabolic rewiring by phytoglobin underlies stem cell functionality. Plant Physiol. :doi: 10.1093/plphys/kiad344.     Reference: June 13th, 2023
Gene Product: October 25th, 2016
Variation: October 25th, 2016
Gene Model: October 25th, 2016
11 months agoaco6 aconitase6:
 
GRMZM2G364988
Mira, MM et al. 2023. Plant stem cells under low oxygen: metabolic rewiring by phytoglobin underlies stem cell functionality. Plant Physiol. :doi: 10.1093/plphys/kiad344.     Reference: June 13th, 2023
Gene Product: September 1st, 2003
Gene Model: November 15th, 2019
11 months agoaco10 aconitase10:
 
GRMZM2G127429
Mira, MM et al. 2023. Plant stem cells under low oxygen: metabolic rewiring by phytoglobin underlies stem cell functionality. Plant Physiol. :doi: 10.1093/plphys/kiad344.     Reference: June 13th, 2023
Gene Product: September 1st, 2003
Gene Model: November 15th, 2019
11 months agoaco11 aconitase11:
 
GRMZM2G311024
Mira, MM et al. 2023. Plant stem cells under low oxygen: metabolic rewiring by phytoglobin underlies stem cell functionality. Plant Physiol. :doi: 10.1093/plphys/kiad344.     Reference: June 13th, 2023
Gene Product: September 1st, 2003
Gene Model: November 15th, 2019
11 months agosus7 sucrose synthase7:
 
GRMZM2G060659
Mira, MM et al. 2023. Plant stem cells under low oxygen: metabolic rewiring by phytoglobin underlies stem cell functionality. Plant Physiol. :doi: 10.1093/plphys/kiad344.     Reference: June 13th, 2023
Gene Product: October 25th, 2006
Gene Model: July 13th, 2020
11 months agochx5 cation/H+ antiporter 5:
 
GRMZM2G366851
Dongdong Dang et al. 2023. Genome-Wide Association Study and Genomic Prediction on Plant Architecture Traits in Sweet Corn and Waxy Corn. 12:303.     Reference: June 13th, 2023
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
11 months agocyp41 cytochrome P450 41:
 
   Dongdong Dang et al. 2023. Genome-Wide Association Study and Genomic Prediction on Plant Architecture Traits in Sweet Corn and Waxy Corn. 12:303.     Reference: June 13th, 2023
Gene Product: December 30th, 2022
11 months agoIDP701  :
1.03
GRMZM2G048703
Dongdong Dang et al. 2023. Genome-Wide Association Study and Genomic Prediction on Plant Architecture Traits in Sweet Corn and Waxy Corn. 12:303.     Reference: June 13th, 2023
Variation: March 31st, 2005
Gene Model: February 12th, 2019
11 months agoIDP155  :
4.11
GRMZM2G131087
Dongdong Dang et al. 2023. Genome-Wide Association Study and Genomic Prediction on Plant Architecture Traits in Sweet Corn and Waxy Corn. 12:303.     Reference: June 13th, 2023
Variation: March 31st, 2005
Gene Model: January 13th, 2021
11 months agome9 NAD-dependent malic enzyme9:
7.03
GRMZM2G406672
Mira, MM et al. 2023. Plant stem cells under low oxygen: metabolic rewiring by phytoglobin underlies stem cell functionality. Plant Physiol. :doi: 10.1093/plphys/kiad344.     Reference: June 13th, 2023
Gene Product: June 4th, 2020
Gene Model: June 4th, 2020
11 months agoaxs1 alpha-xylosidase1:
 
   Li, H et al. 2023. ZmXYL modulates auxin-induced maize growth. Plant J. :doi: 10.1111/tpj.16348.     Reference: June 12th, 2023
Gene Product: June 12th, 2023
Variation: June 12th, 2023
11 months agomlks2 Maize LINC KASH AtSINE-like2:
 
GRMZM2G000608
Ashraf, MA et al. 2023. A polarized nuclear position specifies the correct division plane during maize stomatal development. Plant Physiol. :doi: 10.1093/plphys/kiad329.     Reference: June 12th, 2023
Gene Product: February 1st, 2021
Variation: June 22nd, 2019
Gene Model: June 7th, 2018
11 months agopgl9 exopolygalacturonase9:
 
GRMZM2G418644
Honglin Wang et al. 2023. Pollen self-elimination CRISPR/Cas genome editing prevents transgenic pollen dispersal in maize. Plant Commun. :doi: 10.1016/j.xplc.2023.100637..     Reference: June 12th, 2023
Gene Product: October 4th, 2021
Gene Model: August 24th, 2018
11 months agoumc1591  :
5.04
GRMZM2G083526
Ma, PP et al. 2023. Genetic variation in ZmWAX2 confers maize resistance to Fusarium verticillioides. Plant Biotechnol J. :doi: 10.1111/pbi.14093.     Reference: June 9th, 2023
Variation: September 1st, 2003
Gene Model: June 28th, 2018
11 months agocys7 cysteine synthase7:
 
GRMZM2G104237
Xiaoxiao Yang et al. 2023. Hydrogen sulfide alleviates chromium toxicity by promoting chromium sequestration and re-establishing redox homeostasis in Zea mays L Environ Pollut. :doi: 10.1016/j.envpol.2023.121958.     Reference: June 8th, 2023
Gene Product: September 1st, 2003
Gene Model: December 1st, 2018
11 months agocys8 cysteine synthase8:
 
   Xiaoxiao Yang et al. 2023. Hydrogen sulfide alleviates chromium toxicity by promoting chromium sequestration and re-establishing redox homeostasis in Zea mays L Environ Pollut. :doi: 10.1016/j.envpol.2023.121958.     Reference: June 8th, 2023
Gene Product: September 1st, 2003
11 months agopiip2 physical impedance induced protein2:
5.03
GRMZM2G300135
Xiaokang Han et al. 2023. Transcriptomic Analysis of Three Differentially Senescing Maize (Zea mays L.) Inbred Lines upon Heat Stress Int J Mol Sci. 24:9782.     Reference: June 6th, 2023
Gene Product: September 1st, 2003
Variation: January 6th, 2015
Gene Model: January 6th, 2015
11 months agogst24 glutathione transferase24:
5.07
GRMZM2G032856
Xiaokang Han et al. 2023. Transcriptomic Analysis of Three Differentially Senescing Maize (Zea mays L.) Inbred Lines upon Heat Stress Int J Mol Sci. 24:9782.     Reference: June 6th, 2023
Gene Product: September 1st, 2003
Variation: August 20th, 2010
Gene Model: July 27th, 2016
11 months agogst29 glutathione transferase29:
3.05
GRMZM2G127789
Xiaokang Han et al. 2023. Transcriptomic Analysis of Three Differentially Senescing Maize (Zea mays L.) Inbred Lines upon Heat Stress Int J Mol Sci. 24:9782.     Reference: June 6th, 2023
Gene Product: September 1st, 2003
Gene Model: July 27th, 2016
11 months agogrx14 glutaredoxin14:
 
GRMZM2G318180
Xiaokang Han et al. 2023. Transcriptomic Analysis of Three Differentially Senescing Maize (Zea mays L.) Inbred Lines upon Heat Stress Int J Mol Sci. 24:9782.     Reference: June 6th, 2023
Gene Product: January 21st, 2021
Gene Model: December 14th, 2021
11 months agoarf2 ADP-ribosylation factor homolog2:
 
   Zhang, J et al. 2023. Integrated Multi-Omics Reveals Significant Roles of Non-Additively Expressed Small RNAs in Heterosis for Maize Plant Height Int J Mol Sci. 24:9150.     Reference: June 5th, 2023
Gene Product: June 23rd, 2012
Variation: March 3rd, 2023
11 months agogst5 glutathione transferase5:
1.11
GRMZM2G308687
Zhang, J et al. 2023. Integrated Multi-Omics Reveals Significant Roles of Non-Additively Expressed Small RNAs in Heterosis for Maize Plant Height Int J Mol Sci. 24:9150.     Reference: June 5th, 2023
Gene Product: September 1st, 2003
Variation: July 22nd, 2010
Gene Model: July 27th, 2016
11 months agozim24 ZIM-transcription factor 24:
 
   Zhang, J et al. 2023. Integrated Multi-Omics Reveals Significant Roles of Non-Additively Expressed Small RNAs in Heterosis for Maize Plant Height Int J Mol Sci. 24:9150.     Reference: June 5th, 2023
Gene Product: February 24th, 2021
11 months agoaaap20 amino acid/auxin permease20:
 
GRMZM2G078024
Zhang, J et al. 2023. Integrated Multi-Omics Reveals Significant Roles of Non-Additively Expressed Small RNAs in Heterosis for Maize Plant Height Int J Mol Sci. 24:9150.     Reference: June 5th, 2023
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
11 months agopco101160  :
7.05
GRMZM2G000718
Zhang, J et al. 2023. Integrated Multi-Omics Reveals Significant Roles of Non-Additively Expressed Small RNAs in Heterosis for Maize Plant Height Int J Mol Sci. 24:9150.     Reference: June 5th, 2023
Variation: September 25th, 2007
Gene Model: September 1st, 2021
11 months agopht1 phosphate transporter protein1:
5.03
GRMZM2G326707
Wang, YF et al. 2023. The long-noncoding RNA PILNCR2 increases low phosphate tolerance in maize by interfering with miRNA399-guided cleavage of ZmPHT1s. Molecular Plant. :doi: 10.1016/j.molp.2023.05.009.     Reference: June 2nd, 2023
Gene Product: June 16th, 2016
Variation: February 4th, 2011
Gene Model: May 27th, 2015
11 months agocks1 corkscrew1:
 
   Alexander, DL; Mellor, E A; Langdale, J. 2005. Plant Physiol. 138:1396-1408     Reference: December 29th, 2005
Gene Product: December 29th, 2005
Variation: June 1st, 2023
11 months agosdg101 set domain gene101:
7.02
AC233961.1_FG001
Emily Nischwitz et al. 2023. DNA damage repair proteins across the Tree of Life. 26:106778.     Reference: May 31st, 2023
Gene Product: June 30th, 2017
Variation: June 29th, 2017
Gene Model: June 29th, 2017
11 months agocl41475_1  :
2.08
GRMZM2G001297
Emily Nischwitz et al. 2023. DNA damage repair proteins across the Tree of Life. 26:106778.     Reference: May 31st, 2023
Variation: September 25th, 2007
Gene Model: August 16th, 2021
11 months agothx34 Trihelix-transcription factor 34:
 
GRMZM2G162840
Emily Nischwitz et al. 2023. DNA damage repair proteins across the Tree of Life. 26:106778.     Reference: May 31st, 2023
Gene Product: November 9th, 2021
Gene Model: August 7th, 2019
11 months agomha5 membrane H(+)-ATPase5:
 
GRMZM2G341058
Ding, YH et al. 2023. Identification of Germplasm and Sugar Transporter Gene ZmSWEET1b Associated with Salt Tolerance in Maize J Plant Growth Reg. :doi: 10.1007/s00344-023-11033-9.     Reference: May 31st, 2023
Gene Product: September 1st, 2003
Gene Model: January 10th, 2020
11 months agomha7 membrane H(+)-ATPase7:
 
GRMZM2G148374
Ding, YH et al. 2023. Identification of Germplasm and Sugar Transporter Gene ZmSWEET1b Associated with Salt Tolerance in Maize J Plant Growth Reg. :doi: 10.1007/s00344-023-11033-9.     Reference: May 31st, 2023
Gene Product: September 1st, 2003
Gene Model: January 10th, 2020
11 months agohak16 potassium high-affinity transporter16:
 
GRMZM2G084486
Ding, YH et al. 2023. Identification of Germplasm and Sugar Transporter Gene ZmSWEET1b Associated with Salt Tolerance in Maize J Plant Growth Reg. :doi: 10.1007/s00344-023-11033-9.     Reference: May 31st, 2023
Gene Product: March 12th, 2020
Gene Model: March 12th, 2020
11 months agohak21 potassium high-affinity transporter21:
 
GRMZM2G438960
Ding, YH et al. 2023. Identification of Germplasm and Sugar Transporter Gene ZmSWEET1b Associated with Salt Tolerance in Maize J Plant Growth Reg. :doi: 10.1007/s00344-023-11033-9.     Reference: May 31st, 2023
Gene Product: March 12th, 2020
Gene Model: March 12th, 2020
11 months agothx56 Trihelix-transcription factor 56:
 
GRMZM2G436533
Emily Nischwitz et al. 2023. DNA damage repair proteins across the Tree of Life. 26:106778.     Reference: May 31st, 2023
Gene Product: November 9th, 2021
Gene Model: November 9th, 2021
11 months agotubtf2 TUB-transcription factor 2:
3.06
GRMZM5G866954
Huilong Chen et al. 2023. Whole-genome and dispersed duplication, including transposed duplication, jointly advance the evolution of TLP genes in seven representative Poaceae lineages BMC Genomics. 24:290.     Reference: May 30th, 2023
Gene Product: September 29th, 2015
Gene Model: September 29th, 2015
11 months agotubtf1 TUB-transcription factor 1:
 
   Huilong Chen et al. 2023. Whole-genome and dispersed duplication, including transposed duplication, jointly advance the evolution of TLP genes in seven representative Poaceae lineages BMC Genomics. 24:290.     Reference: May 30th, 2023
Gene Product: September 29th, 2015
11 months agotubtf10 TUB-transcription factor 10:
 
   Huilong Chen et al. 2023. Whole-genome and dispersed duplication, including transposed duplication, jointly advance the evolution of TLP genes in seven representative Poaceae lineages BMC Genomics. 24:290.     Reference: May 30th, 2023
Gene Product: September 29th, 2015
11 months agotubtf11 TUB-transcription factor 11:
 
   Huilong Chen et al. 2023. Whole-genome and dispersed duplication, including transposed duplication, jointly advance the evolution of TLP genes in seven representative Poaceae lineages BMC Genomics. 24:290.     Reference: May 30th, 2023
Gene Product: September 29th, 2015
11 months agotubtf12 TUB-transcription factor 12:
 
   Huilong Chen et al. 2023. Whole-genome and dispersed duplication, including transposed duplication, jointly advance the evolution of TLP genes in seven representative Poaceae lineages BMC Genomics. 24:290.     Reference: May 30th, 2023
Gene Product: September 29th, 2015
11 months agotubtf13 TUB-transcription factor 13:
 
   Huilong Chen et al. 2023. Whole-genome and dispersed duplication, including transposed duplication, jointly advance the evolution of TLP genes in seven representative Poaceae lineages BMC Genomics. 24:290.     Reference: May 30th, 2023
Gene Product: September 29th, 2015
11 months agotubtf3 TUB-transcription factor 3:
 
   Huilong Chen et al. 2023. Whole-genome and dispersed duplication, including transposed duplication, jointly advance the evolution of TLP genes in seven representative Poaceae lineages BMC Genomics. 24:290.     Reference: May 30th, 2023
Gene Product: September 29th, 2015
11 months agotubtf5 TUB-transcription factor 5:
 
   Huilong Chen et al. 2023. Whole-genome and dispersed duplication, including transposed duplication, jointly advance the evolution of TLP genes in seven representative Poaceae lineages BMC Genomics. 24:290.     Reference: May 30th, 2023
Gene Product: September 29th, 2015
11 months agotubtf8 TUB-transcription factor 8:
 
   Huilong Chen et al. 2023. Whole-genome and dispersed duplication, including transposed duplication, jointly advance the evolution of TLP genes in seven representative Poaceae lineages BMC Genomics. 24:290.     Reference: May 30th, 2023
Gene Product: September 29th, 2015
11 months agotubtf14 TUB-transcription factor 14:
10.02
GRMZM2G001272
Huilong Chen et al. 2023. Whole-genome and dispersed duplication, including transposed duplication, jointly advance the evolution of TLP genes in seven representative Poaceae lineages BMC Genomics. 24:290.     Reference: May 30th, 2023
Gene Product: September 29th, 2015
Variation: December 16th, 2011
Gene Model: September 29th, 2015
11 months agotubtf7 TUB-transcription factor 7:
4.08
GRMZM2G163726
Huilong Chen et al. 2023. Whole-genome and dispersed duplication, including transposed duplication, jointly advance the evolution of TLP genes in seven representative Poaceae lineages BMC Genomics. 24:290.     Reference: May 30th, 2023
Gene Product: September 29th, 2015
Gene Model: September 29th, 2015
11 months agotubtf9 TUB-transcription factor 9:
5.06
GRMZM2G115701
Huilong Chen et al. 2023. Whole-genome and dispersed duplication, including transposed duplication, jointly advance the evolution of TLP genes in seven representative Poaceae lineages BMC Genomics. 24:290.     Reference: May 30th, 2023
Gene Product: September 29th, 2015
Gene Model: September 29th, 2015
11 months agoftcl3 5-formyltetrahydrofolate cyclo-ligase3:
5.03
GRMZM2G124863
Li, XH et al. 2023. Genome-wide Association Study of Root Hair Length in Maize Tropical Plant Biology. :doi: 10.1007/s12042-023-09331-3.     Reference: May 29th, 2023
Gene Product: August 20th, 2014
Gene Model: January 14th, 2021
11 months agolac10 laccase10:
 
GRMZM2G140527
Li, XH et al. 2023. Genome-wide Association Study of Root Hair Length in Maize Tropical Plant Biology. :doi: 10.1007/s12042-023-09331-3.     Reference: May 29th, 2023
Gene Product: March 31st, 2018
Variation: May 21st, 2021
Gene Model: May 6th, 2016
11 months agozim8 ZIM-transcription factor 8:
 
   Emeline Nanou Dossa et al. 2023. Genetic resources and breeding of maize for Striga resistance: a review Frontiers in Plant Science. 14:1163785.     Reference: May 27th, 2023
Gene Product: February 24th, 2021
11 months agocitt1 citrate transporter1:
1.01
GRMZM2G028521
Emeline Nanou Dossa et al. 2023. Genetic resources and breeding of maize for Striga resistance: a review Frontiers in Plant Science. 14:1163785.     Reference: May 27th, 2023
Variation: April 26th, 2016
Gene Model: April 26th, 2016
11 months agoumc60  :
3.06
GRMZM2G094771
Emeline Nanou Dossa et al. 2023. Genetic resources and breeding of maize for Striga resistance: a review Frontiers in Plant Science. 14:1163785.     Reference: May 27th, 2023
Variation: September 1st, 2003
Gene Model: April 4th, 2018
11 months agoaed3 aspartyl protease3:
 
GRMZM2G024099
Emeline Nanou Dossa et al. 2023. Genetic resources and breeding of maize for Striga resistance: a review Frontiers in Plant Science. 14:1163785.     Reference: May 27th, 2023
Gene Product: September 26th, 2020
Gene Model: September 26th, 2020
11 months agoplc9 phospholipase C9:
 
GRMZM2G422670
Emeline Nanou Dossa et al. 2023. Genetic resources and breeding of maize for Striga resistance: a review Frontiers in Plant Science. 14:1163785.     Reference: May 27th, 2023
Gene Product: January 12th, 2021
Gene Model: January 12th, 2021
11 months agocl29338_1  :
10.04
GRMZM2G006948
Emeline Nanou Dossa et al. 2023. Genetic resources and breeding of maize for Striga resistance: a review Frontiers in Plant Science. 14:1163785.     Reference: May 27th, 2023
Variation: September 25th, 2007
Gene Model: September 12th, 2021
11 months agoig3 indeterminate gametophyte3:
 
   Chettoor, AM et al. 2023. Genetics doi: 10.1093/genetics/iyad101     Reference: May 26th, 2023
Variation: November 12th, 2022
11 months agogl3 glossy3:
4.08
GRMZM2G162434
Zhao, M et al. 2023. Bacterium-enabled transient gene activation by artificial transcription factors for resolving gene regulation in maize Plant Cell. :doi: 10.1093/plcell/koad155.     Reference: May 26th, 2023
Gene Product: June 2nd, 2012
Variation: June 2nd, 2012
Gene Model: June 2nd, 2012
11 months agoig2 indeterminate gametophyte2:
8.06
GRMZM2G030284
Chettoor, AM et al. 2023. Genetics doi: 10.1093/genetics/iyad101     Reference: May 26th, 2023
Variation: November 12th, 2022
Gene Model: September 2nd, 2019
11 months agobzip40 bZIP-transcription factor 40:
2.06
AC203957.3_FG004
Huiling Cheng et al. 2023. TSPTFBS 2.0: trans-species prediction of transcription factor binding sites and identification of their core motifs in plants. Frontiers in Plant Science. 14:1175837.     Reference: May 25th, 2023
Variation: September 1st, 2003
Gene Model: February 16th, 2018
11 months agomyb37 MYB-transcription factor 37:
5.01
GRMZM2G455869
Huiling Cheng et al. 2023. TSPTFBS 2.0: trans-species prediction of transcription factor binding sites and identification of their core motifs in plants. Frontiers in Plant Science. 14:1175837.     Reference: May 25th, 2023
Variation: September 1st, 2003
Gene Model: June 15th, 2018
11 months agoalf2 Alfin-like-transcription factor 2:
 
   Huiling Cheng et al. 2023. TSPTFBS 2.0: trans-species prediction of transcription factor binding sites and identification of their core motifs in plants. Frontiers in Plant Science. 14:1175837.     Reference: May 25th, 2023
Gene Product: November 11th, 2021
11 months agoalf7 Alfin-like-transcription factor 7:
 
   Huiling Cheng et al. 2023. TSPTFBS 2.0: trans-species prediction of transcription factor binding sites and identification of their core motifs in plants. Frontiers in Plant Science. 14:1175837.     Reference: May 25th, 2023
Gene Product: November 11th, 2021
11 months agocol13 C2C2-CO-like-transcription factor 13:
 
   Huiling Cheng et al. 2023. TSPTFBS 2.0: trans-species prediction of transcription factor binding sites and identification of their core motifs in plants. Frontiers in Plant Science. 14:1175837.     Reference: May 25th, 2023
Gene Product: June 18th, 2018
11 months agocol7 C2C2-CO-like-transcription factor 7:
 
   Huiling Cheng et al. 2023. TSPTFBS 2.0: trans-species prediction of transcription factor binding sites and identification of their core motifs in plants. Frontiers in Plant Science. 14:1175837.     Reference: May 25th, 2023
Gene Product: June 18th, 2018
11 months agocol8 C2C2-CO-like-transcription factor 8:
 
   Huiling Cheng et al. 2023. TSPTFBS 2.0: trans-species prediction of transcription factor binding sites and identification of their core motifs in plants. Frontiers in Plant Science. 14:1175837.     Reference: May 25th, 2023
Gene Product: June 18th, 2018
11 months agocchh133 Cys2His2 Zinc Finger133:
 
   Huiling Cheng et al. 2023. TSPTFBS 2.0: trans-species prediction of transcription factor binding sites and identification of their core motifs in plants. Frontiers in Plant Science. 14:1175837.     Reference: May 25th, 2023
Gene Product: November 14th, 2022
11 months agoca3p2 CCAAT-HAP3-transcription factor 32:
 
   Adnan Rasheed et al. 2023. Breeding Drought-Tolerant Maize (Zea mays) Using Molecular Breeding Tools: Recent Advancements and Future Prospective Agronomy. 13:1459.     Reference: May 25th, 2023
Gene Product: August 9th, 2016
11 months agotcptf23 TCP-transcription factor 23:
 
   Huiling Cheng et al. 2023. TSPTFBS 2.0: trans-species prediction of transcription factor binding sites and identification of their core motifs in plants. Frontiers in Plant Science. 14:1175837.     Reference: May 25th, 2023
Gene Product: September 27th, 2019
Variation: March 18th, 2021
11 months agoknox6 knotted related homeobox6:
5.04
GRMZM2G370332
Huiling Cheng et al. 2023. TSPTFBS 2.0: trans-species prediction of transcription factor binding sites and identification of their core motifs in plants. Frontiers in Plant Science. 14:1175837.     Reference: May 25th, 2023
Gene Product: September 1st, 2003
Variation: August 12th, 2014
Gene Model: August 12th, 2014
11 months agomab16 math-btb16:
 
GRMZM2G172210
Huiling Cheng et al. 2023. TSPTFBS 2.0: trans-species prediction of transcription factor binding sites and identification of their core motifs in plants. Frontiers in Plant Science. 14:1175837.     Reference: May 25th, 2023
Gene Product: June 6th, 2014
Variation: May 10th, 2017
Gene Model: February 14th, 2017
11 months agocol18 C2C2-CO-like-transcription factor 18:
 
GRMZM2G148772
Huiling Cheng et al. 2023. TSPTFBS 2.0: trans-species prediction of transcription factor binding sites and identification of their core motifs in plants. Frontiers in Plant Science. 14:1175837.     Reference: May 25th, 2023
Gene Product: June 18th, 2018
Gene Model: June 16th, 2018
11 months agoumc1413  :
6.05
GRMZM2G030123
Shan Chen et al. 2023. Genome-wide association study presents insights into the genetic architecture of drought tolerance in maize seedlings under field water-deficit conditions. Frontiers in Plant Science. 14:1165582.     Reference: May 24th, 2023
Variation: September 1st, 2003
Gene Model: August 27th, 2018
11 months agoumc1963  :
4.04
GRMZM2G171311
Shan Chen et al. 2023. Genome-wide association study presents insights into the genetic architecture of drought tolerance in maize seedlings under field water-deficit conditions. Frontiers in Plant Science. 14:1165582.     Reference: May 24th, 2023
Variation: September 1st, 2003
Gene Model: June 10th, 2018
11 months agoexo4 exochitinase4:
 
GRMZM2G117405
Shan Chen et al. 2023. Genome-wide association study presents insights into the genetic architecture of drought tolerance in maize seedlings under field water-deficit conditions. Frontiers in Plant Science. 14:1165582.     Reference: May 24th, 2023
Gene Product: May 31st, 2021
Gene Model: June 1st, 2021
11 months agoasft2 aliphatic suberin feruloyl transferase2:
 
   Patrick Z Ellsworth et al. 2023. Leaf cell wall properties and stomatal density influence oxygen isotope enrichment of leaf water. Plant Cell Environ. :doi: 10.1111/pce.14612.     Reference: May 23rd, 2023
Gene Product: May 23rd, 2023
11 months agobk2 brittle stalk2:
9.04 - 9.05
GRMZM2G109326
Xu, W et al. 2023. Identification of ZmBK2 Gene Variation Involved in Regulating Maize Brittleness Genes. 14:1126.     Reference: May 23rd, 2023
Gene Product: March 31st, 2021
Variation: March 6th, 2012
Gene Model: March 5th, 2012
11 months agohct10 hydroxycinnamoyltransferase10:
 
GRMZM2G034360
Patrick Z Ellsworth et al. 2023. Leaf cell wall properties and stomatal density influence oxygen isotope enrichment of leaf water. Plant Cell Environ. :doi: 10.1111/pce.14612.     Reference: May 23rd, 2023
Gene Product: November 7th, 2015
Gene Model: May 18th, 2016
11 months agoflz12 FCS-like zinc finger12:
 
GRMZM2G051752
Seema Sahay et al. 2023. Genetic control of photoprotection and photosystem II operating efficiency in plants. New Phytol.     Reference: May 22nd, 2023
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
11 months agosaf1 safener induced1:
1.03
GRMZM2G042639
Sun, LL et al. 2023. Transcriptomic analysis of maize uncovers putative genes involved in metabolic detoxification under four safeners treatment Pestic Biochem Physiol. :doi: 10.1016/j.pestbp.2023.105465.     Reference: May 17th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: December 24th, 2015
11 months agogst6 glutathione transferase6:
7.01
GRMZM2G129357
Sun, LL et al. 2023. Transcriptomic analysis of maize uncovers putative genes involved in metabolic detoxification under four safeners treatment Pestic Biochem Physiol. :doi: 10.1016/j.pestbp.2023.105465.     Reference: May 17th, 2023
Gene Product: September 1st, 2003
Variation: July 22nd, 2010
Gene Model: July 27th, 2016
11 months agocadtfr4 CCAAT-DR1-transcription factor 4:
 
   Cao, LR et al. 2023. Genome-wide identification of NF-Y gene family in maize (Zea mays L.) and the positive role of ZmNF-YC12 in drought resistance and recovery ability Frontiers in Plant Science. 14:1159955.     Reference: May 17th, 2023
Gene Product: August 9th, 2016
11 months agocadtfr9 CCAAT-DR1-transcription factor 9:
 
   Cao, LR et al. 2023. Genome-wide identification of NF-Y gene family in maize (Zea mays L.) and the positive role of ZmNF-YC12 in drought resistance and recovery ability Frontiers in Plant Science. 14:1159955.     Reference: May 17th, 2023
Gene Product: August 9th, 2016
11 months agoca2p8 CCAAT-HAP2-transcription factor 28:
 
   Cao, LR et al. 2023. Genome-wide identification of NF-Y gene family in maize (Zea mays L.) and the positive role of ZmNF-YC12 in drought resistance and recovery ability Frontiers in Plant Science. 14:1159955.     Reference: May 17th, 2023
Gene Product: August 9th, 2016
11 months agoca2p9 CCAAT-HAP2-transcription factor 29:
 
   Cao, LR et al. 2023. Genome-wide identification of NF-Y gene family in maize (Zea mays L.) and the positive role of ZmNF-YC12 in drought resistance and recovery ability Frontiers in Plant Science. 14:1159955.     Reference: May 17th, 2023
Gene Product: August 9th, 2016
11 months agoca5p1 CCAAT-HAP5-transcription factor 51:
 
   Cao, LR et al. 2023. Genome-wide identification of NF-Y gene family in maize (Zea mays L.) and the positive role of ZmNF-YC12 in drought resistance and recovery ability Frontiers in Plant Science. 14:1159955.     Reference: May 17th, 2023
Gene Product: August 9th, 2016
11 months agoca5p13 CCAAT-HAP5-transcription factor 513:
 
   Cao, LR et al. 2023. Genome-wide identification of NF-Y gene family in maize (Zea mays L.) and the positive role of ZmNF-YC12 in drought resistance and recovery ability Frontiers in Plant Science. 14:1159955.     Reference: May 17th, 2023
Gene Product: August 9th, 2016
11 months agoca5p14 CCAAT-HAP5-transcription factor 514:
 
   Cao, LR et al. 2023. Genome-wide identification of NF-Y gene family in maize (Zea mays L.) and the positive role of ZmNF-YC12 in drought resistance and recovery ability Frontiers in Plant Science. 14:1159955.     Reference: May 17th, 2023
Gene Product: August 9th, 2016
11 months agoca5p15 CCAAT-HAP5-transcription factor 515:
 
   Cao, LR et al. 2023. Genome-wide identification of NF-Y gene family in maize (Zea mays L.) and the positive role of ZmNF-YC12 in drought resistance and recovery ability Frontiers in Plant Science. 14:1159955.     Reference: May 17th, 2023
Gene Product: August 9th, 2016
11 months agoca5p17 CCAAT-HAP5-transcription factor 517:
 
   Cao, LR et al. 2023. Genome-wide identification of NF-Y gene family in maize (Zea mays L.) and the positive role of ZmNF-YC12 in drought resistance and recovery ability Frontiers in Plant Science. 14:1159955.     Reference: May 17th, 2023
Gene Product: August 9th, 2016
11 months agoca5p2 CCAAT-HAP5-transcription factor 52:
 
   Cao, LR et al. 2023. Genome-wide identification of NF-Y gene family in maize (Zea mays L.) and the positive role of ZmNF-YC12 in drought resistance and recovery ability Frontiers in Plant Science. 14:1159955.     Reference: May 17th, 2023
Gene Product: August 9th, 2016
11 months agoca5p3 CCAAT-HAP5-transcription factor 53:
 
   Cao, LR et al. 2023. Genome-wide identification of NF-Y gene family in maize (Zea mays L.) and the positive role of ZmNF-YC12 in drought resistance and recovery ability Frontiers in Plant Science. 14:1159955.     Reference: May 17th, 2023
Gene Product: August 9th, 2016
11 months agoca5p4 CCAAT-HAP5-transcription factor 54:
 
   Cao, LR et al. 2023. Genome-wide identification of NF-Y gene family in maize (Zea mays L.) and the positive role of ZmNF-YC12 in drought resistance and recovery ability Frontiers in Plant Science. 14:1159955.     Reference: May 17th, 2023
Gene Product: August 9th, 2016
11 months agoca5p6 CCAAT-HAP5-transcription factor 56:
 
   Cao, LR et al. 2023. Genome-wide identification of NF-Y gene family in maize (Zea mays L.) and the positive role of ZmNF-YC12 in drought resistance and recovery ability Frontiers in Plant Science. 14:1159955.     Reference: May 17th, 2023
Gene Product: August 9th, 2016
11 months agoca5p7 CCAAT-HAP5-transcription factor 57:
 
   Cao, LR et al. 2023. Genome-wide identification of NF-Y gene family in maize (Zea mays L.) and the positive role of ZmNF-YC12 in drought resistance and recovery ability Frontiers in Plant Science. 14:1159955.     Reference: May 17th, 2023
Gene Product: August 9th, 2016
11 months agoca5p8 CCAAT-HAP5-transcription factor 58:
 
   Cao, LR et al. 2023. Genome-wide identification of NF-Y gene family in maize (Zea mays L.) and the positive role of ZmNF-YC12 in drought resistance and recovery ability Frontiers in Plant Science. 14:1159955.     Reference: May 17th, 2023
Gene Product: August 9th, 2016
11 months agogst19 glutathione transferase19:
6.04
GRMZM2G335618
Sun, LL et al. 2023. Transcriptomic analysis of maize uncovers putative genes involved in metabolic detoxification under four safeners treatment Pestic Biochem Physiol. :doi: 10.1016/j.pestbp.2023.105465.     Reference: May 17th, 2023
Gene Product: September 1st, 2003
Variation: August 18th, 2010
Gene Model: July 27th, 2016
11 months agogst31 glutathione transferase31:
1.01
GRMZM2G475059
Sun, LL et al. 2023. Transcriptomic analysis of maize uncovers putative genes involved in metabolic detoxification under four safeners treatment Pestic Biochem Physiol. :doi: 10.1016/j.pestbp.2023.105465.     Reference: May 17th, 2023
Gene Product: September 1st, 2003
Variation: August 21st, 2010
Gene Model: April 27th, 2016
11 months agogst37 glutathione transferase37:
7.04
GRMZM2G178079
Sun, LL et al. 2023. Transcriptomic analysis of maize uncovers putative genes involved in metabolic detoxification under four safeners treatment Pestic Biochem Physiol. :doi: 10.1016/j.pestbp.2023.105465.     Reference: May 17th, 2023
Gene Product: September 1st, 2003
Gene Model: July 27th, 2016
11 months agogst39 glutathione transferase39:
1.05
GRMZM2G028821
Sun, LL et al. 2023. Transcriptomic analysis of maize uncovers putative genes involved in metabolic detoxification under four safeners treatment Pestic Biochem Physiol. :doi: 10.1016/j.pestbp.2023.105465.     Reference: May 17th, 2023
Gene Product: September 1st, 2003
Gene Model: July 27th, 2016
11 months agoca5p9 CCAAT-HAP5-transcription factor 59:
4.08
GRMZM2G091433
Cao, LR et al. 2023. Genome-wide identification of NF-Y gene family in maize (Zea mays L.) and the positive role of ZmNF-YC12 in drought resistance and recovery ability Frontiers in Plant Science. 14:1159955.     Reference: May 17th, 2023
Gene Product: August 9th, 2016
Gene Model: August 8th, 2016
11 months agogst61 glutathione S-transferase61:
 
GRMZM2G162486
Sun, LL et al. 2023. Transcriptomic analysis of maize uncovers putative genes involved in metabolic detoxification under four safeners treatment Pestic Biochem Physiol. :doi: 10.1016/j.pestbp.2023.105465.     Reference: May 17th, 2023
Gene Product: September 1st, 2003
Gene Model: February 8th, 2022
11 months agocipk46 calcineurin B-like-interacting protein kinase46:
 
   Cao, Y et al. 2023. Beneficial rhizobacterium triggers induced systemic resistance of maize to Gibberella stalk rot via calcium signaling. Mol Plant-Microbe Interact.     Reference: May 16th, 2023
Gene Product: August 25th, 2018
11 months agocipk28 calcineurin B-like-interacting protein kinase28:
 
GRMZM2G412601
Cao, Y et al. 2023. Beneficial rhizobacterium triggers induced systemic resistance of maize to Gibberella stalk rot via calcium signaling. Mol Plant-Microbe Interact.     Reference: May 16th, 2023
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
11 months agoprc4 proteasome component4:
3.05
GRMZM2G171604
He, KH et al. 2023. Mining genes regulating root system architecture in maize based on data integration analysis Theor Appl Genet. 136:127.     Reference: May 15th, 2023
Gene Product: September 1st, 2003
Variation: May 6th, 2013
Gene Model: May 7th, 2013
11 months agonit2 nitrilase2:
 
GRMZM2G111225
Rajitha Gayan Lakmini Rathnayaka Pathiranage et al. 2023. The inhibition of maize (Zea mays L.) root stem cell regeneration by low oxygen is attenuated by Phytoglobin 1 (Pgb1) through changes in auxin and jasmonic acid. Planta. 257:120.     Reference: May 15th, 2023
Gene Product: May 29th, 2012
Variation: June 5th, 2012
Gene Model: May 29th, 2012
11 months agoprh17 protein phosphatase homolog17:
 
GRMZM2G164352
He, KH et al. 2023. Mining genes regulating root system architecture in maize based on data integration analysis Theor Appl Genet. 136:127.     Reference: May 15th, 2023
Gene Product: October 25th, 2021
Variation: April 28th, 2017
Gene Model: April 28th, 2017
11 months agoami1 amidase1:
 
GRMZM2G169087
Rajitha Gayan Lakmini Rathnayaka Pathiranage et al. 2023. The inhibition of maize (Zea mays L.) root stem cell regeneration by low oxygen is attenuated by Phytoglobin 1 (Pgb1) through changes in auxin and jasmonic acid. Planta. 257:120.   AT1G08980 (TAIR) Reference: May 15th, 2023
Gene Product: June 4th, 2012
Gene Model: August 11th, 2019
12 months agoomt4 Caffeoyl CoA O-methyltransferase4:
4.08
   Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: January 5th, 2014
Variation: September 25th, 2007
12 months agopcna1 proliferating cell nuclear antigen1:
5.08
   Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
12 months agosacd11 stearoyl-acyl-carrier-protein desaturase11:
10.04
AC215690.3_FG002
Luo, MJ et al. 2023. Genetic basis of the oil biosynthesis in ultra-high-oil maize grains with an oil content exceeding 20% Frontiers in Plant Science. 14:1168216.     Reference: May 12th, 2023
Gene Product: October 10th, 2016
Gene Model: October 10th, 2016
12 months agoroa1 replication origin activator1:
 
GRMZM2G100639
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: August 2nd, 2017
Variation: January 21st, 2011
Gene Model: June 1st, 2017
12 months agorop6 Rho-related protein6:
6.06
GRMZM2G176217
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: April 1st, 2004
Variation: May 7th, 2007
Gene Model: January 1st, 2015
12 months agogbptf17 GeBP-transcription factor 17:
5.07
GRMZM2G083886
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Variation: September 1st, 2003
Gene Model: July 13th, 2018
12 months agohat1 histone acetyltransferase1:
7.02
GRMZM5G851405
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: September 1st, 2003
Variation: January 28th, 2009
Gene Model: June 3rd, 2017
12 months agoumc1395  :
1.05
GRMZM2G329655
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Variation: September 1st, 2003
Gene Model: October 27th, 2016
12 months agokrp17 kinesin heavy chain17:
1.01
GRMZM2G092232
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Variation: September 1st, 2003
Gene Model: August 1st, 2017
12 months agoabi51 ABI3-VP1-transcription factor 51:
 
   Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: January 29th, 2022
12 months agoabi7 ABI3-VP1-transcription factor 7:
 
   Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: January 29th, 2022
12 months agolimtf13 LIM-transcription factor 13:
 
   Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: December 16th, 2019
12 months agomyb23 MYB-transcription factor 23:
 
   Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Variation: April 11th, 2017
12 months agotcptf16 TCP-transcription factor 16:
 
   Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: September 27th, 2019
12 months agotcptf21 TCP-transcription factor 21:
 
   Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: September 27th, 2019
12 months agoc3h45 C3H-transcription factor 345:
1.04 - 1.04
GRMZM2G003424
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Variation: December 30th, 2016
Gene Model: December 30th, 2016
12 months agoglk59 G2-like-transcription factor 59:
7.05
AC155434.2_FG005
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Variation: March 18th, 2021
Gene Model: February 2nd, 2018
12 months agopre1 premature senescence1:
1.05
   Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Variation: August 15th, 2005
12 months agohis2b2 histone2b2:
4.05
   Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: September 1st, 2003
Variation: June 23rd, 2014
12 months agosaur25 small auxin up RNA25:
2.07
GRMZM2G042712
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: November 26th, 2021
Gene Model: February 15th, 2018
12 months agohis2a1 histone2A1:
9.06
   Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: September 1st, 2003
Variation: September 3rd, 2015
12 months agocyc3 cyclin3:
6.02
   Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: June 26th, 2009
Variation: January 17th, 2014
12 months agonfd106 nucleosome/chromatin assembly factor D:
4.08
GRMZM2G125648
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Variation: February 21st, 2013
Gene Model: July 28th, 2016
12 months agohon106a histone H1 106a:
5.03
GRMZM2G121221
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: October 24th, 2017
Gene Model: October 31st, 2017
12 months agomlo7 barley mlo defense gene homolog7:
9.04
GRMZM2G416887
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Variation: October 19th, 2010
Gene Model: September 4th, 2014
12 months agoacco35 1-aminocyclopropane-1-carboxylate oxidase35:
5.07
GRMZM2G052422
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: May 16th, 2016
Variation: May 19th, 2015
Gene Model: May 19th, 2015
12 months agocyc6 cyclin6:
 
   Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Variation: January 17th, 2014
12 months agospo2 topoisomerase-like enzyme2:
 
GRMZM5G890820
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.   AT1G63990 (TAIR) Reference: May 12th, 2023
Gene Product: June 19th, 2014
Variation: June 8th, 2022
Gene Model: June 19th, 2014
12 months agoabk1 aurora b kinase1:
 
GRMZM2G132116
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Variation: November 18th, 2016
Gene Model: November 18th, 2016
12 months agocyc10 cyclin10:
 
GRMZM2G107377
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: June 26th, 2009
Variation: December 21st, 2016
Gene Model: December 21st, 2016
12 months agoplt6 phospholipid transfer protein homolog6:
 
GRMZM2G116167
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: September 1st, 2003
Gene Model: January 6th, 2017
12 months agomab10 math-btb10:
 
GRMZM2G154437
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: June 6th, 2014
Variation: May 10th, 2017
Gene Model: February 13th, 2017
12 months agoigps1 indole-3-glycerolphosphate synthase1:
 
GRMZM2G106950
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: March 29th, 2018
Variation: January 18th, 2021
Gene Model: March 29th, 2018
12 months agoigps3 indole-3-glycerolphosphate synthase3:
 
GRMZM2G145870
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: March 29th, 2018
Variation: January 18th, 2021
Gene Model: March 29th, 2018
12 months agodrepp2 developmentally regulated plasma membrane polypeptide2:
 
GRMZM2G007151
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: September 4th, 2019
Gene Model: September 4th, 2019
12 months agokr1 kauralexin reductase1:
 
GRMZM2G394968
Luo, MJ et al. 2023. Genetic basis of the oil biosynthesis in ultra-high-oil maize grains with an oil content exceeding 20% Frontiers in Plant Science. 14:1168216.     Reference: May 12th, 2023
Gene Product: September 16th, 2019
Gene Model: September 16th, 2019
12 months agokr2 kauralexin reductase2:
 
GRMZM2G073929
Luo, MJ et al. 2023. Genetic basis of the oil biosynthesis in ultra-high-oil maize grains with an oil content exceeding 20% Frontiers in Plant Science. 14:1168216.     Reference: May 12th, 2023
Gene Product: September 16th, 2019
Gene Model: September 16th, 2019
12 months agoaas9 auxin amido synthetase9:
 
GRMZM2G414460
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.   AT2G47750 (TAIR) Reference: May 12th, 2023
Gene Product: October 21st, 2019
Gene Model: October 21st, 2019
12 months agosaur29 small auxin up RNA29:
 
GRMZM2G343365
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
12 months agorad51d recombination protein51 gene d:
7.04
GRMZM2G055464
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: August 12th, 2016
Gene Model: June 19th, 2014
12 months agohct11 hydroxycinnamoyltransferase11:
7.02
GRMZM2G156296
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: November 7th, 2015
Variation: March 31st, 2005
Gene Model: May 18th, 2016
12 months agocyc5 cyclin5:
8.01
GRMZM2G005619
Ren, ZB et al. 2023. Deciphering transcriptional mechanisms of maize internodal elongation by regulatory network analysis. J Exp Bot. :doi: 10.1093/jxb/erad178.     Reference: May 12th, 2023
Gene Product: June 26th, 2009
Variation: January 18th, 2014
Gene Model: November 5th, 2014
12 months agoxlg1 extra-large guanine nucleotide-binding protein1:
1.05
GRMZM2G127739
Christian F Cantos et al. 2023. Extra-large G proteins have extra-large effects on agronomic traits and stress tolerance in maize and rice. Trends Plant Sci. :doi: 10.1016/j.tplants.2023.04.005.     Reference: May 9th, 2023
Gene Product: May 1st, 2018
Variation: May 1st, 2018
Gene Model: June 13th, 2017
12 months agoxlg3 extra-large guanine nucleotide-binding protein3:
6.01
GRMZM2G429113
Christian F Cantos et al. 2023. Extra-large G proteins have extra-large effects on agronomic traits and stress tolerance in maize and rice. Trends Plant Sci. :doi: 10.1016/j.tplants.2023.04.005.     Reference: May 9th, 2023
Gene Product: May 1st, 2018
Variation: May 1st, 2018
Gene Model: May 1st, 2018
1 year agoperk15 proline-rich extensin-like receptor kinase15:
 
   Sarkar, B et al. 2023. Mapping of QTLs for morphophysiological and yield traits under water-deficit stress and well-watered conditions in maize Frontiers in Plant Science. 14:1124619.     Reference: May 8th, 2023
Gene Product: September 7th, 2022
1 year agoppr339 pentatricopeptide repeat protein339:
 
   Yu Jin et al. 2023. Differential analysis and genome-wide association analysis of stomata density of maize inbred lines leaves at ear position Can J Plant Sci. :doi: 10.1139/CJPS-2023-0006.     Reference: May 8th, 2023
Gene Product: December 27th, 2016
1 year agogrf11 general regulatory factor11:
 
   Sarkar, B et al. 2023. Mapping of QTLs for morphophysiological and yield traits under water-deficit stress and well-watered conditions in maize Frontiers in Plant Science. 14:1124619.     Reference: May 8th, 2023
Gene Product: March 6th, 2023
1 year agoZm00001eb070510  :
 
   Hartwig, T et al. 2023. Hybrid allele-specific ChIP-seq analysis identifies variation in brassinosteroid-responsive transcription factor binding linked to traits in maize Genome Biology. 24:108.   AT5G46330 (TAIR) Reference: May 8th, 2023
Gene Product: February 1st, 2023
1 year agogpb1 glyceraldehyde phosphate dehydrogenase B1:
1.01
GRMZM5G845611
Sarkar, B et al. 2023. Mapping of QTLs for morphophysiological and yield traits under water-deficit stress and well-watered conditions in maize Frontiers in Plant Science. 14:1124619.     Reference: May 8th, 2023
Gene Product: September 1st, 2003
Variation: April 18th, 2006
Gene Model: April 12th, 2013
1 year agoabi31 ABI3-VP1-transcription factor 31:
 
   Sarkar, B et al. 2023. Mapping of QTLs for morphophysiological and yield traits under water-deficit stress and well-watered conditions in maize Frontiers in Plant Science. 14:1124619.     Reference: May 8th, 2023
Gene Product: January 29th, 2022
1 year agolimtf2 LIM-transcription factor 2:
 
   Sarkar, B et al. 2023. Mapping of QTLs for morphophysiological and yield traits under water-deficit stress and well-watered conditions in maize Frontiers in Plant Science. 14:1124619.     Reference: May 8th, 2023
Gene Product: December 16th, 2019
1 year agothx21 Trihelix-transcription factor 21:
 
   Dongbo Zhao et al. 2023. Identification and analysis of differentially expressed trihelix genes in maize (Zea mays) under abiotic stresses. PeerJ. 11:e15312.     Reference: May 8th, 2023
Gene Product: November 9th, 2021
1 year agothx10 Trihelix-transcription factor 10:
 
   Dongbo Zhao et al. 2023. Identification and analysis of differentially expressed trihelix genes in maize (Zea mays) under abiotic stresses. PeerJ. 11:e15312.     Reference: May 8th, 2023
Gene Product: November 9th, 2021
1 year agothx18 Trihelix-transcription factor 18:
 
   Dongbo Zhao et al. 2023. Identification and analysis of differentially expressed trihelix genes in maize (Zea mays) under abiotic stresses. PeerJ. 11:e15312.     Reference: May 8th, 2023
Gene Product: November 9th, 2021
1 year agothx25 Trihelix-transcription factor 25:
 
   Dongbo Zhao et al. 2023. Identification and analysis of differentially expressed trihelix genes in maize (Zea mays) under abiotic stresses. PeerJ. 11:e15312.     Reference: May 8th, 2023
Gene Product: November 9th, 2021
1 year agothx3 Trihelix-transcription factor 3:
 
   Dongbo Zhao et al. 2023. Identification and analysis of differentially expressed trihelix genes in maize (Zea mays) under abiotic stresses. PeerJ. 11:e15312.     Reference: May 8th, 2023
Gene Product: November 9th, 2021
1 year agocyb561 cytochrome b561:
4.06
GRMZM2G060357
Hartwig, T et al. 2023. Hybrid allele-specific ChIP-seq analysis identifies variation in brassinosteroid-responsive transcription factor binding linked to traits in maize Genome Biology. 24:108.     Reference: May 8th, 2023
Gene Product: April 29th, 2020
Gene Model: June 11th, 2018
1 year agoidd7 indeterminate1 domain7:
7.03
GRMZM2G042666
Hartwig, T et al. 2023. Hybrid allele-specific ChIP-seq analysis identifies variation in brassinosteroid-responsive transcription factor binding linked to traits in maize Genome Biology. 24:108.     Reference: May 8th, 2023
Gene Product: January 3rd, 2015
Variation: April 6th, 2011
Gene Model: January 3rd, 2015
1 year agogta105 global transcription factor (Spt5):
6.04
GRMZM2G171488
Sarkar, B et al. 2023. Mapping of QTLs for morphophysiological and yield traits under water-deficit stress and well-watered conditions in maize Frontiers in Plant Science. 14:1124619.     Reference: May 8th, 2023
Variation: December 20th, 2021
Gene Model: December 19th, 2021
1 year agomgt9 magnesium transporter9:
 
GRMZM2G139822
Sarkar, B et al. 2023. Mapping of QTLs for morphophysiological and yield traits under water-deficit stress and well-watered conditions in maize Frontiers in Plant Science. 14:1124619.     Reference: May 8th, 2023
Gene Product: April 18th, 2016
Gene Model: April 18th, 2016
1 year agothx31 Trihelix-transcription factor 31:
 
GRMZM2G427087
Dongbo Zhao et al. 2023. Identification and analysis of differentially expressed trihelix genes in maize (Zea mays) under abiotic stresses. PeerJ. 11:e15312.     Reference: May 8th, 2023
Gene Product: November 9th, 2021
Gene Model: August 7th, 2019
1 year agothx32 Trihelix-transcription factor 32:
 
GRMZM2G320827
Dongbo Zhao et al. 2023. Identification and analysis of differentially expressed trihelix genes in maize (Zea mays) under abiotic stresses. PeerJ. 11:e15312.     Reference: May 8th, 2023
Gene Product: November 9th, 2021
Gene Model: August 7th, 2019
1 year agothx33 Trihelix-transcription factor 33:
 
GRMZM2G149590
Dongbo Zhao et al. 2023. Identification and analysis of differentially expressed trihelix genes in maize (Zea mays) under abiotic stresses. PeerJ. 11:e15312.     Reference: May 8th, 2023
Gene Product: November 9th, 2021
Gene Model: August 7th, 2019
1 year agothx42 Trihelix-transcription factor 42:
 
GRMZM2G037823
Dongbo Zhao et al. 2023. Identification and analysis of differentially expressed trihelix genes in maize (Zea mays) under abiotic stresses. PeerJ. 11:e15312.     Reference: May 8th, 2023
Gene Product: November 9th, 2021
Gene Model: August 7th, 2019
1 year agospds3 spermidine synthase3:
 
GRMZM2G120578
Yu Jin et al. 2023. Differential analysis and genome-wide association analysis of stomata density of maize inbred lines leaves at ear position Can J Plant Sci. :doi: 10.1139/CJPS-2023-0006.     Reference: May 8th, 2023
Gene Product: June 19th, 2020
Gene Model: August 18th, 2020
1 year agogrx12 glutaredoxin12:
 
GRMZM2G303044
Sarkar, B et al. 2023. Mapping of QTLs for morphophysiological and yield traits under water-deficit stress and well-watered conditions in maize Frontiers in Plant Science. 14:1124619.     Reference: May 8th, 2023
Gene Product: January 21st, 2021
Gene Model: December 14th, 2021
1 year agonac1 NaCl stress protein1:
10.04
   Lei, L et al. 2023. Characterization of ZmPMP3g function in drought tolerance of maize. Sci. Rep.. 13:7375.     Reference: May 6th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
1 year agohsftf10 HSF-transcription factor 10:
 
   Myers, ZA et al. 2023. Conserved and variable heat stress responses of the Heat Shock Factor transcription factor family in maize and Setaria viridis. Plant Direct. 7:e489.     Reference: May 1st, 2023
Gene Product: May 15th, 2020
1 year agohsftf15 HSF-transcription factor 15:
 
   Myers, ZA et al. 2023. Conserved and variable heat stress responses of the Heat Shock Factor transcription factor family in maize and Setaria viridis. Plant Direct. 7:e489.     Reference: May 1st, 2023
Gene Product: May 15th, 2020
1 year agohsftf21 HSF-transcription factor 21:
 
   Myers, ZA et al. 2023. Conserved and variable heat stress responses of the Heat Shock Factor transcription factor family in maize and Setaria viridis. Plant Direct. 7:e489.     Reference: May 1st, 2023
Gene Product: May 15th, 2020
1 year agohsftf23 HSF-transcription factor 23:
 
   Myers, ZA et al. 2023. Conserved and variable heat stress responses of the Heat Shock Factor transcription factor family in maize and Setaria viridis. Plant Direct. 7:e489.     Reference: May 1st, 2023
Gene Product: May 15th, 2020
1 year agonagk1 N-acetylglutamate kinase1:
2.03
GRMZM2G132777
Liu, WJ et al. 2023. Expression of ZmNAGK in tobacco enhances heat stress tolerance via activation of antioxidant-associated defense Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.107719.     Reference: May 1st, 2023
Gene Product: January 23rd, 2019
Gene Model: January 23rd, 2019
1 year agoppr517 pentatricopeptide repeat potein517:
 
   Yueting Jin et al. 2023. Genome-Wide Association Study Identified Novel SNPs Associated with Chlorophyll Content in Maize Genes. 14:1010.     Reference: April 29th, 2023
Gene Product: December 27th, 2016
1 year agoplt39 phospholipid transfer protein39:
2.04
GRMZM2G414620
Yueting Jin et al. 2023. Genome-Wide Association Study Identified Novel SNPs Associated with Chlorophyll Content in Maize Genes. 14:1010.     Reference: April 29th, 2023
Gene Product: September 1st, 2003
Variation: March 18th, 2021
Gene Model: March 2nd, 2021
1 year agondpk4 nucleoside diphosphate kinase 4:
 
GRMZM5G833747
Yueting Jin et al. 2023. Genome-Wide Association Study Identified Novel SNPs Associated with Chlorophyll Content in Maize Genes. 14:1010.     Reference: April 29th, 2023
Gene Product: December 23rd, 2019
Gene Model: December 23rd, 2019
1 year agocct40 CO CO-LIKE TIMING OF CAB1 protein domain40:
 
GRMZM2G127426
Yueting Jin et al. 2023. Genome-Wide Association Study Identified Novel SNPs Associated with Chlorophyll Content in Maize Genes. 14:1010.     Reference: April 29th, 2023
Gene Product: June 18th, 2018
Gene Model: April 10th, 2021
1 year agocct101 CO CO-LIKE TIMING OF CAB1 protein domain101:
 
GRMZM2G474258
Yueting Jin et al. 2023. Genome-Wide Association Study Identified Novel SNPs Associated with Chlorophyll Content in Maize Genes. 14:1010.     Reference: April 29th, 2023
Gene Product: June 18th, 2018
Gene Model: August 17th, 2021
1 year agocbl3 calcineurin B-like3:
1.09
GRMZM2G112672
Liang, BS et al. 2023. ZmCIPK32 positively regulates germination of stressed seeds via gibberellin signal. Plant Physiol. 199:doi: 10.1016/j.plaphy.2023.107716.     Reference: April 28th, 2023
Gene Product: October 19th, 2016
Gene Model: August 9th, 2021
1 year agocipk33 calcineurin B-like-interacting protein kinase33:
4.08
GRMZM2G146553
Liang, BS et al. 2023. ZmCIPK32 positively regulates germination of stressed seeds via gibberellin signal. Plant Physiol. 199:doi: 10.1016/j.plaphy.2023.107716.     Reference: April 28th, 2023
Gene Product: August 25th, 2018
Gene Model: March 11th, 2021
1 year agocbl1 calcineurin B-like1:
 
GRMZM2G107575
Liang, BS et al. 2023. ZmCIPK32 positively regulates germination of stressed seeds via gibberellin signal. Plant Physiol. 199:doi: 10.1016/j.plaphy.2023.107716.     Reference: April 28th, 2023
Gene Product: October 19th, 2016
Gene Model: October 19th, 2016
1 year agocbl2 calcineurin B-like2:
 
GRMZM2G173424
Liang, BS et al. 2023. ZmCIPK32 positively regulates germination of stressed seeds via gibberellin signal. Plant Physiol. 199:doi: 10.1016/j.plaphy.2023.107716.     Reference: April 28th, 2023
Gene Product: October 19th, 2016
Gene Model: October 19th, 2016
1 year agocbl5 calcineurin B-like5:
 
GRMZM2G041729
Liang, BS et al. 2023. ZmCIPK32 positively regulates germination of stressed seeds via gibberellin signal. Plant Physiol. 199:doi: 10.1016/j.plaphy.2023.107716.     Reference: April 28th, 2023
Gene Product: October 19th, 2016
Gene Model: October 19th, 2016
1 year agocbl6 calcineurin B-like6:
10.02
GRMZM2G010093
Liang, BS et al. 2023. ZmCIPK32 positively regulates germination of stressed seeds via gibberellin signal. Plant Physiol. 199:doi: 10.1016/j.plaphy.2023.107716.     Reference: April 28th, 2023
Gene Product: October 19th, 2016
Variation: March 31st, 2005
Gene Model: October 19th, 2016
1 year agomate30 multidrug and toxic compound extrusion30:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agomate22 multidrug and toxic compound extrusion22:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agoglp4 germin-like protein4:
 
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agoglp5 germin-like protein5:
 
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agoglp6 germin-like protein6:
 
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agoglp8 germin-like protein8:
 
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agoglp9 germin-like protein9:
 
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agoglp10 germin-like protein10:
 
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agoglp11 germin-like protein11:
 
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agoglp12 germin-like protein12:
 
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agoglp13 germin-like protein13:
 
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agoglp14 germin-like protein14:
 
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agoglp15 germin-like protein15:
 
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agoglp16 germin-like protein16:
 
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agoglp17 germin-like protein17:
 
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agoglp19 germin-like protein19:
 
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agoglp20 germin-like protein20:
 
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agoglp21 germin-like protein21:
 
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agoglp22 germin-like protein22:
 
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agoglp23 germin-like protein23:
 
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agoglp25 germin-like protein25:
 
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agoglp26 germin-like protein26:
 
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agoglp27 germin-like protein27:
 
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agomate9 multidrug and toxic compound extrusion9:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agomate14 multidrug and toxic compound extrusion14:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agomate16 multidrug and toxic compound extrusion16:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agomate17 multidrug and toxic compound extrusion17:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agomate20 multidrug and toxic compound extrusion20:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agomate25 multidrug and toxic compound extrusion25:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agomate28 multidrug and toxic compound extrusion28:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agomate33 multidrug and toxic compound extrusion33:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agomate34 multidrug and toxic compound extrusion34:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agomate35 multidrug and toxic compound extrusion35:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agomate36 multidrug and toxic compound extrusion36:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agomate38 multidrug and toxic compound extrusion38:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agomate40 multidrug and toxic compound extrusion40:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agomate41 multidrug and toxic compound extrusion41:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agomate44 multidrug and toxic compound extrusion44:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agomate45 multidrug and toxic compound extrusion45:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agomate46 multidrug and toxic compound extrusion46:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agomate47 multidrug and toxic compound extrusion47:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agomate49 multidrug and toxic compound extrusion49:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agomate26 multidrug and toxic compound extrusion26:
4.05
GRMZM5G801875
Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
Variation: September 25th, 2007
Gene Model: August 22nd, 2021
1 year agomate8 multidrug and toxic compound extrusion8:
1.05
GRMZM2G069098
Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
Gene Model: April 10th, 2021
1 year agomate18 multidrug and toxic compound extrusion18:
2.06
GRMZM2G079127
Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
Gene Model: April 30th, 2021
1 year agomate10 multidrug and toxic compound extrusion10:
1.08
GRMZM2G119496
Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
Gene Model: April 11th, 2021
1 year agomate31 multidrug and toxic compound extrusion31:
5.03
GRMZM2G170116
Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
Gene Model: June 21st, 2021
1 year agopropep1 precursor elicitor peptide1:
 
GRMZM5G899080
Maurice Koenig et al. 2023. Maize phytocytokines modulate pro-survival host responses and pathogen resistance. Mol Plant-Microbe Interact. :doi: 10.1094/MPMI-01-23-0005-R.     Reference: April 27th, 2023
Gene Product: October 16th, 2020
Variation: March 4th, 2011
Gene Model: May 17th, 2013
1 year agoumc1606  :
6.01
GRMZM2G301803
Rafael Massahiro Yassue et al. 2023. Genome-wide association analysis of hyperspectral reflectance data to dissect the genetic architecture of growth-related traits in maize under plant growth-promoting bacteria inoculation. Plant Direct. 7:e492.     Reference: April 27th, 2023
Variation: September 1st, 2003
Gene Model: August 18th, 2018
1 year agonactf83 NAC-transcription factor 83:
 
   Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
1 year agomate12 multidrug and toxic compound extrusion12:
1.08
GRMZM5G842695
Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
Variation: December 27th, 2016
Gene Model: December 27th, 2016
1 year agomate48 multidrug and toxic compound extrusion48:
10.00
GRMZM2G151903
Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
Variation: September 1st, 2003
Gene Model: January 17th, 2018
1 year agomate4 multidrug and toxic compound extrusion4:
3.04
GRMZM2G080450
Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
Gene Model: August 17th, 2015
1 year agomate2 multidrug and toxic compound extrusion2:
 
GRMZM2G170128
Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
Variation: August 17th, 2015
Gene Model: August 17th, 2015
1 year agomate5 multidrug and toxic compound extrusion5:
 
GRMZM5G890665
Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.   LOC_Os12g01580 (MSU/TIGR) Reference: April 27th, 2023
Gene Product: August 17th, 2015
Gene Model: August 17th, 2015
1 year agomate6 multidrug and toxic compound extrusion6:
 
GRMZM2G065154
Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.   LOC_Os02g02980 (MSU/TIGR) Reference: April 27th, 2023
Gene Product: August 17th, 2015
Gene Model: August 17th, 2015
1 year agomate32 multidrug and toxic compound extrusion32:
 
GRMZM2G115105
Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
Gene Model: February 21st, 2020
1 year agosmr6 siamese-related6:
 
GRMZM2G090029
Rafael Massahiro Yassue et al. 2023. Genome-wide association analysis of hyperspectral reflectance data to dissect the genetic architecture of growth-related traits in maize under plant growth-promoting bacteria inoculation. Plant Direct. 7:e492.     Reference: April 27th, 2023
Gene Product: March 8th, 2017
Gene Model: July 30th, 2020
1 year agornrl2 ribonucleotide reductase large subunit2:
 
GRMZM2G340527
Yongqi Cui et al. 2023. Maize LSC encoding a large subunit of ribonucleotide reductase is required for subsidiary cell development and plant growth. J Exp Bot. :doi: 10.1093/jxb/erad153.     Reference: April 27th, 2023
Gene Product: October 6th, 2020
Gene Model: October 6th, 2020
1 year agoplc7 phospholipase C7:
 
GRMZM2G116876
Rafael Massahiro Yassue et al. 2023. Genome-wide association analysis of hyperspectral reflectance data to dissect the genetic architecture of growth-related traits in maize under plant growth-promoting bacteria inoculation. Plant Direct. 7:e492.     Reference: April 27th, 2023
Gene Product: January 12th, 2021
Gene Model: January 12th, 2021
1 year agomate37 multidrug and toxic compound extrusion37:
 
GRMZM2G132995
Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
Gene Model: July 25th, 2022
1 year agomate7 multidrug and toxic compound extrusion7:
 
GRMZM2G049852
Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
Gene Model: August 10th, 2022
1 year agoglp24 germin-like protein24:
10.03
   Muhammad Ilyas et al. 2023. Molecular Characterization of Germin-like Protein Genes in Zea mays (ZmGLPs) Using Various In Silico Approaches ACS Omega. :doi: 10.1021/acsomega.3c01104.     Reference: April 27th, 2023
Gene Product: December 24th, 2015
1 year agocrr4 cytokinin response regulator4:
8.06
GRMZM2G319187
Yin, P et al. 2023. Cytokinin signaling promotes salt tolerance by modulating shoot chloride exclusion in maize. Molecular Plant.     Reference: April 27th, 2023
Gene Product: June 30th, 2017
Gene Model: December 19th, 2015
1 year agomate24 multidrug and toxic compound extrusion24:
3.08
AC233945.1_FG003
Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
Gene Model: April 9th, 2020
1 year agomate42 multidrug and toxic compound extrusion42:
 
GRMZM2G075828
Huasheng Zhu et al. 2016. Genomewide analysis of MATE-type gene family in maize reveals microsynteny and their expression patterns under aluminum treatment. J Genet. 95:691-704.     Reference: April 27th, 2023
Gene Product: August 17th, 2015
Gene Model: March 18th, 2021
1 year agomrpa17 multidrug resistance protein associated17:
 
   Li, CY et al. 2023. Gene expression and eQTL analyses uncover natural variations underlying improvement of important agronomic traits during modern maize breeding Plant J. :doi: 10.1111/tpj.16260.     Reference: April 26th, 2023
Gene Product: July 11th, 2019
1 year agofarl11 FAR1-like-transcription factor 11:
 
   Li, CY et al. 2023. Gene expression and eQTL analyses uncover natural variations underlying improvement of important agronomic traits during modern maize breeding Plant J. :doi: 10.1111/tpj.16260.     Reference: April 26th, 2023
Gene Product: June 28th, 2019
1 year agojmj10 JUMONJI-transcription factor 10:
 
   Li, CY et al. 2023. Gene expression and eQTL analyses uncover natural variations underlying improvement of important agronomic traits during modern maize breeding Plant J. :doi: 10.1111/tpj.16260.     Reference: April 26th, 2023
Gene Product: April 3rd, 2019
1 year agoaed2 aspartyl protease2:
 
   Muhammad Shahbaz et al. 2023. Heat-Induced Transcriptome and Genome-Wide Analysis of NHL Genes in Maize (Zea mays L.) Suggest a Role of ZmNHLs Under Heat Stress J Plant Growth Reg. :doi: 10.1007/s00344-023-10982-5.     Reference: April 25th, 2023
Gene Product: September 26th, 2020
1 year agohin9 hairpin-induced9:
 
   Muhammad Shahbaz et al. 2023. Heat-Induced Transcriptome and Genome-Wide Analysis of NHL Genes in Maize (Zea mays L.) Suggest a Role of ZmNHLs Under Heat Stress J Plant Growth Reg. :doi: 10.1007/s00344-023-10982-5.     Reference: April 25th, 2023
Gene Product: February 1st, 2021
1 year agohin10 hairpin-induced10:
 
   Muhammad Shahbaz et al. 2023. Heat-Induced Transcriptome and Genome-Wide Analysis of NHL Genes in Maize (Zea mays L.) Suggest a Role of ZmNHLs Under Heat Stress J Plant Growth Reg. :doi: 10.1007/s00344-023-10982-5.     Reference: April 25th, 2023
Gene Product: February 1st, 2021
1 year agohin19 hairpin-induced19:
 
   Muhammad Shahbaz et al. 2023. Heat-Induced Transcriptome and Genome-Wide Analysis of NHL Genes in Maize (Zea mays L.) Suggest a Role of ZmNHLs Under Heat Stress J Plant Growth Reg. :doi: 10.1007/s00344-023-10982-5.     Reference: April 25th, 2023
Gene Product: February 1st, 2021
1 year agohin21 hairpin-induced21:
 
   Muhammad Shahbaz et al. 2023. Heat-Induced Transcriptome and Genome-Wide Analysis of NHL Genes in Maize (Zea mays L.) Suggest a Role of ZmNHLs Under Heat Stress J Plant Growth Reg. :doi: 10.1007/s00344-023-10982-5.     Reference: April 25th, 2023
Gene Product: February 1st, 2021
1 year agohin23 hairpin-induced23:
 
   Muhammad Shahbaz et al. 2023. Heat-Induced Transcriptome and Genome-Wide Analysis of NHL Genes in Maize (Zea mays L.) Suggest a Role of ZmNHLs Under Heat Stress J Plant Growth Reg. :doi: 10.1007/s00344-023-10982-5.     Reference: April 25th, 2023
Gene Product: February 1st, 2021
1 year agomybr98 MYB-related-transcription factor 98:
 
   Minguo Liu et al. 2023. Identifying yield-related genes in maize based on ear trait plasticity Genome Biol. 24:94.     Reference: April 25th, 2023
Variation: February 14th, 2018
1 year agohin6 hairpin-induced6:
6.05 - 6.05
GRMZM2G118951
Muhammad Shahbaz et al. 2023. Heat-Induced Transcriptome and Genome-Wide Analysis of NHL Genes in Maize (Zea mays L.) Suggest a Role of ZmNHLs Under Heat Stress J Plant Growth Reg. :doi: 10.1007/s00344-023-10982-5.     Reference: April 25th, 2023
Gene Product: February 1st, 2021
Gene Model: March 15th, 2021
1 year agohin4 hairpin-induced4:
5.03 - 5.04
GRMZM2G076392
Muhammad Shahbaz et al. 2023. Heat-Induced Transcriptome and Genome-Wide Analysis of NHL Genes in Maize (Zea mays L.) Suggest a Role of ZmNHLs Under Heat Stress J Plant Growth Reg. :doi: 10.1007/s00344-023-10982-5.     Reference: April 25th, 2023
Gene Product: February 1st, 2021
Gene Model: January 4th, 2022
1 year agohin5 hairpin-induced5:
1.09
GRMZM2G002499
Muhammad Shahbaz et al. 2023. Heat-Induced Transcriptome and Genome-Wide Analysis of NHL Genes in Maize (Zea mays L.) Suggest a Role of ZmNHLs Under Heat Stress J Plant Growth Reg. :doi: 10.1007/s00344-023-10982-5.     Reference: April 25th, 2023
Gene Product: February 1st, 2021
Gene Model: July 25th, 2022
1 year agohin2 hairpin-induced2:
2.02
GRMZM2G342039
Muhammad Shahbaz et al. 2023. Heat-Induced Transcriptome and Genome-Wide Analysis of NHL Genes in Maize (Zea mays L.) Suggest a Role of ZmNHLs Under Heat Stress J Plant Growth Reg. :doi: 10.1007/s00344-023-10982-5.     Reference: April 25th, 2023
Gene Product: February 1st, 2021
Gene Model: April 6th, 2022
1 year agohin8 hairpin-induced8:
 
GRMZM2G011553
Muhammad Shahbaz et al. 2023. Heat-Induced Transcriptome and Genome-Wide Analysis of NHL Genes in Maize (Zea mays L.) Suggest a Role of ZmNHLs Under Heat Stress J Plant Growth Reg. :doi: 10.1007/s00344-023-10982-5.     Reference: April 25th, 2023
Gene Product: February 1st, 2021
Gene Model: September 16th, 2019
1 year agohin1 hairpin-induced1:
 
GRMZM2G106792
Muhammad Shahbaz et al. 2023. Heat-Induced Transcriptome and Genome-Wide Analysis of NHL Genes in Maize (Zea mays L.) Suggest a Role of ZmNHLs Under Heat Stress J Plant Growth Reg. :doi: 10.1007/s00344-023-10982-5.     Reference: April 25th, 2023
Gene Product: February 1st, 2021
Gene Model: February 1st, 2021
1 year agochx16 cation/H+ antiporter 16:
 
GRMZM2G037343
Muhammad Shahbaz et al. 2023. Heat-Induced Transcriptome and Genome-Wide Analysis of NHL Genes in Maize (Zea mays L.) Suggest a Role of ZmNHLs Under Heat Stress J Plant Growth Reg. :doi: 10.1007/s00344-023-10982-5.     Reference: April 25th, 2023
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
1 year agohin3 hairpin-induced3:
1.07
GRMZM2G136439
Muhammad Shahbaz et al. 2023. Heat-Induced Transcriptome and Genome-Wide Analysis of NHL Genes in Maize (Zea mays L.) Suggest a Role of ZmNHLs Under Heat Stress J Plant Growth Reg. :doi: 10.1007/s00344-023-10982-5.     Reference: April 25th, 2023
Gene Product: February 1st, 2021
Gene Model: February 12th, 2020
1 year agomha11 membrane H(+)-ATPase11:
 
GRMZM2G172183
Wu, YT et al. 2023. Sugar transporter ZmSWEET1b is responsible for assimilate allocation and salt stress response in maize. Funct Integr Genomics. 23:137.     Reference: April 24th, 2023
Gene Product: September 1st, 2003
Gene Model: January 10th, 2020
1 year agotua3 alpha tubulin3:
5.01
AC195340.3_FG001
XiaoQian Sha et al. 2023. Genetic dissection of crown root traits and their relationship to aboveground agronomic traits in maize J Integr Agric. :doi: 10.1016/j.jia.2023.04.022.     Reference: April 21st, 2023
Gene Product: September 1st, 2003
Variation: August 13th, 2013
Gene Model: August 24th, 2014
1 year agorop7 Rho-related protein from plants 7:
8.05
AC209819.3_FG012
XiaoQian Sha et al. 2023. Genetic dissection of crown root traits and their relationship to aboveground agronomic traits in maize J Integr Agric. :doi: 10.1016/j.jia.2023.04.022.     Reference: April 21st, 2023
Gene Product: April 1st, 2004
Variation: April 18th, 2017
Gene Model: January 1st, 2015
1 year agoznf10 zinc finger protein10:
 
GRMZM2G081782
XiaoQian Sha et al. 2023. Genetic dissection of crown root traits and their relationship to aboveground agronomic traits in maize J Integr Agric. :doi: 10.1016/j.jia.2023.04.022.     Reference: April 21st, 2023
Gene Product: November 14th, 2022
Gene Model: May 25th, 2021
1 year agoipk1 inositol 1,3,4,5,6-pentakisphosphate 2-kinase1:
 
   Sun, YJ et al. 2007. Inositol 1,3,4,5,6-pentakisphosphate 2-kinase from maize: molecular and biochemical characterization. Plant Physiol. 144:1278-1291.     Reference: April 18th, 2023
Gene Product: April 18th, 2023
1 year agoubf9 ubiquitin fusion protein9:
 
GRMZM2G431821
Lin, YA et al. 2014. PLoS One 9: e95445     Reference: April 17th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: September 24th, 2018
1 year agoubi2 ubiquitin2:
4.09
GRMZM2G419891
Lin, YA et al. 2014. PLoS One 9: e95445     Reference: April 17th, 2023
Gene Product: September 1st, 2003
Variation: November 18th, 2014
Gene Model: August 7th, 2014
1 year agoccp10 cysteine protease10:
1.04
GRMZM2G072448
Li, YH et al. 2023. Modifying the Expression of Cysteine Protease Gene PCP Affects Pollen Development, Germination and Plant Drought Tolerance in Maize Int J Mol Sci. 24:7406.     Reference: April 17th, 2023
Gene Product: October 11th, 2021
Variation: April 17th, 2023
Gene Model: February 24th, 2021
1 year agoppi1 peptidyl-prolyl isomerase1:
5.04
GRMZM2G326111
Hughes, TE et al. 2023. Mutations in NAKED-ENDOSPERM IDD genes reveal functional interactions with SCARECROW during leaf patterning in C4 grasses. PLoS Genetics. 19:e1010715.     Reference: April 17th, 2023
Gene Product: December 14th, 2014
Variation: December 18th, 2014
Gene Model: December 14th, 2014
1 year agoalt5 alanine aminotransferase5:
7.02
GRMZM2G117230
Wang, B et al. 2023. Integration of miRNA and mRNA analysis reveals the role of ribosome in to anti-artificial aging in sweetcorn. Int J Biol Macromol. :doi: 10.1016/j.ijbiomac.2023.124434.     Reference: April 17th, 2023
Gene Product: October 2nd, 2020
Variation: July 6th, 2021
Gene Model: July 16th, 2020
1 year agohyd6 hydroxylase6:
 
GRMZM2G090051
Wang, B et al. 2023. Integration of miRNA and mRNA analysis reveals the role of ribosome in to anti-artificial aging in sweetcorn. Int J Biol Macromol. :doi: 10.1016/j.ijbiomac.2023.124434.     Reference: April 17th, 2023
Gene Product: December 13th, 2011
Variation: September 3rd, 2011
Gene Model: April 9th, 2013
1 year agoact2 actin2:
8.03
   Lin, YA et al. 2014. PLoS One 9: e95445     Reference: April 17th, 2023
Gene Product: September 1st, 2003
1 year agorp3 resistance to Puccinia sorghi3:
3.04
AC230011.2_FG002
Collins, N et al. 1998. Mol Plant-Microbe Interact 11:968-978     Reference: April 16th, 2023
Gene Product: December 3rd, 2012
Variation: October 8th, 2008
Gene Model: December 3rd, 2012
1 year agorxo1 reaction to X. oryzae1:
6.00
GRMZM2G334584
Collins, N et al. 1998. Mol Plant-Microbe Interact 11:968-978     Reference: April 16th, 2023
Variation: May 13th, 2012
Gene Model: December 28th, 2016
1 year agonbslrr1 NBS-LRR systemic acquired resistance1:
 
GRMZM2G091696
Collins, N et al. 1998. Mol Plant-Microbe Interact 11:968-978     Reference: April 16th, 2023
Gene Product: January 17th, 2022
Gene Model: March 23rd, 2021
1 year agochi6 chalcone flavanone isomerase6:
3.09
GRMZM2G175076
Xiaodan Hu et al. 2023. The Accumulation and Biosynthesis of Anthocyanin in Black, White, and Yellow Waxy Corns (Zea mays L. sinensis kulesh) during Kernel Maturation. Foods. 12:1486.     Reference: April 14th, 2023
Gene Product: January 26th, 2021
Variation: March 31st, 2005
Gene Model: February 25th, 2019
1 year agovacs1 vacuolar sorting receptor homolog1:
9.04
   Yufeng Jiang et al. 2023. Metabolomics and transcriptomics strategies to reveal the mechanism of diversity of maize kernel color and quality. BMC Genomics. 24:194.     Reference: April 13th, 2023
Gene Product: September 1st, 2003
Variation: August 22nd, 2013
1 year agoAY109995  :
5.03
GRMZM2G303631
Yufeng Jiang et al. 2023. Metabolomics and transcriptomics strategies to reveal the mechanism of diversity of maize kernel color and quality. BMC Genomics. 24:194.     Reference: April 13th, 2023
Variation: June 22nd, 2021
Gene Model: June 23rd, 2018
1 year agoacsn2 acyl-CoA synthetase2:
2.04
GRMZM2G145179
Zhang, XL et al. 2023. Genetic dissection of QTLs for oil content in four maize DH populations Frontiers in Plant Science. 14:1174985.     Reference: April 12th, 2023
Gene Product: December 20th, 2011
Gene Model: November 25th, 2021
1 year agosacd7 stearoyl-acyl-carrier-protein desaturase7:
 
GRMZM2G073540
Zhang, XL et al. 2023. Genetic dissection of QTLs for oil content in four maize DH populations Frontiers in Plant Science. 14:1174985.     Reference: April 12th, 2023
Gene Product: October 10th, 2016
Gene Model: October 10th, 2016
1 year agosacd10 stearoyl-acyl-carrier-protein desaturase10:
 
GRMZM2G119305
Zhang, XL et al. 2023. Genetic dissection of QTLs for oil content in four maize DH populations Frontiers in Plant Science. 14:1174985.     Reference: April 12th, 2023
Gene Product: October 10th, 2016
Gene Model: October 10th, 2016
1 year agofad11 fatty acid desaturase11:
 
GRMZM2G078373
Zhang, XL et al. 2023. Genetic dissection of QTLs for oil content in four maize DH populations Frontiers in Plant Science. 14:1174985.     Reference: April 12th, 2023
Gene Product: January 6th, 2022
Gene Model: January 6th, 2022
1 year agogwt1 glucosaminyl-phosphatidylinositol O-acyltransferase1:
 
   Tian, RM et al. 2023. Multi-omic characterization of the maize GPI synthesis mutant gwt1 with defects in kernel development. BMC Plant Biology. 23:191.     Reference: April 11th, 2023
Gene Product: April 11th, 2023
Variation: April 11th, 2023
1 year agoltpg1 glycosylphosphatidylinositol-anchored lipid protein transfer1:
1.06
GRMZM2G083725
Tian, RM et al. 2023. Multi-omic characterization of the maize GPI synthesis mutant gwt1 with defects in kernel development. BMC Plant Biology. 23:191.     Reference: April 11th, 2023
Gene Product: September 1st, 2003
Variation: December 2nd, 2016
Gene Model: December 2nd, 2016
1 year agozip7 zinc-regulated, iron-regulated transporter-like protein7:
 
GRMZM2G015955
Tian, RM et al. 2023. Multi-omic characterization of the maize GPI synthesis mutant gwt1 with defects in kernel development. BMC Plant Biology. 23:191.     Reference: April 11th, 2023
Gene Product: June 5th, 2019
Gene Model: June 5th, 2019
1 year agopmei46 pectin methylesterase inhibitor46:
 
AC233850.1_FG002
Tian, RM et al. 2023. Multi-omic characterization of the maize GPI synthesis mutant gwt1 with defects in kernel development. BMC Plant Biology. 23:191.     Reference: April 11th, 2023
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
1 year agoplt43 phospholipid transfer protein43:
 
GRMZM2G071575
Tian, RM et al. 2023. Multi-omic characterization of the maize GPI synthesis mutant gwt1 with defects in kernel development. BMC Plant Biology. 23:191.     Reference: April 11th, 2023
Gene Product: September 1st, 2003
Gene Model: February 15th, 2022
1 year agocsu591(uce)  :
8.08
GRMZM5G866947
Li, ZM et al. 2023. ZmGI2 regulates flowering time through multiple flower development pathways in maize. Plant Sci. :doi: 10.1016/j.plantsci.2023.111701.     Reference: April 10th, 2023
Gene Product: December 19th, 2019
Gene Model: November 26th, 2019
1 year agoarr5 ARR-B-transcription factor 5:
 
   Li, ZM et al. 2023. ZmGI2 regulates flowering time through multiple flower development pathways in maize. Plant Sci. :doi: 10.1016/j.plantsci.2023.111701.     Reference: April 10th, 2023
Gene Product: June 30th, 2017
1 year agovoz4 VOZ-transcription factor 4:
 
   Li, ZM et al. 2023. ZmGI2 regulates flowering time through multiple flower development pathways in maize. Plant Sci. :doi: 10.1016/j.plantsci.2023.111701.     Reference: April 10th, 2023
Gene Product: September 14th, 2021
1 year agotcptf20 TCP-transcription factor 20:
 
   Horvath, DP et al. 2023. Weed-induced changes in the maize root transcriptome reveal transcription factors and physiological processes impacted early in crop-weed interactions AoB Plants. :doi: 10.1093/aobpla/plad013.     Reference: April 7th, 2023
Gene Product: September 27th, 2019
1 year agoumc124a(chk)  :
8.03
GRMZM2G087146
Dazhuang Li et al. 2023. CT-Based Phenotyping and Genome-Wide Association Analysis of the Internal Structure and Components of Maize Kernels Agronomy. 13:1078.     Reference: April 7th, 2023
Gene Product: September 1st, 2003
Variation: April 14th, 2017
Gene Model: April 14th, 2017
1 year agosnrkII1 SnRK2 serine threonine protein kinase1:
 
GRMZM2G035809
Horvath, DP et al. 2023. Weed-induced changes in the maize root transcriptome reveal transcription factors and physiological processes impacted early in crop-weed interactions AoB Plants. :doi: 10.1093/aobpla/plad013.     Reference: April 7th, 2023
Gene Product: April 14th, 2018
Gene Model: February 11th, 2015
1 year agomctp7 multiple C2 domain and transmembrane region protein7:
 
GRMZM2G064852
Horvath, DP et al. 2023. Weed-induced changes in the maize root transcriptome reveal transcription factors and physiological processes impacted early in crop-weed interactions AoB Plants. :doi: 10.1093/aobpla/plad013.     Reference: April 7th, 2023
Gene Product: August 3rd, 2022
Gene Model: August 3rd, 2022
1 year agobhlh198 bHLH-transcription factor 198:
 
   Taoyang Cai et al. 2023. Anthocyanins in metabolites of purple corn Frontiers in Plant Science. 14:1154535.     Reference: April 6th, 2023
Gene Product: September 14th, 2016
1 year agopco082032  :
2.01
   Ghorbani, A et al. 2023. Gene network modeling and pathway analysis of maize transcriptomes in response to Maize Iranian mosaic virus. Genomics. :doi: 10.1016/j.ygeno.2023.110618.     Reference: April 6th, 2023
Variation: September 25th, 2007
1 year agofht3 flavanone 3-hydroxylase3:
 
GRMZM2G382569
Taoyang Cai et al. 2023. Anthocyanins in metabolites of purple corn Frontiers in Plant Science. 14:1154535.     Reference: April 6th, 2023
Gene Product: June 8th, 2012
Gene Model: April 6th, 2021
1 year agoIDP2367  :
1.05
GRMZM5G868757
Ghorbani, A et al. 2023. Gene network modeling and pathway analysis of maize transcriptomes in response to Maize Iranian mosaic virus. Genomics. :doi: 10.1016/j.ygeno.2023.110618.     Reference: April 6th, 2023
Variation: March 31st, 2005
Gene Model: February 13th, 2019
1 year agoemp601 empty pericarp601:
 
   Chen, RR et al. 2023. The pentatricopeptide repeat protein EMP601 functions in maize seed development by affecting RNA editing of mitochondrial transcript ccmC The Crop Journal. :doi: 10.1016/j.cj.2023.03.004.     Reference: April 5th, 2023
Gene Product: December 27th, 2016
Variation: April 5th, 2023
1 year agomyb53 MYB-transcription factor 53:
3.09
   Zhao, XQ et al. 2023. Integrated QTL Mapping, Meta-Analysis, and RNA-Sequencing Reveal Candidate Genes for Maize Deep-Sowing Tolerance Int J Mol Sci. 24:6770.     Reference: April 5th, 2023
Variation: September 25th, 2007
1 year agosaur44 small auxin up RNA44:
4.07
GRMZM2G475683
Zhao, XQ et al. 2023. Integrated QTL Mapping, Meta-Analysis, and RNA-Sequencing Reveal Candidate Genes for Maize Deep-Sowing Tolerance Int J Mol Sci. 24:6770.     Reference: April 5th, 2023
Gene Product: November 26th, 2021
Variation: September 1st, 2003
Gene Model: April 23rd, 2020
1 year agoarr1 ARR-B-transcription factor 1:
 
   Zhao, XQ et al. 2023. Integrated QTL Mapping, Meta-Analysis, and RNA-Sequencing Reveal Candidate Genes for Maize Deep-Sowing Tolerance Int J Mol Sci. 24:6770.     Reference: April 5th, 2023
Gene Product: June 30th, 2017
1 year agomyb21 MYB-transcription factor 21:
 
   Zhao, XQ et al. 2023. Integrated QTL Mapping, Meta-Analysis, and RNA-Sequencing Reveal Candidate Genes for Maize Deep-Sowing Tolerance Int J Mol Sci. 24:6770.     Reference: April 5th, 2023
Gene Product: July 25th, 2017
1 year agothx29 Trihelix-transcription factor 29:
 
   Ramazan, S et al. 2023. Comparative protein analysis of two maize genotypes with contrasting tolerance to low temperature BMC Plant Biology. 23:183.     Reference: April 5th, 2023
Gene Product: November 9th, 2021
1 year agocyp8 cytochrome P-450 8:
1.08
   Zhao, XQ et al. 2023. Integrated QTL Mapping, Meta-Analysis, and RNA-Sequencing Reveal Candidate Genes for Maize Deep-Sowing Tolerance Int J Mol Sci. 24:6770.   LOC_Os10g26340 (MSU/TIGR) Reference: April 5th, 2023
Gene Product: September 1st, 2003
Variation: October 24th, 2012
1 year agockx11 cytokinin oxidase11:
 
GRMZM2G122340
Zhao, XQ et al. 2023. Integrated QTL Mapping, Meta-Analysis, and RNA-Sequencing Reveal Candidate Genes for Maize Deep-Sowing Tolerance Int J Mol Sci. 24:6770.     Reference: April 5th, 2023
Gene Product: July 19th, 2021
Gene Model: March 25th, 2014
1 year agomcm7 minichromosome maintenance7:
 
GRMZM2G139894
Ramazan, S et al. 2023. Comparative protein analysis of two maize genotypes with contrasting tolerance to low temperature BMC Plant Biology. 23:183.     Reference: April 5th, 2023
Gene Product: August 2nd, 2017
Gene Model: July 31st, 2017
1 year agopme11 pectin methylesterase11:
 
GRMZM2G112984
Zhao, XQ et al. 2023. Integrated QTL Mapping, Meta-Analysis, and RNA-Sequencing Reveal Candidate Genes for Maize Deep-Sowing Tolerance Int J Mol Sci. 24:6770.     Reference: April 5th, 2023
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
1 year agoxt1 beta-1,2-xylosyltransferase1:
 
GRMZM2G419267
Zhao, XQ et al. 2023. Integrated QTL Mapping, Meta-Analysis, and RNA-Sequencing Reveal Candidate Genes for Maize Deep-Sowing Tolerance Int J Mol Sci. 24:6770.     Reference: April 5th, 2023
Gene Product: February 10th, 2020
Gene Model: February 10th, 2020
1 year agolac21 laccase21:
 
GRMZM2G447271
Zhao, XQ et al. 2023. Integrated QTL Mapping, Meta-Analysis, and RNA-Sequencing Reveal Candidate Genes for Maize Deep-Sowing Tolerance Int J Mol Sci. 24:6770.     Reference: April 5th, 2023
Gene Product: March 31st, 2018
Gene Model: March 3rd, 2020
1 year agosaur3 small auxin up RNA3:
 
GRMZM2G422419
Zhao, XQ et al. 2023. Integrated QTL Mapping, Meta-Analysis, and RNA-Sequencing Reveal Candidate Genes for Maize Deep-Sowing Tolerance Int J Mol Sci. 24:6770.     Reference: April 5th, 2023
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
1 year agosaur43 small auxin up RNA43:
 
GRMZM2G410499
Zhao, XQ et al. 2023. Integrated QTL Mapping, Meta-Analysis, and RNA-Sequencing Reveal Candidate Genes for Maize Deep-Sowing Tolerance Int J Mol Sci. 24:6770.     Reference: April 5th, 2023
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
1 year agosaur51 small auxin up RNA51:
 
GRMZM2G361993
Zhao, XQ et al. 2023. Integrated QTL Mapping, Meta-Analysis, and RNA-Sequencing Reveal Candidate Genes for Maize Deep-Sowing Tolerance Int J Mol Sci. 24:6770.     Reference: April 5th, 2023
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
1 year agosaur60 small auxin up RNA60:
 
GRMZM2G011463
Zhao, XQ et al. 2023. Integrated QTL Mapping, Meta-Analysis, and RNA-Sequencing Reveal Candidate Genes for Maize Deep-Sowing Tolerance Int J Mol Sci. 24:6770.     Reference: April 5th, 2023
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
1 year agoIDP351  :
3.09
GRMZM2G057853
Ramazan, S et al. 2023. Comparative protein analysis of two maize genotypes with contrasting tolerance to low temperature BMC Plant Biology. 23:183.     Reference: April 5th, 2023
Variation: March 31st, 2005
Gene Model: February 24th, 2019
1 year agoIDP1988  :
6.01
GRMZM2G050705
Zhao, XQ et al. 2023. Integrated QTL Mapping, Meta-Analysis, and RNA-Sequencing Reveal Candidate Genes for Maize Deep-Sowing Tolerance Int J Mol Sci. 24:6770.     Reference: April 5th, 2023
Variation: March 31st, 2005
Gene Model: December 16th, 2019
1 year agoabh4 abscisic acid 8'-hydroxylase4:
7.02
GRMZM2G065928
Zhao, XQ et al. 2023. Integrated QTL Mapping, Meta-Analysis, and RNA-Sequencing Reveal Candidate Genes for Maize Deep-Sowing Tolerance Int J Mol Sci. 24:6770.     Reference: April 5th, 2023
Gene Product: February 15th, 2013
Variation: March 31st, 2005
Gene Model: July 7th, 2017
1 year agoincw8 invertase cell wall8:
3.05
GRMZM2G174249
Zhao, XQ et al. 2023. Integrated QTL Mapping, Meta-Analysis, and RNA-Sequencing Reveal Candidate Genes for Maize Deep-Sowing Tolerance Int J Mol Sci. 24:6770.     Reference: April 5th, 2023
Gene Product: June 12th, 2018
Variation: September 25th, 2007
Gene Model: June 12th, 2018
1 year agox1 putative transcription factor:
3.09
GRMZM2G160032
Yao, H et al. 2005. Plant Mol Biol 57:445-460     Reference: April 4th, 2023
Variation: August 24th, 2013
Gene Model: April 24th, 2014
1 year agoyz1 polypeptide: yz1:
 
GRMZM2G114048
Yao, H et al. 2005. Plant Mol Biol 57:445-460     Reference: April 4th, 2023
Variation: January 26th, 2015
Gene Model: April 24th, 2014
1 year agoptk4 protein kinase homolog4:
2.06
AC217842.3_FG001
Liang, TH et al. 2023. GWAS across multiple environments and WGCNA suggest the involvement of ZmARF23 in embryonic callus induction from immature maize embryos. Theor Appl Genet. 136:93.     Reference: April 4th, 2023
Gene Product: September 1st, 2003
Variation: October 9th, 2014
Gene Model: July 11th, 2013
1 year agosus5 sucrose synthase5:
 
   Wang, J et al. 2023. Effect of nicosulfuron on dynamic changes in the starch-sugar interconversion in sweet maize (Zea mays L.). Environ Sci Pollut Res. :doi: 10.1007/s11356-023-26766-z.     Reference: April 3rd, 2023
Gene Product: October 25th, 2006
1 year agohk2 histidine kinase2:
3.05
   Zhao, XQ et al. 2023. New insights into light spectral quality inhibits the plasticity elongation of maize mesocotyl and coleoptile during seed germination. Frontiers in Plant Science. 14:1152399.     Reference: April 3rd, 2023
Gene Product: May 20th, 2016
Variation: October 18th, 2020
1 year agocct11 CO CO-LIKE TIMING OF CAB1 protein domain11:
2.05
GRMZM2G135446
Zhao, XQ et al. 2023. New insights into light spectral quality inhibits the plasticity elongation of maize mesocotyl and coleoptile during seed germination. Frontiers in Plant Science. 14:1152399.     Reference: April 3rd, 2023
Gene Product: June 18th, 2018
Gene Model: February 19th, 2019
1 year agorup1 repressor of UV-B photomorphogenesis homolog1:
 
GRMZM2G389155
Zhao, XQ et al. 2023. New insights into light spectral quality inhibits the plasticity elongation of maize mesocotyl and coleoptile during seed germination. Frontiers in Plant Science. 14:1152399.   AT5G23730 (TAIR) Reference: April 3rd, 2023
Gene Product: December 19th, 2020
Gene Model: July 1st, 2020
1 year agogrx17 glutaredoxin17:
 
GRMZM2G311898
Zhao, XQ et al. 2023. New insights into light spectral quality inhibits the plasticity elongation of maize mesocotyl and coleoptile during seed germination. Frontiers in Plant Science. 14:1152399.     Reference: April 3rd, 2023
Gene Product: January 21st, 2021
Gene Model: December 14th, 2021
1 year agoIDP3830  :
5.01
GRMZM2G460396
Zhao, XQ et al. 2023. New insights into light spectral quality inhibits the plasticity elongation of maize mesocotyl and coleoptile during seed germination. Frontiers in Plant Science. 14:1152399.     Reference: April 3rd, 2023
Variation: June 20th, 2021
Gene Model: June 19th, 2021
1 year agopgd4 phosphogluconate dehydrogenase4:
10.04
GRMZM2G177077
Zhao, XQ et al. 2023. New insights into light spectral quality inhibits the plasticity elongation of maize mesocotyl and coleoptile during seed germination. Frontiers in Plant Science. 14:1152399.     Reference: April 3rd, 2023
Gene Product: December 16th, 2020
Gene Model: September 22nd, 2018
1 year agoabre1 ABA-responsive cis-element binding protein1:
 
   Zhang, X et al. 2011. Maize ABP9 enhances tolerance to multiple stresses in transgenic Arabidopsis by modulating ABA signaling and cellular levels of reactive oxygen species. 75:365-378.     Reference: April 2nd, 2023
Gene Product: January 2nd, 2020
1 year agopimt1 protein-L-isoaspartate methyltransferase1:
 
   Zhang, YM et al. 2023. Maize PIMT2 repairs the damaged 3-METHYLCROTONYL COA CARBOXYLASE in mitochondria controlling seed vigor. Plant J. :doi: 10.1111/tpj.16225.     Reference: April 1st, 2023
Gene Product: September 1st, 2003
1 year agopimt2 protein-L-isoaspartate methyltransferase2:
 
   Zhang, YM et al. 2023. Maize PIMT2 repairs the damaged 3-METHYLCROTONYL COA CARBOXYLASE in mitochondria controlling seed vigor. Plant J. :doi: 10.1111/tpj.16225.     Reference: April 1st, 2023
Gene Product: September 1st, 2003
Variation: March 31st, 2023
1 year agoppt2 plastid phosphate/phosphoenolpyruvate translocator2:
7.02
GRMZM2G103047
Fischer, K et al. 1997. Plant Cell 9:453-462     Reference: April 1st, 2023
Gene Product: September 1st, 2003
Variation: January 6th, 2015
Gene Model: January 6th, 2015
1 year agotrm2 thioredoxin M2:
3.05
GRMZM2G358009
Yan Shi et al. 2011. Influence of an m-type thioredoxin in maize on potyviral infection Eur J Plant Path. 131:317–326.     Reference: April 1st, 2023
Gene Product: September 1st, 2003
Variation: October 15th, 2015
Gene Model: October 15th, 2015
1 year agotrx3 thioredoxin3:
 
GRMZM2G170008
Yan Shi et al. 2011. Influence of an m-type thioredoxin in maize on potyviral infection Eur J Plant Path. 131:317–326.     Reference: April 1st, 2023
Gene Product: August 31st, 2020
Gene Model: August 31st, 2020
1 year agocenpc1 centromere protein C 1:
3.09
GRMZM2G114315
Jian Lv et al. 2023. Recent Advances in Engineering of In Vivo Haploid Induction Systems. Methods in Molecular Biology. 2653:365-383.     Reference: March 31st, 2023
Gene Product: September 1st, 2003
Variation: November 21st, 2013
Gene Model: July 27th, 2016
1 year agomdh10 malate dehydrogenase10:
 
   Chen, L et al. 2023. Genome-wide identification and comparative analyses of key genes involved in C4 photosynthesis in five main gramineous crops. Frontiers in Plant Science. 14:1134170     Reference: March 30th, 2023
Gene Product: September 23rd, 2014
1 year agomdh11 malate dehydrogenase11:
 
   Chen, L et al. 2023. Genome-wide identification and comparative analyses of key genes involved in C4 photosynthesis in five main gramineous crops. Frontiers in Plant Science. 14:1134170     Reference: March 30th, 2023
Gene Product: September 1st, 2003
1 year agomdh5 malate dehydrogenase5:
5.03
   Chen, L et al. 2023. Genome-wide identification and comparative analyses of key genes involved in C4 photosynthesis in five main gramineous crops. Frontiers in Plant Science. 14:1134170     Reference: March 30th, 2023
Gene Product: September 1st, 2003
Variation: March 17th, 2021
1 year agoumc1653  :
6.07
GRMZM2G438895
Zhu, WC et al. 2023. A translatome-transcriptome multi-omics gene regulatory network reveals the complicated functional landscape of maize Genome Biol. 24:60.     Reference: March 30th, 2023
Variation: September 1st, 2003
Gene Model: August 30th, 2018
1 year agomdh12 malate dehydrogenase12:
 
GRMZM2G072744
Chen, L et al. 2023. Genome-wide identification and comparative analyses of key genes involved in C4 photosynthesis in five main gramineous crops. Frontiers in Plant Science. 14:1134170     Reference: March 30th, 2023
Gene Product: June 4th, 2020
Gene Model: December 31st, 2021
1 year agohis2b3 histone 2B3:
2.06
GRMZM2G057852
Pijie Sheng et al. 2023. Peptidome and Transcriptome Analysis of Plant Peptides Involved in Bipolaris maydis Infection of Maize. Plants. 12:1307.     Reference: March 29th, 2023
Gene Product: September 1st, 2003
Variation: September 15th, 2010
Gene Model: August 19th, 2014
1 year agopld1 phospholipase D1:
3.03
GRMZM2G054559
Yuxuan Lou et al. 2023. Coronatine-Based Gene Expression Changes Impart Partial Resistance to Fall Armyworm (Spodoptera frugiperda) in Seedling Maize. Genes. 14:735.     Reference: March 29th, 2023
Gene Product: August 9th, 2016
Variation: August 2nd, 2011
Gene Model: November 20th, 2014
1 year agopzb01301  :
10.02
   Pijie Sheng et al. 2023. Peptidome and Transcriptome Analysis of Plant Peptides Involved in Bipolaris maydis Infection of Maize. Plants. 12:1307.     Reference: March 29th, 2023
Variation: December 31st, 2017
1 year agocsu690  :
3.06
GRMZM2G138800
Li, H et al. 2023. Integrative Analysis of Transcriptome, Proteome, and Phosphoproteome Reveals Potential Roles of Photosynthesis Antenna Proteins in Response to Brassinosteroids Signaling in Maize. Plants. 12:1290.     Reference: March 29th, 2023
Variation: September 1st, 2003
Gene Model: April 6th, 2020
1 year agokin1 knotted1 induced1:
7.06
GRMZM2G158394
Pijie Sheng et al. 2023. Peptidome and Transcriptome Analysis of Plant Peptides Involved in Bipolaris maydis Infection of Maize. Plants. 12:1307.     Reference: March 29th, 2023
Variation: August 1st, 2011
Gene Model: November 20th, 2014
1 year agoltk1 leucine-rich transmembrane protein kinase1:
1.02
GRMZM2G153393
Li, H et al. 2023. Integrative Analysis of Transcriptome, Proteome, and Phosphoproteome Reveals Potential Roles of Photosynthesis Antenna Proteins in Response to Brassinosteroids Signaling in Maize. Plants. 12:1290.     Reference: March 29th, 2023
Gene Product: July 10th, 2019
Variation: September 1st, 2003
Gene Model: July 28th, 2016
1 year agosmt1 sterol methyltransferase1:
7.02
GRMZM2G122810
Yuxuan Lou et al. 2023. Coronatine-Based Gene Expression Changes Impart Partial Resistance to Fall Armyworm (Spodoptera frugiperda) in Seedling Maize. Genes. 14:735.     Reference: March 29th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: July 28th, 2016
1 year agolhcb12 light harvesting chlorophyll a/b binding protein12:
1.08
GRMZM2G414192
Li, H et al. 2023. Integrative Analysis of Transcriptome, Proteome, and Phosphoproteome Reveals Potential Roles of Photosynthesis Antenna Proteins in Response to Brassinosteroids Signaling in Maize. Plants. 12:1290.     Reference: March 29th, 2023
Gene Product: January 8th, 2005
Gene Model: September 14th, 2017
1 year agohir2 hypersensitive induced response2:
2.06
GRMZM2G150762
Fu, DD et al. 2022. Planta 256:46     Reference: March 29th, 2023
Gene Product: September 1st, 2003
Variation: June 23rd, 2014
Gene Model: August 19th, 2014
1 year agogrx1 glutaredoxin homolog1:
2.04 - 2.04
GRMZM2G150295
Fu, DD et al. 2022. Planta 256:46     Reference: March 29th, 2023
Gene Product: January 21st, 2021
Variation: August 16th, 2012
Gene Model: August 16th, 2012
1 year agogras45 GRAS-transcription factor 45:
9.07
GRMZM5G885274
Yuxuan Lou et al. 2023. Coronatine-Based Gene Expression Changes Impart Partial Resistance to Fall Armyworm (Spodoptera frugiperda) in Seedling Maize. Genes. 14:735.     Reference: March 29th, 2023
Variation: September 25th, 2007
Gene Model: February 27th, 2018
1 year agogif2 growth-regulating-factor-inteacting factor2:
 
GRMZM2G154169
Wu, L et al. 2014. Overexpression of the maize GRF10, an endogenous truncated growth-regulating factor protein, leads to reduction in leaf size and plant height. J Integr Plant Biol. 56:1053-1063.     Reference: March 29th, 2023
Gene Product: July 6th, 2015
Variation: July 6th, 2015
Gene Model: July 6th, 2015
1 year agocrr7 cytokinin response regulator7:
 
GRMZM2G096171
Yuxuan Lou et al. 2023. Coronatine-Based Gene Expression Changes Impart Partial Resistance to Fall Armyworm (Spodoptera frugiperda) in Seedling Maize. Genes. 14:735.     Reference: March 29th, 2023
Gene Product: June 30th, 2017
Gene Model: December 19th, 2015
1 year agoacco31 1-aminocyclopropane-1-carboxylate oxidase31:
 
GRMZM2G072529
Yuxuan Lou et al. 2023. Coronatine-Based Gene Expression Changes Impart Partial Resistance to Fall Armyworm (Spodoptera frugiperda) in Seedling Maize. Genes. 14:735.     Reference: March 29th, 2023
Gene Product: May 16th, 2016
Gene Model: May 16th, 2016
1 year agosbp19 SBP-transcription factor 19:
4.09
GRMZM2G163813
Yuxuan Lou et al. 2023. Coronatine-Based Gene Expression Changes Impart Partial Resistance to Fall Armyworm (Spodoptera frugiperda) in Seedling Maize. Genes. 14:735.     Reference: March 29th, 2023
Gene Product: July 5th, 2019
Gene Model: July 11th, 2018
1 year agocki3 cyclin-dependent kinase inhibitor3:
 
GRMZM2G157510
Yuxuan Lou et al. 2023. Coronatine-Based Gene Expression Changes Impart Partial Resistance to Fall Armyworm (Spodoptera frugiperda) in Seedling Maize. Genes. 14:735.     Reference: March 29th, 2023
Gene Product: March 8th, 2017
Variation: May 4th, 2017
Gene Model: March 7th, 2017
1 year agocdpk21 calcium dependent protein kinase21:
 
GRMZM2G047479
Yuxuan Lou et al. 2023. Coronatine-Based Gene Expression Changes Impart Partial Resistance to Fall Armyworm (Spodoptera frugiperda) in Seedling Maize. Genes. 14:735.     Reference: March 29th, 2023
Gene Product: December 3rd, 2013
Gene Model: January 10th, 2018
1 year agomctp11 multiple C2 domain and transmembrane region protein11:
 
GRMZM2G066153
Yuxuan Lou et al. 2023. Coronatine-Based Gene Expression Changes Impart Partial Resistance to Fall Armyworm (Spodoptera frugiperda) in Seedling Maize. Genes. 14:735.     Reference: March 29th, 2023
Gene Product: August 3rd, 2022
Gene Model: February 2nd, 2018
1 year agozim38 ZIM-transcription factor 38:
 
   Yuxuan Lou et al. 2023. Coronatine-Based Gene Expression Changes Impart Partial Resistance to Fall Armyworm (Spodoptera frugiperda) in Seedling Maize. Genes. 14:735.     Reference: March 29th, 2023
Gene Product: February 24th, 2021
1 year agoaaap12 amino acid/auxin permease12:
 
GRMZM2G097802
Li, H et al. 2023. Integrative Analysis of Transcriptome, Proteome, and Phosphoproteome Reveals Potential Roles of Photosynthesis Antenna Proteins in Response to Brassinosteroids Signaling in Maize. Plants. 12:1290.     Reference: March 29th, 2023
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
1 year agocyp35 cytochrome P450 35:
 
GRMZM2G105185
Fu, DD et al. 2022. Planta 256:46     Reference: March 29th, 2023
Gene Product: December 30th, 2022
Gene Model: May 7th, 2021
1 year agochn16 chitinase16:
 
GRMZM2G328171
Fu, DD et al. 2022. Planta 256:46     Reference: March 29th, 2023
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
1 year agochn25 chitinase25:
 
GRMZM2G447795
Fu, DD et al. 2022. Planta 256:46     Reference: March 29th, 2023
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
1 year agogif4 growth-regulating-factor-interacting factor4:
 
GRMZM2G004988
Wu, L et al. 2014. Overexpression of the maize GRF10, an endogenous truncated growth-regulating factor protein, leads to reduction in leaf size and plant height. J Integr Plant Biol. 56:1053-1063.     Reference: March 29th, 2023
Gene Product: July 6th, 2015
Gene Model: November 16th, 2021
1 year agogstt1 glutathione S-transferase theta1:
 
GRMZM2G077183
Fu, DD et al. 2022. Planta 256:46     Reference: March 29th, 2023
Gene Product: September 1st, 2003
Gene Model: July 22nd, 2022
1 year agoIDP4085  :
2.03
GRMZM5G816561
Fu, DD et al. 2022. Planta 256:46     Reference: March 29th, 2023
Variation: March 31st, 2005
Gene Model: April 24th, 2021
1 year agoIDP2458  :
10.04
GRMZM2G095826
Fu, DD et al. 2022. Planta 256:46     Reference: March 29th, 2023
Variation: March 31st, 2005
Gene Model: January 1st, 2018
1 year agocko4 cytokinin oxidase 4:
 
GRMZM5G817173
Yuxuan Lou et al. 2023. Coronatine-Based Gene Expression Changes Impart Partial Resistance to Fall Armyworm (Spodoptera frugiperda) in Seedling Maize. Genes. 14:735.     Reference: March 29th, 2023
Gene Product: July 19th, 2021
Gene Model: March 21st, 2014
1 year agotoc1 timing of cab expression1:
4.05
GRMZM2G020081
Wang, XT et al. 2011. Robust expression and association of ZmCCA1 with circadian rhythms in maize. Plant Cell Rep. 30:1261-1272.   AT5G61380 (TAIR) Reference: March 28th, 2023
Gene Product: January 11th, 2018
Gene Model: January 11th, 2018
1 year agoeif6 eucaryotic initiation factor6:
3.05
GRMZM2G002616
Shi, LY et al. 2013. Identification of promoter motifs regulating ZmeIF4E expression level involved in maize rough dwarf disease resistance in maize (Zea Mays L.). Mol Gen Genet. 288:89-99.     Reference: March 28th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: January 15th, 2015
1 year agoras7B2 ras-related protein7B2:
 
GRMZM5G811797
Alexander Shumilak et al. 2023. Goss’s Wilt Resistance in Corn Is Mediated via Salicylic Acid and Programmed Cell Death but Not Jasmonic Acid Pathways Plants. 12:1475.     Reference: March 28th, 2023
Variation: January 20th, 2011
Gene Model: September 19th, 2018
1 year agocyc8 cyclin8:
 
GRMZM2G138886
Zhang, JY et al. 2022. Global Landscape of Alternative Splicing in Maize Response to Low Temperature J Agric Food Chem. :doi: 10.1021/acs.jafc.2c05969.     Reference: March 28th, 2023
Gene Product: June 26th, 2009
Gene Model: November 5th, 2014
1 year agocsld1 cellulose synthase-like D1:
 
GRMZM2G015886
Zhang, JY et al. 2022. Global Landscape of Alternative Splicing in Maize Response to Low Temperature J Agric Food Chem. :doi: 10.1021/acs.jafc.2c05969.     Reference: March 28th, 2023
Gene Product: October 7th, 2016
Variation: January 13th, 2022
Gene Model: October 18th, 2018
1 year agopco130446  :
7.06
GRMZM2G134396
Song, YF et al. 2022. Identification of miRNAs Mediating Seed Storability of Maize during Germination Stage by High-Throughput Sequencing, Transcriptome and Degradome Sequencing Int J Mol Sci. 23:12339.     Reference: March 28th, 2023
Variation: September 25th, 2007
Gene Model: September 1st, 2021
1 year agoidd3 indeterminate domain3:
 
   Feng, X et al. 2023. Comprehensive Analysis of the INDETERMINATE DOMAIN (IDD) Gene Family and Their Response to Abiotic Stress in Zea mays Int J Mol Sci. 24:6185.     Reference: March 27th, 2023
Gene Product: January 3rd, 2015
1 year agoidd6 indeterminate domain6:
 
   Feng, X et al. 2023. Comprehensive Analysis of the INDETERMINATE DOMAIN (IDD) Gene Family and Their Response to Abiotic Stress in Zea mays Int J Mol Sci. 24:6185.     Reference: March 27th, 2023
Gene Product: January 3rd, 2015
1 year agoidd9 indeterminate domain9:
 
   Feng, X et al. 2023. Comprehensive Analysis of the INDETERMINATE DOMAIN (IDD) Gene Family and Their Response to Abiotic Stress in Zea mays Int J Mol Sci. 24:6185.     Reference: March 27th, 2023
Gene Product: January 3rd, 2015
1 year agoidd10 indeterminate domain10:
 
   Feng, X et al. 2023. Comprehensive Analysis of the INDETERMINATE DOMAIN (IDD) Gene Family and Their Response to Abiotic Stress in Zea mays Int J Mol Sci. 24:6185.     Reference: March 27th, 2023
Gene Product: January 3rd, 2015
1 year agoidd11 indeterminate domain11:
 
   Feng, X et al. 2023. Comprehensive Analysis of the INDETERMINATE DOMAIN (IDD) Gene Family and Their Response to Abiotic Stress in Zea mays Int J Mol Sci. 24:6185.     Reference: March 27th, 2023
Gene Product: January 3rd, 2015
1 year agoidd13 indeterminate domain13:
 
   Feng, X et al. 2023. Comprehensive Analysis of the INDETERMINATE DOMAIN (IDD) Gene Family and Their Response to Abiotic Stress in Zea mays Int J Mol Sci. 24:6185.     Reference: March 27th, 2023
Gene Product: January 3rd, 2015
1 year agoidd19 indeterminate domain19:
 
   Feng, X et al. 2023. Comprehensive Analysis of the INDETERMINATE DOMAIN (IDD) Gene Family and Their Response to Abiotic Stress in Zea mays Int J Mol Sci. 24:6185.     Reference: March 27th, 2023
Gene Product: January 3rd, 2015
1 year agoidd20 indeterminate domain20:
 
   Feng, X et al. 2023. Comprehensive Analysis of the INDETERMINATE DOMAIN (IDD) Gene Family and Their Response to Abiotic Stress in Zea mays Int J Mol Sci. 24:6185.     Reference: March 27th, 2023
Gene Product: January 3rd, 2015
1 year agoclhc2 clathrin heavy chain2:
 
   Mu-Heng Zeng et al. 2013. Characterization of a gene encoding clathrin heavy chain in maize up-regulated by salicylic acid, abscisic acid and high boron supply. Int J Mol Sci. 14:15179-98.     Reference: March 27th, 2023
Gene Product: September 1st, 2003
1 year agoidd17 indeterminate domain17:
7.04
GRMZM2G058197
Feng, X et al. 2023. Comprehensive Analysis of the INDETERMINATE DOMAIN (IDD) Gene Family and Their Response to Abiotic Stress in Zea mays Int J Mol Sci. 24:6185.     Reference: March 27th, 2023
Gene Product: January 3rd, 2015
Gene Model: July 7th, 2021
1 year agoidd1 indeterminate domain1:
1.02
GRMZM2G171073
Feng, X et al. 2023. Comprehensive Analysis of the INDETERMINATE DOMAIN (IDD) Gene Family and Their Response to Abiotic Stress in Zea mays Int J Mol Sci. 24:6185.     Reference: March 27th, 2023
Gene Product: January 3rd, 2015
Variation: September 1st, 2003
Gene Model: August 8th, 2017
1 year agosmt2 sterol methyl transferase2:
1.01
GRMZM2G075701
Liu, X et al. 2023. High temperature defense-related pathways, mediating lodicule expansion and spikelet opening in maize tassel. J Exp Bot. :doi: 10.1093/jxb/erad115.     Reference: March 27th, 2023
Gene Product: September 1st, 2003
Variation: February 4th, 2015
Gene Model: February 4th, 2015
1 year agocchh2 Cys2His2 Zinc Finger2:
 
   Feng, X et al. 2023. Comprehensive Analysis of the INDETERMINATE DOMAIN (IDD) Gene Family and Their Response to Abiotic Stress in Zea mays Int J Mol Sci. 24:6185.   AT2G01940 (TAIR)
LOC_Os03g13400 (MSU/TIGR)
Os03g0237250 (Gramene)
Reference: March 27th, 2023
Gene Product: November 14th, 2022
1 year agoumc1784  :
5.03
GRMZM2G135570
Liu, X et al. 2023. High temperature defense-related pathways, mediating lodicule expansion and spikelet opening in maize tassel. J Exp Bot. :doi: 10.1093/jxb/erad115.     Reference: March 27th, 2023
Variation: September 1st, 2003
Gene Model: March 13th, 2021
1 year agopgl106 polygalacturonase106:
1.01
GRMZM2G119494
Liu, X et al. 2023. High temperature defense-related pathways, mediating lodicule expansion and spikelet opening in maize tassel. J Exp Bot. :doi: 10.1093/jxb/erad115.     Reference: March 27th, 2023
Gene Product: October 4th, 2021
Variation: May 3rd, 2016
Gene Model: May 3rd, 2016
1 year agoiddp10 indeterminate domain p10:
 
GRMZM2G090595
Feng, X et al. 2023. Comprehensive Analysis of the INDETERMINATE DOMAIN (IDD) Gene Family and Their Response to Abiotic Stress in Zea mays Int J Mol Sci. 24:6185.     Reference: March 27th, 2023
Gene Product: January 3rd, 2015
Gene Model: January 3rd, 2015
1 year agopme6 pectin methylesterase6:
 
GRMZM2G012328
Liu, X et al. 2023. High temperature defense-related pathways, mediating lodicule expansion and spikelet opening in maize tassel. J Exp Bot. :doi: 10.1093/jxb/erad115.     Reference: March 27th, 2023
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
1 year agogpdh5 glucose-6-phosphate dehydrogenase5:
5.05
GRMZM2G031107
Li, X et al. 2023. ZmG6PDH1 in glucose-6-phosphate dehydrogenase family enhances cold stress tolerance in maize. Frontiers in Plant Science. 14:1116237.     Reference: March 27th, 2023
Gene Product: September 1st, 2003
Gene Model: May 19th, 2020
1 year agoclhc1 clathrin heavy chain1:
4.08
   Mu-Heng Zeng et al. 2013. Characterization of a gene encoding clathrin heavy chain in maize up-regulated by salicylic acid, abscisic acid and high boron supply. Int J Mol Sci. 14:15179-98.     Reference: March 27th, 2023
Gene Product: September 1st, 2003
1 year agocys2 cysteine synthase2:
1.06
GRMZM2G005887
Sun, GC et al. 2023. A role for heritable transcriptomic variation in maize adaptation to temperate environments. Genome Biology. 24:55.     Reference: March 25th, 2023
Gene Product: September 1st, 2003
Variation: October 25th, 2012
Gene Model: August 19th, 2015
1 year agodsc1 discolored kernel1:
4.05
GRMZM2G117329
Sun, GC et al. 2023. A role for heritable transcriptomic variation in maize adaptation to temperate environments. Genome Biology. 24:55.     Reference: March 25th, 2023
Gene Product: June 23rd, 2012
Variation: June 22nd, 2012
Gene Model: January 5th, 2015
1 year agoumc1669  :
4.01
GRMZM2G037472
Carlos Alexandre Gomes Ribeiro et al. 2023. Genome-Wide Association Study for Root Morphology and Phosphorus Acquisition Efficiency in Diverse Maize Panels Int J Mol Sci. 24:6233.     Reference: March 25th, 2023
Variation: September 1st, 2003
Gene Model: June 7th, 2018
1 year agoaed1 aspartyl protease1:
 
   Sun, Q et al. 2022. A NAC-EXPANSIN module enhances maize kernel size by controlling nucellus elimination Nature communications. 13:5708.     Reference: March 24th, 2023
Gene Product: September 26th, 2020
1 year agoAW330564  :
10.01
GRMZM2G058595
Krishna Sai Karnatam et al. 2023. Genome-Wide Meta-Analysis of QTLs Associated with Root Traits and Implications for Maize Breeding Int J Mol Sci. 24:6135.     Reference: March 24th, 2023
Variation: July 29th, 2004
Gene Model: December 28th, 2017
1 year agorcp1 root cap protein1:
6.01
GRMZM2G074850
Krishna Sai Karnatam et al. 2023. Genome-Wide Meta-Analysis of QTLs Associated with Root Traits and Implications for Maize Breeding Int J Mol Sci. 24:6135.     Reference: March 24th, 2023
Gene Product: April 27th, 2009
Variation: July 9th, 2015
Gene Model: July 9th, 2015
1 year agolac16 laccase16:
 
GRMZM5G870184
Krishna Sai Karnatam et al. 2023. Genome-Wide Meta-Analysis of QTLs Associated with Root Traits and Implications for Maize Breeding Int J Mol Sci. 24:6135.     Reference: March 24th, 2023
Gene Product: March 31st, 2018
Gene Model: March 3rd, 2020
1 year agoskus13 skewed root growth similar13:
 
GRMZM2G043301
Krishna Sai Karnatam et al. 2023. Genome-Wide Meta-Analysis of QTLs Associated with Root Traits and Implications for Maize Breeding Int J Mol Sci. 24:6135.     Reference: March 24th, 2023
Gene Product: October 9th, 2020
Gene Model: October 9th, 2020
1 year agocsu204(uce)  :
8.04
GRMZM2G007276
Chunyan Gao et al. 2023. Proteome and Ubiquitylome Analyses of Maize Endoplasmic Reticulum under Heat Stress Genes. 14:749.     Reference: March 22nd, 2023
Gene Product: December 19th, 2019
Gene Model: August 30th, 2019
1 year agouce13 ubiquitin conjugating enzyme13:
 
GRMZM2G085600
Chunyan Gao et al. 2023. Proteome and Ubiquitylome Analyses of Maize Endoplasmic Reticulum under Heat Stress Genes. 14:749.   AT5G59300 (TAIR) Reference: March 22nd, 2023
Gene Product: December 19th, 2019
Gene Model: November 26th, 2019
1 year agoafp1 antifungal protein1:
1.03
GRMZM2G043878
Lay-Sun Ma et al. 2023. Maize Antifungal Protein AFP1 Elevates Fungal Chitin Levels by Targeting Chitin Deacetylases and Other Glycoproteins. mBio. :e0009323.     Reference: March 22nd, 2023
Gene Product: March 22nd, 2023
Variation: September 1st, 2003
Gene Model: August 25th, 2014
1 year agoclx1 calnexin homolog1:
2.04
GRMZM2G134668
Chunyan Gao et al. 2023. Proteome and Ubiquitylome Analyses of Maize Endoplasmic Reticulum under Heat Stress Genes. 14:749.     Reference: March 22nd, 2023
Gene Product: September 1st, 2003
Variation: November 16th, 2012
Gene Model: September 29th, 2015
1 year agoder3 derlin3:
6.04
GRMZM2G143817
Chunyan Gao et al. 2023. Proteome and Ubiquitylome Analyses of Maize Endoplasmic Reticulum under Heat Stress Genes. 14:749.     Reference: March 22nd, 2023
Variation: February 14th, 2009
Gene Model: December 22nd, 2015
1 year agoder4 derlin4:
1.12
GRMZM2G112609
Chunyan Gao et al. 2023. Proteome and Ubiquitylome Analyses of Maize Endoplasmic Reticulum under Heat Stress Genes. 14:749.     Reference: March 22nd, 2023
Variation: February 14th, 2009
Gene Model: December 22nd, 2015
1 year agoder1 derlin1:
8.04
GRMZM2G117388
Chunyan Gao et al. 2023. Proteome and Ubiquitylome Analyses of Maize Endoplasmic Reticulum under Heat Stress Genes. 14:749.     Reference: March 22nd, 2023
Variation: June 11th, 2012
Gene Model: December 22nd, 2015
1 year agobnlg1893  :
2.09
GRMZM2G444543
Thatcher, SR et al. 2023. The NLRomes of Zea mays NAM founder lines and Zea luxurians display presence-absence variation, integrated domain diversity, and mobility. Mol Plant Pathol. :doi: 10.1111/mpp.13319..     Reference: March 21st, 2023
Variation: September 1st, 2003
Gene Model: August 2nd, 2018
1 year agoemp2 empty pericarp 2:
2.06
   Khaipho-Burch, MB et al. 2023. PLoS Genetics 19:e1010664     Reference: March 21st, 2023
Variation: September 21st, 2011
1 year agonpi285a(cac)  :
10.02
GRMZM2G350841
Thatcher, SR et al. 2023. The NLRomes of Zea mays NAM founder lines and Zea luxurians display presence-absence variation, integrated domain diversity, and mobility. Mol Plant Pathol. :doi: 10.1111/mpp.13319..     Reference: March 21st, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: April 25th, 2017
1 year agosin1 sin homolog1:
 
GRMZM2G319104
Khaipho-Burch, MB et al. 2023. PLoS Genetics 19:e1010664     Reference: March 21st, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: June 1st, 2017
1 year agoAI855190  :
1.05
GRMZM2G443525
Thatcher, SR et al. 2023. The NLRomes of Zea mays NAM founder lines and Zea luxurians display presence-absence variation, integrated domain diversity, and mobility. Mol Plant Pathol. :doi: 10.1111/mpp.13319..     Reference: March 21st, 2023
Variation: July 29th, 2004
Gene Model: June 6th, 2017
1 year agoxyn10 xylanase/glycosyl hydrolase10:
 
GRMZM2G031004
Khaipho-Burch, MB et al. 2023. PLoS Genetics 19:e1010664   AT1G58370 (TAIR) Reference: March 21st, 2023
Gene Product: March 4th, 2020
Gene Model: March 24th, 2016
1 year agonbs42 nucleotide-binding site42:
 
GRMZM2G180244
Thatcher, SR et al. 2023. The NLRomes of Zea mays NAM founder lines and Zea luxurians display presence-absence variation, integrated domain diversity, and mobility. Mol Plant Pathol. :doi: 10.1111/mpp.13319..   AT1G58602 (TAIR) Reference: March 21st, 2023
Gene Product: January 17th, 2022
Gene Model: July 23rd, 2018
1 year agonldr2 NBS-LRR disease resistance protein2:
 
GRMZM2G047152
Thatcher, SR et al. 2023. The NLRomes of Zea mays NAM founder lines and Zea luxurians display presence-absence variation, integrated domain diversity, and mobility. Mol Plant Pathol. :doi: 10.1111/mpp.13319..     Reference: March 21st, 2023
Gene Product: January 17th, 2022
Gene Model: May 14th, 2019
1 year agonldr1 NBS-LRR disease resistance protein1:
 
GRMZM2G078013
Thatcher, SR et al. 2023. The NLRomes of Zea mays NAM founder lines and Zea luxurians display presence-absence variation, integrated domain diversity, and mobility. Mol Plant Pathol. :doi: 10.1111/mpp.13319..     Reference: March 21st, 2023
Gene Product: January 17th, 2022
Gene Model: May 14th, 2019
1 year agovq39 VQ motif-transcription factor39:
 
GRMZM2G083285
Thatcher, SR et al. 2023. The NLRomes of Zea mays NAM founder lines and Zea luxurians display presence-absence variation, integrated domain diversity, and mobility. Mol Plant Pathol. :doi: 10.1111/mpp.13319..     Reference: March 21st, 2023
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
1 year agorpp13lk3 recognition of Peronospora parasitica 13 like protein 3:
 
GRMZM2G030024
Thatcher, SR et al. 2023. The NLRomes of Zea mays NAM founder lines and Zea luxurians display presence-absence variation, integrated domain diversity, and mobility. Mol Plant Pathol. :doi: 10.1111/mpp.13319..     Reference: March 21st, 2023
Gene Product: September 16th, 2020
Gene Model: September 16th, 2020
1 year agosod12 superoxide dismutase12:
 
GRMZM5G864424
Gautam, A et al. 2023. Cloning and comparative modeling identifies a highly stress tolerant Cu/Zn cytosolic super oxide dismutase 2 from a drought tolerant maize inbred line. PeerJ. 11:e14845.     Reference: March 21st, 2023
Gene Product: October 4th, 2021
Gene Model: June 17th, 2021
1 year agopsip1 pollen-signaling protein1:
 
GRMZM2G060583
Thatcher, SR et al. 2023. The NLRomes of Zea mays NAM founder lines and Zea luxurians display presence-absence variation, integrated domain diversity, and mobility. Mol Plant Pathol. :doi: 10.1111/mpp.13319..     Reference: March 21st, 2023
Gene Product: September 16th, 2020
Gene Model: July 8th, 2021
1 year agoIDP1450  :
2.08
GRMZM5G837251
Thatcher, SR et al. 2023. The NLRomes of Zea mays NAM founder lines and Zea luxurians display presence-absence variation, integrated domain diversity, and mobility. Mol Plant Pathol. :doi: 10.1111/mpp.13319..     Reference: March 21st, 2023
Variation: March 31st, 2005
Gene Model: February 20th, 2019
1 year agosod13 superoxide dismutase13:
2.03
GRMZM2G175728
Gautam, A et al. 2023. Cloning and comparative modeling identifies a highly stress tolerant Cu/Zn cytosolic super oxide dismutase 2 from a drought tolerant maize inbred line. PeerJ. 11:e14845.     Reference: March 21st, 2023
Gene Product: October 4th, 2021
Variation: March 31st, 2005
Gene Model: February 19th, 2019
1 year agoIDP4025  :
2.05
GRMZM2G065692
Thatcher, SR et al. 2023. The NLRomes of Zea mays NAM founder lines and Zea luxurians display presence-absence variation, integrated domain diversity, and mobility. Mol Plant Pathol. :doi: 10.1111/mpp.13319..     Reference: March 21st, 2023
Variation: March 31st, 2005
Gene Model: April 30th, 2021
1 year agoprdx3 peroxiredoxin3:
5.04
GRMZM5G864335
Gautam, A et al. 2023. Cloning and comparative modeling identifies a highly stress tolerant Cu/Zn cytosolic super oxide dismutase 2 from a drought tolerant maize inbred line. PeerJ. 11:e14845.     Reference: March 21st, 2023
Gene Product: February 4th, 2021
Variation: March 7th, 2007
Gene Model: June 24th, 2021
1 year agoIDP1692  :
7.01
GRMZM2G078170
Thatcher, SR et al. 2023. The NLRomes of Zea mays NAM founder lines and Zea luxurians display presence-absence variation, integrated domain diversity, and mobility. Mol Plant Pathol. :doi: 10.1111/mpp.13319..     Reference: March 21st, 2023
Variation: March 31st, 2005
Gene Model: July 5th, 2021
1 year agocel12 cellulase12:
 
   Margaret Buchanan et al. 2012. Endo-(1,4)-β-glucanase gene families in the grasses: temporal and spatial co-transcription of orthologous genes. BMC Plant Biology. 12:235.   LOC_Os04g41970 (MSU/TIGR)
Os04g0497200 (Gramene)
Reference: March 20th, 2023
Gene Product: March 20th, 2023
1 year agocel30 cellulase30:
 
   Margaret Buchanan et al. 2012. Endo-(1,4)-β-glucanase gene families in the grasses: temporal and spatial co-transcription of orthologous genes. BMC Plant Biology. 12:235.     Reference: March 20th, 2023
Gene Product: March 20th, 2023
1 year agocel8 cellulase8:
 
   Margaret Buchanan et al. 2012. Endo-(1,4)-β-glucanase gene families in the grasses: temporal and spatial co-transcription of orthologous genes. BMC Plant Biology. 12:235.     Reference: March 20th, 2023
Gene Product: March 20th, 2023
1 year agocel9 cellulase9:
 
   Margaret Buchanan et al. 2012. Endo-(1,4)-β-glucanase gene families in the grasses: temporal and spatial co-transcription of orthologous genes. BMC Plant Biology. 12:235.     Reference: March 20th, 2023
Gene Product: March 20th, 2023
1 year agocel17 cellulase17:
 
   Margaret Buchanan et al. 2012. Endo-(1,4)-β-glucanase gene families in the grasses: temporal and spatial co-transcription of orthologous genes. BMC Plant Biology. 12:235.     Reference: March 20th, 2023
Gene Product: March 20th, 2023
1 year agocel1 cellulase1:
 
   Margaret Buchanan et al. 2012. Endo-(1,4)-β-glucanase gene families in the grasses: temporal and spatial co-transcription of orthologous genes. BMC Plant Biology. 12:235.     Reference: March 20th, 2023
Gene Product: March 20th, 2023
1 year agocel15 cellulase15:
 
   Margaret Buchanan et al. 2012. Endo-(1,4)-β-glucanase gene families in the grasses: temporal and spatial co-transcription of orthologous genes. BMC Plant Biology. 12:235.     Reference: March 20th, 2023
Gene Product: March 20th, 2023
1 year agocel29 cellulase29:
 
   Margaret Buchanan et al. 2012. Endo-(1,4)-β-glucanase gene families in the grasses: temporal and spatial co-transcription of orthologous genes. BMC Plant Biology. 12:235.     Reference: March 20th, 2023
Gene Product: March 20th, 2023
1 year agocel3 cellulase3:
 
   Margaret Buchanan et al. 2012. Endo-(1,4)-β-glucanase gene families in the grasses: temporal and spatial co-transcription of orthologous genes. BMC Plant Biology. 12:235.     Reference: March 20th, 2023
Gene Product: March 20th, 2023
1 year agocel5 cellulase5:
 
   Margaret Buchanan et al. 2012. Endo-(1,4)-β-glucanase gene families in the grasses: temporal and spatial co-transcription of orthologous genes. BMC Plant Biology. 12:235.     Reference: March 20th, 2023
Gene Product: March 20th, 2023
1 year agocel16 cellulase16:
 
   Margaret Buchanan et al. 2012. Endo-(1,4)-β-glucanase gene families in the grasses: temporal and spatial co-transcription of orthologous genes. BMC Plant Biology. 12:235.     Reference: March 20th, 2023
Gene Product: March 20th, 2023
1 year agocel6 cellulase6:
 
   Margaret Buchanan et al. 2012. Endo-(1,4)-β-glucanase gene families in the grasses: temporal and spatial co-transcription of orthologous genes. BMC Plant Biology. 12:235.     Reference: March 20th, 2023
Gene Product: March 20th, 2023
1 year agocel2 cellulase2:
6.04
GRMZM2G455642
Margaret Buchanan et al. 2012. Endo-(1,4)-β-glucanase gene families in the grasses: temporal and spatial co-transcription of orthologous genes. BMC Plant Biology. 12:235.     Reference: March 20th, 2023
Gene Product: March 20th, 2023
Variation: September 25th, 2007
Gene Model: August 30th, 2021
1 year agocel24 cellulase24:
5.04
GRMZM2G482256
Margaret Buchanan et al. 2012. Endo-(1,4)-β-glucanase gene families in the grasses: temporal and spatial co-transcription of orthologous genes. BMC Plant Biology. 12:235.     Reference: March 20th, 2023
Gene Product: March 20th, 2023
Variation: September 1st, 2003
Gene Model: June 27th, 2018
1 year agocel11 cellulase11:
7.03
GRMZM2G147422
Margaret Buchanan et al. 2012. Endo-(1,4)-β-glucanase gene families in the grasses: temporal and spatial co-transcription of orthologous genes. BMC Plant Biology. 12:235.     Reference: March 20th, 2023
Gene Product: March 20th, 2023
Gene Model: September 9th, 2018
1 year agocel32 cellulase32:
1.07
GRMZM2G167669
Margaret Buchanan et al. 2012. Endo-(1,4)-β-glucanase gene families in the grasses: temporal and spatial co-transcription of orthologous genes. BMC Plant Biology. 12:235.     Reference: March 20th, 2023
Gene Product: March 20th, 2023
Gene Model: August 14th, 2022
1 year agocel21 cellulase 21:
 
GRMZM2G009025
Margaret Buchanan et al. 2012. Endo-(1,4)-β-glucanase gene families in the grasses: temporal and spatial co-transcription of orthologous genes. BMC Plant Biology. 12:235.     Reference: March 20th, 2023
Gene Product: March 20th, 2023
Gene Model: December 6th, 2019
1 year agocel7 cellulase7:
 
GRMZM2G003379
Margaret Buchanan et al. 2012. Endo-(1,4)-β-glucanase gene families in the grasses: temporal and spatial co-transcription of orthologous genes. BMC Plant Biology. 12:235.     Reference: March 20th, 2023
Gene Product: March 20th, 2023
Gene Model: February 8th, 2022
1 year agocel18 cellulase18:
 
GRMZM2G048165
Margaret Buchanan et al. 2012. Endo-(1,4)-β-glucanase gene families in the grasses: temporal and spatial co-transcription of orthologous genes. BMC Plant Biology. 12:235.     Reference: March 20th, 2023
Gene Product: March 20th, 2023
Gene Model: February 15th, 2022
1 year agocel14 cellulase14:
2.07
   Margaret Buchanan et al. 2012. Endo-(1,4)-β-glucanase gene families in the grasses: temporal and spatial co-transcription of orthologous genes. BMC Plant Biology. 12:235.     Reference: March 20th, 2023
Gene Product: March 20th, 2023
1 year agoa3 anthocyanin3:
3.08
   Paulsmeyer, MN et al. 2023. R3-MYB repressor Mybr97 is a candidate gene associated with the Anthocyanin3 locus and enhanced anthocyanin accumulation in maize. Theor Appl Genet. 136:55.     Reference: March 14th, 2023
Gene Product: September 1st, 2003
Variation: March 13th, 2023
1 year agomybr97 MYB-related-transcription factor 97:
 
   Paulsmeyer, MN et al. 2023. R3-MYB repressor Mybr97 is a candidate gene associated with the Anthocyanin3 locus and enhanced anthocyanin accumulation in maize. Theor Appl Genet. 136:55.     Reference: March 14th, 2023
Variation: March 13th, 2023
1 year agoics1 isochorismate synthase like1:
7.02
GRMZM2G022837
Mengyao Li et al. 2023. Sulfur dioxide improves the thermotolerance of maize seedlings by regulating salicylic acid biosynthesis. Ecotoxicol Environ Safety. 254:114746.   AT1G18870 (TAIR)
LOC_Os09g19734 (MSU/TIGR)
Reference: March 13th, 2023
Gene Product: January 24th, 2014
Gene Model: September 18th, 2017
1 year agocyp49 cytochrome P450 49:
 
   Murphy, KM et al. 2023. A dolabralexin-deficient mutant provides insight into specialized diterpenoid metabolism in maize. Plant Physiol. :doi: 10.1093/plphys/kiad150.     Reference: March 10th, 2023
Gene Product: December 30th, 2022
1 year agorpl7 ribosomal protein L7:
 
GRMZM2G174919
Yi, Q et al. 2023. Genome-Wide Association Analysis Identified Newly Natural Variation for Photosynthesis-Related Traits in a Large Maize Panel Agronomy. 13:801.     Reference: March 9th, 2023
Gene Product: September 1st, 2003
Variation: January 26th, 2011
Gene Model: April 3rd, 2015
1 year agocle14 clavata3/esr-related14:
 
AC191109.3_FG001
Yi, Q et al. 2023. Genome-Wide Association Analysis Identified Newly Natural Variation for Photosynthesis-Related Traits in a Large Maize Panel Agronomy. 13:801.     Reference: March 9th, 2023
Gene Product: February 22nd, 2021
Gene Model: September 15th, 2016
1 year agoplt53 phospholipid transfer protein53:
 
   Yang-Jun Wen et al. 2023. Identification of QTN-by-environment interactions for yield related traits in maize under multiple abiotic stresses. Frontiers in Plant Science. 14:1050313.     Reference: March 6th, 2023
Gene Product: September 1st, 2003
1 year agogrf23 general regulatory factor23:
 
   Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
1 year agogrf3 general regulatory factor3:
 
   Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
1 year agogrf4 general regulatory factor4:
 
   Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
1 year agogrf6 general regulatory factor6:
 
   Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
1 year agogrf7 general regulatory factor7:
 
   Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
1 year agogrf9 general regulatory factor9:
 
   Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
1 year agogrf10 general regulatory factor10:
 
   Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
1 year agogrf12 general regulatory factor12:
 
   Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
1 year agogrf14 general regulatory factor14:
 
   Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
1 year agogrf15 general regulatory factor15:
 
   Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
1 year agogrf16 general regulatory factor16:
 
   Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
1 year agogrf19 general regulatory factor19:
 
   Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
1 year agogrf25 general regulatory factor25:
 
   Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
1 year agogrf26 general regulatory factor26:
 
   Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
1 year agogrf28 general regulatory factor28:
 
   Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
1 year agoLOC103629503  :
 
       Gene Product: March 6th, 2023
1 year agogrf5 general regulatory factor5:
4.09
   Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
1 year agogrf20 general regulatory factor20:
6.06
GRMZM2G006207
Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
Gene Model: February 19th, 2021
1 year agoglb1 globulin1:
1.09
   Fennoy, SL and Bailey-Serres, J. 1993. Nucl Acid Res 21:5294-5300     Reference: March 6th, 2023
Gene Product: September 1st, 2003
Variation: January 29th, 2015
1 year agoglb2 globulin2:
1.11
   Fennoy, SL and Bailey-Serres, J. 1993. Nucl Acid Res 21:5294-5300     Reference: March 6th, 2023
Gene Product: September 1st, 2003
Variation: March 30th, 2009
1 year agomgs1 male-gametophyte specific1:
10.04
   Fennoy, SL and Bailey-Serres, J. 1993. Nucl Acid Res 21:5294-5300     Reference: March 6th, 2023
Gene Product: September 1st, 2003
Variation: September 25th, 2007
1 year agogrf8 general regulatory factor8:
7.04 - 7.04
GRMZM2G305211
Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
Gene Model: January 15th, 2015
1 year agoald2 aldolase2:
3.05
GRMZM2G066024
Fennoy, SL and Bailey-Serres, J. 1993. Nucl Acid Res 21:5294-5300     Reference: March 6th, 2023
Gene Product: September 1st, 2003
Variation: September 16th, 2013
Gene Model: September 15th, 2013
1 year agogrf21 general regulatory factor21:
1.07
AC217050.4_FG006
Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
Gene Model: June 22nd, 2021
1 year agonbp1 nucleic acid binding protein1:
7.02
   Fennoy, SL and Bailey-Serres, J. 1993. Nucl Acid Res 21:5294-5300     Reference: March 6th, 2023
Gene Product: September 1st, 2003
Variation: February 18th, 2013
1 year agoldh1 lactate dehydrogenase1:
 
GRMZM2G128929
Fennoy, SL and Bailey-Serres, J. 1993. Nucl Acid Res 21:5294-5300     Reference: March 6th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: August 25th, 2014
1 year agoisp1 iron-sulfur protein1:
10.04
GRMZM2G023194
Fennoy, SL and Bailey-Serres, J. 1993. Nucl Acid Res 21:5294-5300     Reference: March 6th, 2023
Gene Product: November 5th, 2014
Variation: January 2nd, 2013
Gene Model: November 5th, 2014
1 year agoprh1 ser/thr protein phosphatase1:
4.07 - 4.07
   Fennoy, SL and Bailey-Serres, J. 1993. Nucl Acid Res 21:5294-5300     Reference: March 6th, 2023
Gene Product: October 25th, 2021
Variation: May 30th, 2014
1 year agoptk1 protein kinase1:
6.05
   Fennoy, SL and Bailey-Serres, J. 1993. Nucl Acid Res 21:5294-5300     Reference: March 6th, 2023
Gene Product: July 10th, 2019
Variation: February 13th, 2008
1 year agopk4 protein kinase4:
3.07
   Marocco, A et al. 2005. Maydica 50:571-580     Reference: March 6th, 2023
Gene Product: September 1st, 2003
Variation: March 27th, 2013
1 year agodps1 dihydrodipicolinate synthase1:
 
GRMZM2G027835
Fennoy, SL and Bailey-Serres, J. 1993. Nucl Acid Res 21:5294-5300     Reference: March 6th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: January 5th, 2015
1 year agofgs1 ferredoxin-dependent glutamate synthase1:
7.05
   Fennoy, SL and Bailey-Serres, J. 1993. Nucl Acid Res 21:5294-5300     Reference: March 6th, 2023
Gene Product: September 1st, 2003
Variation: July 24th, 2015
1 year agogrf24 general regulatory factor24:
4.08
GRMZM2G140545
Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
Gene Model: April 12th, 2018
1 year agokao2 kaurenoic acid oxidase2:
 
GRMZM2G089803
Jianjun Fu et al. 2023. Effect of gibberellic acid on photosynthesis and oxidative stress response in maize under weak light conditions. Frontiers in Plant Science. 14:1128780.     Reference: March 6th, 2023
Gene Product: August 15th, 2012
Gene Model: October 29th, 2014
1 year agogrf17 general regulatory factor17:
4.08
GRMZM5G866082
Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
Gene Model: April 24th, 2020
1 year agogrf18 general regulatory factor18:
 
GRMZM2G153823
Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
Gene Model: February 19th, 2021
1 year agotpi1 triose phosphate isomerase1:
 
GRMZM5G852968
Wendel, JF et al. 1989. J Hered 80:218-228     Reference: March 6th, 2023
Gene Product: March 6th, 2023
Gene Model: February 26th, 2021
1 year agogid3 gibberellin-insensitive dwarf protein homolog3:
 
GRMZM2G040278
Jianjun Fu et al. 2023. Effect of gibberellic acid on photosynthesis and oxidative stress response in maize under weak light conditions. Frontiers in Plant Science. 14:1128780.     Reference: March 6th, 2023
Gene Product: April 27th, 2022
Gene Model: June 2nd, 2021
1 year agogrf22 general regulatory factor22:
 
GRMZM2G091155
Wang, YP et al. 2023. Genome-wide analysis of 14-3-3 gene family in four gramineae and its response to mycorrhizal symbiosis in maize. Frontiers in Plant Science. 14:1117879.     Reference: March 6th, 2023
Gene Product: March 6th, 2023
Gene Model: June 22nd, 2021
1 year agosod15 superoxide dismutase15:
 
GRMZM2G005526
Jianjun Fu et al. 2023. Effect of gibberellic acid on photosynthesis and oxidative stress response in maize under weak light conditions. Frontiers in Plant Science. 14:1128780.     Reference: March 6th, 2023
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
1 year agoglx1 glyoxylase1:
10.03
GRMZM2G181192
Marocco, A et al. 2005. Maydica 50:571-580     Reference: March 6th, 2023
Gene Product: February 13th, 2023
Variation: March 5th, 2008
Gene Model: January 23rd, 2015
1 year agovq2 VQ motif-transcription factor2:
 
GRMZM2G420357
Guo, SJ et al. 2023. Accurate Phenotypic Identification and Genetic Analysis of the Ear Leaf Veins in Maize (Zea mays L.) Agronomy. 13:753.     Reference: March 4th, 2023
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
1 year agovps23 vacuolar protein sorting23:
 
   Sun, Y et al. 2023. The maize ZmVPS23-like protein relocates the NLR protein Rp1-D21 to endosomes and suppresses the defense response Plant Cell. :doi: 10.1093/plcell/koad061.   AT3G12400 (TAIR) Reference: March 3rd, 2023
Gene Product: March 3rd, 2023
1 year agovpsl23 vacuolar protein sorting-like23:
 
   Sun, Y et al. 2023. The maize ZmVPS23-like protein relocates the NLR protein Rp1-D21 to endosomes and suppresses the defense response Plant Cell. :doi: 10.1093/plcell/koad061.     Reference: March 3rd, 2023
Gene Product: March 3rd, 2023
Variation: March 3rd, 2023
1 year agonpi113b  :
2.08
GRMZM2G035985
Zheng, CY et al. 2022. Frontiers Plant Sci 13:883961     Reference: March 3rd, 2023
Variation: January 2nd, 2022
Gene Model: August 30th, 2018
1 year agogbp1 GTP-binding protein homolog1:
1.12
GRMZM2G131939
Zheng, CY et al. 2022. Frontiers Plant Sci 13:883961     Reference: March 3rd, 2023
Gene Product: September 1st, 2003
Variation: January 14th, 2011
Gene Model: July 27th, 2016
1 year agovpsh26 vacuolar protein sorting homolog26:
10.03
GRMZM2G136563
Zheng, CY et al. 2022. Frontiers Plant Sci 13:883961     Reference: March 3rd, 2023
Gene Product: March 3rd, 2023
Variation: October 15th, 2015
Gene Model: September 26th, 2019
1 year agopco067132  :
3.06
   Zheng, CY et al. 2022. Frontiers Plant Sci 13:883961     Reference: March 3rd, 2023
Variation: September 25th, 2007
1 year agoras6A1 ras-related protein6A1:
 
GRMZM2G075719
Zheng, CY et al. 2022. Frontiers Plant Sci 13:883961     Reference: March 3rd, 2023
Variation: January 20th, 2011
Gene Model: September 10th, 2018
1 year agovps35 vacuolar protein sorting35:
 
GRMZM5G825524
Xiao, QL et al. 2022. BMC Genomics 23:184     Reference: March 7th, 2022
Gene Product: March 3rd, 2023
Gene Model: September 26th, 2019
1 year agoarf6 ADP-ribosylation factor homolog6:
 
GRMZM2G079226
Zheng, CY et al. 2022. Frontiers Plant Sci 13:883961     Reference: March 3rd, 2023
Gene Product: December 27th, 2021
Gene Model: January 25th, 2021
1 year agoamt9 ammonium transporter9:
 
GRMZM2G043193
Duan, FY et al. 2023. Nitrogen partitioning in maize organs and underlined mechanisms from different plant density levels and N application rate in China Field Crop Res. 294:108874.     Reference: March 2nd, 2023
Gene Product: July 8th, 2013
Gene Model: May 21st, 2019
1 year agocobl8 cobra-like8:
 
GRMZM2G353276
Ruidong Qin et al. 2023. MicroRNA408 negatively regulates salt tolerance by affecting secondary cell wall development in maize Plant Physiol. :doi: 10.1093/plphys/kiad135.     Reference: March 2nd, 2023
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
1 year agocyc27 cyclin27:
 
   Hou, FX et al. 2022. Association mapping uncovers maize ZmbZIP107 regulating root system architecture and lead absorption under lead stress Frontiers in Plant Science. 13:1015151.     Reference: March 1st, 2023
Gene Product: June 26th, 2009
1 year agogst52 glutathione S-transferase52:
 
   Burcu Seckin Dinler et al. 2023. The regulation of glutathione s-transferases by gibberellic acid application in salt treated maize leaves Physiology and Molecular Biology of Plants. :doi: 10.1007/s12298-022-01269-2.     Reference: March 1st, 2023
Gene Product: September 1st, 2003
1 year agogst56 glutathione S-transferase56:
 
   Burcu Seckin Dinler et al. 2023. The regulation of glutathione s-transferases by gibberellic acid application in salt treated maize leaves Physiology and Molecular Biology of Plants. :doi: 10.1007/s12298-022-01269-2.     Reference: March 1st, 2023
Gene Product: September 1st, 2003
1 year agogst57 glutathione S-transferase57:
 
   Burcu Seckin Dinler et al. 2023. The regulation of glutathione s-transferases by gibberellic acid application in salt treated maize leaves Physiology and Molecular Biology of Plants. :doi: 10.1007/s12298-022-01269-2.     Reference: March 1st, 2023
Gene Product: September 1st, 2003
1 year agogst60 glutathione transferase60:
 
   Pinto, VB et al. 2021. Sci. Rep. 11:19644     Reference: March 1st, 2023
Gene Product: September 1st, 2003
1 year agomyb54 MYB-transcription factor 54:
2.03
GRMZM2G123202
Li, TC et al. 2019. Comparative transcriptome analysis reveals differentially expressed genes related to the tissue-specific accumulation of anthocyanins in pericarp and aleurone layer for maize. Sci. Rep.. 9:2485.     Reference: March 1st, 2023
Gene Product: July 25th, 2017
Variation: September 25th, 2007
Gene Model: August 12th, 2021
1 year agomyb75 MYB-transcription factor 75:
1.04
   Li, TC et al. 2019. Comparative transcriptome analysis reveals differentially expressed genes related to the tissue-specific accumulation of anthocyanins in pericarp and aleurone layer for maize. Sci. Rep.. 9:2485.     Reference: March 1st, 2023
Variation: September 25th, 2007
1 year agoalmt16 aluminum-activated malate transporter homolog16:
10.04
GRMZM2G094860
Pinto, VB et al. 2021. Sci. Rep. 11:19644     Reference: March 1st, 2023
Gene Product: March 16th, 2022
Gene Model: April 28th, 2021
1 year agomrpa1 multidrug resistance protein associated1:
2.09
GRMZM2G113203
Pinto, VB et al. 2021. Sci. Rep. 11:19644     Reference: March 1st, 2023
Gene Product: July 11th, 2019
Variation: July 30th, 2013
Gene Model: February 6th, 2015
1 year agoelfg4 elongation factor gamma4:
4.09
GRMZM2G134582
Burcu Seckin Dinler et al. 2023. The regulation of glutathione s-transferases by gibberellic acid application in salt treated maize leaves Physiology and Molecular Biology of Plants. :doi: 10.1007/s12298-022-01269-2.     Reference: March 1st, 2023
Gene Product: October 22nd, 2022
Gene Model: June 5th, 2018
1 year agoelfg2 elongation factor gamma2:
5.04
GRMZM2G029559
Burcu Seckin Dinler et al. 2023. The regulation of glutathione s-transferases by gibberellic acid application in salt treated maize leaves Physiology and Molecular Biology of Plants. :doi: 10.1007/s12298-022-01269-2.     Reference: March 1st, 2023
Gene Product: October 22nd, 2022
Gene Model: June 29th, 2018
1 year agogst9 glutathione transferase9:
9.07
GRMZM2G126763
Pinto, VB et al. 2021. Sci. Rep. 11:19644     Reference: March 1st, 2023
Gene Product: September 1st, 2003
Gene Model: April 18th, 2017
1 year agogst10 glutathione transferase10:
1.01
GRMZM2G096153
Burcu Seckin Dinler et al. 2023. The regulation of glutathione s-transferases by gibberellic acid application in salt treated maize leaves Physiology and Molecular Biology of Plants. :doi: 10.1007/s12298-022-01269-2.     Reference: March 1st, 2023
Gene Product: September 1st, 2003
Gene Model: July 27th, 2016
1 year agogst11 glutathione transferase11:
1.01
GRMZM2G119499
Pinto, VB et al. 2021. Sci. Rep. 11:19644     Reference: March 1st, 2023
Gene Product: September 1st, 2003
Gene Model: July 27th, 2016
1 year agogst14 glutathione transferase14:
1.05
GRMZM2G175134
Pinto, VB et al. 2021. Sci. Rep. 11:19644     Reference: March 1st, 2023
Gene Product: September 1st, 2003
Gene Model: July 27th, 2016
1 year agogst15 glutathione transferase15:
8.05
GRMZM2G150474
Burcu Seckin Dinler et al. 2023. The regulation of glutathione s-transferases by gibberellic acid application in salt treated maize leaves Physiology and Molecular Biology of Plants. :doi: 10.1007/s12298-022-01269-2.     Reference: March 1st, 2023
Gene Product: September 1st, 2003
Variation: August 17th, 2010
Gene Model: April 18th, 2017
1 year agogst18 glutathione transferase18:
3.05
GRMZM2G019090
Burcu Seckin Dinler et al. 2023. The regulation of glutathione s-transferases by gibberellic acid application in salt treated maize leaves Physiology and Molecular Biology of Plants. :doi: 10.1007/s12298-022-01269-2.     Reference: March 1st, 2023
Gene Product: September 1st, 2003
Variation: August 17th, 2010
Gene Model: October 22nd, 2014
1 year agogst20 glutathione transferase20:
3.08
GRMZM2G447632
Burcu Seckin Dinler et al. 2023. The regulation of glutathione s-transferases by gibberellic acid application in salt treated maize leaves Physiology and Molecular Biology of Plants. :doi: 10.1007/s12298-022-01269-2.     Reference: March 1st, 2023
Gene Product: September 1st, 2003
Gene Model: December 27th, 2016
1 year agogst27 glutathione transferase27:
8.05
GRMZM2G077206
Burcu Seckin Dinler et al. 2023. The regulation of glutathione s-transferases by gibberellic acid application in salt treated maize leaves Physiology and Molecular Biology of Plants. :doi: 10.1007/s12298-022-01269-2.     Reference: March 1st, 2023
Gene Product: September 1st, 2003
Variation: August 20th, 2010
Gene Model: October 9th, 2014
1 year agogst32 glutathione transferase32:
1.04
GRMZM2G041685
Burcu Seckin Dinler et al. 2023. The regulation of glutathione s-transferases by gibberellic acid application in salt treated maize leaves Physiology and Molecular Biology of Plants. :doi: 10.1007/s12298-022-01269-2.     Reference: March 1st, 2023
Gene Product: September 1st, 2003
Gene Model: July 27th, 2016
1 year agogst38 glutathione transferase38:
1.05
GRMZM2G066369
Pinto, VB et al. 2021. Sci. Rep. 11:19644     Reference: March 1st, 2023
Gene Product: September 1st, 2003
Gene Model: February 16th, 2017
1 year agogst40 glutathione transferase40:
1.09
GRMZM2G054653
Burcu Seckin Dinler et al. 2023. The regulation of glutathione s-transferases by gibberellic acid application in salt treated maize leaves Physiology and Molecular Biology of Plants. :doi: 10.1007/s12298-022-01269-2.     Reference: March 1st, 2023
Gene Product: September 1st, 2003
Variation: June 13th, 2014
Gene Model: December 27th, 2016
1 year agogst41 glutathione transferase41:
6.05
GRMZM2G097989
Pinto, VB et al. 2021. Sci. Rep. 11:19644     Reference: March 1st, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2010
Gene Model: July 27th, 2016
1 year agopac1 pale aleurone color1:
5.06
GRMZM2G058432
Li, TC et al. 2019. Comparative transcriptome analysis reveals differentially expressed genes related to the tissue-specific accumulation of anthocyanins in pericarp and aleurone layer for maize. Sci. Rep.. 9:2485.     Reference: March 1st, 2023
Variation: February 23rd, 2013
Gene Model: July 11th, 2018
1 year agoftfh2 flavonoid 3′,5′-hydroxylase2:
1.07
GRMZM2G089528
Li, TC et al. 2019. Comparative transcriptome analysis reveals differentially expressed genes related to the tissue-specific accumulation of anthocyanins in pericarp and aleurone layer for maize. Sci. Rep.. 9:2485.     Reference: March 1st, 2023
Gene Product: June 20th, 2018
Gene Model: July 26th, 2022
1 year agogst49 glutathione transferase49:
1.03
GRMZM2G043291
Pinto, VB et al. 2021. Sci. Rep. 11:19644     Reference: March 1st, 2023
Gene Product: September 1st, 2003
Gene Model: December 3rd, 2015
1 year agoelfg3 elongation factor gamma3:
 
GRMZM2G059580
Burcu Seckin Dinler et al. 2023. The regulation of glutathione s-transferases by gibberellic acid application in salt treated maize leaves Physiology and Molecular Biology of Plants. :doi: 10.1007/s12298-022-01269-2.     Reference: March 1st, 2023
Gene Product: October 22nd, 2022
Gene Model: December 14th, 2018
1 year agogst51 glutathione S-transferase51:
 
GRMZM2G146913
Burcu Seckin Dinler et al. 2023. The regulation of glutathione s-transferases by gibberellic acid application in salt treated maize leaves Physiology and Molecular Biology of Plants. :doi: 10.1007/s12298-022-01269-2.     Reference: March 1st, 2023
Gene Product: September 1st, 2003
Gene Model: May 12th, 2020
1 year agogst46 glutathione transferase46:
 
GRMZM2G480439
Li, TC et al. 2019. Comparative transcriptome analysis reveals differentially expressed genes related to the tissue-specific accumulation of anthocyanins in pericarp and aleurone layer for maize. Sci. Rep.. 9:2485.     Reference: March 1st, 2023
Gene Product: September 1st, 2003
Gene Model: September 11th, 2020
1 year agochls2 chalcone synthase2:
 
GRMZM2G380650
Li, TC et al. 2019. Comparative transcriptome analysis reveals differentially expressed genes related to the tissue-specific accumulation of anthocyanins in pericarp and aleurone layer for maize. Sci. Rep.. 9:2485.     Reference: March 1st, 2023
Gene Product: September 1st, 2003
Gene Model: December 20th, 2020
1 year agogst50 glutathione transferase50:
 
GRMZM2G338131
Pinto, VB et al. 2021. Sci. Rep. 11:19644     Reference: March 1st, 2023
Gene Product: September 1st, 2003
Gene Model: April 14th, 2021
1 year agoalmt9 aluminum-activated malate transporter homolog9:
 
GRMZM2G118507
Pinto, VB et al. 2021. Sci. Rep. 11:19644     Reference: March 1st, 2023
Gene Product: March 16th, 2022
Gene Model: April 28th, 2021
1 year agocipk21 calcineurin B-like-interacting protein kinase21:
 
GRMZM2G075002
Dong, XM et al. 2023. Characterization of Genes That Exhibit Genotype-Dependent Allele-Specific Expression and Its Implications for the Development of Maize Kernel Int J Mol Sci. 24:4766.     Reference: March 1st, 2023
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
1 year agotip3c tonoplast intrinsic protein3c:
9.07
GRMZM2G037327
Pinto, VB et al. 2021. Sci. Rep. 11:19644     Reference: March 1st, 2023
Gene Product: January 27th, 2022
Gene Model: June 27th, 2020
1 year agogbptf6 GeBP-transcription factor 6:
2.08
GRMZM2G075122
Dong, XM et al. 2023. Characterization of Genes That Exhibit Genotype-Dependent Allele-Specific Expression and Its Implications for the Development of Maize Kernel Int J Mol Sci. 24:4766.     Reference: March 1st, 2023
Variation: March 31st, 2005
Gene Model: February 20th, 2019
1 year agogst59 glutathione S-transferase59:
10.03
GRMZM2G124974
Burcu Seckin Dinler et al. 2023. The regulation of glutathione s-transferases by gibberellic acid application in salt treated maize leaves Physiology and Molecular Biology of Plants. :doi: 10.1007/s12298-022-01269-2.     Reference: March 1st, 2023
Gene Product: September 1st, 2003
Gene Model: July 1st, 2020
1 year agoabf4 alpha-L-arabinofuranosidase4:
2.08
GRMZM2G097277
Nazipova, AR et al. 2023. The In Silico Characterization of Monocotyledonous α-l-Arabinofuranosidases on the Example of Maize. Life. 13     Reference: February 27th, 2023
Gene Product: May 6th, 2021
Variation: September 25th, 2007
Gene Model: August 16th, 2021
1 year agoshbp1 sedoheptulose bisphosphatase1:
3.06
   Gao, YF et al. 2023. Epi-Brassinolide Regulates ZmC4 NADP-ME Expression through the Transcription Factors ZmbHLH157 and ZmNF-YC2 Int J Mol Sci. 24:4614.     Reference: February 27th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
1 year agotfcb1 tubulin-folding cofactor B1:
2.03
GRMZM2G127581
Zhou, QQ et al. 2023. Maize tubulin folding cofactor B is required for cell division and cell growth through modulating microtubule homeostasis. New Phytol. :doi: 10.1111/nph.18839.     Reference: February 27th, 2023
Gene Product: June 30th, 2022
Variation: February 27th, 2023
Gene Model: April 24th, 2021
1 year agoabf1 alpha-L-arabinofuranosidase1:
3.09
GRMZM2G006130
Nazipova, AR et al. 2023. The In Silico Characterization of Monocotyledonous α-l-Arabinofuranosidases on the Example of Maize. Life. 13     Reference: February 27th, 2023
Gene Product: May 6th, 2021
Gene Model: May 18th, 2021
1 year agoabf2 alpha-L-arabinofuranosidase2:
4.08
GRMZM2G077299
Nazipova, AR et al. 2023. The In Silico Characterization of Monocotyledonous α-l-Arabinofuranosidases on the Example of Maize. Life. 13     Reference: February 27th, 2023
Gene Product: May 6th, 2021
Gene Model: April 24th, 2020
1 year agocyc15 cyclin15:
 
GRMZM2G006721
Zhou, QQ et al. 2023. Maize tubulin folding cofactor B is required for cell division and cell growth through modulating microtubule homeostasis. New Phytol. :doi: 10.1111/nph.18839.     Reference: February 27th, 2023
Gene Product: June 26th, 2009
Gene Model: December 21st, 2018
1 year agoabf3 alpha-L-arabinofuranosidase3:
 
GRMZM2G393002
Nazipova, AR et al. 2023. The In Silico Characterization of Monocotyledonous α-l-Arabinofuranosidases on the Example of Maize. Life. 13     Reference: February 27th, 2023
Gene Product: May 6th, 2021
Gene Model: May 6th, 2021
1 year agoabf5 alpha-L-arabinofuranosidase5:
 
GRMZM2G180889
Nazipova, AR et al. 2023. The In Silico Characterization of Monocotyledonous α-l-Arabinofuranosidases on the Example of Maize. Life. 13     Reference: February 27th, 2023
Gene Product: May 6th, 2021
Gene Model: May 6th, 2021
1 year agoabf6 alpha-L-arabinofuranosidase6:
 
GRMZM2G120132
Nazipova, AR et al. 2023. The In Silico Characterization of Monocotyledonous α-l-Arabinofuranosidases on the Example of Maize. Life. 13     Reference: February 27th, 2023
Gene Product: May 6th, 2021
Gene Model: May 6th, 2021
1 year agoabf7 alpha-L-arabinofuranosidase7:
 
GRMZM2G452353
Nazipova, AR et al. 2023. The In Silico Characterization of Monocotyledonous α-l-Arabinofuranosidases on the Example of Maize. Life. 13     Reference: February 27th, 2023
Gene Product: May 6th, 2021
Gene Model: May 6th, 2021
1 year agoabf8 alpha-L-arabinofuranosidase8:
 
GRMZM2G131440
Nazipova, AR et al. 2023. The In Silico Characterization of Monocotyledonous α-l-Arabinofuranosidases on the Example of Maize. Life. 13     Reference: February 27th, 2023
Gene Product: May 6th, 2021
Gene Model: May 6th, 2021
1 year agotfce1 tubulin-folding cofactor E1:
 
GRMZM2G060857
Zhou, QQ et al. 2023. Maize tubulin folding cofactor B is required for cell division and cell growth through modulating microtubule homeostasis. New Phytol. :doi: 10.1111/nph.18839.     Reference: February 27th, 2023
Gene Product: June 30th, 2022
Gene Model: June 30th, 2022
1 year agoIDP3972  :
2.02
GRMZM5G824964
Zhou, QQ et al. 2023. Maize tubulin folding cofactor B is required for cell division and cell growth through modulating microtubule homeostasis. New Phytol. :doi: 10.1111/nph.18839.     Reference: February 27th, 2023
Variation: March 31st, 2005
Gene Model: April 22nd, 2021
1 year agoppr203 pentatricopeptide repeat protein203:
3.09
   Shaoqing Wang et al. 2023. Identification of miRNAs Involved in Maize-Induced Systemic Resistance Primed by Trichoderma harzianum T28 against Cochliobolus heterostrophus Journal of Fungi. 9:278.     Reference: February 22nd, 2023
Gene Product: December 27th, 2016
1 year agoppr31 pentatricopeptide repeat protein:
 
   Xie, SD et al. 2023. Dek219 encodes DICER-LIKE1 protein that affects chromatin accessibility and kernel development in maize J Integr Agric. :doi: 10.1016/j.jia.2023.02.024.     Reference: February 20th, 2023
Gene Product: December 27th, 2016
1 year agoglpx6 glutathione peroxidase6:
9.04
GRMZM2G329144
Singh, A et al. 2023. Characterization of phi112, a Molecular Marker Tightly Linked to the o2 Gene of Maize, and Its Utilization in Multiplex PCR for Differentiating Normal Maize from QPM Genes. 14:531.     Reference: February 20th, 2023
Gene Product: March 4th, 2022
Gene Model: November 22nd, 2019
1 year agoadss1 adenylosuccinate synthetase:
1.02
GRMZM2G119852
Zhu, YX et al. 2023. ZmAdSS1 encodes adenylosuccinate synthetase and plays a critical role in maize seed development and the accumulation of nutrients Plant Sci. :doi: 10.1016/j.plantsci.2023.111644.     Reference: February 20th, 2023
Gene Product: February 12th, 2008
Variation: February 20th, 2023
Gene Model: July 27th, 2016
1 year agorboh14 respiratory burst oxidase14:
 
   Zhang, HY et al. 2023. Evolutionary Analysis of Respiratory Burst Oxidase Homolog (RBOH) Genes in Plants and Characterization of ZmRBOHs Int J Mol Sci. 24:3858.     Reference: February 18th, 2023
Gene Product: February 18th, 2023
1 year agoahh1 adenosyl homocysteine hydrolase1:
4.03
   Kai, Y et al. 2023. Integration of microRNAs and mRNAs reveals the hormones synthesis and signal transduction of maize under different N rates J Integr Agric. :doi: 10.1016/j.jia.2023.02.016.     Reference: February 17th, 2023
Gene Product: September 1st, 2003
Variation: March 29th, 2015
1 year agotar2 tryptophan aminotransferase related2:
 
GRMZM2G066345
Kai, Y et al. 2023. Integration of microRNAs and mRNAs reveals the hormones synthesis and signal transduction of maize under different N rates J Integr Agric. :doi: 10.1016/j.jia.2023.02.016.     Reference: February 17th, 2023
Gene Product: April 30th, 2011
Gene Model: August 19th, 2017
1 year agoga2ox15 gibberellin 2-oxidase15:
 
AC215639.3_FG002
Kai, Y et al. 2023. Integration of microRNAs and mRNAs reveals the hormones synthesis and signal transduction of maize under different N rates J Integr Agric. :doi: 10.1016/j.jia.2023.02.016.     Reference: February 17th, 2023
Gene Product: October 27th, 2014
Gene Model: May 8th, 2021
1 year agoiso3 isoamylase-type starch debranching enzyme3:
 
GRMZM2G150796
Niu, LJ et al. 2023. Genetic Engineering of Starch Biosynthesis in Maize Seeds for Efficient Enzymatic Digestion of Starch during Bioethanol Production Int J Mol Sci. 24:3927.     Reference: February 15th, 2023
Gene Product: October 25th, 2011
Variation: April 7th, 2011
Gene Model: July 28th, 2016
1 year agougp2 UDP-glucose pyrophosphorylase2:
 
GRMZM2G032003
Niu, LJ et al. 2023. Genetic Engineering of Starch Biosynthesis in Maize Seeds for Efficient Enzymatic Digestion of Starch during Bioethanol Production Int J Mol Sci. 24:3927.     Reference: February 15th, 2023
Gene Product: September 1st, 2003
Gene Model: February 25th, 2015
1 year agoagp1 ADP glucose pyrophosphorylase small subunit embryo 1:
2.06
GRMZM2G106213
Niu, LJ et al. 2023. Genetic Engineering of Starch Biosynthesis in Maize Seeds for Efficient Enzymatic Digestion of Starch during Bioethanol Production Int J Mol Sci. 24:3927.     Reference: February 15th, 2023
Gene Product: January 3rd, 2014
Variation: November 4th, 2014
Gene Model: November 4th, 2014
1 year agobhlh193 bHLH-transcription factor 193:
 
   Xiaoxiao Yang et al. 2023. Melatonin Alleviates Chromium Toxicity in Maize by Modulation of Cell Wall Polysaccharides Biosynthesis, Glutathione Metabolism, and Antioxidant Capacity Int J Mol Sci. 24:3816.     Reference: February 14th, 2023
Gene Product: September 14th, 2016
1 year agohma7 heavy metal ATPase7:
 
GRMZM2G029951
Xiaoxiao Yang et al. 2023. Melatonin Alleviates Chromium Toxicity in Maize by Modulation of Cell Wall Polysaccharides Biosynthesis, Glutathione Metabolism, and Antioxidant Capacity Int J Mol Sci. 24:3816.     Reference: February 14th, 2023
Gene Product: October 23rd, 2019
Gene Model: October 23rd, 2019
1 year agocsld3 cellulose synthase-like D3:
 
GRMZM2G061764
Xiaoxiao Yang et al. 2023. Melatonin Alleviates Chromium Toxicity in Maize by Modulation of Cell Wall Polysaccharides Biosynthesis, Glutathione Metabolism, and Antioxidant Capacity Int J Mol Sci. 24:3816.     Reference: February 14th, 2023
Gene Product: October 7th, 2016
Gene Model: January 12th, 2022
1 year agopao8 polyamine oxidase8:
6.02
GRMZM5G876960
Xiaoxiao Yang et al. 2023. Melatonin Alleviates Chromium Toxicity in Maize by Modulation of Cell Wall Polysaccharides Biosynthesis, Glutathione Metabolism, and Antioxidant Capacity Int J Mol Sci. 24:3816.     Reference: February 14th, 2023
Gene Product: June 10th, 2020
Gene Model: May 22nd, 2022
1 year agophcs1 phytochelatin synthase1:
8.03
GRMZM2G091228
Xiaoxiao Yang et al. 2023. Melatonin Alleviates Chromium Toxicity in Maize by Modulation of Cell Wall Polysaccharides Biosynthesis, Glutathione Metabolism, and Antioxidant Capacity Int J Mol Sci. 24:3816.     Reference: February 14th, 2023
Gene Product: September 12th, 2022
Gene Model: June 25th, 2022
1 year agosir1 sulfite reductase1:
 
GRMZM2G090338
Xiaoxiao Yang et al. 2023. Melatonin Alleviates Chromium Toxicity in Maize by Modulation of Cell Wall Polysaccharides Biosynthesis, Glutathione Metabolism, and Antioxidant Capacity Int J Mol Sci. 24:3816.     Reference: February 14th, 2023
Gene Product: September 1st, 2003
Variation: July 13th, 2021
Gene Model: July 28th, 2016
1 year agocipk3 calcineurin B-like-interacting protein kinase3:
1.04
GRMZM2G174896
Li, Chunhui et al. 2023. Genomic insight into changes of root architecture under drought stress in maize Plant Cell Environ. :doi: 10.1111/pce.14567.     Reference: February 14th, 2023
Gene Product: September 1st, 2003
Variation: February 10th, 2017
Gene Model: February 10th, 2017
1 year agopsei4 cystatin4:
8.01
GRMZM2G013461
Li, Chunhui et al. 2023. Genomic insight into changes of root architecture under drought stress in maize Plant Cell Environ. :doi: 10.1111/pce.14567.     Reference: February 14th, 2023
Gene Product: April 21st, 2008
Variation: April 21st, 2008
Gene Model: July 28th, 2016
1 year agocys1 cysteine synthase1:
8.01
GRMZM2G082185
Xiaoxiao Yang et al. 2023. Melatonin Alleviates Chromium Toxicity in Maize by Modulation of Cell Wall Polysaccharides Biosynthesis, Glutathione Metabolism, and Antioxidant Capacity Int J Mol Sci. 24:3816.     Reference: February 14th, 2023
Gene Product: September 1st, 2003
Variation: August 19th, 2015
Gene Model: August 19th, 2015
1 year agoglx2 glyoxalase2:
 
   Wu, Z-X et al. 2023. Nicosulfuron stress on the glyoxalase system and endogenous hormone content in sweet maize seedlings. Environ Sci Pollut Res. :Environmental science and pollution research.     Reference: February 13th, 2023
Gene Product: February 13th, 2023
1 year agoglx3 glyoxalase3:
1.04
   Wu, Z-X et al. 2023. Nicosulfuron stress on the glyoxalase system and endogenous hormone content in sweet maize seedlings. Environ Sci Pollut Res. :Environmental science and pollution research.     Reference: February 13th, 2023
Gene Product: February 13th, 2023
1 year agocer2 eceriferum2:
 
GRMZM2G029912
Jiang, YA et al. 2023. Transcriptome analysis of drought-responsive and drought-tolerant mechanisms in maize leaves under drought stress. Physiol Plant. :e13875.     Reference: February 13th, 2023
Gene Product: February 13th, 2020
Gene Model: February 13th, 2020
1 year agochn26 chitinase26:
 
GRMZM2G400999
Jiang, YA et al. 2023. Transcriptome analysis of drought-responsive and drought-tolerant mechanisms in maize leaves under drought stress. Physiol Plant. :e13875.     Reference: February 13th, 2023
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
1 year agorhm1 resistance to Helminthosporium maydis1:
6.00 - 6.01
   Zhao, Y-Z et al. 2012. Identification and fine mapping of rhm1 locus for resistance to Southern corn leaf blight in maize. J Integr Plant Biol. 54:321-9.     Reference: February 11th, 2023
Variation: June 29th, 2005
1 year agovq59 VQ motif-transcription factor59:
 
GRMZM2G060720
Manisha Kumari et al. 2023. Differential expression of the AP2/EREBP gene family in the contrasting genotypes of maize provides insights of abiotic stress tolerance Cereal Res Commun. :doi: 10.1007/s42976-023-00358-6.     Reference: February 11th, 2023
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
1 year agosip1 stress-induced protein1:
7.04
GRMZM2G374971
Guo, XM et al. 2012. Pyrophosphate-dependent fructose-6-phosphate 1-phosphotransferase induction and attenuation of Hsp gene expression during endosperm modification in quality protein maize. Plant Physiol. 158:917-29.     Reference: February 9th, 2023
Gene Product: September 1st, 2003
Variation: August 18th, 2015
Gene Model: August 18th, 2015
1 year agobgaf1 beta glucosidase aggregating factor1:
7.02
GRMZM2G172204
Guo, XM et al. 2012. Pyrophosphate-dependent fructose-6-phosphate 1-phosphotransferase induction and attenuation of Hsp gene expression during endosperm modification in quality protein maize. Plant Physiol. 158:917-29.     Reference: February 9th, 2023
Gene Product: September 1st, 2003
Variation: October 23rd, 2013
Gene Model: October 24th, 2011
1 year agopfk1 phosphofructose kinase1:
6.05
GRMZM2G059151
Guo, XM et al. 2012. Pyrophosphate-dependent fructose-6-phosphate 1-phosphotransferase induction and attenuation of Hsp gene expression during endosperm modification in quality protein maize. Plant Physiol. 158:917-29.     Reference: February 9th, 2023
Gene Product: September 1st, 2003
Variation: July 7th, 2015
Gene Model: July 7th, 2015
1 year agoppr99 pentatricopeptide repeat protein99:
 
   Han, LQ et al. 2022. A multi-omics integrative network map of maize Nature Genetics. :doi: 10.1038/s41588-022-01262-1.     Reference: February 8th, 2023
Gene Product: December 27th, 2016
1 year agoham101 histone acetyl transferase MYST family 101:
2.08
GRMZM2G044126
Han, LQ et al. 2022. A multi-omics integrative network map of maize Nature Genetics. :doi: 10.1038/s41588-022-01262-1.     Reference: February 8th, 2023
Gene Product: November 6th, 2003
Variation: December 14th, 2012
Gene Model: July 27th, 2016
1 year agothx46 Trihelix-transcription factor 46:
 
GRMZM2G153575
Li, J et al. 2023. Dynamic patterns of gene expression and regulatory variation in the maize seed coat. BMC Plant Biology. 23:82.     Reference: February 8th, 2023
Gene Product: November 9th, 2021
Gene Model: July 29th, 2020
1 year agoumc1737  :
1.11
GRMZM2G082312
Ning Ding et al. 2023. Transcriptome analysis in contrasting maize inbred lines and functional analysis of five maize NAC genes under drought stress treatment. Frontiers in Plant Science. 13:1097719.     Reference: February 6th, 2023
Variation: December 8th, 2016
Gene Model: December 8th, 2016
1 year agocas1 cycloartenol synthase1:
4.10
GRMZM2G065494
Zhenjun Fan et al. 2022. Identification of a novel multifunctional oxidosqualene cyclase from Zea mays sheds light on the biosynthetic pathway of three pentacyclic triterpenoids. Synth Syst Biotechnol. 7:1167-1172.     Reference: February 6th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: December 28th, 2016
1 year agoperk1 proline-rich extensin-like receptor kinase1:
6.05
   Arca, M et al. 2023. Genotyping of DNA pools identifies untapped landraces and genomic regions to develop next generation varieties. Plant Biotechnol J. :doi: 10.1111/pbi.14022.     Reference: February 6th, 2023
Gene Product: September 7th, 2022
Variation: September 25th, 2007
1 year agodgk2 diacylglycerol kinase2:
 
GRMZM2G094452
Arca, M et al. 2023. Genotyping of DNA pools identifies untapped landraces and genomic regions to develop next generation varieties. Plant Biotechnol J. :doi: 10.1111/pbi.14022.     Reference: February 6th, 2023
Gene Product: September 18th, 2017
Variation: September 18th, 2017
Gene Model: September 18th, 2017
1 year agodgk3 diacylglycerol kinase3:
 
GRMZM2G106578
Arca, M et al. 2023. Genotyping of DNA pools identifies untapped landraces and genomic regions to develop next generation varieties. Plant Biotechnol J. :doi: 10.1111/pbi.14022.     Reference: February 6th, 2023
Gene Product: September 18th, 2017
Variation: September 18th, 2017
Gene Model: September 18th, 2017
1 year agogg1 G-protein gamma subunit1:
 
GRMZM2G015578
Min Yan et al. 2023. Identification of chilling-tolerant genes in maize via bulked segregant analysis sequencing Environ Exp Bot. 208:105234.   AT3G63420 (TAIR)
LOC_Os02g04520 (MSU/TIGR)
Reference: February 6th, 2023
Gene Product: May 1st, 2018
Gene Model: May 1st, 2018
1 year agopgl110 polygalacturonase110:
 
GRMZM2G112579
Arca, M et al. 2023. Genotyping of DNA pools identifies untapped landraces and genomic regions to develop next generation varieties. Plant Biotechnol J. :doi: 10.1111/pbi.14022.     Reference: February 6th, 2023
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
1 year agorlua1 RNA pseudouridine synthase1:
 
GRMZM2G174149
Arca, M et al. 2023. Genotyping of DNA pools identifies untapped landraces and genomic regions to develop next generation varieties. Plant Biotechnol J. :doi: 10.1111/pbi.14022.     Reference: February 6th, 2023
Gene Product: February 28th, 2022
Gene Model: February 28th, 2022
1 year agoIDP1660  :
5.03
GRMZM2G048205
Min Yan et al. 2023. Identification of chilling-tolerant genes in maize via bulked segregant analysis sequencing Environ Exp Bot. 208:105234.     Reference: February 6th, 2023
Variation: March 31st, 2005
Gene Model: May 9th, 2020
1 year agoIDP1448  :
10.01
GRMZM2G031317
Arca, M et al. 2023. Genotyping of DNA pools identifies untapped landraces and genomic regions to develop next generation varieties. Plant Biotechnol J. :doi: 10.1111/pbi.14022.     Reference: February 6th, 2023
Variation: March 31st, 2005
Gene Model: December 31st, 2017
1 year agoZm00001d006055  :
 
   Wang, BB et al. 2023. De novo genome assembly and analyses of 12 founder inbred lines provide insights into maize heterosis Nature Genetics. :doi: 10.1038/s41588-022-01283-w.     Reference: February 2nd, 2023
Variation: January 16th, 2023
1 year agoZm00001d011140  :
 
   Wang, BB et al. 2023. De novo genome assembly and analyses of 12 founder inbred lines provide insights into maize heterosis Nature Genetics. :doi: 10.1038/s41588-022-01283-w.     Reference: February 2nd, 2023
Variation: January 16th, 2023
1 year agoGRMZM2G166407  :
 
   Guo, X-M et al. 2023. Genome-wide association study of quality traits and starch pasting properties of maize kernels BMC Genomics. 24:59.   AT3G42630 (TAIR) Reference: February 2nd, 2023
Gene Product: December 27th, 2016
1 year agoppr334 pentatricopeptide repeat protein334:
6.00
GRMZM2G143646
Guo, X-M et al. 2023. Genome-wide association study of quality traits and starch pasting properties of maize kernels BMC Genomics. 24:59.     Reference: February 2nd, 2023
Gene Product: December 27th, 2016
Gene Model: May 27th, 2022
1 year agochsk1 Cochliobolus heterostrophus susceptibility kinase1:
 
   Chuan Chen et al. 2023. A Leucine Rich Repeat Receptor Kinase Gene Confers Quantitative Susceptibility to Maize Southern Leaf Blight. New Phytol. :doi: 10.1111/nph.18781.     Reference: February 1st, 2023
Gene Product: February 1st, 2023
Variation: February 1st, 2023
1 year agosmk11 small kernel11:
 
   Ren, ZJ et al. 2023. Tetratricopeptide-containing SMK11 is essential for the assembly of cytochrome c oxidase in maize mitochondria. Plant Physiol. :doi: 10.1093/plphys/kiad062.     Reference: February 1st, 2023
Gene Product: May 20th, 2017
Variation: February 1st, 2023
1 year agopepr1 plant elicitor peptide receptor1:
 
GRMZM2G011806
Snoeck, S et al. 2022. Plant Cell 34:1497-1513     Reference: April 28th, 2022
Gene Product: February 1st, 2023
Gene Model: October 15th, 2020
1 year agopepr2 plant elicitor peptide receptor2:
 
GRMZM2G428554
Gadag, RN et al. 2021. In: Kole C. (eds) Genomic Designing for Abiotic Stress Resistant Cereal Crops. Springer, Cham. doi: 10.1007/978-3-030-75875-2_3     Reference: September 1st, 2021
Gene Product: February 1st, 2023
Gene Model: October 15th, 2020
1 year agotmm2 too many mouths-like2:
 
GRMZM2G166413
Feng, XJ et al. 2022. ZmLBD5, a class-II LBD gene, negatively regulates drought tolerance by impairing abscisic acid synthesis Plant J. :doi: 10.1111/tpj.16015.     Reference: October 28th, 2022
Gene Product: February 1st, 2023
Gene Model: November 2nd, 2020
1 year agosbp18 SBP-transcription factor 18:
 
   Badu-Apraku, B et al. 2023. Mapping quantitative trait loci and predicting candidate genes for Striga resistance in maize using resistance donor line derived from Zea diploperennis. Frontiers in Genetics. 14:1012460.     Reference: January 30th, 2023
Gene Product: July 5th, 2019
1 year agopdi7 protein disulfide isomerase7:
6.05
GRMZM2G159369
He, RY et al. 2023. QTL Mapping and a Transcriptome Integrative Analysis Uncover the Candidate Genes That Control the Cold Tolerance of Maize Introgression Lines at the Seedling Stage Int J Mol Sci. 24:2629.     Reference: January 30th, 2023
Gene Product: September 1st, 2003
Variation: January 7th, 2016
Gene Model: December 18th, 2015
1 year agocdpk15 calcium dependent protein kinase15:
 
GRMZM2G441511
Du, HW et al. 2023. The Roles of CDPKs as a Convergence Point of Different Signaling Pathways in Maize Adaptation to Abiotic Stress Int J Mol Sci. 24:2325.     Reference: January 25th, 2023
Gene Product: December 3rd, 2013
Gene Model: January 10th, 2018
1 year agohak5 potassium high-affinity transporter5:
 
GRMZM2G084779
Cao, YB et al. 2023. Advances in deciphering salt tolerance mechanism in maize The Crop Journal. :doi: 10.1016/j.cj.2022.12.004.     Reference: January 25th, 2023
Gene Product: March 12th, 2020
Variation: December 15th, 2018
Gene Model: December 15th, 2018
1 year agodin1 drought-induced protein 19 homolog1:
 
GRMZM2G014066
Cao, YB et al. 2023. Advances in deciphering salt tolerance mechanism in maize The Crop Journal. :doi: 10.1016/j.cj.2022.12.004.     Reference: January 25th, 2023
Gene Product: July 4th, 2022
Gene Model: September 7th, 2019
1 year agocdpk38 calcium dependent protein kinase38:
 
GRMZM2G158721
Du, HW et al. 2023. The Roles of CDPKs as a Convergence Point of Different Signaling Pathways in Maize Adaptation to Abiotic Stress Int J Mol Sci. 24:2325.     Reference: January 25th, 2023
Gene Product: December 3rd, 2013
Gene Model: December 17th, 2020
1 year agonhx11 Na+/H+ antiporter 11:
 
GRMZM5G894029
Cao, YB et al. 2023. Advances in deciphering salt tolerance mechanism in maize The Crop Journal. :doi: 10.1016/j.cj.2022.12.004.     Reference: January 25th, 2023
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
1 year agonhx4 Na+/H+ antiporter 4:
 
   Cao, YB et al. 2023. Advances in deciphering salt tolerance mechanism in maize The Crop Journal. :doi: 10.1016/j.cj.2022.12.004.     Reference: January 25th, 2023
Gene Product: April 26th, 2021
1 year agonxd1 neoxanthin-deficient ortholog 1:
 
   Xiang, N et al. 2023. l-Tryptophan synergistically increased carotenoid accumulation with blue light in maize (Zea mays L.) sprouts Food Chemistry: Molecular Sciences. 6:100161.     Reference: January 24th, 2023
Gene Product: January 24th, 2023
1 year agosiz1 E3 SUMO-protein ligase SIZ2:
3.09
GRMZM2G002999
Xinyang Liao et al. 2023. ZmSIZ1a and ZmSIZ1b play an indispensable role in resistance against Fusarium ear rot in maize. Mol Plant Pathol. :doi: 10.1111/mpp.13297.     Reference: January 23rd, 2023
Gene Product: March 26th, 2020
Variation: September 25th, 2007
Gene Model: August 20th, 2021
1 year agolac6 laccase6:
 
GRMZM2G164467
Guo, Y et al. 2023. Nitrogen supply affects ion homeostasis by modifying root Casparian strip formation through the miR528-LAC3 module in maize. Plant Commun. :100553.     Reference: January 23rd, 2023
Gene Product: March 31st, 2018
Gene Model: March 31st, 2018
1 year agolac1 laccase1:
 
GRMZM2G400390
Guo, Y et al. 2023. Nitrogen supply affects ion homeostasis by modifying root Casparian strip formation through the miR528-LAC3 module in maize. Plant Commun. :100553.     Reference: January 23rd, 2023
Gene Product: March 31st, 2018
Gene Model: March 31st, 2018
1 year agopyl14 pyrabactin resistance-like protein14:
 
GRMZM2G134731
Xinyang Liao et al. 2023. ZmSIZ1a and ZmSIZ1b play an indispensable role in resistance against Fusarium ear rot in maize. Mol Plant Pathol. :doi: 10.1111/mpp.13297.     Reference: January 23rd, 2023
Gene Product: January 31st, 2021
Gene Model: January 31st, 2021
1 year agomir1 maize insect resistance1:
6.02
   Niu, YN et al. 2023. Genetic Variation, DIMBOA Accumulation, and Candidate Gene Identification in Maize Multiple Insect-Resistance Int J Mol Sci. 24:2138.     Reference: January 21st, 2023
Gene Product: October 11th, 2021
Variation: November 21st, 2017
1 year agomir2 maize insect resistance2:
6.02
GRMZM2G150256
Niu, YN et al. 2023. Genetic Variation, DIMBOA Accumulation, and Candidate Gene Identification in Maize Multiple Insect-Resistance Int J Mol Sci. 24:2138.     Reference: January 21st, 2023
Gene Product: September 1st, 2003
Variation: September 2nd, 2014
Gene Model: September 2nd, 2014
1 year agoincw4 invertase cell wall4:
2.01
GRMZM2G119941
Niu, YN et al. 2023. Genetic Variation, DIMBOA Accumulation, and Candidate Gene Identification in Maize Multiple Insect-Resistance Int J Mol Sci. 24:2138.     Reference: January 21st, 2023
Gene Product: June 12th, 2018
Variation: May 23rd, 2005
Gene Model: May 27th, 2015
1 year agosaur20 small auxin up RNA20:
2.04
GRMZM2G089806
Niu, YN et al. 2023. Genetic Variation, DIMBOA Accumulation, and Candidate Gene Identification in Maize Multiple Insect-Resistance Int J Mol Sci. 24:2138.     Reference: January 21st, 2023
Gene Product: November 26th, 2021
Gene Model: March 3rd, 2021
1 year agoras8C1 ras related protein8C1:
 
GRMZM2G111494
Lu, JW et al. 2023. Combined population transcriptomic and genomic analysis reveals cis-regulatory differentiation of non-coding RNAs in maize. Theor Appl Genet. 136:1-13.     Reference: January 21st, 2023
Variation: January 21st, 2011
Gene Model: April 7th, 2022
1 year agoincw6 invertase cell wall6:
 
GRMZM2G018692
Niu, YN et al. 2023. Genetic Variation, DIMBOA Accumulation, and Candidate Gene Identification in Maize Multiple Insect-Resistance Int J Mol Sci. 24:2138.     Reference: January 21st, 2023
Gene Product: June 12th, 2018
Gene Model: June 12th, 2018
1 year agosaur14 small auxin up RNA14:
 
GRMZM2G365166
Niu, YN et al. 2023. Genetic Variation, DIMBOA Accumulation, and Candidate Gene Identification in Maize Multiple Insect-Resistance Int J Mol Sci. 24:2138.     Reference: January 21st, 2023
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
1 year agosaur50 small auxin up RNA50:
 
GRMZM2G330012
Niu, YN et al. 2023. Genetic Variation, DIMBOA Accumulation, and Candidate Gene Identification in Maize Multiple Insect-Resistance Int J Mol Sci. 24:2138.     Reference: January 21st, 2023
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
1 year agosaur70 small auxin up RNA70:
 
GRMZM2G431066
Niu, YN et al. 2023. Genetic Variation, DIMBOA Accumulation, and Candidate Gene Identification in Maize Multiple Insect-Resistance Int J Mol Sci. 24:2138.     Reference: January 21st, 2023
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
1 year agosaur71 small auxin up RNA71:
 
GRMZM2G451533
Niu, YN et al. 2023. Genetic Variation, DIMBOA Accumulation, and Candidate Gene Identification in Maize Multiple Insect-Resistance Int J Mol Sci. 24:2138.     Reference: January 21st, 2023
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
1 year agoppr310 pentatricopeptide repeat protein310:
 
   Dai, W et al. 2023. Combined linkage mapping and association analysis uncovers candidate genes for 25 leaf-related traits across three environments in maize Theor Appl Genet. 136:1–14.     Reference: January 20th, 2023
Gene Product: December 27th, 2016
1 year agoabc4 aberrant chloroplast development4:
1.02
GRMZM2G097283
Dai, W et al. 2023. Combined linkage mapping and association analysis uncovers candidate genes for 25 leaf-related traits across three environments in maize Theor Appl Genet. 136:1–14.   At1g60600 (TAIR) Reference: January 20th, 2023
Gene Product: January 8th, 2018
Gene Model: January 8th, 2018
1 year agosbp28 SBP-transcription factor 28:
10.07
GRMZM2G058588
Dai, W et al. 2023. Combined linkage mapping and association analysis uncovers candidate genes for 25 leaf-related traits across three environments in maize Theor Appl Genet. 136:1–14.     Reference: January 20th, 2023
Gene Product: July 5th, 2019
Variation: September 1st, 2003
Gene Model: January 16th, 2018
1 year agoos1 opaque-endosperm, small germ1:
 
   Song, T; Lu, X. 1993. Acta Genet Sin 20:432-438     Reference: January 19th, 2023
Gene Product: December 3rd, 2019
Variation: January 18th, 2023
1 year agogpx1 glycerophosphodiester phosphodiesterase1:
5.04
GRMZM2G018820
Zhan, WM et al. 2023. Combined transcriptome and metabolome analysis reveals the effects of light quality on maize hybrids. BMC Plant Biology. 23:41.     Reference: January 19th, 2023
Gene Product: June 24th, 2020
Variation: March 7th, 2007
Gene Model: March 26th, 2021
1 year agoIDP739  :
1.04
GRMZM2G009232
Zhan, WM et al. 2023. Combined transcriptome and metabolome analysis reveals the effects of light quality on maize hybrids. BMC Plant Biology. 23:41.     Reference: January 19th, 2023
Variation: April 8th, 2021
Gene Model: February 13th, 2019
1 year agoaco4 aconitase4:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
1 year agoacp2 acid phosphatase2:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
1 year agoacp4 acid phosphatase4:
1.12
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
1 year agoadk1 adenylate kinase1:
6.00 - 6.01
GRMZM2G178192
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: September 4th, 2013
Gene Model: July 27th, 2016
1 year agoagt1 agravitropic1:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: March 7th, 2014
1 year agoalpha a1 locus component (see beta):
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: April 6th, 2005
1 year agoamp1 aminopeptidase1:
1.07 - 1.08
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
1 year agoamp3 aminopeptidase3:
5.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
1 year agoamp4 aminopeptidase4:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
1 year agoanl1 anthocyaninless lethal1:
5.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: April 24th, 2018
1 year agoant2 adenine nucleotide translocator2:
4.06
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: July 31st, 2012
1 year agoar1 argentia1:
9.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoatpA-1(mtNB) ATPase alpha subunit:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
1 year agobeta a1 locus component (see alpha):
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agobf2 blue fluorescent2:
10.04
GRMZM2G148508
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: October 22nd, 2013
1 year agobn1 brown aleurone1:
7.04 - 7.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 21st, 2007
1 year agobrn1 brown kernel1:
3.02 - 3.02
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 22nd, 2007
1 year agobs1 barren sterile1:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agobtn1 brittle node1:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agocar1 catalase regulator1:
1.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
1 year agocfr1 coupling factor reduction1:
1.01 - 1.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agocg2 corngrass2:
3.02
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agocl1 chlorophyll1:
3.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: June 7th, 2004
1 year agoclh1 histone Ic1:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
1 year agoclm1 modifier of cl1:
8.02 - 8.05
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoclt1 clumped tassel1:
8.06 - 8.06
GRMZM2G017305
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: October 15th, 2019
Variation: October 16th, 2019
Gene Model: October 15th, 2019
1 year agocm1 chloroplast mutator1:
10.05 - 10.06
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agocp2 collapsed2:
4.05
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoct1 compact plant1:
8.02 - 8.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agocto1 cob turned out1:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agocx1 catechol oxidase1:
10.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
1 year agoda1 dilute aleurone1:
9.00 - 9.08
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agodek10 defective kernel10:
4.06 - 4.11
GRMZM2G087226
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: December 27th, 2016
Variation: February 20th, 2017
Gene Model: February 20th, 2017
1 year agodek12 defective kernel12:
9.00 - 9.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agodek13 defective kernel13:
9.03 - 9.08
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agodek14 defective kernel14:
10.00 - 10.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agodek16 defective kernel16:
2.05 - 2.10
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agodek17 defective kernel17:
3.05 - 3.09
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: March 5th, 2013
1 year agodek18 defective kernel18:
5.00 - 5.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agodek2 defective kernel2:
1.06 - 1.12
GRMZM2G110851
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: December 27th, 2016
Variation: November 7th, 2016
Gene Model: November 7th, 2016
1 year agodek20 defective kernel20:
8.04 - 8.09
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agodek23 defective kernel23:
2.05 - 2.10
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agodek27 defective kernel27:
5.04 - 5.09
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agodek28 defective kernel28:
6.00 - 6.01
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agodek29 defective kernel29:
8.04 - 8.09
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agodek3 defective kernel3:
2.00 - 2.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agodek4 defective kernel4:
2.05 - 2.10
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agodek6 defective kernel6:
3.08 - 3.09
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: March 5th, 2013
1 year agodek8 defective kernel8:
4.06 - 4.11
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agodp1 distal pale1:
4.10
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agody1 desynaptic1:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: June 21st, 2012
1 year agoe10 esterase 10:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
1 year agoe2 esterase 2:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
1 year agoe3 esterase3:
3.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
1 year agoe4 esterase4:
3.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
1 year agoe7 esterase7:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
1 year agoe8 esterase8:
3.01
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
1 year agoeg1 expanded glumes1:
5.07 - 5.08
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoenp1 endopeptidase1:
6.02 - 6.02
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
1 year agofbr1 few-branched1:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoFcu Factor Cuna:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: February 23rd, 2009
1 year agog1 golden plant1:
10.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: May 19th, 2006
1 year agoga10 gametophyte factor10:
5.02 - 5.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoga7 gametophyte factor7:
3.09
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoga8 gametophyte factor8:
9.02
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agogl1 glossy1:
7.02
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: October 26th, 2006
1 year agogl11 glossy11:
2.04 - 2.05
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agogl14 glossy14:
2.05 - 2.05
GRMZM5G806387
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: October 31st, 2018
Variation: October 31st, 2018
Gene Model: October 31st, 2018
1 year agogl18 glossy18:
8.04 - 8.05
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: June 29th, 2004
1 year agogl20 glossy20:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agogl21 glossy21:
10.00 - 10.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agogl22 glossy22:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agogl7 glossy7:
4.04 - 4.05
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agogl9 glossy9:
3.09 - 3.10
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agogs2 green stripe2:
2.03 - 2.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agogs3 green stripe3:
6.07 - 6.08
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 13th, 2021
1 year agogs4 green stripe4:
10.03 - 10.05
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agohcf113 high chlorophyll fluorescence113:
9.00 - 9.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agohcf12 high chlorophyll fluorescence12:
1.06 - 1.12
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agohcf13 high chlorophyll fluorescence13:
1.06 - 1.07
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agohcf18 high chlorophyll fluorescence18:
5.04 - 5.09
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agohcf21 high chlorophyll fluorescence21:
5.04 - 5.09
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agohcf23 high chlorophyll fluorescence23:
4.00 - 4.05
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agohcf316 high chlorophyll fluorescence316:
10.00 - 10.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agohcf323 high chlorophyll fluorescence323:
6.00 - 6.01
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agohcf34 high chlorophyll fluorescence34:
6.01 - 6.08
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agohcf36 high chlorophyll fluorescence36:
6.01 - 6.08
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agohcf4 high chlorophyll fluorescence4:
1.06 - 1.12
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: November 1st, 2005
1 year agohcf408 high chlorophyll fluorescence408:
6.01 - 6.08
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agohcf41 high chlorophyll fluorescence41:
1.06 - 1.12
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agohcf46 high chlorophyll fluorescence46:
3.05 - 3.09
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agohcf48 high chlorophyll fluorescence48:
6.01 - 6.08
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agohcf5 high chlorophyll fluorescence5:
6.00 - 6.01
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agohm2 Helminthosporium carbonum susceptibility2:
9.03 - 9.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: May 23rd, 2014
Variation: October 5th, 2007
1 year agohs1 hairy sheath1:
7.00 - 7.01
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agois1 cupulate interspace1:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoj1 japonica striping1:
8.07 - 8.08
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoj2 japonica striping2:
4.08
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agol1 luteus1:
10.06
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agol11 luteus11:
6.04 - 6.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agol12 luteus12:
6.01 - 6.02
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agol13 luteus13:
10.07
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agol4 luteus4:
7.00 - 7.02
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agol6 luteus6:
9.02 - 9.02
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: March 24th, 2005
1 year agoles10 lesion10:
2.04 - 2.06
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: November 29th, 2004
1 year agoles2 lesion2:
1.02 - 1.02
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoles3 lesion3:
10.02 - 10.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: May 20th, 2006
1 year agoles4 lesion4:
2.08 - 2.09
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoles5 lesion5:
1.05 - 1.06
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: May 10th, 2015
1 year agoles6 lesion6:
10.00 - 10.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoles7 lesion7:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoloc1 low oil content in kernel1:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agolp1 lethal pollen1:
4.00 - 4.11
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agolu1 lutescent1:
5.01 - 5.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 22nd, 2020
1 year agolw3 lemon white3:
5.05 - 5.06
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agolw4 lemon white4:
4.06
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agomdm1 maize dwarf mosaic virus resistance1:
6.01
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agome1 NADP malic enzyme1:
3.04 - 3.07
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: June 27th, 2019
1 year agomg1 miniature germ1:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: May 19th, 2015
1 year agomn3 miniature seed3:
6.01
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: December 15th, 2014
1 year agoms14 male sterile14:
1.05
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: March 21st, 2012
1 year agoms24 male sterile24:
10.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: August 23rd, 2013
1 year agoms3 male sterile3:
3.05 - 3.06
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: August 23rd, 2013
1 year agoms43 male sterile43:
8.05 - 8.09
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoms9 male sterile9:
1.03
GRMZM2G006981
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: July 18th, 2015
Gene Model: July 16th, 2015
1 year agomsc1 mosaic1:
1.06 - 1.12
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agomst1 modifier of R1-st1:
10.06
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 12th, 2020
1 year agomv1 resistance to maize mosaic virus I ("corn stripe")1:
3.05
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agonec1 necrotic1:
8.04 - 8.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: May 19th, 2006
1 year agonec2 necrotic2:
1.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 11th, 2020
1 year agonec6 necrotic6:
5.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agonec7 necrotic7:
5.04 - 5.09
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: June 14th, 2011
1 year agonl1 narrow leaf1:
10.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 18th, 2007
1 year agonl2 narrow leaf2:
5.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: February 25th, 2010
1 year agoo10 opaque endosperm10:
 
GRMZM2G346263
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: August 20th, 2016
Variation: August 20th, 2016
Gene Model: August 20th, 2016
1 year agoo13 opaque endosperm13:
1.00 - 1.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoo7 opaque endosperm7:
10.07
GRMZM2G074759
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: December 20th, 2011
Variation: February 20th, 2012
Gene Model: December 16th, 2011
1 year agooro2 orobanche2:
2.05 - 2.10
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: January 14th, 2005
1 year agoorom1 orobanche modifier1:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoP plant color component at R1:
 
GRMZM5G822829
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: October 13th, 2010
Variation: December 3rd, 2009
Gene Model: September 23rd, 2011
1 year agopam1 plural abnormalities of meiosis1:
1.05
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agopb4 piebald leaves4:
5.04 - 5.09
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: March 10th, 2010
1 year agope1 perennialism1:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agopg12 pale green12:
9.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: February 18th, 2005
1 year agoph1 pith abscission1:
4.01
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agopi1 pistillate florets1:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agopi2 pistillate florets2:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agopt1 polytypic ear1:
6.05 - 6.05
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agopx1 peroxidase1:
2.07
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 18th, 2015
Variation: September 1st, 2003
1 year agopx2 peroxidase2:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 18th, 2015
Variation: September 1st, 2003
1 year agopx4 peroxidase4:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 18th, 2015
1 year agopx6 peroxidase6:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 18th, 2015
1 year agopx7 peroxidase7:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 18th, 2015
1 year agopx8 peroxidase8:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 18th, 2015
1 year agopx9 peroxidase9:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 18th, 2015
1 year agord1 reduced plant1:
1.11
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: May 19th, 2006
1 year agord4 reduced plant4:
3.05 - 3.06
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agorf6 restorer of fertility6:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agorg1 ragged leaves1:
3.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agorgo1 reversed germ orientation1:
9.04 - 9.05
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agori1 rind abscission1:
4.01 - 4.02
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agorp4 resistance to Puccinia sorghi4:
4.01 - 4.02
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agorp5 resistance to Puccinia sorghi5:
10.01 - 10.01
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agorp6 resistance to Puccinia sorghi6:
10.01
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agors4 rough sheath4:
7.02
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agort1 rootless1:
3.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoruq receptor of Uq:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoS seed color component at R1:
10.06
GRMZM5G822829
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: October 13th, 2010
Variation: July 12th, 2010
Gene Model: January 7th, 2018
1 year agosdw1 semi-dwarf plant1:
8.05 - 8.05
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agosen1 soft endosperm1:
3.00 - 3.09
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agosen2 soft endosperm2:
7.00 - 7.06
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agosen3 soft endosperm3:
1.00 - 1.12
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agosen4 soft endosperm4:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agosen6 soft endosperm6:
5.00 - 5.09
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agosg1 string cob1:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agosks1 suppressor of KYS sterility1:
2.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agosl1 slashed leaves1:
7.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agosn1 scutellar node color1:
10.06
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: December 24th, 2009
1 year agospc2 speckled2:
1.12 - 1.12
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agospt2 spotted2:
4.03 - 4.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: November 30th, 2007
1 year agosr1 striate leaves1:
1.02 - 1.02
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agosr4 striate leaves4:
6.01 - 6.08
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agost1 sticky chromosome1:
4.03 - 4.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: April 2nd, 2010
1 year agotlr1 tillered1:
1.06 - 1.12
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: August 31st, 2010
1 year agoub1 unbranched1:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoufo1 unstable factor for orange1:
10.03
GRMZM2G053177
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: April 28th, 2021
Gene Model: December 19th, 2018
1 year agov12 virescent12:
5.05 - 5.06
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agov17 virescent17:
4.04 - 4.05
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agov22 virescent22:
1.08 - 1.09
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agov23 virescent23:
4.05 - 4.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: May 19th, 2006
1 year agov27 virescent27:
7.02 - 7.06
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agov29 virescent29:
10.07
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: February 16th, 2006
1 year agov3 virescent3:
5.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: May 19th, 2006
1 year agov31 virescent31:
9.02
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agov5 virescent5:
7.02
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agov8 virescent8:
4.08 - 4.08
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agova1 variable sterile1:
7.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agovg1 vestigial glume1:
1.07
GRMZM2G079805
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: June 10th, 2019
Variation: September 1st, 2003
Gene Model: June 10th, 2019
1 year agovsr1 virescent striped1:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agow1 white seedling1:
6.05
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: October 20th, 2017
1 year agow15 white seedling15:
6.01 - 6.02
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agow18 white seedling18:
1.09 - 1.10
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: October 11th, 2010
1 year agowgs1 white green sectors1:
5.07 - 5.08
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: March 1st, 2019
1 year agowi1 wilted1:
6.00 - 6.01
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agowi2 wilted2:
3.03 - 3.05
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agowlu1 white luteus1:
3.06 - 3.08
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agowlu2 white luteus2:
7.02 - 7.06
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: May 29th, 2009
1 year agowlu3 white luteus3:
8.05 - 8.06
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agowlu4 white luteus4:
9.03 - 9.08
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agowlu5 white luteus5:
1.07 - 1.07
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agowrp1 wrinkled plant1:
2.06 - 2.07
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: January 26th, 2010
1 year agows1 white sheath1:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agows3 white sheath3:
2.01
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agows4 white sheath4:
1.05 - 1.06
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agowt2 white tip2:
4.00 - 4.02
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: April 1st, 2005
1 year agowyg1 white yellow green seedling1:
7.02 - 7.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoyg2 yellow-green2:
9.00
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: May 19th, 2006
1 year agoysk1 yellow streaked1:
4.03 - 4.05
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agozb1 zebra crossbands1:
5.08 - 5.09
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agozb3 zebra crossbands3:
1.00 - 1.01
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agozb4 zebra crossbands4:
1.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agozb6 zebra crossbands6:
4.06 - 4.06
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agozn2 zebra necrotic2:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: October 19th, 2006
1 year agoras11D1 ras-related protein11D1:
9.03
GRMZM2G018619
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: October 13th, 2018
Gene Model: October 13th, 2018
1 year agonpi120  :
1.08
GRMZM2G118433
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: December 29th, 2021
1 year agoccp8 cysteine protease8:
7.04
GRMZM2G036203
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: October 11th, 2021
Variation: September 1st, 2003
Gene Model: February 5th, 2019
1 year agotua6 alpha tubulin6:
7.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: August 16th, 2013
1 year agoles11 lesion11:
2.01 - 2.02
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoles12 lesion12:
10.00 - 10.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: October 21st, 2003
1 year agoles14 lesion14:
3.05 - 3.08
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoles15 lesion15:
2.05 - 2.05
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoptd1 pitted endosperm1:
1.09
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoptd2 pitted endosperm2:
7.05 - 7.06
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoren1 reduced endosperm1:
5.06 - 5.07
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoren3 reduced endosperm3:
10.07
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: May 19th, 2006
1 year agohox2 homeobox2:
6.07
GRMZM2G094935
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: June 25th, 2014
Gene Model: June 25th, 2014
1 year agodib1 dichotomously branched1:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agopet1 photosynthetic electron transport1:
8.04 - 8.09
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: May 11th, 2021
Variation: September 1st, 2003
1 year agogcb1 GC binding protein 1:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoalt1 L-alanine:2-oxoglutarate aminotransferase1:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: October 2nd, 2020
1 year agoalt2 L-alanine:2-oxoglutarate aminotransferase2:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: October 2nd, 2020
1 year agopmg1 phosphoglycerate mutase1:
6.05
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
1 year agogl13 glossy13:
 
GRMZM2G118243
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: December 28th, 2015
Variation: December 19th, 2013
Gene Model: December 9th, 2013
1 year agohyp1 hybrid proline-rich protein1:
9.02
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: July 18th, 2014
1 year agoacpt1 acyl carrier protein1:
1.07
GRMZM2G175818
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: July 9th, 2012
Gene Model: July 27th, 2016
1 year agopsb2 photosystemII2:
5.04 - 5.09
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agopet4 photosynthetic electron transport4:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: May 11th, 2021
1 year agopet5 photosynthetic electron transport5:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: May 11th, 2021
1 year agocrp2 chloroplast RNA processing2:
5.00 - 5.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agotsc1 tar spot complex1:
 
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoobf2 octopine synthase binding factor2:
9.03 - 9.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
1 year agoo14 opaque endosperm14:
6.04 - 6.08
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agohcf7 high chlorophyll fluorescence 7:
1.06 - 1.12
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agoemp3 empty pericarp3:
8.08 - 8.08
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 19th, 2011
1 year agowsm1 wheat streak mosaic virus resistance1:
6.01
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
1 year agobet1 glycinebetaine1:
3.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
1 year agoumc1045  :
10.05
GRMZM2G142832
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: December 13th, 2018
Gene Model: April 25th, 2017
1 year agobnl10.24a  :
3.06
GRMZM2G129361
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: April 23rd, 2022
1 year agobnl12.30a  :
8.06
GRMZM2G015735
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: August 7th, 2018
1 year agobnl6.29a  :
6.01
GRMZM2G381086
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: August 18th, 2018
1 year agohb91 Homeobox-transcription factor 91:
10.07
GRMZM2G122897
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: October 3rd, 2020
Variation: April 25th, 2017
Gene Model: April 25th, 2017
1 year agonbcs15 nucleobase:cation symporter15:
5.00
GRMZM2G420823
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: July 14th, 2018
Variation: September 1st, 2003
Gene Model: June 14th, 2018
1 year agonpi105a  :
10.03
GRMZM2G143356
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: September 2nd, 2018
1 year agonpi113a  :
7.05
GRMZM2G152963
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: January 7th, 2022
1 year agonpi114b  :
3.04
GRMZM2G046924
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: January 2nd, 2022
1 year agonpi239  :
2.01 - 2.01
GRMZM2G018595
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: January 1st, 2022
1 year agonpi241a  :
1.11
GRMZM2G474685
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: February 22nd, 2021
Variation: October 20th, 2017
Gene Model: October 19th, 2017
1 year agonpi252  :
6.05
GRMZM2G054056
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: August 27th, 2018
1 year agonpi269a  :
2.03
GRMZM2G168917
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: January 1st, 2022
1 year agonpi269b  :
10.04 - 10.06
GRMZM2G123450
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: January 1st, 2022
1 year agoppr116 pentatricopeptide repeat protein116:
2.06
GRMZM2G138303
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: December 27th, 2016
Gene Model: January 2nd, 2022
1 year agogras28 GRAS-transcription factor 28:
4.04
GRMZM2G342217
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: March 11th, 2017
1 year agonpi393  :
6.03
GRMZM2G158668
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: April 6th, 2017
1 year agonpi402  :
2.03
GRMZM2G019876
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: January 2nd, 2022
1 year agonpi414a  :
8.08
GRMZM2G069260
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: April 19th, 2017
Gene Model: April 19th, 2017
1 year agonpi451  :
4.11
GRMZM2G042664
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: January 3rd, 2022
1 year agoflz15 FCS-like zinc finger15:
3.09
GRMZM2G033867
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: March 29th, 2021
Gene Model: August 31st, 2018
1 year agonpi602  :
10.03
GRMZM2G339663
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: January 8th, 2022
1 year agonpi209b  :
1.02
GRMZM2G007188
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: December 29th, 2021
1 year agoknox10 knotted related homeobox10:
5.01 - 5.03
GRMZM2G002225
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: March 7th, 2012
1 year agophp20075b(ext)  :
9.03
GRMZM2G105364
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: January 9th, 2019
1 year agophp20725a  :
4.02
GRMZM2G076435
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: March 10th, 2017
1 year agotrg1 trigonelline1:
4.06
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
1 year agozmm2 Zea mays MADS2:
8.03
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: July 31st, 2017
1 year agopmk1 Phosphomevalonate kinase1:
1.03
GRMZM2G019260
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: March 9th, 2016
Gene Model: September 20th, 2016
1 year agoumc120a  :
8.03
GRMZM2G578572
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: September 18th, 2018
1 year agoumc130  :
10.03
GRMZM2G125931
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: April 25th, 2017
Gene Model: April 25th, 2017
1 year agoumc131  :
2.05
GRMZM2G024933
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: February 22nd, 2017
Gene Model: February 22nd, 2017
1 year agoumc132a(chk)  :
6.07
GRMZM2G014303
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: April 6th, 2017
Gene Model: April 6th, 2017
1 year agoumc21  :
6.05
GRMZM2G174170
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: April 6th, 2017
Gene Model: April 6th, 2017
1 year agoglk6 G2-like-transcription factor 6:
1.07
GRMZM2G117193
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: January 26th, 2017
Gene Model: January 26th, 2017
1 year agoalf18 Alfin-like-transcription factor 18:
4.03
GRMZM2G008259
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: November 11th, 2021
Variation: September 25th, 2007
Gene Model: November 16th, 2016
1 year agoumc32a  :
3.01
GRMZM2G123519
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: March 1st, 2017
1 year agoumc3b  :
3.07
GRMZM2G454081
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: April 3rd, 2018
1 year agoumc42a  :
4.05
GRMZM2G038046
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: September 1st, 2003
Gene Model: June 11th, 2018
1 year agotcptf2 TCP-transcription factor 2:
4.09
GRMZM2G003944
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 27th, 2019
Variation: March 17th, 2017
Gene Model: March 17th, 2017
1 year agoumc59a  :
6.02
GRMZM2G134930
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: April 5th, 2017
Gene Model: April 5th, 2017
1 year agoyab11 C2C2-YABBY-transcription factor 11:
1.06
GRMZM2G141955
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: October 16th, 2015
Variation: January 31st, 2017
Gene Model: January 31st, 2017
1 year agoxaxt1 xylan arabinosyl 2- O-xylosyltransferase 1:
9.03
GRMZM2G412986
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: August 12th, 2022
Gene Model: March 13th, 2018
1 year agovps1 vesicular transport protein1:
5.02
GRMZM2G023858
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: March 23rd, 2017
Gene Model: March 23rd, 2017
1 year agoumc95  :
9.05
GRMZM5G880028
Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Variation: April 21st, 2017
Gene Model: April 21st, 2017
1 year agozpl1a zein protein 1a:
4.01 - 4.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
1 year agozpl1b zein protein 1b:
4.01 - 4.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
1 year agozpl1c zein protein 1c:
4.01 - 4.04
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
1 year agozpl1e zein protein 1e:
4.05
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
1 year agozpl1f zein protein 1f:
4.02
   Wang, D et al. 2010. Plant J 63:939-951     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
1 year agoprc2 proteasome component2:
9.07
GRMZM2G111566
Xu, JH et al. 2023. HEAT SHOCK PROTEIN 90.6 interacts with carbon and nitrogen metabolism components during seed development :doi: 10.1093/plphys/kiad019.     Reference: January 18th, 2023
Gene Product: September 1st, 2003
Variation: December 28th, 2010
Gene Model: May 7th, 2013
1 year agodek15 defective kernel15:
10.04 - 10.07
GRMZM2G079796
Ma, B et al. 2023. Understanding the regulation of cereal grain filling: The way forward. J Integr Plant Biol. :doi: 10.1111/jipb.13456.     Reference: January 17th, 2023
Gene Product: February 1st, 2019
Variation: February 1st, 2019
Gene Model: February 1st, 2019
1 year agobgh1 big grain1 homolog1:
 
GRMZM2G178852
Ma, B et al. 2023. Understanding the regulation of cereal grain filling: The way forward. J Integr Plant Biol. :doi: 10.1111/jipb.13456.     Reference: January 17th, 2023
Variation: May 2nd, 2020
Gene Model: May 2nd, 2020
1 year agohipp1 heavy metal-associated isoprenylated plant protein1:
2.05
GRMZM2G092581
He, SJ et al. 2023. Association studies of genes in a Pb response-associated network in maize (Zea mays L.) reveal that ZmPIP2;5 is involved in Pb tolerance Plant Physiol Biochem. :doi: 10.1016/j.plaphy.2023.01.008.     Reference: January 16th, 2023
Gene Product: February 12th, 2022
Variation: February 12th, 2022
Gene Model: March 2nd, 2021
1 year agoplt19 phospholipid transfer protein19:
 
   Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
1 year agoplt23 phospholipid transfer protein23:
 
   Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
1 year agoplt26 phospholipid transfer protein26:
 
   Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
1 year agoplt27 phospholipid transfer protein27:
 
   Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
1 year agoplt31 phospholipid transfer protein31:
 
   Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
1 year agoplt32 phospholipid transfer protein32:
 
   Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
1 year agoplt34 phospholipid transfer protein34:
 
   Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
1 year agoplt35 phospholipid transfer protein35:
 
   Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
1 year agoplt37 phospholipid transfer protein37:
 
   Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
1 year agoplt41 phospholipid transfer protein41:
 
   Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
1 year agoplt42 phospholipid transfer protein42:
 
   Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
1 year agoplt44 phospholipid transfer protein44:
 
   Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
1 year agoplt45 phospholipid transfer protein45:
 
   Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
1 year agoplt47 phospholipid transfer protein47:
 
   Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
1 year agoplt48 phospholipid transfer protein48:
 
   Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
1 year agoplt49 phospholipid transfer protein49:
 
   Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
1 year agoplt50 phospholipid transfer protein50:
 
   Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
1 year agoplt51 phospholipid transfer protein51:
 
   Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
1 year agoplt54 phospholipid transfer protein54:
 
   Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
1 year agoplt55 phospholipid transfer protein55:
 
   Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
1 year agoplt40 phospholipid transfer protein40:
2.04
GRMZM2G151021
Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: July 27th, 2018
1 year agoplt17 phospholipid transfer protein17:
6.05
   Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
1 year agoplt12 phospholipid transfer protein12:
1.01
GRMZM2G137329
Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
Variation: March 9th, 2016
Gene Model: March 9th, 2016
1 year agoplt22 phospholipid transfer protein22:
2.05
GRMZM2G164440
Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: February 23rd, 2017
1 year agoplt36 phospholipid transfer protein36:
1.11
GRMZM2G006047
Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
Variation: July 29th, 2004
Gene Model: January 6th, 2017
1 year agoplt38 phospholipid transfer protein38:
1.11
GRMZM2G168833
Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
Gene Model: February 15th, 2020
1 year agoplt24 phospholipid transfer protein24:
3.06
GRMZM2G065557
Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
Gene Model: April 5th, 2020
1 year agoltp1 lipid transfer protein1:
 
GRMZM2G320373
Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
Gene Model: August 1st, 2016
1 year agoplt4 phospholipid transfer protein homolog4:
 
GRMZM2G174680
Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
Gene Model: January 6th, 2017
1 year agoplt5 phospholipid transfer protein homolog5:
 
GRMZM2G005991
Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
Variation: February 15th, 2019
Gene Model: January 6th, 2017
1 year agoplt56 phospholipid transfer protein56:
 
GRMZM2G166484
Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
Gene Model: January 15th, 2021
1 year agoplt13 phospholipid transfer protein13:
 
GRMZM2G081464
Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
Gene Model: June 16th, 2022
1 year agoplt46 phospholipid transfer protein46:
5.03
GRMZM2G141858
Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
Gene Model: May 10th, 2020
1 year agoplt29 phospholipid transfer protein29:
8.06
GRMZM2G170969
Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
Variation: September 25th, 2007
Gene Model: September 5th, 2021
1 year agoplt28 phospholipid transfer protein28:
8.06
GRMZM2G471051
Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
Gene Model: July 12th, 2021
1 year agonthr3 anther-specific protein 3:
7.03
GRMZM2G073377
Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
Variation: May 9th, 2009
Gene Model: July 28th, 2016
1 year agoplt25 phospholipid transfer protein25:
5.03
GRMZM2G094632
Fang, CW et al. 2023. A Systematic Investigation of Lipid Transfer Proteins Involved in Male Fertility and Other Biological Processes in Maize Int J Mol Sci. 24:1660.     Reference: January 14th, 2023
Gene Product: September 1st, 2003
Gene Model: May 9th, 2020
1 year agoccr1 cytochrome c reductase1:
1.11
GRMZM2G170457
Ran Fu et al. 2023. Modeling the influence of phenotypic plasticity on maize hybrid performance. Plant Commun. :100548.     Reference: January 13th, 2023
Gene Product: September 1st, 2003
Variation: September 28th, 2012
Gene Model: May 17th, 2016
1 year agouce3 ubiquitin conjugating enzyme3:
1.01
GRMZM2G070047
Li, K et al. 2023. QTL mapping identifies novel major loci for kernel row number-associated ear fasciation, ear prolificacy and tillering in maize (Zea mays L.) Frontiers in Plant Science. 13:1017983.     Reference: January 13th, 2023
Gene Product: December 19th, 2019
Variation: February 15th, 2015
Gene Model: February 16th, 2015
1 year agoehd1 eps15 homology domain protein1:
4.10
GRMZM2G052740
Ran Fu et al. 2023. Modeling the influence of phenotypic plasticity on maize hybrid performance. Plant Commun. :100548.     Reference: January 13th, 2023
Gene Product: December 20th, 2019
Variation: December 20th, 2019
Gene Model: August 15th, 2018
1 year agosbt9 subtilisin9:
 
   Hongwei Cui et al. 2023. Genome-Wide Identification and Analysis of the Maize Serine Peptidase S8 Family Genes in Response to Drought at Seedling Stage 12:369.     Reference: January 12th, 2023
Gene Product: November 11th, 2016
1 year agosbt15 subtilisin15:
 
   Hongwei Cui et al. 2023. Genome-Wide Identification and Analysis of the Maize Serine Peptidase S8 Family Genes in Response to Drought at Seedling Stage 12:369.     Reference: January 12th, 2023
Gene Product: November 11th, 2016
1 year agonbcs7 nucleobase:cation symporter7:
 
   Hongwei Cui et al. 2023. Genome-Wide Identification and Analysis of the Maize Serine Peptidase S8 Family Genes in Response to Drought at Seedling Stage 12:369.     Reference: January 12th, 2023
Gene Product: July 14th, 2018
1 year agoll1 long primary root and lateral roots1:
 
   Wang, ZH et al. 2023. The auxin signaling pathway contributes to phosphorus-mediated zinc homeostasis in maize. BMC Plant Biology. 23:20.     Reference: January 11th, 2023
Variation: January 11th, 2023
1 year agossl1 short and sparse lateral roots1:
 
   Wang, ZH et al. 2023. The auxin signaling pathway contributes to phosphorus-mediated zinc homeostasis in maize. BMC Plant Biology. 23:20.     Reference: January 11th, 2023
Variation: January 11th, 2023
1 year agozip10 zinc-regulated, iron-regulated transporter-like protein10:
 
GRMZM2G047762
Wang, ZH et al. 2023. The auxin signaling pathway contributes to phosphorus-mediated zinc homeostasis in maize. BMC Plant Biology. 23:20.     Reference: January 11th, 2023
Gene Product: June 5th, 2019
Gene Model: September 6th, 2021
1 year agomgt12 magnesium transporter12:
 
GRMZM2G420436
Sujitra Raj Genga Raj and Kalaivani Nadarajah 2022. QTL and Candidate Genes: Techniques and Advancement in Abiotic Stress Resistance Breeding of Major Cereals. Int J Mol Sci. 24     Reference: January 10th, 2023
Gene Product: April 18th, 2016
Gene Model: April 18th, 2016
1 year agosnrkI4 SnRK1 serine threonine protein kinase 4:
 
   Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: December 4th, 2020
1 year agocipk45 calcineurin B-like-interacting protein kinase45:
 
   Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: September 1st, 2003
1 year agomyb156 MYB-transcription factor 156:
1.04
GRMZM2G147698
Basnet, B et al. 2022. Quantitative trait loci and candidate genes for iron and zinc bio-fortification in genetically diverse germplasm of maize (Zea mays L): A systematic review. Heliyon. 8:e12593.     Reference: January 9th, 2023
Variation: August 9th, 2021
Gene Model: August 8th, 2021
1 year agocipk20 calcineurin B-like-interacting protein kinase20:
7.02
GRMZM2G129018
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: July 6th, 2021
1 year agomgs2 male gametophyte-specific2:
4.09
GRMZM2G080056
Basnet, B et al. 2022. Quantitative trait loci and candidate genes for iron and zinc bio-fortification in genetically diverse germplasm of maize (Zea mays L): A systematic review. Heliyon. 8:e12593.     Reference: January 9th, 2023
Gene Product: September 1st, 2003
Variation: September 2nd, 2014
Gene Model: September 2nd, 2014
1 year agozip5 zinc-regulated, iron-regulated transporter-like protein5:
6.04
GRMZM2G064382
Basnet, B et al. 2022. Quantitative trait loci and candidate genes for iron and zinc bio-fortification in genetically diverse germplasm of maize (Zea mays L): A systematic review. Heliyon. 8:e12593.     Reference: January 9th, 2023
Gene Product: June 5th, 2019
Variation: September 1st, 2003
Gene Model: August 25th, 2018
1 year agocipk8 calcineurin B-like-interacting protein kinase8:
 
GRMZM2G383240
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Variation: June 2nd, 2017
Gene Model: June 2nd, 2017
1 year agocipk2 calcineurin B-like-interacting protein kinase2:
7.05
GRMZM2G166658
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: March 18th, 2021
1 year agoabp5 auxin binding protein homolog5:
10.03
GRMZM2G078508
Han, XH et al. 2023. Transcriptome analysis revealed sh2 gene mutation leads reduced zein protein accumulation in maize endosperm Genet Resour Crop Evol. :doi: 10.1007/s10722-022-01526-z.     Reference: January 9th, 2023
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: January 3rd, 2018
1 year agohda110 histone deacetylase:
7.01
GRMZM2G107309
Basnet, B et al. 2022. Quantitative trait loci and candidate genes for iron and zinc bio-fortification in genetically diverse germplasm of maize (Zea mays L): A systematic review. Heliyon. 8:e12593.     Reference: January 9th, 2023
Gene Product: February 12th, 2020
Variation: September 1st, 2003
Gene Model: November 6th, 2014
1 year agocipk10 calcineurin B-like-interacting protein kinase10:
1.04
GRMZM2G044038
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: February 7th, 2020
1 year agocl39004_1  :
3.09
GRMZM5G848696
Fedorin, DN et al. 2022. Effect of Salt Stress on the Activity, Expression, and Promoter Methylation of Succinate Dehydrogenase and Succinic Semialdehyde Dehydrogenase in Maize (Zea mays L.) Leaves. Plants. 12     Reference: January 9th, 2023
Variation: September 25th, 2007
Gene Model: August 20th, 2021
1 year agolpa3 low phytic acid3:
 
GRMZM2G361593
Colombo, F et al. 2023. Study of Seed Ageing in lpa1-1 Maize Mutant and Two Possible Approaches to Restore Seed Germination. Int J Mol Sci. 24:732.     Reference: January 9th, 2023
Gene Product: April 22nd, 2013
Variation: April 22nd, 2013
Gene Model: April 22nd, 2013
1 year agokwl1 kiwellin1:
 
GRMZM2G073114
Paul Klemm et al. 2022. Evolutionary reconstruction, nomenclature and functional meta-analysis of the Kiwellin protein family. Frontiers in Plant Science. 13:1034708.     Reference: January 9th, 2023
Gene Product: January 22nd, 2019
Gene Model: January 21st, 2019
1 year agozip3 zinc-regulated, iron-regulated transporter-like protein3:
 
GRMZM2G045849
Basnet, B et al. 2022. Quantitative trait loci and candidate genes for iron and zinc bio-fortification in genetically diverse germplasm of maize (Zea mays L): A systematic review. Heliyon. 8:e12593.     Reference: January 9th, 2023
Gene Product: June 5th, 2019
Gene Model: June 5th, 2019
1 year agostk5 serine/threonine-protein kinase5:
 
GRMZM2G334791
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: April 14th, 2018
Gene Model: September 19th, 2019
1 year agocipk22 calcineurin B-like-interacting protein kinase22:
 
GRMZM2G041463
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: January 7th, 2020
1 year agokwl2 kiwellin2:
 
GRMZM2G305329
Paul Klemm et al. 2022. Evolutionary reconstruction, nomenclature and functional meta-analysis of the Kiwellin protein family. Frontiers in Plant Science. 13:1034708.     Reference: January 9th, 2023
Gene Product: January 22nd, 2019
Gene Model: May 1st, 2020
1 year agokwl12 kiwellin12:
 
GRMZM2G429533
Paul Klemm et al. 2022. Evolutionary reconstruction, nomenclature and functional meta-analysis of the Kiwellin protein family. Frontiers in Plant Science. 13:1034708.     Reference: January 9th, 2023
Gene Product: January 22nd, 2019
Gene Model: May 1st, 2020
1 year agokwl6 kiwellin6:
 
GRMZM2G331599
Paul Klemm et al. 2022. Evolutionary reconstruction, nomenclature and functional meta-analysis of the Kiwellin protein family. Frontiers in Plant Science. 13:1034708.     Reference: January 9th, 2023
Gene Product: January 22nd, 2019
Gene Model: May 1st, 2020
1 year agokwl4 kiwellin4:
 
GRMZM2G432697
Paul Klemm et al. 2022. Evolutionary reconstruction, nomenclature and functional meta-analysis of the Kiwellin protein family. Frontiers in Plant Science. 13:1034708.     Reference: January 9th, 2023
Gene Product: January 22nd, 2019
Gene Model: May 1st, 2020
1 year agoysl3 yellow stripe-like transporter3:
 
GRMZM2G026391
Basnet, B et al. 2022. Quantitative trait loci and candidate genes for iron and zinc bio-fortification in genetically diverse germplasm of maize (Zea mays L): A systematic review. Heliyon. 8:e12593.     Reference: January 9th, 2023
Gene Product: September 1st, 2003
Gene Model: July 8th, 2020
1 year agocipk42 calcineurin B-like-interacting protein kinase42:
 
GRMZM2G011919
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Variation: October 17th, 2020
Gene Model: October 17th, 2020
1 year agocipk30 calcineurin B-like-interacting protein kinase30:
 
GRMZM2G136400
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: July 16th, 2021
1 year agocipk37 calcineurin B-like-interacting protein kinase37:
 
GRMZM2G136410
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: July 16th, 2021
1 year agocipk1 calcineurin B-like-interacting protein kinase1:
 
GRMZM2G170120
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
1 year agocipk6 calcineurin B-like-interacting protein kinase6:
 
GRMZM2G429940
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
1 year agocipk31 calcineurin B-like-interacting protein kinase31:
 
GRMZM2G021517
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
1 year agocipk9 calcineurin B-like-interacting protein kinase9:
 
GRMZM2G055575
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
1 year agocipk11 calcineurin B-like-interacting protein kinase11:
 
GRMZM2G315769
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
1 year agocipk12 calcineurin B-like-interacting protein kinase12:
 
GRMZM2G176519
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
1 year agocipk13 calcineurin B-like-interacting protein kinase13:
 
GRMZM2G159752
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
1 year agocipk26 calcineurin B-like-interacting protein kinase26:
 
GRMZM2G409658
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
1 year agocipk32 calcineurin B-like-interacting protein kinase32:
 
GRMZM2G051103
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
1 year agocipk35 calcineurin B-like-interacting protein kinase35:
 
GRMZM2G316136
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
1 year agocipk36 calcineurin B-like-interacting protein kinase36:
 
GRMZM2G308752
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
1 year agocipk19 calcineurin B-like-interacting protein kinase19:
 
GRMZM2G096115
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
1 year agocipk27 calcineurin B-like-interacting protein kinase27:
 
GRMZM2G052067
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
1 year agocipk39 calcineurin B-like-interacting protein kinase39:
 
GRMZM2G356128
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
1 year agocipk40 calcineurin B-like-interacting protein kinase40:
 
GRMZM2G371276
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
1 year agocipk43 calcineurin B-like-interacting protein kinase43:
 
GRMZM2G137407
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
1 year agocipk41 calcineurin B-like-interacting protein kinase41:
 
GRMZM2G156150
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
1 year agocipk34 calcineurin B-like-interacting protein kinase34:
7.04
GRMZM2G114575
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: July 29th, 2020
1 year agocipk5 calcineurin B-like-interacting protein kinase5:
8.03
GRMZM2G390896
Feng, X et al. 2022. Genome-wide identification of sucrose non-fermenting-1-related protein kinase genes in maize and their responses to abiotic stresses. Frontiers in Plant Science. 13:1087839.     Reference: January 9th, 2023
Gene Product: August 25th, 2018
Gene Model: June 6th, 2020
1 year agoebf4 EIN3-binding F-box protein4:
4.09
GRMZM2G481452
Yan, PS et al. 2023. Integrating BSA-Seq with RNA-Seq Reveals a Novel Fasciated Ear5 Mutant in Maize Int J Mol Sci. 24:1182.     Reference: January 7th, 2023
Gene Product: April 27th, 2022
Gene Model: April 26th, 2020
1 year agozim19 ZIM-transcription factor 19:
 
   Yan, PS et al. 2023. Integrating BSA-Seq with RNA-Seq Reveals a Novel Fasciated Ear5 Mutant in Maize Int J Mol Sci. 24:1182.     Reference: January 7th, 2023
Gene Product: February 24th, 2021
1 year agosaur52 small auxin up RNA52:
 
GRMZM2G050080
Yan, PS et al. 2023. Integrating BSA-Seq with RNA-Seq Reveals a Novel Fasciated Ear5 Mutant in Maize Int J Mol Sci. 24:1182.     Reference: January 7th, 2023
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
1 year agoebf3 EIN3-binding F-box protein3:
9.03
GRMZM2G171616
Yan, PS et al. 2023. Integrating BSA-Seq with RNA-Seq Reveals a Novel Fasciated Ear5 Mutant in Maize Int J Mol Sci. 24:1182.     Reference: January 7th, 2023
Gene Product: April 27th, 2022
Variation: March 31st, 2005
Gene Model: January 14th, 2019
1 year agohk4 histidine kinase4:
1.10
GRMZM2G155767
Yan, PS et al. 2023. Integrating BSA-Seq with RNA-Seq Reveals a Novel Fasciated Ear5 Mutant in Maize Int J Mol Sci. 24:1182.     Reference: January 7th, 2023
Gene Product: May 20th, 2016
Gene Model: May 20th, 2016
1 year agocl48777_1h  :
10.04
GRMZM2G045234
    Gene Product: January 6th, 2023
Gene Model: July 12th, 2022
1 year agosi618060g08  :
1.02
   Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Variation: September 25th, 2007
1 year agopprsmr1 pentatricopeptide repeat smr1:
2.02
   Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.   AT1G79490 (TAIR) Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: July 1st, 2019
1 year agodek19 defective kernel19:
6.01 - 6.08
GRMZM2G111984
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: November 13th, 2018
Gene Model: November 13th, 2018
1 year agoemp4 empty pericarp4:
1.10
GRMZM2G092198
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.   LOC_Os03g51840 (MSU/TIGR)
Os03g0728200 (Gramene)
Reference: January 5th, 2023
Gene Product: September 15th, 2012
Variation: November 21st, 2016
Gene Model: November 29th, 2011
1 year agosmu2 suppressors of mec-8 and unc-52 (C.elegans):
10.00
GRMZM2G430745
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: September 22nd, 2009
Variation: November 17th, 2009
Gene Model: January 22nd, 2016
1 year agodek605 defective kernel605:
5.05
GRMZM2G114241
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: August 21st, 2020
Gene Model: July 10th, 2018
1 year agodof3 DNA binding with one finger3:
6.01
GRMZM2G179069
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: September 1st, 2003
Variation: April 18th, 2008
Gene Model: August 29th, 2013
1 year agoumc1200  :
1.00
GRMZM2G127635
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Variation: September 29th, 2016
Gene Model: September 29th, 2016
1 year agocr4 crinkly4:
10.02
   Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: September 1st, 2003
Variation: July 17th, 2006
1 year agonot1 neighbor of tga1:
 
AC233751.1_FG002
Guan, JC et al. 2022. Maize domestication phenotypes reveal strigolactone networks coordinating grain size evolution with kernel-bearing cupule architecture. Plant Cell. :doi: 10.1093/plcell/koac370.     Reference: January 5th, 2023
Gene Product: July 5th, 2019
Variation: May 7th, 2015
Gene Model: October 28th, 2011
1 year agosrs7 SHI/STY (SRS)-transcription factor 7:
 
   Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: April 27th, 2015
1 year agomterf10 mTERF domain protein10:
 
   Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: February 19th, 2015
Variation: June 14th, 2019
1 year agoumc1713  :
7.03
AC208031.3_FG002
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Variation: September 1st, 2003
Gene Model: September 7th, 2018
1 year agoemp6 empty pericarp6:
2.07
GRMZM2G048392
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: July 4th, 2014
Variation: February 24th, 2017
Gene Model: February 24th, 2017
1 year agommp135  :
1.02
GRMZM2G015219
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Variation: August 4th, 2017
Gene Model: August 4th, 2017
1 year agoinvan7 invertase alkaline neutral7:
1.03
GRMZM2G084940
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: June 12th, 2018
Gene Model: August 11th, 2017
1 year agomez3 enhancer of zeste3:
1.03
GRMZM2G043484
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: June 30th, 2017
Variation: September 1st, 2014
Gene Model: September 2nd, 2014
1 year agoAY110016  :
10.07
GRMZM2G037226
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Variation: September 25th, 2007
Gene Model: December 29th, 2017
1 year agorlua7 RNA pseudouridine synthase7:
1.03
GRMZM2G158261
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: February 28th, 2022
Variation: July 29th, 2004
Gene Model: June 8th, 2017
1 year agohda109 histone deacetylase:
2.08
GRMZM2G457889
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: February 12th, 2020
Variation: November 11th, 2014
Gene Model: November 11th, 2014
1 year agosmk10 small kernel10:
2.01
   Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: September 25th, 2021
Variation: September 25th, 2021
1 year agoppr2263 pentatricopeptide repeat protein2263:
 
AC215198.3_FG002
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.   Loc_Os06g08660 (MSU/TIGR)
Os06g0185800 (Gramene)
Reference: January 5th, 2023
Gene Product: February 15th, 2012
Variation: February 16th, 2012
Gene Model: February 15th, 2012
1 year agoemb17 embryo defective17:
 
GRMZM2G119691
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: March 8th, 2013
Variation: August 15th, 2013
Gene Model: March 8th, 2013
1 year agoemp5 empty pericarp5:
 
GRMZM2G060536
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: March 12th, 2013
Gene Model: March 11th, 2013
1 year agoemb14 embryo defective 14:
 
GRMZM2G384293
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.   AT3G47450 (TAIR)
LOC_Os02g01440 (MSU/TIGR)
Reference: January 5th, 2023
Gene Product: July 5th, 2013
Variation: October 13th, 2015
Gene Model: July 1st, 2013
1 year agockx12 cytokinin oxidase12:
 
GRMZM2G008792
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: July 19th, 2021
Gene Model: March 25th, 2014
1 year agoemp7 empty pericarp7:
 
GRMZM2G041231
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: August 26th, 2015
Variation: August 26th, 2015
Gene Model: August 26th, 2015
1 year agoreas1 ribosome export associated1:
 
GRMZM2G092001
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.   AT1G67120 (TAIR) Reference: January 5th, 2023
Gene Product: December 12th, 2015
Variation: December 12th, 2015
Gene Model: December 10th, 2015
1 year agoarm4 armadillo domain protein4:
4.10
GRMZM2G019284
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.   At1G32260 (TAIR) Reference: January 5th, 2023
Gene Product: February 1st, 2021
Variation: December 7th, 2019
Gene Model: December 7th, 2019
1 year agoemp17 empty pericarp17:
 
AC212684.3_FG012
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: March 28th, 2017
Gene Model: January 26th, 2017
1 year agodek36 defective kernel36:
 
GRMZM5G892151
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.   At4g21300 (TAIR) Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: March 13th, 2017
Gene Model: March 13th, 2017
1 year agoemp10 empty pericarp10:
 
GRMZM2G078416
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: March 28th, 2017
Gene Model: March 28th, 2017
1 year agodek38 defective kernel38:
 
GRMZM2G048851
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.   At2g39910 (TAIR) Reference: January 5th, 2023
Gene Product: June 2nd, 2017
Variation: May 2nd, 2017
Gene Model: May 2nd, 2017
1 year agoppr78 pentatricopeptide repeat78:
 
GRMZM2G070381
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: September 25th, 2017
Gene Model: September 25th, 2017
1 year agodek39 defective kernel39:
 
GRMZM2G345128
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: October 6th, 2017
Gene Model: October 6th, 2017
1 year agoemp11 empty pericarp11:
 
GRMZM2G353301
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: October 6th, 2017
Gene Model: October 6th, 2017
1 year agoemp108 empty pericarp108:
 
GRMZM2G388778
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.   AT5G18390 (TAIR)
LOC_Os08g41380 (MSU/TIGR)
Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: September 1st, 2018
Gene Model: July 13th, 2018
1 year agoemp18 empty pericarp18:
 
GRMZM2G471348
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: September 1st, 2018
Gene Model: September 1st, 2018
1 year agoocd1 oxalyl-CoA decarboxylase1:
 
GRMZM2G175171
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: September 12th, 2018
Variation: September 12th, 2018
Gene Model: September 12th, 2018
1 year agoemp12 empty pericarp12:
 
GRMZM2G023071
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: December 8th, 2018
Gene Model: December 8th, 2018
1 year agoppr27 pentatricopeptide repeat protein27:
 
GRMZM2G353195
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Gene Model: December 21st, 2018
1 year agodek41 defective kernel41:
 
GRMZM2G127015
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: May 24th, 2019
Gene Model: April 25th, 2019
1 year agoemp602 empty pericarp602:
 
GRMZM2G464510
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.   AT1G02420 (TAIR)
LOC_Os03g11020 (MSU/TIGR)
Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: January 11th, 2021
Gene Model: May 13th, 2019
1 year agodek44 defective kernel44:
 
GRMZM5G866627
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: June 11th, 2019
Variation: June 11th, 2019
Gene Model: June 11th, 2019
1 year agosmk6 small kernel6:
 
GRMZM2G307262
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: June 14th, 2019
Gene Model: June 14th, 2019
1 year agosmk4 small kernel4:
 
GRMZM2G459532
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: July 24th, 2019
Gene Model: July 24th, 2019
1 year agoemp21 empty pericarp21:
 
GRMZM5G849971
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: August 3rd, 2019
Gene Model: August 3rd, 2019
1 year agodek140 defective kernel140:
 
GRMZM2G304965
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: September 7th, 2019
Gene Model: September 7th, 2019
1 year agoqpt1 quinolinate phosphoribosyltransferase1:
 
GRMZM5G887647
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: September 16th, 2019
Variation: September 16th, 2019
Gene Model: September 16th, 2019
1 year agoppr20 pentatricopeptide repeat 20:
 
GRMZM5G818978
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: November 2nd, 2019
Gene Model: November 2nd, 2019
1 year agodek55 defective kernel55:
 
AC201815.4_FG001
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: May 25th, 2020
Gene Model: May 25th, 2020
1 year agoppr101 pentatricopeptide repeat potein101:
 
GRMZM2G023999
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: June 3rd, 2020
Gene Model: June 3rd, 2020
1 year agoppr231 pentatricopeptide repeat potein231:
 
GRMZM2G018757
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: June 3rd, 2020
Gene Model: June 3rd, 2020
1 year agoppr18 pentatricopeptide repeat protein18:
 
GRMZM2G438456
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: June 5th, 2020
Gene Model: June 5th, 2020
1 year agoppr14 pentatricopeptide repeat protein14:
 
GRMZM2G106384
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: June 12th, 2020
Gene Model: June 12th, 2020
1 year agoppr166 pentatricopeptide repeat protein166:
 
GRMZM2G411786
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: June 13th, 2020
Gene Model: June 13th, 2020
1 year agodek46 defective kernel46:
 
GRMZM2G456114
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: June 22nd, 2020
Gene Model: June 20th, 2020
1 year agosmk7 small kernel7:
 
   Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: June 26th, 2020
Variation: June 26th, 2020
1 year agoppr170 pentatricopeptide repeat protein170:
 
GRMZM2G480380
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: July 27th, 2020
Gene Model: July 27th, 2020
1 year agoemp2441 empty pericarp2441:
 
AC213050.3_FG001
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: September 1st, 2003
Variation: December 30th, 2020
Gene Model: December 30th, 2020
1 year agoppr73 pentatricopeptide repeat protein73:
 
GRMZM2G389645
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: January 4th, 2021
Gene Model: January 4th, 2021
1 year agoemp25 empty pericarp25:
 
GRMZM2G312954
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: January 11th, 2021
Gene Model: January 11th, 2021
1 year agocobl9 cobra-like9:
 
GRMZM2G465188
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
1 year agoppr22 pentatricopeptide repeat protein22:
 
GRMZM2G019689
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: August 16th, 2021
Gene Model: August 16th, 2021
1 year agorcl1 RNA 3'-terminal phosphate cyclase1:
 
GRMZM2G051626
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: February 16th, 2022
Variation: February 16th, 2022
Gene Model: February 16th, 2022
1 year agodek504 defective kernel504:
 
GRMZM2G326263
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: February 24th, 2022
Gene Model: February 24th, 2022
1 year agoemp80 empty pericarp80:
 
GRMZM5G851564
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: March 4th, 2022
Gene Model: March 4th, 2022
1 year agoppr278 pentatricopeptide repeat protein278:
 
GRMZM2G406165
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: March 11th, 2022
Gene Model: March 11th, 2022
1 year agodek48 defective kernel48:
 
GRMZM2G017197
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: December 27th, 2016
Variation: March 12th, 2022
Gene Model: March 12th, 2022
1 year agoubl1 U6 biogenesis like1:
 
GRMZM2G156575
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: November 8th, 2016
Variation: November 7th, 2016
Gene Model: November 7th, 2016
1 year agodek47 defective kernel47:
7.03
GRMZM2G114748
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Gene Product: August 2nd, 2021
Variation: August 2nd, 2021
Gene Model: July 26th, 2020
1 year agoIDP1468  :
1.08
GRMZM2G013600
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Variation: March 31st, 2005
Gene Model: February 14th, 2019
1 year agoIDP147  :
2.04
GRMZM2G171372
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Variation: March 31st, 2005
Gene Model: February 19th, 2019
1 year agoIDP372  :
10.04
GRMZM2G080199
Cheng Wang et al. 2023. A Systemic Investigation of Genetic Architecture and Gene Resources Controlling Kernel Size-Related Traits in Maize Int J Mol Sci. 24:1025.     Reference: January 5th, 2023
Variation: March 31st, 2005
Gene Model: January 2nd, 2018
1 year agocals2 callose synthase2:
 
   Zhong, WS et al. 2023. The maize callose synthase SLM1 is critical for a normal growth by controlling the vascular development Mol Breed. 43:2.     Reference: January 4th, 2023
Gene Product: July 5th, 2021
Variation: January 4th, 2023
1 year agosweet2a sugars will eventually be exported transporter2a:
3.07
   Vinodh Kumar PN et al. 2023. Unravelling structural, functional, evolutionary and genetic basis of SWEET transporters regulating abiotic stress tolerance in maize Int J Biol Macromol. :doi: 10.1016/j.ijbiomac.2022.12.326.     Reference: January 4th, 2023
Gene Product: November 4th, 2015
Variation: May 17th, 2021
1 year agoalte2 acyl-lipid thioesterase2:
 
   Rebecca S. Kalinger et al. 2023. Determinants of substrate specificity in a catalytically diverse family of acyl-ACP thioesterases from plants BMC Plant Biology. 23:1.     Reference: January 3rd, 2023
Gene Product: January 3rd, 2023
1 year agoalte3 acyl-lipid thioesterase3:
 
   Rebecca S. Kalinger et al. 2023. Determinants of substrate specificity in a catalytically diverse family of acyl-ACP thioesterases from plants BMC Plant Biology. 23:1.     Reference: January 3rd, 2023
Gene Product: January 3rd, 2023
1 year agoalte4 acyl-lipid thioesterase4:
 
   Rebecca S. Kalinger et al. 2023. Determinants of substrate specificity in a catalytically diverse family of acyl-ACP thioesterases from plants BMC Plant Biology. 23:1.     Reference: January 3rd, 2023
Gene Product: January 3rd, 2023
1 year agoskl2 shikimate kinase-like2:
 
   Yuqing Liu et al. 2022. Overexpression of the maize genes ZmSKL1 and ZmSKL2 positively regulates drought stress tolerance in transgenic Arabidopsis. Plant Cell. :doi: 10.1007/s00299-022-02974-8.   AT2G35500 (TAIR) Reference: January 2nd, 2023
Gene Product: January 2nd, 2023
1 year agostp9 sugar transport protein9:
 
   Yu-xin Ma et al. 2022. Identification and expression analysis of sugar transporter family genes reveal the role of ZmSTP2 and ZmSTP20 in maize disease resistance J Integr Agric. :doi: 10.1016/j.jia.2022.12.014.     Reference: January 2nd, 2023
Gene Product: January 2nd, 2023
1 year agostp10 sugar transport protein10:
2.04
GRMZM2G442523
Yu-xin Ma et al. 2022. Identification and expression analysis of sugar transporter family genes reveal the role of ZmSTP2 and ZmSTP20 in maize disease resistance J Integr Agric. :doi: 10.1016/j.jia.2022.12.014.     Reference: January 2nd, 2023
Gene Product: January 2nd, 2023
Gene Model: April 26th, 2021
1 year agoact3 actin3:
 
GRMZM2G104017
Ioana V Ardelean et al. 2023. Maize cytolines as models to study the impact of different cytoplasms on gene expression under heat stress conditions. BMC Plant Biology. 23:4.     Reference: January 2nd, 2023
Gene Product: September 1st, 2003
Gene Model: April 29th, 2020
1 year agoamt10 ammonium transporter10:
 
GRMZM2G473697
Chenling He et al. 2022. Aboveground herbivory does not affect mycorrhiza-dependent nitrogen acquisition from soil but inhibits mycorrhizal network-mediated nitrogen interplant transfer in maize. Frontiers in Plant Science. 13:1080416.     Reference: January 2nd, 2023
Gene Product: July 8th, 2013
Gene Model: May 21st, 2019
1 year agocchh139 Cys2His2 Zinc Finger139:
 
   Li, SN et al. 2023. Analysis of the C2H2 Gene Family in Maize (Zea mays L.) under Cold Stress: Identification and Expression Life. 13:122.     Reference: December 31st, 2022
Gene Product: November 14th, 2022
1 year agocchh152 Cys2His2 Zinc Finger152:
 
   Li, SN et al. 2023. Analysis of the C2H2 Gene Family in Maize (Zea mays L.) under Cold Stress: Identification and Expression Life. 13:122.     Reference: December 31st, 2022
Gene Product: November 14th, 2022
1 year agocchh140 Cys2His2 Zinc Finger140:
 
   Li, SN et al. 2023. Analysis of the C2H2 Gene Family in Maize (Zea mays L.) under Cold Stress: Identification and Expression Life. 13:122.     Reference: December 31st, 2022
Gene Product: November 14th, 2022
1 year agocchh147 Cys2His2 Zinc Finger147:
 
   Li, SN et al. 2023. Analysis of the C2H2 Gene Family in Maize (Zea mays L.) under Cold Stress: Identification and Expression Life. 13:122.     Reference: December 31st, 2022
Gene Product: November 14th, 2022
1 year agocchh1 Cys2His2 Zinc Finger1:
8.05
   Li, SN et al. 2023. Analysis of the C2H2 Gene Family in Maize (Zea mays L.) under Cold Stress: Identification and Expression Life. 13:122.     Reference: December 31st, 2022
Gene Product: November 14th, 2022
1 year agoumc1402  :
10.04
GRMZM2G074793
Li, SN et al. 2023. Analysis of the C2H2 Gene Family in Maize (Zea mays L.) under Cold Stress: Identification and Expression Life. 13:122.     Reference: December 31st, 2022
Variation: September 1st, 2003
Gene Model: December 14th, 2017
1 year agocchh4 Cys2His2 Zinc Finger4:
 
   Li, SN et al. 2023. Analysis of the C2H2 Gene Family in Maize (Zea mays L.) under Cold Stress: Identification and Expression Life. 13:122.     Reference: December 31st, 2022
Gene Product: November 14th, 2022
1 year agojmj11 JUMONJI-transcription factor 11:
 
   Li, SN et al. 2023. Analysis of the C2H2 Gene Family in Maize (Zea mays L.) under Cold Stress: Identification and Expression Life. 13:122.     Reference: December 31st, 2022
Gene Product: April 3rd, 2019
1 year agoumc1734  :
1.05
GRMZM2G114667
Li, SN et al. 2023. Analysis of the C2H2 Gene Family in Maize (Zea mays L.) under Cold Stress: Identification and Expression Life. 13:122.     Reference: December 31st, 2022
Variation: September 1st, 2003
Gene Model: December 8th, 2016
1 year agocchh134 Cys2His2 Zinc Finger134:
2.03
GRMZM2G170520
Li, SN et al. 2023. Analysis of the C2H2 Gene Family in Maize (Zea mays L.) under Cold Stress: Identification and Expression Life. 13:122.     Reference: December 31st, 2022
Gene Product: November 14th, 2022
Gene Model: February 15th, 2018
1 year agoznf3 zinc finger protein3:
 
AC206217.2_FG006
Li, SN et al. 2023. Analysis of the C2H2 Gene Family in Maize (Zea mays L.) under Cold Stress: Identification and Expression Life. 13:122.     Reference: December 31st, 2022
Gene Product: November 14th, 2022
Gene Model: July 5th, 2019
1 year agoznf4 zinc finger protein4:
 
GRMZM2G048154
Li, SN et al. 2023. Analysis of the C2H2 Gene Family in Maize (Zea mays L.) under Cold Stress: Identification and Expression Life. 13:122.     Reference: December 31st, 2022
Gene Product: November 14th, 2022
Gene Model: June 5th, 2017
1 year agoznf5 zinc finger protein5:
 
GRMZM2G001205
Li, SN et al. 2023. Analysis of the C2H2 Gene Family in Maize (Zea mays L.) under Cold Stress: Identification and Expression Life. 13:122.     Reference: December 31st, 2022
Gene Product: November 14th, 2022
Gene Model: June 5th, 2017
1 year agoznf6 zinc finger protein6:
 
GRMZM5G804618
Li, SN et al. 2023. Analysis of the C2H2 Gene Family in Maize (Zea mays L.) under Cold Stress: Identification and Expression Life. 13:122.     Reference: December 31st, 2022
Gene Product: November 14th, 2022
Gene Model: June 5th, 2017
1 year agocchh6 Cys2His2 Zinc Finger6:
 
AC205250.3_FG004
Li, SN et al. 2023. Analysis of the C2H2 Gene Family in Maize (Zea mays L.) under Cold Stress: Identification and Expression Life. 13:122.     Reference: December 31st, 2022
Gene Product: November 14th, 2022
Gene Model: August 23rd, 2018
1 year agoyy1 yin-yang1:
4.05
   Li, SN et al. 2023. Analysis of the C2H2 Gene Family in Maize (Zea mays L.) under Cold Stress: Identification and Expression Life. 13:122.   At4g06634 (TAIR) Reference: December 31st, 2022
Variation: February 12th, 2008
1 year agoIDP575  :
7.02
   Li, SN et al. 2023. Analysis of the C2H2 Gene Family in Maize (Zea mays L.) under Cold Stress: Identification and Expression Life. 13:122.     Reference: December 31st, 2022
Variation: March 31st, 2005
1 year agocyp44 cytochrome P450 44:
 
GRMZM2G162758
Cao, P et al. 2022. Sci. Rep. 12:5057     Reference: March 23rd, 2022
Gene Product: December 30th, 2022
Gene Model: February 13th, 2020
1 year agocyp21 cytochrome P-450 21:
 
GRMZM2G054603
Inze, D et al. 2015. Patent AU2014276938   AT5G09970 (TAIR)
LOC_Os10g26340 (MSU/TIGR)
Reference: November 2nd, 2021
Gene Product: December 30th, 2022
Gene Model: March 16th, 2017
1 year agocyp28 cytochrome P-450 28:
 
GRMZM2G132478
Huang, HL et al. 2021. J Hazardous Materials pp.doi: 10.1016/j.jhazmat.2021.127610     Reference: October 28th, 2021
Gene Product: December 30th, 2022
Gene Model: January 7th, 2020
1 year agocyp31 cytochrome P450 CYP81A37:
 
GRMZM2G118809
Ding, YZ, et al. 2020. Nature Plants. 0:doi: 10.1038/s41477-020-00787-9     Reference: July 28th, 2021
Gene Product: December 30th, 2022
Gene Model: October 27th, 2020
1 year agocyp32 cytochrome P450 CYP81A38:
 
GRMZM2G154870
Ding, YZ, et al. 2020. Nature Plants. 0:doi: 10.1038/s41477-020-00787-9     Reference: July 28th, 2021
Gene Product: December 30th, 2022
Gene Model: October 27th, 2020
1 year agocyp34 cytochrome P450 34:
 
GRMZM2G178351
Perez, VC et al. 2021. New Phytol pp.doi: 10.1111/nph.17447     Reference: May 7th, 2021
Gene Product: December 30th, 2022
Gene Model: May 7th, 2021
1 year agocyp36 cytochrome P450 36:
 
GRMZM2G011156
Mita Khatun et al. 2022. Genome-wide association studies revealed complex genetic architecture and breeding perspective of maize ear traits BMC Plant Biology. 22:537.     Reference: November 18th, 2022
Gene Product: December 30th, 2022
Gene Model: May 7th, 2021
1 year agocyp38 cytochrome P450 38:
 
GRMZM2G170047
Choe, E et al. 2016. PLoS One 11:e0147418     Reference: December 31st, 2021
Gene Product: December 30th, 2022
Gene Model: October 26th, 2021
1 year agocyp39 cytochrome P450 39:
 
GRMZM2G407650
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: December 30th, 2022
Gene Model: November 1st, 2021
1 year agocyp42 cytochrome P450 42:
 
   Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: December 30th, 2022
1 year agocyp43 cytochrome P450 43:
 
AC233853.1_FG003
Aboobucker, SI et al. 2021. Frontiers Plant Sci 12:732216   AT2G34500 (TAIR) Reference: November 3rd, 2021
Gene Product: December 30th, 2022
Variation: November 3rd, 2021
Gene Model: November 3rd, 2021
1 year agoga2ox7 gibberellin 2-oxidase7:
 
GRMZM2G427618
Bingying Leng et al. 2023. Molecular Mechanism of Gibberellins in Mesocotyl Elongation Response to Deep-Sowing Stress in Sweet Maize Curr Issues Mol Biol. 45:197-211.     Reference: December 29th, 2022
Gene Product: October 27th, 2014
Gene Model: October 27th, 2014
1 year agodhn16 dehydrin16:
 
GRMZM2G052364
Chen, NN et al. 2022. Overexpression of ZmDHN15 Enhances Cold Tolerance in Yeast and Arabidopsis Int J Mol Sci. 24:480.     Reference: December 28th, 2022
Gene Product: August 5th, 2017
Gene Model: December 13th, 2021
1 year agoIDP2350  :
8.06
GRMZM2G134256
Wang, S et al. 2023. Genetic structure and molecular mechanism underlying the stalk lodging traits in maize (Zea mays L.) Computational and Structural Biotechnology Journal. 21:485-494.     Reference: December 25th, 2022
Variation: March 31st, 2005
Gene Model: September 3rd, 2019
1 year agoerdh4 early response to dehydration 15-homolog4:
 
   Huaming Duan et al. 2022. Genome-Wide Characterization and Function Analysis of ZmERD15 GenesNULL Response to Saline Stress in Zea mays L. Int J Mol Sci. 23:15721.     Reference: December 23rd, 2022
Gene Product: December 23rd, 2022
1 year agoerdh5 early response to dehydration 15-homolog5:
 
   Huaming Duan et al. 2022. Genome-Wide Characterization and Function Analysis of ZmERD15 GenesNULL Response to Saline Stress in Zea mays L. Int J Mol Sci. 23:15721.     Reference: December 23rd, 2022
Gene Product: December 23rd, 2022
1 year agoerdh2 early response to dehydration 15-homolog2:
7.05
GRMZM2G037189
Huaming Duan et al. 2022. Genome-Wide Characterization and Function Analysis of ZmERD15 GenesNULL Response to Saline Stress in Zea mays L. Int J Mol Sci. 23:15721.     Reference: December 23rd, 2022
Gene Product: December 23rd, 2022
Gene Model: July 30th, 2020
1 year agoerdh1 early response to dehydration 15-homolog1:
2.08
GRMZM2G327692
Huaming Duan et al. 2022. Genome-Wide Characterization and Function Analysis of ZmERD15 GenesNULL Response to Saline Stress in Zea mays L. Int J Mol Sci. 23:15721.     Reference: December 23rd, 2022
Gene Product: December 23rd, 2022
Gene Model: March 3rd, 2021
1 year agoatg13c autophagy13c:
2.03
GRMZM5G825909
Liu, SY et al. 2022. MODAS: exploring maize germplasm with multi-omics data association studies. Science Bulletin. 67:903-906.     Reference: December 22nd, 2022
Variation: September 25th, 2007
Gene Model: December 28th, 2021
1 year agoatg16L autophagy16L:
1.10
GRMZM2G078252
Liu, SY et al. 2022. MODAS: exploring maize germplasm with multi-omics data association studies. Science Bulletin. 67:903-906.     Reference: December 22nd, 2022
Variation: August 15th, 2017
Gene Model: August 15th, 2017
1 year agoptac17 plastid transcriptionally active17:
 
GRMZM2G180418
Birdseye, D , et al. 2021. Proc Natl Acad Sci, USA. 118:e2109332118   At1g15730 (TAIR)
LOC_Os02g55630 (MSU/TIGR)
Reference: December 2nd, 2021
Gene Product: December 21st, 2022
Gene Model: May 21st, 2017
1 year agoptac18 plastid transcriptionally active18:
 
GRMZM2G306104
Birdseye, D , et al. 2021. Proc Natl Acad Sci, USA. 118:e2109332118   At2g32180 (TAIR)
LOC_Os02g54360 (MSU/TIGR)
Reference: December 2nd, 2021
Gene Product: December 21st, 2022
Gene Model: May 21st, 2017
1 year agoptac5 plastid transcriptionally active5:
 
GRMZM2G031721
Birdseye, D , et al. 2021. Proc Natl Acad Sci, USA. 118:e2109332118     Reference: December 2nd, 2021
Gene Product: December 21st, 2022
Gene Model: November 16th, 2021
1 year agoptac6 plastid transcriptionally active6:
 
GRMZM5G829928
Birdseye, D , et al. 2021. Proc Natl Acad Sci, USA. 118:e2109332118     Reference: December 2nd, 2021
Gene Product: December 21st, 2022
Gene Model: November 16th, 2021
1 year agoptac7 plastid transcriptionally active7:
 
GRMZM2G159924
    Gene Product: December 21st, 2022
Gene Model: November 16th, 2021
1 year agoptac10 plastid transcriptionally active chromosome 10 homolog:
8.06
GRMZM2G091419
Kendrick, R et al. 2022. Correlated retrograde and developmental regulons implicate multiple retrograde signals as coordinators of chloroplast development in maize Plant Cell. :doi: 10.1093/plcell/koac276.   At3g48500 (TAIR) Reference: September 8th, 2022
Gene Product: December 21st, 2022
Variation: September 6th, 2021
Gene Model: September 5th, 2021
1 year agoiain1 IAA-inositol1:
5.04
GRMZM2G386155
Ciarkowska, A et al. 2022. Auxin homeostasis in maize (Zea mays) is regulated via 1-O-indole-3-acetyl-myo-inositol synthesis at early stages of seedling development and under abiotic stress. Planta. 257:23.     Reference: December 21st, 2022
Gene Product: December 17th, 2019
Gene Model: December 17th, 2019
1 year agoproh9 prolyl 4-hydroxylase 9:
6.06
GRMZM2G157267
Kolkman, JM et al. 2022. Brown midrib mutant and genome-wide association analysis uncover lignin genes for disease resistance in maize. Plant Genome. :e20278.     Reference: December 19th, 2022
Gene Product: June 18th, 2021
Gene Model: January 1st, 2020
1 year agoIDP1954  :
2.03
GRMZM2G114276
Kolkman, JM et al. 2022. Brown midrib mutant and genome-wide association analysis uncover lignin genes for disease resistance in maize. Plant Genome. :e20278.     Reference: December 19th, 2022
Variation: March 31st, 2005
Gene Model: February 19th, 2019
1 year agoIDP22  :
8.01
GRMZM2G154896
Kolkman, JM et al. 2022. Brown midrib mutant and genome-wide association analysis uncover lignin genes for disease resistance in maize. Plant Genome. :e20278.     Reference: December 19th, 2022
Variation: March 31st, 2005
Gene Model: January 16th, 2021
1 year agophot1 blue-light receptor phototropin 1:
3.09
   Gao, ZF et al. 2022. A dynamic phosphoproteomic analysis provides insight into the C4 plant maize (Zea mays L.) response to natural diurnal changes. Plant J. :doi: 10.1111/tpj.16047.     Reference: December 16th, 2022
Gene Product: May 13th, 2014
Variation: May 23rd, 2005
1 year agombd120 methyl binding domain120:
6.05
GRMZM2G069254
Gao, ZF et al. 2022. A dynamic phosphoproteomic analysis provides insight into the C4 plant maize (Zea mays L.) response to natural diurnal changes. Plant J. :doi: 10.1111/tpj.16047.     Reference: December 16th, 2022
Gene Product: December 24th, 2015
Variation: April 27th, 2018
Gene Model: July 7th, 2015
1 year agocol11 C2C2-CO-like-transcription factor 11:
2.04
GRMZM2G095598
Gao, ZF et al. 2022. A dynamic phosphoproteomic analysis provides insight into the C4 plant maize (Zea mays L.) response to natural diurnal changes. Plant J. :doi: 10.1111/tpj.16047.     Reference: December 16th, 2022
Gene Product: June 18th, 2018
Variation: October 9th, 2018
Gene Model: June 18th, 2018
1 year agohak7 potassium high-affinity transporter7:
 
GRMZM2G020766
Gao, ZF et al. 2022. A dynamic phosphoproteomic analysis provides insight into the C4 plant maize (Zea mays L.) response to natural diurnal changes. Plant J. :doi: 10.1111/tpj.16047.     Reference: December 16th, 2022
Gene Product: March 12th, 2020
Gene Model: March 12th, 2020
1 year agopck2 phosphoenolpyruvate carboxykinase homolog2:
9.06
GRMZM5G870932
Gao, ZF et al. 2022. A dynamic phosphoproteomic analysis provides insight into the C4 plant maize (Zea mays L.) response to natural diurnal changes. Plant J. :doi: 10.1111/tpj.16047.     Reference: December 16th, 2022
Gene Product: August 7th, 2014
Variation: September 26th, 2014
Gene Model: August 8th, 2014
1 year agorop2 Rho-related protein from plants2:
4.10
GRMZM5G846811
Haoran Zhang et al. 2022. ZmRop1 participates in maize defense response to the damage of Spodoptera frugiperda larvae through mediating ROS and soluble phenol production Plant Direct. :doi: 10.1002/pld3.468.     Reference: December 15th, 2022
Gene Product: April 1st, 2004
Variation: January 25th, 2011
Gene Model: November 2nd, 2011
1 year agorop3 Rho-related protein from plants 3:
6.05
GRMZM2G100505
Haoran Zhang et al. 2022. ZmRop1 participates in maize defense response to the damage of Spodoptera frugiperda larvae through mediating ROS and soluble phenol production Plant Direct. :doi: 10.1002/pld3.468.     Reference: December 15th, 2022
Gene Product: April 1st, 2004
Variation: May 28th, 2013
Gene Model: January 1st, 2015
1 year agorop4 Rho-related protein from plants 4:
5.00
GRMZM2G375002
Haoran Zhang et al. 2022. ZmRop1 participates in maize defense response to the damage of Spodoptera frugiperda larvae through mediating ROS and soluble phenol production Plant Direct. :doi: 10.1002/pld3.468.     Reference: December 15th, 2022
Gene Product: April 1st, 2004
Gene Model: January 1st, 2015
1 year agoccp18 cysteine protease18:
4.03
   Wang, CL et al. 2022. A Novel Senescence-Specific Gene (ZmSAG39) Negatively Regulates Darkness and Drought Responses in Maize Int J Mol Sci. 23:15984.     Reference: December 15th, 2022
Gene Product: October 11th, 2021
Variation: July 29th, 2004
1 year agonbcs23 nucleobase:cation symporter23:
 
GRMZM2G437859
Sun, GC et al. 2022. Genome of Paspalum vaginatum and the role of trehalose mediated autophagy in increasing maize biomass. Nature communications. 13:7731.     Reference: December 15th, 2022
Gene Product: July 14th, 2018
Gene Model: July 14th, 2018
1 year agorop5 Rho-related protein from plants 5:
9.01
GRMZM2G102946
Haoran Zhang et al. 2022. ZmRop1 participates in maize defense response to the damage of Spodoptera frugiperda larvae through mediating ROS and soluble phenol production Plant Direct. :doi: 10.1002/pld3.468.     Reference: December 15th, 2022
Gene Product: April 1st, 2004
Gene Model: January 1st, 2015
1 year agorop8 Rho-related protein from plants 8:
 
GRMZM2G001953
Haoran Zhang et al. 2022. ZmRop1 participates in maize defense response to the damage of Spodoptera frugiperda larvae through mediating ROS and soluble phenol production Plant Direct. :doi: 10.1002/pld3.468.     Reference: December 15th, 2022
Gene Product: April 1st, 2004
Variation: January 25th, 2011
Gene Model: January 1st, 2015
1 year agorop9 Rho-related protein from plants 9:
5.03
GRMZM5G803949
Haoran Zhang et al. 2022. ZmRop1 participates in maize defense response to the damage of Spodoptera frugiperda larvae through mediating ROS and soluble phenol production Plant Direct. :doi: 10.1002/pld3.468.     Reference: December 15th, 2022
Gene Product: April 1st, 2004
Gene Model: November 2nd, 2011
1 year agosams1 S-adenosylmethionine synthetase1:
 
GRMZM2G117198
Onyino Johnmark et al. 2022. Fighting Death for Living: Recent Advances in Molecular and Genetic Mechanisms Underlying Maize Lethal Necrosis Disease Resistance Viruses. 14:2765.     Reference: December 14th, 2022
Gene Product: January 27th, 2020
Gene Model: January 27th, 2020
1 year agotgl1 triacylglycerol lipase1:
 
GRMZM2G165179
Onyino Johnmark et al. 2022. Fighting Death for Living: Recent Advances in Molecular and Genetic Mechanisms Underlying Maize Lethal Necrosis Disease Resistance Viruses. 14:2765.     Reference: December 14th, 2022
Gene Product: March 18th, 2022
Gene Model: March 18th, 2022
1 year agoprdx2 peroxiredoxin2:
9.03
GRMZM2G036921
Onyino Johnmark et al. 2022. Fighting Death for Living: Recent Advances in Molecular and Genetic Mechanisms Underlying Maize Lethal Necrosis Disease Resistance Viruses. 14:2765.     Reference: December 14th, 2022
Gene Product: February 4th, 2021
Gene Model: June 20th, 2020
1 year agoGRMZM5G802858  :
 
   Fan, KJ et al. 2022. ZmnMAT1, a nuclear-encoded type I maturase, is required for the splicing of mitochondrial Nad1 intron 1 and Nad4 intron 2. Frontiers in Plant Science. 13:1033869.     Reference: December 12th, 2022
Gene Product: December 13th, 2022
1 year agoGRMZM2G080512  :
 
   Fan, KJ et al. 2022. ZmnMAT1, a nuclear-encoded type I maturase, is required for the splicing of mitochondrial Nad1 intron 1 and Nad4 intron 2. Frontiers in Plant Science. 13:1033869.     Reference: December 12th, 2022
Gene Product: December 13th, 2022
1 year agorh3 RNA helicase3:
 
GRMZM2G415491
Asakura, Y et al. 2012. Plant Physiol 159:961-974   At5g26742 (TAIR)
LOC_Os03g61220 (MSU/TIGR)
Os03g0827700 (Gramene)
Reference: June 20th, 2013
Gene Product: December 13th, 2022
Gene Model: May 17th, 2012
1 year agoZm00001d031050  :
 
GRMZM2G107984
Fan, KJ et al. 2022. ZmnMAT1, a nuclear-encoded type I maturase, is required for the splicing of mitochondrial Nad1 intron 1 and Nad4 intron 2. Frontiers in Plant Science. 13:1033869.     Reference: December 12th, 2022
Gene Product: December 13th, 2022
Gene Model: December 30th, 2020
1 year agogpm332  :
3.04
   Fan, KJ et al. 2022. ZmnMAT1, a nuclear-encoded type I maturase, is required for the splicing of mitochondrial Nad1 intron 1 and Nad4 intron 2. Frontiers in Plant Science. 13:1033869.     Reference: December 12th, 2022
Gene Product: December 13th, 2022
1 year agowpk1 wound-responsive and phytochrome-regulated kinase1:
 
   Guozhen He et al. 2005. A novel receptor kinase involved in jasmonate-mediated wound and phytochrome signaling in maize coleoptiles. 46:870-83.   AT2G16250 (TAIR)
LOC_Os03g56250 (MSU/TIGR)
Os03g0773300 (Gramene)
Reference: December 12th, 2022
Gene Product: July 10th, 2019
1 year agoprp22 pathogenesis-related protein22:
 
   Ma, LG et al. 2022. Genome-wide analysis of maize PR-1 gene family and expression profiles induced by plant hormones and fungal phytopathogens. American journal of translational research. 14:8315-8331.     Reference: December 12th, 2022
Gene Product: December 12th, 2022
1 year agoprp24 pathogenesis-related protein24:
 
   Ma, LG et al. 2022. Genome-wide analysis of maize PR-1 gene family and expression profiles induced by plant hormones and fungal phytopathogens. American journal of translational research. 14:8315-8331.     Reference: December 12th, 2022
Gene Product: December 12th, 2022
1 year agoprp21 pathogenesis-related protein21:
 
   Ma, LG et al. 2022. Genome-wide analysis of maize PR-1 gene family and expression profiles induced by plant hormones and fungal phytopathogens. American journal of translational research. 14:8315-8331.     Reference: December 12th, 2022
Gene Product: December 12th, 2022
1 year agoprp23 pathogenesis-related protein23:
 
   Ma, LG et al. 2022. Genome-wide analysis of maize PR-1 gene family and expression profiles induced by plant hormones and fungal phytopathogens. American journal of translational research. 14:8315-8331.     Reference: December 12th, 2022
Gene Product: December 12th, 2022
1 year agoltk2 leucine-rich transmembrane protein kinase2:
9.07
GRMZM2G330907
Guozhen He et al. 2005. A novel receptor kinase involved in jasmonate-mediated wound and phytochrome signaling in maize coleoptiles. 46:870-83.     Reference: December 12th, 2022
Gene Product: July 10th, 2019
Variation: January 10th, 2013
Gene Model: December 27th, 2016
1 year agoga2ox8 gibberellin 2-oxidase8:
 
GRMZM2G155686
Cao, Y et al. 2022. Genomic Characteristics of Elite Maize Inbred Line 18-599 and Its Transcriptional Response to Drought and Low-Temperature Stresses. Plants. 11:3242.     Reference: December 12th, 2022
Gene Product: October 27th, 2014
Gene Model: October 27th, 2014
1 year agoprp10 pathogenesis-related protein1:
 
GRMZM2G145518
Gao, Y et al. 2016. Frontiers Plant Sci 7:1716     Reference: June 13th, 2022
Gene Product: December 12th, 2022
Gene Model: September 16th, 2017
1 year agoprp12 pathogenesis-related protein12:
 
GRMZM2G008367
Ma, LG et al. 2022. Genome-wide analysis of maize PR-1 gene family and expression profiles induced by plant hormones and fungal phytopathogens. American journal of translational research. 14:8315-8331.     Reference: December 12th, 2022
Gene Product: December 12th, 2022
Gene Model: December 18th, 2017
1 year agonmat2 nuclear-encoded maturase-related factor2:
 
GRMZM2G154119
Fan, KJ et al. 2022. ZmnMAT1, a nuclear-encoded type I maturase, is required for the splicing of mitochondrial Nad1 intron 1 and Nad4 intron 2. Frontiers in Plant Science. 13:1033869.   AT5G46920 (TAIR) Reference: December 12th, 2022
Gene Product: September 1st, 2003
Gene Model: September 17th, 2020
1 year agocl24394_1  :
 
GRMZM2G054040
Fan, KJ et al. 2022. ZmnMAT1, a nuclear-encoded type I maturase, is required for the splicing of mitochondrial Nad1 intron 1 and Nad4 intron 2. Frontiers in Plant Science. 13:1033869.   AT3G27550 (TAIR) Reference: December 12th, 2022
Gene Product: November 3rd, 2020
Gene Model: September 17th, 2020
1 year agonmat1 nuclear-encoded maturase-related factor1:
 
GRMZM2G023983
Fan, KJ et al. 2022. ZmnMAT1, a nuclear-encoded type I maturase, is required for the splicing of mitochondrial Nad1 intron 1 and Nad4 intron 2. Frontiers in Plant Science. 13:1033869.     Reference: December 12th, 2022
Gene Product: September 1st, 2003
Variation: December 12th, 2022
Gene Model: December 30th, 2020
1 year agonmate4 nuclear-encoded maturase-related factor4:
 
GRMZM2G375999
Fan, KJ et al. 2022. ZmnMAT1, a nuclear-encoded type I maturase, is required for the splicing of mitochondrial Nad1 intron 1 and Nad4 intron 2. Frontiers in Plant Science. 13:1033869.     Reference: December 12th, 2022
Gene Product: September 1st, 2003
Gene Model: December 30th, 2020
1 year agomads68 MADS-transcription factor 68:
1.02
GRMZM2G059102
Yang, T et al. 2022. Regulation of seed storage protein synthesis in monocot and dicot plants: A comparative review. Molecular Plant. :doi: 10.1016/j.molp.2022.12.004.   LOC_Os03g08754 (MSU/TIGR) Reference: December 10th, 2022
Variation: April 15th, 2016
Gene Model: April 15th, 2016
1 year agotcptf15 TCP-transcription factor 15:
 
   Natanael Mansilla et al. 2022. Differential chromatin binding preference is the result of the neo-functionalization of the TB1 clade of TCP transcription factors in grasses New Phytol. :doi: 10.1111/nph.18664.     Reference: December 9th, 2022
Gene Product: September 27th, 2019
1 year agoIDP1654  :
6.02
GRMZM2G385182
Liangfa Wang et al. 2022. Comparative transcriptomics analysis at the key stage of maize ear development dissect heterosis Plant Genome. :doi: 10.1002/tpg2.20293.     Reference: December 7th, 2022
Variation: March 31st, 2005
Gene Model: June 30th, 2021
1 year agoGRMZM2G109966  :
 
   Wu, S et al. 2022. Characterization and genetic dissection of maize ear leaf midrib acquired by 3D digital technology Frontiers in Plant Science. 13:1063056.   AT1G30950 (TAIR)
LOC_Os06g45460 (MSU/TIGR)
Os06g0665400 (Gramene)
Reference: December 1st, 2022
Gene Product: April 27th, 2022
1 year agoumc1506  :
10.04
GRMZM2G057084
Wu, S et al. 2022. Characterization and genetic dissection of maize ear leaf midrib acquired by 3D digital technology Frontiers in Plant Science. 13:1063056.     Reference: December 1st, 2022
Variation: September 1st, 2003
Gene Model: December 14th, 2017
1 year agopco133463  :
5.04
GRMZM5G829738
Wu, S et al. 2022. Characterization and genetic dissection of maize ear leaf midrib acquired by 3D digital technology Frontiers in Plant Science. 13:1063056.     Reference: December 1st, 2022
Variation: September 25th, 2007
Gene Model: August 28th, 2021
1 year agomrpa18 multidrug resistance protein associated18:
 
   Li, ZL et al. 2022. Combined genome-wide association study and gene co-expression network analysis identified ZmAKINβγ1 involved in lead tolerance and accumulation in maize seedlings Int J Biol Macromol. :doi: 10.1016/j.ijbiomac.2022.11.250.     Reference: November 30th, 2022
Gene Product: July 11th, 2019
1 year agomrpa21 multidrug resistance protein associated21:
 
   Li, ZL et al. 2022. Combined genome-wide association study and gene co-expression network analysis identified ZmAKINβγ1 involved in lead tolerance and accumulation in maize seedlings Int J Biol Macromol. :doi: 10.1016/j.ijbiomac.2022.11.250.     Reference: November 30th, 2022
Gene Product: July 11th, 2019
1 year agohmg2 high mobility group box protein2:
5.06
GRMZM2G013821
Wang, WX et al. 2022. Integrating high-throughput phenotyping, GWAS and prediction models reveals the genetic architecture of plant height in maize. Molecular Plant. :doi: 10.1016/j.molp.2022.11.016.     Reference: November 30th, 2022
Gene Product: September 1st, 2003
Variation: June 24th, 2014
Gene Model: June 24th, 2014
1 year agoumc1953  :
4.05
GRMZM2G166711
Li, ZL et al. 2022. Combined genome-wide association study and gene co-expression network analysis identified ZmAKINβγ1 involved in lead tolerance and accumulation in maize seedlings Int J Biol Macromol. :doi: 10.1016/j.ijbiomac.2022.11.250.     Reference: November 30th, 2022
Variation: September 1st, 2003
Gene Model: June 8th, 2018
1 year agomha12 membrane H(+)-ATPase12:
 
GRMZM2G035520
Li, ZL et al. 2022. Combined genome-wide association study and gene co-expression network analysis identified ZmAKINβγ1 involved in lead tolerance and accumulation in maize seedlings Int J Biol Macromol. :doi: 10.1016/j.ijbiomac.2022.11.250.     Reference: November 30th, 2022
Gene Product: September 1st, 2003
Gene Model: January 10th, 2020
1 year agoakin1 AKINbetagamma-1 protein kinase1:
1.12
GRMZM2G047774
Li, ZL et al. 2022. Combined genome-wide association study and gene co-expression network analysis identified ZmAKINβγ1 involved in lead tolerance and accumulation in maize seedlings Int J Biol Macromol. :doi: 10.1016/j.ijbiomac.2022.11.250.     Reference: November 30th, 2022
Gene Product: December 4th, 2020
Variation: September 17th, 2012
Gene Model: March 3rd, 2016
1 year agopco130460  :
4.03
GRMZM2G030463
Wei, KF et al. 2014. Maize protein phosphatase gene family: identification and molecular characterization. 15:773.     Reference: November 29th, 2022
Variation: September 25th, 2007
Gene Model: April 11th, 2020
1 year agomkp1 MAP kinase phosphatase1:
 
GRMZM2G005350
Wei, KF et al. 2014. Maize protein phosphatase gene family: identification and molecular characterization. 15:773.   AT3G55270 (TAIR) Reference: November 29th, 2022
Gene Product: June 21st, 2019
Gene Model: June 21st, 2019
1 year agoptpn1 protein tyrosine phosphatase-like nucleotidase1:
 
GRMZM2G146819
Wei, KF et al. 2014. Maize protein phosphatase gene family: identification and molecular characterization. 15:773.   AT3G62010 (TAIR) Reference: November 29th, 2022
Gene Product: February 15th, 2020
Gene Model: February 15th, 2020
1 year agohcd1 3-hydroxyacyl-CoA dehydratase1:
 
GRMZM2G151087
Wei, KF et al. 2014. Maize protein phosphatase gene family: identification and molecular characterization. 15:773.     Reference: November 29th, 2022
Gene Product: June 30th, 2020
Gene Model: June 30th, 2020
1 year agoprh26 protein phosphatase homolog26:
 
GRMZM2G160237
Wei, KF et al. 2014. Maize protein phosphatase gene family: identification and molecular characterization. 15:773.     Reference: November 29th, 2022
Gene Product: October 25th, 2021
Gene Model: April 27th, 2021
1 year agoprh137 protein phosphatase homolog137:
 
GRMZM2G003096
Wei, KF et al. 2014. Maize protein phosphatase gene family: identification and molecular characterization. 15:773.   AT2G30170 (TAIR) Reference: November 29th, 2022
Gene Product: October 25th, 2021
Gene Model: November 4th, 2021
1 year agoprh123 protein phosphatase homolog123:
 
GRMZM2G053713
Wei, KF et al. 2014. Maize protein phosphatase gene family: identification and molecular characterization. 15:773.     Reference: November 29th, 2022
Gene Product: October 25th, 2021
Gene Model: November 24th, 2021
1 year agoIDP3803  :
1.09
GRMZM2G003640
Wei, KF et al. 2014. Maize protein phosphatase gene family: identification and molecular characterization. 15:773.     Reference: November 29th, 2022
Variation: March 31st, 2005
Gene Model: February 14th, 2020
1 year agoIDP3856  :
1.11
GRMZM2G062394
Wei, KF et al. 2014. Maize protein phosphatase gene family: identification and molecular characterization. 15:773.     Reference: November 29th, 2022
Variation: March 31st, 2005
Gene Model: April 9th, 2021
1 year agoptp1 protein tyrosine phosphatase1:
1.02
GRMZM2G052546
Wei, KF et al. 2014. Maize protein phosphatase gene family: identification and molecular characterization. 15:773.     Reference: November 29th, 2022
Gene Product: January 22nd, 2021
Gene Model: January 22nd, 2021
1 year agobnlg1160  :
3.06
GRMZM2G071705
Duan, HY et al. 2022. Candidate loci for leaf angle in maize revealed by a combination of genome-wide association study and meta-analysis. Frontiers in Genetics. 13:1004211.     Reference: November 28th, 2022
Variation: September 1st, 2003
Gene Model: March 21st, 2018
1 year agotubb6 beta tubulin6b:
3.06
GRMZM2G172932
Duan, HY et al. 2022. Candidate loci for leaf angle in maize revealed by a combination of genome-wide association study and meta-analysis. Frontiers in Genetics. 13:1004211.     Reference: November 28th, 2022
Gene Product: September 1st, 2003
Variation: August 4th, 2011
Gene Model: January 20th, 2015
1 year agotub5 beta tubulin5:
 
GRMZM2G133802
Yu-Ying Sun et al. 2022. Key role of reactive oxygen species-scavenging system in nitric oxide and hydrogen sulfide crosstalk-evoked thermotolerance in maize seedlings. Frontiers in Plant Science. 13:967968.     Reference: November 24th, 2022
Gene Product: September 1st, 2003
Variation: January 29th, 2011
Gene Model: August 24th, 2014
1 year agothx28 Trihelix-transcription factor 28:
 
   Long, Y et al. 2022. Transcriptomic and weighted gene co-expression network analysis of tropic and temperate maize inbred lines recovering from heat stress Plant Sci. :doi: 10.1016/j.plantsci.2022.111538.     Reference: November 23rd, 2022
Gene Product: November 9th, 2021
1 year agoer4 erecta-like4:
 
GRMZM2G364977
Long, Y et al. 2022. Transcriptomic and weighted gene co-expression network analysis of tropic and temperate maize inbred lines recovering from heat stress Plant Sci. :doi: 10.1016/j.plantsci.2022.111538.     Reference: November 23rd, 2022
Gene Product: July 10th, 2019
Gene Model: July 10th, 2019
1 year agogshs3 glutathione synthetase3:
 
GRMZM2G379252
Long, Y et al. 2022. Transcriptomic and weighted gene co-expression network analysis of tropic and temperate maize inbred lines recovering from heat stress Plant Sci. :doi: 10.1016/j.plantsci.2022.111538.     Reference: November 23rd, 2022
Gene Product: December 2nd, 2018
Gene Model: November 22nd, 2021
1 year agohmt3 homocysteine S-methyltransferase 3:
3.04
GRMZM2G152470
Kaina Lin et al. 2022. Integration of Transcriptome and Metabolome Analyses Reveals the Mechanistic Basis for Cadmium Accumulation in Maize iScience. 25:105484.     Reference: November 21st, 2022
Gene Product: July 19th, 2004
Gene Model: February 23rd, 2019
1 year agosap2 stress associated protein homolog2:
 
   Su, AQ et al. 2022. Identification and Analysis of Stress-Associated Proteins (SAPs) Protein Family and Drought Tolerance of ZmSAP8 in Transgenic Arabidopsis Int J Mol Sci. 23:14109.     Reference: November 19th, 2022
Gene Product: November 14th, 2022
1 year agoznf1 zinc finger protein1:
9.03
GRMZM5G836222
Su, AQ et al. 2022. Identification and Analysis of Stress-Associated Proteins (SAPs) Protein Family and Drought Tolerance of ZmSAP8 in Transgenic Arabidopsis Int J Mol Sci. 23:14109.     Reference: November 19th, 2022
Gene Product: November 14th, 2022
Variation: January 14th, 2019
Gene Model: January 13th, 2019
1 year agoznf11 zinc finger protein11:
4.09
GRMZM2G058866
Su, AQ et al. 2022. Identification and Analysis of Stress-Associated Proteins (SAPs) Protein Family and Drought Tolerance of ZmSAP8 in Transgenic Arabidopsis Int J Mol Sci. 23:14109.     Reference: November 19th, 2022
Gene Product: November 14th, 2022
Gene Model: April 26th, 2020
1 year agoznf12 zinc finger protein12:
7.03
GRMZM2G083894
Su, AQ et al. 2022. Identification and Analysis of Stress-Associated Proteins (SAPs) Protein Family and Drought Tolerance of ZmSAP8 in Transgenic Arabidopsis Int J Mol Sci. 23:14109.     Reference: November 19th, 2022
Gene Product: November 14th, 2022
Gene Model: December 19th, 2017
1 year agoznf14 zinc finger protein14:
1.06
GRMZM2G441903
Su, AQ et al. 2022. Identification and Analysis of Stress-Associated Proteins (SAPs) Protein Family and Drought Tolerance of ZmSAP8 in Transgenic Arabidopsis Int J Mol Sci. 23:14109.     Reference: November 19th, 2022
Gene Product: November 14th, 2022
Variation: January 18th, 2017
Gene Model: January 18th, 2017
1 year agosap7 stress associated protein homolog7:
5.04
GRMZM2G087719
Su, AQ et al. 2022. Identification and Analysis of Stress-Associated Proteins (SAPs) Protein Family and Drought Tolerance of ZmSAP8 in Transgenic Arabidopsis Int J Mol Sci. 23:14109.     Reference: November 19th, 2022
Gene Product: November 14th, 2022
Gene Model: May 15th, 2020
1 year agobnlg1879  :
5.01
GRMZM5G811408
Mita Khatun et al. 2022. Genome-wide association studies revealed complex genetic architecture and breeding perspective of maize ear traits BMC Plant Biology. 22:537.     Reference: November 18th, 2022
Variation: September 1st, 2003
Gene Model: June 16th, 2018
1 year agomab4 math-btb4:
 
GRMZM2G081441
Mita Khatun et al. 2022. Genome-wide association studies revealed complex genetic architecture and breeding perspective of maize ear traits BMC Plant Biology. 22:537.     Reference: November 18th, 2022
Gene Product: June 6th, 2014
Variation: May 12th, 2017
Gene Model: February 13th, 2017
1 year agogif3 growth-regulating-factor-interacting factor3:
10.03
   Qin, L et al. 2022. Identification and exploration of the GRF and GIF families in maize and foxtail millet Physiology and Molecular Biology of Plants. :doi: 10.1007/s12298-022-01234-z.     Reference: November 17th, 2022
Gene Product: July 6th, 2015
Variation: July 6th, 2015
1 year agotxln1 taxilin1:
 
GRMZM2G015730
Luo, BW et al. 2022. Mining synergistic genes for nutrient utilization and disease resistance in maize based on co-expression network and consensus QTLs Frontiers in Plant Science. 13:1013598.     Reference: November 17th, 2022
Gene Product: May 23rd, 2013
Gene Model: September 20th, 2017
1 year agofomt2 flavonoid O-methyltransferase 2:
 
GRMZM2G093092
Félicien Akohoue et al. 2022. Meta-analysis and co-expression analysis revealed stable QTL and candidate genes conferring resistances to Fusarium and Gibberella ear rots while reducing mycotoxin contamination in maize Frontiers in Plant Science. 13:1050891.     Reference: November 17th, 2022
Gene Product: February 16th, 2011
Gene Model: November 1st, 2021
1 year agogpm734  :
8.03
   Luo, BW et al. 2022. Mining synergistic genes for nutrient utilization and disease resistance in maize based on co-expression network and consensus QTLs Frontiers in Plant Science. 13:1013598.     Reference: November 17th, 2022
Variation: September 25th, 2007
1 year agofut7 O-fucosyltransferase7:
 
   Gengshen Chen et al. 2022. Genetic basis of resistance to southern corn leaf blight in the maize multi-parent population and diversity panel Plant Biotechnol J. :doi: 10.1111/pbi.13967.     Reference: November 16th, 2022
Gene Product: July 2nd, 2020
1 year agozfp30 putative zinc finger protein30:
4.09
GRMZM2G116079
Xu, XS, et al. 2021. 56:1-12     Reference: September 29th, 2021
Gene Product: November 14th, 2022
Variation: May 19th, 2015
Gene Model: May 19th, 2015
1 year agocchh46 Cys2His2 Zinc Finger46:
 
   Liu, WY et al. 2022. Proc Natl Acad Sci, USA 119:e2208795119     Reference: August 24th, 2022
Gene Product: November 14th, 2022
1 year agozhd10 ZF-HD-transcription factor 10:
 
   Ul Islam Md. Abir et al. 2022. Genome-Wide Identification and In Silico Analysis of ZF-HD Transcription Factor Genes in Zea mays L. Genes. 13:2112.     Reference: November 14th, 2022
Gene Product: August 24th, 2022
1 year agozhd11 ZF-HD-transcription factor 11:
 
   Ul Islam Md. Abir et al. 2022. Genome-Wide Identification and In Silico Analysis of ZF-HD Transcription Factor Genes in Zea mays L. Genes. 13:2112.     Reference: November 14th, 2022
Gene Product: August 24th, 2022
Variation: March 20th, 2021
1 year agozhd12 ZF-HD-transcription factor 12:
 
   Ul Islam Md. Abir et al. 2022. Genome-Wide Identification and In Silico Analysis of ZF-HD Transcription Factor Genes in Zea mays L. Genes. 13:2112.     Reference: November 14th, 2022
Gene Product: August 24th, 2022
1 year agozhd13 ZF-HD-transcription factor 13:
 
   Ul Islam Md. Abir et al. 2022. Genome-Wide Identification and In Silico Analysis of ZF-HD Transcription Factor Genes in Zea mays L. Genes. 13:2112.     Reference: November 14th, 2022
Gene Product: August 24th, 2022
1 year agozhd14 ZF-HD-transcription factor 14:
 
   Ul Islam Md. Abir et al. 2022. Genome-Wide Identification and In Silico Analysis of ZF-HD Transcription Factor Genes in Zea mays L. Genes. 13:2112.     Reference: November 14th, 2022
Gene Product: August 24th, 2022
1 year agozhd16 ZF-HD-transcription factor 16:
 
   Ul Islam Md. Abir et al. 2022. Genome-Wide Identification and In Silico Analysis of ZF-HD Transcription Factor Genes in Zea mays L. Genes. 13:2112.     Reference: November 14th, 2022
Gene Product: August 24th, 2022
1 year agozhd17 ZF-HD-transcription factor 17:
 
   Ul Islam Md. Abir et al. 2022. Genome-Wide Identification and In Silico Analysis of ZF-HD Transcription Factor Genes in Zea mays L. Genes. 13:2112.     Reference: November 14th, 2022
Gene Product: August 24th, 2022
1 year agozhd18 ZF-HD-transcription factor 18:
 
   Ul Islam Md. Abir et al. 2022. Genome-Wide Identification and In Silico Analysis of ZF-HD Transcription Factor Genes in Zea mays L. Genes. 13:2112.     Reference: November 14th, 2022
Gene Product: August 24th, 2022
1 year agozhd19 ZF-HD-transcription factor 19:
 
   Ul Islam Md. Abir et al. 2022. Genome-Wide Identification and In Silico Analysis of ZF-HD Transcription Factor Genes in Zea mays L. Genes. 13:2112.     Reference: November 14th, 2022
Gene Product: August 24th, 2022
1 year agozhd2 ZF-HD-transcription factor 2:
 
   Ul Islam Md. Abir et al. 2022. Genome-Wide Identification and In Silico Analysis of ZF-HD Transcription Factor Genes in Zea mays L. Genes. 13:2112.     Reference: November 14th, 2022
Gene Product: August 24th, 2022
1 year agozhd20 ZF-HD-transcription factor 20:
 
   Ul Islam Md. Abir et al. 2022. Genome-Wide Identification and In Silico Analysis of ZF-HD Transcription Factor Genes in Zea mays L. Genes. 13:2112.     Reference: November 14th, 2022
Gene Product: August 24th, 2022
1 year agozhd4 ZF-HD-transcription factor 4:
 
   Ul Islam Md. Abir et al. 2022. Genome-Wide Identification and In Silico Analysis of ZF-HD Transcription Factor Genes in Zea mays L. Genes. 13:2112.     Reference: November 14th, 2022
Gene Product: August 24th, 2022
1 year agozhd5 ZF-HD-transcription factor 5:
 
   Ul Islam Md. Abir et al. 2022. Genome-Wide Identification and In Silico Analysis of ZF-HD Transcription Factor Genes in Zea mays L. Genes. 13:2112.     Reference: November 14th, 2022
Gene Product: August 24th, 2022
1 year agozhd7 ZF-HD-transcription factor 7:
 
   Ul Islam Md. Abir et al. 2022. Genome-Wide Identification and In Silico Analysis of ZF-HD Transcription Factor Genes in Zea mays L. Genes. 13:2112.     Reference: November 14th, 2022
Gene Product: August 24th, 2022
1 year agozhd8 ZF-HD-transcription factor 8:
 
   Ul Islam Md. Abir et al. 2022. Genome-Wide Identification and In Silico Analysis of ZF-HD Transcription Factor Genes in Zea mays L. Genes. 13:2112.     Reference: November 14th, 2022
Gene Product: August 24th, 2022
1 year agozhd9 ZF-HD-transcription factor 9:
 
   Ul Islam Md. Abir et al. 2022. Genome-Wide Identification and In Silico Analysis of ZF-HD Transcription Factor Genes in Zea mays L. Genes. 13:2112.     Reference: November 14th, 2022
Gene Product: August 24th, 2022
1 year agoznf2 Zinc finger nuclease2:
9.01
GRMZM2G478553
Hawkins, JS et al. 2014. Plant J 79:375-384     Reference: September 25th, 2015
Gene Product: November 14th, 2022
Variation: September 25th, 2015
Gene Model: September 25th, 2015
1 year agorzfl1 RING zinc finger protein-like1:
9.06
   Alexandrov, NN, et al. 2009. Plant Mol Biol. 69:179-194     Reference: January 11th, 2009
Gene Product: November 14th, 2022
Variation: September 25th, 2007
1 year agozhd3 ZF-HD transcription factor homolog3:
1.07
GRMZM2G346920
Ul Islam Md. Abir et al. 2022. Genome-Wide Identification and In Silico Analysis of ZF-HD Transcription Factor Genes in Zea mays L. Genes. 13:2112.     Reference: November 14th, 2022
Gene Product: August 24th, 2022
Gene Model: February 1st, 2019
1 year agoznfn1 zinc finger protein1:
 
GRMZM2G086277
  At5g52010 (TAIR)
LOC_Os06g07020 (MSU/TIGR)
Gene Product: November 14th, 2022
Gene Model: May 21st, 2017
1 year agosap5 stress associated protein homolog5:
 
GRMZM2G071042
Qiankun Fu et al. 2022. Comprehensive Identification and Functional Analysis of Stress-Associated Protein (SAP) Genes in Osmotic Stress in Maize Int J Mol Sci. 23:14010.     Reference: November 14th, 2022
Gene Product: November 14th, 2022
Gene Model: June 17th, 2019
1 year agosert1 serrate ortholog1:
 
GRMZM2G132780
Prigge, MJ; Wagner, DR. 2001. Plant Cell 13:1263-1280   AT2G27100 (TAIR) Reference: April 15th, 2020
Gene Product: November 14th, 2022
Gene Model: April 15th, 2020
1 year agosert3 serrate ortholog3:
 
GRMZM2G156099
Prigge, MJ; Wagner, DR. 2001. Plant Cell 13:1263-1280   AT2G27100 (TAIR) Reference: April 15th, 2020
Gene Product: November 14th, 2022
Gene Model: April 15th, 2020
1 year agosert4 serrate ortholog4:
 
GRMZM5G817439
Prigge, MJ; Wagner, DR. 2001. Plant Cell 13:1263-1280   AT2G27100 (TAIR) Reference: April 15th, 2020
Gene Product: November 14th, 2022
Gene Model: April 15th, 2020
1 year agozhd22 ZF-HD-transcription factor 22:
 
GRMZM2G141031
Liu, WY et al. 2022. Proc Natl Acad Sci, USA 119:e2208795119   AT5G65410 (TAIR) Reference: August 24th, 2022
Gene Product: November 14th, 2022
Gene Model: August 24th, 2022
1 year agocchh7 Cys2His2 Zinc Finger7:
7.01
GRMZM2G144645
Li, CB et al. 2018. Plant Cell pp.doi: 10.1105/tpc.18.00422     Reference: September 24th, 2018
Gene Product: November 14th, 2022
Gene Model: September 24th, 2018
1 year agomyb2 myb transcription factor2:
3.05
   Jianjian Chen et al. 2022. Identification of Genetic Variations and Candidate Genes Responsible for Stalk Sugar Content and Agronomic Traits in Fresh Corn via GWAS across Multiple Environments Int J Mol Sci. 23:13490.     Reference: November 11th, 2022
Gene Product: September 1st, 2003
Variation: January 30th, 2013
1 year agocsu1026  :
4.05
GRMZM2G169207
Jianjian Chen et al. 2022. Identification of Genetic Variations and Candidate Genes Responsible for Stalk Sugar Content and Agronomic Traits in Fresh Corn via GWAS across Multiple Environments Int J Mol Sci. 23:13490.     Reference: November 11th, 2022
Variation: September 1st, 2003
Gene Model: April 16th, 2020
1 year agopgl51 polygalacturonase51:
8.03
GRMZM2G098912
Jianjian Chen et al. 2022. Identification of Genetic Variations and Candidate Genes Responsible for Stalk Sugar Content and Agronomic Traits in Fresh Corn via GWAS across Multiple Environments Int J Mol Sci. 23:13490.     Reference: November 11th, 2022
Gene Product: October 4th, 2021
Gene Model: July 10th, 2021
1 year agogpat2 glycerol-3-phosphate acyltransferase2:
 
GRMZM2G147917
Jianjian Chen et al. 2022. Identification of Genetic Variations and Candidate Genes Responsible for Stalk Sugar Content and Agronomic Traits in Fresh Corn via GWAS across Multiple Environments Int J Mol Sci. 23:13490.     Reference: November 11th, 2022
Gene Product: March 25th, 2019
Gene Model: March 25th, 2019
1 year agopme14 pectin methylesterase14:
 
GRMZM2G017555
Jianjian Chen et al. 2022. Identification of Genetic Variations and Candidate Genes Responsible for Stalk Sugar Content and Agronomic Traits in Fresh Corn via GWAS across Multiple Environments Int J Mol Sci. 23:13490.     Reference: November 11th, 2022
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
1 year agoskus12 skewed root growth similar12:
 
GRMZM2G049693
Jianjian Chen et al. 2022. Identification of Genetic Variations and Candidate Genes Responsible for Stalk Sugar Content and Agronomic Traits in Fresh Corn via GWAS across Multiple Environments Int J Mol Sci. 23:13490.     Reference: November 11th, 2022
Gene Product: October 9th, 2020
Gene Model: October 9th, 2020
1 year agoacb8 Acyl-CoA-binding protein8:
 
GRMZM2G351160
Jianjian Chen et al. 2022. Identification of Genetic Variations and Candidate Genes Responsible for Stalk Sugar Content and Agronomic Traits in Fresh Corn via GWAS across Multiple Environments Int J Mol Sci. 23:13490.     Reference: November 11th, 2022
Gene Product: February 15th, 2021
Gene Model: February 15th, 2021
1 year agoperk13 proline-rich extensin-like receptor kinase13:
10.07
GRMZM2G001934
Jianjian Chen et al. 2022. Identification of Genetic Variations and Candidate Genes Responsible for Stalk Sugar Content and Agronomic Traits in Fresh Corn via GWAS across Multiple Environments Int J Mol Sci. 23:13490.     Reference: November 11th, 2022
Gene Product: September 7th, 2022
Gene Model: July 10th, 2022
1 year agobub3 budding inhibited by benzimidazoles homolog3:
9.02
GRMZM5G899300
Yunfeng Zhao et al. 2022. Gene-Based Genome-Wide Association Study Identified Genes for Agronomic Traits in Maize Biology. 11:1649.     Reference: November 11th, 2022
Variation: January 16th, 2017
Gene Model: January 15th, 2017
1 year agomyb118 MYB-transcription factor 118:
3.05
GRMZM2G160840
Ma, CR et al. 2022. ZmMYC2s play important roles in maize responses to simulated herbivory and jasmonate J Integr Plant Biol. :doi: 10.1111/jipb.13404.     Reference: November 9th, 2022
Variation: September 25th, 2007
Gene Model: August 19th, 2021
1 year agolrt1 lateral rootless1:
2.00 - 2.03
   Baer, M et al. 2022. Maize lateral rootless 1 encodes a homolog of the DCAF protein subunit of the CUL4-based E3 ubiquitin ligase complex New Phytol. :doi: 10.1111/nph.18599.     Reference: November 8th, 2022
Gene Product: November 26th, 2019
Variation: November 8th, 2022
1 year agoccp19 cysteine protease19:
 
GRMZM2G130053
Zhang, FQ et al. 2022. Comparative Transcriptomic Reveals the Molecular Mechanism of Maize Hybrid Zhengdan538 in Response to Water Deficit Physiol Plant. :doi: 10.1111/ppl.13818.     Reference: November 8th, 2022
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
1 year agoosca13 hyperosmolality-gated calcium-permeable channels13:
 
   Yuanyang Li et al. 2022. Preliminary Expression Analysis of the OSCA Gene Family in Maize and Their Involvement in Temperature Stress Int J Mol Sci. 23:13658.     Reference: November 7th, 2022
Gene Product: January 6th, 2020
1 year agomas1 malate synthase1:
2.04
GRMZM2G102183
Yang, HL et al. 2021. Plant Physiol pp.doi: 10.1093/plphys/kiab557     Reference: November 7th, 2022
Gene Product: September 1st, 2003
Variation: January 10th, 2013
Gene Model: November 20th, 2014
1 year agoosca6 hyperosmolality-gated calcium-permeable channels6:
3.04
GRMZM2G163059
Yuanyang Li et al. 2022. Preliminary Expression Analysis of the OSCA Gene Family in Maize and Their Involvement in Temperature Stress Int J Mol Sci. 23:13658.     Reference: November 7th, 2022
Gene Product: January 6th, 2020
Gene Model: April 3rd, 2018
1 year agotip4a tonoplast intrinsic protein4:
6.05
GRMZM2G103945
Pankievicz, VCS et al. 2022. Nitrogen fixation and mucilage production on maize aerial roots is controlled by aerial root development and border cell functions Frontiers in Plant Science. 13:977056.     Reference: November 7th, 2022
Gene Product: January 27th, 2022
Variation: July 10th, 2015
Gene Model: February 5th, 2015
1 year agotip4b tonoplast intrinsic protein4:
8.04
GRMZM2G108273
Pankievicz, VCS et al. 2022. Nitrogen fixation and mucilage production on maize aerial roots is controlled by aerial root development and border cell functions Frontiers in Plant Science. 13:977056.     Reference: November 7th, 2022
Gene Product: January 27th, 2022
Variation: August 27th, 2015
Gene Model: February 5th, 2015
1 year agohon104a histone one (H1):
9.03
GRMZM2G069911
Yang, HL et al. 2021. Plant Physiol pp.doi: 10.1093/plphys/kiab557     Reference: November 7th, 2022
Variation: September 1st, 2003
Gene Model: December 19th, 2021
1 year agotrpp3 trehalose-6-phosphate phosphatase3:
 
GRMZM2G117564
Yang, HL et al. 2021. Plant Physiol pp.doi: 10.1093/plphys/kiab557     Reference: November 7th, 2022
Gene Product: October 3rd, 2020
Gene Model: September 15th, 2013
1 year agoamt4 ammonium transporter4:
 
GRMZM2G062024
Pankievicz, VCS et al. 2022. Nitrogen fixation and mucilage production on maize aerial roots is controlled by aerial root development and border cell functions Frontiers in Plant Science. 13:977056.     Reference: November 7th, 2022
Gene Product: July 8th, 2013
Gene Model: May 10th, 2018
1 year agoosca2 hyperosmolality-gated calcium-permeable channels2:
 
GRMZM2G021194
Yuanyang Li et al. 2022. Preliminary Expression Analysis of the OSCA Gene Family in Maize and Their Involvement in Temperature Stress Int J Mol Sci. 23:13658.     Reference: November 7th, 2022
Gene Product: January 6th, 2020
Gene Model: January 6th, 2020
1 year agoosca4 hyperosmolality-gated calcium-permeable channels4:
 
GRMZM2G181206
Yuanyang Li et al. 2022. Preliminary Expression Analysis of the OSCA Gene Family in Maize and Their Involvement in Temperature Stress Int J Mol Sci. 23:13658.     Reference: November 7th, 2022
Gene Product: January 6th, 2020
Gene Model: January 6th, 2020
1 year agoosca5 hyperosmolality-gated calcium-permeable channels5:
 
GRMZM2G128641
Yuanyang Li et al. 2022. Preliminary Expression Analysis of the OSCA Gene Family in Maize and Their Involvement in Temperature Stress Int J Mol Sci. 23:13658.     Reference: November 7th, 2022
Gene Product: January 6th, 2020
Gene Model: January 6th, 2020
1 year agoosca7 hyperosmolality-gated calcium-permeable channels7:
 
GRMZM2G409093
Yuanyang Li et al. 2022. Preliminary Expression Analysis of the OSCA Gene Family in Maize and Their Involvement in Temperature Stress Int J Mol Sci. 23:13658.     Reference: November 7th, 2022
Gene Product: January 6th, 2020
Gene Model: January 6th, 2020
1 year agoosca8 hyperosmolality-gated calcium-permeable channels8:
 
GRMZM2G164470
Yuanyang Li et al. 2022. Preliminary Expression Analysis of the OSCA Gene Family in Maize and Their Involvement in Temperature Stress Int J Mol Sci. 23:13658.     Reference: November 7th, 2022
Gene Product: January 6th, 2020
Gene Model: January 6th, 2020
1 year agoosca9 hyperosmolality-gated calcium-permeable channels9:
 
GRMZM2G039186
Yuanyang Li et al. 2022. Preliminary Expression Analysis of the OSCA Gene Family in Maize and Their Involvement in Temperature Stress Int J Mol Sci. 23:13658.     Reference: November 7th, 2022
Gene Product: January 6th, 2020
Gene Model: January 6th, 2020
1 year agoosca10 hyperosmolality-gated calcium-permeable channels10:
 
GRMZM2G402708
Yuanyang Li et al. 2022. Preliminary Expression Analysis of the OSCA Gene Family in Maize and Their Involvement in Temperature Stress Int J Mol Sci. 23:13658.     Reference: November 7th, 2022
Gene Product: January 6th, 2020
Gene Model: January 6th, 2020
1 year agoosca12 hyperosmolality-gated calcium-permeable channels12:
 
GRMZM2G059891
Yuanyang Li et al. 2022. Preliminary Expression Analysis of the OSCA Gene Family in Maize and Their Involvement in Temperature Stress Int J Mol Sci. 23:13658.     Reference: November 7th, 2022
Gene Product: January 6th, 2020
Gene Model: January 6th, 2020
1 year agotom5 transporter of mugineic acid5:
 
GRMZM2G170302
Pankievicz, VCS et al. 2022. Nitrogen fixation and mucilage production on maize aerial roots is controlled by aerial root development and border cell functions Frontiers in Plant Science. 13:977056.     Reference: November 7th, 2022
Gene Product: September 23rd, 2016
Gene Model: January 18th, 2022
1 year agoosca3 hyperosmolality-gated calcium-permeable channels3:
8.03
GRMZM2G456000
Yuanyang Li et al. 2022. Preliminary Expression Analysis of the OSCA Gene Family in Maize and Their Involvement in Temperature Stress Int J Mol Sci. 23:13658.     Reference: November 7th, 2022
Gene Product: January 6th, 2020
Gene Model: January 6th, 2020
1 year agoIDP288  :
3.04
GRMZM2G063688
Pankievicz, VCS et al. 2022. Nitrogen fixation and mucilage production on maize aerial roots is controlled by aerial root development and border cell functions Frontiers in Plant Science. 13:977056.     Reference: November 7th, 2022
Variation: March 31st, 2005
Gene Model: February 23rd, 2019
1 year agoeng1 endo-1,3-1,4-beta-D-glucanase1:
4.05
GRMZM2G073079
Pankievicz, VCS et al. 2022. Nitrogen fixation and mucilage production on maize aerial roots is controlled by aerial root development and border cell functions Frontiers in Plant Science. 13:977056.     Reference: November 7th, 2022
Variation: May 20th, 2009
Gene Model: June 1st, 2017
1 year agoaaap35 amino acid/auxin permease35:
5.06
GRMZM2G074053
Pankievicz, VCS et al. 2022. Nitrogen fixation and mucilage production on maize aerial roots is controlled by aerial root development and border cell functions Frontiers in Plant Science. 13:977056.     Reference: November 7th, 2022
Gene Product: March 31st, 2021
Gene Model: May 22nd, 2020
1 year agocal2 calmodulin2:
8.01
   Hu, HX et al. 2022. Allele-specific expression reveals multiple paths to highland adaptation in maize Mol Biol Evol. :doi: 10.1093/molbev/msac239.     Reference: November 3rd, 2022
Gene Product: September 1st, 2003
Variation: September 10th, 2012
1 year agoumc1548  :
4.05
GRMZM2G065908
Hu, HX et al. 2022. Allele-specific expression reveals multiple paths to highland adaptation in maize Mol Biol Evol. :doi: 10.1093/molbev/msac239.     Reference: November 3rd, 2022
Variation: September 1st, 2003
Gene Model: April 17th, 2020
1 year agovte7a vitamin E synthesis7a:
2.08
GRMZM5G898684
Tanaka, R et al. 2022. Leveraging prior biological knowledge improves prediction of tocochromanols in maize grain Plant Genome. :doi: 10.1002/tpg2.20276.   AT5G39220 (TAIR) Reference: November 2nd, 2022
Gene Product: May 31st, 2022
Variation: June 8th, 2022
Gene Model: February 20th, 2019
1 year agofbn1 fibrillin1:
1.05
GRMZM2G003318
Tanaka, R et al. 2022. Leveraging prior biological knowledge improves prediction of tocochromanols in maize grain Plant Genome. :doi: 10.1002/tpg2.20276.     Reference: November 2nd, 2022
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: July 27th, 2016
1 year agocki5 cyclin-dependent kinase inhibitor5:
5.07
GRMZM2G101613
Friero, I et al. 2022. Transcriptomic and hormonal analysis of the roots of maize seedlings grown hydroponically at low temperature Plant Sci. :doi: 10.1016/j.plantsci.2022.111525.     Reference: November 2nd, 2022
Gene Product: March 8th, 2017
Gene Model: March 7th, 2017
1 year agovte7b vitamin E synthesis7b:
 
GRMZM5G898684
Tanaka, R et al. 2022. Leveraging prior biological knowledge improves prediction of tocochromanols in maize grain Plant Genome. :doi: 10.1002/tpg2.20276.   AT5G39220 (TAIR) Reference: November 2nd, 2022
Gene Product: May 31st, 2022
Variation: June 8th, 2022
Gene Model: May 31st, 2022
1 year agoatp1(mt) ATP synthase subunit 1:
 
   Chamusco, KC et al. 2022. Developmentally regulated mitochondrial biogenesis and cell death competence in maize pollen BMC Plant Biology. 22:508.     Reference: November 1st, 2022
Gene Product: September 1st, 2003
1 year agoatp2(mt) ATP synthase subunit 2:
 
   Chamusco, KC et al. 2022. Developmentally regulated mitochondrial biogenesis and cell death competence in maize pollen BMC Plant Biology. 22:508.     Reference: November 1st, 2022
Gene Product: June 5th, 2021
1 year agocoxII(mtNA) cytochrome c oxidase subunit II:
 
   Chamusco, KC et al. 2022. Developmentally regulated mitochondrial biogenesis and cell death competence in maize pollen BMC Plant Biology. 22:508.     Reference: November 1st, 2022
Gene Product: September 1st, 2003
1 year agoumc1744  :
1.11
GRMZM2G073155
Li, TC et al. 2022. Weighted gene co-expression network analysis reveals key module and hub genes associated with the anthocyanin biosynthesis in maize pericarp Frontiers in Plant Science. 13:1013412.     Reference: October 31st, 2022
Variation: September 1st, 2003
Gene Model: March 2nd, 2016
1 year agombd109 methyl binding domain109:
5.03
GRMZM2G112679
Li, TC et al. 2022. Weighted gene co-expression network analysis reveals key module and hub genes associated with the anthocyanin biosynthesis in maize pericarp Frontiers in Plant Science. 13:1013412.     Reference: October 31st, 2022
Gene Product: December 24th, 2015
Variation: September 1st, 2003
Gene Model: December 24th, 2015
1 year agosaur2 small auxin up RNA2:
 
GRMZM2G156470
Jiang, ZZ et al. 2022. The Integration of Metabolomics and Transcriptomics Provides New Insights for the Identification of Genes Key to Auxin Synthesis at Different Growth Stages of Maize Int J Mol Sci. 23:13195.     Reference: October 31st, 2022
Gene Product: November 26th, 2021
Gene Model: March 25th, 2020
1 year agohis302 histone H3 family2:
 
GRMZM2G475899
Li, TC et al. 2022. Weighted gene co-expression network analysis reveals key module and hub genes associated with the anthocyanin biosynthesis in maize pericarp Frontiers in Plant Science. 13:1013412.     Reference: October 31st, 2022
Gene Product: June 15th, 2021
Gene Model: June 3rd, 2021
1 year agoprmt1 protein arginine methyltransferase1:
 
   Ling, QQ et al. 2022. Genome-Wide Identification of Maize Protein Arginine Methyltransferase Genes and Functional Analysis of ZmPRMT1 Reveal Essential Roles in Arabidopsis Flowering Regulation and Abiotic Stress Tolerance Int J Mol Sci. 23:12793.     Reference: October 24th, 2022
Gene Product: October 24th, 2022
1 year agoprmt4 protein arginine methyltransferase4:
 
   Ling, QQ et al. 2022. Genome-Wide Identification of Maize Protein Arginine Methyltransferase Genes and Functional Analysis of ZmPRMT1 Reveal Essential Roles in Arabidopsis Flowering Regulation and Abiotic Stress Tolerance Int J Mol Sci. 23:12793.     Reference: October 24th, 2022
Gene Product: October 24th, 2022
1 year agoprmt5 protein arginine methyltransferase5:
 
   Ling, QQ et al. 2022. Genome-Wide Identification of Maize Protein Arginine Methyltransferase Genes and Functional Analysis of ZmPRMT1 Reveal Essential Roles in Arabidopsis Flowering Regulation and Abiotic Stress Tolerance Int J Mol Sci. 23:12793.     Reference: October 24th, 2022
Gene Product: October 24th, 2022
1 year agoprmt6 protein arginine methyltransferase6:
 
   Ling, QQ et al. 2022. Genome-Wide Identification of Maize Protein Arginine Methyltransferase Genes and Functional Analysis of ZmPRMT1 Reveal Essential Roles in Arabidopsis Flowering Regulation and Abiotic Stress Tolerance Int J Mol Sci. 23:12793.     Reference: October 24th, 2022
Gene Product: October 24th, 2022
1 year agoprmt8 protein arginine methyltransferase8:
 
GRMZM2G003038
Ling, QQ et al. 2022. Genome-Wide Identification of Maize Protein Arginine Methyltransferase Genes and Functional Analysis of ZmPRMT1 Reveal Essential Roles in Arabidopsis Flowering Regulation and Abiotic Stress Tolerance Int J Mol Sci. 23:12793.     Reference: October 24th, 2022
Gene Product: October 24th, 2022
Variation: September 1st, 2003
Gene Model: July 22nd, 2020
1 year agoprmt2 protein arginine methyltransferase2:
4.10
GRMZM2G169927
Ling, QQ et al. 2022. Genome-Wide Identification of Maize Protein Arginine Methyltransferase Genes and Functional Analysis of ZmPRMT1 Reveal Essential Roles in Arabidopsis Flowering Regulation and Abiotic Stress Tolerance Int J Mol Sci. 23:12793.     Reference: October 24th, 2022
Gene Product: October 24th, 2022
Gene Model: May 27th, 2021
1 year agoprmt7 protein arginine methyltransferase7:
6.01
GRMZM2G080542
Ling, QQ et al. 2022. Genome-Wide Identification of Maize Protein Arginine Methyltransferase Genes and Functional Analysis of ZmPRMT1 Reveal Essential Roles in Arabidopsis Flowering Regulation and Abiotic Stress Tolerance Int J Mol Sci. 23:12793.     Reference: October 24th, 2022
Gene Product: October 24th, 2022
Gene Model: July 10th, 2020
1 year agogst53 glutathione S-transferase53:
 
   Xiaomin Liu et al. 2022. Role of ZmGST Gene Family Involved in Nicosulfuron Stress Tolerance Revealed by Genomic and Transcriptomic Analyses Agronomy. 12:2598.     Reference: October 23rd, 2022
Gene Product: September 1st, 2003
1 year agogst54 glutathione S-transferase54:
 
   Xiaomin Liu et al. 2022. Role of ZmGST Gene Family Involved in Nicosulfuron Stress Tolerance Revealed by Genomic and Transcriptomic Analyses Agronomy. 12:2598.     Reference: October 23rd, 2022
Gene Product: September 1st, 2003
1 year agodhar4 glutathione dehydroascorbate reductase4:
6.04
GRMZM5G826194
Xiaomin Liu et al. 2022. Role of ZmGST Gene Family Involved in Nicosulfuron Stress Tolerance Revealed by Genomic and Transcriptomic Analyses Agronomy. 12:2598.     Reference: October 23rd, 2022
Gene Product: March 28th, 2013
Gene Model: August 25th, 2018
1 year agogst22 glutathione transferase22:
10.04
GRMZM2G330635
Xiaomin Liu et al. 2022. Role of ZmGST Gene Family Involved in Nicosulfuron Stress Tolerance Revealed by Genomic and Transcriptomic Analyses Agronomy. 12:2598.     Reference: October 23rd, 2022
Gene Product: September 1st, 2003
Variation: August 18th, 2010
Gene Model: April 18th, 2017
1 year agogst28 glutathione transferase28:
3.05
GRMZM2G146475
Xiaomin Liu et al. 2022. Role of ZmGST Gene Family Involved in Nicosulfuron Stress Tolerance Revealed by Genomic and Transcriptomic Analyses Agronomy. 12:2598.     Reference: October 23rd, 2022
Gene Product: September 1st, 2003
Variation: August 20th, 2010
Gene Model: July 27th, 2016
1 year agogst47 glutathione transferase47:
 
GRMZM2G161827
Xiaomin Liu et al. 2022. Role of ZmGST Gene Family Involved in Nicosulfuron Stress Tolerance Revealed by Genomic and Transcriptomic Analyses Agronomy. 12:2598.     Reference: October 23rd, 2022
Gene Product: September 1st, 2003
Gene Model: September 11th, 2020
1 year agogst48 glutathione transferase48:
 
GRMZM2G056388
Xiaomin Liu et al. 2022. Role of ZmGST Gene Family Involved in Nicosulfuron Stress Tolerance Revealed by Genomic and Transcriptomic Analyses Agronomy. 12:2598.     Reference: October 23rd, 2022
Gene Product: September 1st, 2003
Gene Model: September 11th, 2020
1 year agoLOC103651265  :
 
   LI, HW et al. 2022. Metabolomic and transcriptomic analyses reveal that sucrose synthase regulates maize pollen viability under heat and drought stress. Ecotoxicol Environ Safety. 246:114191.     Reference: October 21st, 2022
Gene Product: September 1st, 2003
1 year agogrx23 glutaredoxin23:
 
GRMZM2G131769
Sprague, SA et al. 2022. Redox-engineering enhances maize thermotolerance and grain yield in the field Plant Biotechnol J. :doi: 10.1111/pbi.13866.     Reference: October 21st, 2022
Gene Product: January 21st, 2021
Gene Model: June 3rd, 2022
1 year agocol14 C2C2-CO-like-transcription factor 14:
 
   Chen, L et al. 2022. Genome sequencing reveals evidence of adaptive variation in the genus Zea Nature Genetics. :doi: 10.1038/s41588-022-01184-y.     Reference: October 20th, 2022
Gene Product: June 18th, 2018
1 year agocdk8 cyclin dependent kinase8:
5.03
GRMZM2G166771
Kamal, KY et al. 2020. Physiol Plant pp.doi: 10.1111/ppl.13260     Reference: November 8th, 2020
Gene Product: October 19th, 2022
Variation: December 29th, 2016
Gene Model: December 29th, 2016
1 year agocdk1 cyclin dependent kinase1:
 
   Arif, MAR et al. 2022. Plants 11:598     Reference: February 24th, 2022
Gene Product: October 19th, 2022
1 year agocdc4 cell division control protein homolog4:
9.07
GRMZM2G143213
Mingyar N López-Hernández et al. 2022. Maize CDKA2;1a and CDKB1;1 kinases have different requirements for their activation and participate in substrate recognition FEBS J. :doi: 10.1111/febs.16659.     Reference: October 19th, 2022
Gene Product: October 19th, 2022
Gene Model: June 27th, 2020
1 year agoAQK58421  :
 
   Oliver Johanndrees et al. 2022. Variation in plant Toll/Interleukin-1 receptor domain protein dependence on ENHANCED DISEASE SUSCEPTIBILITY 1 Plant Physiol. :doi: 10.1093/plphys/kiac480.     Reference: October 13th, 2022
Gene Product: October 13th, 2022
1 year agomis12b minichromosome instability12b:
2.00
GRMZM2G049495
Garcia, NS et al. 2022. Comparison of meiotic transcriptomes of three maize inbreds with different origins reveals differences in cell cycle and recombination BMC Genomics. 23:702.   AT5G35520 (TAIR)
LOC_Os02g40680 (MSU/TIGR)
Os02G0620100 (Gramene)
Reference: October 13th, 2022
Gene Product: December 24th, 2015
Variation: September 1st, 2009
Gene Model: December 23rd, 2015
1 year agocsu452  :
1.04
GRMZM2G077897
Nan, Q et al. 2022. Polarly localized WPR proteins interact with PAN receptors and the actin cytoskeleton during maize stomatal development Plant Cell. :doi: 10.1093/plcell/koac301.     Reference: October 13th, 2022
Variation: September 1st, 2003
Gene Model: August 16th, 2017
1 year agoumc1268  :
8.07
GRMZM2G112912
Garcia, NS et al. 2022. Comparison of meiotic transcriptomes of three maize inbreds with different origins reveals differences in cell cycle and recombination BMC Genomics. 23:702.     Reference: October 13th, 2022
Variation: September 1st, 2003
Gene Model: September 24th, 2018
1 year agoumc1511  :
4.05
GRMZM2G004878
Garcia, NS et al. 2022. Comparison of meiotic transcriptomes of three maize inbreds with different origins reveals differences in cell cycle and recombination BMC Genomics. 23:702.     Reference: October 13th, 2022
Variation: March 10th, 2017
Gene Model: March 11th, 2017
1 year agowprb1 web1-pmi2 related b1:
9.04
GRMZM2G012970
Nan, Q et al. 2022. Polarly localized WPR proteins interact with PAN receptors and the actin cytoskeleton during maize stomatal development Plant Cell. :doi: 10.1093/plcell/koac301.     Reference: October 13th, 2022
Gene Product: April 25th, 2022
Variation: March 18th, 2021
Gene Model: October 13th, 2018
1 year agogtb101 global transcription factor A (Spt6):
6.06
GRMZM2G041697
Garcia, NS et al. 2022. Comparison of meiotic transcriptomes of three maize inbreds with different origins reveals differences in cell cycle and recombination BMC Genomics. 23:702.     Reference: October 13th, 2022
Variation: September 1st, 2003
Gene Model: December 19th, 2021
1 year agogtc102 global transcription factor C (Spt16):
5.03
GRMZM5G806358
Garcia, NS et al. 2022. Comparison of meiotic transcriptomes of three maize inbreds with different origins reveals differences in cell cycle and recombination BMC Genomics. 23:702.     Reference: October 13th, 2022
Gene Product: July 17th, 2006
Variation: September 1st, 2003
Gene Model: October 31st, 2017
1 year agowprb2 web1-pmi2 related b2:
2.08
GRMZM2G008444
Nan, Q et al. 2022. Polarly localized WPR proteins interact with PAN receptors and the actin cytoskeleton during maize stomatal development Plant Cell. :doi: 10.1093/plcell/koac301.     Reference: October 13th, 2022
Gene Product: April 25th, 2022
Gene Model: April 23rd, 2022
1 year agorad51e recombination protein51 gene e:
 
AC219006.2_FG007
Garcia, NS et al. 2022. Comparison of meiotic transcriptomes of three maize inbreds with different origins reveals differences in cell cycle and recombination BMC Genomics. 23:702.     Reference: October 13th, 2022
Gene Product: August 12th, 2016
Variation: June 20th, 2014
Gene Model: June 19th, 2014
1 year agoatr1 ataxia-telangiectasia mutated and RAD3-related1:
 
GRMZM2G128938
Garcia, NS et al. 2022. Comparison of meiotic transcriptomes of three maize inbreds with different origins reveals differences in cell cycle and recombination BMC Genomics. 23:702.   AT5G40820 (TAIR) Reference: October 13th, 2022
Gene Product: May 13th, 2014
Variation: June 5th, 2021
Gene Model: November 23rd, 2017
1 year agonap1 nucleosome assembly protein1:
 
GRMZM2G157019
Garcia, NS et al. 2022. Comparison of meiotic transcriptomes of three maize inbreds with different origins reveals differences in cell cycle and recombination BMC Genomics. 23:702.     Reference: October 13th, 2022
Variation: April 19th, 2018
Gene Model: April 19th, 2018
1 year agopds5 precocious dissociation of sisters-like5:
 
GRMZM2G010637
Garcia, NS et al. 2022. Comparison of meiotic transcriptomes of three maize inbreds with different origins reveals differences in cell cycle and recombination BMC Genomics. 23:702.     Reference: October 13th, 2022
Gene Product: November 2nd, 2020
Gene Model: November 2nd, 2020
1 year agoprf4 profilin homolog4:
 
GRMZM2G108780
Garcia, NS et al. 2022. Comparison of meiotic transcriptomes of three maize inbreds with different origins reveals differences in cell cycle and recombination BMC Genomics. 23:702.     Reference: October 13th, 2022
Gene Product: July 13th, 2021
Gene Model: July 13th, 2021
1 year agowpra1 web1-pmi2 related a1:
 
GRMZM2G118714
Nan, Q et al. 2022. Polarly localized WPR proteins interact with PAN receptors and the actin cytoskeleton during maize stomatal development Plant Cell. :doi: 10.1093/plcell/koac301.     Reference: October 13th, 2022
Gene Product: April 25th, 2022
Gene Model: April 23rd, 2022
1 year agowpra2 web1-pmi2 related a2:
 
AC225185.3_FG004
Nan, Q et al. 2022. Polarly localized WPR proteins interact with PAN receptors and the actin cytoskeleton during maize stomatal development Plant Cell. :doi: 10.1093/plcell/koac301.     Reference: October 13th, 2022
Gene Product: April 25th, 2022
Gene Model: April 23rd, 2022
1 year agowprb3 web1-pmi2 related b3:
 
GRMZM2G113554
Nan, Q et al. 2022. Polarly localized WPR proteins interact with PAN receptors and the actin cytoskeleton during maize stomatal development Plant Cell. :doi: 10.1093/plcell/koac301.     Reference: October 13th, 2022
Gene Product: April 25th, 2022
Gene Model: April 23rd, 2022
1 year agoZm00001d048523  :
 
GRMZM2G449359
Nan, Q et al. 2022. Polarly localized WPR proteins interact with PAN receptors and the actin cytoskeleton during maize stomatal development Plant Cell. :doi: 10.1093/plcell/koac301.     Reference: October 13th, 2022
Gene Product: April 25th, 2022
Gene Model: April 23rd, 2022
1 year agoIDP583  :
3.08
GRMZM2G178244
Garcia, NS et al. 2022. Comparison of meiotic transcriptomes of three maize inbreds with different origins reveals differences in cell cycle and recombination BMC Genomics. 23:702.     Reference: October 13th, 2022
Variation: March 31st, 2005
Gene Model: February 24th, 2019
1 year agoIDP263  :
10.06
   Nan, Q et al. 2022. Polarly localized WPR proteins interact with PAN receptors and the actin cytoskeleton during maize stomatal development Plant Cell. :doi: 10.1093/plcell/koac301.     Reference: October 13th, 2022
Variation: September 25th, 2007
1 year agoZm00001d006089  :
 
   Wang, Y et al. 2022. ZmASY1 interacts with ZmPRD3 and is crucial for meiotic double-strand break formation in maize New Phytol. :doi: 10.1111/nph.18528.   AT1G67370 (TAIR) Reference: October 12th, 2022
Gene Product: October 12th, 2022
Variation: October 12th, 2022
1 year agodof36 C2C2-Dof-transcription factor 36:
 
   Ning, LH et al. 2022. Nitrogen-dependent binding of the transcription factor PBF1 contributes to the balance of protein and carbohydrate storage in maize endosperm Plant Cell. :doi: 10.1093/plcell/koac302.     Reference: October 12th, 2022
Variation: October 7th, 2016
1 year agospo1 topoisomerase-like enzyme1:
 
GRMZM2G129913
Wang, Y et al. 2022. ZmASY1 interacts with ZmPRD3 and is crucial for meiotic double-strand break formation in maize New Phytol. :doi: 10.1111/nph.18528.     Reference: October 12th, 2022
Gene Product: June 19th, 2014
Variation: April 21st, 2020
Gene Model: June 19th, 2014
1 year agomrpa11 multidrug resistance protein associated11:
 
   Yue, R et al. 2022. Functional analysis revealed the involvement of ZmABCB15 in resistance to rice black-streaked dwarf virus infection BMC Plant Biology. 22:484.     Reference: October 11th, 2022
Gene Product: July 11th, 2019
1 year agomrpa12 multidrug resistance protein associated12:
 
   Yue, R et al. 2022. Functional analysis revealed the involvement of ZmABCB15 in resistance to rice black-streaked dwarf virus infection BMC Plant Biology. 22:484.     Reference: October 11th, 2022
Gene Product: July 11th, 2019
1 year agomrpa14 multidrug resistance protein associated14:
 
   Yue, R et al. 2022. Functional analysis revealed the involvement of ZmABCB15 in resistance to rice black-streaked dwarf virus infection BMC Plant Biology. 22:484.     Reference: October 11th, 2022
Gene Product: July 11th, 2019
1 year agomrpa15 multidrug resistance protein associated15:
 
   Yue, R et al. 2022. Functional analysis revealed the involvement of ZmABCB15 in resistance to rice black-streaked dwarf virus infection BMC Plant Biology. 22:484.     Reference: October 11th, 2022
Gene Product: July 11th, 2019
1 year agomrpa20 multidrug resistance protein associated20:
 
   Yue, R et al. 2022. Functional analysis revealed the involvement of ZmABCB15 in resistance to rice black-streaked dwarf virus infection BMC Plant Biology. 22:484.     Reference: October 11th, 2022
Gene Product: July 11th, 2019
1 year agomrpa22 multidrug resistance associated protein22:
 
   Yue, R et al. 2022. Functional analysis revealed the involvement of ZmABCB15 in resistance to rice black-streaked dwarf virus infection BMC Plant Biology. 22:484.     Reference: October 11th, 2022
Gene Product: July 11th, 2019
1 year agomrpa24 multidrug resistance associated protein24:
 
   Yue, R et al. 2022. Functional analysis revealed the involvement of ZmABCB15 in resistance to rice black-streaked dwarf virus infection BMC Plant Biology. 22:484.     Reference: October 11th, 2022
Gene Product: July 11th, 2019
1 year agomrpa25 multidrug resistance associated protein25:
 
   Yue, R et al. 2022. Functional analysis revealed the involvement of ZmABCB15 in resistance to rice black-streaked dwarf virus infection BMC Plant Biology. 22:484.     Reference: October 11th, 2022
Gene Product: July 11th, 2019
1 year agomrpa26 multidrug resistance associated protein26:
 
   Yue, R et al. 2022. Functional analysis revealed the involvement of ZmABCB15 in resistance to rice black-streaked dwarf virus infection BMC Plant Biology. 22:484.     Reference: October 11th, 2022
Gene Product: July 11th, 2019
1 year agoAY110310  :
4.06
GRMZM2G004748
Yue, R et al. 2022. Functional analysis revealed the involvement of ZmABCB15 in resistance to rice black-streaked dwarf virus infection BMC Plant Biology. 22:484.     Reference: October 11th, 2022
Variation: July 29th, 2004
Gene Model: April 13th, 2018
1 year agomrpa5 multidrug resistance-associated protein5:
 
GRMZM2G084181
Yue, R et al. 2022. Functional analysis revealed the involvement of ZmABCB15 in resistance to rice black-streaked dwarf virus infection BMC Plant Biology. 22:484.     Reference: October 11th, 2022
Gene Product: July 11th, 2019
Variation: May 14th, 2011
Gene Model: October 2nd, 2018
1 year agomudrA MuDR geneA:
 
   Chunsheng Cong et al. 2022. Cloning of Maize TED Transposon into Escherichia coli Reveals the Polychromatic Sequence Landscape of Refractorily Propagated Plasmids Int J Mol Sci. 23:11993.     Reference: October 10th, 2022
Gene Product: September 1st, 2003
1 year agoppr199 pentatricopeptide repeat protein199:
3.07
GRMZM2G158645
Wang, Y et al. 2022. Maize PPR-E proteins mediate RNA C-to-U editing in mitochondria by recruiting the trans deaminase PCW1 Plant Cell. :doi: 10.1093/plcell/koac298.     Reference: October 6th, 2022
Gene Product: December 27th, 2016
Gene Model: April 18th, 2022
1 year agoflz29 FCS-like zinc finger29:
5.07
GRMZM2G036286
Leon Muntean et al. 2022. Maize Breeding: From Domestication to Genomic Tools Agronomy. 12:2365.     Reference: September 30th, 2022
Gene Product: March 29th, 2021
Gene Model: March 13th, 2021
1 year agolht2 Lysine histidine transporter 2:
6.00
GRMZM2G180659
Xiao, YN et al. 2022. A genome-wide association study of folates in sweet corn kernels Frontiers in Plant Science. 13:1004455.     Reference: September 30th, 2022
Gene Product: March 31st, 2021
Gene Model: December 11th, 2019
1 year agophp20581a(tb)  :
7.01
   Han, TW et al. 2021. An epigenetic basis of inbreeding depression in maize Science. 7:eabg5442.     Reference: September 29th, 2022
Variation: September 1st, 2003
1 year agovpe1 vacuolar processing enzyme1:
5.05
       Gene Product: September 29th, 2022
Variation: June 25th, 2015
1 year agoppr300 pentatricopeptide repeat protein300:
 
GRMZM2G007372
Han, TW et al. 2021. An epigenetic basis of inbreeding depression in maize Science. 7:eabg5442.     Reference: September 29th, 2022
Gene Product: December 27th, 2016
Gene Model: August 27th, 2021
1 year agomyb73 MYB-transcription factor 73:
 
   Dai, DW et al. 2022. Paternal imprinting of dosage-effect defective1 contributes to seed weight xenia in maize Nature communications. 13:5366.     Reference: September 28th, 2022
Gene Product: July 25th, 2017
Variation: September 28th, 2021
1 year agotcptf38 TCP-transcription factor 38:
 
   Christian Damian Lorenzo et al. 2022. BREEDIT: a multiplex genome editing strategy to improve complex quantitative traits in maize Plant Cell. :doi: 10.1093/plcell/koac243.     Reference: September 28th, 2022
Gene Product: September 27th, 2019
1 year agotcptf43 TCP-transcription factor 43:
2.10
GRMZM2G020805
Christian Damian Lorenzo et al. 2022. BREEDIT: a multiplex genome editing strategy to improve complex quantitative traits in maize Plant Cell. :doi: 10.1093/plcell/koac243.     Reference: September 28th, 2022
Gene Product: September 27th, 2019
Variation: February 28th, 2017
Gene Model: February 28th, 2017
1 year agorrb1 related to retinoblastoma1:
2.09
   Consonni, G et al. 2022. The Italian Research on the Molecular Characterization of Maize Kernel Development Int J Mol Sci. 23:11383.     Reference: September 28th, 2022
Gene Product: September 1st, 2003
Variation: May 19th, 2005
1 year agopco061382  :
2.07
   Christian Damian Lorenzo et al. 2022. BREEDIT: a multiplex genome editing strategy to improve complex quantitative traits in maize Plant Cell. :doi: 10.1093/plcell/koac243.     Reference: September 28th, 2022
Gene Product: June 30th, 2017
1 year agopgl17 polygalacturonase17:
4.07
GRMZM2G348602
Le, L et al. 2022. A spatiotemporal transcriptomic network dynamically modulates stalk development in maize Plant Biotechnol J. :doi: 10.1111/pbi.13909.     Reference: September 28th, 2022
Gene Product: October 4th, 2021
Gene Model: April 23rd, 2020
1 year agockx8 cytokinin oxidase8:
 
GRMZM2G134634
Christian Damian Lorenzo et al. 2022. BREEDIT: a multiplex genome editing strategy to improve complex quantitative traits in maize Plant Cell. :doi: 10.1093/plcell/koac243.     Reference: September 28th, 2022
Gene Product: July 19th, 2021
Gene Model: April 4th, 2014
1 year agockx9 cytokinin oxidase9:
 
GRMZM2G303707
Christian Damian Lorenzo et al. 2022. BREEDIT: a multiplex genome editing strategy to improve complex quantitative traits in maize Plant Cell. :doi: 10.1093/plcell/koac243.     Reference: September 28th, 2022
Gene Product: July 19th, 2021
Gene Model: March 25th, 2014
1 year agockx8b cytokinin oxidase8b:
 
GRMZM2G162048
Christian Damian Lorenzo et al. 2022. BREEDIT: a multiplex genome editing strategy to improve complex quantitative traits in maize Plant Cell. :doi: 10.1093/plcell/koac243.     Reference: September 28th, 2022
Gene Product: July 19th, 2021
Gene Model: April 4th, 2014
1 year agoga2ox5 gibberellin 2-oxidase5:
 
GRMZM2G176963
Christian Damian Lorenzo et al. 2022. BREEDIT: a multiplex genome editing strategy to improve complex quantitative traits in maize Plant Cell. :doi: 10.1093/plcell/koac243.     Reference: September 28th, 2022
Gene Product: October 27th, 2014
Gene Model: October 29th, 2014
1 year agocki6 cyclin-dependent kinase inhibitor6:
4.07
GRMZM2G084570
Christian Damian Lorenzo et al. 2022. BREEDIT: a multiplex genome editing strategy to improve complex quantitative traits in maize Plant Cell. :doi: 10.1093/plcell/koac243.     Reference: September 28th, 2022
Gene Product: March 8th, 2017
Gene Model: March 7th, 2017
1 year agocki8 cyclin-dependent kinase inhibitor8:
 
GRMZM2G154414
Christian Damian Lorenzo et al. 2022. BREEDIT: a multiplex genome editing strategy to improve complex quantitative traits in maize Plant Cell. :doi: 10.1093/plcell/koac243.     Reference: September 28th, 2022
Gene Product: March 8th, 2017
Gene Model: March 7th, 2017
1 year agocpd33 carbohydrate partitioning defective33:
 
GRMZM5G852378
Le, L et al. 2022. A spatiotemporal transcriptomic network dynamically modulates stalk development in maize Plant Biotechnol J. :doi: 10.1111/pbi.13909.     Reference: September 28th, 2022
Gene Product: August 3rd, 2022
Variation: May 17th, 2019
Gene Model: May 17th, 2019
1 year agosaur31 small auxin up RNA31:
 
GRMZM2G156451
Le, L et al. 2022. A spatiotemporal transcriptomic network dynamically modulates stalk development in maize Plant Biotechnol J. :doi: 10.1111/pbi.13909.     Reference: September 28th, 2022
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
1 year agoZm00001eb025170  :
 
   Yoshihara, Takeshi et al. 2022. Leveraging orthology within maize and Arabidopsis QTL to identify genes affecting natural variation in gravitropism Proc Natl Acad Sci, USA. 119:e2212199119.   At4g15130 (TAIR) Reference: September 27th, 2022
Gene Product: September 27th, 2022
1 year agoppr516 pentatricopeptide repeat protein516:
10.07
GRMZM2G123014
Yoshihara, Takeshi et al. 2022. Leveraging orthology within maize and Arabidopsis QTL to identify genes affecting natural variation in gravitropism Proc Natl Acad Sci, USA. 119:e2212199119.     Reference: September 27th, 2022
Gene Product: December 27th, 2016
Gene Model: July 7th, 2020
1 year agochn21 chitinase21:
8.03
GRMZM2G062974
Yan, SF et al. 2022. Association mapping of resistance to tar spot complex in maize Plant Breed. :doi: 10.1111/pbr.13056.     Reference: September 26th, 2022
Gene Product: May 31st, 2021
Variation: September 1st, 2003
Gene Model: August 30th, 2019
1 year agorpo2 RNA polymerase2:
9.03
GRMZM2G115564
Li, XQ et al. 2022. Dissecting the Regulatory Network of Maize Phase Change in ZmEPC1 Mutant by Transcriptome Analysis Genes. 13:1713.     Reference: September 24th, 2022
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: January 21st, 2015
1 year agoumc1346  :
4.05
GRMZM2G366392
Li, XQ et al. 2022. Dissecting the Regulatory Network of Maize Phase Change in ZmEPC1 Mutant by Transcriptome Analysis Genes. 13:1713.     Reference: September 24th, 2022
Variation: September 1st, 2003
Gene Model: June 7th, 2018
1 year agoAY109929  :
1.03
   Li, XQ et al. 2022. Dissecting the Regulatory Network of Maize Phase Change in ZmEPC1 Mutant by Transcriptome Analysis Genes. 13:1713.     Reference: September 24th, 2022
Variation: September 25th, 2007
1 year agotraf26 TNF receptor-associated factor 26:
 
GRMZM2G095510
Li, XQ et al. 2022. Dissecting the Regulatory Network of Maize Phase Change in ZmEPC1 Mutant by Transcriptome Analysis Genes. 13:1713.     Reference: September 24th, 2022
Gene Product: June 30th, 2021
Gene Model: June 30th, 2021
1 year agoIDP642  :
4.05
GRMZM2G159700
Li, XQ et al. 2022. Dissecting the Regulatory Network of Maize Phase Change in ZmEPC1 Mutant by Transcriptome Analysis Genes. 13:1713.     Reference: September 24th, 2022
Variation: March 31st, 2005
Gene Model: January 13th, 2021
1 year agoache1 acetylcholinesterase1:
7.04
   Li, XQ et al. 2022. Dissecting the Regulatory Network of Maize Phase Change in ZmEPC1 Mutant by Transcriptome Analysis Genes. 13:1713.     Reference: September 24th, 2022
Gene Product: December 24th, 2015
1 year agomybr99 MYB-related-transcription factor 99:
 
   Wang, YY et al. 2022. GWAS and Transcriptome Analysis Reveal Key Genes Affecting Root Growth under Low Nitrogen Supply in Maize Genes. 13:1632.     Reference: September 23rd, 2022
Variation: March 18th, 2021
1 year agoa4 anthocyaninless4:
8.06
   Char, SN et al. 2016. An Agrobacterium-delivered CRISPR/Cas9 system for high-frequency targeted mutagenesis in maize Plant Biotechnol J. :doi: 10.1111/pbi.12611.     Reference: September 23rd, 2022
Variation: August 30th, 2013
1 year agovq45 VQ motif-transcription factor45:
 
AC203294.3_FG012
Wang, YY et al. 2022. GWAS and Transcriptome Analysis Reveal Key Genes Affecting Root Growth under Low Nitrogen Supply in Maize Genes. 13:1632.     Reference: September 23rd, 2022
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
1 year agozmm16 Zea mays MADS16:
3.06
   Bartlett, ME et al. 2016. Evolutionary Dynamics of Floral Homeotic Transcription Factor Protein-Protein Interactions Mol Biol Evol. 33:1486-501.   AT5G20240 (TAIR) Reference: September 22nd, 2022
Gene Product: September 10th, 2021
Variation: November 2nd, 2015
1 year agoel1 elongate1:
8.04 - 8.09
   Golubovskaya, IN. 1979. Int Rev Cytol 58:247-290     Reference: September 17th, 2022
Gene Product: December 1st, 2012
Variation: September 1st, 2003
1 year agopam2 plural abnormalities of meiosis2:
 
   Golubovskaya, IN. 1979. Int Rev Cytol 58:247-290     Reference: September 17th, 2022
Variation: September 1st, 2003
1 year agonrat8 nramp aluminum transporter8:
 
GRMZM2G322844
Guo, JX et al. 2022. Tonoplast-localized transporter ZmNRAMP2 confers root-to-shoot translocation of manganese in maize Plant Physiol. :doi: 10.1093/plphys/kiac434.     Reference: September 17th, 2022
Gene Product: August 17th, 2015
Gene Model: July 25th, 2022
1 year agopo1 polymitotic1:
6.01 - 6.01
   Golubovskaya, IN. 1989. Adv Genet 26:149-192     Reference: September 16th, 2022
Variation: May 20th, 2006
1 year agocepr1 constitutive expresser of pathogenesis-related genes1:
 
   Jun Mei et al. 2022. Characterization of rice and maize CONSTITUTIVE EXPRESSER OF PATHOGENESIS-RELATED GENES 5 in plant immunity Eur J Plant Path. :doi: 10.1007/s10658-022-02584-w.   AT5G64930 (TAIR) Reference: September 14th, 2022
Gene Product: September 15th, 2022
1 year agocl421_1  :
2.01
GRMZM2G119773
Kendrick, R et al. 2022. Correlated retrograde and developmental regulons implicate multiple retrograde signals as coordinators of chloroplast development in maize Plant Cell. :doi: 10.1093/plcell/koac276.     Reference: September 8th, 2022
Variation: September 25th, 2007
Gene Model: August 12th, 2021
1 year agoZm00001d048948  :
 
GRMZM2G419675
Yuebin Wang et al. 2022. Three types of genes underlying the Gametophyte factor1 locus cause unilateral cross incompatibility in maize Nature communications. 13:4498.     Reference: September 8th, 2022
Gene Product: August 3rd, 2022
Gene Model: August 3rd, 2022
1 year agocrk1 crumpled kernel1:
8.06
GRMZM2G144716
Wang, G et al. 2022. An MCIA-like complex is required for mitochondrial complex I assembly and seed development in maize Molecular Plant.     Reference: September 8th, 2022
Gene Product: August 12th, 2022
Variation: August 12th, 2022
Gene Model: December 28th, 2021
1 year agoperk2 proline-rich extensin-like receptor kinase2:
 
   Shahmeer Shahid et al. 2022. Prediction of RNA editing sites and genome-wide characterization of PERK gene family in maize (Zea mays L.) in response to drought stress Journal of King Saud University - Science. 34:102293.     Reference: September 7th, 2022
Gene Product: September 7th, 2022
1 year agoperk3 proline-rich extensin-like receptor kinase3:
 
   Shahmeer Shahid et al. 2022. Prediction of RNA editing sites and genome-wide characterization of PERK gene family in maize (Zea mays L.) in response to drought stress Journal of King Saud University - Science. 34:102293.     Reference: September 7th, 2022
Gene Product: September 7th, 2022
1 year agoperk6 proline-rich extensin-like receptor kinase6:
 
   Shahmeer Shahid et al. 2022. Prediction of RNA editing sites and genome-wide characterization of PERK gene family in maize (Zea mays L.) in response to drought stress Journal of King Saud University - Science. 34:102293.     Reference: September 7th, 2022
Gene Product: September 7th, 2022
1 year agoperk7 proline-rich extensin-like receptor kinase7:
 
   Shahmeer Shahid et al. 2022. Prediction of RNA editing sites and genome-wide characterization of PERK gene family in maize (Zea mays L.) in response to drought stress Journal of King Saud University - Science. 34:102293.     Reference: September 7th, 2022
Gene Product: September 7th, 2022
1 year agoperk8 proline-rich extensin-like receptor kinase8:
 
   Shahmeer Shahid et al. 2022. Prediction of RNA editing sites and genome-wide characterization of PERK gene family in maize (Zea mays L.) in response to drought stress Journal of King Saud University - Science. 34:102293.     Reference: September 7th, 2022
Gene Product: September 7th, 2022
1 year agoperk9 proline-rich extensin-like receptor kinase9:
 
   Shahmeer Shahid et al. 2022. Prediction of RNA editing sites and genome-wide characterization of PERK gene family in maize (Zea mays L.) in response to drought stress Journal of King Saud University - Science. 34:102293.     Reference: September 7th, 2022
Gene Product: September 7th, 2022
1 year agoperk11 proline-rich extensin-like receptor kinase11:
 
   Shahmeer Shahid et al. 2022. Prediction of RNA editing sites and genome-wide characterization of PERK gene family in maize (Zea mays L.) in response to drought stress Journal of King Saud University - Science. 34:102293.     Reference: September 7th, 2022
Gene Product: September 7th, 2022
1 year agoperk12 proline-rich extensin-like receptor kinase12:
 
   Shahmeer Shahid et al. 2022. Prediction of RNA editing sites and genome-wide characterization of PERK gene family in maize (Zea mays L.) in response to drought stress Journal of King Saud University - Science. 34:102293.     Reference: September 7th, 2022
Gene Product: September 7th, 2022
1 year agoperk14 proline-rich extensin-like receptor kinase14:
 
   Shahmeer Shahid et al. 2022. Prediction of RNA editing sites and genome-wide characterization of PERK gene family in maize (Zea mays L.) in response to drought stress Journal of King Saud University - Science. 34:102293.     Reference: September 7th, 2022
Gene Product: September 7th, 2022
1 year agoperk16 proline-rich extensin-like receptor kinase16:
 
   Shahmeer Shahid et al. 2022. Prediction of RNA editing sites and genome-wide characterization of PERK gene family in maize (Zea mays L.) in response to drought stress Journal of King Saud University - Science. 34:102293.     Reference: September 7th, 2022
Gene Product: September 7th, 2022
1 year agoperk17 proline-rich extensin-like receptor kinase17:
 
   Shahmeer Shahid et al. 2022. Prediction of RNA editing sites and genome-wide characterization of PERK gene family in maize (Zea mays L.) in response to drought stress Journal of King Saud University - Science. 34:102293.     Reference: September 7th, 2022
Gene Product: September 7th, 2022
1 year agoperk18 proline-rich extensin-like receptor kinase18:
 
   Shahmeer Shahid et al. 2022. Prediction of RNA editing sites and genome-wide characterization of PERK gene family in maize (Zea mays L.) in response to drought stress Journal of King Saud University - Science. 34:102293.     Reference: September 7th, 2022
Gene Product: September 7th, 2022
1 year agoperk19 proline-rich extensin-like receptor kinase19:
 
   Shahmeer Shahid et al. 2022. Prediction of RNA editing sites and genome-wide characterization of PERK gene family in maize (Zea mays L.) in response to drought stress Journal of King Saud University - Science. 34:102293.     Reference: September 7th, 2022
Gene Product: September 7th, 2022
1 year agoperk20 proline-rich extensin-like receptor kinase20:
 
   Shahmeer Shahid et al. 2022. Prediction of RNA editing sites and genome-wide characterization of PERK gene family in maize (Zea mays L.) in response to drought stress Journal of King Saud University - Science. 34:102293.     Reference: September 7th, 2022
Gene Product: September 7th, 2022
1 year agoperk22 proline-rich extensin-like receptor kinase22:
 
   Shahmeer Shahid et al. 2022. Prediction of RNA editing sites and genome-wide characterization of PERK gene family in maize (Zea mays L.) in response to drought stress Journal of King Saud University - Science. 34:102293.     Reference: September 7th, 2022
Gene Product: September 7th, 2022
1 year agoperk23 proline-rich extensin-like receptor kinase23:
 
   Shahmeer Shahid et al. 2022. Prediction of RNA editing sites and genome-wide characterization of PERK gene family in maize (Zea mays L.) in response to drought stress Journal of King Saud University - Science. 34:102293.     Reference: September 7th, 2022
Gene Product: September 7th, 2022
1 year agoperk5 proline-rich extensin-like receptor kinase5:
1.05
GRMZM2G172081
Shahmeer Shahid et al. 2022. Prediction of RNA editing sites and genome-wide characterization of PERK gene family in maize (Zea mays L.) in response to drought stress Journal of King Saud University - Science. 34:102293.     Reference: September 7th, 2022
Gene Product: September 7th, 2022
Gene Model: April 15th, 2021
1 year agoperk21 proline-rich extensin-like receptor kinase21:
3.04
GRMZM2G355636
Shahmeer Shahid et al. 2022. Prediction of RNA editing sites and genome-wide characterization of PERK gene family in maize (Zea mays L.) in response to drought stress Journal of King Saud University - Science. 34:102293.     Reference: September 7th, 2022
Gene Product: September 7th, 2022
Gene Model: March 28th, 2020
1 year agoacs1 1-aminocyclopropane-1-carboxylate synthase1:
 
GRMZM2G163015
Pingault, L et al. 2022. Co-Transcriptomic Analysis of the Maize–Western Corn Rootworm Interaction Plants. 11:2335.     Reference: September 7th, 2022
Gene Product: May 16th, 2016
Gene Model: May 16th, 2016
1 year agoperk10 proline-rich extensin-like receptor kinase10:
 
GRMZM2G470499
Shahmeer Shahid et al. 2022. Prediction of RNA editing sites and genome-wide characterization of PERK gene family in maize (Zea mays L.) in response to drought stress Journal of King Saud University - Science. 34:102293.     Reference: September 7th, 2022
Gene Product: September 7th, 2022
Gene Model: April 4th, 2022
1 year agoIDP1669  :
9.06
GRMZM2G479243
Sun, DQ et al. 2022. Genome-wide association study reveals the genetic basis of brace root angle and diameter in maize Frontiers in Genetics.     Reference: September 7th, 2022
Variation: March 31st, 2005
Gene Model: January 14th, 2019
1 year agobbx11 b-box11:
 
   Liu, WY et al. 2022. Proc Natl Acad Sci, USA 119:e2208795119     Reference: August 24th, 2022
Gene Product: January 11th, 2019
1 year agobhlh176 bHLH-transcription factor 176:
 
GRMZM5G857090
Liu, WY et al. 2022. Proc Natl Acad Sci, USA 119:e2208795119     Reference: August 24th, 2022
Gene Product: September 14th, 2016
Gene Model: August 24th, 2022
1 year agobhlh110 bHLH-transcription factor 110:
 
   Wang, YF et al. 2022. Frontiers Plant Sci 13:928897     Reference: August 22nd, 2022
Gene Product: November 26th, 2021
1 year agoGRMZM2G012393  :
 
GRMZM2G012393
Curci, PL et al. 2022. Plant Physiol pp.doi: 10.1093/plphys/kiac374     Reference: August 19th, 2022
Gene Product: April 27th, 2022
Gene Model: August 19th, 2022
1 year agoppr429 pentatricopeptide repeat protein429:
 
GRMZM2G122344
Cao, S-K et al. 2022. Plant Physiol pp.doi: 10.1093/plphys/kiac379     Reference: August 17th, 2022
Gene Product: December 27th, 2016
Variation: August 17th, 2022
Gene Model: August 17th, 2022
1 year agocol10 C2C2-CO-like-transcription factor 10:
 
   Xu, X-H et al. 2022. J Integrative Agriculture doi: 10.1016/j.jia.2022.08.091     Reference: August 15th, 2022
Gene Product: June 18th, 2018
1 year agocol5 C2C2-CO-like-transcription factor 5:
 
GRMZM2G075562
Xu, X-H et al. 2022. J Integrative Agriculture doi: 10.1016/j.jia.2022.08.091     Reference: August 15th, 2022
Gene Product: June 18th, 2018
Gene Model: May 23rd, 2020
1 year agodbb1 double B-box zinc finger protein1:
2.04
GRMZM2G018876
Xu, X-H et al. 2022. J Integrative Agriculture doi: 10.1016/j.jia.2022.08.091     Reference: August 15th, 2022
Gene Product: May 10th, 2017
Variation: May 10th, 2017
Gene Model: May 10th, 2017
1 year agocl13108_1a  :
1.07
GRMZM2G108600
Wang, XQ et al. 2022. Frontiers Plant Sci 13:957566     Reference: August 15th, 2022
Variation: September 25th, 2007
Gene Model: August 8th, 2021
1 year agodbb5 double B-box zinc finger protein5:
 
GRMZM2G118884
Xu, X-H et al. 2022. J Integrative Agriculture doi: 10.1016/j.jia.2022.08.091     Reference: August 15th, 2022
Gene Product: May 10th, 2017
Gene Model: May 10th, 2017
1 year agodbb7 double B-box zinc finger protein7:
 
GRMZM2G110541
Xu, X-H et al. 2022. J Integrative Agriculture doi: 10.1016/j.jia.2022.08.091     Reference: August 15th, 2022
Gene Product: May 10th, 2017
Gene Model: May 10th, 2017
1 year agodbb9 double B-box zinc finger protein9:
 
GRMZM2G116475
Xu, X-H et al. 2022. J Integrative Agriculture doi: 10.1016/j.jia.2022.08.091     Reference: August 15th, 2022
Gene Product: May 10th, 2017
Variation: May 10th, 2017
Gene Model: May 10th, 2017
1 year agodbb10 double B-box zinc finger protein10:
 
GRMZM2G143718
Xu, X-H et al. 2022. J Integrative Agriculture doi: 10.1016/j.jia.2022.08.091     Reference: August 15th, 2022
Gene Product: May 10th, 2017
Variation: May 10th, 2017
Gene Model: May 10th, 2017
1 year agocol17 C2C2-CO-like-transcription factor 17:
 
GRMZM2G176173
Xu, X-H et al. 2022. J Integrative Agriculture doi: 10.1016/j.jia.2022.08.091     Reference: August 15th, 2022
Gene Product: June 18th, 2018
Gene Model: June 16th, 2018
1 year agocol19 C2C2-CO-like-transcription factor 19:
 
GRMZM2G092363
Xu, X-H et al. 2022. J Integrative Agriculture doi: 10.1016/j.jia.2022.08.091     Reference: August 15th, 2022
Gene Product: June 18th, 2018
Gene Model: June 16th, 2018
1 year agobbx24 b-box24:
 
GRMZM2G354319
Xu, X-H et al. 2022. J Integrative Agriculture doi: 10.1016/j.jia.2022.08.091     Reference: August 15th, 2022
Gene Product: January 11th, 2019
Gene Model: January 10th, 2019
1 year agobbx34 b-box34:
 
GRMZM2G056126
Xu, X-H et al. 2022. J Integrative Agriculture doi: 10.1016/j.jia.2022.08.091     Reference: August 15th, 2022
Gene Product: January 11th, 2019
Gene Model: January 10th, 2019
1 year agocct48 CO CO-LIKE TIMING OF CAB1 protein domain48:
 
GRMZM2G167216
Xu, X-H et al. 2022. J Integrative Agriculture doi: 10.1016/j.jia.2022.08.091     Reference: August 15th, 2022
Gene Product: June 18th, 2018
Gene Model: August 17th, 2021
1 year agopco123247b  :
10.04
GRMZM2G148508
Wang, XQ et al. 2022. Frontiers Plant Sci 13:957566     Reference: August 15th, 2022
Gene Product: June 15th, 2021
Gene Model: October 31st, 2013
1 year agodbb6 double B-box zinc finger protein6:
5.05
GRMZM2G095299
Xu, X-H et al. 2022. J Integrative Agriculture doi: 10.1016/j.jia.2022.08.091     Reference: August 15th, 2022
Gene Product: May 10th, 2017
Variation: May 10th, 2017
Gene Model: May 10th, 2017
1 year agovpp2 vacuolar proton pump2:
9.03
GRMZM2G094497
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: September 1st, 2003
Variation: May 15th, 2015
Gene Model: May 15th, 2015
1 year agouaz288a(ppi)  :
3.05
GRMZM2G063949
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: September 1st, 2003
Gene Model: March 30th, 2018
1 year agomha8 membrane H(+)-ATPase8:
9.02
GRMZM2G455557
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: September 1st, 2003
Gene Model: June 15th, 2020
1 year agomha13 membrane H(+)-ATPase13:
1.09
   Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: September 1st, 2003
1 year agovpp1 vacuolar proton pump homolog1:
6.04
GRMZM2G014240
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: August 7th, 2014
1 year agorif1 r-interacting factor1:
2.06
GRMZM2G049155
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: May 6th, 2008
Variation: January 5th, 2011
Gene Model: July 28th, 2016
1 year agovpp3 vacuolar proton pump3:
4.09
GRMZM2G421857
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: September 1st, 2003
Variation: March 18th, 2011
Gene Model: May 15th, 2015
1 year agovpp4 vacuolar proton pump4:
10.02
GRMZM2G028432
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: September 1st, 2003
Variation: August 23rd, 2013
Gene Model: May 15th, 2015
1 year agomyb3  :
5.04
GRMZM2G099334
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: July 25th, 2017
Variation: May 28th, 2015
Gene Model: May 28th, 2015
1 year agomyb8 myb transcription factor8:
 
GRMZM2G041415
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: February 16th, 2011
Variation: February 16th, 2011
Gene Model: July 28th, 2016
1 year agoatp1 ATPase1:
3.05
GRMZM2G101020
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: September 1st, 2003
Variation: August 16th, 2012
Gene Model: May 31st, 2014
1 year agoumc1559  :
4.08 - 4.09
GRMZM2G702806
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Variation: September 1st, 2003
Gene Model: April 25th, 2020
1 year agohopi1 hopi r1/b1 family member1:
10.05 - 10.06
   Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: September 14th, 2016
Variation: September 9th, 2010
1 year agoppp1 pyrophosphate-energized proton pump1:
5.07
   Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: September 1st, 2003
Variation: December 14th, 2014
1 year agomha1 membrane H(+)-ATPase1:
2.09
GRMZM2G144821
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: September 1st, 2003
Variation: February 20th, 2007
Gene Model: January 22nd, 2016
1 year agotgd1 dTDP-glucose dehydratase homolog csu219:
1.03
GRMZM2G044027
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: September 1st, 2003
Variation: February 4th, 2015
Gene Model: February 4th, 2015
1 year agofns1 flavone synthase1:
 
GRMZM2G167336
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: September 20th, 2017
Gene Model: May 6th, 2016
1 year agoufgt3 UDP-flavone-glycosyltransferase3:
 
GRMZM2G063550
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: August 30th, 2018
Gene Model: August 30th, 2018
1 year agoaat1 anthocyanin acyltransferase1:
 
GRMZM2G387394
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: September 28th, 2018
Variation: October 1st, 2018
Gene Model: September 28th, 2018
1 year agovpp9 vacuolar proton pump9:
 
GRMZM2G069410
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: August 16th, 2016
Gene Model: May 29th, 2019
1 year agomha9 membrane H(+)-ATPase9:
 
AC209050.3_FG001
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: September 1st, 2003
Gene Model: January 10th, 2020
1 year agohcf244 high chlorophyll fluorescence244:
 
GRMZM2G143917
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359   AT4G35250 (TAIR) Reference: August 14th, 2022
Variation: January 27th, 2020
Gene Model: January 27th, 2020
1 year agochls12 chalcone synthase12:
 
GRMZM2G131529
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: September 1st, 2003
Gene Model: December 20th, 2020
1 year agochls11 chalcone synthase11:
 
GRMZM2G477683
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: September 1st, 2003
Gene Model: December 20th, 2020
1 year agoandr3 anthocyanidin reductase3:
 
GRMZM2G431504
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359   AT1G61720 (TAIR) Reference: August 14th, 2022
Gene Product: August 14th, 2022
Gene Model: August 14th, 2022
1 year agopco133428  :
5.06
GRMZM2G347767
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Variation: June 25th, 2021
Gene Model: May 23rd, 2020
1 year agovpp6 vacuolar proton pump6:
9.02
GRMZM2G014240
Chatham, LA; Juvik, JA. 2020. bioRxiv preprint pp.10.1101/2020.05.20.107359     Reference: August 14th, 2022
Gene Product: September 1st, 2003
Gene Model: May 30th, 2017
1 year agoaic2 auxin import carrier2:
 
GRMZM2G045057
Xiang, N et al. 2022. Food Chemistry: Molecular Sciences 5:100128   AT2G21050 (TAIR) Reference: August 13th, 2022
Gene Product: September 1st, 2003
Variation: August 1st, 2017
Gene Model: August 1st, 2017
1 year agoaas4 auxin amido synthetase4:
 
GRMZM2G061005
Xiang, N et al. 2022. Food Chemistry: Molecular Sciences 5:100128     Reference: August 13th, 2022
Gene Product: October 21st, 2019
Gene Model: October 21st, 2019
1 year agoo16 opaque16:
2.07
   Chand, G et al. 2022. J Cereal Sci 107:103534     Reference: August 12th, 2022
Variation: February 16th, 2006
1 year agoxt4 beta-1,4-xylosyltransferase4:
3.05
GRMZM2G056702
Joshi, J et al. 2021. Metabolites 11:797     Reference: November 23rd, 2021
Gene Product: August 12th, 2022
Gene Model: April 4th, 2020
1 year agoxt3 beta-1,4-xylosyltransferase3:
 
   Kozlova, LV et al. 2020. Sci. Rep. 10:10956     Reference: July 2nd, 2020
Gene Product: August 12th, 2022
1 year agoabi14 ABI3-VP1-transcription factor 14:
 
   Takahashi, H et al. 2015. Ann Bot 115:879-894     Reference: August 11th, 2022
Gene Product: January 29th, 2022
1 year agogpx10 glycerophosphodiester phosphodiesterase10:
 
GRMZM2G018416
Takahashi, H et al. 2015. Ann Bot 115:879-894     Reference: August 11th, 2022
Gene Product: June 24th, 2020
Gene Model: June 24th, 2020
1 year agopgl108 polygalacturonase108:
 
GRMZM2G037431
Takahashi, H et al. 2015. Ann Bot 115:879-894     Reference: August 11th, 2022
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
1 year agopgl27 polygalacturonase27:
 
GRMZM2G079263
Takahashi, H et al. 2015. Ann Bot 115:879-894     Reference: August 11th, 2022
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
1 year agopmei38 pectin methylesterase inhibitor38:
6.01
GRMZM2G048430
Takahashi, H et al. 2015. Ann Bot 115:879-894     Reference: August 11th, 2022
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
1 year agoIDP781  :
5.03
GRMZM2G020146
Takahashi, H et al. 2015. Ann Bot 115:879-894     Reference: August 11th, 2022
Variation: March 31st, 2005
Gene Model: February 24th, 2020
1 year agoftsh2 filamentation temperature-sensitive H 2A homolog2:
6.02
GRMZM2G087598
Zhang, J et al. 2022. G3 pp.doi: 10.1093/g3journal/jkac198     Reference: August 10th, 2022
Gene Product: September 10th, 2019
Gene Model: November 21st, 2021
1 year agocnr1 Cell Number Regulator1:
 
GRMZM2G015941
Thibivilliers, S et al. 2020. Plants 9:377     Reference: August 10th, 2022
Gene Product: August 10th, 2022
Gene Model: April 23rd, 2020
1 year agocnr2 Cell Number Regulator2:
 
GRMZM2G151230
Thibivilliers, S et al. 2020. Plants 9:377     Reference: August 10th, 2022
Gene Product: August 10th, 2022
Gene Model: April 18th, 2020
1 year agocnr3 Cell Number Regulator3:
 
GRMZM2G053387
Thibivilliers, S et al. 2020. Plants 9:377     Reference: August 10th, 2022
Gene Product: August 10th, 2022
Gene Model: April 27th, 2020
1 year agocnr4 Cell Number Regulator4:
 
GRMZM2G141526
Guo, M et al. 2010. Plant Cell 121:1057-1073     Reference: June 11th, 2013
Gene Product: August 10th, 2022
Gene Model: April 28th, 2020
1 year agocnr5 Cell Number Regulator5:
 
GRMZM5G892035
Thibivilliers, S et al. 2020. Plants 9:377     Reference: August 10th, 2022
Gene Product: August 10th, 2022
Gene Model: April 28th, 2020
1 year agocnr8 Cell Number Regulator8:
 
GRMZM2G334628
Pingault, L et al. 2021. BMC Plant Biology 21:138     Reference: March 17th, 2021
Gene Product: August 10th, 2022
Gene Model: April 28th, 2020
1 year agocnr9 Cell Number Regulator9:
 
GRMZM2G023081
Thibivilliers, S et al. 2020. Plants 9:377     Reference: August 10th, 2022
Gene Product: August 10th, 2022
Gene Model: April 28th, 2020
1 year agocnr10 Cell Number Regulator10:
 
GRMZM2G325477
Thibivilliers, S et al. 2020. Plants 9:377     Reference: August 10th, 2022
Gene Product: August 10th, 2022
Gene Model: April 28th, 2020
1 year agocnr11 Cell Number Regulator11:
 
GRMZM2G367431
Guo, M et al. 2010. Plant Cell 121:1057-1073     Reference: June 11th, 2013
Gene Product: August 10th, 2022
Gene Model: April 28th, 2020
1 year agosaur59 small auxin up RNA59:
 
GRMZM2G462760
Zhang, J et al. 2022. G3 pp.doi: 10.1093/g3journal/jkac198     Reference: August 10th, 2022
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
1 year agocnr14 Cell Number Regulator14:
 
GRMZM2G173742
Tao, TY et al. 2022. Frontiers in Plant Genetics and Genomics 13:960529     Reference: August 10th, 2022
Gene Product: August 10th, 2022
Gene Model: August 10th, 2022
1 year agopis2 phosphatidylinositol synthase2:
6.02
GRMZM2G087850
Zhang, J et al. 2022. G3 pp.doi: 10.1093/g3journal/jkac198     Reference: August 10th, 2022
Gene Product: September 18th, 2020
Gene Model: May 22nd, 2022
1 year agocnr6 Cell Number Regulator6:
9.07
GRMZM2G168257
Guo, M et al. 2010. Plant Cell 121:1057-1073     Reference: June 11th, 2013
Gene Product: August 10th, 2022
Gene Model: April 28th, 2020
1 year agocnr7 Cell Number Regulator7:
1.11
GRMZM2G119755
Thibivilliers, S et al. 2020. Plants 9:377     Reference: August 10th, 2022
Gene Product: August 10th, 2022
Gene Model: February 16th, 2020
1 year agocsd2 CSD-transcription factor 2:
4.10
GRMZM2G389768
Ma, Y et al. 2022. Plants 11: 2082     Reference: August 9th, 2022
Variation: September 1st, 2003
Gene Model: June 7th, 2018
1 year agomips1 myo-inositol phosphate synthase1:
1.02
GRMZM2G155242
Ma, Y et al. 2022. Plants 11: 2082     Reference: August 9th, 2022
Gene Product: July 13th, 2019
Variation: April 30th, 2011
Gene Model: April 23rd, 2013
1 year agoabi40 ABI3-VP1-transcription factor 40:
 
   Ma, Y et al. 2022. Plants 11: 2082     Reference: August 9th, 2022
Gene Product: January 29th, 2022
1 year agovoz1 VOZ-transcription factor 1:
 
   Ma, Y et al. 2022. Plants 11: 2082     Reference: August 9th, 2022
Gene Product: September 14th, 2021
1 year agoocl5 outer cell layer5:
4.04 - 4.05
   Ma, Y et al. 2022. Plants 11: 2082     Reference: August 9th, 2022
Gene Product: September 1st, 2003
Variation: August 12th, 2019
1 year agopdi2 protein disulfide isomerase2:
2.08
GRMZM2G163421
Liu, HM et al. 2022. Frontiers Plant Sci 13:895763     Reference: August 9th, 2022
Gene Product: September 1st, 2003
Variation: December 23rd, 2015
Gene Model: December 18th, 2015
1 year agoagpll2 ADP glucose pyrophosphorylase large subunit leaf2:
 
GRMZM2G144002
Liu, HM et al. 2022. Frontiers Plant Sci 13:895763     Reference: August 9th, 2022
Gene Product: January 3rd, 2014
Gene Model: January 7th, 2014
1 year agotraf3 TNF receptor-associated factor 3:
 
GRMZM2G000936
Ma, Y et al. 2022. Plants 11: 2082     Reference: August 9th, 2022
Gene Product: June 30th, 2021
Gene Model: December 3rd, 2020
1 year agoglpx1 glutathione peroxidase1:
 
GRMZM2G012479
Ma, Y et al. 2022. Plants 11: 2082     Reference: August 9th, 2022
Gene Product: March 4th, 2022
Gene Model: August 27th, 2021
1 year agoZm00001d031847  :
 
GRMZM5G899800
Ma, Y et al. 2022. Plants 11: 2082   AT3G54670 (TAIR) Reference: August 9th, 2022
Gene Product: December 10th, 2019
Gene Model: June 7th, 2022
1 year agoIDP622  :
1.02
GRMZM2G009326
Ma, Y et al. 2022. Plants 11: 2082     Reference: August 9th, 2022
Variation: March 12th, 2007
Gene Model: February 11th, 2019
1 year agomagi107220  :
1.04
GRMZM2G172244
Ma, Y et al. 2022. Plants 11: 2082     Reference: August 9th, 2022
Variation: March 31st, 2005
Gene Model: February 13th, 2019
1 year agoIDP143  :
2.09
GRMZM2G160515
Liu, HM et al. 2022. Frontiers Plant Sci 13:895763     Reference: August 9th, 2022
Variation: March 31st, 2005
Gene Model: February 14th, 2021
1 year agoIDP1696  :
3.05
GRMZM2G174221
Ma, Y et al. 2022. Plants 11: 2082     Reference: August 9th, 2022
Variation: March 31st, 2005
Gene Model: February 24th, 2019
1 year agoIDP274  :
4.03
GRMZM2G117609
Liu, HM et al. 2022. Frontiers Plant Sci 13:895763     Reference: August 9th, 2022
Variation: March 31st, 2005
Gene Model: April 12th, 2020
1 year agohct6 hydroxycinnamoyltransferase6:
5.05
   Ma, Y et al. 2022. Plants 11: 2082     Reference: August 9th, 2022
Gene Product: November 7th, 2015
1 year agorso1 rf2a's significant other1:
 
GRMZM2G465430
Cao, J. 2007. Genetic dissection of rf2a-mediated fertility restoration pathway in maize     Reference: November 4th, 2021
Gene Product: October 26th, 2020
Variation: August 8th, 2022
Gene Model: August 6th, 2022
1 year agosrs1 SHI/STY (SRS)-transcription factor 1:
 
   Yin, XF et al. 2022. Frontiers Plant Sci 13:963985     Reference: August 4th, 2022
Gene Product: April 27th, 2015
1 year agomterf17 mTERF domain protein17:
 
   Yin, XF et al. 2022. Frontiers Plant Sci 13:963985     Reference: August 4th, 2022
Variation: March 17th, 2021
1 year agokea2 K+ efflux antiporter 2:
 
GRMZM2G039797
Yin, XF et al. 2022. Frontiers Plant Sci 13:963985     Reference: August 4th, 2022
Gene Product: April 26th, 2021
Variation: April 26th, 2021
Gene Model: April 26th, 2021
1 year agosaur69 small auxin up RNA69:
 
GRMZM2G350023
Yin, XF et al. 2022. Frontiers Plant Sci 13:963985     Reference: August 4th, 2022
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
1 year agohtcp1 heterochromatin protein1:
8.05
GRMZM2G155889
Yin, XF et al. 2022. Frontiers Plant Sci 13:963985     Reference: August 4th, 2022
Gene Product: November 2nd, 2020
Gene Model: September 5th, 2021
1 year agodrp1 desiccation-related protein1:
 
GRMZM2G327051
Hu, MJ et al. 2022. J Exp Bot pp.doi: 10.1093/jxb/erac331     Reference: August 4th, 2022
Gene Product: August 4th, 2022
Variation: August 4th, 2022
Gene Model: July 10th, 2020
1 year agoIDP602  :
8.04
GRMZM2G084274
Yin, XF et al. 2022. Frontiers Plant Sci 13:963985     Reference: August 4th, 2022
Variation: March 30th, 2007
Gene Model: August 30th, 2019
1 year agocep1 C-terminally encoded peptide1:
1.07
GRMZM2G007969
Yin, XF et al. 2022. Frontiers Plant Sci 13:963985     Reference: August 4th, 2022
Gene Product: October 23rd, 2020
Gene Model: February 11th, 2020
1 year agomctp13 multiple C2 domain and transmembrane region protein13:
7.03
GRMZM2G416484
Zhao, YJ et al. 2022. BMC Plant Biology 22:388     Reference: August 3rd, 2022
Gene Product: August 3rd, 2022
Variation: September 25th, 2007
Gene Model: September 1st, 2021
1 year agomctp4 multiple C2 domain and transmembrane region protein4:
2.07
GRMZM2G400173
Zhao, YJ et al. 2022. BMC Plant Biology 22:388     Reference: August 3rd, 2022
Gene Product: August 3rd, 2022
Gene Model: April 9th, 2022
1 year agomctp1 multiple C2 domain and transmembrane region protein1:
2.00
GRMZM2G386643
Zhao, YJ et al. 2022. BMC Plant Biology 22:388     Reference: August 3rd, 2022
Gene Product: August 3rd, 2022
Gene Model: January 30th, 2020
1 year agomctp9 multiple C2 domain and transmembrane region protein9:
 
GRMZM2G100864
Zhao, YJ et al. 2022. BMC Plant Biology 22:388     Reference: August 3rd, 2022
Gene Product: August 3rd, 2022
Gene Model: February 18th, 2022
1 year agomctp3 multiple C2 domain and transmembrane region protein3:
 
GRMZM5G807350
Zhao, YJ et al. 2022. BMC Plant Biology 22:388     Reference: August 3rd, 2022
Gene Product: August 3rd, 2022
Gene Model: August 3rd, 2022
1 year agomctp5 multiple C2 domain and transmembrane region protein5:
 
GRMZM2G163925
Zhao, YJ et al. 2022. BMC Plant Biology 22:388     Reference: August 3rd, 2022
Gene Product: August 3rd, 2022
Gene Model: August 3rd, 2022
1 year agomctp6 multiple C2 domain and transmembrane region protein6:
 
GRMZM2G000195
Zhao, YJ et al. 2022. BMC Plant Biology 22:388     Reference: August 3rd, 2022
Gene Product: August 3rd, 2022
Gene Model: August 3rd, 2022
1 year agomctp8 multiple C2 domain and transmembrane region protein8:
 
GRMZM5G800598
Zhao, YJ et al. 2022. BMC Plant Biology 22:388     Reference: August 3rd, 2022
Gene Product: August 3rd, 2022
Gene Model: August 3rd, 2022
1 year agomctp10 multiple C2 domain and transmembrane region protein10:
 
GRMZM2G129642
Zhao, YJ et al. 2022. BMC Plant Biology 22:388     Reference: August 3rd, 2022
Gene Product: August 3rd, 2022
Gene Model: August 3rd, 2022
1 year agomctp12 multiple C2 domain and transmembrane region protein12:
 
AC200753.3_FG003
Zhao, YJ et al. 2022. BMC Plant Biology 22:388     Reference: August 3rd, 2022
Gene Product: August 3rd, 2022
Gene Model: August 3rd, 2022
1 year agomctp14 multiple C2 domain and transmembrane region protein14:
 
GRMZM2G131176
Zhao, YJ et al. 2022. BMC Plant Biology 22:388     Reference: August 3rd, 2022
Gene Product: August 3rd, 2022
Gene Model: August 3rd, 2022
1 year agomctp17 multiple C2 domain and transmembrane region protein17:
 
GRMZM2G074754
Zhao, YJ et al. 2022. BMC Plant Biology 22:388     Reference: August 3rd, 2022
Gene Product: August 3rd, 2022
Gene Model: August 3rd, 2022
1 year agoIDP1674  :
2.08
GRMZM2G327635
Willcox, M et al. 2022. Front Sustain Food Syst 6:937200.     Reference: August 2nd, 2022
Variation: March 31st, 2005
Gene Model: February 20th, 2019
1 year agoIDP875  :
1.03
GRMZM5G851485
Gao, R-X et al. 2022. J Integrative Agriculture doi: 10.1016/j.jia.2022.07.007     Reference: August 1st, 2022
Variation: March 31st, 2005
Gene Model: February 13th, 2019
1 year agopgh1 polygalacturonase gene homolog1:
 
GRMZM2G135763
Zhang, MY et al. 2022. Plants 11:1989     Reference: July 30th, 2022
Gene Product: October 4th, 2021
Variation: July 15th, 2019
Gene Model: July 15th, 2019
1 year agoyuc14 yucca14:
 
GRMZM2G022845
Zhang, M, et al. 2022. New Phytol. 0:doi: 10.1111/nph.18317     Reference: July 26th, 2022
Gene Product: June 18th, 2018
Gene Model: June 17th, 2022
1 year agozip1 zinc-regulated, iron-regulated transporter-like protein1:
 
GRMZM2G001803
Mondal, TK et al. 2014. Plant Mol Biol Rep 32:605-616     Reference: July 25th, 2022
Gene Product: June 5th, 2019
Gene Model: June 5th, 2019
1 year agozip4 zinc-regulated, iron-regulated transporter-like protein4:
 
GRMZM2G111300
Mondal, TK et al. 2014. Plant Mol Biol Rep 32:605-616     Reference: July 25th, 2022
Gene Product: June 5th, 2019
Gene Model: June 5th, 2019
1 year agoirt1 iron-regulated transporter1:
 
GRMZM2G118821
Mondal, TK et al. 2014. Plant Mol Biol Rep 32:605-616     Reference: July 25th, 2022
Gene Product: June 5th, 2019
Gene Model: June 5th, 2019
1 year agoaaap11 amino acid/auxin permease11:
 
GRMZM2G137161
Abedi, T et al. 2022. Plants 11:1922     Reference: July 25th, 2022
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
1 year agozip9 zinc-regulated, iron-regulated transporter-like protein9:
 
GRMZM2G050484
Mondal, TK et al. 2014. Plant Mol Biol Rep 32:605-616     Reference: July 25th, 2022
Gene Product: June 5th, 2019
Gene Model: September 6th, 2021
1 year agozip11 zinc-regulated, iron-regulated transporter-like protein11:
10.02
GRMZM5G813470
Mondal, TK et al. 2014. Plant Mol Biol Rep 32:605-616     Reference: July 25th, 2022
Gene Product: June 5th, 2019
Gene Model: June 29th, 2020
1 year agoaomt1 anthranilate O-methyltransferase1:
 
GRMZM2G039993
Ye, WF et al. 2022.Plant Direct 6:e426     Reference: July 23rd, 2022
Gene Product: December 23rd, 2020
Gene Model: December 23rd, 2020
1 year agoaomt7 anthranilate O-methyltransferase7:
 
GRMZM2G050321
Ye, WF et al. 2022.Plant Direct 6:e426     Reference: July 23rd, 2022
Gene Product: December 23rd, 2020
Gene Model: December 23rd, 2020
1 year agoeif5 eucaryotic translation initiation factor5:
4.10
   Liu, H et al. 2022. Plant Cell pp.doi: 10.1093/plcell/koac216     Reference: July 22nd, 2022
Gene Product: September 1st, 2003
Variation: February 24th, 2014
1 year agoumc1365  :
5.01
GRMZM2G077034
Niu, LJ et al. 2022. BMC Plant Biology 22:359     Reference: July 22nd, 2022
Variation: September 1st, 2003
Gene Model: March 12th, 2021
1 year agoumc1735  :
8.03
GRMZM2G164090
Niu, LJ et al. 2022. BMC Plant Biology 22:359     Reference: July 22nd, 2022
Variation: July 12th, 2021
Gene Model: September 18th, 2018
1 year agoshrek1 shrunken and embryo defective kernel1:
3.05
GRMZM2G081013
Liu, H et al. 2022. Plant Cell pp.doi: 10.1093/plcell/koac216     Reference: July 22nd, 2022
Gene Product: December 19th, 2020
Variation: July 22nd, 2022
Gene Model: April 4th, 2020
1 year agoglb3 globulin3:
6.06
GRMZM2G410134
Niu, LJ et al. 2022. BMC Plant Biology 22:359     Reference: July 22nd, 2022
Variation: March 30th, 2009
Gene Model: October 28th, 2013
1 year agodrm2 dormancy associated2:
 
GRMZM2G005146
Niu, LJ et al. 2022. BMC Plant Biology 22:359     Reference: July 22nd, 2022
Gene Product: September 25th, 2015
Gene Model: March 5th, 2021
1 year agosaur17 small auxin up RNA17:
 
GRMZM2G388051
Niu, LJ et al. 2022. BMC Plant Biology 22:359     Reference: July 22nd, 2022
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
1 year agoZm00025ab420970  :
 
   Tian, ZQ et al. 2022. Physiol Mol Plant Pathol pp.doi: 10.1016/j.pmpp.2022.101871     Reference: July 22nd, 2022
Gene Product: January 17th, 2022
1 year agoAY107329  :
5.05
   Jadhav, KP et al. 2022. Frontiers in Plant Genetics and Genomics 13:890133     Reference: July 22nd, 2022
Variation: September 25th, 2007
1 year agoIDP324  :
4.08
GRMZM2G017578
Liu, H et al. 2022. Plant Cell pp.doi: 10.1093/plcell/koac216     Reference: July 22nd, 2022
Variation: March 31st, 2005
Gene Model: April 25th, 2020
1 year agoIDP843  :
6.05
GRMZM2G061105
Liu, H et al. 2022. Plant Cell pp.doi: 10.1093/plcell/koac216     Reference: July 22nd, 2022
Variation: March 31st, 2005
Gene Model: January 1st, 2020
1 year agoparp2 poly(ADP-ribose) polymerase2:
2.06
GRMZM5G831712
Li, YX et al. 2022. Plant J pp.doi: 10.1111/tpj.15910     Reference: July 21st, 2022
Gene Product: September 7th, 2018
Variation: August 19th, 2010
Gene Model: July 28th, 2016
1 year agokw7 kernel width7:
7.02
GRMZM2G061562
Li, YX et al. 2022. Plant J pp.doi: 10.1111/tpj.15910     Reference: July 21st, 2022
Variation: September 25th, 2007
Gene Model: September 5th, 2018
1 year agocnh1 carbon-nitrogen hydrolase homolog1:
9.07
GRMZM2G169365
Li, YX et al. 2022. Plant J pp.doi: 10.1111/tpj.15910     Reference: July 21st, 2022
Variation: March 24th, 2011
Gene Model: June 1st, 2017
1 year agopza01925  :
5.01
GRMZM2G064118
Hussain, A et al. 2022. Sci. Rep. 12:12328     Reference: July 19th, 2022
Variation: September 25th, 2007
Gene Model: May 14th, 2022
1 year agochls10 chalcone synthase10:
 
GRMZM2G114471
Maharjan, N et al. 2022. bioRxiv preprint pp.doi: 10.1101/2022.07.18.500501     Reference: July 19th, 2022
Gene Product: September 1st, 2003
Gene Model: December 20th, 2020
1 year agorps13 ribosomal protein13:
4.05
GRMZM2G158034
Shi, X et al. 2022. BMC Plant Biology 22:348     Reference: July 18th, 2022
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: April 14th, 2015
1 year agocle26 clavata3/esr-related26:
 
GRMZM2G473147
Shi, X et al. 2022. BMC Plant Biology 22:348     Reference: July 18th, 2022
Gene Product: February 22nd, 2021
Gene Model: September 17th, 2016
1 year agomocos2 molybdenum cofactor sulfurase2:
 
GRMZM2G081571
Wang, W et al. 2022. BMC Plant Biology 22:346   AT1G30910 (TAIR) Reference: July 18th, 2022
Gene Product: January 23rd, 2021
Gene Model: January 23rd, 2021
1 year agomtn1 methylthioadenosine nucleosidase1:
 
GRMZM2G171111
Wang, W et al. 2022. BMC Plant Biology 22:346     Reference: July 18th, 2022
Gene Product: January 31st, 2022
Variation: January 31st, 2022
Gene Model: January 31st, 2022
1 year agomtn2 methylthioadenosine nucleosidase2:
 
GRMZM5G896883
Wang, W et al. 2022. BMC Plant Biology 22:346     Reference: July 18th, 2022
Gene Product: January 31st, 2022
Variation: January 31st, 2022
Gene Model: January 31st, 2022
1 year agoplc11 phospholipase C11:
3.04
GRMZM2G081719
Zhao, YM et al. 2022. Frontiers Plant Sci 13:935654     Reference: July 18th, 2022
Gene Product: January 12th, 2021
Variation: September 25th, 2007
Gene Model: March 25th, 2021
1 year agojmj2 JUMONJI-transcription factor 2:
 
   Zhu, YQ et al. 2022. J Plant Physiol 275:153763     Reference: July 16th, 2022
Gene Product: April 3rd, 2019
1 year agogpat13 glycerol-3-phosphate acyltransferase13:
 
GRMZM2G177150
Zhu, YQ et al. 2022. J Plant Physiol 275:153763     Reference: July 16th, 2022
Gene Product: March 25th, 2019
Gene Model: March 25th, 2019
1 year agomads89 MADS-transcription factor 89:
 
   Zhu, YQ et al. 2022. J Plant Physiol 275:153763     Reference: July 16th, 2022
Gene Product: September 10th, 2021
1 year agoplap2 plastid-lipid-associated protein2:
 
GRMZM5G870446
Zhu, YQ et al. 2022. J Plant Physiol 275:153763     Reference: July 16th, 2022
Gene Product: February 3rd, 2022
Gene Model: February 3rd, 2022
1 year agoiaa5 Aux/IAA-transcription factor5:
1.11
GRMZM5G809195
Yang, FY et al. 2022. PeerJ pp.DOI: 10.7717/peerj.13710     Reference: July 14th, 2022
Variation: September 28th, 2016
Gene Model: September 29th, 2016
1 year agotcptf25 TCP-transcription factor 25:
 
   Yang, FY et al. 2022. PeerJ pp.DOI: 10.7717/peerj.13710     Reference: July 14th, 2022
Gene Product: September 27th, 2019
1 year agotcptf44 TCP-transcription factor 44:
 
   Yang, FY et al. 2022. PeerJ pp.DOI: 10.7717/peerj.13710     Reference: July 14th, 2022
Gene Product: September 27th, 2019
1 year agoigps2 indole-3-glycerolphosphate synthase2:
 
GRMZM2G169516
Sikder, MM et al. 2021. J Exp Bot pp.doi: 10.1093/jxb/erab104     Reference: July 13th, 2022
Gene Product: March 29th, 2018
Gene Model: January 19th, 2021
1 year agopat37 protein S-acyltransferase37:
10.04
GRMZM2G001265
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: July 13th, 2022
1 year agoigl1 indole-3-glycerol phosphate lyase1:
1.11
GRMZM2G046163
Sikder, MM et al. 2021. J Exp Bot pp.doi: 10.1093/jxb/erab104     Reference: July 13th, 2022
Gene Product: October 14th, 2011
Variation: July 18th, 2014
Gene Model: October 14th, 2011
1 year agocl8889_1  :
1.11
GRMZM5G856966
Shi, J et al. 2022. BMC Plant Biology 22:328     Reference: July 8th, 2022
Variation: September 25th, 2007
Gene Model: August 9th, 2021
1 year agovq1 VQ motif-transcription factor1:
 
GRMZM2G417835
Nelissen, H et al. 2020. Plant Biotechnol J 18:1112-1114     Reference: July 8th, 2022
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
1 year agovq43 VQ motif-transcription factor43:
 
GRMZM2G036980
Nelissen, H et al. 2020. Plant Biotechnol J 18:1112-1114     Reference: July 8th, 2022
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
1 year agoacb3 Acyl-CoA-binding protein3:
 
GRMZM2G049495
Shi, J et al. 2022. BMC Plant Biology 22:328     Reference: July 8th, 2022
Gene Product: February 15th, 2021
Gene Model: February 15th, 2021
1 year agootsl4 overly tolerant to salt-like4:
 
GRMZM2G351786
Shi, J et al. 2022. BMC Plant Biology 22:328     Reference: July 8th, 2022
Gene Product: August 18th, 2021
Gene Model: August 18th, 2021
1 year agoIDP180  :
1.03
GRMZM2G341309
Shi, J et al. 2022. BMC Plant Biology 22:328     Reference: July 8th, 2022
Variation: March 31st, 2005
Gene Model: February 12th, 2019
1 year agomagi24643  :
1.10
GRMZM2G120596
Shi, J et al. 2022. BMC Plant Biology 22:328     Reference: July 8th, 2022
Variation: March 31st, 2005
Gene Model: February 16th, 2019
1 year agoprpo2 protoporphyrinogen IX oxidase2:
2.04
GRMZM2G364901
Xue, YJ et al. 2022. Frontiers Plant Sci 13:912215     Reference: July 7th, 2022
Gene Product: December 17th, 2014
Gene Model: August 12th, 2021
1 year agocrt2 calreticulin2:
7.02
   Aglyamova, A et al. 2022. Plants 11:1799     Reference: July 7th, 2022
Gene Product: February 12th, 2007
Variation: April 24th, 2010
1 year agoZm00001d040192  :
 
GRMZM2G049895
Aglyamova, A et al. 2022. Plants 11:1799     Reference: July 7th, 2022
Gene Product: April 8th, 2022
Gene Model: July 7th, 2022
1 year agosdg102 set domain gene102:
2.04
GRMZM2G147619
Li, YJ et al. 2022. Int J Mol Sci 23:7458     Reference: July 5th, 2022
Gene Product: June 30th, 2017
Variation: September 1st, 2003
Gene Model: June 29th, 2017
1 year agozrp2 Zea root protein2:
1.07
GRMZM2G106980
Hajheidari, M et al. 2022. PNAS Nexus doi: 10.1093/pnasnexus/pgac068     Reference: July 4th, 2022
Gene Product: August 18th, 2017
Variation: August 18th, 2017
Gene Model: July 28th, 2016
1 year agodin7 drought-induced protein 19 homolog7:
6.07
GRMZM2G038284
Zhao, Y et al. 2022. Int J Mol Sci 23:7390     Reference: July 4th, 2022
Gene Product: July 4th, 2022
Variation: September 1st, 2003
Gene Model: August 29th, 2018
1 year agodin2 drought-induced protein 19 homolog2:
3.05
   Zhao, Y et al. 2022. Int J Mol Sci 23:7390     Reference: July 4th, 2022
Gene Product: July 4th, 2022
1 year agorpl35a 60S ribosomal protein L35a:
 
GRMZM2G177098
Ma, YH et al. 2019. Grassland Sci pp.doi: 10.1111/grs.12246     Reference: August 22nd, 2019
Gene Product: August 22nd, 2019
Gene Model: July 4th, 2022
1 year agofb1 fiber protein1:
 
GRMZM5G840013
Zhao, Y et al. 2022. Int J Mol Sci 23:7390     Reference: July 4th, 2022
Gene Product: July 4th, 2022
Gene Model: March 30th, 2020
1 year agofb2 fiber protein2:
 
GRMZM2G069018
Zhao, Y et al. 2022. Int J Mol Sci 23:7390     Reference: July 4th, 2022
Gene Product: July 4th, 2022
Gene Model: March 30th, 2020
1 year agodin4 drought-induced protein 19 homolog4:
 
GRMZM2G103909
Zhao, Y et al. 2022. Int J Mol Sci 23:7390     Reference: July 4th, 2022
Gene Product: July 4th, 2022
Gene Model: July 4th, 2022
1 year agodin5 drought-induced protein 19 homolog5:
 
GRMZM2G160273
Zhao, Y et al. 2022. Int J Mol Sci 23:7390     Reference: July 4th, 2022
Gene Product: July 4th, 2022
Gene Model: July 4th, 2022
1 year agoalmt10 aluminum-activated malate transporter homolog10:
9.03
GRMZM2G057983
Pei, YR et al. 2022. Plant Cell pp.doi: 10.1093/plcell/koac093     Reference: March 16th, 2022
Gene Product: March 16th, 2022
Gene Model: July 3rd, 2022
1 year agoumc1416  :
5.00
GRMZM2G033117
Hill, MJ et al. 2022. BMC Plant Biology 22:315     Reference: July 2nd, 2022
Variation: September 1st, 2003
Gene Model: May 1st, 2020
1 year agoumc1560  :
2.07
GRMZM2G179459
Hill, MJ et al. 2022. BMC Plant Biology 22:315     Reference: July 2nd, 2022
Variation: September 1st, 2003
Gene Model: February 21st, 2018
1 year agoasg34a(msd)  :
7.02
GRMZM2G054267
Hill, MJ et al. 2022. BMC Plant Biology 22:315     Reference: July 2nd, 2022
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: April 7th, 2017
1 year agojih3 jasmonoyl-l-isoleucine hydrolase3:
 
GRMZM2G091540
Hill, MJ et al. 2022. BMC Plant Biology 22:315     Reference: July 2nd, 2022
Gene Product: June 10th, 2022
Gene Model: June 10th, 2022
1 year agoohp3 opaque2 heterodimerizing protein3:
8.05
GRMZM2G143469
Hill, MJ et al. 2022. BMC Plant Biology 22:315     Reference: July 2nd, 2022
Gene Product: August 21st, 2018
Gene Model: September 24th, 2018
1 year agolpcat1 lysophosphatidylcholine acyl transferase1:
5.06
GRMZM2G481755
Barnes, AC et al. 2022. Proc Natl Acad Sci, USA 119:e2100036119     Reference: June 30th, 2022
Gene Product: April 18th, 2022
Variation: September 1st, 2003
Gene Model: July 11th, 2018
1 year agod*-6 dwarf candidate6:
5.00 - 5.04
   Incognito, SJP et al. 2022. Euphytica 218:103     Reference: June 30th, 2022
Variation: September 1st, 2003
1 year agod*-3685 dwarf candidate3685:
2.00 - 2.03
   Incognito, SJP et al. 2022. Euphytica 218:103     Reference: June 30th, 2022
Variation: September 1st, 2003
1 year agoeta1 extended auricle1:
5.04
   Incognito, SJP et al. 2022. Euphytica 218:103     Reference: June 30th, 2022
Variation: May 20th, 2006
1 year agodgk7 diacylglycerol kinase7:
 
GRMZM2G062429
Barnes, AC et al. 2022. Proc Natl Acad Sci, USA 119:e2100036119     Reference: June 30th, 2022
Gene Product: September 18th, 2017
Variation: September 18th, 2017
Gene Model: September 18th, 2017
1 year agogpat15 glycerol-3-phosphate acyltransferase15:
 
GRMZM2G159890
Barnes, AC et al. 2022. Proc Natl Acad Sci, USA 119:e2100036119     Reference: June 30th, 2022
Gene Product: March 25th, 2019
Gene Model: March 25th, 2019
1 year agocad1 cinnamyl alcohol dehydrogenase1:
2.02
GRMZM2G046070
Jin, XN et al. 2022. Genes & Genomics doi: 10.1007/s13258-022-01279-0     Reference: June 30th, 2022
Gene Product: September 1st, 2003
Gene Model: June 7th, 2012
1 year agoabi46 ABI3-VP1-transcription factor 46:
 
   Wang, JL et al. 2022. Frontiers Plant Sci 13:826875     Reference: June 28th, 2022
Gene Product: January 29th, 2022
1 year agopik1 phosphatidylinositol 3-kinase1:
4.05
   Wang, JL et al. 2022. Frontiers Plant Sci 13:826875     Reference: June 28th, 2022
Gene Product: September 1st, 2003
Variation: September 25th, 2007
1 year agorcc3 regulator of chromosome condensation3:
 
GRMZM2G135770
Wang, JL et al. 2022. Frontiers Plant Sci 13:826875     Reference: June 28th, 2022
Gene Product: August 2nd, 2021
Variation: November 18th, 2016
Gene Model: November 18th, 2016
1 year agocesa15 cellulose synthase15:
 
GRMZM2G339645
Wang, JL et al. 2022. Frontiers Plant Sci 13:826875     Reference: June 28th, 2022
Gene Product: October 7th, 2016
Gene Model: July 2nd, 2020
1 year agopk3 S-domain class receptor-like kinase3:
7.03
GRMZM2G309025
Wang, JL et al. 2022. Frontiers Plant Sci 13:826875     Reference: June 28th, 2022
Gene Product: October 10th, 2020
Variation: May 12th, 2005
Gene Model: August 5th, 2015
1 year agoglk34 G2-like-transcription factor 34:
9.03
GRMZM2G081671
Kumar, K et al. 2022. Mol Biol Rep pp.doi: 10.1007/s11033-022-07679-5     Reference: June 27th, 2022
Variation: September 1st, 2003
Gene Model: October 13th, 2018
1 year agoglk101 G2-like-transcription factor 1:
7.02
GRMZM2G064197
Kumar, K et al. 2022. Mol Biol Rep pp.doi: 10.1007/s11033-022-07679-5     Reference: June 27th, 2022
Variation: September 1st, 2003
Gene Model: September 6th, 2018
1 year agomybr51 MYB-related-transcription factor 51:
5.09
GRMZM2G379167
Kumar, K et al. 2022. Mol Biol Rep pp.doi: 10.1007/s11033-022-07679-5     Reference: June 27th, 2022
Variation: September 1st, 2003
Gene Model: March 31st, 2017
1 year agorlk6 receptor-like protein kinase6:
 
GRMZM2G451147
Azevedo, GC et al. 2015. BMC Plant Biology 15:172     Reference: June 27th, 2022
Gene Product: July 10th, 2019
Gene Model: February 3rd, 2021
1 year agobzip86 bZIP-transcription factor 86:
 
   Xing, JY et al. 2022. Int J Mol Sci 23:6493     Reference: June 24th, 2022
Gene Product: August 21st, 2018
1 year agoppr436 pentatricopeptide repeat protein436:
8.03
AC187551.3_FG002
    Gene Product: December 27th, 2016
Gene Model: June 24th, 2022
1 year agomyb100 MYB-transcription factor 100:
1.05
GRMZM2G143046
Xiong, WD et al. 2022. Frontiers Plant Sci 13:922581     Reference: June 23rd, 2022
Variation: December 6th, 2016
Gene Model: December 6th, 2016
1 year agonbs25 nucleotide-binding site25:
4.08
GRMZM2G050959
Chen, YD et al. 2022. Plant Cell Rep pp.doi: 10.1007/s00299-022-02891-w     Reference: June 23rd, 2022
Gene Product: January 17th, 2022
Gene Model: June 6th, 2018
1 year agocal4 calmodulin4:
 
GRMZM2G115628
Chen, YD et al. 2022. Plant Cell Rep pp.doi: 10.1007/s00299-022-02891-w     Reference: June 23rd, 2022
Gene Product: September 1st, 2003
Gene Model: December 19th, 2019
1 year agokds1 CMP-KDO synthetase1:
8.03
GRMZM2G119256
Gomez, E et al. 2009. Plant Cell 21:2022-2035     Reference: June 18th, 2022
Variation: January 2nd, 2013
Gene Model: July 28th, 2016
1 year agotp3 teopod3:
3.02
   Singh, Z et al. 2022. Plant Cell Physiol pp.doi: 10.1093/pcp/pcac084     Reference: June 17th, 2022
Variation: October 27th, 2005
1 year agoric1 ras-related protein RIC1:
 
GRMZM2G106960
Xie, C et al. 2022. J Exp Bot pp.doi: 10.1093/jxb/erac262     Reference: June 17th, 2022
Variation: January 12th, 2011
Gene Model: June 1st, 2017
1 year agoIDP3942  :
2.04
   Xie, C et al. 2022. J Exp Bot pp.doi: 10.1093/jxb/erac262     Reference: June 17th, 2022
Variation: April 27th, 2021
1 year agomtl8 metallothionein8:
3.04
GRMZM2G161154
Dhakal, R et al. 2017. Frontiers Plant Sci 8:503     Reference: June 16th, 2022
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: April 2nd, 2018
1 year agolug5 leunig-related5:
3.04
   Dhakal, R et al. 2017. Frontiers Plant Sci 8:503     Reference: June 16th, 2022
Gene Product: October 23rd, 2018
Variation: September 25th, 2007
1 year agoAY107881  :
6.05
GRMZM5G833124
Dhakal, R et al. 2017. Frontiers Plant Sci 8:503     Reference: June 16th, 2022
Variation: September 25th, 2007
Gene Model: January 5th, 2020
1 year agoroa4 replication origin activator4:
8.04
GRMZM2G162445
Sabelli, PA et al. 1999. J Exp Bot 50:1315-1322     Reference: October 2nd, 2006
Gene Product: August 2nd, 2017
Gene Model: June 14th, 2022
1 year agoxa21 Xanthomonas oryzae pv. oryzae resistance ortholog21:
 
GRMZM2G389948
Gao, Y et al. 2016. Frontiers Plant Sci 7:1716   LOC_Os11g29790 (MSU/TIGR)
Os11g0559200 (Gramene)
Reference: June 13th, 2022
Gene Product: July 10th, 2019
Gene Model: July 26th, 2019
1 year agopgip3 polygalacturonase-inhibiting protein3:
 
GRMZM2G025105
Gao, Y et al. 2016. Frontiers Plant Sci 7:1716     Reference: June 13th, 2022
Gene Product: September 4th, 2019
Gene Model: September 4th, 2019
1 year agohak24 potassium high-affinity transporter24:
 
GRMZM2G120163
Gao, Y et al. 2016. Frontiers Plant Sci 7:1716     Reference: June 13th, 2022
Gene Product: March 12th, 2020
Gene Model: March 12th, 2020
1 year agohak25 potassium high-affinity transporter25:
 
GRMZM2G375116
Gao, Y et al. 2016. Frontiers Plant Sci 7:1716     Reference: June 13th, 2022
Gene Product: March 12th, 2020
Gene Model: March 12th, 2020
1 year agochx15 cation/H+ antiporter 15:
 
GRMZM2G047875
Gao, Y et al. 2016. Frontiers Plant Sci 7:1716     Reference: June 13th, 2022
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
1 year agonip2d NOD26-like membrane intrinsic protein2d:
 
GRMZM2G082184
Gao, Y et al. 2016. Frontiers Plant Sci 7:1716     Reference: June 13th, 2022
Gene Product: January 27th, 2022
Gene Model: January 27th, 2022
1 year agossrp1 starch synthesis regulating protein1:
 
GRMZM2G104501
Chen, L et al. 2022. Funct Plant Biol pp.doi: 10.1071/FP21338   LOC_Os03g48170 (MSU/TIGR)
Os03g0686900 (Gramene)
Reference: May 2nd, 2022
Gene Product: June 13th, 2022
Gene Model: May 2nd, 2022
1 year agossrp2 starch synthesis regulating protein2:
 
GRMZM2G122274
Peng, XJ et al. 2022. Int J Mol Sci 23:6598   LOC_Os03g48170 (MSU/TIGR)
Os03g0686900 (Gramene)
Reference: June 13th, 2022
Gene Product: June 13th, 2022
Gene Model: June 13th, 2022
1 year agoIDP321  :
5.01
GRMZM2G054193
Gao, Y et al. 2016. Frontiers Plant Sci 7:1716     Reference: June 13th, 2022
Variation: March 31st, 2005
Gene Model: June 18th, 2021
1 year agothx20 Trihelix-transcription factor 20:
 
   Ren, JJ et al. 2022. Agriculture 12:845     Reference: June 11th, 2022
Gene Product: November 9th, 2021
Variation: November 9th, 2021
1 year agocct3 CO CO-LIKE TIMING OF CAB1 protein domain3:
8.07
GRMZM5G868285
Xu, SH et al. 2022. Crop J doi: 10.1016/j.cj.2022.04.016     Reference: June 10th, 2022
Gene Product: June 18th, 2018
Gene Model: July 13th, 2021
1 year agoumc1427  :
8.03 - 8.04
GRMZM5G821139
Li, YT et al. 2022. Frontiers Plant Sci 13:930438     Reference: June 10th, 2022
Variation: September 1st, 2003
Gene Model: August 30th, 2019
1 year agomterf19 mTERF-domain protein19:
 
   Xu, JQ et al. 2022. Crop J doi: 10.1016/j.cj.2022.05.004     Reference: June 10th, 2022
Gene Product: February 19th, 2015
1 year agorld1 rolled leaf1:
9.07 - 9.08
   Li, YT et al. 2022. Frontiers Plant Sci 13:930438     Reference: June 10th, 2022
Gene Product: October 6th, 2015
Variation: June 30th, 2012
1 year agotip2b tonoplast intrinsic protein2:
5.06
GRMZM2G056908
Mamani-Huarcaya, BM et al. 2022. Plant Physiol Biochem pp.doi: 10.1016/j.plaphy.2022.06.003     Reference: June 10th, 2022
Gene Product: January 27th, 2022
Variation: September 1st, 2003
Gene Model: February 5th, 2015
1 year agoelfa1 elongation factor alpha1:
8.03
GRMZM2G151193
Mamani-Huarcaya, BM et al. 2022. Plant Physiol Biochem pp.doi: 10.1016/j.plaphy.2022.06.003     Reference: June 10th, 2022
Gene Product: September 1st, 2003
Variation: July 8th, 2017
Gene Model: July 8th, 2017
1 year agorte1 rotten ear1:
1.05
GRMZM2G166159
Mamani-Huarcaya, BM et al. 2022. Plant Physiol Biochem pp.doi: 10.1016/j.plaphy.2022.06.003     Reference: June 10th, 2022
Gene Product: June 24th, 2017
Variation: July 21st, 2014
Gene Model: July 19th, 2014
1 year agoimd2 isopropylmalate dehydrogenase2:
 
GRMZM5G803490
Guo, S et al. 2022. Plants 11:1550     Reference: June 10th, 2022
Gene Product: September 1st, 2003
Variation: July 22nd, 2014
Gene Model: July 22nd, 2014
1 year agorte3 rotten ear3:
 
GRMZM2G051753
Mamani-Huarcaya, BM et al. 2022. Plant Physiol Biochem pp.doi: 10.1016/j.plaphy.2022.06.003     Reference: June 10th, 2022
Gene Product: June 24th, 2017
Variation: June 24th, 2017
Gene Model: June 24th, 2017
1 year agosfp2 sulfate transporter2:
 
GRMZM2G080178
Xu, SH et al. 2022. Crop J doi: 10.1016/j.cj.2022.04.016     Reference: June 10th, 2022
Gene Product: May 8th, 2020
Gene Model: November 13th, 2017
1 year agomca9 metacaspase9:
 
GRMZM2G047274
Guo, S et al. 2022. Plants 11:1550     Reference: June 10th, 2022
Gene Product: October 27th, 2020
Gene Model: October 27th, 2020
1 year agosaur74 small auxin up RNA74:
 
GRMZM2G465383
Li, YT et al. 2022. Frontiers Plant Sci 13:930438     Reference: June 10th, 2022
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
1 year agojih1 jasmonoyl-l-isoleucine hydrolase1:
 
GRMZM2G090779
Chung, SH et al. 2022. Plant Dir 6:e407     Reference: June 10th, 2022
Gene Product: June 10th, 2022
Gene Model: June 10th, 2022
1 year agojih5 jasmonoyl-l-isoleucine hydrolase5:
 
GRMZM2G125552
Chung, SH et al. 2022. Plant Dir 6:e407     Reference: June 10th, 2022
Gene Product: June 10th, 2022
Gene Model: June 10th, 2022
1 year agosdg40 set domain gene40:
 
GRMZM2G092131
Xu, JQ et al. 2022. Crop J doi: 10.1016/j.cj.2022.05.004     Reference: June 10th, 2022
Gene Product: June 30th, 2017
Gene Model: June 10th, 2022
1 year agovit2 vacuolar iron transporter2:
 
GRMZM2G107306
Xu, JQ et al. 2022. Crop J doi: 10.1016/j.cj.2022.05.004     Reference: June 10th, 2022
Gene Product: April 27th, 2022
Gene Model: June 10th, 2022
1 year agoIDP375  :
9.03
GRMZM2G034015
Xu, JQ et al. 2022. Crop J doi: 10.1016/j.cj.2022.05.004     Reference: June 10th, 2022
Variation: March 31st, 2005
Gene Model: January 22nd, 2019
1 year agokcs3 3-ketoacyl-CoA synthase3:
 
GRMZM2G075140
Lin, M, et al. 2022. Plant Physiol. 0:doi: 10.1093/plphys/kiac198     Reference: June 8th, 2022
Gene Product: November 1st, 2018
Gene Model: February 13th, 2020
1 year agospo3 topoisomerase-like enzyme3:
1.03
GRMZM2G052581
Li, MH et al. 2022. Chromosome Res pp.doi: 10.1007/s10577-022-09694-5     Reference: June 8th, 2022
Gene Product: June 19th, 2014
Variation: January 27th, 2017
Gene Model: June 19th, 2014
1 year agopat32 protein S-acyltransferase32:
7.04
GRMZM2G432738
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: June 7th, 2022
1 year agopgk4 phosphoglycerate kinase4:
3.07 - 3.07
GRMZM2G047028
Wei, YL et al. 2022. Genes 13:1011     Reference: June 3rd, 2022
Gene Product: November 24th, 2020
Gene Model: November 24th, 2020
1 year agonaat3 nicotianamine aminotransferase3:
4.09
   Hershberger, J et al. 2022. Plant Genome pp.doi: 10.1002/tpg2.20197     Reference: May 31st, 2022
Gene Product: January 18th, 2022
1 year agotat1 tyrosine aminotransferase homolog1:
 
GRMZM2G139813
Hershberger, J et al. 2022. Plant Genome pp.doi: 10.1002/tpg2.20197     Reference: May 31st, 2022
Gene Product: January 18th, 2022
Variation: January 26th, 2015
Gene Model: January 26th, 2015
1 year agomgt6 magnesium transporter6:
 
GRMZM2G453832
Zaidi, PH et al. 2022. Frontiers Plant Sci 13:869270     Reference: May 31st, 2022
Gene Product: April 18th, 2016
Gene Model: April 18th, 2016
1 year agoacco15 1-aminocyclopropane-1-carboxylate oxidase15:
 
GRMZM2G166639
Yamauchi, T; Nakazono, M. 2022. Plant Sci pp.doi: 10.1016/j.plantsci.2022.111340     Reference: May 31st, 2022
Gene Product: May 16th, 2016
Gene Model: May 16th, 2016
1 year agochao3 chlorophyllide a oxygenase3:
 
   Hershberger, J et al. 2022. Plant Genome pp.doi: 10.1002/tpg2.20197     Reference: May 31st, 2022
Gene Product: February 12th, 2021
1 year agoIDP248  :
9.03
GRMZM2G154093
Hershberger, J et al. 2022. Plant Genome pp.doi: 10.1002/tpg2.20197     Reference: May 31st, 2022
Variation: March 31st, 2005
Gene Model: January 22nd, 2019
1 year agorfp1 ring finger protein1:
 
GRMZM2G492252
Xia, ZL et al. 2012. Gene 495:146-153     Reference: May 30th, 2022
Gene Product: March 26th, 2020
Gene Model: May 30th, 2022
1 year agogc2 guanylyl cyclase2:
 
GRMZM2G178797
Yuan, JZ et al. 2008. Theor Appl Genet 116:465-479     Reference: May 28th, 2022
Gene Product: March 23rd, 2021
Gene Model: May 28th, 2022
1 year agoms20 male sterile20:
1.00 - 1.05
GRMZM2G434500
Wang, YB et al. 2022.Cells 11:1753   AT1G12570 (TAIR) Reference: May 26th, 2022
Gene Product: November 16th, 2016
Variation: March 20th, 2019
Gene Model: November 16th, 2016
1 year agotbn1 tassel branch number1:
 
GRMZM2G003663
Wang, YB et al. 2022.Cells 11:1753     Reference: May 26th, 2022
Gene Product: April 27th, 2022
Variation: January 1st, 2021
Gene Model: January 1st, 2021
1 year agoacsn3 acyl-CoA synthetase3:
3.00
GRMZM2G309152
Wang, YB et al. 2022.Cells 11:1753     Reference: May 26th, 2022
Gene Product: December 20th, 2011
Gene Model: March 24th, 2020
1 year agocyc4 cyclin4:
8.08
GRMZM2G310115
Zhao, BB et al. 2022. Int J Mol Sci 23:5907     Reference: May 25th, 2022
Gene Product: June 26th, 2009
Variation: January 17th, 2014
Gene Model: November 5th, 2014
1 year agocyc24 cyclin24:
 
GRMZM2G025200
Zhao, BB et al. 2022. Int J Mol Sci 23:5907     Reference: May 25th, 2022
Gene Product: June 26th, 2009
Gene Model: January 11th, 2021
1 year agoumc1432  :
10.02
GRMZM2G113073
Zuffo, LT et al. 2022. J Exp Bot pp.doi: 10.1093/jxb/erac236     Reference: May 24th, 2022
Variation: September 1st, 2003
Gene Model: December 14th, 2017
1 year agolimtf6 LIM-transcription factor 6:
 
   Han, YJ et al. 2022. J Integr Plant Biol pp.doi: 10.1111/jipb.13276     Reference: May 24th, 2022
Gene Product: December 16th, 2019
1 year agogpat1 glycerol-3-phosphate acyltransferase1:
3.06
GRMZM2G083195
Han, YJ et al. 2022. J Integr Plant Biol pp.doi: 10.1111/jipb.13276     Reference: May 24th, 2022
Gene Product: March 25th, 2019
Variation: March 23rd, 2015
Gene Model: March 24th, 2015
1 year agomlo6 barley mlo defense gene homolog6:
5.03
GRMZM2G325653
Han, YJ et al. 2022. J Integr Plant Biol pp.doi: 10.1111/jipb.13276     Reference: May 24th, 2022
Variation: June 26th, 2018
Gene Model: June 26th, 2018
1 year agopme5 pectin methylesterase5:
 
GRMZM2G137676
Han, YJ et al. 2022. J Integr Plant Biol pp.doi: 10.1111/jipb.13276     Reference: May 24th, 2022
Gene Product: September 10th, 2018
Gene Model: June 4th, 2012
1 year agosacd6 stearoyl-acyl-carrier-protein desaturase6:
 
GRMZM2G027673
Han, YJ et al. 2022. J Integr Plant Biol pp.doi: 10.1111/jipb.13276     Reference: May 24th, 2022
Gene Product: October 10th, 2016
Gene Model: October 10th, 2016
1 year agoburp7 BURP domain-containing protein-RD22-like7:
 
GRMZM2G146665
Han, YJ et al. 2022. J Integr Plant Biol pp.doi: 10.1111/jipb.13276     Reference: May 24th, 2022
Gene Product: August 18th, 2017
Gene Model: August 18th, 2017
1 year agovq22 VQ motif-transcription factor22:
 
GRMZM2G066599
Zuffo, LT et al. 2022. J Exp Bot pp.doi: 10.1093/jxb/erac236     Reference: May 24th, 2022
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
1 year agoccp15 cysteine protease15:
 
GRMZM2G014526
Han, YJ et al. 2022. J Integr Plant Biol pp.doi: 10.1111/jipb.13276     Reference: May 24th, 2022
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
1 year agopat8 protein S-acyltransferase8:
 
GRMZM2G027307
Qu, ZB et al. 2022. Frontiers Plant Sci 13:872292     Reference: May 24th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
1 year agogpat7 glycerol-3-phosphate acyltransferase7:
 
GRMZM2G064590
Yang, Y et al. 2022. Plant Sci pp.doi: 10.1016/j.plantsci.2022.111256     Reference: May 23rd, 2022
Gene Product: March 25th, 2019
Gene Model: March 25th, 2019
1 year agogpat5 glycerol-3-phosphate acyltransferase5:
 
GRMZM2G072298
Yang, Y et al. 2022. Plant Sci pp.doi: 10.1016/j.plantsci.2022.111256     Reference: May 23rd, 2022
Gene Product: March 25th, 2019
Gene Model: March 25th, 2019
1 year agogpat6 glycerol-3-phosphate acyltransferase6:
 
GRMZM2G033767
Yang, Y et al. 2022. Plant Sci pp.doi: 10.1016/j.plantsci.2022.111256     Reference: May 23rd, 2022
Gene Product: March 25th, 2019
Gene Model: March 25th, 2019
1 year agogpat16 glycerol-3-phosphate acyltransferase16:
 
GRMZM2G124042
Yang, Y et al. 2022. Plant Sci pp.doi: 10.1016/j.plantsci.2022.111256     Reference: May 23rd, 2022
Gene Product: March 25th, 2019
Gene Model: April 25th, 2019
1 year agodgk1 diacylglycerol kinase1:
1.05
GRMZM2G076911
Sui, ZH et al. 2008. Gene 426:47-56     Reference: May 22nd, 2022
Gene Product: September 18th, 2017
Variation: September 18th, 2017
Gene Model: September 18th, 2017
1 year agoplc3 phospholipase C3:
 
GRMZM2G129238
Sui, ZH et al. 2008. Gene 426:47-56     Reference: May 22nd, 2022
Gene Product: January 12th, 2021
Gene Model: January 12th, 2021
1 year agopap4 purple acid phosphatase4:
 
AC202435.3_FG003
Yadava, P et al. 2022. Physiology and Molecular Biology of Plants 28:885-898     Reference: May 21st, 2022
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
1 year agopap8 purple acid phosphatase8:
 
GRMZM2G077466
Yadava, P et al. 2022. Physiology and Molecular Biology of Plants 28:885-898     Reference: May 21st, 2022
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
1 year agoabi3 ABI3-VP1-transcription factor 3:
 
   Ma, WL et al. 2022. Interdiscip Sci doi: 10.1007/s12539-022-00522-2     Reference: May 19th, 2022
Gene Product: January 29th, 2022
1 year agoumc1966  :
5.04 - 5.05
GRMZM2G074017
Ma, WL et al. 2022. Interdiscip Sci doi: 10.1007/s12539-022-00522-2     Reference: May 19th, 2022
Variation: June 24th, 2021
Gene Model: June 29th, 2018
1 year agozim14 ZIM-transcription factor 14:
9.07
GRMZM2G036288
Ma, WL et al. 2022. Interdiscip Sci doi: 10.1007/s12539-022-00522-2     Reference: May 19th, 2022
Gene Product: February 24th, 2021
Gene Model: December 6th, 2016
1 year agocals9 callose synthase9:
1.01
GRMZM2G453794
Guo, SJ et al. 2022. Plants 11:1339     Reference: May 18th, 2022
Gene Product: July 5th, 2021
Gene Model: August 1st, 2017
1 year agohis2b1 histone2b1:
7.02
   Guo, SJ et al. 2022. Plants 11:1339     Reference: May 18th, 2022
Gene Product: September 1st, 2003
Variation: June 13th, 2014
1 year agoabi38 ABI3-VP1-transcription factor 38:
 
   Guo, SJ et al. 2022. Plants 11:1339     Reference: May 18th, 2022
Gene Product: January 29th, 2022
1 year agoumc106a  :
1.10
GRMZM2G301071
Guo, SJ et al. 2022. Plants 11:1339     Reference: May 18th, 2022
Variation: September 15th, 2016
Gene Model: September 15th, 2016
1 year agoknox3 knotted related homeobox3:
1.10
   Guo, SJ et al. 2022. Plants 11:1339     Reference: May 18th, 2022
Gene Product: September 1st, 2003
Variation: July 2nd, 2011
1 year agoumc1422  :
2.02
GRMZM2G031904
Wang, YC et al. 2022. BMC Bioinformatics 23:183     Reference: May 17th, 2022
Variation: February 21st, 2018
Gene Model: February 21st, 2018
1 year agossp1 seed specific protein1:
4.09
GRMZM2G090935
Wang, YC et al. 2022. BMC Bioinformatics 23:183     Reference: May 17th, 2022
Variation: May 15th, 2015
Gene Model: May 15th, 2015
1 year agocsu31a  :
8.06
GRMZM2G154508
Wang, YC et al. 2022. BMC Bioinformatics 23:183     Reference: May 17th, 2022
Variation: September 1st, 2003
Gene Model: April 19th, 2017
1 year agogfa1 glucosamine fructose-6-phosphate aminotransferase1:
3.09
GRMZM2G005849
Nanni, AV et al. 2022. Genetics pp.doi: 10.1093/genetics/iyac080     Reference: May 17th, 2022
Gene Product: September 1st, 2003
Variation: October 3rd, 2014
Gene Model: October 3rd, 2014
1 year agoAY110631  :
4.08
GRMZM2G439311
Nanni, AV et al. 2022. Genetics pp.doi: 10.1093/genetics/iyac080     Reference: May 17th, 2022
Variation: July 29th, 2004
Gene Model: April 17th, 2018
1 year agocl40794_1  :
3.03
   Nanni, AV et al. 2022. Genetics pp.doi: 10.1093/genetics/iyac080     Reference: May 17th, 2022
Variation: September 25th, 2007
1 year agoppr289 pentatricopeptide repeat protein289:
5.03
GRMZM2G074805
    Gene Product: December 27th, 2016
Gene Model: May 17th, 2022
1 year agoIDP2368  :
3.07
GRMZM2G042548
Nanni, AV et al. 2022. Genetics pp.doi: 10.1093/genetics/iyac080     Reference: May 17th, 2022
Variation: March 31st, 2005
Gene Model: February 25th, 2019
1 year agocrr5 cytokinin response regulator5:
3.05
GRMZM2G156019
Nanni, AV et al. 2022. Genetics pp.doi: 10.1093/genetics/iyac080     Reference: May 17th, 2022
Gene Product: June 30th, 2017
Variation: March 31st, 2005
Gene Model: October 21st, 2021
1 year agoIDP4036  :
6.02
   Nanni, AV et al. 2022. Genetics pp.doi: 10.1093/genetics/iyac080     Reference: May 17th, 2022
Variation: March 31st, 2005
1 year agoumc1153  :
5.09
GRMZM2G133764
Huang, JY et al. 2022. Int J Mol Sci 23:5551     Reference: May 16th, 2022
Variation: September 1st, 2003
Gene Model: July 16th, 2018
1 year agozim25 ZIM-transcription factor 25:
 
   Ji, MY et al. 2022. Plant J pp.doi: 10.1111/tpj.15812     Reference: May 16th, 2022
Gene Product: February 24th, 2021
1 year agozim26 ZIM-transcription factor 26:
 
   Ji, MY et al. 2022. Plant J pp.doi: 10.1111/tpj.15812     Reference: May 16th, 2022
Gene Product: February 24th, 2021
1 year agozim35 ZIM-transcription factor 35:
 
   Ji, MY et al. 2022. Plant J pp.doi: 10.1111/tpj.15812     Reference: May 16th, 2022
Gene Product: February 24th, 2021
1 year agozim5 ZIM-transcription factor 5:
 
   Ji, MY et al. 2022. Plant J pp.doi: 10.1111/tpj.15812     Reference: May 16th, 2022
Gene Product: February 24th, 2021
1 year agozim7 ZIM-transcription factor 7:
 
   Ji, MY et al. 2022. Plant J pp.doi: 10.1111/tpj.15812     Reference: May 16th, 2022
Gene Product: February 24th, 2021
1 year agozim9 ZIM-transcription factor 9:
 
   Ji, MY et al. 2022. Plant J pp.doi: 10.1111/tpj.15812     Reference: May 16th, 2022
Gene Product: February 24th, 2021
1 year agozim41 ZIM-transcription factor 41:
 
   Ji, MY et al. 2022. Plant J pp.doi: 10.1111/tpj.15812     Reference: May 16th, 2022
Gene Product: February 24th, 2021
1 year agozim42 ZIM-transcription factor 42:
 
   Ji, MY et al. 2022. Plant J pp.doi: 10.1111/tpj.15812     Reference: May 16th, 2022
Gene Product: February 24th, 2021
1 year agozim17 ZIM-transcription factor 17:
 
GRMZM2G327263
Ji, MY et al. 2022. Plant J pp.doi: 10.1111/tpj.15812     Reference: May 16th, 2022
Gene Product: February 24th, 2021
Gene Model: January 20th, 2021
1 year agozim37 ZIM-transcription factor 37:
 
GRMZM2G303161
Ji, MY et al. 2022. Plant J pp.doi: 10.1111/tpj.15812     Reference: May 16th, 2022
Gene Product: February 24th, 2021
Gene Model: February 23rd, 2021
1 year agozim39 ZIM-transcription factor 39:
 
   Ji, MY et al. 2022. Plant J pp.doi: 10.1111/tpj.15812     Reference: May 16th, 2022
Gene Product: February 24th, 2021
1 year agozim40 ZIM-transcription factor 40:
 
GRMZM2G442458
Ji, MY et al. 2022. Plant J pp.doi: 10.1111/tpj.15812     Reference: May 16th, 2022
Gene Product: February 24th, 2021
Gene Model: February 23rd, 2021
1 year agozim44 ZIM-transcription factor 44:
 
   Ji, MY et al. 2022. Plant J pp.doi: 10.1111/tpj.15812     Reference: May 16th, 2022
Gene Product: February 24th, 2021
1 year agoIDP582  :
10.03
GRMZM5G807276
Ji, MY et al. 2022. Plant J pp.doi: 10.1111/tpj.15812     Reference: May 16th, 2022
Variation: March 31st, 2005
Gene Model: January 15th, 2018
1 year agoumc1107  :
9.04
   Liu, J et al. 2022. Frontiers Plant Sci 13:849421     Reference: May 13th, 2022
Variation: September 1st, 2003
1 year agocax3 calcium exchanger3:
3.09
GRMZM2G011592
Liu, J et al. 2022. Frontiers Plant Sci 13:849421     Reference: May 13th, 2022
Variation: July 7th, 2017
Gene Model: June 6th, 2014
1 year agocrs4a chloroplast RNA splicing4a:
 
GRMZM2G053196
Liu, J et al. 2022. Frontiers Plant Sci 13:849421     Reference: May 13th, 2022
Gene Product: September 15th, 2012
Gene Model: December 27th, 2016
1 year agomca7 metacaspase7:
 
GRMZM2G337548
Liu, J et al. 2022. Frontiers Plant Sci 13:849421     Reference: May 13th, 2022
Gene Product: October 27th, 2020
Gene Model: October 27th, 2020
1 year agogrx19 glutaredoxin19:
 
GRMZM2G337706
Liu, J et al. 2022. Frontiers Plant Sci 13:849421     Reference: May 13th, 2022
Gene Product: January 21st, 2021
Gene Model: December 14th, 2021
1 year agoIDP1969  :
9.01
GRMZM2G013607
Liu, J et al. 2022. Frontiers Plant Sci 13:849421     Reference: May 13th, 2022
Variation: March 31st, 2005
Gene Model: January 13th, 2019
1 year agocl866_1a  :
2.07
GRMZM2G169615
Zhang, YP et al. 2022. Crop & Pasture Sci doi: 10.1071/CP21610     Reference: May 11th, 2022
Variation: May 3rd, 2021
Gene Model: March 21st, 2020
1 year agoelo1 elongation defective-like1:
 
GRMZM2G037152
Zhang, YP et al. 2022. Crop & Pasture Sci doi: 10.1071/CP21610     Reference: May 11th, 2022
Gene Product: November 1st, 2018
Gene Model: March 12th, 2019
1 year agocxe18 carboxyesterase18:
 
GRMZM2G104141
Zhang, YP et al. 2022. Crop & Pasture Sci doi: 10.1071/CP21610     Reference: May 11th, 2022
Gene Product: May 23rd, 2019
Gene Model: May 20th, 2019
1 year agopmei44 pectin methylesterase inhibitor44:
 
GRMZM2G003838
Zhang, YP et al. 2022. Crop & Pasture Sci doi: 10.1071/CP21610     Reference: May 11th, 2022
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
1 year agoncp3 nine complex protein3:
 
GRMZM2G053831
Zhang, YP et al. 2022. Crop & Pasture Sci doi: 10.1071/CP21610     Reference: May 11th, 2022
Gene Product: January 2nd, 2020
Gene Model: January 2nd, 2020
1 year agozim46 ZIM-transcription factor 46:
 
GRMZM2G022514
Zhang, YP et al. 2022. Crop & Pasture Sci doi: 10.1071/CP21610     Reference: May 11th, 2022
Gene Product: February 24th, 2021
Gene Model: February 23rd, 2021
1 year agopgl15 polygalacturonase15:
 
GRMZM2G030265
Zhang, YP et al. 2022. Crop & Pasture Sci doi: 10.1071/CP21610     Reference: May 11th, 2022
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
1 year agovps3 vacuolar protein sorting3:
 
GRMZM2G111491
Li, F et al. 2015. Plant Cell 27:1389-1408   AT4G29380 (TAIR) Reference: August 15th, 2017
Gene Product: August 15th, 2017
Gene Model: May 11th, 2022
1 year agoeif4a eukaryotic initiation factor4a:
6.02
GRMZM2G027995
Zhang, YP et al. 2022. Crop & Pasture Sci doi: 10.1071/CP21610     Reference: May 11th, 2022
Gene Product: September 1st, 2003
Variation: February 24th, 2014
Gene Model: January 15th, 2015
2 years agomkkk18 MAP kinase kinase kinase18:
 
GRMZM2G305066
Shi, Z et al. 2022. Plant Genome pp.doi: 10.1002/tpg2.20216     Reference: May 10th, 2022
Gene Product: March 14th, 2022
Gene Model: July 11th, 2013
2 years agomkkk47 MAP kinase kinase kinase47:
 
GRMZM2G045366
Shi, Z et al. 2022. Plant Genome pp.doi: 10.1002/tpg2.20216     Reference: May 10th, 2022
Gene Product: March 14th, 2022
Gene Model: July 11th, 2013
2 years agomkkk55 MAP kinase kinase kinase55:
 
GRMZM2G088299
Shi, Z et al. 2022. Plant Genome pp.doi: 10.1002/tpg2.20216     Reference: May 10th, 2022
Gene Product: March 14th, 2022
Gene Model: July 11th, 2013
2 years agoldh2 lactate dehydrogenase2:
5.03
GRMZM2G173192
Hofmann, A et al. 2022. Antioxidants 11:836     Reference: April 25th, 2022
Gene Product: September 1st, 2003
Gene Model: May 10th, 2022
2 years agompkl6 MAP kinase-like6:
 
GRMZM2G140726
Shi, Z et al. 2022. Plant Genome pp.doi: 10.1002/tpg2.20216     Reference: May 10th, 2022
Gene Product: May 13th, 2014
Gene Model: March 12th, 2021
2 years agovit1 vacuolar iron transporter1:
 
GRMZM2G409358
Xu, JQ et al. 2022. Frontiers Plant Sci 13:855572     Reference: May 9th, 2022
Gene Product: April 27th, 2022
Gene Model: April 27th, 2022
2 years agomez2 enhancer of zeste2:
9.04
GRMZM5G875502
Ma, YT et al. 2022. Int J Mol Sci 23:5074     Reference: May 3rd, 2022
Gene Product: September 1st, 2003
Variation: January 13th, 2019
Gene Model: January 13th, 2019
2 years agobnlg1556  :
1.07
GRMZM2G028726
Ma, YT et al. 2022. Int J Mol Sci 23:5074     Reference: May 3rd, 2022
Variation: September 1st, 2003
Gene Model: July 12th, 2017
2 years agosbp27 SBP-transcription factor 27:
 
   Ma, YT et al. 2022. Int J Mol Sci 23:5074     Reference: May 3rd, 2022
Gene Product: July 5th, 2019
2 years agodcl104 dicer-like 104:
 
GRMZM5G814985
Ma, YT et al. 2022. Int J Mol Sci 23:5074     Reference: May 3rd, 2022
Gene Product: September 5th, 2006
Variation: January 29th, 2015
Gene Model: January 29th, 2015
2 years agopap23 purple acid phosphatase23:
 
GRMZM2G315848
Ma, YT et al. 2022. Int J Mol Sci 23:5074     Reference: May 3rd, 2022
Gene Product: November 21st, 2018
Gene Model: November 21st, 2018
2 years agopap11 purple acid phosphatase11:
 
GRMZM2G106600
Ma, YT et al. 2022. Int J Mol Sci 23:5074     Reference: May 3rd, 2022
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
2 years agoupl10 ubiquitin-protein ligase10:
 
GRMZM2G328988
Ma, YT et al. 2022. Int J Mol Sci 23:5074     Reference: May 3rd, 2022
Gene Product: November 26th, 2019
Gene Model: November 19th, 2019
2 years agomads61 MADS-transcription factor 60:
 
GRMZM2G531231
Ma, YT et al. 2022. Int J Mol Sci 23:5074     Reference: May 3rd, 2022
Gene Product: September 10th, 2021
Gene Model: November 18th, 2021
2 years agohma1 heavy metal ATPase1:
 
GRMZM2G067853
Xu, JQ et al. 2022. Frontiers Plant Sci 13:805247     Reference: May 2nd, 2022
Gene Product: October 23rd, 2019
Gene Model: October 23rd, 2019
2 years agorpi1 ribose 5-phosphate isomerase1:
 
GRMZM2G035599
Nozoye, T et al. 2013. PLoS One 8: e62567     Reference: May 2nd, 2022
Gene Product: October 21st, 2021
Gene Model: October 21st, 2021
2 years agocl10409_1  :
 
GRMZM2G067265
Nozoye, T et al. 2013. PLoS One 8: e62567     Reference: May 2nd, 2022
Gene Product: October 21st, 2021
Gene Model: October 21st, 2021
2 years agofdh2 formate dehydrogenase2:
9.03
GRMZM2G423972
Nozoye, T et al. 2013. PLoS One 8: e62567     Reference: May 2nd, 2022
Variation: May 27th, 2014
Gene Model: July 27th, 2016
2 years agoduf1644 domain of unknown function1644:
4.05
GRMZM2G022694
Chen, WK, et al. 2022. Science. 375:DOI: 10.1126/science.abg7985   Os02g0566500 (Gramene) Reference: April 28th, 2022
Gene Product: March 24th, 2022
Variation: March 24th, 2022
Gene Model: March 24th, 2022
2 years agodsc3 Discolored-paralog3:
 
GRMZM2G059225
El-Sappah, AH et al. 2022. Frontiers Plant Sci 13:879366     Reference: April 29th, 2022
Gene Product: June 23rd, 2012
Gene Model: June 22nd, 2012
2 years agoerd3 early responsive to dehydration3:
 
GRMZM2G144155
El-Sappah, AH et al. 2022. Frontiers Plant Sci 13:879366   AT4G19120 (TAIR) Reference: April 29th, 2022
Gene Product: May 29th, 2018
Gene Model: May 29th, 2018
2 years agompkl1 MAP kinase-like1:
 
GRMZM2G108829
El-Sappah, AH et al. 2022. Frontiers Plant Sci 13:879366     Reference: April 29th, 2022
Gene Product: May 13th, 2014
Variation: December 21st, 2019
Gene Model: December 21st, 2019
2 years agogex1 gamete expressed1:
 
GRMZM2G388045
El-Sappah, AH et al. 2022. Frontiers Plant Sci 13:879366   AT5G55490 (TAIR) Reference: April 29th, 2022
Gene Product: February 25th, 2020
Gene Model: February 25th, 2020
2 years agomsr4 methionine sulfoxide reductase4:
 
GRMZM2G025322
El-Sappah, AH et al. 2022. Frontiers Plant Sci 13:879366     Reference: April 29th, 2022
Gene Product: January 25th, 2021
Gene Model: January 25th, 2021
2 years agoGRMZM2G406715  :
 
GRMZM2G406715
El-Sappah, AH et al. 2022. Frontiers Plant Sci 13:879366     Reference: April 29th, 2022
Gene Product: January 31st, 2021
Gene Model: January 31st, 2021
2 years agoccp6 cysteine protease6:
10.07
GRMZM2G340065
Cao, SA, et al. 2022. Genome Biology. 23:53     Reference: April 28th, 2022
Gene Product: October 11th, 2021
Gene Model: September 13th, 2021
2 years agoIDP326  :
4.05
GRMZM2G135132
Chen, FQ et al. 2022. Agronomy 12:1053     Reference: April 28th, 2022
Variation: March 31st, 2005
Gene Model: May 22nd, 2021
2 years agozll1 zeitlupe-like1:
5.03
GRMZM2G115914
Su, HH, et al. 2021. J Exp Bot. 0:doi: 10.1093/jxb/erab364     Reference: September 29th, 2021
Gene Product: April 27th, 2022
Variation: September 1st, 2003
Gene Model: March 12th, 2021
2 years agofbxl1 F-box domain and LRR containing protein1:
 
GRMZM2G481291
Yang, Q, et al. 2017. Nature Genetics. 0:doi: 10.1038/ng.3919     Reference: September 7th, 2017
Gene Product: April 27th, 2022
Variation: July 25th, 2017
Gene Model: July 25th, 2017
2 years agofbl2 F-box protein FBL2:
 
GRMZM2G153075
Zhang, XY et al. 2020. BMC Plant Biology 20:67     Reference: February 11th, 2020
Gene Product: April 27th, 2022
Gene Model: January 5th, 2020
2 years agozll2 zeitlupe-like2:
 
GRMZM2G113244
Wang, L et al. 2021. Mol Biol Evol pp.doi: 10.1093/molbev/msab119     Reference: April 28th, 2021
Gene Product: April 27th, 2022
Gene Model: April 28th, 2021
2 years agozll3 zeitlupe-like3:
 
GRMZM2G147800
Osuman, AS et al. 2022. Genes 13:349     Reference: February 15th, 2022
Gene Product: April 27th, 2022
Gene Model: April 28th, 2021
2 years agozll4 zeitlupe-like4:
 
GRMZM2G166147
Lai, X, et al. 2020. BMC Genomics. 21:428     Reference: September 29th, 2020
Gene Product: April 27th, 2022
Gene Model: April 28th, 2021
2 years agoctr3 constitutive triple response3:
 
GRMZM2G036902
Xu, JQ et al. 2022. Int J Mol Sci 23:4852     Reference: April 27th, 2022
Gene Product: May 13th, 2014
Gene Model: June 24th, 2021
2 years agoetp1 ethylene insensitive2 targeting protein 1:
 
GRMZM2G442489
Yang, C et al. 2015. Molecular Plant 8:495-505     Reference: June 25th, 2021
Gene Product: April 27th, 2022
Gene Model: June 25th, 2021
2 years agoebf5 EIN3-binding F-box protein5:
 
GRMZM2G128156
Xu, JQ et al. 2022. Int J Mol Sci 23:4852     Reference: April 27th, 2022
Gene Product: April 27th, 2022
Gene Model: April 27th, 2022
2 years agoers25 ethylene receptor1-25:
1.09
GRMZM2G073668
Xu, JQ et al. 2022. Int J Mol Sci 23:4852     Reference: April 27th, 2022
Variation: May 16th, 2014
Gene Model: July 27th, 2016
2 years agoaaap28 amino acid/auxin permease28:
4.04
GRMZM2G046743
Rabby, MG et al. 2022. Genet Res pp.doi: 10.1155/2022/2673748     Reference: April 26th, 2022
Gene Product: March 31st, 2021
Gene Model: May 22nd, 2021
2 years agocle24 clavata3/esr-related24:
4.06
GRMZM2G123818
Je, BI et al. 2016. Nature Genetics 48:785-791     Reference: September 17th, 2016
Gene Product: February 22nd, 2021
Variation: September 1st, 2003
Gene Model: April 26th, 2022
2 years agoaaap8 amino acid/auxin permease8:
 
GRMZM2G109865
Rabby, MG et al. 2022. Genet Res pp.doi: 10.1155/2022/2673748     Reference: April 26th, 2022
Gene Product: April 26th, 2022
Gene Model: February 6th, 2020
2 years agoaaap4 amino acid/auxin permease4:
 
GRMZM2G052461
Rabby, MG et al. 2022. Genet Res pp.doi: 10.1155/2022/2673748     Reference: April 26th, 2022
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
2 years agoaaap7 amino acid/auxin permease7:
 
GRMZM2G175321
Rabby, MG et al. 2022. Genet Res pp.doi: 10.1155/2022/2673748     Reference: April 26th, 2022
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
2 years agoaaap15 amino acid/auxin permease15:
 
GRMZM2G125832
Rabby, MG et al. 2022. Genet Res pp.doi: 10.1155/2022/2673748     Reference: April 26th, 2022
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
2 years agoaaap41 amino acid/auxin permease41:
 
GRMZM2G127294
Rabby, MG et al. 2022. Genet Res pp.doi: 10.1155/2022/2673748     Reference: April 26th, 2022
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
2 years agoaaap43 amino acid/auxin permease43:
 
GRMZM2G127338
Rabby, MG et al. 2022. Genet Res pp.doi: 10.1155/2022/2673748     Reference: April 26th, 2022
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
2 years agoaaap44 amino acid/auxin permease44:
 
GRMZM2G429322
Rabby, MG et al. 2022. Genet Res pp.doi: 10.1155/2022/2673748     Reference: April 26th, 2022
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
2 years agoaaap49 amino acid/auxin permease49:
 
GRMZM2G476886
Rabby, MG et al. 2022. Genet Res pp.doi: 10.1155/2022/2673748     Reference: April 26th, 2022
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
2 years agoaaap68 amino acid/auxin permease68:
 
GRMZM2G149216
Rabby, MG et al. 2022. Genet Res pp.doi: 10.1155/2022/2673748     Reference: April 26th, 2022
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
2 years agoaaap71 amino acid/auxin permease71:
 
GRMZM2G360519
Rabby, MG et al. 2022. Genet Res pp.doi: 10.1155/2022/2673748     Reference: April 26th, 2022
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
2 years agonbcs18 nucleobase:cation symporter18:
7.02
GRMZM2G414813
Hofmann, A et al. 2022. Antioxidants 11:836     Reference: April 25th, 2022
Gene Product: July 14th, 2018
Gene Model: July 14th, 2018
2 years agolimtf5 LIM-transcription factor 5:
 
   Gong, P et al. 2022. Plant Sci pp.doi: 10.1016/j.plantsci.2022.111295     Reference: April 25th, 2022
Gene Product: December 16th, 2019
2 years agosdg116 set domain gene116:
2.07
GRMZM2G105869
Yang, ZK et al. 2022. Genetics pp.doi: 10.1093/genetics/iyac057     Reference: April 25th, 2022
Gene Product: June 30th, 2017
Variation: September 1st, 2003
Gene Model: June 29th, 2017
2 years agobb2 big brother2:
1.02
GRMZM2G021498
Gong, P et al. 2022. Plant Sci pp.doi: 10.1016/j.plantsci.2022.111295   AT3G63530 (TAIR) Reference: April 25th, 2022
Gene Product: March 26th, 2020
Gene Model: April 25th, 2022
2 years agonbcs12 nucleobase:cation symporter12:
 
GRMZM2G080387
Hofmann, A et al. 2022. Antioxidants 11:836     Reference: April 25th, 2022
Gene Product: July 14th, 2018
Gene Model: July 14th, 2018
2 years agonbcs22 nucleobase:cation symporter22:
 
GRMZM2G095611
Hofmann, A et al. 2022. Antioxidants 11:836     Reference: April 25th, 2022
Gene Product: July 14th, 2018
Gene Model: July 14th, 2018
2 years agocybc7 cytochrome b-c1 complex subunit 7:
 
GRMZM2G318346
Hofmann, A et al. 2022. Antioxidants 11:836     Reference: April 25th, 2022
Gene Product: January 30th, 2019
Variation: January 30th, 2019
Gene Model: January 30th, 2019
2 years agoadh3 alcohol dehydrogenase3:
 
GRMZM2G152975
Hofmann, A et al. 2022. Antioxidants 11:836     Reference: April 25th, 2022
Gene Product: July 8th, 2009
Gene Model: April 25th, 2022
2 years agoadh4 alcohol dehydrogenase4:
 
GRMZM2G152981
Hofmann, A et al. 2022. Antioxidants 11:836     Reference: April 25th, 2022
Gene Product: July 8th, 2009
Gene Model: April 25th, 2022
2 years agonbcs16 nucleobase:cation symporter16:
5.06
GRMZM5G812555
Hofmann, A et al. 2022. Antioxidants 11:836     Reference: April 25th, 2022
Gene Product: July 14th, 2018
Gene Model: July 14th, 2018
2 years agoumc1367  :
10.03
GRMZM2G037378
Zhao, XQ; Niu, YN. 2022. Int J Mol Sci 23:4223     Reference: April 23rd, 2022
Variation: September 1st, 2003
Gene Model: December 13th, 2017
2 years agoprr1 putidaredoxin reductase homolog1:
5.06
GRMZM2G320307
Jia, Z-C et al. 2022. Int J Mol Sci 23:4201     Reference: April 23rd, 2022
Gene Product: September 1st, 2003
Variation: December 18th, 2014
Gene Model: December 18th, 2014
2 years agocoi3 coronatine insensitive3:
 
GRMZM2G353209
Jia, Z-C et al. 2022. Int J Mol Sci 23:4201     Reference: April 23rd, 2022
Gene Product: November 2nd, 2018
Gene Model: November 2nd, 2018
2 years agobnl6.16a  :
3.07
GRMZM2G169773
Hawkins, LK et al. 2018. Toxins 10:.61     Reference: June 1st, 2021
Variation: September 1st, 2003
Gene Model: April 22nd, 2022
2 years agoumc1477  :
10.04 - 10.06
GRMZM2G016477
Peng, YM et al. 2022. J Integr Plant Biol pp.doi: 10.1111/jipb.13267     Reference: April 21st, 2022
Variation: September 1st, 2003
Gene Model: October 23rd, 2018
2 years agotrub2 tRNA pseudouridine synthase B2:
3.04
GRMZM2G172956
Xie, YT et al. 2022. Int J Mol Sci 23:2680     Reference: February 28th, 2022
Gene Product: February 28th, 2022
Gene Model: April 20th, 2022
2 years agoubi3 ubiquitin3:
 
GRMZM2G014119
Michel, KJ et al. 2022. Genetics pp.doi: 10.1093/genetics/iyac063   AT1G31340 (TAIR) Reference: April 20th, 2022
Gene Product: September 1st, 2003
Gene Model: December 28th, 2016
2 years agoumc1433  :
7.02
   Sheoran, S et al. 2022. Mol Breed 42:26     Reference: April 19th, 2022
Variation: September 1st, 2003
2 years agomyb16  :
4.07
GRMZM2G015021
Sheoran, S et al. 2022. Mol Breed 42:26     Reference: April 19th, 2022
Gene Product: July 25th, 2017
Gene Model: March 9th, 2021
2 years agolac19 laccase19:
 
GRMZM2G320786
Barua, D et al. 2022. BioMed Research International. doi: 10.1155/2022/1027288     Reference: April 18th, 2022
Gene Product: March 31st, 2018
Gene Model: March 3rd, 2020
2 years agogrx3 glutaredoxin3:
 
GRMZM2G148387
Barua, D et al. 2022. BioMed Research International. doi: 10.1155/2022/1027288     Reference: April 18th, 2022
Gene Product: January 21st, 2021
Variation: January 22nd, 2021
Gene Model: January 21st, 2021
2 years agoIDP1455  :
3.04
GRMZM2G583326
    Variation: March 31st, 2005
Gene Model: April 17th, 2022
2 years agoflz35 FCS-like zinc finger35:
 
AC233979.1_FG006
Woods, P et al. 2022. Frontiers Plant Sci 13:883209     Reference: April 15th, 2022
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
2 years agocts4 citrate synthase4:
 
GRMZM2G135588
Chen, ZB et al. 2022. Nature communications 13:1993     Reference: April 14th, 2022
Gene Product: July 5th, 2019
Gene Model: April 27th, 2018
2 years agorte2 rotten ear2:
 
GRMZM2G082203
Sharma, H et al. 2022. Plants 11:911     Reference: April 13th, 2022
Gene Product: June 24th, 2017
Variation: June 24th, 2017
Gene Model: June 24th, 2017
2 years agorte4 rotten ear4:
 
GRMZM2G374989
Sharma, H et al. 2022. Plants 11:911     Reference: April 13th, 2022
Gene Product: June 24th, 2017
Gene Model: June 24th, 2017
2 years agorte5 rotten ear5:
 
GRMZM2G302559
Sharma, H et al. 2022. Plants 11:911     Reference: April 13th, 2022
Gene Product: June 24th, 2017
Gene Model: June 24th, 2017
2 years agorte6 rotten ear6:
 
GRMZM2G454327
Sharma, H et al. 2022. Plants 11:911     Reference: April 13th, 2022
Gene Product: June 24th, 2017
Gene Model: June 24th, 2017
2 years agorlk1 receptor-like protein kinase1:
 
GRMZM2G099324
Zhou, XM et al. 2022. Frontiers Plant Sci 13:866034     Reference: April 12th, 2022
Gene Product: July 10th, 2019
Variation: July 25th, 2017
Gene Model: July 25th, 2017
2 years agolhcb11 light harvesting chlorophyll a/b binding protein11:
 
   Li, YS, et al. 2020. Genes 11:881     Reference: April 12th, 2022
Gene Product: January 8th, 2005
2 years agonzp2 non-zein protein2:
 
GRMZM5G831102
Li, YS, et al. 2020. Genes 11:881     Reference: April 12th, 2022
Gene Product: October 6th, 2021
Gene Model: August 23rd, 2021
2 years agomapkkk1 mitogen-activated protein kinase kinase kinase1:
 
   Zhou, XM et al. 2022. Frontiers Plant Sci 13:866034     Reference: April 12th, 2022
Gene Product: March 14th, 2022
2 years agoalf4 Alfin-like-transcription factor 4:
3.05
   Schulte, LM et al. 2022. G3 pp.doi: 10.1093/g3journal/jkac086     Reference: April 11th, 2022
Gene Product: November 11th, 2021
Variation: December 17th, 2021
2 years agoalf1 Alfin-like-transcription factor 1:
 
   Schulte, LM et al. 2022. G3 pp.doi: 10.1093/g3journal/jkac086     Reference: April 11th, 2022
Gene Product: November 11th, 2021
Variation: December 20th, 2021
2 years agobzip139 bZIP-transcription factor 139:
2.07
GRMZM2G337410
    Gene Product: August 21st, 2018
Gene Model: April 11th, 2022
2 years agopza02421  :
4.08
   Bishop, EH et al. 2019. Genomics pp.doi: 10.1016/j.ygeno.2019.07.009     Reference: April 7th, 2022
Gene Product: November 11th, 2017
Variation: September 25th, 2007
2 years agoIDP665  :
9.04
AC225193.3_FG003
Bishop, EH et al. 2019. Genomics pp.doi: 10.1016/j.ygeno.2019.07.009     Reference: April 7th, 2022
Variation: March 31st, 2005
Gene Model: January 22nd, 2019
2 years agommc0132  :
3.04
GRMZM2G134178
Sun, GL, et al. 2022. Plant Cell. 0:doi: 10.1093/plcell/koac047     Reference: April 5th, 2022
Variation: September 1st, 2003
Gene Model: March 23rd, 2018
2 years agoatx5 arabidopsis trithorax homolog5:
 
GRMZM2G179814
Xu, Q, et al. 2022. Genome Biology. 23:77   AT4G27910 (TAIR)
LOC_Os01g46700 (MSU/TIGR)
Reference: April 5th, 2022
Gene Product: June 30th, 2017
Variation: June 29th, 2017
Gene Model: June 29th, 2017
2 years agorafs3 raffinose synthase3:
 
GRMZM2G311756
Finegan, C et al. 2022. Frontiers Plant Sci 12:800326     Reference: February 8th, 2022
Gene Product: October 25th, 2019
Gene Model: April 6th, 2022
2 years agochx12 cation/H+ antiporter 12:
 
GRMZM2G025611
Sun, GL, et al. 2022. Plant Cell. 0:doi: 10.1093/plcell/koac047     Reference: April 5th, 2022
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
2 years agodng105 DNA glycosylase105:
 
GRMZM5G828460
Xu, Q, et al. 2022. Genome Biology. 23:77     Reference: April 5th, 2022
Gene Product: October 5th, 2021
Gene Model: October 6th, 2021
2 years agopgl11 polygalacturonase11:
3.04
GRMZM2G467435
Sun, GL, et al. 2022. Plant Cell. 0:doi: 10.1093/plcell/koac047     Reference: April 5th, 2022
Gene Product: October 4th, 2021
Gene Model: March 31st, 2020
2 years agovoz5 VOZ-transcription factor 5:
 
   Liu, ML et al. 2022. Frontiers Plant Sci 13:847234     Reference: April 4th, 2022
Gene Product: September 14th, 2021
2 years agordr6 RNA-dependent RNA polymerase6:
 
GRMZM2G145201
Balassa, G et al. 2022. J Plant Growth Reg pp.doi: 10.1007/s00344-022-10651-z     Reference: April 4th, 2022
Gene Product: August 8th, 2006
Variation: July 29th, 2015
Gene Model: July 27th, 2015
2 years agordr2 RNA-dependent RNA polymerase2:
 
GRMZM2G481730
Balassa, G et al. 2022. J Plant Growth Reg pp.doi: 10.1007/s00344-022-10651-z     Reference: April 4th, 2022
Gene Product: August 8th, 2006
Gene Model: June 20th, 2019
2 years agordr3 RNA-dependent RNA polymerase3:
 
GRMZM2G347931
Balassa, G et al. 2022. J Plant Growth Reg pp.doi: 10.1007/s00344-022-10651-z     Reference: April 4th, 2022
Gene Product: August 8th, 2006
Gene Model: June 20th, 2019
2 years agoago105 argonaute105:
3.04
GRMZM2G089743
Balassa, G et al. 2022. J Plant Growth Reg pp.doi: 10.1007/s00344-022-10651-z     Reference: April 4th, 2022
Gene Product: August 12th, 2016
Variation: September 11th, 2007
Gene Model: January 30th, 2015
2 years agoago106a argonaute106a:
10.04
   Balassa, G et al. 2022. J Plant Growth Reg pp.doi: 10.1007/s00344-022-10651-z     Reference: April 4th, 2022
Gene Product: August 12th, 2016
Variation: September 11th, 2007
2 years agoefcb1 EF-hand Ca2+-binding protein1:
 
AC225718.2_FG006
Wang, Y et al. 2022. Plant Sci 318:111221     Reference: March 30th, 2022
Gene Product: February 1st, 2021
Gene Model: February 1st, 2021
2 years agoebe1 embryo-sac basal-endosperm layer embryo-surrounding-region:
8.06
GRMZM2G129157
Wang, Y et al. 2022. Plant Sci 318:111221     Reference: March 30th, 2022
Variation: May 6th, 2004
Gene Model: August 29th, 2015
2 years agoIDP182  :
1.04
GRMZM2G115975
Wang, Y et al. 2022. Plant Sci 318:111221     Reference: March 30th, 2022
Variation: March 31st, 2005
Gene Model: February 13th, 2019
2 years agoisu62a  :
5.00
GRMZM2G384070
Kumar, B et al. 2022. Genes 13:618     Reference: March 29th, 2022
Variation: September 1st, 2003
Gene Model: March 29th, 2022
2 years agoumc1122  :
1.06
GRMZM2G016210
Kumar, B et al. 2022. Genes 13:618     Reference: March 29th, 2022
Variation: September 23rd, 2016
Gene Model: September 23rd, 2016
2 years agoGRMZM2G350428  :
 
GRMZM2G350428
Dai, LQ et al. 2022. Plant Cell, Tissue and Organ Culture (PCTOC) pp.doi: 10.1007/s11240-022-02284-7     Reference: March 28th, 2022
Gene Product: February 22nd, 2021
Gene Model: September 17th, 2016
2 years agochn24 chitinase24:
 
GRMZM2G103668
Li, XH et al. 2022. Plants 11:887     Reference: March 26th, 2022
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
2 years agoIDP1439  :
2.04
GRMZM2G083888
Li, XH et al. 2022. Plants 11:887     Reference: March 26th, 2022
Variation: March 31st, 2005
Gene Model: February 19th, 2019
2 years agoIDP844  :
9.01
   Li, XH et al. 2022. Plants 11:887     Reference: March 26th, 2022
Variation: March 31st, 2005
2 years agolac2 laccase2:
6.05
GRMZM2G146152
Liu, HH et al. 2022. Genes 13:579     Reference: March 24th, 2022
Gene Product: March 31st, 2018
Gene Model: August 28th, 2018
2 years agoskp1 S-phase kinase associated protein 1:
 
GRMZM2G074282
Jing, JL et al. 2022. New Phytol pp.doi: 10.1111/nph.18116     Reference: March 24th, 2022
Gene Product: March 24th, 2022
Gene Model: March 24th, 2022
2 years agosdg118 set domain gene118:
8.06
   McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: June 30th, 2017
Variation: October 26th, 2020
2 years agosdg110b  :
2.06
   McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: June 30th, 2017
2 years agohac101a  :
3.04
GRMZM2G069886
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: November 6th, 2003
Variation: September 1st, 2003
Gene Model: March 23rd, 2018
2 years agohac101b histone acetyltransferase101b:
1.05
GRMZM2G335438
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: November 6th, 2003
Variation: September 1st, 2003
Gene Model: July 27th, 2017
2 years agobrd103  :
7.03
GRMZM2G040079
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Variation: September 1st, 2003
Gene Model: July 26th, 2020
2 years agochb101b chromatin remodeling complex subunit B (Swi3):
1.10
GRMZM2G047038
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Variation: September 1st, 2003
Gene Model: June 30th, 2018
2 years agochc101b chromatin remodeling complex101b:
2.08
   McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Variation: September 1st, 2003
2 years agochr112b chromatin complex subunit A:
8.05
GRMZM2G054876
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Variation: September 1st, 2003
Gene Model: November 15th, 2021
2 years agochr113 chromatin complex subunit A:
9.02
GRMZM2G409865
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: December 15th, 2020
Variation: December 15th, 2020
Gene Model: November 10th, 2018
2 years agochr119 chromatin complex subunit A 119:
2.07
GRMZM2G181158
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Variation: September 1st, 2003
Gene Model: November 10th, 2018
2 years agoepl101 enhancer of polycomb-like protein101:
7.02
GRMZM2G110548
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Variation: September 1st, 2003
Gene Model: July 27th, 2016
2 years agohag103b histone acetyl transferase GNAT/MYST103b:
10.04
GRMZM2G359735
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: January 4th, 2018
Variation: September 1st, 2003
Gene Model: January 4th, 2018
2 years agosmh4 single myb histone4:
3.07
   McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Variation: October 16th, 2014
2 years agombd101 methyl binding domain101:
8.04
GRMZM2G040131
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: December 24th, 2015
Variation: September 25th, 2007
Gene Model: July 7th, 2015
2 years agonfc103b nucleosome/chromatin assembly factor C:
5.03
GRMZM2G320606
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Variation: September 1st, 2003
Gene Model: December 11th, 2012
2 years agonfc104b nucleosome/chromatin assembly factor C:
2.07
   McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Variation: September 1st, 2003
2 years agosdg104 SET domain-containing protein SET104:
2.03
   McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: June 30th, 2017
Variation: September 1st, 2003
2 years agosdg106 set domain gene106:
2.07
GRMZM2G409213
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: June 30th, 2017
Variation: September 1st, 2003
Gene Model: June 29th, 2017
2 years agosdg107 set domain gene107:
2.03
GRMZM2G357972
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: June 30th, 2017
Variation: September 1st, 2003
Gene Model: June 29th, 2017
2 years agosdg108 set domain gene108:
4.04
GRMZM2G149153
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: June 30th, 2017
Variation: September 1st, 2003
Gene Model: June 29th, 2017
2 years agosdg110a set domain gene110a:
7.02
GRMZM2G130910
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: June 30th, 2017
Variation: September 1st, 2003
Gene Model: June 29th, 2017
2 years agosdg111 set domain gene111:
6.06
GRMZM2G117458
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: June 30th, 2017
Variation: September 1st, 2003
Gene Model: June 29th, 2017
2 years agosdg115 set domain gene115:
3.08
GRMZM2G033350
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: June 30th, 2017
Variation: September 1st, 2003
Gene Model: June 29th, 2017
2 years agosdg119 set domain gene119:
2.06
   McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: June 30th, 2017
Variation: September 1st, 2003
2 years agosdg123 SET domain protein123:
1.08
GRMZM2G080462
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: June 30th, 2017
Variation: February 2nd, 2015
Gene Model: February 2nd, 2015
2 years agosgb101 silencing gene B101:
2.02
GRMZM2G106245
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Variation: February 23rd, 2010
Gene Model: July 28th, 2016
2 years agovef101a  :
7.02
GRMZM2G157422
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Variation: September 1st, 2003
Gene Model: May 27th, 2019
2 years agochc101a chromatin remodeling complex101a:
7.05
   McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Variation: September 1st, 2003
2 years agombd108 methyl binding domain108:
7.03
GRMZM2G168269
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: December 24th, 2015
Variation: September 1st, 2003
Gene Model: December 24th, 2015
2 years agonfc104a nucleosome/chromatin assembly factor 104:
7.06
GRMZM2G032711
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Variation: September 1st, 2003
Gene Model: December 11th, 2012
2 years agonfe101 nucleosome/chromatin assembly factor group E (ACF1 homologs) 101:
5.05
GRMZM2G337749
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Variation: September 1st, 2003
Gene Model: August 8th, 2019
2 years agosdg129 set domain gene129:
5.03
GRMZM2G305124
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: June 30th, 2017
Variation: September 1st, 2003
Gene Model: June 29th, 2017
2 years agohxa102 histone acetyltransferase complex component102:
 
GRMZM5G815323
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: August 28th, 2017
Variation: August 28th, 2017
Gene Model: August 28th, 2017
2 years agosmh1 single myb histone1:
8.06
   McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: February 18th, 2004
Variation: January 15th, 2015
2 years agosdg122 set domain gene122:
1.02
GRMZM2G091916
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: June 30th, 2017
Variation: June 29th, 2017
Gene Model: June 29th, 2017
2 years agogl8b 3-ketoacyl reductase GL8B:
4.05
GRMZM2G087323
Campbell, AA et al. 2019. PLoS One 14:e0213620     Reference: March 23rd, 2022
Gene Product: March 6th, 2007
Variation: December 6th, 2012
Gene Model: February 20th, 2015
2 years agomet8 DNA methyl transferase8:
 
GRMZM2G333916
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: April 6th, 2018
Variation: December 25th, 2014
Gene Model: December 23rd, 2014
2 years agosdg117 set domain gene117:
 
GRMZM2G172427
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: June 30th, 2017
Gene Model: June 29th, 2017
2 years agohak10 potassium high-affinity transporter10:
 
GRMZM2G443728
Campbell, AA et al. 2019. PLoS One 14:e0213620     Reference: March 23rd, 2022
Gene Product: March 12th, 2020
Gene Model: March 12th, 2020
2 years agoelo3 elongation defective-like3:
 
GRMZM2G133793
Campbell, AA et al. 2019. PLoS One 14:e0213620     Reference: March 23rd, 2022
Gene Product: November 1st, 2018
Gene Model: February 20th, 2021
2 years agodes*-19 defective seedling*-19:
 
   Gaiti, A et al. 2022. Plants 11:847     Reference: March 23rd, 2022
Variation: March 23rd, 2022
2 years agoelo2 elongation defective-like2:
 
GRMZM2G128445
Campbell, AA et al. 2019. PLoS One 14:e0213620     Reference: March 23rd, 2022
Gene Product: November 1st, 2018
Gene Model: March 23rd, 2022
2 years agokcs17 3-ketoacyl-CoA synthase17:
 
GRMZM2G340383
    Gene Product: November 1st, 2018
Gene Model: March 23rd, 2022
2 years agokcs20 3-ketoacyl-CoA synthase20:
 
GRMZM2G059012
    Gene Product: November 1st, 2018
Gene Model: March 23rd, 2022
2 years agokcs21 3-ketoacyl-CoA synthase21:
 
GRMZM2G036411
    Gene Product: November 1st, 2018
Gene Model: March 23rd, 2022
2 years agogta106b global transcription factor (Spt5):
9.01
GRMZM2G142072
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Variation: December 27th, 2021
Gene Model: September 8th, 2021
2 years agomagi14814  :
7.02
GRMZM2G160770
Khan, SU et al. 2022. Genes 13:564     Reference: March 23rd, 2022
Variation: March 31st, 2005
Gene Model: January 31st, 2019
2 years agodmt104 DNA methyl transferase 104:
 
   McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: April 6th, 2018
2 years agombd113 methyl binding domain113:
10.04
GRMZM2G126545
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: December 24th, 2015
Variation: February 3rd, 2010
Gene Model: December 24th, 2015
2 years agosdg103 SET domain group 103:
 
GRMZM2G074094
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: June 30th, 2017
Gene Model: June 29th, 2017
2 years agosgb102 silencing gene B 102:
1.09
GRMZM2G123159
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Variation: February 4th, 2015
Gene Model: February 4th, 2015
2 years agombd111 methyl binding domain111:
2.07
GRMZM2G025095
McGinnis, K et al. 2007. Plant Physiol 143:1441-51     Reference: March 23rd, 2022
Gene Product: December 24th, 2015
Variation: January 29th, 2010
Gene Model: December 24th, 2015
2 years agoAY107018  :
3.07
GRMZM2G140201
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: September 25th, 2007
Gene Model: August 20th, 2021
2 years agoAY106026  :
3.06
   Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: September 25th, 2007
2 years agopza02450  :
2.04
   Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: September 25th, 2007
2 years agolug10 leunig-related10:
8.02
GRMZM5G869422
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Gene Product: October 23rd, 2018
Variation: September 25th, 2007
Gene Model: September 5th, 2021
2 years agoBE518809  :
9.03
GRMZM5G839512
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: September 25th, 2007
Gene Model: September 9th, 2021
2 years agohmg3 high mobility group protein3:
4.06
GRMZM2G156785
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Gene Product: September 1st, 2003
Variation: June 24th, 2014
Gene Model: June 24th, 2014
2 years agoumc1626  :
1.05
GRMZM5G801886
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: September 25th, 2007
Gene Model: November 30th, 2016
2 years agoalf12 Alfin-like-transcription factor 12:
 
   Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Gene Product: November 11th, 2021
Variation: December 21st, 2021
2 years agoalf3 Alfin-like-transcription factor 3:
 
   Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Gene Product: November 11th, 2021
Variation: December 20th, 2021
2 years agoalf5 Alfin-like-transcription factor 5:
 
   Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Gene Product: November 11th, 2021
Variation: December 20th, 2021
2 years agohmg13 HMG-transcription factor 13:
 
   Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: May 8th, 2019
2 years agoAY110450  :
8.03
GRMZM2G152436
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: July 29th, 2004
Gene Model: September 18th, 2018
2 years agoAY110159  :
1.07 - 1.08
GRMZM5G888696
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: July 29th, 2004
Gene Model: June 7th, 2017
2 years agochr109a chromatin complex subunit A:
10.03
GRMZM2G115424
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Gene Product: November 11th, 2021
Variation: September 1st, 2003
Gene Model: November 9th, 2018
2 years agombd106 methyl binding domain106:
1.05
GRMZM2G022365
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Gene Product: December 24th, 2015
Variation: February 6th, 2010
Gene Model: December 24th, 2015
2 years agonfd101b nucleosome/chromatin assembly factor D:
2.07
   Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: September 1st, 2003
2 years agonfd102 nucleosome/chromatin assembly factor D:
2.03
GRMZM2G145968
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Gene Product: September 1st, 2003
Variation: February 20th, 2013
Gene Model: July 28th, 2016
2 years agomybr88 MYB-related-transcription factor 88:
4.09
GRMZM2G064328
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: September 1st, 2003
Gene Model: December 6th, 2016
2 years agonfd110 nucleosome/chromatin assembly factor D110:
8.03
GRMZM2G032252
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Gene Product: July 17th, 2006
Variation: May 27th, 2005
Gene Model: July 18th, 2014
2 years agogpm11  :
8.01
   Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: March 30th, 2007
2 years agogpm16  :
2.08 - 2.09
   Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: September 25th, 2007
2 years agombd119 methyl binding domain119:
1.06
GRMZM2G301098
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Gene Product: December 24th, 2015
Variation: February 6th, 2010
Gene Model: July 7th, 2017
2 years agomybr6 MYB-related-transcription factor 6:
3.09
GRMZM2G087817
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: February 17th, 2004
Gene Model: October 25th, 2017
2 years agombd121 methyl binding domain121:
4.08
GRMZM5G812738
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Gene Product: December 24th, 2015
Variation: September 11th, 2007
Gene Model: February 28th, 2020
2 years agombd116 methyl binding domain116:
4.09
   Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Gene Product: December 24th, 2015
Variation: February 6th, 2010
2 years agoAY111877  :
2.05
   Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: March 25th, 2021
2 years agonad2(mt-parviglumis) NADH dehydrogenase subunit 2:
 
   Darracq, A et al. 2010. BMC Genomics 11:233     Reference: April 8th, 2020
Gene Product: March 22nd, 2022
2 years agonad1(mtNB) NADH dehydrogenase subunit 1:
 
   Fan, KJ et al. 2020. Plant Cell Physiol pp.doi: 10.1093/pcp/pcaa110     Reference: August 21st, 2020
Gene Product: March 22nd, 2022
2 years agonad6(mtNB) NADH dehydrogenase subunit 6:
 
   Clifton, SW et al. 2004. Plant Physiol 136: 3486-3503     Reference: June 30th, 2007
Gene Product: March 22nd, 2022
2 years agonad9(mt-parviglumis) NADH dehydrogenase subunit 9:
 
       Gene Product: March 22nd, 2022
2 years agoAY106592  :
1.03
GRMZM2G048482
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: February 12th, 2019
Gene Model: February 12th, 2019
2 years agoBG266188  :
2.09
GRMZM2G144635
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: May 29th, 2006
Gene Model: February 14th, 2021
2 years agoAY111333  :
3.04
   Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: July 29th, 2004
2 years agoAY111254  :
3.09
GRMZM2G089351
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: September 25th, 2007
Gene Model: April 9th, 2020
2 years agoAY107128  :
4.05
GRMZM2G145951
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: September 25th, 2007
Gene Model: May 29th, 2020
2 years agogbptf14 GeBP-transcription factor 14:
4.09
   Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: September 25th, 2007
2 years agoppr259 pentatricopeptide repeat protein259:
4.09
   Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Gene Product: December 27th, 2016
Variation: September 25th, 2007
2 years agoAY105205  :
5.04
GRMZM2G135691
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: September 25th, 2007
Gene Model: May 18th, 2020
2 years agoAY111089  :
5.05
   Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: September 25th, 2007
2 years agoAY105479  :
6.05
   Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: September 25th, 2007
2 years agoAY107517  :
6.05
GRMZM2G064001
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: September 25th, 2007
Gene Model: March 26th, 2021
2 years agoAW036917  :
6.05
GRMZM2G106218
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: October 23rd, 2020
Gene Model: May 30th, 2017
2 years agoAY106170  :
7.02
   Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: September 25th, 2007
2 years agoAY109061  :
7.02
GRMZM2G095562
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: September 25th, 2007
Gene Model: January 31st, 2019
2 years agoAY108844  :
7.04
GRMZM2G121022
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: September 25th, 2007
Gene Model: January 31st, 2019
2 years agoAY106318  :
7.05
GRMZM2G090195
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: September 25th, 2007
Gene Model: March 19th, 2021
2 years agoAY110113  :
8.03
GRMZM2G053574
Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: September 25th, 2007
Gene Model: August 27th, 2019
2 years agoAY107496  :
9.01
   Polacco, ML. 2004. MNL. 78:125-137     Reference: March 22nd, 2022
Variation: September 25th, 2007
2 years agonad9(mtNB) NADH dehydrogenase subunit 9:
 
       Gene Product: March 22nd, 2022
2 years agosudh14 succinate dehydrogenase14:
1.07
GRMZM2G087651
Eprintsev, AT et al. 2022. Russ J Plant Physiol 69:24     Reference: March 21st, 2022
Gene Product: October 25th, 2016
Gene Model: February 14th, 2019
2 years agoumc1404  :
3.07
GRMZM2G069061
Eprintsev, AT et al. 2022. Russ J Plant Physiol 69:24     Reference: March 21st, 2022
Variation: September 1st, 2003
Gene Model: April 2nd, 2018
2 years agopap19 purple acid phosphatase19:
1.03
GRMZM2G152447
Han, Y et al. 2022. J Exp Bot pp.doi: 10.1093/jxb/erac117     Reference: March 19th, 2022
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
2 years agopap29 purple acid phosphatase29:
 
GRMZM2G434170
Han, Y et al. 2022. J Exp Bot pp.doi: 10.1093/jxb/erac117     Reference: March 19th, 2022
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
2 years agogpx2 glycerophosphodiester phosphodiesterase2:
 
GRMZM5G829946
Han, Y et al. 2022. J Exp Bot pp.doi: 10.1093/jxb/erac117     Reference: March 19th, 2022
Gene Product: June 24th, 2020
Gene Model: June 24th, 2020
2 years agoact11 actin11:
 
GRMZM2G549274
Li, MF et al. 2022. BMC Plant Biology 22:127     Reference: March 18th, 2022
Gene Product: September 1st, 2003
Gene Model: June 22nd, 2021
2 years agoIDP1633  :
1.11
GRMZM2G004459
Li, MF et al. 2022. BMC Plant Biology 22:127     Reference: March 18th, 2022
Variation: March 31st, 2005
Gene Model: February 16th, 2019
2 years agoIDP751  :
1.05
GRMZM2G033478
Li, MF et al. 2022. BMC Plant Biology 22:127     Reference: March 18th, 2022
Variation: March 31st, 2005
Gene Model: February 13th, 2019
2 years agoIDP744  :
7.05
GRMZM2G130398
Li, MF et al. 2022. BMC Plant Biology 22:127     Reference: March 18th, 2022
Variation: March 31st, 2005
Gene Model: February 6th, 2019
2 years agoact8 actin8:
4.09
GRMZM2G126190
Li, MF et al. 2022. BMC Plant Biology 22:127     Reference: March 18th, 2022
Gene Product: September 1st, 2003
Variation: April 29th, 2020
Gene Model: April 25th, 2020
2 years agoalmt3 aluminum-activated malate transporter homolog3:
5.06
GRMZM2G075136
Pei, YR et al. 2022. Plant Cell pp.doi: 10.1093/plcell/koac093     Reference: March 16th, 2022
Gene Product: March 16th, 2022
Gene Model: April 28th, 2021
2 years agoalmt8 aluminum-activated malate transporter homolog8:
 
GRMZM2G089396
Pei, YR et al. 2022. Plant Cell pp.doi: 10.1093/plcell/koac093     Reference: March 16th, 2022
Gene Product: March 16th, 2022
Gene Model: April 28th, 2021
2 years agoalmt5 aluminum-activated malate transporter homolog5:
 
   Krill, AM et al. 2010. PLoS One 5:e9958     Reference: April 28th, 2021
Gene Product: March 16th, 2022
2 years agoalmt12 aluminum-activated malate transporter homolog12:
 
GRMZM2G446218
Pei, YR et al. 2022. Plant Cell pp.doi: 10.1093/plcell/koac093     Reference: March 16th, 2022
Gene Product: March 16th, 2022
Gene Model: March 16th, 2022
2 years agoalmt4 aluminum-activated malate transporter homolog4:
 
GRMZM2G439638
  AT1G25480 (TAIR) Gene Product: March 16th, 2022
Gene Model: March 16th, 2022
2 years agoark1 atypical receptor-like kinase1:
1.09
GRMZM2G023110
Llompart, B, et al. 2003. J Biol Chem. 278:48105-48111     Reference: January 21st, 2004
Gene Product: March 14th, 2022
Gene Model: March 13th, 2022
2 years agomkkk27 MAP kinase kinase kinase27:
2.08
GRMZM2G089159
Zhang, N; Huang, XQ. 2021. PLoS One 16:e0245129     Reference: January 6th, 2021
Gene Product: March 14th, 2022
Gene Model: July 11th, 2013
2 years agomkkk10 MAP kinase kinase kinase10:
 
GRMZM2G180555
Shi, FM et al. 2018. Gene 659:100-108     Reference: June 16th, 2020
Gene Product: March 14th, 2022
Gene Model: July 11th, 2013
2 years agomkkk51 MAP kinase kinase kinase51:
 
GRMZM2G019434
Kong, X; et al. 2013. PLoS One. 8:e57714     Reference: July 10th, 2013
Gene Product: March 14th, 2022
Gene Model: July 11th, 2013
2 years agomkkk63 MAP kinase kinase kinase63:
 
GRMZM2G152889
    Gene Product: March 14th, 2022
Gene Model: July 11th, 2013
2 years agomkk3 MAP kinase kinase3:
 
GRMZM2G004468
Kaur, G et al. 2021. Plant Sci pp.doi: 10.1016/j.plantsci.2021.110823     Reference: January 15th, 2021
Gene Product: March 14th, 2022
Gene Model: February 23rd, 2019
2 years agothkl1 thick aleurone-like1:
 
GRMZM5G827026
Milsted, C et al. 2022. BMC Genomics 23:199     Reference: March 14th, 2022
Gene Product: August 1st, 2020
Gene Model: August 1st, 2020
2 years agomik1 mark interacting kinase1:
 
GRMZM2G027756
Castells, E et al. 2006. Plant Mol Biol 61:747-56     Reference: March 14th, 2022
Gene Product: March 14th, 2022
Gene Model: March 13th, 2022
2 years agoglpx3 glutathione peroxidase3:
 
GRMZM2G144153
Mallikarjuna, MG et al. 2022. Plant Physiol Biochem pp.doi: 10.1016/j.plaphy.2022.02.024     Reference: March 12th, 2022
Gene Product: March 4th, 2022
Gene Model: November 22nd, 2021
2 years agoglpx5 glutathione peroxidase5:
 
GRMZM2G011025
Mallikarjuna, MG et al. 2022. Plant Physiol Biochem pp.doi: 10.1016/j.plaphy.2022.02.024     Reference: March 12th, 2022
Gene Product: March 4th, 2022
Gene Model: March 4th, 2022
2 years agoglpx4 glutathione peroxidase4:
 
GRMZM2G135893
Mallikarjuna, MG et al. 2022. Plant Physiol Biochem pp.doi: 10.1016/j.plaphy.2022.02.024     Reference: March 12th, 2022
Gene Product: March 4th, 2022
Gene Model: March 4th, 2022
2 years agomwp1 milkweed pod1:
7.02
GRMZM2G082264
Richardson, AE; Hake, S. 2022. Plant Cell pp.doi: 10.1093/plcell/koac081     Reference: March 12th, 2022
Gene Product: September 8th, 2008
Variation: January 30th, 2010
Gene Model: August 6th, 2014
2 years agosrs2 SHI/STY (SRS)-transcription factor 2:
 
   Li, XH et al. 2022. Crop J pp.doi: 10.1016/j.cj.2022.02.004     Reference: March 11th, 2022
Gene Product: April 27th, 2015
2 years agogrp4 glycine rich protein4:
 
GRMZM2G025205
Li, XH et al. 2022. Crop J pp.doi: 10.1016/j.cj.2022.02.004     Reference: March 11th, 2022
Gene Product: September 1st, 2003
Gene Model: April 3rd, 2015
2 years agorcph2 root cap periphery gene2:
4.08
GRMZM2G146502
Li, XH et al. 2022. Crop J pp.doi: 10.1016/j.cj.2022.02.004     Reference: March 11th, 2022
Gene Product: September 1st, 2003
Variation: September 25th, 2007
Gene Model: July 9th, 2015
2 years agosfp1 sulfate permease1:
1.02
GRMZM2G159632
Li, XH et al. 2022. Crop J pp.doi: 10.1016/j.cj.2022.02.004   AT1G22150 (TAIR) Reference: March 11th, 2022
Gene Product: May 8th, 2020
Gene Model: February 3rd, 2015
2 years agorc109 root cap109:
 
GRMZM2G020183
Li, XH et al. 2022. Crop J pp.doi: 10.1016/j.cj.2022.02.004     Reference: March 11th, 2022
Gene Product: September 1st, 2003
Variation: June 1st, 2011
Gene Model: March 11th, 2022
2 years agohma6 heavy metal ATPase6:
4.08
GRMZM2G315931
Gomez-Gallego, T et al. 2022. Ecotoxicol Environ Safety 234:113390     Reference: March 11th, 2022
Gene Product: October 23rd, 2019
Gene Model: October 23rd, 2019
2 years agogrp6 glycine-rich protein6:
 
GRMZM2G118759
Li, XH et al. 2022. Crop J pp.doi: 10.1016/j.cj.2022.02.004     Reference: March 11th, 2022
Gene Product: September 18th, 2020
Gene Model: January 15th, 2020
2 years agohis402 histone H4 family2:
 
GRMZM2G084195
Li, XH et al. 2022. Crop J pp.doi: 10.1016/j.cj.2022.02.004     Reference: March 11th, 2022
Gene Product: September 1st, 2003
Gene Model: September 30th, 2020
2 years agopco111589  :
10.04
   Fei, JB et al. 2022. BMC Plant Biology 22:110     Reference: March 11th, 2022
Variation: September 25th, 2007
2 years agoIDP1698  :
3.05
GRMZM2G099496
Li, XH et al. 2022. Crop J pp.doi: 10.1016/j.cj.2022.02.004     Reference: March 11th, 2022
Variation: March 31st, 2005
Gene Model: February 24th, 2019
2 years agoIDP134  :
10.06
GRMZM2G091534
Li, XH et al. 2022. Crop J pp.doi: 10.1016/j.cj.2022.02.004     Reference: March 11th, 2022
Variation: March 31st, 2005
Gene Model: January 18th, 2018
2 years agopti1 pto-interacting1:
3.04
GRMZM2G378547
Sun, MH et al. 2022. Frontiers Plant Sci 13:774229     Reference: March 10th, 2022
Gene Product: May 13th, 2014
Gene Model: February 23rd, 2019
2 years agohb17 Homeobox-transcription factor 17:
10.03
GRMZM2G118063
Qiu, X et al. 2022. Physiology and Molecular Biology of Plants pp.doi: 10.1007/s12298-022-01147-x     Reference: March 10th, 2022
Variation: September 1st, 2003
Gene Model: October 21st, 2018
2 years agohdac9 histone deacetylase9:
 
GRMZM2G057044
Gendler, K et al. 2008. Nucl Acid Res 36:D298-302     Reference: March 10th, 2022
Gene Product: February 12th, 2020
Variation: September 1st, 2003
Gene Model: February 12th, 2020
2 years agohb71 Homeobox-transcription factor 71:
 
   Qiu, X et al. 2022. Physiology and Molecular Biology of Plants pp.doi: 10.1007/s12298-022-01147-x     Reference: March 10th, 2022
Gene Product: October 3rd, 2020
2 years agosdg128 set domain gene128:
 
   Gendler, K et al. 2008. Nucl Acid Res 36:D298-302   LOC_Os09g04890 (MSU/TIGR) Reference: March 10th, 2022
Gene Product: June 30th, 2017
Variation: June 29th, 2017
2 years agombd123 methyl binding domain123:
10.06
GRMZM2G119802
Gendler, K et al. 2008. Nucl Acid Res 36:D298-302     Reference: March 10th, 2022
Gene Product: December 24th, 2015
Variation: December 15th, 2017
Gene Model: December 15th, 2017
2 years agombd115 methyl binding domain115:
1.09
GRMZM2G157470
Gendler, K et al. 2008. Nucl Acid Res 36:D298-302     Reference: March 10th, 2022
Gene Product: December 24th, 2015
Variation: February 5th, 2010
Gene Model: December 24th, 2015
2 years agombd117 methyl binding domain117:
2.07
GRMZM2G048411
Gendler, K et al. 2008. Nucl Acid Res 36:D298-302     Reference: March 10th, 2022
Gene Product: December 24th, 2015
Variation: February 5th, 2010
Gene Model: December 24th, 2015
2 years agombd122 methyl binding domain122:
4.04
GRMZM2G377369
Gendler, K et al. 2008. Nucl Acid Res 36:D298-302     Reference: March 10th, 2022
Gene Product: December 24th, 2015
Variation: February 5th, 2010
Gene Model: February 28th, 2020
2 years agoapo1 accumulation of photosystem one1:
 
GRMZM2G007453
Watkins, KP et al. 2011. Plant Cell 23:1082-1092   AT1G64810 (TAIR) Reference: September 14th, 2012
Gene Product: December 11th, 2015
Variation: March 10th, 2022
Gene Model: December 11th, 2015
2 years agosdg130 set domain gene130:
 
GRMZM2G457881
Gendler, K et al. 2008. Nucl Acid Res 36:D298-302     Reference: March 10th, 2022
Gene Product: June 30th, 2017
Variation: June 29th, 2017
Gene Model: June 29th, 2017
2 years agombd103 methyl binding domain103:
 
AC217264.3_FG001
Gendler, K et al. 2008. Nucl Acid Res 36:D298-302     Reference: March 10th, 2022
Gene Product: December 24th, 2015
Gene Model: February 28th, 2020
2 years agombd125 methyl binding domain125:
 
GRMZM2G161447
Gendler, K et al. 2008. Nucl Acid Res 36:D298-302     Reference: March 10th, 2022
Gene Product: December 24th, 2015
Gene Model: February 28th, 2020
2 years agombd126 methyl binding domain126:
 
GRMZM2G161447
Gendler, K et al. 2008. Nucl Acid Res 36:D298-302     Reference: March 10th, 2022
Gene Product: December 24th, 2015
Gene Model: February 28th, 2020
2 years agombd102 methyl binding domain102:
 
GRMZM5G847045
Gendler, K et al. 2008. Nucl Acid Res 36:D298-302     Reference: March 10th, 2022
Gene Product: December 24th, 2015
Gene Model: February 28th, 2020
2 years agopti3 pto-interacting3:
 
GRMZM2G029530
Sun, MH et al. 2022. Frontiers Plant Sci 13:774229     Reference: March 10th, 2022
Gene Product: May 13th, 2014
Gene Model: March 31st, 2020
2 years agopti4 pto-interacting4:
 
GRMZM2G001668
Sun, MH et al. 2022. Frontiers Plant Sci 13:774229     Reference: March 10th, 2022
Gene Product: May 13th, 2014
Gene Model: March 31st, 2020
2 years agoIDP174  :
1.07
GRMZM5G842970
Singh, P et al. 2022. Sci. Rep. 12:4211     Reference: March 10th, 2022
Variation: March 31st, 2005
Gene Model: February 14th, 2019
2 years agoIDP706  :
8.08
GRMZM2G124047
Singh, P et al. 2022. Sci. Rep. 12:4211     Reference: March 10th, 2022
Variation: March 31st, 2005
Gene Model: September 3rd, 2019
2 years agombd110 methyl binding domain110:
 
GRMZM2G087472
Gendler, K et al. 2008. Nucl Acid Res 36:D298-302     Reference: March 10th, 2022
Variation: February 6th, 2010
Gene Model: March 20th, 2019
2 years agoumc1611  :
1.05
GRMZM2G132077
Laureyns, R, et al. 2021. Plant Physiol. 0:doi:10.1093/plphys/kiab533     Reference: March 8th, 2022
Variation: November 18th, 2016
Gene Model: November 18th, 2016
2 years agocsu235  :
4.03
GRMZM2G124644
Ma, PP et al. 2022. Plant Dis pp.doi: 10.1094/PDIS-10-21-2247-RE     Reference: March 9th, 2022
Variation: September 1st, 2003
Gene Model: April 17th, 2018
2 years agoras8A2 ras-related protein8A2:
 
GRMZM5G877985
Laureyns, R, et al. 2021. Plant Physiol. 0:doi:10.1093/plphys/kiab533     Reference: March 8th, 2022
Variation: January 20th, 2011
Gene Model: August 28th, 2018
2 years agohis405 histone H4 family5:
 
GRMZM2G149178
Laureyns, R, et al. 2021. Plant Physiol. 0:doi:10.1093/plphys/kiab533     Reference: March 8th, 2022
Gene Product: September 1st, 2003
Gene Model: December 23rd, 2020
2 years agosbp9 SBP-transcription factor 9:
8.01
   Kellogg, EA. 2022. Plant Cell pp.doi: 10.1093/plcell/koac080     Reference: March 8th, 2022
Gene Product: July 5th, 2019
2 years agosbp11 SBP-transcription factor 11:
 
   Kellogg, EA. 2022. Plant Cell pp.doi: 10.1093/plcell/koac080     Reference: March 8th, 2022
Gene Product: July 5th, 2019
2 years agosbp5 SBP-transcription factor 5:
 
   Kellogg, EA. 2022. Plant Cell pp.doi: 10.1093/plcell/koac080     Reference: March 8th, 2022
Gene Product: July 5th, 2019
2 years agopap17 purple acid phosphatase17:
 
GRMZM2G138756
Kellogg, EA. 2022. Plant Cell pp.doi: 10.1093/plcell/koac080     Reference: March 8th, 2022
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
2 years agosudh1 succinate dehydrogenase1:
7.00
GRMZM2G064799
Xiao, QL et al. 2022. BMC Genomics 23:184     Reference: March 7th, 2022
Gene Product: October 25th, 2016
Variation: October 25th, 2016
Gene Model: October 25th, 2016
2 years agothk1 thick aleurone1:
 
   Wu, H et al. 2022. Frontiers Plant Sci 13:852082     Reference: March 7th, 2022
Gene Product: August 1st, 2020
Variation: August 1st, 2020
2 years agopsei1 cystatin1:
3.06
   Xiao, QL et al. 2022. BMC Genomics 23:184     Reference: March 7th, 2022
Gene Product: April 21st, 2008
Variation: November 5th, 2008
2 years agohir3 hypersensitive induced reaction3:
6.07
GRMZM2G070659
Xiao, QL et al. 2022. BMC Genomics 23:184     Reference: March 7th, 2022
Gene Product: September 1st, 2003
Variation: May 29th, 2021
Gene Model: July 28th, 2016
2 years agoodo1 alpha keto dehydrogenase candidate1:
10.04
   Xiao, QL et al. 2022. BMC Genomics 23:184     Reference: March 7th, 2022
Gene Product: September 1st, 2003
Variation: September 25th, 2007
2 years agocts5 citrate synthase5:
3.05
GRMZM2G034083
Xiao, QL et al. 2022. BMC Genomics 23:184     Reference: March 7th, 2022
Gene Product: July 5th, 2019
Gene Model: July 5th, 2019
2 years agoras2 Ras-related protein2:
10.04
GRMZM2G173878
Xiao, QL et al. 2022. BMC Genomics 23:184     Reference: March 7th, 2022
Variation: January 14th, 2011
Gene Model: December 28th, 2016
2 years agorps28 ribosomal protein S28:
 
GRMZM2G030293
Xiao, QL et al. 2022. BMC Genomics 23:184     Reference: March 7th, 2022
Gene Product: September 1st, 2003
Variation: September 19th, 2018
Gene Model: September 18th, 2018
2 years agochn7 chitinase7:
 
GRMZM2G162359
Xiao, QL et al. 2022. BMC Genomics 23:184     Reference: March 7th, 2022
Gene Product: May 31st, 2021
Gene Model: June 11th, 2020
2 years agorfwd3 ring finger and WD40 repeat3:
 
GRMZM2G085691
Wu, H et al. 2022. Frontiers Plant Sci 13:852082     Reference: March 7th, 2022
Gene Product: March 26th, 2020
Variation: July 23rd, 2020
Gene Model: July 23rd, 2020
2 years agovln2 villin-like2:
 
GRMZM2G180988
Xiao, QL et al. 2022. BMC Genomics 23:184     Reference: March 7th, 2022
Variation: January 26th, 2022
Gene Model: January 26th, 2022
2 years agoucp3 uncoupling protein homolog3:
 
GRMZM2G000510
Xiao, QL et al. 2022. BMC Genomics 23:184     Reference: March 7th, 2022
Gene Product: June 5th, 2017
Variation: June 5th, 2017
Gene Model: June 5th, 2017
2 years agonip1a NOD26-like membrane intrinsic protein1:
5.04
GRMZM2G041980
Ozfidan-Konakci, C et al. 2022. Science of The Total Environment 826:154213     Reference: March 4th, 2022
Gene Product: January 27th, 2022
Variation: June 2nd, 2015
Gene Model: June 2nd, 2015
2 years agoufg64  :
9.04
GRMZM2G170870
Meng, AJ et al. 2022. Frontiers Plant Sci 13:843033     Reference: March 4th, 2022
Variation: March 17th, 2021
Gene Model: October 20th, 2021
2 years agoumc1813  :
3.09
GRMZM2G117685
Liu, P, et al. 2022. BMC Genomics. 23:50     Reference: March 2nd, 2022
Variation: September 1st, 2003
Gene Model: April 2nd, 2018
2 years agogols1 galactinol synthase1:
1.03
GRMZM2G165919
Liu, P, et al. 2022. BMC Genomics. 23:50     Reference: March 2nd, 2022
Gene Product: March 1st, 2018
Variation: January 26th, 2010
Gene Model: December 24th, 2015
2 years agotrub1 tRNA pseudouridine synthase B1:
8.01
   Xie, YT et al. 2022. Int J Mol Sci 23:2680     Reference: February 28th, 2022
Gene Product: February 28th, 2022
2 years agorsua1 ribosomal small subunit pseudouridine synthase A1:
1.01
GRMZM2G018080
Xie, YT et al. 2022. Int J Mol Sci 23:2680     Reference: February 28th, 2022
Gene Product: February 28th, 2022
Variation: March 9th, 2016
Gene Model: March 9th, 2016
2 years agotrub3 tRNA pseudouridine synthase B3:
 
GRMZM2G082365
Xie, YT et al. 2022. Int J Mol Sci 23:2680     Reference: February 28th, 2022
Gene Product: February 28th, 2022
Gene Model: February 15th, 2021
2 years agocns1 cytochrome c maturation FN stabilizer1:
 
AC212835.3_FG001
Ma, SA et al. 2022. Plant Physiol pp.doi: 10.1093/plphys/kiac086     Reference: February 28th, 2022
Gene Product: December 27th, 2016
Variation: February 26th, 2022
Gene Model: February 26th, 2022
2 years agotrua2 tRNA pseudouridine synthase A2:
 
GRMZM2G043948
Xie, YT et al. 2022. Int J Mol Sci 23:2680     Reference: February 28th, 2022
Gene Product: February 28th, 2022
Gene Model: February 28th, 2022
2 years agotrua3 tRNA pseudouridine synthase A3:
 
GRMZM2G100497
Xie, YT et al. 2022. Int J Mol Sci 23:2680     Reference: February 28th, 2022
Gene Product: February 28th, 2022
Gene Model: February 28th, 2022
2 years agotrua4 tRNA pseudouridine synthase A4:
 
GRMZM2G095782
Xie, YT et al. 2022. Int J Mol Sci 23:2680     Reference: February 28th, 2022
Gene Product: February 28th, 2022
Gene Model: February 28th, 2022
2 years agotrua5 tRNA pseudouridine synthase A5:
 
GRMZM2G050765
Xie, YT et al. 2022. Int J Mol Sci 23:2680     Reference: February 28th, 2022
Gene Product: February 28th, 2022
Gene Model: February 28th, 2022
2 years agotrud3 tRNA pseudouridine synthase D3:
 
GRMZM2G009442
Xie, YT et al. 2022. Int J Mol Sci 23:2680     Reference: February 28th, 2022
Gene Product: February 28th, 2022
Gene Model: February 28th, 2022
2 years agotrud1 tRNA pseudouridine synthase D1:
 
GRMZM2G173137
Xie, YT et al. 2022. Int J Mol Sci 23:2680     Reference: February 28th, 2022
Gene Product: February 28th, 2022
Gene Model: February 28th, 2022
2 years agotrub4 tRNA pseudouridine synthase B4:
 
GRMZM2G174716
Xie, YT et al. 2022. Int J Mol Sci 23:2680     Reference: February 28th, 2022
Gene Product: February 28th, 2022
Gene Model: February 28th, 2022
2 years agopus1 tRNA pseudouridine synthase B4:
 
GRMZM2G101383
Xie, YT et al. 2022. Int J Mol Sci 23:2680     Reference: February 28th, 2022
Gene Product: February 28th, 2022
Gene Model: February 28th, 2022
2 years agorlua6 RNA pseudouridine synthase6:
 
GRMZM2G147335
Xie, YT et al. 2022. Int J Mol Sci 23:2680     Reference: February 28th, 2022
Gene Product: February 28th, 2022
Gene Model: February 28th, 2022
2 years agorlua5 RNA pseudouridine synthase5:
 
GRMZM2G151200
Xie, YT et al. 2022. Int J Mol Sci 23:2680     Reference: February 28th, 2022
Gene Product: February 28th, 2022
Gene Model: February 28th, 2022
2 years agorlua4 RNA pseudouridine synthase4:
 
GRMZM2G046088
Xie, YT et al. 2022. Int J Mol Sci 23:2680     Reference: February 28th, 2022
Gene Product: February 28th, 2022
Gene Model: February 28th, 2022
2 years agorlua3 RNA pseudouridine synthase3:
 
GRMZM2G075431
Xie, YT et al. 2022. Int J Mol Sci 23:2680     Reference: February 28th, 2022
Gene Product: February 28th, 2022
Gene Model: February 28th, 2022
2 years agotrua6 tRNA pseudouridine synthase A6:
 
AC216010.3_FG001
Xie, YT et al. 2022. Int J Mol Sci 23:2680     Reference: February 28th, 2022
Gene Product: February 28th, 2022
Gene Model: February 28th, 2022
2 years agotrud2 tRNA pseudouridine synthase D2:
7.04
GRMZM2G459702
Xie, YT et al. 2022. Int J Mol Sci 23:2680     Reference: February 28th, 2022
Gene Product: February 28th, 2022
Gene Model: July 29th, 2020
2 years agorlua2 RNA pseudouridine synthase2:
7.02
GRMZM2G110140
Xie, YT et al. 2022. Int J Mol Sci 23:2680     Reference: February 28th, 2022
Gene Product: February 28th, 2022
Gene Model: July 17th, 2020
2 years agotrua1 tRNA pseudouridine synthase A1:
5.05
GRMZM2G112352
Xie, YT et al. 2022. Int J Mol Sci 23:2680     Reference: February 28th, 2022
Gene Product: February 28th, 2022
Variation: March 31st, 2005
Gene Model: May 22nd, 2020
2 years agopat29 protein S-acyltransferase29:
6.05
GRMZM2G100641
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Variation: September 1st, 2003
Gene Model: January 3rd, 2020
2 years agopat20 protein S-acyltransferase20:
4.05
GRMZM5G821611
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Variation: July 29th, 2004
Gene Model: April 13th, 2018
2 years agopat17 protein S-acyltransferase17:
3.06
GRMZM2G064853
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: August 20th, 2021
2 years agopat30 protein S-acyltransferase30:
 
GRMZM2G035849
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: January 2nd, 2020
2 years agopat27 protein S-acyltransferase27:
5.06
GRMZM2G176270
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: May 23rd, 2020
2 years agopat33 protein S-acyltransferase33:
 
GRMZM2G433942
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: May 7th, 2021
2 years agopat2 protein S-acyltransferase2:
 
GRMZM2G043030
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
2 years agopat3 protein S-acyltransferase3:
 
GRMZM2G703749
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
2 years agopat5 protein S-acyltransferase5:
 
GRMZM2G149442
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
2 years agopat6 protein S-acyltransferase6:
 
GRMZM2G068177
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
2 years agopat9 protein S-acyltransferase9:
 
GRMZM2G321767
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
2 years agopat10 protein S-acyltransferase10:
 
GRMZM2G179002
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
2 years agopat11 protein S-acyltransferase11:
 
GRMZM2G063868
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
2 years agopat13 protein S-acyltransferase13:
 
GRMZM2G166661
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
2 years agopat14 protein S-acyltransferase14:
 
GRMZM5G838671
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
2 years agopat15 protein S-acyltransferase15:
 
GRMZM2G386245
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
2 years agopat16 protein S-acyltransferase16:
 
GRMZM2G034833
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
2 years agopat18 protein S-acyltransferase18:
 
GRMZM2G005834
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
2 years agopat21 protein S-acyltransferase21:
 
GRMZM2G080644
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
2 years agopat22 protein S-acyltransferase22:
 
GRMZM2G012544
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
2 years agopat23 protein S-acyltransferase23:
 
GRMZM2G016805
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
2 years agopat24 protein S-acyltransferase24:
 
GRMZM2G163717
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
2 years agopat25 protein S-acyltransferase25:
 
GRMZM2G409934
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
2 years agopat26 protein S-acyltransferase26:
 
GRMZM2G141503
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
2 years agopat28 protein S-acyltransferase28:
 
GRMZM2G024437
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
2 years agopat31 protein S-acyltransferase31:
 
GRMZM5G868588
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
2 years agopat36 protein S-acyltransferase36:
 
GRMZM2G103465
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: February 26th, 2022
2 years agopat35 protein S-acyltransferase35:
9.04
GRMZM2G108384
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: June 24th, 2020
2 years agopat12 protein S-acyltransferase12:
2.08
GRMZM2G040230
Yuan, XW et al. 2013. PLoS One 8:e75985     Reference: February 26th, 2022
Gene Product: February 26th, 2022
Gene Model: March 22nd, 2020
2 years agoms*-305 male sterile*-305:
 
   Shi, ZW et al. 2022. Hereditas 44:134-152     Reference: February 25th, 2022
Variation: April 3rd, 2020
2 years agoms40 male sterile40:
 
   Shi, ZW et al. 2022. Hereditas 44:134-152     Reference: February 25th, 2022
Variation: April 9th, 2021
2 years agoelfa3 elongation factor alpha3:
6.05
GRMZM2G154218
Arif, MAR et al. 2022. Plants 11:598     Reference: February 24th, 2022
Gene Product: September 1st, 2003
Variation: April 7th, 2014
Gene Model: July 27th, 2016
2 years agorfri1 red and far red insensitive1:
6.05
GRMZM2G153250
Arif, MAR et al. 2022. Plants 11:598     Reference: February 24th, 2022
Gene Product: March 26th, 2020
Gene Model: November 22nd, 2019
2 years agoIDP444  :
4.06
GRMZM5G813909
Arif, MAR et al. 2022. Plants 11:598     Reference: February 24th, 2022
Variation: March 31st, 2005
Gene Model: May 23rd, 2021
2 years agocl1922_1b  :
2.09
GRMZM2G172369
Ding, XX et al. 2022. Frontiers Plant Sci 13:833612     Reference: February 18th, 2022
Variation: September 25th, 2007
Gene Model: August 16th, 2021
2 years agopld5 phospholipase D5:
 
GRMZM2G442551
Ding, XX et al. 2022. Frontiers Plant Sci 13:833612     Reference: February 18th, 2022
Gene Product: August 9th, 2016
Gene Model: August 9th, 2016
2 years agoaaap62 amino acid/auxin permease62:
9.03
GRMZM2G177659
Ding, XX et al. 2022. Frontiers Plant Sci 13:833612     Reference: February 18th, 2022
Gene Product: March 31st, 2021
Gene Model: June 20th, 2020
2 years agoumc1314  :
6.05
GRMZM2G061912
Sadessa, K et al. 2022. Genes 13:351     Reference: February 15th, 2022
Variation: September 1st, 2003
Gene Model: August 26th, 2018
2 years agoumc1739  :
10.03
GRMZM2G028104
Sadessa, K et al. 2022. Genes 13:351     Reference: February 15th, 2022
Variation: September 1st, 2003
Gene Model: December 14th, 2017
2 years agorhn1 ras-related protein RHN1:
 
GRMZM2G131254
Sadessa, K et al. 2022. Genes 13:351     Reference: February 15th, 2022
Variation: January 14th, 2011
Gene Model: December 28th, 2016
2 years agomab25 math-btb25:
 
GRMZM2G088086
Sadessa, K et al. 2022. Genes 13:351     Reference: February 15th, 2022
Gene Product: June 6th, 2014
Variation: May 23rd, 2017
Gene Model: February 14th, 2017
2 years agoacb10 Acyl-CoA-binding protein10:
 
GRMZM2G114672
Osuman, AS et al. 2022. Genes 13:349     Reference: February 15th, 2022
Gene Product: February 15th, 2021
Gene Model: April 24th, 2021
2 years agomtl9 metallothionein9:
 
GRMZM2G052869
Sadessa, K et al. 2022. Genes 13:351     Reference: February 15th, 2022
Gene Product: September 1st, 2003
Gene Model: January 10th, 2022
2 years agoIDP636  :
4.05
GRMZM2G179810
Sadessa, K et al. 2022. Genes 13:351     Reference: February 15th, 2022
Variation: March 31st, 2005
Gene Model: January 13th, 2021
2 years agoumc1319  :
10.01 - 10.02
GRMZM2G022318
Ma, LL et al. 2022. J Hazardous Materials doi: 10.1016/j.jhazmat.2022.128457     Reference: February 12th, 2022
Variation: September 1st, 2003
Gene Model: December 12th, 2017
2 years agosbp16 SBP-transcription factor16:
1.06
GRMZM2G169270
Mao, HD et al. 2016. Plant Gene 6:1-12     Reference: February 12th, 2022
Gene Product: July 5th, 2019
Variation: September 1st, 2003
Gene Model: October 29th, 2016
2 years agosbp1 SBP-domain protein1:
5.04
GRMZM2G111136
Mao, HD et al. 2016. Plant Gene 6:1-12     Reference: February 12th, 2022
Gene Product: July 5th, 2019
Variation: October 8th, 2011
Gene Model: December 18th, 2014
2 years agosbp24 SBP-transcription factor 24:
 
   Mao, HD et al. 2016. Plant Gene 6:1-12     Reference: February 12th, 2022
Gene Product: July 5th, 2019
2 years agosbp31 SBP-transcription factor 31:
 
   Mao, HD et al. 2016. Plant Gene 6:1-12     Reference: February 12th, 2022
Gene Product: July 5th, 2019
2 years agosbp3 (GRASSIUS) SBP-transcription factor 3:
4.03
GRMZM2G106798
Mao, HD et al. 2016. Plant Gene 6:1-12     Reference: February 12th, 2022
Gene Product: July 5th, 2019
Gene Model: June 11th, 2018
2 years agoxyl5 xylanase5:
1.03
GRMZM2G108032
Nazipova, AR et al. 2022. Frontiers Plant Sci 12:802424     Reference: February 10th, 2022
Gene Product: March 4th, 2020
Variation: October 29th, 2016
Gene Model: October 30th, 2016
2 years agoxyl2 xylanase2:
9.06
GRMZM5G850567
Nazipova, AR et al. 2022. Frontiers Plant Sci 12:802424     Reference: February 10th, 2022
Gene Product: March 4th, 2020
Gene Model: October 15th, 2018
2 years agoxyl1 xylanase1:
 
GRMZM2G170839
Nazipova, AR et al. 2022. Frontiers Plant Sci 12:802424     Reference: February 10th, 2022
Gene Product: March 4th, 2020
Variation: October 17th, 2018
Gene Model: October 15th, 2018
2 years agowi5 wilted5:
 
GRMZM2G002260
Nazipova, AR et al. 2022. Frontiers Plant Sci 12:802424     Reference: February 10th, 2022
Gene Product: March 4th, 2020
Variation: March 5th, 2020
Gene Model: March 4th, 2020
2 years agoxyl6 xylanase6:
 
AC204711.3_FG002
Nazipova, AR et al. 2022. Frontiers Plant Sci 12:802424     Reference: February 10th, 2022
Gene Product: March 4th, 2020
Gene Model: March 4th, 2020
2 years agoxyl9 xylanase9:
 
GRMZM2G055101
Nazipova, AR et al. 2022. Frontiers Plant Sci 12:802424     Reference: February 10th, 2022
Gene Product: March 4th, 2020
Gene Model: March 4th, 2020
2 years agoxyl7 xylanase7:
 
GRMZM2G058128
Nazipova, AR et al. 2022. Frontiers Plant Sci 12:802424     Reference: February 10th, 2022
Gene Product: March 4th, 2020
Gene Model: March 4th, 2020
2 years agoxyl3 xylanase3:
9.07
GRMZM2G048375
Nazipova, AR et al. 2022. Frontiers Plant Sci 12:802424     Reference: February 10th, 2022
Gene Product: March 4th, 2020
Variation: April 21st, 2017
Gene Model: April 21st, 2017
2 years agoxyl8 xylanase8:
 
GRMZM2G003794
Nazipova, AR et al. 2022. Frontiers Plant Sci 12:802424     Reference: February 10th, 2022
Gene Product: March 4th, 2020
Gene Model: March 4th, 2020
2 years agothl1 thiolase1:
9.02
GRMZM2G085474
Finegan, C et al. 2022. Frontiers Plant Sci 12:800326     Reference: February 8th, 2022
Gene Product: September 1st, 2003
Variation: January 28th, 2011
Gene Model: July 28th, 2016
2 years agompt1 mitochondrial phosphate transporter1:
5.07
GRMZM2G152827
Klein, H, et al. 2022. Proc Natl Acad Sci, USA. 119:e2115871119     Reference: February 7th, 2022
Gene Product: September 1st, 2003
Variation: May 27th, 2015
Gene Model: May 27th, 2015
2 years agohis2b5 histone 2B5:
4.06
GRMZM2G342515
Finegan, C et al. 2022. Frontiers Plant Sci 12:800326     Reference: February 8th, 2022
Gene Product: September 1st, 2003
Variation: June 23rd, 2014
Gene Model: June 23rd, 2014
2 years agotrpp7 trehalose-6-phosphate phosphatase7:
 
GRMZM2G055150
Klein, H, et al. 2022. Proc Natl Acad Sci, USA. 119:e2115871119     Reference: February 7th, 2022
Gene Product: October 3rd, 2020
Gene Model: September 15th, 2013
2 years agofad6 fatty acid desaturase6:
 
GRMZM2G078569
Bozic, M et al. 2021. Genetika 53:1147-1165     Reference: February 3rd, 2022
Gene Product: September 1st, 2003
Gene Model: January 6th, 2022
2 years agoplap1 plastid-lipid-associated protein1:
 
GRMZM2G124466
Zhu, X-M et al. 2018. Frontiers Plant Sci 9:966     Reference: July 25th, 2018
Gene Product: February 3rd, 2022
Gene Model: February 3rd, 2022
2 years agocle30 clavata3/esr-related30:
 
GRMZM2G434380
Du, YF et al. 2022. J. Advanced Research doi: 10.1016/j.jare.2022.01.012     Reference: January 31st, 2022
Gene Product: February 22nd, 2021
Gene Model: February 22nd, 2021
2 years agoabi43 ABI3-VP1-transcription factor 43:
9.07
GRMZM2G028794
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: January 29th, 2022
Variation: September 1st, 2003
Gene Model: October 14th, 2018
2 years agoabi10 ABI3-VP1-transcription factor 10:
 
   von Behrens, I et al. 2011. Plant J 66:341-353     Reference: November 5th, 2011
Gene Product: January 29th, 2022
2 years agoabi11 ABI3-VP1-transcription factor 11:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: January 29th, 2022
2 years agoabi15 ABI3-VP1-transcription factor 15:
 
   von Behrens, I et al. 2011. Plant J 66:341-353     Reference: November 5th, 2011
Gene Product: January 29th, 2022
2 years agoabi18 ABI3-VP1-transcription factor 18:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: January 29th, 2022
2 years agoabi2 ABI3-VP1-transcription factor 2:
 
   Lu, CC et al. 2019. Frontiers Plant Sci 10:716     Reference: June 6th, 2019
Gene Product: January 29th, 2022
2 years agoabi23 ABI3-VP1-transcription factor 23:
 
   Dou, DD et al. 2020. J Exp Bot pp.doi: 10.1093/jxb/eraa565     Reference: December 3rd, 2020
Gene Product: January 29th, 2022
2 years agoabi24 ABI3-VP1-transcription factor 24:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: January 29th, 2022
2 years agoabi25 ABI3-VP1-transcription factor 25:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: January 29th, 2022
2 years agoabi26 ABI3-VP1-transcription factor 26:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: January 29th, 2022
2 years agoabi29 ABI3-VP1-transcription factor 29:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: January 29th, 2022
2 years agoabi30 ABI3-VP1-transcription factor 30:
 
   Jiang, SQ et al. 2020. Frontiers Plant Sci 11:861     Reference: June 30th, 2020
Gene Product: January 29th, 2022
2 years agoabi34 ABI3-VP1-transcription factor 34:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: January 29th, 2022
2 years agoabi36 ABI3-VP1-transcription factor 36:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: January 29th, 2022
Variation: May 21st, 2021
2 years agoabi37 ABI3-VP1-transcription factor 37:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: January 29th, 2022
2 years agoabi4 ABI3-VP1-transcription factor 4:
 
   Yang, T et al. 2020. Plant Cell pp.doi: 10.1093/plcell/koaa008     Reference: November 27th, 2020
Gene Product: January 29th, 2022
2 years agoabi42 ABI3-VP1-transcription factor 42:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: January 29th, 2022
2 years agoabi44 ABI3-VP1-transcription factor 44:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: January 29th, 2022
2 years agoabi45 ABI3-VP1-transcription factor 45:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: January 29th, 2022
2 years agoabi50 ABI3-VP1-transcription factor 50:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: January 29th, 2022
2 years agoabi6 ABI3-VP1-transcription factor 6:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: January 29th, 2022
2 years agoabi8 ABI3-VP1-transcription factor 8:
 
   Dong, L et al. 2019. Int J Mol Sci 20:2472     Reference: May 21st, 2019
Gene Product: January 29th, 2022
2 years agoabi9 ABI3-VP1-transcription factor 9:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: January 29th, 2022
2 years agoarftf36 ARF-transcription factor 36:
 
   Tran, TM et al. 2021. Frontiers Plant Sci 12:755733     Reference: December 13th, 2021
Gene Product: January 29th, 2022
2 years agoarftf37 ARF-transcription factor 37:
 
   Saidi, A; Hajibarat, Z. 2020. Notulae Scientia Biologicae 12:646-657     Reference: October 2nd, 2020
Gene Product: January 29th, 2022
2 years agoarftf6 ARF-transcription factor 6:
 
   Wang, FX et al. 2021. Plant Biotechnol J pp.doi: 10.1111/pbi.13734     Reference: October 25th, 2021
Gene Product: January 29th, 2022
2 years agoabi21 ABI3-VP1-transcription factor 21:
10.04
GRMZM2G126194
Warburton, ML et al. 2015. Crop Sci 55:1857-1867     Reference: August 2nd, 2021
Gene Product: January 29th, 2022
Variation: March 31st, 2005
Gene Model: January 16th, 2018
2 years agoAY109644  :
7.03
   Sun, GY et al. 2022. Plant Biotechnol J pp.doi: 10.1111/pbi.13782     Reference: January 28th, 2022
Variation: July 29th, 2004
2 years agoIDP727  :
7.03
GRMZM2G413044
Sun, GY et al. 2022. Plant Biotechnol J pp.doi: 10.1111/pbi.13782     Reference: January 28th, 2022
Variation: March 31st, 2005
Gene Model: February 5th, 2019
2 years agotip3a tonoplast intrinsic protein3:
5.03
GRMZM2G305446
Su, YC et al. 2022. Frontiers Plant Sci 13:831916     Reference: January 27th, 2022
Gene Product: January 27th, 2022
Variation: January 27th, 2022
Gene Model: February 5th, 2015
2 years agotip3b tonoplast intrinsic protein3:
1.07
GRMZM2G103983
Su, YC et al. 2022. Frontiers Plant Sci 13:831916     Reference: January 27th, 2022
Gene Product: January 27th, 2022
Variation: September 1st, 2003
Gene Model: February 5th, 2015
2 years agotip4c tonoplast intrinsic protein4:
3.04
GRMZM2G146627
Su, YC et al. 2022. Frontiers Plant Sci 13:831916     Reference: January 27th, 2022
Gene Product: January 27th, 2022
Variation: September 1st, 2003
Gene Model: February 5th, 2015
2 years agotip4d tonoplast intrinsic protein4:
3.00
GRMZM2G093090
Su, YC et al. 2022. Frontiers Plant Sci 13:831916     Reference: January 27th, 2022
Gene Product: January 27th, 2022
Variation: March 20th, 2015
Gene Model: February 5th, 2015
2 years agotip5 tonoplast intrinsic protein5:
10.06
GRMZM2G125023
Su, YC et al. 2022. Frontiers Plant Sci 13:831916     Reference: January 27th, 2022
Gene Product: January 27th, 2022
Variation: September 1st, 2003
Gene Model: February 5th, 2015
2 years agosbip1a small basic membrane intrinsic protein1a:
4.02
GRMZM2G113470
Su, YC et al. 2022. Frontiers Plant Sci 13:831916     Reference: January 27th, 2022
Gene Product: January 27th, 2022
Variation: September 1st, 2003
Gene Model: April 17th, 2015
2 years agosbip1b small basic membrane intrinsic protein1b:
 
GRMZM2G060922
Su, YC et al. 2022. Frontiers Plant Sci 13:831916     Reference: January 27th, 2022
Gene Product: January 27th, 2022
Variation: September 25th, 2015
Gene Model: September 25th, 2015
2 years agotip2d tonoplast intrinsic protein2d:
 
GRMZM2G121275
Su, YC et al. 2022. Frontiers Plant Sci 13:831916     Reference: January 27th, 2022
Gene Product: January 27th, 2022
Gene Model: January 27th, 2022
2 years agonip4 NOD26-like membrane intrinsic protein4:
 
GRMZM2G103214
Su, YC et al. 2022. Frontiers Plant Sci 13:831916     Reference: January 27th, 2022
Gene Product: January 27th, 2022
Gene Model: January 27th, 2022
2 years agopco153568a  :
6.07
GRMZM2G348873
Khan, S et al. 2022. Sci. Rep. 12:1521     Reference: January 27th, 2022
Variation: July 4th, 2021
Gene Model: December 27th, 2019
2 years agonip1b NOD26-like membrane intrinsic protein1b:
6.05
GRMZM2G126582
Su, YC et al. 2022. Frontiers Plant Sci 13:831916     Reference: January 27th, 2022
Gene Product: January 27th, 2022
Gene Model: January 10th, 2020
2 years agoumc1078  :
9.04
GRMZM2G359566
Xie, LY et al. 2022. BMC Plant Biology 22:49     Reference: January 25th, 2022
Variation: September 9th, 2021
Gene Model: September 9th, 2021
2 years agomsv1 maize streak virus tolerance1:
1.04
   Wani, SH et al. 2022. Mol Biol Rep pp.doi: 10.1007/s11033-021-06815-x     Reference: January 22nd, 2022
Variation: June 22nd, 2015
2 years agorcg1 resistance to Colletotrichum graminicola1:
 
   Wani, SH et al. 2022. Mol Biol Rep pp.doi: 10.1007/s11033-021-06815-x     Reference: January 22nd, 2022
Variation: November 7th, 2017
2 years agosaur63 small auxin up RNA63:
 
GRMZM2G430052
Yang, LY et al. 2019. Pest Manag Sci 76:333-342     Reference: January 22nd, 2022
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agodmas4 deoxymugineic acid synthase4:
2.04
GRMZM2G126062
Zhang, X et al. 2022. BMC Plant Biology 22:37     Reference: January 18th, 2022
Gene Product: April 27th, 2021
Gene Model: April 27th, 2021
2 years agodmas8 deoxymugineic acid synthase8:
 
GRMZM2G132875
Zhang, X et al. 2022. BMC Plant Biology 22:37     Reference: January 18th, 2022
Gene Product: April 27th, 2021
Gene Model: November 4th, 2021
2 years agodmas5 deoxymugineic acid synthase5:
 
GRMZM2G048121
Zhang, X et al. 2022. BMC Plant Biology 22:37     Reference: January 18th, 2022
Gene Product: April 27th, 2021
Gene Model: January 18th, 2022
2 years agodmas6 deoxymugineic acid synthase6:
 
GRMZM2G415579
Zhang, X et al. 2022. BMC Plant Biology 22:37     Reference: January 18th, 2022
Gene Product: April 27th, 2021
Gene Model: January 18th, 2022
2 years agodmas7 deoxymugineic acid synthase7:
 
GRMZM2G000268
Zhang, X et al. 2022. BMC Plant Biology 22:37     Reference: January 18th, 2022
Gene Product: April 27th, 2021
Gene Model: January 18th, 2022
2 years agodmas2 deoxymugineic acid synthase2:
2.04
GRMZM2G051355
Zhang, X et al. 2022. BMC Plant Biology 22:37     Reference: January 18th, 2022
Gene Product: April 27th, 2021
Variation: March 31st, 2005
Gene Model: February 19th, 2019
2 years agocal3 calmodulin3:
1.04
   Cao, YY et al. 2022. BMC Genomics 23:60     Reference: January 17th, 2022
Gene Product: September 1st, 2003
Variation: November 15th, 2013
2 years agocbl7 calcineurin B-like7:
 
GRMZM2G033680
Cao, YY et al. 2022. BMC Genomics 23:60     Reference: January 17th, 2022
Gene Product: October 19th, 2016
Gene Model: October 19th, 2016
2 years agosod17 superoxide dismutase17:
 
GRMZM2G081585
Wu, Z-X et al. 2022. Environ Sci Pollut Res pp.doi: 10.1007/s11356-022-18641-0     Reference: January 15th, 2022
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agonpi411b  :
1.02
GRMZM2G053627
Han, QH et al. 2022. Plants 11:214     Reference: January 14th, 2022
Variation: September 1st, 2003
Gene Model: December 31st, 2021
2 years agoanx1 annexin1:
 
GRMZM2G064993
Han, QH et al. 2022. Plants 11:214     Reference: January 14th, 2022
Variation: October 16th, 2013
Gene Model: July 27th, 2016
2 years agoanx2 annexin2:
5.07
GRMZM2G061950
Han, QH et al. 2022. Plants 11:214     Reference: January 14th, 2022
Variation: October 15th, 2013
Gene Model: July 27th, 2016
2 years agopza00132  :
7.02
   Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Variation: November 8th, 2017
2 years agorik1 rough sheath2-interacting KH-domain protein1:
1.02
   Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Gene Product: December 4th, 2021
2 years agocsu340  :
5.03
GRMZM2G132036
Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Variation: September 1st, 2003
Gene Model: June 19th, 2018
2 years agoexo1 exochitinase1:
6.01
GRMZM2G034598
Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Gene Product: May 31st, 2021
Gene Model: December 21st, 2019
2 years agohct5 hydroxycinnamoyltransferase5:
2.04
GRMZM2G158083
Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Gene Product: November 7th, 2015
Gene Model: November 7th, 2015
2 years agoact4 actin4:
 
GRMZM2G006765
Przybylska, A. 2021. J Plant Protect Res 61:371-376     Reference: January 13th, 2022
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: April 29th, 2020
2 years agoumc1149  :
8.06
GRMZM2G105005
Przybylska, A. 2021. J Plant Protect Res 61:371-376     Reference: January 13th, 2022
Gene Product: September 1st, 2003
Variation: April 18th, 2017
Gene Model: April 18th, 2017
2 years agoumc1366  :
9.06
GRMZM5G824920
Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Variation: September 1st, 2003
Gene Model: March 7th, 2018
2 years agothx27 Trihelix-transcription factor 27:
 
   Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Gene Product: November 9th, 2021
2 years agohct12 hydroxycinnamoyltransferase12:
 
GRMZM2G179703
Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Gene Product: November 7th, 2015
Gene Model: May 18th, 2016
2 years agocesa13 cellulose synthase13:
 
GRMZM2G037413
Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Gene Product: October 7th, 2016
Gene Model: April 1st, 2017
2 years agopme7 pectin methylesterase7:
 
GRMZM2G314663
Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
2 years agopme15 pectin methylesterase15:
 
GRMZM2G175499
Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
2 years agopme28 pectin methylesterase28:
 
GRMZM2G178916
Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
2 years agoxat1 xylan α-1,3-arabinofuranosyl-transferase1:
 
GRMZM2G096946
Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Gene Product: July 3rd, 2020
Gene Model: July 2nd, 2020
2 years agopgl19 polygalacturonase19:
 
GRMZM2G139828
Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl34 polygalacturonase34:
 
GRMZM2G153666
Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl37 polygalacturonase37:
 
GRMZM2G107073
Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl42 polygalacturonase42:
 
GRMZM2G057296
Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl46 polygalacturonase46:
 
AC231180.2_FG006
Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl54 polygalacturonase54:
 
GRMZM2G113815
Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agocsld4 cellulose synthase-like D4:
 
GRMZM2G044269
Hunter, CT, III et al. 2012. Plant Physiol 158:708-724     Reference: January 13th, 2022
Gene Product: October 7th, 2016
Gene Model: January 12th, 2022
2 years agocesa16 cellulose synthase16:
 
GRMZM2G405567
Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Gene Product: October 7th, 2016
Gene Model: January 13th, 2022
2 years agocl16175_1  :
7.04
GRMZM2G010142
Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Variation: September 25th, 2007
Gene Model: September 1st, 2021
2 years agopgl44 polygalacturonase44:
8.06
GRMZM2G052844
Penning, BW et al. 2009. Plant Physiol 151:1703-1728     Reference: January 13th, 2022
Gene Product: October 4th, 2021
Gene Model: September 2nd, 2019
2 years agobxs1 beta-D-xylosidase1:
10.07
GRMZM2G136895
Penning, BW et al. 2009. Plant Physiol 151:1703-1728   LOC_Os04g54810 (MSU/TIGR) Reference: January 13th, 2022
Gene Product: May 6th, 2021
Gene Model: September 12th, 2021
2 years agoivr1 invertase1:
2.03
   Shen, S et al. 2022. Plant J pp.doi: 10.1111/tpj.15668     Reference: January 12th, 2022
Gene Product: June 12th, 2018
Variation: September 1st, 2003
2 years agoivr3 invertase3:
 
GRMZM2G463871
Shen, S et al. 2022. Plant J pp.doi: 10.1111/tpj.15668     Reference: January 12th, 2022
Gene Product: June 12th, 2018
Gene Model: June 12th, 2018
2 years agoinvinh2 invertase inhibitor2:
 
GRMZM2G300141
Shen, S et al. 2022. Plant J pp.doi: 10.1111/tpj.15668     Reference: January 12th, 2022
Gene Product: August 7th, 2019
Gene Model: August 24th, 2019
2 years agoinvinh3 invertase inhibitor3:
 
GRMZM2G096897
Shen, S et al. 2022. Plant J pp.doi: 10.1111/tpj.15668     Reference: January 12th, 2022
Gene Product: August 7th, 2019
Gene Model: August 24th, 2019
2 years agoinvinh4 invertase inhibitor4:
 
GRMZM2G368698
Shen, S et al. 2022. Plant J pp.doi: 10.1111/tpj.15668     Reference: January 12th, 2022
Gene Product: August 7th, 2019
Gene Model: August 24th, 2019
2 years agocobl7 cobra-like7:
 
GRMZM2G167497
Han, LL et al. 2022. Int J Mol Sci 23:795     Reference: January 12th, 2022
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
2 years agohak28 potassium high-affinity transporter28:
2.02
GRMZM2G000047
Oljira, MT; Barka, GD. 2022. Biotechnology & Biotechnological Equipment 35:1810-1820     Reference: January 11th, 2022
Gene Product: March 12th, 2020
Gene Model: April 22nd, 2021
2 years agohak29 potassium high-affinity transporter29:
 
GRMZM2G315137
Oljira, MT; Barka, GD. 2022. Biotechnology & Biotechnological Equipment 35:1810-1820     Reference: January 11th, 2022
Gene Product: March 12th, 2020
Gene Model: January 11th, 2022
2 years agohak30 potassium high-affinity transporter30:
 
GRMZM2G011176
Oljira, MT; Barka, GD. 2022. Biotechnology & Biotechnological Equipment 35:1810-1820     Reference: January 11th, 2022
Gene Product: March 12th, 2020
Gene Model: January 11th, 2022
2 years agomtl6 metallothionein6:
6.01
GRMZM2G130173
Gao, CH et al. 2022. Biol Res 55:1     Reference: January 10th, 2022
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: February 18th, 2021
2 years agohen1 hua enhancer1:
 
GRMZM2G107457
Nan, G et al. 2022. Plant Cell pp.doi: 10.1093/plcell/koac007     Reference: January 10th, 2022
Gene Product: July 15th, 2013
Variation: July 15th, 2013
Gene Model: July 15th, 2013
2 years agomtl7 metallothionein7:
 
GRMZM2G036629
Gao, CH et al. 2022. Biol Res 55:1     Reference: January 10th, 2022
Gene Product: September 1st, 2003
Gene Model: January 10th, 2022
2 years agofad12 fatty acid desaturase12:
7.02
GRMZM2G129453
Zhao, XC et al. 2019. Genes 10:445     Reference: January 6th, 2022
Gene Product: January 6th, 2022
Gene Model: January 31st, 2019
2 years agogras86 GRAS-transcription factor 86:
 
   Zhao, XC et al. 2019. Genes 10:445     Reference: January 6th, 2022
Gene Product: October 10th, 2016
2 years agosacd4 stearoyl-acyl-carrier-protein desaturase4:
 
GRMZM2G003368
Zhao, XC et al. 2019. Genes 10:445     Reference: January 6th, 2022
Gene Product: October 10th, 2016
Gene Model: October 10th, 2016
2 years agosacd5 stearoyl-acyl-carrier-protein desaturase5:
 
GRMZM2G026793
Zhao, XC et al. 2019. Genes 10:445     Reference: January 6th, 2022
Gene Product: October 10th, 2016
Gene Model: October 10th, 2016
2 years agofad10 fatty acid desaturase10:
 
GRMZM2G166956
Zhao, XC et al. 2019. Genes 10:445     Reference: January 6th, 2022
Gene Product: October 10th, 2016
Gene Model: January 6th, 2022
2 years agofad4 fatty acid desaturase4:
 
GRMZM2G175401
Zhao, XC et al. 2019. Genes 10:445     Reference: January 6th, 2022
Gene Product: September 1st, 2003
Gene Model: January 6th, 2022
2 years agofad13 fatty acid desaturase13:
 
GRMZM2G179120
Zhao, XC et al. 2019. Genes 10:445     Reference: January 6th, 2022
Gene Product: January 6th, 2022
Gene Model: January 6th, 2022
2 years agofad14 fatty acid desaturase14:
 
GRMZM2G430729
Zhao, XC et al. 2019. Genes 10:445     Reference: January 6th, 2022
Gene Product: January 6th, 2022
Gene Model: January 6th, 2022
2 years agoumc1586  :
9.03
GRMZM2G071602
Luo, Y, et al. 2021. New Phytol. 0:doi: 10.1111/nph.17882     Reference: January 4th, 2022
Variation: September 1st, 2003
Gene Model: March 7th, 2018
2 years agochn6 chitinase6:
 
GRMZM2G162505
Yang, X et al. 2022. Agriculture 12:55     Reference: January 5th, 2022
Gene Product: May 31st, 2021
Gene Model: May 15th, 2021
2 years agoact9 actin9:
 
GRMZM2G047055
Santos, MC et al. 2021. Bioscience J 37:e37079     Reference: January 3rd, 2022
Gene Product: September 1st, 2003
Gene Model: April 29th, 2020
2 years agopco080432  :
2.06
GRMZM2G067514
    Variation: January 2nd, 2022
Gene Model: August 13th, 2021
2 years agoaaap53 amino acid/auxin permease53:
7.02
GRMZM2G173967
Liseron-Monfils, C et al. 2013. Plant Signal Behav 8:e26056     Reference: January 2nd, 2022
Gene Product: March 31st, 2021
Variation: July 6th, 2021
Gene Model: September 5th, 2018
2 years agoAY109477  :
 
GRMZM2G155931
    Variation: January 2nd, 2022
Gene Model: April 15th, 2020
2 years agogogat3 glutamate synthase3:
 
GRMZM2G375064
Liseron-Monfils, C et al. 2013. Plant Signal Behav 8:e26056     Reference: January 2nd, 2022
Gene Product: January 2nd, 2022
Gene Model: January 2nd, 2022
2 years agocsu92b  :
4.08 - 4.11
       Gene Product: January 1st, 2022
2 years agodmag2 DNA-3-methyladenine glycosylase2:
 
GRMZM2G114592
    Gene Product: January 1st, 2022
Gene Model: February 13th, 2014
2 years agodmag1 DNA-3-methyladenine glycosylase1:
 
GRMZM2G171317
Chen, SY et al. 2020. BMC Genomics 21:689     Reference: October 6th, 2020
Gene Product: January 1st, 2022
Gene Model: February 13th, 2014
2 years agodmag3 DNA-3-methyladenine glycosylase 3:
 
GRMZM2G117574
    Gene Product: January 1st, 2022
Gene Model: December 27th, 2019
2 years agodmag5 DNA-3-methyladenine glycosylase5:
 
GRMZM2G143535
Fang, HM et al. 2017. Sci. Rep. 7:9324     Reference: January 1st, 2022
Gene Product: January 1st, 2022
Gene Model: January 1st, 2022
2 years agosum1 siroheme uroporphyrinogen methyltransferase1:
3.09
GRMZM2G105604
Choe, E et al. 2021. PLoS One 16:e0253190     Reference: December 31st, 2021
Gene Product: September 1st, 2003
Variation: March 18th, 2015
Gene Model: March 18th, 2015
2 years agokik1 kinase interacting kinase1:
7.03
GRMZM5G889999
Choe, E et al. 2016. PLoS One 11:e0147418     Reference: December 31st, 2021
Variation: July 29th, 2015
Gene Model: July 30th, 2015
2 years agopcap1 plasma membrane-associated cation-binding protein:
5.04
GRMZM2G071089
Choe, E et al. 2021. PLoS One 16:e0253190     Reference: December 31st, 2021
Gene Product: September 4th, 2019
Variation: September 1st, 2003
Gene Model: September 4th, 2019
2 years agonpi406  :
1.01
GRMZM2G172410
Gao, H et al. 2020. Frontiers Plant Sci 11:535     Reference: May 5th, 2020
Variation: December 31st, 2021
Gene Model: December 31st, 2021
2 years agotrh1 thioredoxin h homolog1:
6.06
   Choe, E et al. 2021. PLoS One 16:e0253190     Reference: December 31st, 2021
Gene Product: September 1st, 2003
Variation: September 1st, 2003
2 years agocts2 citrate synthase2:
4.09
GRMZM2G064023
Choe, E et al. 2021. PLoS One 16:e0253190     Reference: December 31st, 2021
Gene Product: July 5th, 2019
Gene Model: April 27th, 2018
2 years agoho2 heme oxygenase2:
 
GRMZM2G043277
Choe, E et al. 2016. PLoS One 11:e0147418     Reference: December 31st, 2021
Gene Product: September 24th, 2014
Gene Model: November 18th, 2013
2 years agocl19091_1  :
9.07 - 9.07
GRMZM2G081622
Chao, S and Neuffer, MG. 1993. MNL 67:33     Reference: September 1st, 2003
Variation: September 1st, 2003
Gene Model: December 30th, 2021
2 years agodhn14 dehydrin14:
 
GRMZM2G448511
Decena, MA et al. 2021. Plants 10:2664     Reference: December 28th, 2021
Gene Product: August 5th, 2017
Gene Model: August 5th, 2017
2 years agodhn17 dehydrin17:
 
   Decena, MA et al. 2021. Plants 10:2664     Reference: December 28th, 2021
Gene Product: August 5th, 2017
2 years agoprdx4 peroxiredoxin4:
8.06
GRMZM2G055936
Wang, SX et al. 2021. Crop J. doi: 10.1016/j.cj.2021.12.001     Reference: December 28th, 2021
Gene Product: February 4th, 2021
Variation: December 28th, 2021
Gene Model: September 2nd, 2019
2 years agopzb01358  :
9.04
   Saad-Allah, KM et al. 2021. Agronomy 12:59   AT1G16540 (TAIR) Reference: December 27th, 2021
Gene Product: January 23rd, 2021
2 years agocdo202a(mcf)  :
6.07
GRMZM2G067877
Baute, J et al. 2016. Plant Physiol pp.doi: 10.1104/pp.15.01883     Reference: December 27th, 2021
Variation: August 30th, 2018
Gene Model: August 30th, 2018
2 years agoarf1 ADP-ribosylation factor homolog1:
5.00
GRMZM2G395844
Verwoert, IIGS; Brown, A; Slabas, AR; Stuitje, AR. 1995. Plant Mol Biol 27:629-633     Reference: September 1st, 2003
Gene Product: December 27th, 2021
Variation: September 1st, 2003
Gene Model: June 14th, 2018
2 years agohfi1 corn-activated Hageman factor inhibitor1:
2.06
GRMZM2G304548
Chen, Z-Y et al. 2007. Phytopathology 97:1094-1103     Reference: December 27th, 2021
Gene Product: September 1st, 2003
Variation: December 18th, 2012
Gene Model: July 28th, 2016
2 years agotcptf14 TCP-transcription factor 14:
 
   Baute, J et al. 2016. Plant Physiol pp.doi: 10.1104/pp.15.01883     Reference: December 27th, 2021
Gene Product: September 27th, 2019
2 years agorip2 ribosome-inactivating protein2:
7.04
GRMZM2G119705
Dang, MQ et al. 2020. Int J Mol Sci 21:35     Reference: December 27th, 2021
Gene Product: September 1st, 2003
Variation: November 21st, 2017
Gene Model: July 28th, 2016
2 years agoarf5 ADP-ribosylation factor homolog5:
 
GRMZM2G176495
Baute, J et al. 2016. Plant Physiol pp.doi: 10.1104/pp.15.01883     Reference: December 27th, 2021
Gene Product: December 27th, 2021
Gene Model: December 27th, 2021
2 years agoppr85 pentatricopeptide repeat protein85:
 
GRMZM2G436214
Zheng, YX et al. 2021. Frontiers Plant Sci 12:699486     Reference: July 16th, 2021
Gene Product: December 27th, 2016
Gene Model: December 27th, 2021
2 years agoarf3 ADP-ribosylation factor homolog3:
3.06
GRMZM2G357399
Li, MF et al. 2021. Cells. 10:2601     Reference: September 30th, 2021
Gene Product: December 27th, 2021
Variation: March 31st, 2005
Gene Model: May 15th, 2021
2 years agoesr3 embryo surrounding region3:
1.02
GRMZM2G140302
Zhan, JP et al. 2015. Plant Cell 27:513-531     Reference: December 23rd, 2021
Gene Product: September 1st, 2003
Variation: May 22nd, 2014
Gene Model: January 5th, 2016
2 years agobetl1c basal endosperm transfer layer1c:
2.09
GRMZM2G082785
Zhan, JP et al. 2015. Plant Cell 27:513-531     Reference: December 23rd, 2021
Gene Product: September 1st, 2003
Variation: September 17th, 2012
Gene Model: March 23rd, 2020
2 years agomeg4 maternally expressed gene4:
7.02
GRMZM2G137959
Zhan, JP et al. 2015. Plant Cell 27:513-531     Reference: December 23rd, 2021
Variation: October 25th, 2009
Gene Model: January 30th, 2019
2 years agomeg7 maternally expressed gene7:
 
GRMZM2G116212
Zhan, JP et al. 2015. Plant Cell 27:513-531     Reference: December 23rd, 2021
Variation: August 29th, 2014
Gene Model: August 29th, 2014
2 years agomeg8 maternally expressed gene8:
 
GRMZM2G123153
Zhan, JP et al. 2015. Plant Cell 27:513-531     Reference: December 23rd, 2021
Variation: August 29th, 2014
Gene Model: August 29th, 2014
2 years agomeg11 maternally expressed gene11:
 
GRMZM2G181051
Zhan, JP et al. 2015. Plant Cell 27:513-531     Reference: December 23rd, 2021
Variation: August 29th, 2014
Gene Model: August 29th, 2014
2 years agomeg12 maternally expressed gene12:
 
GRMZM2G175896
Zhan, JP et al. 2015. Plant Cell 27:513-531     Reference: December 23rd, 2021
Variation: August 29th, 2014
Gene Model: August 29th, 2014
2 years agoarr4 ARR-B-transcription factor 4:
 
   Li, HC et al. 2021. Arch Microbiol 204:56     Reference: December 22nd, 2021
Gene Product: June 30th, 2017
2 years agoyab3 C2C2-YABBY-transcription factor 3:
 
   Li, HC et al. 2021. Arch Microbiol 204:56     Reference: December 22nd, 2021
Gene Product: October 16th, 2015
2 years agonlp5 NLP-transcription factor 5:
 
   Wani, SH et al. 2021. Physiology and Molecular Biology of Plants pp.doi: 10.1007/s12298-021-01113-z     Reference: December 22nd, 2021
Gene Product: December 3rd, 2019
2 years agomrpi1 MRP interacting1:
8.08
GRMZM2G139160
Li, HC et al. 2021. Arch Microbiol 204:56   AT4527240 (TAIR)
LOC_Os01g57650 (MSU/TIGR)
Os01g0785900 (Gramene)
Reference: December 22nd, 2021
Variation: November 10th, 2009
Gene Model: December 30th, 2015
2 years agophi3 phosphohexose isomerase3:
 
GRMZM2G140614
Wani, SH et al. 2021. Physiology and Molecular Biology of Plants pp.doi: 10.1007/s12298-021-01113-z     Reference: December 22nd, 2021
Gene Product: September 1st, 2003
Gene Model: October 21st, 2020
2 years agoumc1771  :
9.04
GRMZM2G313529
Chen, FQ et al. 2021. Frontiers Plant Sci 12:739101     Reference: December 20th, 2021
Variation: September 1st, 2003
Gene Model: March 21st, 2021
2 years agocpd1 carbohydrate partitioning defective1:
 
GRMZM2G180004
Julius, BT et al. 2018. J Exp Bot pp.doi: 10.1093/jxb/ery203     Reference: May 26th, 2018
Variation: May 26th, 2018
Gene Model: December 20th, 2021
2 years agorlk4 receptor-like protein kinase4:
 
GRMZM2G131609
Chen, FQ et al. 2021. Frontiers Plant Sci 12:739101     Reference: December 20th, 2021
Gene Product: July 10th, 2019
Gene Model: November 11th, 2020
2 years agobnlg1746  :
2.08
GRMZM2G101390
    Variation: September 1st, 2003
Gene Model: December 16th, 2021
2 years agoumc1710  :
7.04
GRMZM2G008687
Gesteiro, N et al. 2021. BMC Plant Biology 21:596     Reference: December 16th, 2021
Variation: April 7th, 2017
Gene Model: April 7th, 2017
2 years agotif1 translation initiation factor1:
7.03
   Gesteiro, N et al. 2021. BMC Plant Biology 21:596     Reference: December 16th, 2021
Gene Product: September 1st, 2003
Variation: September 1st, 2003
2 years agoskus6 skewed root growth similar6:
 
GRMZM2G076225
Gesteiro, N et al. 2021. BMC Plant Biology 21:596     Reference: December 16th, 2021
Gene Product: October 9th, 2020
Gene Model: October 9th, 2020
2 years agospds1 spermidine synthase1:
2.06
GRMZM2G064163
Liu, TD; Zhang, XW. 2021. BMC Plant Biology 21:593     Reference: December 15th, 2021
Gene Product: June 19th, 2020
Gene Model: March 18th, 2020
2 years agosae1 SUMO-activating enzyme1:
4.03
GRMZM2G149108
Lai, RQ et al. 2021. J Plant Physiol 268:153588     Reference: December 15th, 2021
Gene Product: November 26th, 2019
Gene Model: April 12th, 2020
2 years agogrx18 glutaredoxin18:
8.06
GRMZM2G178886
Ding, SC et al. 2019. Genes 10:610     Reference: December 14th, 2021
Gene Product: January 21st, 2021
Gene Model: September 2nd, 2019
2 years agogrx15 glutaredoxin15:
 
GRMZM2G413315
Ding, SC et al. 2019. Genes 10:610     Reference: December 14th, 2021
Gene Product: January 21st, 2021
Gene Model: December 14th, 2021
2 years agogrx8 glutaredoxin8:
 
GRMZM2G403680
Ding, SC et al. 2019. Genes 10:610     Reference: December 14th, 2021
Gene Product: January 21st, 2021
Gene Model: December 14th, 2021
2 years agogrx9 glutaredoxin9:
 
GRMZM2G023237
Ding, SC et al. 2019. Genes 10:610     Reference: December 14th, 2021
Gene Product: January 21st, 2021
Gene Model: December 14th, 2021
2 years agogrx10 glutaredoxin10:
 
GRMZM2G371063
Ding, SC et al. 2019. Genes 10:610     Reference: December 14th, 2021
Gene Product: January 21st, 2021
Gene Model: December 14th, 2021
2 years agogrx11 glutaredoxin11:
 
GRMZM5G860607
Ding, SC et al. 2019. Genes 10:610     Reference: December 14th, 2021
Gene Product: January 21st, 2021
Gene Model: December 14th, 2021
2 years agogrx4 glutaredoxin4:
 
GRMZM5G892308
Ding, SC et al. 2019. Genes 10:610     Reference: December 14th, 2021
Gene Product: January 21st, 2021
Gene Model: December 14th, 2021
2 years agogrx6 glutaredoxin6:
 
GRMZM2G110286
Ding, SC et al. 2019. Genes 10:610     Reference: December 14th, 2021
Gene Product: January 21st, 2021
Gene Model: December 14th, 2021
2 years agogrx7 glutaredoxin7:
 
GRMZM2G052796
Ding, SC et al. 2019. Genes 10:610     Reference: December 14th, 2021
Gene Product: January 21st, 2021
Gene Model: December 14th, 2021
2 years agogrx16 glutaredoxin16:
 
GRMZM2G441906
Ding, SC et al. 2019. Genes 10:610     Reference: December 14th, 2021
Gene Product: January 21st, 2021
Gene Model: December 14th, 2021
2 years agogrx20 glutaredoxin20:
 
GRMZM2G457898
Ding, SC et al. 2019. Genes 10:610     Reference: December 14th, 2021
Gene Product: January 21st, 2021
Gene Model: December 14th, 2021
2 years agogrx21 glutaredoxin21:
 
GRMZM2G303536
Ding, SC et al. 2019. Genes 10:610     Reference: December 14th, 2021
Gene Product: January 21st, 2021
Gene Model: December 14th, 2021
2 years agogrx22 glutaredoxin22:
 
GRMZM2G469994
Ding, SC et al. 2019. Genes 10:610     Reference: December 14th, 2021
Gene Product: January 21st, 2021
Gene Model: December 14th, 2021
2 years agogrx13 glutaredoxin13:
6.05
GRMZM2G318213
Ding, SC et al. 2019. Genes 10:610     Reference: December 14th, 2021
Gene Product: January 21st, 2021
Variation: March 31st, 2005
Gene Model: January 9th, 2020
2 years agoumc1502  :
5.05
GRMZM2G121160
Fang, YT et al. 2021. Int J Mol Sci 22:13372     Reference: December 13th, 2021
Variation: September 1st, 2003
Gene Model: March 12th, 2021
2 years agogpx5 glycerophosphodiester phosphodiesterase5:
1.08
GRMZM2G058227
He, MJ et al. 2021. Plant J pp.doi: 10.1111/tpj.15630     Reference: December 13th, 2021
Gene Product: June 24th, 2020
Gene Model: February 14th, 2020
2 years agosqd1 sulfolipid biosynthesis1:
 
GRMZM2G053322
He, MJ et al. 2021. Plant J pp.doi: 10.1111/tpj.15630     Reference: December 13th, 2021
Gene Product: December 1st, 2018
Gene Model: December 1st, 2018
2 years agormgf1 root meristem growth factor/GOLVEN/CLE-like1:
 
GRMZM2G065781
Fang, YT et al. 2021. Int J Mol Sci 22:13372     Reference: December 13th, 2021
Gene Product: December 13th, 2021
Gene Model: December 13th, 2021
2 years agoIDP2407  :
2.04
GRMZM2G022255
Fang, YT et al. 2021. Int J Mol Sci 22:13372     Reference: December 13th, 2021
Variation: March 31st, 2005
Gene Model: February 19th, 2019
2 years agoIDP2365  :
8.05
GRMZM2G176707
He, MJ et al. 2021. Plant J pp.doi: 10.1111/tpj.15630     Reference: December 13th, 2021
Variation: March 31st, 2005
Gene Model: September 1st, 2019
2 years agoppr326 pentatricopeptide repeat protein326:
5.07
GRMZM2G161175
    Gene Product: December 27th, 2016
Gene Model: December 12th, 2021
2 years agoumc1990  :
5.04
GRMZM2G120408
Li, Y et al. 2021. Nature Plants pp.doi: 10.1038/s41477-021-01037-2     Reference: December 9th, 2021
Variation: September 1st, 2003
Gene Model: June 28th, 2018
2 years agocef1 Zea CEFD homolog1:
3.04
GRMZM2G322186
Baysdorfer, C. 1994. cDNA sequence submission to dbEST     Reference: September 1st, 2003
Gene Product: December 9th, 2021
Variation: February 27th, 2015
Gene Model: February 28th, 2015
2 years agopmei9 pectin methylesterase inhibitor9:
 
GRMZM2G380284
Li, Y et al. 2021. Nature Plants pp.doi: 10.1038/s41477-021-01037-2     Reference: December 9th, 2021
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
2 years agopgl21 polygalacturonase21:
 
GRMZM2G151755
Li, Y et al. 2021. Nature Plants pp.doi: 10.1038/s41477-021-01037-2     Reference: December 9th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agocrup1 lycopene cyclase CruP ortholog1:
 
GRMZM5G851815
Bradbury, LMT et al. 2012. Proc Natl Acad Sci, USA 109:E1888-E1897   AT2G32640 (TAIR) Reference: September 14th, 2012
Gene Product: December 10th, 2011
Gene Model: December 8th, 2021
2 years agozmm24 Zea mays MADS24:
1.10
GRMZM2G087095
Zhao, D et al. 2021. Genes 12:1956     Reference: December 7th, 2021
Variation: February 2nd, 2011
Gene Model: July 2nd, 2014
2 years agomads80 MADS-transcription factor 80:
 
GRMZM2G396169
Zhao, D et al. 2021. Genes 12:1956     Reference: December 7th, 2021
Gene Product: September 10th, 2021
Gene Model: December 7th, 2021
2 years agomads81 MADS-transcription factor 81:
 
   Zhao, D et al. 2021. Genes 12:1956     Reference: December 7th, 2021
Gene Product: September 10th, 2021
2 years agomads82 MADS-transcription factor 82:
 
   Zhao, D et al. 2021. Genes 12:1956     Reference: December 7th, 2021
Gene Product: September 10th, 2021
2 years agomads83 MADS-transcription factor 83:
 
GRMZM2G072997
Zhao, D et al. 2021. Genes 12:1956     Reference: December 7th, 2021
Gene Product: September 10th, 2021
Gene Model: December 7th, 2021
2 years agomads84 MADS-transcription factor 84:
 
AC196294.3_FG005
Zhao, D et al. 2021. Genes 12:1956     Reference: December 7th, 2021
Gene Product: September 10th, 2021
Gene Model: December 7th, 2021
2 years agomads86 MADS-transcription factor 86:
 
   Zhao, D et al. 2021. Genes 12:1956     Reference: December 7th, 2021
Gene Product: September 10th, 2021
2 years agomads87 MADS-transcription factor 87:
 
GRMZM2G345770
Zhao, D et al. 2021. Genes 12:1956     Reference: December 7th, 2021
Gene Product: September 10th, 2021
Gene Model: December 7th, 2021
2 years agomads88 MADS-transcription factor 88:
 
AC208564.3_FG004
Zhao, D et al. 2021. Genes 12:1956     Reference: December 7th, 2021
Gene Product: September 10th, 2021
Gene Model: December 7th, 2021
2 years agomads90 MADS-transcription factor 90:
 
GRMZM2G052123
Zhao, D et al. 2021. Genes 12:1956     Reference: December 7th, 2021
Gene Product: September 10th, 2021
Gene Model: December 7th, 2021
2 years agomads91 MADS-transcription factor 91:
 
AC233785.2_FG002
Zhao, D et al. 2021. Genes 12:1956     Reference: December 7th, 2021
Gene Product: September 10th, 2021
Gene Model: December 7th, 2021
2 years agomads92 MADS-transcription factor 92:
 
GRMZM2G303139
Zhao, D et al. 2021. Genes 12:1956     Reference: December 7th, 2021
Gene Product: September 10th, 2021
Gene Model: December 7th, 2021
2 years agomads93 MADS-transcription factor 93:
 
AC195587.4_FG001
Zhao, D et al. 2021. Genes 12:1956     Reference: December 7th, 2021
Gene Product: September 10th, 2021
Gene Model: December 7th, 2021
2 years agomads94 MADS-transcription factor 94:
 
GRMZM2G057966
Zhao, D et al. 2021. Genes 12:1956     Reference: December 7th, 2021
Gene Product: September 10th, 2021
Gene Model: December 7th, 2021
2 years agomads95 MADS-transcription factor 95:
 
GRMZM2G012898
Zhao, D et al. 2021. Genes 12:1956     Reference: December 7th, 2021
Gene Product: September 10th, 2021
Gene Model: December 7th, 2021
2 years agomads96 MADS-transcription factor 96:
 
GRMZM2G344991
Zhao, D et al. 2021. Genes 12:1956     Reference: December 7th, 2021
Gene Product: September 10th, 2021
Gene Model: December 7th, 2021
2 years agozmm17 zea mays MADS17:
5.03 - 5.04
GRMZM2G130382
Zhao, D et al. 2021. Genes 12:1956     Reference: December 7th, 2021
Variation: February 1st, 2011
Gene Model: July 2nd, 2014
2 years agoaaap23 amino acid/auxin permease23:
3.06
GRMZM2G154958
Rajani, MS et al. 2021. PLoS One 16:e0259365     Reference: December 6th, 2021
Gene Product: March 31st, 2021
Gene Model: May 15th, 2021
2 years agoes4 embryo sac4:
 
GRMZM2G128301
Dresselhaus, T et al. 2011. Ann Bot 108:727-737     Reference: December 4th, 2021
Gene Product: April 22nd, 2011
Variation: April 25th, 2011
Gene Model: April 22nd, 2011
2 years agoeal2 egg apparatus-like2:
 
GRMZM2G157505
Krohn, NG et al. 2012. Dev Cell 23:219-225     Reference: December 4th, 2021
Gene Product: December 4th, 2021
Gene Model: December 4th, 2021
2 years agoeal1 egg apparatus-like1:
 
   Krohn, NG et al. 2012. Dev Cell 23:219-225     Reference: December 4th, 2021
Gene Product: December 4th, 2021
2 years agosig8 Sigma70-like-transcription factor 8:
 
   Birdseye, D , et al. 2021. Proc Natl Acad Sci, USA. 118:e2109332118     Reference: December 2nd, 2021
Gene Product: December 24th, 2019
2 years agosig1A sigma factor 1A:
10.03
GRMZM2G006736
Birdseye, D , et al. 2021. Proc Natl Acad Sci, USA. 118:e2109332118     Reference: December 2nd, 2021
Gene Product: December 24th, 2019
Variation: October 14th, 2015
Gene Model: May 8th, 2015
2 years agosig1B sigma factor 1B:
4.05
GRMZM2G543629
Birdseye, D , et al. 2021. Proc Natl Acad Sci, USA. 118:e2109332118     Reference: December 2nd, 2021
Gene Product: December 24th, 2019
Gene Model: May 8th, 2015
2 years agodct2 dicarboxylic acid transporter2:
 
GRMZM2G086258
Trivedi, K et al. 2021. Front Sustain Food Syst 5:774978     Reference: December 3rd, 2021
Gene Product: August 18th, 2014
Variation: January 28th, 2016
Gene Model: August 18th, 2014
2 years agocp33b chloroplast RNA-binding protein33b:
 
GRMZM2G090271
Birdseye, D , et al. 2021. Proc Natl Acad Sci, USA. 118:e2109332118   AT2G35410 (TAIR) Reference: December 2nd, 2021
Variation: December 4th, 2019
Gene Model: December 4th, 2019
2 years agopsrp1 plastid specific ribosomal protein1 :
 
GRMZM2G347956
Birdseye, D , et al. 2021. Proc Natl Acad Sci, USA. 118:e2109332118   AT5G24490 (TAIR) Reference: December 2nd, 2021
Gene Product: February 6th, 2020
Variation: February 6th, 2020
Gene Model: February 6th, 2020
2 years agosig2A sigma factor sig2A:
4.03
GRMZM2G143392
Birdseye, D , et al. 2021. Proc Natl Acad Sci, USA. 118:e2109332118     Reference: December 2nd, 2021
Gene Product: December 24th, 2019
Variation: March 15th, 2021
Gene Model: May 8th, 2015
2 years agoelfb1 elongation factor 1-beta1:
 
GRMZM2G439201
Gong, P, et al. 2021. Plant Physiol. 0:doi: 10.1093/plphys/kiab514     Reference: December 1st, 2021
Gene Product: September 2nd, 2021
Gene Model: September 2nd, 2021
2 years agowrky129 WRKY-transcription factor 129:
 
   Tang, Y et al. 2021. Int J Mol Sci 22:13045     Reference: December 2nd, 2021
Gene Product: July 24th, 2017
2 years agoIDP1637  :
9.00
GRMZM5G811223
Gong, P, et al. 2021. Plant Physiol. 0:doi: 10.1093/plphys/kiab514     Reference: December 1st, 2021
Variation: March 31st, 2005
Gene Model: January 14th, 2019
2 years agocals10 callose synthase10:
1.05
GRMZM2G326643
Gong, P, et al. 2021. Plant Physiol. 0:doi: 10.1093/plphys/kiab514     Reference: December 1st, 2021
Gene Product: July 5th, 2021
Gene Model: January 30th, 2021
2 years agonas5 nicotianamine synthase5:
 
GRMZM2G050108
Baseggio, M et al. 2021. G3 11:jkab186     Reference: December 1st, 2021
Gene Product: July 26th, 2013
Gene Model: July 26th, 2013
2 years agosaur35 small auxin up RNA35:
 
GRMZM2G154317
Majlath, I et al. 2021. Physiol Plant pp.doi: 10.1111/ppl.13609     Reference: December 1st, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agoLOC103627661  :
 
       Gene Product: November 30th, 2021
2 years agoLOC103651283  :
 
       Gene Product: November 30th, 2021
2 years agoLOC100502544  :
 
       Gene Product: November 30th, 2021
2 years agoLOC103653751  :
 
       Gene Product: November 30th, 2021
2 years agoLOC103632824  :
 
       Gene Product: November 30th, 2021
2 years agoLOC103654473  :
 
       Gene Product: November 30th, 2021
2 years agoLOC103648624  :
 
       Gene Product: November 30th, 2021
2 years agoLOC103637316  :
 
       Gene Product: November 30th, 2021
2 years agoLOC100383583  :
 
       Gene Product: November 30th, 2021
2 years agorlk11 receptor-like protein kinase11:
 
GRMZM2G346466
Yang, G et al. 2011. Plant Cell, Tissue and Organ Culture (PCTOC) 106:127-141     Reference: November 30th, 2021
Gene Product: July 10th, 2019
Gene Model: November 30th, 2021
2 years agoxrn4 exoribonuclease4:
4.08
GRMZM2G458401
Song, W-M et al. 2021. Diversity 13:612     Reference: November 29th, 2021
Gene Product: November 29th, 2021
Gene Model: May 24th, 2021
2 years agocld1 cold regulated protein homolog1:
4.04
GRMZM2G064868
Song, W-M et al. 2021. Diversity 13:612     Reference: November 29th, 2021
Gene Product: September 1st, 2003
Variation: October 12th, 2012
Gene Model: July 27th, 2016
2 years agoxrn2 exoribonuclease2:
 
GRMZM2G121404
Song, W-M et al. 2021. Diversity 13:612     Reference: November 29th, 2021
Gene Product: November 29th, 2021
Gene Model: November 29th, 2021
2 years agoxrn3 exoribonuclease3:
 
GRMZM2G099630
Song, W-M et al. 2021. Diversity 13:612     Reference: November 29th, 2021
Gene Product: November 29th, 2021
Gene Model: November 29th, 2021
2 years agoxrn5 exoribonuclease5:
 
GRMZM2G046755
Song, W-M et al. 2021. Diversity 13:612     Reference: November 29th, 2021
Gene Product: November 29th, 2021
Gene Model: November 29th, 2021
2 years agocsu166a  :
4.08
GRMZM2G091258
Chao, S; Baysdorfer, C; Heredia-Diaz, O; Musket, T; Xu, G; Coe, EH. 1994. Theor Appl Genet 88:717-721     Reference: September 1st, 2003
Variation: September 1st, 2003
Gene Model: November 28th, 2021
2 years agosaur13 small auxin up RNA13:
 
GRMZM5G899865
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 27th, 2021
2 years agoxat4 xylan α-1,3-arabinofuranosyl-transferase4:
5.03
GRMZM2G098793
Zhong, RQ et al. 2021. Planta 254:131     Reference: November 26th, 2021
Gene Product: July 3rd, 2020
Variation: September 1st, 2003
Gene Model: June 23rd, 2018
2 years agosaur67 small auxin up RNA67:
7.03
GRMZM5G835903
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: September 10th, 2018
2 years agosaur4 small auxin up RNA4:
1.07
GRMZM2G460861
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: February 12th, 2020
2 years agosaur39 small auxin up RNA39:
4.05
GRMZM2G316275
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agoxat8 xylan α-1,3-arabinofuranosyl-transferase8:
 
GRMZM2G176576
Zhong, RQ et al. 2021. Planta 254:131     Reference: November 26th, 2021
Gene Product: July 3rd, 2020
Gene Model: April 5th, 2020
2 years agoxat2 xylan α-1,3-arabinofuranosyl-transferase2:
 
   Zhong, RQ et al. 2021. Planta 254:131     Reference: November 26th, 2021
Gene Product: July 3rd, 2020
2 years agoxt10 beta-1,2-xylosyltransferase10:
 
GRMZM2G022442
Zhong, RQ et al. 2021. Planta 254:131     Reference: November 26th, 2021
Gene Product: February 10th, 2020
Gene Model: July 2nd, 2020
2 years agosaur57 small auxin up RNA57:
 
GRMZM2G466229
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: February 11th, 2021
2 years agoxat5 xylan α-1,3-arabinofuranosyl-transferase5:
 
GRMZM2G062552
Zhong, RQ et al. 2021. Planta 254:131     Reference: November 26th, 2021
Gene Product: July 3rd, 2020
Gene Model: November 26th, 2021
2 years agoxat6 xylan α-1,3-arabinofuranosyl-transferase6:
 
GRMZM2G099082
Zhong, RQ et al. 2021. Planta 254:131     Reference: November 26th, 2021
Gene Product: July 3rd, 2020
Gene Model: November 26th, 2021
2 years agoxat7 xylan α-1,3-arabinofuranosyl-transferase7:
 
GRMZM2G094579
Zhong, RQ et al. 2021. Planta 254:131     Reference: November 26th, 2021
Gene Product: July 3rd, 2020
Gene Model: November 26th, 2021
2 years agosaur102 small auxin up RNA102:
 
GRMZM2G172086
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur5 small auxin up RNA5:
 
GRMZM2G400156
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur9 small auxin up RNA9:
 
AC186519.4_FG002
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur12 small auxin up RNA12:
 
GRMZM2G447151
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur16 small auxin up RNA16:
 
GRMZM2G089273
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur18 small auxin up RNA18:
 
GRMZM2G039776
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur21 small auxin up RNA21:
 
GRMZM2G451037
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur22 small auxin up RNA22:
 
GRMZM2G045243
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur23 small auxin up RNA23:
 
GRMZM2G309747
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur26 small auxin up RNA26:
 
GRMZM2G042741
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur27 small auxin up RNA27:
 
GRMZM2G042765
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur28 small auxin up RNA28:
 
GRMZM2G343360
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur30 small auxin up RNA30:
 
GRMZM2G156392
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur33 small auxin up RNA33:
 
GRMZM2G151656
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur34 small auxin up RNA34:
 
GRMZM2G102047
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur40 small auxin up RNA40:
 
GRMZM2G118717
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur46 small auxin up RNA46:
 
AC196708.3_FG006
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur47 small auxin up RNA47:
 
GRMZM2G130675
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur53 small auxin up RNA53:
 
GRMZM2G379490
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur56 small auxin up RNA56:
 
GRMZM2G154332
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur61 small auxin up RNA61:
 
GRMZM2G399644
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur65 small auxin up RNA65:
 
GRMZM2G012636
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur66 small auxin up RNA66:
 
GRMZM2G042429
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur68 small auxin up RNA68:
 
GRMZM2G105419
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur72 small auxin up RNA72:
 
GRMZM2G144421
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur75 small auxin up RNA75:
 
GRMZM2G346110
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agosaur77 small auxin up RNA77:
 
GRMZM2G456644
Chen, YZ et al. 2014. J Integr Plant Biol 56:133-150     Reference: November 26th, 2021
Gene Product: November 26th, 2021
Gene Model: November 26th, 2021
2 years agomss1 MSS1 homolog:
5.07
GRMZM2G110185
Shrestha, V et al. 2021. Plant Physiol pp.doi: 10.1093/plphys/kiab390     Reference: November 24th, 2021
Gene Product: September 1st, 2003
Variation: May 28th, 2015
Gene Model: May 28th, 2015
2 years agoppr93 pentatricopeptide repeat protein93:
2.02
GRMZM2G076771
    Gene Product: December 27th, 2016
Gene Model: November 24th, 2021
2 years agoAY105785  :
6.06
GRMZM2G176396
Shrestha, V et al. 2021. Plant Physiol pp.doi: 10.1093/plphys/kiab390     Reference: November 24th, 2021
Variation: March 21st, 2007
Gene Model: August 29th, 2018
2 years agocl2592_1  :
6.07
   Shrestha, V et al. 2021. Plant Physiol pp.doi: 10.1093/plphys/kiab390     Reference: November 24th, 2021
Variation: September 25th, 2007
2 years agoumc1567  :
7.03
AC225205.3_FG003
Joshi, J et al. 2021. Metabolites 11:797     Reference: November 23rd, 2021
Variation: September 1st, 2003
Gene Model: March 17th, 2021
2 years agoaaap31 amino acid/auxin permease31:
 
GRMZM2G101125
Joshi, J et al. 2021. Metabolites 11:797     Reference: November 23rd, 2021
Gene Product: March 31st, 2021
Gene Model: April 22nd, 2020
2 years agoasd1 aspartate-semialdehyde dehydrogenase1:
5.01
GRMZM2G076885
Joshi, J et al. 2021. Metabolites 11:797     Reference: November 23rd, 2021
Gene Product: October 21st, 2020
Gene Model: October 21st, 2020
2 years agosfp8 sulfate transporter8:
 
GRMZM2G342907
Sun, CY et al. 2021. Ecotoxicol Environ Safety 228:113000     Reference: November 23rd, 2021
Gene Product: May 8th, 2020
Gene Model: May 8th, 2020
2 years agopmt1 pectin methyltransferase1:
 
GRMZM2G000764
Joshi, J et al. 2021. Metabolites 11:797     Reference: November 23rd, 2021
Gene Product: July 2nd, 2020
Gene Model: July 2nd, 2020
2 years agogb1 glycinebetaine1:
 
GRMZM2G062531
Joshi, J et al. 2021. Metabolites 11:797     Reference: November 23rd, 2021
Gene Product: November 18th, 2021
Gene Model: November 18th, 2021
2 years agopza00752  :
1.04
   Zheng, LW et al. 2021. BMC Plant Biology 21:543     Reference: November 22nd, 2021
Variation: November 1st, 2017
2 years agoarid7 ARID-transcription factor 7:
 
GRMZM2G466270
Zheng, LW et al. 2021. BMC Plant Biology 21:543     Reference: November 22nd, 2021
Gene Product: April 3rd, 2019
Gene Model: May 11th, 2020
2 years agojmj1 JUMONJI-transcription factor 1:
 
   Zheng, LW et al. 2021. BMC Plant Biology 21:543     Reference: November 22nd, 2021
Gene Product: April 3rd, 2019
2 years agojmj12 JUMONJI-transcription factor 12:
 
   Zheng, LW et al. 2021. BMC Plant Biology 21:543     Reference: November 22nd, 2021
Gene Product: April 3rd, 2019
2 years agojmj14 JUMONJI-transcription factor 14:
 
   Zheng, LW et al. 2021. BMC Plant Biology 21:543     Reference: November 22nd, 2021
Gene Product: April 3rd, 2019
2 years agojmj18 JUMONJI-transcription factor 18:
 
   Zheng, LW et al. 2021. BMC Plant Biology 21:543     Reference: November 22nd, 2021
Gene Product: April 3rd, 2019
2 years agojmj21 JUMONJI-transcription factor 21:
 
   Zheng, LW et al. 2021. BMC Plant Biology 21:543     Reference: November 22nd, 2021
Gene Product: April 3rd, 2019
2 years agojmj22 JUMONJI-transcription factor 22:
 
   Zheng, LW et al. 2021. BMC Plant Biology 21:543     Reference: November 22nd, 2021
Gene Product: April 3rd, 2019
2 years agojmj3 JUMONJI-transcription factor 3:
 
   Zheng, LW et al. 2021. BMC Plant Biology 21:543     Reference: November 22nd, 2021
Gene Product: April 3rd, 2019
2 years agojmj5 JUMONJI-transcription factor 5:
 
   Zheng, LW et al. 2021. BMC Plant Biology 21:543     Reference: November 22nd, 2021
Gene Product: April 3rd, 2019
2 years agojmj7 JUMONJI-transcription factor 7:
 
   Zheng, LW et al. 2021. BMC Plant Biology 21:543     Reference: November 22nd, 2021
Gene Product: April 3rd, 2019
2 years agojmj8 JUMONJI-transcription factor 8:
 
   Zheng, LW et al. 2021. BMC Plant Biology 21:543     Reference: November 22nd, 2021
Gene Product: April 3rd, 2019
2 years agoatx4 arabidopsis trithorax homolog4:
3.01
GRMZM2G085266
Zheng, LW et al. 2021. BMC Plant Biology 21:543   AT4G27910 (TAIR)
LOC_Os01g11952 (MSU/TIGR)
Reference: November 22nd, 2021
Gene Product: June 30th, 2017
Gene Model: March 23rd, 2018
2 years agoatx3 arabidopsis trithorax homolog3:
 
GRMZM2G372928
Zheng, LW et al. 2021. BMC Plant Biology 21:543   AT4G27910 (TAIR)
LOC_Os01g11952 (MSU/TIGR)
Reference: November 22nd, 2021
Gene Product: June 30th, 2017
Gene Model: June 29th, 2017
2 years agogshs1 glutathione synthetase1:
 
GRMZM2G038492
Xiao, SL et al. 2021. Agriculture 11:1160     Reference: November 22nd, 2021
Gene Product: December 2nd, 2018
Gene Model: April 6th, 2021
2 years agojmj15 JUMONJI-transcription factor 15:
5.06
   Zheng, LW et al. 2021. BMC Plant Biology 21:543     Reference: November 22nd, 2021
Gene Product: April 3rd, 2019
2 years agohdac3 histone deacetylase3:
 
GRMZM2G367886
Zheng, LW et al. 2021. BMC Plant Biology 21:543     Reference: November 22nd, 2021
Gene Product: February 12th, 2020
Gene Model: February 12th, 2020
2 years agohdac4 histone deacetylase4:
 
GRMZM2G456473
Zheng, LW et al. 2021. BMC Plant Biology 21:543     Reference: November 22nd, 2021
Gene Product: February 12th, 2020
Gene Model: February 12th, 2020
2 years agohdac5 histone deacetylase5:
 
GRMZM2G056539
Zheng, LW et al. 2021. BMC Plant Biology 21:543     Reference: November 22nd, 2021
Gene Product: February 12th, 2020
Gene Model: February 12th, 2020
2 years agohdac7 histone deacetylase7:
 
GRMZM2G008425
Zheng, LW et al. 2021. BMC Plant Biology 21:543     Reference: November 22nd, 2021
Gene Product: February 12th, 2020
Gene Model: February 12th, 2020
2 years agohdac8 histone deacetylase8:
 
GRMZM5G807054
Zheng, LW et al. 2021. BMC Plant Biology 21:543     Reference: November 22nd, 2021
Gene Product: February 12th, 2020
Gene Model: February 12th, 2020
2 years agohdac2 histone deacetylase2:
9.03
GRMZM2G081474
Zheng, LW et al. 2021. BMC Plant Biology 21:543     Reference: November 22nd, 2021
Gene Product: February 12th, 2020
Gene Model: February 12th, 2020
2 years agohdac6 histone deacetylase6:
8.03
GRMZM2G046824
Zheng, LW et al. 2021. BMC Plant Biology 21:543     Reference: November 22nd, 2021
Gene Product: February 12th, 2020
Gene Model: February 12th, 2020
2 years agocsu146a(cdc48)  :
6.01
   Chao, S; Baysdorfer, C; Heredia-Diaz, O; Musket, T; Xu, G; Coe, EH. 1994. Theor Appl Genet 88:717-721     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: November 21st, 2021
2 years agoacb2 Acyl-CoA-binding protein2:
9.03
GRMZM2G344634
Hamdan, MF et al. 2021. J Exp Bot pp.doi: 10.1093/jxb/erab499     Reference: November 19th, 2021
Gene Product: February 15th, 2021
Gene Model: January 26th, 2019
2 years agoacb1 Acyl-CoA-binding protein1:
10.04
GRMZM2G079908
Hamdan, MF et al. 2021. J Exp Bot pp.doi: 10.1093/jxb/erab499     Reference: November 19th, 2021
Gene Product: February 15th, 2021
Variation: September 29th, 2015
Gene Model: September 29th, 2015
2 years agoacb4 Acyl-CoA-binding protein4:
 
GRMZM2G173636
Hamdan, MF et al. 2021. J Exp Bot pp.doi: 10.1093/jxb/erab499     Reference: November 19th, 2021
Gene Product: February 15th, 2021
Gene Model: February 15th, 2021
2 years agoacb5 Acyl-CoA-binding protein5:
 
GRMZM2G108138
Hamdan, MF et al. 2021. J Exp Bot pp.doi: 10.1093/jxb/erab499     Reference: November 19th, 2021
Gene Product: February 15th, 2021
Gene Model: February 15th, 2021
2 years agoacb6 Acyl-CoA-binding protein6:
 
GRMZM2G060781
Hamdan, MF et al. 2021. J Exp Bot pp.doi: 10.1093/jxb/erab499     Reference: November 19th, 2021
Gene Product: February 15th, 2021
Gene Model: February 15th, 2021
2 years agoacb7 Acyl-CoA-binding protein7:
 
GRMZM2G053803
Hamdan, MF et al. 2021. J Exp Bot pp.doi: 10.1093/jxb/erab499     Reference: November 19th, 2021
Gene Product: February 15th, 2021
Gene Model: February 15th, 2021
2 years agothx50 Trihelix-transcription factor 50:
 
GRMZM2G325038
Zhang, Q-Q et al. 2021. Frontiers Plant Sci 12:724133     Reference: November 19th, 2021
Gene Product: November 9th, 2021
Gene Model: November 9th, 2021
2 years agoacb9 Acyl-CoA-binding protein9:
5.00
GRMZM2G326195
Hamdan, MF et al. 2021. J Exp Bot pp.doi: 10.1093/jxb/erab499     Reference: November 19th, 2021
Gene Product: February 15th, 2021
Gene Model: May 2nd, 2020
2 years agoAY112215  :
3.05
GRMZM2G138258
Dai, XR et al. 2021. Plant J pp.doi: 10.1111/tpj.15586     Reference: November 16th, 2021
Variation: July 29th, 2004
Gene Model: March 20th, 2018
2 years agoIDP111  :
9.01
GRMZM2G480850
Dai, XR et al. 2021. Plant J pp.doi: 10.1111/tpj.15586     Reference: November 16th, 2021
Variation: March 31st, 2005
Gene Model: January 12th, 2019
2 years agoocl2 outer cell layer2:
10.06
   Javelle, M et al. 2011. Plant Physiol 157:790-803     Reference: November 15th, 2021
Gene Product: September 1st, 2003
Variation: September 1st, 2003
2 years agozip2 zinc-regulated, iron-regulated transporter-like protein2:
 
   Xu, JQ et al. 2021. Frontiers Plant Sci 12:739282     Reference: November 15th, 2021
Gene Product: June 5th, 2019
2 years agorps6a ribosomal proteinS6a:
7.04
GRMZM2G054136
Salazar-Diaz, K et al. 2021. iScience 24:103260     Reference: November 12th, 2021
Gene Product: September 1st, 2003
Variation: July 3rd, 2013
Gene Model: April 15th, 2015
2 years agotor1 target of rapamycin1:
6.05
GRMZM2G049342
Salazar-Diaz, K et al. 2021. iScience 24:103260     Reference: November 12th, 2021
Gene Product: November 21st, 2017
Gene Model: August 27th, 2018
2 years agoraptor1 regulatory-associated protein of TOR1:
 
GRMZM2G048067
Salazar-Diaz, K et al. 2021. iScience 24:103260     Reference: November 12th, 2021
Gene Product: November 21st, 2017
Gene Model: February 13th, 2014
2 years agotlc12 TRAM/LAG/CRN8 12:
 
GRMZM2G315726
Ruan, XS et al. 2021. Genes 12:1789     Reference: November 12th, 2021
Gene Product: November 4th, 2019
Gene Model: November 4th, 2019
2 years agorps6k1 ribosomal protein S6 kinase1:
 
GRMZM2G080001
Salazar-Diaz, K et al. 2021. iScience 24:103260     Reference: November 12th, 2021
Gene Product: September 17th, 2020
Gene Model: September 17th, 2020
2 years agoalf13 Alfin-like-transcription factor 13:
3.06
   Zhou, W et al. 2016. Genes Genom pp.DOI: 10.1007/s13258-016-0491-6     Reference: November 16th, 2016
Gene Product: November 11th, 2021
2 years agoalf10 Alfin-like-transcription factor 10:
 
   Zhou, W et al. 2016. Genes Genom pp.DOI: 10.1007/s13258-016-0491-6     Reference: November 16th, 2016
Gene Product: November 11th, 2021
2 years agoalf11 Alfin-like-transcription factor 11:
 
   Zhou, W et al. 2016. Genes Genom pp.DOI: 10.1007/s13258-016-0491-6     Reference: November 16th, 2016
Gene Product: November 11th, 2021
2 years agoalf14 Alfin-like-transcription factor 14:
 
   Zhou, W et al. 2016. Genes Genom pp.DOI: 10.1007/s13258-016-0491-6     Reference: November 16th, 2016
Gene Product: November 11th, 2021
2 years agoalf15 Alfin-like-transcription factor 15:
 
   Zhou, W et al. 2016. Genes Genom pp.DOI: 10.1007/s13258-016-0491-6     Reference: November 16th, 2016
Gene Product: November 11th, 2021
2 years agoalf16 Alfin-like-transcription factor 16:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: November 11th, 2021
2 years agoalf17 Alfin-like-transcription factor 17:
 
   Zhou, W et al. 2016. Genes Genom pp.DOI: 10.1007/s13258-016-0491-6     Reference: November 16th, 2016
Gene Product: November 11th, 2021
2 years agoalf19 Alfin-like-transcription factor 19:
 
   McNeary, K. 2021. Metamorphosis Spring 2021: 1-10     Reference: June 21st, 2021
Gene Product: November 11th, 2021
2 years agoalf8 Alfin-like-transcription factor 8:
 
   Zhou, W et al. 2016. Genes Genom pp.DOI: 10.1007/s13258-016-0491-6     Reference: November 16th, 2016
Gene Product: November 11th, 2021
2 years agoalf9 Alfin-like-transcription factor 9:
 
   McNeary, K. 2021. Metamorphosis Spring 2021: 1-10     Reference: June 21st, 2021
Gene Product: November 11th, 2021
2 years agoGRMZM2G333861  :
 
GRMZM2G333861
Miclaus, M et al. 2011. Genetics 189:1271-1280     Reference: November 11th, 2021
Gene Product: December 20th, 2011
Gene Model: October 13th, 2021
2 years agoppr267 pentatricopeptide repeat protein267:
 
GRMZM2G110952
Wei, KF; Han, P. 2016. Mol Breed 36:170     Reference: December 26th, 2016
Gene Product: December 27th, 2016
Gene Model: November 11th, 2021
2 years agopao7 polyamine oxidase7:
 
   Gao, CH et al. 2021. Plants 10:2421     Reference: November 10th, 2021
Gene Product: June 10th, 2020
2 years agothx66 Trihelix-transcription factor 66:
 
       Gene Product: November 9th, 2021
2 years agothx52 Trihelix-transcription factor 52:
 
       Gene Product: November 9th, 2021
2 years agothx53 Trihelix-transcription factor 53:
 
       Gene Product: November 9th, 2021
2 years agothx58 Trihelix-transcription factor 58:
 
       Gene Product: November 9th, 2021
2 years agothx60 Trihelix-transcription factor 60:
 
       Gene Product: November 9th, 2021
2 years agothx61 Trihelix-transcription factor 61:
 
       Gene Product: November 9th, 2021
2 years agothx17 Trihelix-transcription factor 17:
3.08
GRMZM2G080583
Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
Variation: September 25th, 2007
Gene Model: August 20th, 2021
2 years agothx1 Trihelix-transcription factor 1:
 
   Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
2 years agothx12 Trihelix-transcription factor 12:
 
   Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
2 years agothx13 Trihelix-transcription factor 13:
 
   Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
2 years agothx14 Trihelix-transcription factor 14:
 
   Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
2 years agothx15 Trihelix-transcription factor 15:
 
   Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
2 years agothx19 Trihelix-transcription factor 19:
 
   Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
2 years agothx2 Trihelix-transcription factor 2:
 
   Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
2 years agothx23 Trihelix-transcription factor 23:
 
   Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
2 years agothx24 Trihelix-transcription factor 24:
 
   Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
2 years agothx26 Trihelix-transcription factor 26:
 
   Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
2 years agothx4 Trihelix-transcription factor 4:
 
   Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
2 years agothx5 Trihelix-transcription factor 5:
 
   Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
Variation: March 18th, 2021
2 years agothx6 Trihelix-transcription factor 6:
 
   Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
2 years agothx7 Trihelix-transcription factor 7:
 
   Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
2 years agothx8 Trihelix-transcription factor 8:
 
   Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
2 years agothx9 Trihelix-transcription factor 9:
 
   Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
2 years agothx11 Trihelix-transcription factor 11:
4.09
GRMZM2G103315
Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
Gene Model: August 7th, 2019
2 years agothx30 Trihelix-transcription factor 30:
 
GRMZM2G031493
Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
Gene Model: August 7th, 2019
2 years agothx36 Trihelix-transcription factor 36:
 
GRMZM2G476752
Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
Gene Model: August 7th, 2019
2 years agothx37 Trihelix-transcription factor 37:
 
GRMZM2G334722
Jiang, L et al. 2020. Int J Agric Biol 23:863-868     Reference: July 29th, 2020
Gene Product: November 9th, 2021
Gene Model: August 7th, 2019
2 years agothx38 Trihelix-transcription factor 38:
 
GRMZM2G126148
Jiang, L et al. 2020. Int J Agric Biol 23:863-868     Reference: July 29th, 2020
Gene Product: November 9th, 2021
Gene Model: August 7th, 2019
2 years agothx39 Trihelix-transcription factor 39:
 
GRMZM2G001272
Jiang, L et al. 2020. Int J Agric Biol 23:863-868     Reference: July 29th, 2020
Gene Product: November 9th, 2021
Gene Model: June 29th, 2020
2 years agothx40 Trihelix-transcription factor 40:
 
GRMZM2G469873
Jiang, L et al. 2020. Int J Agric Biol 23:863-868     Reference: July 29th, 2020
Gene Product: November 9th, 2021
Gene Model: August 7th, 2019
2 years agothx41 Trihelix-transcription factor 41:
 
GRMZM5G818655
Jiang, L et al. 2020. Int J Agric Biol 23:863-868     Reference: July 29th, 2020
Gene Product: November 9th, 2021
Gene Model: August 7th, 2019
2 years agothx45 Trihelix-transcription factor 45:
 
GRMZM2G084684
Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
Gene Model: July 29th, 2020
2 years agothx47 Trihelix-transcription factor 47:
 
GRMZM2G305362
Jiang, L et al. 2020. Int J Agric Biol 23:863-868     Reference: July 29th, 2020
Gene Product: November 9th, 2021
Gene Model: July 29th, 2020
2 years agothx48 Trihelix-transcription factor 48:
 
GRMZM2G375307
Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
Gene Model: July 29th, 2020
2 years agothx49 Trihelix-transcription factor 49:
 
GRMZM2G179274
Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
Gene Model: August 29th, 2021
2 years agothx57 Trihelix-transcription factor 57:
 
GRMZM2G310465
Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
Gene Model: November 9th, 2021
2 years agothx64 Trihelix-transcription factor 64:
 
GRMZM2G452695
Du, HW et al. 2016. Euphytica 208:113-122     Reference: November 9th, 2021
Gene Product: November 9th, 2021
Gene Model: November 9th, 2021
2 years agolhcb1 light harvesting chlorophyll a/b binding protein1:
3.09
GRMZM2G104549
Li, HJ et al. 2021. BMC Plant Biology 21:513     Reference: November 4th, 2021
Gene Product: January 8th, 2005
Gene Model: August 3rd, 2018
2 years agotgz21 transglutaminase21:
2.04
GRMZM2G045005
Han, X et al. 2020. J Food Process Preserv doi: 10.1111/jfpp.14756     Reference: November 4th, 2021
Gene Product: December 24th, 2015
Variation: February 2nd, 2010
Gene Model: December 24th, 2015
2 years agoncp1 nine complex protein1:
 
AC197717.3_FG002
Zong, N et al. 2020. Plant Mol Biol pp.doi: 10.1007/s11103-019-00951-6     Reference: November 3rd, 2021
Gene Product: January 2nd, 2020
Gene Model: January 2nd, 2020
2 years agoncp2 nine complex protein2:
 
GRMZM5G831577
Zong, N et al. 2020. Plant Mol Biol pp.doi: 10.1007/s11103-019-00951-6     Reference: November 3rd, 2021
Gene Product: January 2nd, 2020
Gene Model: January 2nd, 2020
2 years agoaomt2 anthranilate O-methyltransferase2:
 
GRMZM2G116966
Forster, C et al. 2021. Plant Physiol pp.doi: 10.1093/plphys/kiab496     Reference: November 1st, 2021
Gene Product: December 23rd, 2020
Gene Model: December 23rd, 2020
2 years agoaomt3 anthranilate O-methyltransferase3:
 
GRMZM2G063438
Forster, C et al. 2021. Plant Physiol pp.doi: 10.1093/plphys/kiab496     Reference: November 1st, 2021
Gene Product: December 23rd, 2020
Gene Model: December 23rd, 2020
2 years agoaomt4 anthranilate O-methyltransferase4:
 
GRMZM2G143871
Forster, C et al. 2021. Plant Physiol pp.doi: 10.1093/plphys/kiab496     Reference: November 1st, 2021
Gene Product: December 23rd, 2020
Gene Model: December 23rd, 2020
2 years agoaomt6 anthranilate O-methyltransferase6:
 
GRMZM2G050307
Forster, C et al. 2021. Plant Physiol pp.doi: 10.1093/plphys/kiab496     Reference: November 1st, 2021
Gene Product: December 23rd, 2020
Gene Model: December 23rd, 2020
2 years agoaomt10 anthranilate O-methyltransferase10:
 
GRMZM2G405947
Forster, C et al. 2021. Plant Physiol pp.doi: 10.1093/plphys/kiab496     Reference: November 1st, 2021
Gene Product: December 23rd, 2020
Gene Model: December 23rd, 2020
2 years agoaomt5 anthranilate O-methyltransferase5:
 
GRMZM2G133996
Forster, C et al. 2021. Plant Physiol pp.doi: 10.1093/plphys/kiab496     Reference: November 1st, 2021
Gene Product: December 23rd, 2020
Gene Model: December 23rd, 2020
2 years agobnlg2235  :
8.02
GRMZM2G473743
    Variation: September 1st, 2003
Gene Model: October 30th, 2021
2 years agoalla1 allantoinase1:
 
GRMZM2G173413
Wurschum, T, et al. 2021. Theor Appl Genet. 0:doi: 10.1007/s00122-021-03963-3     Reference: October 29th, 2021
Gene Product: February 7th, 2018
Gene Model: February 7th, 2018
2 years agocobl3 cobra-like3:
1.10
GRMZM5G826714
Julius, BT, et al. 2021. Plant Cell. 0:doi: 10.1093/plcell/koab193     Reference: October 27th, 2021
Gene Product: March 31st, 2021
Variation: July 29th, 2021
Gene Model: March 31st, 2021
2 years agocyp7 cytochrome P450 7:
3.05
GRMZM2G021436
Huang, HL et al. 2021. J Hazardous Materials pp.doi: 10.1016/j.jhazmat.2021.127610     Reference: October 28th, 2021
Gene Product: September 26th, 2016
Variation: February 15th, 2014
Gene Model: August 7th, 2018
2 years agocobl4 cobra-like4:
5.01
GRMZM2G071970
Julius, BT, et al. 2021. Plant Cell. 0:doi: 10.1093/plcell/koab193     Reference: October 27th, 2021
Gene Product: March 31st, 2021
Variation: September 1st, 2003
Gene Model: March 13th, 2021
2 years agocyp1 cytochrome P450 homolog1:
3.10
   Huang, HL et al. 2021. J Hazardous Materials pp.doi: 10.1016/j.jhazmat.2021.127610     Reference: October 28th, 2021
Gene Product: September 1st, 2003
Variation: February 28th, 2015
2 years agocyp10 cytochrome P450 10:
3.09
GRMZM2G370745
Huang, HL et al. 2021. J Hazardous Materials pp.doi: 10.1016/j.jhazmat.2021.127610     Reference: October 28th, 2021
Gene Product: September 26th, 2016
Variation: January 20th, 2014
Gene Model: April 30th, 2013
2 years agocobl6 cobra-like6:
 
GRMZM2G167520
Julius, BT, et al. 2021. Plant Cell. 0:doi: 10.1093/plcell/koab193     Reference: October 27th, 2021
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
2 years agocobl5 cobra-like5:
 
GRMZM2G056627
Julius, BT, et al. 2021. Plant Cell. 0:doi: 10.1093/plcell/koab193     Reference: October 27th, 2021
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
2 years agoIDP650  :
2.03
   Huang, HL et al. 2021. J Hazardous Materials pp.doi: 10.1016/j.jhazmat.2021.127610     Reference: October 28th, 2021
Variation: March 31st, 2005
2 years agocyp12 cytochrome P450 12:
2.06
GRMZM2G091588
Huang, HL et al. 2021. J Hazardous Materials pp.doi: 10.1016/j.jhazmat.2021.127610     Reference: October 28th, 2021
Gene Product: September 26th, 2016
Variation: January 22nd, 2010
Gene Model: April 30th, 2013
2 years agosog1226b  :
6.00
GRMZM2G052825
Huang, HL et al. 2021. J Hazardous Materials pp.doi: 10.1016/j.jhazmat.2021.127610     Reference: October 28th, 2021
Variation: June 27th, 2021
Gene Model: December 4th, 2019
2 years agoGRMZM2G450866  :
 
GRMZM2G450866
Noonan, J et al. 2017. Int J Mol Sci 8:E1938     Reference: September 16th, 2017
Gene Product: April 5th, 2021
Gene Model: October 27th, 2021
2 years agopco061578  :
4.06
   Rashid, Z et al. 2021. Frontiers Plant Sci 12:726767     Reference: October 26th, 2021
Variation: September 25th, 2007
2 years agouce19 ubiquitin-conjugating enzyme19:
 
GRMZM2G341089
Zhang, JY et al. 2021. PLoS Genetics 17:e1009830     Reference: October 26th, 2021
Gene Product: December 19th, 2019
Gene Model: December 19th, 2019
2 years agonse1 non-structural maintenance of chromosomes element 4 homolog1:
 
GRMZM2G026802
Zhang, JY et al. 2021. PLoS Genetics 17:e1009830     Reference: October 26th, 2021
Gene Product: October 26th, 2021
Gene Model: October 26th, 2021
2 years agosmc5 structural maintenance of chromosomes5:
 
GRMZM2G440916
Zhang, JY et al. 2021. PLoS Genetics 17:e1009830     Reference: October 26th, 2021
Gene Product: December 10th, 2019
Gene Model: October 26th, 2021
2 years agomms21 methyl methanesulfonate sensitivity homolog21:
6.07
GRMZM2G022065
Zhang, JY et al. 2021. PLoS Genetics 17:e1009830     Reference: October 26th, 2021
Gene Product: October 26th, 2021
Variation: October 26th, 2021
Gene Model: December 28th, 2019
2 years agoprh27 protein phosphatase homolog27:
 
GRMZM2G147885
Zhao, MA et al. 2021. Plant Sci pp.doi: 10.1016/j.plantsci.2021.111100     Reference: October 25th, 2021
Gene Product: October 25th, 2021
Gene Model: July 8th, 2021
2 years agoprh21 protein phosphatase homolog21:
9.03
GRMZM2G102858
Zhang, XR et al. 2019. Plant Sci 283:177-188     Reference: May 29th, 2019
Gene Product: October 25th, 2021
Gene Model: May 29th, 2019
2 years agotcp2 thiamine diphosphate carrier protein2:
3.05
GRMZM2G124911
Wang, FX et al. 2021. Plant Biotechnol J pp.doi: 10.1111/pbi.13734     Reference: October 25th, 2021
Gene Product: August 20th, 2014
Gene Model: January 31st, 2013
2 years agorps4 (mt) ribosomal protein S4 (mitochondrion):
 
   Yang, Y-Z et al. 2017. New Phytol pp.doi: 10.1111/nph.14424     Reference: January 26th, 2017
Gene Product: October 24th, 2021
2 years agobak4 brassinosteroid insensitive1-associated receptor kinase 4:
 
GRMZM2G121565
He, WZ et al. 2021. Plants 10:2257     Reference: October 22nd, 2021
Gene Product: January 18th, 2021
Gene Model: January 5th, 2020
2 years agomagi21275  :
3.06
GRMZM2G078314
Xue, CM et al. 2021. J Exp Bot pp.doi: 10.1093/jxb/erab323     Reference: July 9th, 2021
Variation: March 31st, 2005
Gene Model: October 21st, 2021
2 years agopipk1 phosphatidylinositol 4-phosphate 5-kinase1:
 
AC204530.4_FG006
Zhao, ZF et al. 2021. J Plant Growth Reg pp.doi: 10.1007/s00344-021-10504-1     Reference: October 20th, 2021
Gene Product: October 20th, 2021
Gene Model: October 20th, 2021
2 years agoppr153 pentatricopeptide repeat protein153 :
 
GRMZM2G124602
Xu, XB et al. 2009. Plant Mol Biol Rep 27:511     Reference: October 19th, 2021
Gene Product: December 27th, 2016
Gene Model: October 18th, 2021
2 years agoppr151 pentatricopeptide repeat protein151:
 
GRMZM2G416498
Kotchoni, SO et al. 2010. PLoS One 5:e15906     Reference: October 19th, 2021
Gene Product: December 27th, 2016
Gene Model: October 18th, 2021
2 years agoppr148 pentatricopeptide repeat protein148:
 
AC215723.3_FG001
Kotchoni, SO et al. 2010. PLoS One 5:e15906     Reference: October 19th, 2021
Gene Product: December 27th, 2016
Gene Model: October 19th, 2021
2 years agoppr145 pentatricopeptide repeat protein145:
 
GRMZM2G158308
Kotchoni, SO et al. 2010. PLoS One 5:e15906     Reference: October 19th, 2021
Gene Product: December 27th, 2016
Gene Model: October 19th, 2021
2 years agoumc1121  :
8.05
GRMZM2G128658
Waititu, JK et al. 2021. Genes 12:638     Reference: October 18th, 2021
Variation: September 1st, 2003
Gene Model: September 2nd, 2019
2 years agoremo2 remorin2:
1.01
GRMZM2G137352
Waititu, JK et al. 2021. Genes 12:638     Reference: October 18th, 2021
Gene Product: September 24th, 2018
Variation: March 28th, 2021
Gene Model: September 24th, 2018
2 years agosina5 seven in absentia5:
8.04
GRMZM2G101852
Zhang, X et al. 2021. Theor Appl Genet pp.doi: 10.1007/s00122-021-03965-1     Reference: October 18th, 2021
Gene Product: January 24th, 2021
Gene Model: August 30th, 2019
2 years agoppr647 pentatricopeptide repeat protein647:
 
GRMZM2G093098
Zhao, Y et al. 2021. Int J Mol Sci 22:11162     Reference: October 16th, 2021
Gene Product: December 27th, 2016
Variation: October 16th, 2021
Gene Model: October 16th, 2021
2 years agomhl1 macrohairless1:
9.04
   Calfee, E et al. 2021. PLoS Genetics 17:e1009810     Reference: October 11th, 2021
Variation: October 14th, 2021
2 years agohak26 potassium high-affinity transporter26:
 
GRMZM2G074483
Zhang, ZB et al. 2012. Mol Biol Rep 39:8465-8473     Reference: March 16th, 2020
Gene Product: March 12th, 2020
Gene Model: October 14th, 2021
2 years agonad4 NADH-ubiquinone oxidoreductase B18 subunit4:
1.01
GRMZM2G137312
Feng, Y et al. 2021. New Phytol pp.doi: 10.1111/nph.17796     Reference: October 13th, 2021
Variation: March 4th, 2016
Gene Model: March 4th, 2016
2 years agorpl10 ribosomal protein L10 homolog:
3.09
GRMZM2G467086
Helentjaris, T et al. 1994. MNL 68:101-104     Reference: September 1st, 2003
Gene Product: October 13th, 2021
Variation: May 29th, 2013
Gene Model: July 28th, 2016
2 years agoccp33 cysteine protease33:
3.05
AC209810.3_FG002
Li, YH et al. 2021. Frontiers Plant Sci 12:709534     Reference: October 11th, 2021
Gene Product: October 11th, 2021
Gene Model: April 5th, 2020
2 years agosag12 senescence-associated gene12:
 
GRMZM2G061879
Li, YH et al. 2021. Frontiers Plant Sci 12:709534     Reference: October 11th, 2021
Gene Product: October 11th, 2021
Gene Model: May 20th, 2019
2 years agoccp32 cysteine protease32:
 
GRMZM2G035045
Li, YH et al. 2021. Frontiers Plant Sci 12:709534     Reference: October 11th, 2021
Gene Product: October 11th, 2021
Gene Model: June 30th, 2020
2 years agoccp7 cysteine protease7:
 
GRMZM2G077479
Li, YH et al. 2021. Frontiers Plant Sci 12:709534     Reference: October 11th, 2021
Gene Product: October 11th, 2021
Gene Model: October 26th, 2020
2 years agoccp11 cysteine protease11:
 
GRMZM2G097286
Li, YH et al. 2021. Frontiers Plant Sci 12:709534     Reference: October 11th, 2021
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
2 years agoccp12 cysteine protease12:
 
GRMZM2G060090
Li, YH et al. 2021. Frontiers Plant Sci 12:709534     Reference: October 11th, 2021
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
2 years agoccp13 cysteine protease13:
 
GRMZM2G460950
Li, YH et al. 2021. Frontiers Plant Sci 12:709534     Reference: October 11th, 2021
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
2 years agoccp16 cysteine protease16:
 
GRMZM2G098102
Li, YH et al. 2021. Frontiers Plant Sci 12:709534     Reference: October 11th, 2021
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
2 years agoccp20 cysteine protease20:
 
GRMZM2G363926
Li, YH et al. 2021. Frontiers Plant Sci 12:709534     Reference: October 11th, 2021
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
2 years agoccp21 cysteine protease21:
 
GRMZM2G095265
Li, YH et al. 2021. Frontiers Plant Sci 12:709534     Reference: October 11th, 2021
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
2 years agoccp22 cysteine protease22:
 
GRMZM2G019742
Li, YH et al. 2021. Frontiers Plant Sci 12:709534     Reference: October 11th, 2021
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
2 years agoccp23 cysteine protease23:
 
GRMZM2G334321
Li, YH et al. 2021. Frontiers Plant Sci 12:709534     Reference: October 11th, 2021
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
2 years agoccp24 cysteine protease24:
 
GRMZM2G397965
Li, YH et al. 2021. Frontiers Plant Sci 12:709534     Reference: October 11th, 2021
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
2 years agoccp25 cysteine protease25:
 
GRMZM2G170391
Li, YH et al. 2021. Frontiers Plant Sci 12:709534     Reference: October 11th, 2021
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
2 years agoccp26 cysteine protease26:
 
GRMZM2G137690
Li, YH et al. 2021. Frontiers Plant Sci 12:709534     Reference: October 11th, 2021
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
2 years agoccp27 cysteine protease27:
 
AC225716.2_FG003
Li, YH et al. 2021. Frontiers Plant Sci 12:709534     Reference: October 11th, 2021
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
2 years agoccp29 cysteine protease29:
 
GRMZM2G180926
Li, YH et al. 2021. Frontiers Plant Sci 12:709534     Reference: October 11th, 2021
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
2 years agoccp30 cysteine protease30:
 
GRMZM2G006377
Li, YH et al. 2021. Frontiers Plant Sci 12:709534     Reference: October 11th, 2021
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
2 years agoccp36 cysteine protease36:
 
GRMZM2G020657
Li, YH et al. 2021. Frontiers Plant Sci 12:709534     Reference: October 11th, 2021
Gene Product: October 11th, 2021
Gene Model: October 11th, 2021
2 years agothp*-MCP10A thiol protease MCP10A:
 
   deBarros, EG and Larkins, BA. 1994. Plant Sci 99:189-197     Reference: September 1st, 2003
Gene Product: October 11th, 2021
2 years agophos1 phosphate transporter1:
 
GRMZM5G891944
Xiao, JB et al. 2021. Plant Physiol Biochem pp.doi: 10.1016/j.plaphy.2021.09.045   AT1G68740 (TAIR) Reference: October 9th, 2021
Gene Product: February 27th, 2016
Gene Model: February 27th, 2016
2 years agospx7 SPX domain-containing membrane protein7:
 
GRMZM5G828488
Xiao, JB et al. 2021. Plant Physiol Biochem pp.doi: 10.1016/j.plaphy.2021.09.045     Reference: October 9th, 2021
Gene Product: October 9th, 2021
Gene Model: October 9th, 2021
2 years agospx4 SPX domain-containing membrane protein4:
 
GRMZM5G805389
Xiao, JB et al. 2021. Plant Physiol Biochem pp.doi: 10.1016/j.plaphy.2021.09.045     Reference: October 9th, 2021
Gene Product: October 9th, 2021
Gene Model: October 9th, 2021
2 years agoast91 anti-sigma factor antagonist domain of sulfate transporter91:
2.02
GRMZM2G395114
Wang, SL et al. 2021. Plant J pp.doi: 10.1111/tpj.15527   AT1G23090 (TAIR)
LOC_Os04g55800 (MSU/TIGR)
Reference: October 6th, 2021
Gene Product: May 8th, 2020
Variation: February 2nd, 2018
Gene Model: February 2nd, 2018
2 years agolug3 leunig-related3:
1.12
GRMZM2G036169
Su, HH et al. 2021. BMC Plant Biology 21:453     Reference: October 6th, 2021
Gene Product: October 23rd, 2018
Gene Model: December 12th, 2016
2 years agopgl52 polygalacturonase52:
9.06
GRMZM2G034835
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: July 16th, 2021
2 years agopgl6 exopolygalacturonase6:
6.03
GRMZM2G058033
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Variation: March 9th, 2013
Gene Model: July 11th, 2020
2 years agopgl2 polygalacturonase2:
6.03
GRMZM2G454608
Schnable, J; Freeling, M. 2011. PLoS One 6(3):e17855. doi:10.1371/journal.pone.0017855     Reference: September 27th, 2011
Gene Product: October 4th, 2021
Variation: March 10th, 2013
Gene Model: August 24th, 2018
2 years agopgl1 exopolygalacturonase1:
6.03
GRMZM2G094811
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Variation: March 10th, 2013
Gene Model: July 28th, 2016
2 years agopgl3 polygalacturonase3:
6.03
GRMZM2G160626
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Variation: September 1st, 2003
Gene Model: August 24th, 2018
2 years agopgl4 exopolygalacturonase4:
6.03
   Allen, RL and Lonsdale, DM. 1992. Plant Mol Biol 20:343-345     Reference: September 1st, 2003
Gene Product: October 4th, 2021
Variation: September 1st, 2003
2 years agosod*-5 superoxide dismutase candidate5:
 
   Baum, JA and Scandalios, JG. 1982. J Hered 73:95-100     Reference: September 1st, 2003
Gene Product: October 4th, 2021
2 years agosod6* superoxide dismutase 6:
 
   Baum, JA and Scandalios, JG. 1982. J Hered 73:95-100     Reference: September 1st, 2003
Gene Product: October 4th, 2021
Variation: September 1st, 2003
2 years agosod7*- superoxide dismutase7:
 
   Baum, JA and Scandalios, JG. 1982. J Hered 73:95-100     Reference: September 1st, 2003
Gene Product: October 4th, 2021
Variation: September 1st, 2003
2 years agosod8* superoxide dismutase8:
 
   Baum, JA and Scandalios, JG. 1982. J Hered 73:95-100     Reference: September 1st, 2003
Gene Product: October 4th, 2021
Variation: September 1st, 2003
2 years agopgl7 exopolygalacturonase7:
6.03
GRMZM2G160526
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Variation: March 10th, 2013
Gene Model: July 28th, 2016
2 years agopgl8 exopolygalacturonase8:
6.03
   Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Variation: September 1st, 2003
2 years agoproh7 prolyl 4-hydroxylase 7:
5.03
GRMZM2G168506
Cao, LR et al. 2021. Mol Genet Genomics pp.doi: 10.1007/s00438-021-01820-y     Reference: October 4th, 2021
Gene Product: June 18th, 2021
Gene Model: June 23rd, 2018
2 years agoproh5 prolyl 4-hydroxylase 5:
4.06
GRMZM2G025671
Cao, LR et al. 2021. Mol Genet Genomics pp.doi: 10.1007/s00438-021-01820-y     Reference: October 4th, 2021
Gene Product: June 18th, 2021
Gene Model: April 21st, 2020
2 years agopgl10 exopolygalacturonase10:
 
GRMZM2G004435
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: December 4th, 2019
2 years agolac15 laccase15:
 
GRMZM2G072808
Cao, LR et al. 2021. Mol Genet Genomics pp.doi: 10.1007/s00438-021-01820-y     Reference: October 4th, 2021
Gene Product: March 31st, 2018
Gene Model: March 3rd, 2020
2 years agoproh4 prolyl 4-hydroxylase 4:
 
GRMZM5G843555
Cao, LR et al. 2021. Mol Genet Genomics pp.doi: 10.1007/s00438-021-01820-y     Reference: October 4th, 2021
Gene Product: June 18th, 2021
Gene Model: October 5th, 2020
2 years agoproh1 prolyl 4-hydroxylase 1:
 
GRMZM5G855891
Cao, LR et al. 2021. Mol Genet Genomics pp.doi: 10.1007/s00438-021-01820-y     Reference: October 4th, 2021
Gene Product: June 18th, 2021
Gene Model: June 18th, 2021
2 years agoproh2 prolyl 4-hydroxylase 2:
 
GRMZM2G520535
Cao, LR et al. 2021. Mol Genet Genomics pp.doi: 10.1007/s00438-021-01820-y     Reference: October 4th, 2021
Gene Product: June 18th, 2021
Gene Model: June 18th, 2021
2 years agoproh6 prolyl 4-hydroxylase 6:
 
GRMZM2G054224
Cao, LR et al. 2021. Mol Genet Genomics pp.doi: 10.1007/s00438-021-01820-y     Reference: October 4th, 2021
Gene Product: June 18th, 2021
Gene Model: June 18th, 2021
2 years agoproh8 prolyl 4-hydroxylase 8:
 
GRMZM2G145061
Cao, LR et al. 2021. Mol Genet Genomics pp.doi: 10.1007/s00438-021-01820-y     Reference: October 4th, 2021
Gene Product: June 18th, 2021
Gene Model: June 18th, 2021
2 years agopgl107 polygalacturonase107:
 
GRMZM2G045596
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: July 16th, 2021
2 years agopgl101 polygalacturonase101:
 
GRMZM5G882418
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl102 polygalacturonase102:
 
GRMZM2G004500
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl103 polygalacturonase103:
 
GRMZM2G111609
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl5 polygalacturonase5:
 
GRMZM2G452150
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl109 polygalacturonase109:
 
GRMZM2G026855
Lu, L et al. 2021. Int J Mol Sci 22:10722   AT2G43870 (TAIR) Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl12 polygalacturonase12:
 
GRMZM2G170388
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl13 polygalacturonase13:
 
GRMZM2G054410
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl18 polygalacturonase18:
 
GRMZM2G399421
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl20 polygalacturonase20:
 
GRMZM2G374375
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl22 polygalacturonase22:
 
GRMZM5G831200
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl23 polygalacturonase23:
 
AC210013.4_FG017
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl24 polygalacturonase24:
 
GRMZM2G346391
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl25 polygalacturonase25:
 
GRMZM2G367110
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl26 polygalacturonase26:
 
GRMZM2G079617
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl28 polygalacturonase28:
 
GRMZM2G306693
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl29 polygalacturonase29:
 
GRMZM2G454608
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl33 polygalacturonase33:
 
GRMZM2G162384
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl39 polygalacturonase39:
 
GRMZM2G386171
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl40 polygalacturonase40:
 
GRMZM2G137077
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl43 polygalacturonase43:
 
GRMZM2G179696
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl45 polygalacturonase45:
 
GRMZM2G338158
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl47 polygalacturonase47:
 
GRMZM2G002034
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl48 polygalacturonase48:
 
GRMZM2G027782
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl50 polygalacturonase50:
 
GRMZM2G179444
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agopgl55 polygalacturonase55:
 
GRMZM2G153262
Lu, L et al. 2021. Int J Mol Sci 22:10722     Reference: October 4th, 2021
Gene Product: October 4th, 2021
Gene Model: October 4th, 2021
2 years agohb148 homeobox-transcription factor 148:
5.03
   Cao, LR et al. 2021. Mol Genet Genomics pp.doi: 10.1007/s00438-021-01820-y     Reference: October 4th, 2021
Variation: March 31st, 2005
2 years agoproh3 prolyl 4-hydroxylase 3:
1.10
GRMZM2G348578
Cao, LR et al. 2021. Mol Genet Genomics pp.doi: 10.1007/s00438-021-01820-y     Reference: October 4th, 2021
Gene Product: June 18th, 2021
Gene Model: February 15th, 2020
2 years agocopt3 copper transporter3:
 
GRMZM2G317696
Sa, KJ et al. 2021. Genes & Genomics doi: 10.1007%2Fs13258-021-01169-x     Reference: October 1st, 2021
Gene Product: July 24th, 2018
Gene Model: July 24th, 2018
2 years agoumc1431  :
1.09
GRMZM2G004012
Xu, XS, et al. 2021. 56:1-12     Reference: September 29th, 2021
Variation: November 4th, 2016
Gene Model: November 4th, 2016
2 years agoglk23 G2-like-transcription factor 23:
 
   Xu, XS, et al. 2021. 56:1-12     Reference: September 29th, 2021
Variation: March 28th, 2021
2 years agoopr6 12-oxo-phytodienoic acid reductase6:
3.04
GRMZM2G068947
Pan, Y et al. 2021. Pest Manag Sci pp.doi: 10.1002/ps.6660     Reference: September 30th, 2021
Gene Product: September 3rd, 2010
Variation: November 5th, 2010
Gene Model: November 27th, 2013
2 years agocle25 clavata3/esr-related25:
 
GRMZM2G525788
Xu, XS, et al. 2021. 56:1-12     Reference: September 29th, 2021
Gene Product: February 22nd, 2021
Gene Model: September 17th, 2016
2 years agolug9 leunig-related9:
 
GRMZM2G425377
Balassa, K et al. 2021. Saudi J Biol Sci. 28:5568-5578     Reference: September 30th, 2021
Gene Product: October 23rd, 2018
Gene Model: July 3rd, 2020
2 years agoumc1849  :
1.04
GRMZM2G069618
Mafra, GS et al. 2021. Plants 10:1845     Reference: September 29th, 2021
Variation: December 14th, 2016
Gene Model: December 14th, 2016
2 years agoupl4 ubiquitin-protein ligase4:
 
GRMZM2G461948
Mafra, GS et al. 2021. Plants 10:1845     Reference: September 29th, 2021
Gene Product: November 26th, 2019
Gene Model: November 19th, 2019
2 years agomsr6 methionine sulfoxide reductase6:
1.04
GRMZM2G577677
Wang, GL et al. 2021. Plant Mol Biol Rep pp.doi: 10.1007/s11105-021-01320-8     Reference: September 27th, 2021
Gene Product: January 25th, 2021
Gene Model: February 7th, 2020
2 years agomsr1 methionine sulfoxide reductase1:
 
GRMZM2G022413
Wang, GL et al. 2021. Plant Mol Biol Rep pp.doi: 10.1007/s11105-021-01320-8     Reference: September 27th, 2021
Gene Product: January 25th, 2021
Gene Model: January 25th, 2021
2 years agomsr3 methionine sulfoxide reductase3:
 
GRMZM2G376918
Wang, GL et al. 2021. Plant Mol Biol Rep pp.doi: 10.1007/s11105-021-01320-8     Reference: September 27th, 2021
Gene Product: January 25th, 2021
Gene Model: January 25th, 2021
2 years agomsr5 methionine sulfoxide reductase5:
8.03
GRMZM2G089308
Wang, GL et al. 2021. Plant Mol Biol Rep pp.doi: 10.1007/s11105-021-01320-8   AT4G21860 (TAIR)
LOC_Os05g33510 (MSU/TIGR)
Reference: September 27th, 2021
Gene Product: January 25th, 2021
Gene Model: March 24th, 2016
2 years agomsr2 methionine sulfoxide reductase2:
1.05
GRMZM2G052666
Wang, GL et al. 2021. Plant Mol Biol Rep pp.doi: 10.1007/s11105-021-01320-8     Reference: September 27th, 2021
Gene Product: January 25th, 2021
Gene Model: February 8th, 2020
2 years agouaz7c01c01  :
 
GRMZM2G158462
Zhang, JL et al. 2021. PLoS One 16:e0257756     Reference: September 24th, 2021
Variation: September 1st, 2003
Gene Model: February 11th, 2020
2 years agopco069419  :
5.05
GRMZM2G039841
Zhang, JL et al. 2021. PLoS One 16:e0257756     Reference: September 24th, 2021
Variation: September 25th, 2007
Gene Model: August 30th, 2021
2 years agocsu27  :
7.05
GRMZM2G472852
Chao, S; Baysdorfer, C; Heredia-Diaz, O; Musket, T; Xu, G; Coe, EH. 1994. Theor Appl Genet 88:717-721     Reference: September 1st, 2003
Variation: September 1st, 2003
Gene Model: September 19th, 2021
2 years agogc1 guanylyl cyclase1:
 
GRMZM2G350748
Chen, FB et al. 2021. Journal of Hazardous Materials 423 PartB:.doi: 10.1016/j.jhazmat.2021.127105     Reference: September 18th, 2021
Gene Product: March 23rd, 2021
Gene Model: March 23rd, 2021
2 years agoaaap5 amino acid/auxin permease5:
 
GRMZM5G894432
Chen, FB et al. 2021. Journal of Hazardous Materials 423 PartB:.doi: 10.1016/j.jhazmat.2021.127105     Reference: September 18th, 2021
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
2 years agovoz2 VOZ-transcription factor 2:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: September 14th, 2021
2 years agovoz3 VOZ-transcription factor 3:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: September 14th, 2021
2 years agopap20 purple acid phosphatase20:
1.03
GRMZM2G152477
Nie, Z et al. 2021. Curr. Issues Mol. Biol. 43:1142-1155     Reference: September 13th, 2021
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
2 years agozar9 Zea mays ARGOS9:
 
GRMZM2G082943
Nie, Z et al. 2021. Curr. Issues Mol. Biol. 43:1142-1155     Reference: September 13th, 2021
Gene Product: August 3rd, 2015
Gene Model: August 1st, 2015
2 years agozar5 Zea mays ARGOS5:
 
GRMZM2G066029
Nie, Z et al. 2021. Curr. Issues Mol. Biol. 43:1142-1155     Reference: September 13th, 2021
Gene Product: August 3rd, 2015
Gene Model: August 1st, 2015
2 years agopap1 purple acid phosphatase1:
 
GRMZM2G093101
Nie, Z et al. 2021. Curr. Issues Mol. Biol. 43:1142-1155     Reference: September 13th, 2021
Gene Product: November 21st, 2018
Gene Model: November 21st, 2018
2 years agopap3 purple acid phosphatase3:
 
GRMZM2G014193
Nie, Z et al. 2021. Curr. Issues Mol. Biol. 43:1142-1155     Reference: September 13th, 2021
Gene Product: November 21st, 2018
Gene Model: November 21st, 2018
2 years agopap12 purple acid phosphatase12:
 
GRMZM2G109071
Nie, Z et al. 2021. Curr. Issues Mol. Biol. 43:1142-1155     Reference: September 13th, 2021
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
2 years agopap18 purple acid phosphatase18:
 
GRMZM2G141584
Nie, Z et al. 2021. Curr. Issues Mol. Biol. 43:1142-1155     Reference: September 13th, 2021
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
2 years agophm3631  :
10.01
GRMZM2G003750
    Variation: September 25th, 2007
Gene Model: September 12th, 2021
2 years agosi614017e10  :
10.03
GRMZM2G068382
    Variation: September 25th, 2007
Gene Model: September 12th, 2021
2 years agodgatiii1 diacylglycerol acyltransferase-typeIII1:
10.03
GRMZM2G122943
Yan, BW et al. 2018. Genome doi: 10.1139/gen-2018-002     Reference: August 11th, 2018
Gene Product: August 12th, 2018
Gene Model: September 12th, 2021
2 years agopco139290b  :
10.03
GRMZM2G115579
    Variation: September 25th, 2007
Gene Model: September 12th, 2021
2 years agopco142704  :
10.07
GRMZM2G003190
    Variation: September 25th, 2007
Gene Model: September 12th, 2021
2 years agoIDP2142  :
9.06
GRMZM2G113506
    Variation: September 25th, 2007
Gene Model: September 10th, 2021
2 years agomads79 MADS-transcription factor 79:
 
GRMZM2G032070
Li, PC et al. 2021. Theor Appl Genet pp.doi: 10.1007/s00122-021-03784-4     Reference: March 5th, 2021
Gene Product: September 10th, 2021
Gene Model: March 4th, 2021
2 years agopco063085  :
9.07
GRMZM2G061280
    Variation: September 25th, 2007
Gene Model: September 10th, 2021
2 years agoAY109792  :
9.04
GRMZM2G358238
    Variation: September 25th, 2007
Gene Model: September 9th, 2021
2 years agocipk25 calcineurin B-like-interacting protein kinase25:
 
GRMZM2G395458
Chen, XF et al. 2011. Journal of Genetics and Genomics 38:77-87     Reference: September 8th, 2021
Gene Product: August 25th, 2018
Gene Model: September 9th, 2021
2 years agocipk17 calcineurin B-like-interacting protein kinase17:
 
GRMZM2G099002
Zhang, FQ et al. 2021. Physiol Plant pp.doi: 10.1111/ppl.13537     Reference: September 8th, 2021
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
2 years agocipk7 calcineurin B-like-interacting protein kinase7:
 
GRMZM2G105766
Chen, XF et al. 2011. Journal of Genetics and Genomics 38:77-87     Reference: September 8th, 2021
Gene Product: August 25th, 2018
Gene Model: September 8th, 2021
2 years agocl17982_1a  :
5.06
GRMZM5G832989
Chen, Z et al. 2021. J Exp Bot pp.doi: 10.1093/jxb/erab406     Reference: September 7th, 2021
Variation: September 25th, 2007
Gene Model: May 24th, 2020
2 years agopfk3 phosphofructokinase3:
 
GRMZM2G401970
Zhang, F et al. 2021. Genome Biology 22:260     Reference: September 7th, 2021
Gene Product: January 8th, 2020
Gene Model: January 8th, 2020
2 years agoaco12 aconitase12:
1.01
GRMZM2G176397
Zhang, F et al. 2021. Genome Biology 22:260     Reference: September 7th, 2021
Gene Product: September 1st, 2003
Variation: March 31st, 2005
Gene Model: February 10th, 2019
2 years agopza01209  :
8.03
AC194355.3_FG002
    Variation: September 25th, 2007
Gene Model: September 6th, 2021
2 years agopap7 purple acid phosphatase7:
 
GRMZM2G073860
Mager, S et al. 2018. BMC Plant Biology 18:372     Reference: September 6th, 2021
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
2 years agoAY109883  :
8.06
GRMZM2G312365
    Variation: September 25th, 2007
Gene Model: September 5th, 2021
2 years agopza01316  :
8.06
GRMZM2G114172
    Variation: September 25th, 2007
Gene Model: September 5th, 2021
2 years agopza02522  :
8.03
GRMZM2G015126
    Variation: September 25th, 2007
Gene Model: September 5th, 2021
2 years agopmei16 pectin methylesterase inhibitor16:
8.03
GRMZM2G309944
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: September 5th, 2021
2 years agopco095946  :
8.03
GRMZM2G150484
    Variation: September 25th, 2007
Gene Model: September 5th, 2021
2 years agopco134958  :
8.03
GRMZM2G158177
    Variation: September 25th, 2007
Gene Model: September 5th, 2021
2 years agocl30189_1  :
8.01
GRMZM2G128080
    Variation: September 25th, 2007
Gene Model: September 4th, 2021
2 years agopco111964  :
8.01
GRMZM2G171122
    Variation: September 25th, 2007
Gene Model: September 4th, 2021
2 years agogrp8 glycine-rich protein8:
3.04
   Przybylska, A; Spychalski, M. 2021. Mol Biol Rep pp.doi: 10.1007/s11033-021-06677-3     Reference: September 2nd, 2021
Gene Product: September 18th, 2020
2 years agoidc1 iron deficiency candidate1:
6.01
   Kim, HC et al. 2020. Genes 11:191     Reference: September 2nd, 2021
Variation: September 1st, 2003
2 years agopza01028  :
7.05
GRMZM2G148133
    Variation: September 25th, 2007
Gene Model: September 1st, 2021
2 years agogpm679  :
7.02
GRMZM2G074531
    Variation: September 25th, 2007
Gene Model: September 1st, 2021
2 years agoAW308691  :
7.01
GRMZM2G542497
    Variation: September 25th, 2007
Gene Model: September 1st, 2021
2 years agoprc1 proteasome component1:
6.01
GRMZM2G120047
Schnable, J; Freeling, M. 2011. PLoS One 6(3):e17855. doi:10.1371/journal.pone.0017855     Reference: September 27th, 2011
Gene Product: September 1st, 2003
Variation: September 25th, 2007
Gene Model: August 30th, 2021
2 years agojmj4 JUMONJI-transcription factor 4:
 
   Osadchuk, K et al. 2021. Plant Sci pp.doi: 10.1016/j.plantsci.2021.111035     Reference: August 30th, 2021
Gene Product: April 3rd, 2019
2 years agobnl(pho80) phosphate regulatory homolog1:
5.04
GRMZM2G063162
Zhao, XQ et al. 2021. Genomics 113:3565-3581     Reference: August 30th, 2021
Variation: October 3rd, 2014
Gene Model: October 2nd, 2014
2 years agoipt3B isopentenyl transferase3B:
 
GRMZM2G415751
Zhao, XQ et al. 2021. Genomics 113:3565-3581     Reference: August 30th, 2021
Gene Product: March 19th, 2014
Gene Model: July 11th, 2013
2 years agopld17 phospholipase D17:
 
GRMZM5G865943
Zhao, XQ et al. 2021. Genomics 113:3565-3581     Reference: August 30th, 2021
Gene Product: August 9th, 2016
Gene Model: August 9th, 2016
2 years agolaz8 lazarus ortholog8:
 
GRMZM2G373717
Zhao, XQ et al. 2021. Genomics 113:3565-3581     Reference: August 30th, 2021
Gene Product: July 27th, 2019
Gene Model: July 27th, 2019
2 years agomca5 metacaspase5:
 
GRMZM2G125314
Zhao, XQ et al. 2021. Genomics 113:3565-3581     Reference: August 30th, 2021
Gene Product: October 27th, 2020
Gene Model: October 27th, 2020
2 years agotdy2 tie-dyed2:
5.09
GRMZM5G840560
Niu, QK et al. 2021. Biochem Genet pp.doi: 10.1007/s10528-021-10103-5     Reference: July 5th, 2021
Gene Product: July 5th, 2021
Variation: August 30th, 2021
Gene Model: August 29th, 2021
2 years agoumc259a  :
10.05
AC233888.1_FG001
Zhao, XQ et al. 2021. Genomics 113:3565-3581     Reference: August 30th, 2021
Variation: April 25th, 2017
Gene Model: December 20th, 2017
2 years agopza01265  :
5.06
GRMZM2G315176
    Variation: September 25th, 2007
Gene Model: August 29th, 2021
2 years agoAY110413  :
5.08
GRMZM2G089466
    Variation: September 25th, 2007
Gene Model: August 29th, 2021
2 years agoIDP335  :
5.06
GRMZM2G171406
    Variation: August 29th, 2021
Gene Model: August 29th, 2021
2 years agodhad1 dihydroxy-acid dehydratase1:
 
AC234528.1_FG005
Eprintsev, AT et al. 2021. J Plant Physiol pp.doi: 10.1016/j.jplph.2021.153507     Reference: August 29th, 2021
Gene Product: August 29th, 2021
Gene Model: August 29th, 2021
2 years agoIDP233  :
5.06
GRMZM2G012044
    Variation: August 29th, 2021
Gene Model: August 29th, 2021
2 years agoAY104079  :
5.03
GRMZM2G044348
    Variation: September 25th, 2007
Gene Model: August 27th, 2021
2 years agonbcs8 nucleobase:cation symporter8:
 
GRMZM2G068220
Rida, S et al. 2021. Plants 10:1786     Reference: August 27th, 2021
Gene Product: July 14th, 2018
Gene Model: July 14th, 2018
2 years agonbcs17 nucleobase:cation symporter17:
 
GRMZM2G020580
Rida, S et al. 2021. Plants 10:1786     Reference: August 27th, 2021
Gene Product: July 14th, 2018
Gene Model: July 14th, 2018
2 years agonbcs19 nucleobase:cation symporter19:
 
GRMZM2G406315
Rida, S et al. 2021. Plants 10:1786     Reference: August 27th, 2021
Gene Product: July 14th, 2018
Gene Model: July 14th, 2018
2 years agonbcs21 nucleobase:cation symporter21:
 
GRMZM2G136872
Rida, S et al. 2021. Plants 10:1786     Reference: August 27th, 2021
Gene Product: July 14th, 2018
Gene Model: July 14th, 2018
2 years agoppr273 pentatricopeptide repeat protein273:
5.03
GRMZM2G135940
Wei, KF; Han, P. 2016. Mol Breed 36:170     Reference: December 26th, 2016
Gene Product: December 27th, 2016
Gene Model: August 27th, 2021
2 years agoasg73  :
5.01
GRMZM2G122863
Grant, D et al. 1993. MNL 67:55-61     Reference: September 1st, 2003
Variation: August 26th, 2021
Gene Model: August 26th, 2021
2 years agosi707081c02  :
5.02
GRMZM5G814310
    Variation: September 25th, 2007
Gene Model: August 26th, 2021
2 years agopza01289  :
4.07
GRMZM2G150648
    Variation: September 25th, 2007
Gene Model: August 23rd, 2021
2 years agopco104228  :
4.08
GRMZM2G014004
    Variation: September 25th, 2007
Gene Model: August 23rd, 2021
2 years agopco143166  :
4.07
GRMZM2G054210
    Variation: September 25th, 2007
Gene Model: August 23rd, 2021
2 years agocl49968_1  :
4.05
GRMZM2G088648
    Variation: September 25th, 2007
Gene Model: August 22nd, 2021
2 years agogpm155  :
4.05
GRMZM2G062476
    Variation: September 25th, 2007
Gene Model: August 22nd, 2021
2 years agoIDP219  :
6.01
GRMZM2G134020
Huang, YM et al. 2021. Genome Biology 22:237     Reference: August 21st, 2021
Variation: March 31st, 2005
Gene Model: June 28th, 2021
2 years agocsu661  :
4.06
GRMZM2G394528
Zhang, HS et al. 2021. Crop J. doi: 10.1016/j.cj.2021.06.012     Reference: August 20th, 2021
Variation: September 1st, 2003
Gene Model: February 17th, 2021
2 years agoplc8 phospholipase C8:
3.05
GRMZM2G479112
Zhu, JT et al. 2021. Frontiers in Plant Genetics and Genomics 12:611414     Reference: January 12th, 2021
Gene Product: January 12th, 2021
Variation: September 25th, 2007
Gene Model: August 20th, 2021
2 years agopco143484  :
3.07
GRMZM5G878322
    Variation: September 25th, 2007
Gene Model: August 20th, 2021
2 years agoskus10 skewed root growth similar10:
 
GRMZM2G077317
Zhang, HS et al. 2021. Crop J. doi: 10.1016/j.cj.2021.06.012     Reference: August 20th, 2021
Gene Product: October 9th, 2020
Gene Model: October 9th, 2020
2 years agopza02699  :
3.04
GRMZM2G137037
    Variation: September 25th, 2007
Gene Model: August 19th, 2021
2 years agoumc1463  :
6.06
GRMZM2G010357
Kaur, S et al. 2021. PLoS One 16:e0256389     Reference: August 19th, 2021
Variation: September 1st, 2003
Gene Model: August 29th, 2018
2 years agogeb7 glucan endo-1,3-beta-glucosidase7 :
1.09
GRMZM2G046101
Kaur, S et al. 2021. PLoS One 16:e0256389     Reference: August 19th, 2021
Gene Product: September 1st, 2003
Variation: October 7th, 2016
Gene Model: October 7th, 2016
2 years agoleg1 legumin1:
6.01
GRMZM2G174883
Kaur, S et al. 2021. PLoS One 16:e0256389     Reference: August 19th, 2021
Variation: July 3rd, 2015
Gene Model: July 3rd, 2015
2 years agopco140096  :
3.03
GRMZM2G054387
    Variation: September 25th, 2007
Gene Model: August 19th, 2021
2 years agoesdl1 early in short days-like1:
 
GRMZM2G088653
Augustine, RC et al. 2016. Plant Physiol pp.DOI: 10.1104/pp.16.00353     Reference: May 23rd, 2016
Gene Product: August 18th, 2021
Gene Model: August 18th, 2021
2 years agoesdl2 early in short days-like2:
 
GRMZM2G012601
Augustine, RC et al. 2016. Plant Physiol pp.DOI: 10.1104/pp.16.00353     Reference: May 23rd, 2016
Gene Product: August 18th, 2021
Gene Model: August 18th, 2021
2 years agoesdl3 early in short days-like3:
 
GRMZM5G849959
Augustine, RC et al. 2016. Plant Physiol pp.DOI: 10.1104/pp.16.00353     Reference: May 23rd, 2016
Gene Product: August 18th, 2021
Gene Model: August 18th, 2021
2 years agoesdl4 early in short days-like4:
 
GRMZM2G010505
Augustine, RC et al. 2016. Plant Physiol pp.DOI: 10.1104/pp.16.00353     Reference: May 23rd, 2016
Gene Product: August 18th, 2021
Gene Model: August 18th, 2021
2 years agootsl1 overly tolerant to salt-like1:
 
GRMZM2G072939
Augustine, RC et al. 2016. Plant Physiol pp.DOI: 10.1104/pp.16.00353     Reference: May 23rd, 2016
Gene Product: August 18th, 2021
Gene Model: August 18th, 2021
2 years agootsl2 overly tolerant to salt-like2:
 
GRMZM2G174667
Augustine, RC et al. 2016. Plant Physiol pp.DOI: 10.1104/pp.16.00353     Reference: May 23rd, 2016
Gene Product: August 18th, 2021
Gene Model: August 18th, 2021
2 years agootsl3 overly tolerant to salt-like3:
 
GRMZM5G886883
Augustine, RC et al. 2016. Plant Physiol pp.DOI: 10.1104/pp.16.00353     Reference: May 23rd, 2016
Gene Product: August 18th, 2021
Gene Model: August 18th, 2021
2 years agootsl5 overly tolerant to salt-like5:
 
GRMZM2G432931
Augustine, RC et al. 2016. Plant Physiol pp.DOI: 10.1104/pp.16.00353     Reference: May 23rd, 2016
Gene Product: August 18th, 2021
Gene Model: August 18th, 2021
2 years agopial1 protein inhibitor of activated stat-like1:
9.02
GRMZM2G075582
Augustine, RC et al. 2016. Plant Physiol pp.DOI: 10.1104/pp.16.00353     Reference: May 23rd, 2016
Gene Product: August 18th, 2021
Gene Model: August 18th, 2021
2 years agocct16 CO CO-LIKE TIMING OF CAB1 protein domain16:
3.08
AC233946.1_FG004
Dong, M-Y et al. 2021. Ann Bot pp.doi: 10.1093/aobpla/plab048     Reference: August 17th, 2021
Gene Product: June 18th, 2018
Gene Model: May 17th, 2021
2 years agocct103 CO CO-LIKE TIMING OF CAB1 protein domain103:
 
GRMZM2G154580
Dong, M-Y et al. 2021. Ann Bot pp.doi: 10.1093/aobpla/plab048     Reference: August 17th, 2021
Gene Product: June 18th, 2018
Gene Model: January 4th, 2017
2 years agocol20 C2C2-CO-like-transcription factor 20:
 
GRMZM2G414423
Dong, M-Y et al. 2021. Ann Bot pp.doi: 10.1093/aobpla/plab048     Reference: August 17th, 2021
Gene Product: June 18th, 2018
Gene Model: August 23rd, 2018
2 years agocct4 CO CO-LIKE TIMING OF CAB1 protein domain4:
 
GRMZM2G062218
Dong, M-Y et al. 2021. Ann Bot pp.doi: 10.1093/aobpla/plab048     Reference: August 17th, 2021
Gene Product: June 18th, 2018
Gene Model: July 13th, 2021
2 years agocct104 CO CO-LIKE TIMING OF CAB1 protein domain104:
 
GRMZM2G097454
Dong, M-Y et al. 2021. Ann Bot pp.doi: 10.1093/aobpla/plab048     Reference: August 17th, 2021
Gene Product: June 18th, 2018
Gene Model: August 17th, 2021
2 years agocct6 CO CO-LIKE TIMING OF CAB1 protein domain6:
 
GRMZM2G133555
Dong, M-Y et al. 2021. Ann Bot pp.doi: 10.1093/aobpla/plab048     Reference: August 17th, 2021
Gene Product: June 18th, 2018
Gene Model: August 17th, 2021
2 years agocct17 CO CO-LIKE TIMING OF CAB1 protein domain17:
 
GRMZM2G001447
Dong, M-Y et al. 2021. Ann Bot pp.doi: 10.1093/aobpla/plab048     Reference: August 17th, 2021
Gene Product: June 18th, 2018
Gene Model: August 17th, 2021
2 years agocct19 CO CO-LIKE TIMING OF CAB1 protein domain19:
 
GRMZM2G008482
Dong, M-Y et al. 2021. Ann Bot pp.doi: 10.1093/aobpla/plab048     Reference: August 17th, 2021
Gene Product: June 18th, 2018
Gene Model: August 17th, 2021
2 years agocct27 CO CO-LIKE TIMING OF CAB1 protein domain27:
 
GRMZM2G123550
Dong, M-Y et al. 2021. Ann Bot pp.doi: 10.1093/aobpla/plab048     Reference: August 17th, 2021
Gene Product: June 18th, 2018
Gene Model: August 17th, 2021
2 years agocct29 CO CO-LIKE TIMING OF CAB1 protein domain29:
 
AC215811.3_FG003
Dong, M-Y et al. 2021. Ann Bot pp.doi: 10.1093/aobpla/plab048     Reference: August 17th, 2021
Gene Product: June 18th, 2018
Gene Model: August 17th, 2021
2 years agocct36 CO CO-LIKE TIMING OF CAB1 protein domain36:
 
GRMZM2G062885
Dong, M-Y et al. 2021. Ann Bot pp.doi: 10.1093/aobpla/plab048     Reference: August 17th, 2021
Gene Product: June 18th, 2018
Gene Model: August 17th, 2021
2 years agocct39 CO CO-LIKE TIMING OF CAB1 protein domain39:
 
GRMZM2G318992
Dong, M-Y et al. 2021. Ann Bot pp.doi: 10.1093/aobpla/plab048     Reference: August 17th, 2021
Gene Product: June 18th, 2018
Gene Model: August 17th, 2021
2 years agocct45 CO CO-LIKE TIMING OF CAB1 protein domain45:
 
GRMZM2G126026
Dong, M-Y et al. 2021. Ann Bot pp.doi: 10.1093/aobpla/plab048     Reference: August 17th, 2021
Gene Product: June 18th, 2018
Gene Model: August 17th, 2021
2 years agocct24 CO CO-LIKE TIMING OF CAB1 protein domain24:
4.10
GRMZM2G155370
Dong, M-Y et al. 2021. Ann Bot pp.doi: 10.1093/aobpla/plab048     Reference: August 17th, 2021
Gene Product: June 18th, 2018
Variation: March 31st, 2005
Gene Model: April 26th, 2020
2 years agoIDP867  :
4.08
GRMZM2G013949
Dong, M-Y et al. 2021. Ann Bot pp.doi: 10.1093/aobpla/plab048     Reference: August 17th, 2021
Variation: March 31st, 2005
Gene Model: April 24th, 2020
2 years agohct3 hydroxycinnamoyltransferase3:
 
GRMZM2G127251
Mu, XH et al. 2021. Crop J. doi: 10.1016/j.cj.2021.07.001     Reference: August 16th, 2021
Gene Product: November 7th, 2015
Gene Model: November 7th, 2015
2 years agohct4 hydroxycinnamoyltransferase4:
 
GRMZM2G030436
Mu, XH et al. 2021. Crop J. doi: 10.1016/j.cj.2021.07.001     Reference: August 16th, 2021
Gene Product: November 7th, 2015
Gene Model: November 7th, 2015
2 years agopza00824  :
2.07
GRMZM2G158629
    Variation: September 25th, 2007
Gene Model: August 14th, 2021
2 years agoppr129 pentatricopeptide repeat protein129:
2.08
AC233952.1_FG006
Wei, KF; Han, P. 2016. Mol Breed 36:170     Reference: December 26th, 2016
Gene Product: December 27th, 2016
Variation: September 25th, 2007
Gene Model: August 14th, 2021
2 years agoAI668346  :
2.08
GRMZM2G464000
Zhang, J et al. 2019. Physiol Plant pp.doi: 10.1111/ppl.13048     Reference: November 15th, 2019
Variation: August 14th, 2021
Gene Model: January 30th, 2018
2 years agopco062669  :
2.08
GRMZM2G018775
    Variation: September 25th, 2007
Gene Model: August 13th, 2021
2 years agopco123957  :
2.06
GRMZM2G064898
    Variation: September 25th, 2007
Gene Model: August 13th, 2021
2 years agoBE640649  :
2.02
GRMZM2G305007
    Variation: September 25th, 2007
Gene Model: August 12th, 2021
2 years agoAY109603  :
2.02
GRMZM2G070881
    Variation: September 25th, 2007
Gene Model: August 12th, 2021
2 years agocl29727_1  :
2.04
GRMZM2G147667
    Variation: August 12th, 2021
Gene Model: August 12th, 2021
2 years agolo2 lethal ovule2:
9.02
   Susmita, C et al. 2021. Bot Rev pp.doi: 10.1007/s12229-021-09266-y     Reference: August 12th, 2021
Variation: September 1st, 2003
2 years agoacy1 aminoacylase1:
6.04
GRMZM2G135970
Chen, DB et al. 2021. Frontiers Plant Sci 12:593001     Reference: August 10th, 2021
Gene Product: August 10th, 2021
Gene Model: June 30th, 2021
2 years agopza02467  :
1.06
GRMZM2G477872
    Variation: August 9th, 2021
Gene Model: August 9th, 2021
2 years agosi707100e12  :
1.10
GRMZM2G010037
    Variation: September 25th, 2007
Gene Model: August 9th, 2021
2 years agosbei2 starch branching enzyme IIb interacting protein2:
 
GRMZM2G091494
Qu, JZ et al. 2021. Food Chemistry pp.doi: 10.1016/j.foodchem.2021.130796     Reference: August 9th, 2021
Gene Product: June 1st, 2020
Gene Model: June 1st, 2020
2 years agopza02114  :
1.04
GRMZM2G119850
    Variation: September 25th, 2007
Gene Model: August 8th, 2021
2 years agocl19599_1  :
1.07
GRMZM2G095492
    Variation: September 25th, 2007
Gene Model: August 8th, 2021
2 years agoprf1 profilin homolog1:
6.07
   Jing, CS et al. 2021. Agriculture 11:751     Reference: August 7th, 2021
Gene Product: July 13th, 2021
Variation: September 1st, 2003
2 years agoprf3 Profilin homolog3:
 
GRMZM5G876285
Jing, CS et al. 2021. Agriculture 11:751     Reference: August 7th, 2021
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: January 15th, 2015
2 years agocl42523_1  :
1.03
GRMZM2G058870
Agostini, RB et al. 2021. Planta 253:115     Reference: May 3rd, 2021
Variation: September 25th, 2007
Gene Model: August 7th, 2021
2 years agopco094430  :
1.02
GRMZM2G113401
    Variation: September 25th, 2007
Gene Model: August 7th, 2021
2 years agoppr56 pentatricopeptide repeat protein56:
1.08
GRMZM2G380665
Ma, J; Cao, YY. 2021. Frontiers Plant Sci pp.doi: 10.3389/fpls.2021.690059     Reference: August 2nd, 2021
Gene Product: December 27th, 2016
Gene Model: April 11th, 2021
2 years agorcc2 regulator of chromosome condensation2:
 
GRMZM2G003565
Fernandez, MB et al. 2020. Plant Growth Regulation pp.doi: 10.1007/s10725-020-00639-8   AT5G63860 (TAIR) Reference: July 1st, 2020
Gene Product: August 2nd, 2021
Variation: November 18th, 2016
Gene Model: November 18th, 2016
2 years agorcc4 regulator of chromosome condensation 4:
 
GRMZM2G174949
Brandenburg, J-T et al. 2017. PLoS Genetics 13:e1006666     Reference: August 2nd, 2021
Gene Product: August 2nd, 2021
Gene Model: December 29th, 2019
2 years agosmr3 siamese-related3:
 
GRMZM2G331766
Warburton, ML et al. 2015. Crop Sci 55:1857-1867     Reference: August 2nd, 2021
Gene Product: March 8th, 2017
Gene Model: July 30th, 2020
2 years agotrxr1 thioredoxin reductase1:
 
GRMZM5G841142
Warburton, ML et al. 2015. Crop Sci 55:1857-1867     Reference: August 2nd, 2021
Gene Product: August 31st, 2020
Gene Model: August 31st, 2020
2 years agohagtf43 GNAT-transcription factor 43:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Variation: July 21st, 2021
2 years agoufg15  :
10.06
GRMZM2G137009
    Variation: July 21st, 2021
Gene Model: January 17th, 2018
2 years agommp43  :
5.01
GRMZM2G090573
Sun, GC et al. 2021. Phytopathology pp.doi: 10.1094/PHYTO-04-21-0160-R     Reference: July 20th, 2021
Variation: June 15th, 2018
Gene Model: June 15th, 2018
2 years agolsd2 lesion simulating disease2:
6.00
GRMZM2G060057
Sun, GC et al. 2021. Phytopathology pp.doi: 10.1094/PHYTO-04-21-0160-R     Reference: July 20th, 2021
Variation: July 29th, 2004
Gene Model: March 26th, 2021
2 years agoIDP1978  :
10.04
GRMZM2G181021
    Variation: March 31st, 2005
Gene Model: July 20th, 2021
2 years agoIDP201  :
10.04
GRMZM2G471596
    Variation: March 31st, 2005
Gene Model: July 20th, 2021
2 years agoIDP3961  :
10.04
GRMZM5G880300
    Variation: March 31st, 2005
Gene Model: July 20th, 2021
2 years agoTIDP3108  :
10.03
GRMZM2G134756
    Variation: July 19th, 2021
Gene Model: January 23rd, 2018
2 years agockx7 cytokinin oxidase7:
 
GRMZM2G114427
Gu, R et al. 2010. J Plant Growth Reg 29:428-440     Reference: March 28th, 2014
Gene Product: July 19th, 2021
Gene Model: March 25th, 2014
2 years agozar6 Zea mays ARGOS6:
 
GRMZM2G162250
Ren, JJ et al. 2021. Frontiers Plant Sci 12:692205     Reference: July 19th, 2021
Gene Product: August 3rd, 2015
Gene Model: August 1st, 2015
2 years agocl32751_-1  :
10.04
GRMZM2G023023
    Variation: July 19th, 2021
Gene Model: July 19th, 2021
2 years agoIDP1446  :
10.03
GRMZM2G310453
    Variation: March 31st, 2005
Gene Model: July 19th, 2021
2 years agoIDP1479  :
10.03
GRMZM2G121625
    Variation: March 31st, 2005
Gene Model: July 19th, 2021
2 years agoIDP1615  :
10.04
GRMZM2G148547
    Variation: March 31st, 2005
Gene Model: July 19th, 2021
2 years agoIDP2384  :
10.03
GRMZM2G109142
    Variation: March 31st, 2005
Gene Model: July 19th, 2021
2 years agoIDP3973  :
10.04
GRMZM2G039381
    Variation: March 31st, 2005
Gene Model: July 19th, 2021
2 years agogpm605  :
10.03
GRMZM2G017419
    Variation: July 19th, 2021
Gene Model: November 19th, 2019
2 years agoumc2592  :
10.02
GRMZM2G153409
    Variation: July 19th, 2021
Gene Model: December 20th, 2017
2 years agosi496035e06  :
10.02
GRMZM2G113093
    Variation: July 18th, 2021
Gene Model: November 27th, 2019
2 years agoIDP3820  :
10.03
GRMZM2G174565
    Variation: March 31st, 2005
Gene Model: July 18th, 2021
2 years agoIDP132  :
9.07
GRMZM5G833332
    Variation: March 31st, 2005
Gene Model: July 17th, 2021
2 years agoIDP3826  :
9.06
GRMZM2G090842
    Variation: March 31st, 2005
Gene Model: July 16th, 2021
2 years agoIDP3967  :
9.04
GRMZM5G871275
    Variation: March 31st, 2005
Gene Model: July 16th, 2021
2 years agoho3 heme oxygenase3:
 
GRMZM2G157936
Shi, D et al. 2013. PLoS One 8:e80107     Reference: November 18th, 2013
Gene Product: September 24th, 2014
Variation: July 15th, 2021
Gene Model: November 18th, 2013
2 years agonlp14 NLP-transcription factor 14:
9.01
GRMZM2G392306
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: December 3rd, 2019
Variation: September 1st, 2003
Gene Model: July 14th, 2021
2 years agoIDP3817  :
9.02
GRMZM2G046669
    Variation: April 4th, 2007
Gene Model: July 14th, 2021
2 years agoprf6 Profilin homolog6:
8.09
GRMZM5G876285
Jimenez-Lopez, JC et al. 2012. PLoS One 7:E30878     Reference: January 15th, 2015
Gene Product: July 13th, 2021
Gene Model: September 24th, 2018
2 years agoqk1 quekou1:
 
GRMZM2G065839
Nie, SJ et al. 2021. Plant J pp.doi: 10.1111/tpj.15421     Reference: July 13th, 2021
Variation: July 13th, 2021
Gene Model: July 12th, 2021
2 years agoIDP2426  :
8.06
GRMZM2G028779
    Variation: March 31st, 2005
Gene Model: July 13th, 2021
2 years agoIDP468  :
8.08
AC233788.2_FG002
    Variation: March 31st, 2005
Gene Model: July 13th, 2021
2 years agoIDP2584  :
8.05
GRMZM2G160719
    Variation: March 31st, 2005
Gene Model: July 12th, 2021
2 years agoIDP788  :
8.05
GRMZM5G852338
    Variation: March 31st, 2005
Gene Model: July 12th, 2021
2 years agocyc26 cyclin26:
10.03
GRMZM5G879536
Xie, JY et al. 2021. Plant Physiol pp.doi: 10.1093/plphys/kiab299     Reference: July 10th, 2021
Gene Product: June 26th, 2009
Gene Model: July 10th, 2021
2 years agocyc21 cyclin21:
 
GRMZM2G178229
Xie, JY et al. 2021. Plant Physiol pp.doi: 10.1093/plphys/kiab299     Reference: July 10th, 2021
Gene Product: June 26th, 2009
Gene Model: November 8th, 2020
2 years agoepf3 epidermal patterning factor-like3:
 
GRMZM2G051168
Xie, JY et al. 2021. Plant Physiol pp.doi: 10.1093/plphys/kiab299     Reference: July 10th, 2021
Gene Product: July 10th, 2019
Gene Model: July 10th, 2021
2 years agohis401 histone H4 family1:
 
GRMZM2G073275
Xue, CM et al. 2021. J Exp Bot pp.doi: 10.1093/jxb/erab323     Reference: July 9th, 2021
Gene Product: September 1st, 2003
Gene Model: September 30th, 2020
2 years agohis404 histone H4 family4:
 
GRMZM2G072855
Xue, CM et al. 2021. J Exp Bot pp.doi: 10.1093/jxb/erab323     Reference: July 9th, 2021
Gene Product: September 1st, 2003
Gene Model: September 30th, 2020
2 years agohis406 histone H4 family6:
 
GRMZM2G181153
Xue, CM et al. 2021. J Exp Bot pp.doi: 10.1093/jxb/erab323     Reference: July 9th, 2021
Gene Product: September 1st, 2003
Gene Model: September 30th, 2020
2 years agohis301 histone H3 family1:
 
GRMZM2G401581
Xue, CM et al. 2021. J Exp Bot pp.doi: 10.1093/jxb/erab323     Reference: July 9th, 2021
Gene Product: June 15th, 2021
Gene Model: September 30th, 2020
2 years agohis407 histone H4 family7:
 
GRMZM2G349651
Xue, CM et al. 2021. J Exp Bot pp.doi: 10.1093/jxb/erab323     Reference: July 9th, 2021
Gene Product: September 1st, 2003
Gene Model: September 30th, 2020
2 years agocep3 C-terminally encoded peptide3:
 
AC205968.3_FG001
Zhou, GF et al. 2021. Frontiers Plant Sci 12:697688     Reference: July 9th, 2021
Gene Product: October 23rd, 2020
Gene Model: October 23rd, 2020
2 years agohis2a2 histone2A2:
 
GRMZM2G028955
Xue, CM et al. 2021. J Exp Bot pp.doi: 10.1093/jxb/erab323     Reference: July 9th, 2021
Gene Product: September 1st, 2003
Gene Model: July 9th, 2021
2 years agohis303 histone303:
 
GRMZM2G451254
Xue, CM et al. 2021. J Exp Bot pp.doi: 10.1093/jxb/erab323     Reference: July 9th, 2021
Gene Product: June 15th, 2021
Gene Model: July 9th, 2021
2 years agohis408 histone408:
 
GRMZM2G143780
Xue, CM et al. 2021. J Exp Bot pp.doi: 10.1093/jxb/erab323     Reference: July 9th, 2021
Gene Product: September 1st, 2003
Gene Model: July 9th, 2021
2 years agohis304 histone304:
 
GRMZM2G376957
Xue, CM et al. 2021. J Exp Bot pp.doi: 10.1093/jxb/erab323     Reference: July 9th, 2021
Gene Product: June 15th, 2021
Gene Model: July 9th, 2021
2 years agoIDP1958  :
8.01
GRMZM2G378906
    Variation: March 31st, 2005
Gene Model: July 9th, 2021
2 years agopmei36 pectin methylesterase inhibitor36:
2.09
GRMZM2G066950
Ma, LL et al. 2021. Theor Appl Genet pp.doi: 10.1007/s00122-021-03897-w     Reference: July 8th, 2021
Gene Product: January 8th, 2019
Variation: September 1st, 2003
Gene Model: December 28th, 2019
2 years agoIDP1636  :
1.10
GRMZM2G047372
Zhao, YL et al. 2021. Food and Energy Security doi: 10.1002/fes3.309     Reference: July 8th, 2021
Variation: March 31st, 2005
Gene Model: April 7th, 2021
2 years agoIDP3795  :
7.02
GRMZM5G885473
    Variation: March 31st, 2005
Gene Model: July 6th, 2021
2 years agoIDP3810  :
7.02
GRMZM2G113668
    Variation: March 31st, 2005
Gene Model: July 6th, 2021
2 years agoIDP3994  :
7.02
GRMZM2G085630
    Variation: March 31st, 2005
Gene Model: July 6th, 2021
2 years agocals8 callose synthase8:
5.04
GRMZM2G111529
Niu, QK et al. 2021. Biochem Genet pp.doi: 10.1007/s10528-021-10103-5     Reference: July 5th, 2021
Gene Product: July 5th, 2021
Gene Model: June 23rd, 2021
2 years agoumc1378  :
7.00
GRMZM2G333337
    Variation: July 5th, 2021
Gene Model: December 1st, 2019
2 years agoumc1672  :
7.00
GRMZM2G044060
    Variation: July 5th, 2021
Gene Model: September 4th, 2018
2 years agocals5 callose synthase5:
 
GRMZM2G353905
Niu, QK et al. 2021. Biochem Genet pp.doi: 10.1007/s10528-021-10103-5     Reference: July 5th, 2021
Gene Product: July 5th, 2021
Gene Model: July 5th, 2021
2 years agocals11 callose synthase11:
 
GRMZM2G022856
Niu, QK et al. 2021. Biochem Genet pp.doi: 10.1007/s10528-021-10103-5     Reference: July 5th, 2021
Gene Product: July 5th, 2021
Gene Model: July 5th, 2021
2 years agocals7 callose synthase7:
3.09
   Niu, QK et al. 2021. Biochem Genet pp.doi: 10.1007/s10528-021-10103-5     Reference: July 5th, 2021
Gene Product: July 5th, 2021
Variation: March 31st, 2005
2 years agoIDP4082  :
7.01
AC208985.3_FG006
    Variation: March 31st, 2005
Gene Model: July 5th, 2021
2 years agoumc1912  :
6.06
GRMZM2G323939
    Variation: July 3rd, 2021
Gene Model: July 3rd, 2021
2 years agoIDP3790  :
6.07
GRMZM2G145527
    Variation: March 31st, 2005
Gene Model: July 3rd, 2021
2 years agocsu1187  :
6.01
GRMZM2G102737
Bezrutczyk, M, et al. 2021. Plant Cell. 0:doi: 10.1093/plcell/koaa055     Reference: July 1st, 2021
Variation: September 1st, 2003
Gene Model: July 9th, 2020
2 years agoppr359 pentatricopeptide repeat protein359:
6.05
GRMZM2G080898
    Gene Product: December 27th, 2016
Gene Model: July 2nd, 2021
2 years agokan1 KANADI1:
1.05
   Bezrutczyk, M, et al. 2021. Plant Cell. 0:doi: 10.1093/plcell/koaa055     Reference: July 1st, 2021
Variation: January 31st, 2015
2 years agoplatz5 PLATZ-transcription factor 5:
2.02
GRMZM2G131280
Bezrutczyk, M, et al. 2021. Plant Cell. 0:doi: 10.1093/plcell/koaa055     Reference: July 1st, 2021
Variation: February 16th, 2018
Gene Model: February 16th, 2018
2 years agoumc1349  :
5.04
GRMZM2G170742
Bezrutczyk, M, et al. 2021. Plant Cell. 0:doi: 10.1093/plcell/koaa055     Reference: July 1st, 2021
Variation: September 1st, 2003
Gene Model: June 29th, 2018
2 years agommp187  :
7.02
GRMZM2G026218
Bezrutczyk, M, et al. 2021. Plant Cell. 0:doi: 10.1093/plcell/koaa055     Reference: July 1st, 2021
Variation: March 17th, 2021
Gene Model: September 5th, 2018
2 years agoali1 aladin1:
 
GRMZM2G180205
Best, NB, et al. 2021. G3. 0:doi: 10.1093/g3journal/jkab106     Reference: July 1st, 2021
Gene Product: December 19th, 2020
Variation: December 19th, 2020
Gene Model: December 19th, 2020
2 years agoIDP3974  :
 
   de O Buanafina, MM et al. 2019. Planta pp.doi: 10.1007/s00425-019-03288-y     Reference: October 3rd, 2019
Variation: July 2nd, 2021
2 years agoaaap45 amino acid/auxin permease45:
 
AC205362.4_FG002
Bezrutczyk, M, et al. 2021. Plant Cell. 0:doi: 10.1093/plcell/koaa055     Reference: July 1st, 2021
Gene Product: March 31st, 2021
Gene Model: January 8th, 2021
2 years agoIDP648  :
6.05
GRMZM2G383564
    Variation: March 31st, 2005
Gene Model: July 2nd, 2021
2 years agoIDP279  :
8.08
   Bezrutczyk, M, et al. 2021. Plant Cell. 0:doi: 10.1093/plcell/koaa055     Reference: July 1st, 2021
Variation: March 31st, 2005
2 years agoppr191 pentatricopeptide repeat protein191:
 
GRMZM2G312201
Wei, KF; Han, P. 2016. Mol Breed 36:170     Reference: December 26th, 2016
Gene Product: December 27th, 2016
Gene Model: July 1st, 2021
2 years agoppr57 pentatricopeptide repeat protein57:
 
GRMZM2G165963
Minow, MAA et al. 2021. Genome pp.doi: 10.1139/gen-2021-0007     Reference: July 1st, 2021
Gene Product: December 27th, 2016
Gene Model: July 1st, 2021
2 years agoppr352 pentatricopeptide repeat protein352:
 
GRMZM2G467528
Wei, KF; Han, P. 2016. Mol Breed 36:170     Reference: December 26th, 2016
Gene Product: December 27th, 2016
Gene Model: July 1st, 2021
2 years agombf1 multi-protein bridging factor homolog1:
4.04
GRMZM2G101480
Schnable, J; Freeling, M. 2011. PLoS One 6(3):e17855. doi:10.1371/journal.pone.0017855     Reference: September 27th, 2011
Gene Product: June 30th, 2021
Variation: July 8th, 2008
Gene Model: August 6th, 2014
2 years agotraf6 TNF receptor-associated factor 6:
3.05
GRMZM2G017404
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: June 30th, 2021
Gene Model: February 24th, 2019
2 years agoIDP7601  :
6.04
GRMZM2G116919
    Variation: June 30th, 2021
Gene Model: June 30th, 2021
2 years agotraf32 TNF receptor-associated factor 32:
6.02
GRMZM2G128485
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: June 30th, 2021
Variation: September 1st, 2003
Gene Model: August 23rd, 2018
2 years agotraf39 TNF receptor-associated factor 39:
4.08
GRMZM2G163671
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: June 30th, 2021
Variation: September 1st, 2003
Gene Model: April 24th, 2020
2 years agotraf11 TNF receptor-associated factor 11:
6.04
GRMZM2G038691
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: June 30th, 2021
Gene Model: August 24th, 2018
2 years agombf3 multi-protein bridging factor homolog3:
1.07
GRMZM5G800112
Agostini, RB et al. 2021. Planta 253:115     Reference: May 3rd, 2021
Gene Product: June 30th, 2021
Gene Model: February 25th, 2021
2 years agoult1 ultrapetala ortholog1:
 
GRMZM2G004690
Parvathaneni, RK et al. 2020. Genome Biol 21:165     Reference: July 6th, 2020
Gene Product: June 30th, 2021
Gene Model: July 6th, 2020
2 years agotraf15 TNF receptor-associated factor 15:
 
GRMZM2G048192
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: June 30th, 2021
Gene Model: March 18th, 2021
2 years agotraf9 TNF receptor-associated factor 9:
 
GRMZM2G026664
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: June 30th, 2021
Gene Model: June 30th, 2021
2 years agotraf10 TNF receptor-associated factor 10:
 
GRMZM2G026724
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: June 30th, 2021
Gene Model: June 30th, 2021
2 years agotraf16 TNF receptor-associated factor 16:
 
GRMZM2G048281
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: June 30th, 2021
Gene Model: June 30th, 2021
2 years agotraf31 TNF receptor-associated factor 31:
 
GRMZM2G118082
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: June 30th, 2021
Gene Model: June 30th, 2021
2 years agotraf38 TNF receptor-associated factor 38:
 
GRMZM2G162640
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: June 30th, 2021
Gene Model: June 30th, 2021
2 years agotraf40 TNF receptor-associated factor 40:
 
GRMZM2G164669
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: June 30th, 2021
Gene Model: June 30th, 2021
2 years agotraf42 TNF receptor-associated factor 42:
 
GRMZM2G350711
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: June 30th, 2021
Gene Model: June 30th, 2021
2 years agotraf12 TNF receptor-associated factor 12:
 
GRMZM2G040509
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: June 30th, 2021
Gene Model: June 30th, 2021
2 years agoult2 ultrapetala ortholog2:
 
GRMZM2G082745
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: June 30th, 2021
Gene Model: June 30th, 2021
2 years agotraf41 TNF receptor-associated factor 41:
7.02
GRMZM2G320703
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: June 30th, 2021
Gene Model: July 15th, 2020
2 years agotraf2 TNF receptor-associated factor 2:
9.03
GRMZM2G000909
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: June 30th, 2021
Gene Model: June 16th, 2020
2 years agoIDP501  :
6.02
GRMZM2G061465
    Variation: March 31st, 2005
Gene Model: June 30th, 2021
2 years agoIDP3780  :
6.03
GRMZM2G144362
    Variation: March 31st, 2005
Gene Model: June 30th, 2021
2 years agotraf33 TNF receptor-associated factor 33:
4.08
GRMZM2G130505
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: June 30th, 2021
Gene Model: April 25th, 2020
2 years agoumc1429  :
5.03
   Xiong, C-Y et al. 2021. Int J Mol Sci 22:7029     Reference: June 29th, 2021
Variation: June 26th, 2018
2 years agoumc1761  :
5.01
GRMZM2G166094
Waititu, JK et al. 2021. Int J Mol Sci 22:6980     Reference: June 29th, 2021
Variation: September 1st, 2003
Gene Model: March 13th, 2021
2 years agoinp1 inaperturate pollen1:
 
GRMZM2G112914
Lee, BH et al. 2021. Nature Plants pp.doi: 10.1038/s41477-021-00951-9     Reference: June 29th, 2021
Gene Product: June 29th, 2021
Variation: December 1st, 2017
Gene Model: December 1st, 2017
2 years agodogt1 deoxynivalenol-glucosyltransferase1:
 
GRMZM2G403740
Xiong, C-Y et al. 2021. Int J Mol Sci 22:7029     Reference: June 29th, 2021
Gene Product: May 23rd, 2019
Gene Model: May 20th, 2019
2 years agoinp2 inaperturate pollen2:
 
GRMZM2G440882
Lee, BH et al. 2021. Nature Plants pp.doi: 10.1038/s41477-021-00951-9   AT1G15320 (TAIR) Reference: June 29th, 2021
Gene Product: June 29th, 2021
Gene Model: June 29th, 2021
2 years agoIDP3799  :
6.01
GRMZM2G053397
    Variation: March 31st, 2005
Gene Model: June 29th, 2021
2 years agoIDP3887  :
6.02
GRMZM2G130449
    Variation: March 31st, 2005
Gene Model: June 29th, 2021
2 years agoprcw1 proline rich cell wall protein1:
 
GRMZM2G049915
Waititu, JK et al. 2021. Int J Mol Sci 22:6980     Reference: June 29th, 2021
Gene Product: September 1st, 2003
Variation: February 12th, 2008
Gene Model: May 7th, 2013
2 years agoIDP231  :
6.01
GRMZM2G320152
    Variation: March 31st, 2005
Gene Model: June 28th, 2021
2 years agoIDP360  :
6.00
GRMZM2G491719
    Variation: March 31st, 2005
Gene Model: June 28th, 2021
2 years agoIDP749  :
6.01
GRMZM2G068955
    Variation: March 31st, 2005
Gene Model: June 28th, 2021
2 years agoIDP3778  :
6.00
GRMZM2G023335
    Variation: March 31st, 2005
Gene Model: June 27th, 2021
2 years agoumc1581  :
2.05
GRMZM5G896902
Shi, YN et al. 2021. Int J Mol Sci 22:6877     Reference: June 26th, 2021
Variation: September 1st, 2003
Gene Model: February 22nd, 2018
2 years agopmei15 pectin methylesterase inhibitor15:
8.01
GRMZM2G323558
Shi, YN et al. 2021. Int J Mol Sci 22:6877     Reference: June 26th, 2021
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
2 years agoacco6 1-aminocyclopropane-1-carboxylate oxidase6:
2.05
GRMZM5G854264
Park, YS et al. 2021. Mol Plant-Microbe Interact pp.doi: 10.1094/MPMI-09-20-0250-R     Reference: June 25th, 2021
Gene Product: May 16th, 2016
Gene Model: April 30th, 2021
2 years agoetr40 ethylene receptor homolog40:
2.05
GRMZM2G089010
Park, YS et al. 2021. Mol Plant-Microbe Interact pp.doi: 10.1094/MPMI-09-20-0250-R     Reference: June 25th, 2021
Variation: August 6th, 2008
Gene Model: February 16th, 2015
2 years agortl3 reversion-to-ethylene sensitivity1 like3:
 
GRMZM2G121208
Yang, C et al. 2015. Molecular Plant 8:495-505     Reference: June 25th, 2021
Variation: June 10th, 2016
Gene Model: June 10th, 2016
2 years agoIDP36  :
5.06
GRMZM2G382341
    Variation: September 25th, 2007
Gene Model: June 25th, 2021
2 years agoIDP450  :
5.06
GRMZM2G114113
    Variation: March 31st, 2005
Gene Model: June 25th, 2021
2 years agoIDP646  :
5.08
GRMZM2G469142
    Variation: March 31st, 2005
Gene Model: June 25th, 2021
2 years agoIDP3845  :
5.06
GRMZM2G046587
    Variation: March 31st, 2005
Gene Model: June 25th, 2021
2 years agoIDP4045  :
5.05
GRMZM2G361535
    Variation: March 31st, 2005
Gene Model: June 25th, 2021
2 years agorfri3 red and far red insensitive3:
3.04
   Navarrete, F et al. 2021. pp.e1009641     Reference: June 24th, 2021
Gene Product: March 26th, 2020
Variation: July 29th, 2004
2 years agorfri2 red and far red insensitive2:
 
GRMZM2G055116
Navarrete, F et al. 2021. pp.e1009641     Reference: June 24th, 2021
Gene Product: March 26th, 2020
Gene Model: June 24th, 2021
2 years agorfri4 red and far red insensitive4:
 
GRMZM2G011473
Navarrete, F et al. 2021. pp.e1009641     Reference: June 24th, 2021
Gene Product: March 26th, 2020
Gene Model: June 24th, 2021
2 years agoIDP2401  :
5.04
GRMZM2G128865
    Variation: March 31st, 2005
Gene Model: June 24th, 2021
2 years agoIDP3982  :
5.04
GRMZM2G426847
    Variation: March 31st, 2005
Gene Model: June 24th, 2021
2 years agoppr293 pentatricopeptide repeat protein293:
5.03
GRMZM2G096665
    Gene Product: December 27th, 2016
Gene Model: June 23rd, 2021
2 years agobzip160 bZIP-transcription factor 160:
 
   Cao, LR et al. 2021. Frontiers Plant Sci 12:629903   AT1G75390 (TAIR)
LOC_Os02g03960 (MSU/TIGR)
Reference: April 1st, 2021
Gene Product: August 21st, 2018
Variation: June 23rd, 2021
2 years agoumc2300  :
5.04
GRMZM2G037308
Dembinsky, D et al. 2007. Plant Physiol 145:575-588     Reference: April 16th, 2021
Variation: June 23rd, 2021
Gene Model: June 28th, 2018
2 years agoIDP3995  :
5.03
GRMZM2G009365
    Variation: March 31st, 2005
Gene Model: June 23rd, 2021
2 years agouaz233a(act)  :
8.05
GRMZM2G067985
Niu, LJ et al. 2021. Plant Dir. doi: 10.1002/pld3.332     Reference: June 22nd, 2021
Gene Product: September 1st, 2003
Gene Model: April 30th, 2020
2 years agoprf5 Profilin homolog5:
9.02
GRMZM5G877388
Niu, LJ et al. 2021. Plant Dir. doi: 10.1002/pld3.332     Reference: June 22nd, 2021
Gene Product: September 1st, 2003
Variation: July 14th, 2008
Gene Model: January 15th, 2015
2 years agondpk1 nucleoside diphosphate kinase1:
 
GRMZM2G178576
Niu, LJ et al. 2021. Plant Dir. doi: 10.1002/pld3.332     Reference: June 22nd, 2021
Gene Product: December 23rd, 2019
Variation: February 14th, 2015
Gene Model: February 14th, 2015
2 years agoIDP3908  :
5.03
GRMZM2G089132
    Variation: March 31st, 2005
Gene Model: June 22nd, 2021
2 years agoIDP2380  :
5.03
GRMZM2G124918
    Variation: March 31st, 2005
Gene Model: June 21st, 2021
2 years agopco136841  :
5.02
GRMZM2G011098
    Variation: June 20th, 2021
Gene Model: May 5th, 2020
2 years agopco101707b  :
5.02
GRMZM2G019958
Yao, QL. 2021. J Plant Biol pp.doi: 10.1007/s12374-021-09298-2     Reference: June 14th, 2021
Variation: June 20th, 2021
Gene Model: May 4th, 2020
2 years agoIDP2588  :
5.01
GRMZM2G460096
    Variation: March 31st, 2005
Gene Model: June 19th, 2021
2 years agoIDP514  :
5.01
GRMZM2G452026
    Variation: March 31st, 2005
Gene Model: June 19th, 2021
2 years agoIDP3964  :
5.01
GRMZM2G172011
    Variation: March 31st, 2005
Gene Model: June 19th, 2021
2 years agobsk9 brassinosteroid-signaling kinase9:
5.00
GRMZM2G121826
Liu, L et al. 2021. New Phytol pp.doi: 10.1111/nph.17403     Reference: April 20th, 2021
Gene Product: May 13th, 2014
Variation: June 18th, 2021
Gene Model: June 13th, 2018
2 years agoAY104386  :
2.05
GRMZM2G050131
    Variation: June 18th, 2021
Gene Model: July 29th, 2018
2 years agopco133385b  :
3.01
GRMZM2G078839
    Variation: June 18th, 2021
Gene Model: March 25th, 2020
2 years agoIDP3993  :
 
GRMZM2G133633
    Variation: June 18th, 2021
Gene Model: March 27th, 2021
2 years agoIDP1463  :
5.01
GRMZM2G350471
    Variation: March 31st, 2005
Gene Model: June 18th, 2021
2 years agoIDP1956  :
5.01
GRMZM5G897976
    Variation: March 31st, 2005
Gene Model: June 18th, 2021
2 years agoIDP69  :
5.01
AC210013.4_FG008
    Variation: March 31st, 2005
Gene Model: June 18th, 2021
2 years agoIDP4011  :
5.01
GRMZM5G897818
    Variation: March 31st, 2005
Gene Model: June 18th, 2021
2 years agoIDP3819  :
5.00
GRMZM2G083081
    Variation: March 31st, 2005
Gene Model: June 17th, 2021
2 years agoans1 anthranilate synthase homolog1:
2.04
GRMZM2G325131
Li, PC et al. 2021. Theor Appl Genet pp.doi: 10.1007/s00122-021-03784-4     Reference: March 5th, 2021
Gene Product: June 15th, 2021
Variation: October 29th, 2013
Gene Model: October 22nd, 2013
2 years agoans3 anthranilate synthase component II homolog3:
 
GRMZM2G049892
    Gene Product: June 15th, 2021
Gene Model: October 23rd, 2018
2 years agoanph1 anther pollen histone1:
 
GRMZM2G145758
Chen, JY, et al. 2017. Plant Cell. 0:doi: 10.1105/tpc.17.00099   AT4G40030 (TAIR) Reference: October 4th, 2017
Gene Product: June 15th, 2021
Gene Model: April 16th, 2020
2 years agoaatr1 amino acid transporter1:
 
GRMZM2G108597
Yao, QL. 2021. J Plant Biol pp.doi: 10.1007/s12374-021-09298-2     Reference: June 14th, 2021
Gene Product: March 31st, 2021
Gene Model: August 17th, 2020
2 years agoser2 seryl-tRNA synthetase:
4.02
GRMZM2G169160
Yao, QL. 2021. J Plant Biol pp.doi: 10.1007/s12374-021-09298-2     Reference: June 14th, 2021
Gene Product: February 13th, 2008
Variation: May 8th, 2015
Gene Model: May 8th, 2015
2 years agonad2 NADH dehydrogenase2:
8.06
GRMZM2G042034
Helentjaris, T. 1995. Nucleotide sequence submission to dbEST     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: June 14th, 2021
2 years agoeif5a elongation initiation factor5A:
2.08
   Chotewutmontri, P; Barkan, A. 2021. Plant Physiol pp.doi: 10.1093/plphys/kiab272     Reference: June 12th, 2021
Gene Product: September 1st, 2003
Variation: February 24th, 2014
2 years agorps15 ribosomal proteinS15:
5.02
GRMZM2G448511
Chotewutmontri, P; Barkan, A. 2021. Plant Physiol pp.doi: 10.1093/plphys/kiab272     Reference: June 12th, 2021
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: June 19th, 2017
2 years agogos1 GOS2 homolog:
3.06
GRMZM2G113414
Chotewutmontri, P; Barkan, A. 2021. Plant Physiol pp.doi: 10.1093/plphys/kiab272     Reference: June 12th, 2021
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: July 27th, 2016
2 years agoIDP818  :
6.02
GRMZM2G430152
    Variation: March 31st, 2005
Gene Model: June 12th, 2021
2 years agofbp1 fructose bisphosphatase1:
 
GRMZM2G322953
Gao, YF et al. 2021. Phyton 90:1465-1476     Reference: June 9th, 2021
Gene Product: June 9th, 2021
Gene Model: June 9th, 2021
2 years agougu1 UTP-glucose-P-uridyltransferase homolog:
5.03
GRMZM2G134903
Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Gene Product: June 5th, 2021
Variation: August 22nd, 2013
Gene Model: July 28th, 2016
2 years agopco087990  :
5.06
GRMZM2G108087
Miculan, M et al. 2021. Plant J pp.doi: 10.1111/tpj.15364     Reference: June 5th, 2021
Variation: September 25th, 2007
Gene Model: May 23rd, 2020
2 years agoles17 lesion17:
3.05
   Mu, XH et al. 2021. Frontiers Plant Sci 12:638792     Reference: June 3rd, 2021
Variation: September 1st, 2003
2 years agoaco7 aconitase7:
 
GRMZM2G036131
Eprintsev, AT et al. 2021. Int J Mol Sci 22:6012     Reference: June 2nd, 2021
Gene Product: September 1st, 2003
Gene Model: November 15th, 2019
2 years agofum2 fumarase2:
 
GRMZM2G019078
Eprintsev, AT et al. 2021. Int J Mol Sci 22:6012     Reference: June 2nd, 2021
Gene Product: June 2nd, 2021
Gene Model: June 2nd, 2021
2 years agocsu902  :
4.05
GRMZM2G359102
Hawkins, LK et al. 2018. Toxins 10:.61     Reference: June 1st, 2021
Variation: September 1st, 2003
Gene Model: April 16th, 2020
2 years agoumc1362  :
4.05
GRMZM2G114702
Hawkins, LK et al. 2018. Toxins 10:.61     Reference: June 1st, 2021
Variation: September 1st, 2003
Gene Model: March 7th, 2021
2 years agocbp4 calmodulin binding protein4:
5.04
GRMZM2G312827
Hawkins, LK et al. 2018. Toxins 10:.61     Reference: June 1st, 2021
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: June 28th, 2018
2 years agoasr1 absence of seminal roots1:
4.01 - 4.02
   Kai, Y et al. 2021. Plant Signal Behav pp.doi: 10.1080/15592324.2021.1891756     Reference: June 1st, 2021
Variation: November 1st, 2011
2 years agonit1 nitrilase1:
 
GRMZM2G178517
Kai, Y et al. 2021. Plant Signal Behav pp.doi: 10.1080/15592324.2021.1891756     Reference: June 1st, 2021
Gene Product: May 29th, 2012
Variation: June 4th, 2012
Gene Model: May 29th, 2012
2 years agotrps14 trehalose-6-phosphate synthase14:
 
GRMZM2G416836
Hawkins, LK et al. 2018. Toxins 10:.61     Reference: June 1st, 2021
Gene Product: October 3rd, 2020
Gene Model: September 15th, 2013
2 years agonbcs9 nucleobase:cation symporter9:
 
GRMZM2G119970
Hawkins, LK et al. 2018. Toxins 10:.61     Reference: June 1st, 2021
Gene Product: July 14th, 2018
Gene Model: July 14th, 2018
2 years agopme25 pectin methylesterase25:
 
GRMZM2G393762
Hawkins, LK et al. 2018. Toxins 10:.61     Reference: June 1st, 2021
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
2 years agochn8 chitinase8:
 
GRMZM2G312226
Hawkins, LK et al. 2015. pp.e0126185 in PLoS One     Reference: June 1st, 2021
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
2 years agochn9 chitinase9:
 
GRMZM2G412577
Hawkins, LK et al. 2015. pp.e0126185 in PLoS One     Reference: June 1st, 2021
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
2 years agochn10 chitinase10:
 
GRMZM2G400497
Hawkins, LK et al. 2015. pp.e0126185 in PLoS One     Reference: June 1st, 2021
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
2 years agochn11 chitinase11:
 
GRMZM2G052175
Hawkins, LK et al. 2015. pp.e0126185 in PLoS One     Reference: June 1st, 2021
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
2 years agochn12 chitinase12:
 
GRMZM5G837822
Hawkins, LK et al. 2015. pp.e0126185 in PLoS One     Reference: June 1st, 2021
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
2 years agochn13 chitinase13:
 
GRMZM2G430936
Hawkins, LK et al. 2015. pp.e0126185 in PLoS One     Reference: June 1st, 2021
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
2 years agochn14 chitinase14:
 
GRMZM2G430942
Hawkins, LK et al. 2015. pp.e0126185 in PLoS One     Reference: June 1st, 2021
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
2 years agochn15 chitinase15:
 
GRMZM2G023650
Hawkins, LK et al. 2015. pp.e0126185 in PLoS One     Reference: June 1st, 2021
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
2 years agochn17 chitinase17:
 
GRMZM2G057093
Hawkins, LK et al. 2015. pp.e0126185 in PLoS One     Reference: June 1st, 2021
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
2 years agochn18 chitinase18:
 
GRMZM2G141456
Hawkins, LK et al. 2015. pp.e0126185 in PLoS One     Reference: June 1st, 2021
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
2 years agochn19 chitinase19:
 
GRMZM2G090441
Hawkins, LK et al. 2015. pp.e0126185 in PLoS One     Reference: June 1st, 2021
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
2 years agochn34 chitinase34:
 
AC211652.4_FG003
Hawkins, LK et al. 2018. Toxins 10:.61     Reference: June 1st, 2021
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
2 years agochn23 chitinase23:
 
GRMZM2G083292
Hawkins, LK et al. 2015. pp.e0126185 in PLoS One     Reference: June 1st, 2021
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
2 years agochn30 chitinase30:
 
GRMZM2G403475
Hawkins, LK et al. 2015. pp.e0126185 in PLoS One     Reference: June 1st, 2021
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
2 years agochn31 chitinase31:
 
GRMZM2G037694
Hawkins, LK et al. 2015. pp.e0126185 in PLoS One     Reference: June 1st, 2021
Gene Product: May 31st, 2021
Gene Model: May 31st, 2021
2 years agoexo2 exochitinase2:
 
GRMZM2G134251
Hawkins, LK et al. 2015. pp.e0126185 in PLoS One     Reference: June 1st, 2021
Gene Product: May 31st, 2021
Gene Model: June 1st, 2021
2 years agomap1 microtubule-associated protein1:
 
GRMZM2G101874
Zhu, Y et al. 2015. Plant Cell Physiol 56:1442-1455     Reference: June 1st, 2021
Gene Product: June 1st, 2021
Gene Model: June 1st, 2021
2 years agoIDP866  :
2.06
GRMZM2G176977
Hawkins, LK et al. 2018. Toxins 10:.61     Reference: June 1st, 2021
Variation: March 31st, 2005
Gene Model: February 20th, 2019
2 years agoexo3 exochitinase3:
6.05
   Shoresh, M; Harman, GE. 2008. Mol Genet Genomics 280:173     Reference: June 1st, 2021
Gene Product: May 31st, 2021
Variation: March 31st, 2005
2 years agotk1 transketolase 1:
9.03
GRMZM2G033208
Hawkins, LK et al. 2018. Toxins 10:.61     Reference: June 1st, 2021
Gene Product: March 11th, 2008
Variation: January 29th, 2011
Gene Model: December 21st, 2015
2 years agozim11 ZIM-transcription factor 11:
 
   Heidari, P et al. 2021. Frontiers in Plant Genetics and Genomics 12:657970     Reference: May 31st, 2021
Gene Product: February 24th, 2021
2 years agochn4 chitinase4:
 
GRMZM2G373106
Noonan, J et al. 2017. Int J Mol Sci 8:E1938     Reference: September 16th, 2017
Gene Product: May 31st, 2021
Gene Model: September 16th, 2017
2 years agozim48 ZIM-transcription factor 48:
 
   Heidari, P et al. 2021. Frontiers in Plant Genetics and Genomics 12:657970     Reference: May 31st, 2021
Gene Product: February 24th, 2021
2 years agozim49 ZIM-transcription factor 49:
 
   Heidari, P et al. 2021. Frontiers in Plant Genetics and Genomics 12:657970     Reference: May 31st, 2021
Gene Product: February 24th, 2021
2 years agoIDP2348  :
3.06
GRMZM2G062283
Sun, YL et al. 2021. Frontiers Plant Sci 12:664733     Reference: May 29th, 2021
Variation: March 31st, 2005
Gene Model: February 25th, 2019
2 years agotub2 beta tubulin2:
8.03
GRMZM2G334899
Oliveira, DA et al. 2021. Toxins 13:386     Reference: May 28th, 2021
Gene Product: September 1st, 2003
Variation: January 15th, 2015
Gene Model: August 24th, 2014
2 years agoelfa11 elongation factor alpha11:
 
AC233866.1_FG006
Oliveira, DA et al. 2021. Toxins 13:386     Reference: May 28th, 2021
Variation: July 9th, 2017
Gene Model: July 8th, 2017
2 years agoPCO109372  :
4.10
GRMZM2G010044
    Variation: May 27th, 2021
Gene Model: April 27th, 2020
2 years agoIDP3969  :
 
GRMZM2G121520
Lin, JW et al. 2020. Euphytica 216:132     Reference: July 28th, 2020
Variation: May 27th, 2021
Gene Model: July 28th, 2020
2 years agoc3h1 C3H-transcription factor 31:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Variation: May 26th, 2021
2 years agoIDP28  :
4.09
GRMZM2G069631
    Variation: March 31st, 2005
Gene Model: May 26th, 2021
2 years agotcptf4 TCP-transcription factor 4:
 
   Wei, SW et al. 2021. Plant Biotechnol J pp.doi: 10.1111/pbi.13637     Reference: May 25th, 2021
Gene Product: September 27th, 2019
2 years agoumc2188  :
4.08
GRMZM2G098527
Zhang, XX et al. 2020. Theor Appl Genet pp.doi: 10.1007/s00122-020-03639-4     Reference: July 1st, 2020
Variation: May 25th, 2021
Gene Model: June 11th, 2018
2 years agocl25297_1  :
4.08
GRMZM2G104449
    Variation: May 25th, 2021
Gene Model: April 25th, 2020
2 years agoIDP1671  :
4.07
GRMZM2G010439
    Variation: March 31st, 2005
Gene Model: May 24th, 2021
2 years agoIDP240  :
 
GRMZM2G067417
Li, TC et al. 2021. PeerJ 9:e10567     Reference: February 16th, 2021
Variation: May 23rd, 2021
Gene Model: October 24th, 2019
2 years agoiqd27 IQ-domain 27:
 
GRMZM2G066448
Li, PC et al. 2021. Theor Appl Genet pp.doi: 10.1007/s00122-021-03784-4     Reference: March 5th, 2021
Gene Product: May 23rd, 2021
Gene Model: January 1st, 2020
2 years agoIDP2466  :
4.06
GRMZM2G081037
    Variation: March 31st, 2005
Gene Model: May 23rd, 2021
2 years agoIDP270  :
4.06
GRMZM2G170289
    Variation: March 31st, 2005
Gene Model: May 23rd, 2021
2 years agoIDP600  :
4.06
GRMZM2G026024
    Variation: March 31st, 2005
Gene Model: May 23rd, 2021
2 years agoIDP3892  :
4.06
GRMZM2G159962
    Variation: March 31st, 2005
Gene Model: May 23rd, 2021
2 years agotcptf18 TCP-transcription factor 18:
 
   Zhou, Y et al. 2021. Plant Cell pp.doi: 10.1093/plcell/koab134     Reference: May 21st, 2021
Gene Product: September 27th, 2019
2 years agohb8 Homeobox-transcription factor 8:
1.10
GRMZM2G135447
Zhou, Y et al. 2021. Plant Cell pp.doi: 10.1093/plcell/koab134     Reference: May 21st, 2021
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: September 30th, 2015
2 years agohk5 histidine kinase5:
 
GRMZM2G025579
Kumar, R et al. 2021. Plant Cell Physiol pp.doi: 10.1093/pcp/pcab059     Reference: May 21st, 2021
Gene Product: May 20th, 2016
Gene Model: May 20th, 2016
2 years agoIDP3854  :
4.04
GRMZM2G047791
    Variation: March 31st, 2005
Gene Model: May 21st, 2021
2 years agoIDP3934  :
4.02
GRMZM2G058447
    Variation: March 31st, 2005
Gene Model: May 21st, 2021
2 years agoumc1765  :
8.04
GRMZM2G051050
Adak, A et al. 2021. Plant Genome pp.doi: 10.1002/tpg2.20102     Reference: May 19th, 2021
Variation: September 1st, 2003
Gene Model: March 20th, 2021
2 years agoblk3 bik1-like kinase3:
8.05
GRMZM2G047588
Li, WR et al. 2021. Plant Mol Biol Rep pp.doi: 10.1007/s11105-021-01299-2     Reference: May 18th, 2021
Gene Product: July 10th, 2019
Gene Model: September 1st, 2019
2 years agoblk5 bik1-like kinase5:
 
GRMZM2G087459
Li, WR et al. 2021. Plant Mol Biol Rep pp.doi: 10.1007/s11105-021-01299-2     Reference: May 18th, 2021
Gene Product: July 10th, 2019
Gene Model: May 18th, 2021
2 years agoblk4 bik1-like kinase4:
8.06
GRMZM2G168416
Li, WR et al. 2021. Plant Mol Biol Rep pp.doi: 10.1007/s11105-021-01299-2     Reference: May 18th, 2021
Gene Product: July 10th, 2019
Gene Model: September 2nd, 2019
2 years agoaaap25 amino acid/auxin permease25:
3.09
GRMZM2G057733
Sheng, L et al. 2014. J Proteomics Bioinform 7:23-33     Reference: March 31st, 2021
Gene Product: March 31st, 2021
Gene Model: May 17th, 2021
2 years agoIDP6599  :
3.08
GRMZM2G122028
Hassan, MF et al. 2021. Int J Mol Sci 22:2643     Reference: April 5th, 2021
Gene Product: April 5th, 2021
Gene Model: May 17th, 2021
2 years agocsu696  :
1.09
   Zhang, W et al. 2014. PLoS One 9:e98958     Reference: May 17th, 2021
Variation: March 24th, 2021
2 years agovq9 VQ motif-transcription factor9:
 
GRMZM2G059064
Zhang, W et al. 2014. PLoS One 9:e98958     Reference: May 17th, 2021
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
2 years agobub1 budding inhibited by benzimidazoles homolog1:
 
GRMZM2G105750
Su, HD et al. 2021. Proc Natl Acad Sci, USA 118:e2022357118     Reference: May 15th, 2021
Gene Product: May 13th, 2014
Variation: January 16th, 2017
Gene Model: January 15th, 2017
2 years agoknl1 kinetochore-null homolog1:
 
GRMZM2G117360
Su, HD et al. 2021. Proc Natl Acad Sci, USA 118:e2022357118     Reference: May 15th, 2021
Gene Product: May 15th, 2021
Variation: May 15th, 2021
Gene Model: May 15th, 2021
2 years agoIDP2565  :
2.08
   Liu, HH et al. 2021. BMC Plant Biology 21:216     Reference: May 15th, 2021
Variation: March 31st, 2005
2 years agoIDP3796  :
3.05
GRMZM5G822137
    Variation: March 31st, 2005
Gene Model: May 15th, 2021
2 years agoaaap16 amino acid/auxin permease16:
3.04
GRMZM2G092223
Sheng, L et al. 2014. J Proteomics Bioinform 7:23-33     Reference: March 31st, 2021
Gene Product: March 31st, 2021
Gene Model: May 14th, 2021
2 years agoIDP3986  :
3.05
GRMZM2G138077
    Variation: March 31st, 2005
Gene Model: May 14th, 2021
2 years agokea3 K+ efflux antiporter 3:
3.04
GRMZM2G009715
Kong, MS et al. 2021. Genomics pp.doi: 10.1016/j.ygeno.2021.04.032     Reference: April 26th, 2021
Gene Product: April 26th, 2021
Gene Model: May 13th, 2021
2 years agocl40463_1a  :
3.04
       Variation: May 11th, 2021
2 years agoIDP4032  :
3.04
GRMZM2G401267
    Variation: March 31st, 2005
Gene Model: May 11th, 2021
3 years agodnp1 diphosphonucleotide phosphatase1:
10.03
GRMZM2G152757
Kim, K-H et al. 2021. Appl Sci 11:4273     Reference: May 10th, 2021
Gene Product: September 1st, 2003
Variation: November 21st, 2012
Gene Model: October 6th, 2015
3 years agobnl10.05  :
4.08
GRMZM2G032619
Kim, K-H et al. 2021. Appl Sci 11:4273     Reference: May 10th, 2021
Variation: September 1st, 2003
Gene Model: April 24th, 2018
3 years agocyp9 cytochrome P450 9:
 
GRMZM2G138248
Perez, VC et al. 2021. New Phytol pp.doi: 10.1111/nph.17447     Reference: May 7th, 2021
Gene Product: May 29th, 2015
Gene Model: May 29th, 2015
3 years agoamyb1 beta-amylase1:
 
GRMZM2G082034
Zheng, YX et al. 2021. Sci. Rep. 11:9797     Reference: May 7th, 2021
Gene Product: February 26th, 2021
Gene Model: February 26th, 2021
3 years agopco090853  :
2.09
GRMZM2G022403
    Variation: September 25th, 2007
Gene Model: May 6th, 2021
3 years agosol1 sympathy for the ligule1:
1.04 - 1.04
GRMZM2G075262
Strable, J; Nelissen, H. 2021. Curr Opin Plant Biol 63:102038   AT5G05190 (TAIR) Reference: May 4th, 2021
Gene Product: June 21st, 2019
Variation: June 21st, 2019
Gene Model: October 16th, 2017
3 years agomab23 math-btb23:
6.02
GRMZM2G143782
Agostini, RB et al. 2021. Planta 253:115     Reference: May 3rd, 2021
Gene Product: June 6th, 2014
Gene Model: February 14th, 2017
3 years agoalp1 aluminum-induced protein homolog1:
10.01
GRMZM2G003762
Agostini, RB et al. 2021. Planta 253:115     Reference: May 3rd, 2021
Gene Product: September 1st, 2003
Variation: July 12th, 2012
Gene Model: July 27th, 2016
3 years agogmp2 mannose-1-phosphate guanylyltransferase2:
8.07
   Agostini, RB et al. 2021. Planta 253:115     Reference: May 3rd, 2021
Gene Product: October 21st, 2020
Variation: July 29th, 2004
3 years agoypt4 ypt homolog4:
 
GRMZM2G097746
Agostini, RB et al. 2021. Planta 253:115     Reference: May 3rd, 2021
Variation: January 14th, 2011
Gene Model: December 21st, 2015
3 years agopld7 phospholipase D7:
 
GRMZM2G179792
Zhao, XC et al. 2021. Frontiers Plant Sci 12:639132     Reference: May 3rd, 2021
Gene Product: August 9th, 2016
Gene Model: August 9th, 2016
3 years agomab17 math-btb17:
 
GRMZM2G166049
Luo, MJ et al. 2021. Plant Biotechnol J pp.doi: 10.1111/pbi.13607     Reference: May 3rd, 2021
Gene Product: June 6th, 2014
Variation: May 17th, 2017
Gene Model: February 14th, 2017
3 years agogpat10 glycerol-3-phosphate acyltransferase10:
 
GRMZM2G020320
Zhao, XC et al. 2021. Frontiers Plant Sci 12:639132     Reference: May 3rd, 2021
Gene Product: March 25th, 2019
Gene Model: March 25th, 2019
3 years agodtc1 dicarboxylate/tricarboxylate transporter1:
 
GRMZM2G042146
Agostini, RB et al. 2021. Planta 253:115     Reference: May 3rd, 2021
Gene Product: January 11th, 2020
Gene Model: January 11th, 2020
3 years agoIDP3952  :
2.08
GRMZM2G140231
    Variation: March 31st, 2005
Gene Model: May 3rd, 2021
3 years agoIDP2456  :
8.05
GRMZM2G082792
Agostini, RB et al. 2021. Planta 253:115     Reference: May 3rd, 2021
Variation: March 31st, 2005
Gene Model: August 31st, 2019
3 years agopls2 phospholipid synthesis2:
4.01
GRMZM2G037104
Agostini, RB et al. 2021. Planta 253:115     Reference: May 3rd, 2021
Gene Product: April 27th, 2009
Variation: April 14th, 2015
Gene Model: April 11th, 2015
3 years agobrl3 bri1-like receptor kinase3:
4.05
GRMZM2G438007
Satterlee, JW; Strable, J; Scanlon, MJ. 2020. Proc Natl Acad Sci, USA. 0:doi: 10.1073/pnas.2018788117   AT1G55610 (TAIR)
LOC_Os08g25380 (MSU/TIGR)
Reference: April 30th, 2021
Variation: May 9th, 2018
Gene Model: May 9th, 2018
3 years agodrm1 dormancy associated1:
 
GRMZM2G123896
Satterlee, JW; Strable, J; Scanlon, MJ. 2020. Proc Natl Acad Sci, USA. 0:doi: 10.1073/pnas.2018788117     Reference: April 30th, 2021
Gene Product: September 25th, 2015
Variation: September 25th, 2015
Gene Model: September 25th, 2015
3 years agoppr53 pentatricopeptide repeat53:
 
GRMZM2G438524
Satterlee, JW; Strable, J; Scanlon, MJ. 2020. Proc Natl Acad Sci, USA. 0:doi: 10.1073/pnas.2018788117   AT5G46580 (TAIR) Reference: April 30th, 2021
Gene Product: December 27th, 2016
Variation: December 9th, 2015
Gene Model: December 9th, 2015
3 years agoGRMZM2G391746  :
 
GRMZM2G102770
Satterlee, JW; Strable, J; Scanlon, MJ. 2020. Proc Natl Acad Sci, USA. 0:doi: 10.1073/pnas.2018788117     Reference: April 30th, 2021
Gene Product: February 22nd, 2021
Gene Model: September 17th, 2016
3 years agoGRMZM2G427603  :
 
GRMZM2G427603
Satterlee, JW; Strable, J; Scanlon, MJ. 2020. Proc Natl Acad Sci, USA. 0:doi: 10.1073/pnas.2018788117     Reference: April 30th, 2021
Gene Product: February 22nd, 2021
Gene Model: September 17th, 2016
3 years agocle22 clavata3/esr-related22:
 
GRMZM2G070192
Satterlee, JW; Strable, J; Scanlon, MJ. 2020. Proc Natl Acad Sci, USA. 0:doi: 10.1073/pnas.2018788117     Reference: April 30th, 2021
Gene Product: February 22nd, 2021
Gene Model: September 17th, 2016
3 years agocle27 clavata3/esr-related27:
 
GRMZM2G468688
Satterlee, JW; Strable, J; Scanlon, MJ. 2020. Proc Natl Acad Sci, USA. 0:doi: 10.1073/pnas.2018788117     Reference: April 30th, 2021
Gene Product: February 22nd, 2021
Gene Model: September 17th, 2016
3 years agoppr13 pentatricopeptide repeat13:
 
GRMZM2G099604
Liu, X-Y et al. 2021. J Exp Bot pp.doi: 10.1093/jxb/erab185   At2g02980 (TAIR)
LOC_Os03g58100 (MSU/TIGR)
Reference: May 1st, 2021
Gene Product: December 27th, 2016
Variation: May 1st, 2021
Gene Model: May 20th, 2017
3 years agobak2 brassinosteroid insensitive1-associated receptor kinase like2:
 
GRMZM2G132763
Satterlee, JW; Strable, J; Scanlon, MJ. 2020. Proc Natl Acad Sci, USA. 0:doi: 10.1073/pnas.2018788117     Reference: April 30th, 2021
Gene Product: January 18th, 2021
Gene Model: April 5th, 2019
3 years agolsn1 large scutellar node1:
 
   Robil, JM et al. 2021. Plant J pp.doi: 10.1111/tpj.15299     Reference: April 30th, 2021
Variation: April 30th, 2021
3 years agoumc1300  :
3.05
GRMZM2G046061
Haag, JR et al. 2014. Cell Reports 9:378-390     Reference: April 30th, 2021
Variation: September 1st, 2003
Gene Model: April 3rd, 2020
3 years agordm4 RNA-directed DNA methylation4:
 
GRMZM2G098603
Haag, JR et al. 2014. Cell Reports 9:378-390     Reference: April 30th, 2021
Gene Product: July 16th, 2020
Variation: July 16th, 2020
Gene Model: July 16th, 2020
3 years agoIDP3774  :
2.04
GRMZM2G074238
    Variation: March 31st, 2005
Gene Model: April 29th, 2021
3 years agoIDP3814  :
2.04
GRMZM2G124473
    Variation: March 31st, 2005
Gene Model: April 28th, 2021
3 years agoxer1 xerico1:
2.07
GRMZM2G018070
Simmons, CR et al. 2021. Plant Sci 307:110899     Reference: April 27th, 2021
Gene Product: March 26th, 2020
Gene Model: September 14th, 2017
3 years agoipt1 isopentenyl transferase1:
 
GRMZM2G097258
Simmons, CR et al. 2021. Plant Sci 307:110899     Reference: April 27th, 2021
Gene Product: March 19th, 2014
Gene Model: July 10th, 2013
3 years agonhx15 Na+/H+ antiporter 15:
 
GRMZM2G090149
Kong, MS et al. 2021. Genomics pp.doi: 10.1016/j.ygeno.2021.04.032     Reference: April 26th, 2021
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
3 years agochx1 cation/H+ antiporter 1:
 
AC216731.3_FG002
Kong, MS et al. 2021. Genomics pp.doi: 10.1016/j.ygeno.2021.04.032     Reference: April 26th, 2021
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
3 years agochx2 cation/H+ antiporter 2:
 
GRMZM2G430755
Kong, MS et al. 2021. Genomics pp.doi: 10.1016/j.ygeno.2021.04.032     Reference: April 26th, 2021
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
3 years agochx3 cation/H+ antiporter 3:
 
GRMZM2G105219
Kong, MS et al. 2021. Genomics pp.doi: 10.1016/j.ygeno.2021.04.032     Reference: April 26th, 2021
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
3 years agochx4 cation/H+ antiporter 4:
 
GRMZM2G457523
Kong, MS et al. 2021. Genomics pp.doi: 10.1016/j.ygeno.2021.04.032     Reference: April 26th, 2021
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
3 years agochx6 cation/H+ antiporter 6:
 
GRMZM2G020610
Kong, MS et al. 2021. Genomics pp.doi: 10.1016/j.ygeno.2021.04.032     Reference: April 26th, 2021
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
3 years agochx7 cation/H+ antiporter 7:
 
GRMZM2G130049
Kong, MS et al. 2021. Genomics pp.doi: 10.1016/j.ygeno.2021.04.032     Reference: April 26th, 2021
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
3 years agochx8 cation/H+ antiporter 8:
 
GRMZM2G363557
Kong, MS et al. 2021. Genomics pp.doi: 10.1016/j.ygeno.2021.04.032     Reference: April 26th, 2021
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
3 years agochx9 cation/H+ antiporter 9:
 
GRMZM2G166745
Kong, MS et al. 2021. Genomics pp.doi: 10.1016/j.ygeno.2021.04.032     Reference: April 26th, 2021
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
3 years agochx10 cation/H+ antiporter 10:
 
GRMZM2G138817
Kong, MS et al. 2021. Genomics pp.doi: 10.1016/j.ygeno.2021.04.032     Reference: April 26th, 2021
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
3 years agochx14 cation/H+ antiporter 14:
 
GRMZM2G439306
Kong, MS et al. 2021. Genomics pp.doi: 10.1016/j.ygeno.2021.04.032     Reference: April 26th, 2021
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
3 years agochx17 cation/H+ antiporter 17:
 
GRMZM2G130831
Kong, MS et al. 2021. Genomics pp.doi: 10.1016/j.ygeno.2021.04.032     Reference: April 26th, 2021
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
3 years agokea5 K+ efflux antiporter 5:
 
GRMZM2G040158
Kong, MS et al. 2021. Genomics pp.doi: 10.1016/j.ygeno.2021.04.032     Reference: April 26th, 2021
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
3 years agokea6 K+ efflux antiporter 6:
 
GRMZM2G171031
Kong, MS et al. 2021. Genomics pp.doi: 10.1016/j.ygeno.2021.04.032     Reference: April 26th, 2021
Gene Product: April 26th, 2021
Gene Model: April 26th, 2021
3 years agoppr1103 pentatricopeptide repeat protein1103:
2.04
GRMZM2G060906
    Gene Product: December 27th, 2016
Gene Model: April 25th, 2021
3 years agommp167  :
2.04
GRMZM2G050435
    Variation: April 25th, 2021
Gene Model: February 14th, 2018
3 years agoAI691686  :
2.04 - 2.04
GRMZM2G002903
    Variation: April 25th, 2021
Gene Model: March 13th, 2020
3 years agoflz11 FCS-like zinc finger11:
2.02
GRMZM2G014009
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: April 23rd, 2021
3 years agoIDP4006  :
2.02
GRMZM2G076204
    Variation: March 31st, 2005
Gene Model: April 23rd, 2021
3 years agoIDP3987  :
2.01
GRMZM2G009413
    Variation: March 31st, 2005
Gene Model: April 21st, 2021
3 years agoumc1285  :
2.07
GRMZM2G050861
Tumova, L et al. 2018. PLoS One 13:e0197870     Reference: April 20th, 2021
Variation: September 1st, 2003
Gene Model: March 15th, 2020
3 years agoumc1292  :
1.01
GRMZM2G176604
Tumova, L et al. 2018. PLoS One 13:e0197870     Reference: April 20th, 2021
Variation: October 12th, 2016
Gene Model: October 12th, 2016
3 years agobsk8 brassinosteroid-signaling kinase8:
1.11
GRMZM2G177445
Liu, L et al. 2021. New Phytol pp.doi: 10.1111/nph.17403     Reference: April 20th, 2021
Gene Product: May 13th, 2014
Gene Model: February 16th, 2020
3 years agobak1 brassinosteroid insensitive1-associated receptor kinase like1:
 
GRMZM2G145720
Tumova, L et al. 2018. PLoS One 13:e0197870     Reference: April 20th, 2021
Gene Product: January 18th, 2021
Gene Model: November 21st, 2015
3 years agobsk4 brassinosteroid-signaling kinase4:
 
GRMZM2G026767
Liu, L et al. 2021. New Phytol pp.doi: 10.1111/nph.17403     Reference: April 20th, 2021
Gene Product: May 13th, 2014
Gene Model: April 20th, 2021
3 years agobsk6 brassinosteroid-signaling kinase6:
 
   Liu, L et al. 2021. New Phytol pp.doi: 10.1111/nph.17403     Reference: April 20th, 2021
Gene Product: May 13th, 2014
3 years agobsk7 brassinosteroid-signaling kinase7:
 
GRMZM2G164224
Liu, L et al. 2021. New Phytol pp.doi: 10.1111/nph.17403     Reference: April 20th, 2021
Gene Product: May 13th, 2014
Gene Model: April 20th, 2021
3 years agopco086679  :
7.01
GRMZM2G132568
Tumova, L et al. 2018. PLoS One 13:e0197870     Reference: April 20th, 2021
Variation: September 25th, 2007
Gene Model: July 13th, 2020
3 years agoibh2 increased leaf inclination1-binding bhlh 2:
10.07
GRMZM2G084576
Tumova, L et al. 2018. PLoS One 13:e0197870   AT2G43060 (TAIR) Reference: April 20th, 2021
Gene Product: September 14th, 2016
Gene Model: December 20th, 2017
3 years agoppr51 pentatricopeptide repeat protein51:
1.07
GRMZM2G030594
    Gene Product: December 27th, 2016
Gene Model: April 16th, 2021
3 years agocold2 cold rsponsive2:
 
GRMZM2G417866
Jin, Y-N et al. 2021. Physiology and Molecular Biology of Plants 27:619-632     Reference: April 15th, 2021
Gene Product: April 15th, 2021
Gene Model: April 15th, 2021
3 years agoumc1222  :
1.01 - 1.02
GRMZM2G056870
Su, S-Z et al. 2014. J Integ Agric 13:1216-1229     Reference: April 14th, 2021
Variation: September 29th, 2016
Gene Model: September 29th, 2016
3 years agoumc107b(croc)  :
5.01
GRMZM2G090172
Su, S-Z et al. 2014. J Integ Agric 13:1216-1229     Reference: April 14th, 2021
Gene Product: September 1st, 2003
Gene Model: June 15th, 2018
3 years agovq30 VQ motif-transcription factor30:
 
GRMZM2G346837
Su, S-Z et al. 2014. J Integ Agric 13:1216-1229     Reference: April 14th, 2021
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
3 years agovq8 VQ motif-transcription factor8:
1.05
GRMZM2G420630
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Variation: March 31st, 2005
Gene Model: April 14th, 2021
3 years agoIDP264  :
3.06
GRMZM2G096920
Su, S-Z et al. 2014. J Integ Agric 13:1216-1229     Reference: April 14th, 2021
Variation: March 31st, 2005
Gene Model: February 25th, 2019
3 years agobzip127 bZIP-transcription factor 127:
1.06
GRMZM2G175280
Su, S-Z et al. 2014. J Integ Agric 13:1216-1229     Reference: April 14th, 2021
Variation: September 6th, 2017
Gene Model: September 6th, 2017
3 years agomca1 metacaspase1:
 
GRMZM2G155422
Ma, SJ et al. 2021. Plant Signal Behav pp.doi: 10.1080/15592324.2021.1906574     Reference: April 13th, 2021
Gene Product: October 27th, 2020
Gene Model: October 27th, 2020
3 years agomca2 metacaspase2:
 
GRMZM2G035928
Ma, SJ et al. 2021. Plant Signal Behav pp.doi: 10.1080/15592324.2021.1906574     Reference: April 13th, 2021
Gene Product: October 27th, 2020
Gene Model: October 27th, 2020
3 years agomca3 metacaspase3:
 
GRMZM2G120069
Ma, SJ et al. 2021. Plant Signal Behav pp.doi: 10.1080/15592324.2021.1906574     Reference: April 13th, 2021
Gene Product: October 27th, 2020
Gene Model: October 27th, 2020
3 years agomca4 metacaspase4:
 
GRMZM2G120079
Ma, SJ et al. 2021. Plant Signal Behav pp.doi: 10.1080/15592324.2021.1906574     Reference: April 13th, 2021
Gene Product: October 27th, 2020
Gene Model: October 27th, 2020
3 years agomca6 metacaspase6:
 
GRMZM2G132238
Ma, SJ et al. 2021. Plant Signal Behav pp.doi: 10.1080/15592324.2021.1906574     Reference: April 13th, 2021
Gene Product: October 27th, 2020
Gene Model: October 27th, 2020
3 years agomca8 metacaspase8:
 
GRMZM2G320206
Ma, SJ et al. 2021. Plant Signal Behav pp.doi: 10.1080/15592324.2021.1906574     Reference: April 13th, 2021
Gene Product: October 27th, 2020
Gene Model: October 27th, 2020
3 years agozim31 ZIM-transcription factor 31:
 
   Han, Y; Luthe, DS. 2021. BMC Genomics 22:256     Reference: April 12th, 2021
Gene Product: February 24th, 2021
3 years agoppr38 pentatricopeptide repeat protein38:
1.05
GRMZM2G333641
    Gene Product: December 27th, 2016
Gene Model: April 10th, 2021
3 years agohmt2 homocysteine S-methyltransferase 2:
 
GRMZM2G117240
Ranocha, P et al. 2001. Plant J 25:575-584     Reference: September 1st, 2003
Gene Product: July 19th, 2004
Variation: April 10th, 2021
Gene Model: April 2nd, 2020
3 years agolimtf1 LIM-transcription factor 1:
1.03
GRMZM2G128206
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: December 16th, 2019
Variation: April 10th, 2021
Gene Model: February 12th, 2019
3 years agoIDP3868  :
1.11
GRMZM2G012280
    Variation: April 10th, 2021
Gene Model: March 24th, 2021
3 years agomiel1 MYB30-interacting E3 ligase1:
 
GRMZM2G056270
Karre, S et al. 2021. Mol Plant Pathol pp.doi: 10.1111/mpp.13057   AT5G18650 (TAIR) Reference: April 8th, 2021
Gene Product: March 26th, 2020
Gene Model: April 8th, 2021
3 years agoIDP252  :
1.04
GRMZM2G084063
    Variation: March 31st, 2005
Gene Model: April 8th, 2021
3 years agoIDP1461  :
1.02
AC186417.3_FG002
    Variation: March 31st, 2005
Gene Model: April 7th, 2021
3 years agoIDP1605  :
1.05
GRMZM2G162537
    Variation: March 31st, 2005
Gene Model: April 7th, 2021
3 years agoppr71 pentatricopeptide repeat protein71:
1.10
GRMZM2G149681
    Gene Product: December 27th, 2016
Gene Model: March 31st, 2021
3 years agoaaap26 amino acid/auxin permease26:
 
GRMZM2G476954
Sheng, L et al. 2014. J Proteomics Bioinform 7:23-33     Reference: March 31st, 2021
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
3 years agoaaap27 amino acid/auxin permease27:
 
GRMZM2G066428
Sheng, L et al. 2014. J Proteomics Bioinform 7:23-33     Reference: March 31st, 2021
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
3 years agoaaap30 amino acid/auxin permease30:
 
GRMZM2G427319
Sheng, L et al. 2014. J Proteomics Bioinform 7:23-33     Reference: March 31st, 2021
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
3 years agoaaap34 amino acid/auxin permease34:
 
GRMZM2G332562
Sheng, L et al. 2014. J Proteomics Bioinform 7:23-33     Reference: March 31st, 2021
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
3 years agoaaap37 amino acid/auxin permease37:
 
GRMZM2G083788
Sheng, L et al. 2014. J Proteomics Bioinform 7:23-33     Reference: March 31st, 2021
Gene Product: March 31st, 2021
Gene Model: March 30th, 2021
3 years agoaaap47 amino acid/auxin permease47:
 
GRMZM2G134888
Sheng, L et al. 2014. J Proteomics Bioinform 7:23-33     Reference: March 31st, 2021
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
3 years agoaaap51 amino acid/auxin permease51:
 
GRMZM5G894233
Sheng, L et al. 2014. J Proteomics Bioinform 7:23-33     Reference: March 31st, 2021
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
3 years agoaaap58 amino acid/auxin permease58:
 
GRMZM2G150406
Sheng, L et al. 2014. J Proteomics Bioinform 7:23-33     Reference: March 31st, 2021
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
3 years agoaaap61 amino acid/auxin permease61:
 
GRMZM2G087635
Sheng, L et al. 2014. J Proteomics Bioinform 7:23-33     Reference: March 31st, 2021
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
3 years agoaaap63 amino acid/auxin permease63:
 
GRMZM2G105192
Sheng, L et al. 2014. J Proteomics Bioinform 7:23-33     Reference: March 31st, 2021
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
3 years agoaaap70 amino acid/auxin permease70:
 
GRMZM2G455128
Sheng, L et al. 2014. J Proteomics Bioinform 7:23-33     Reference: March 31st, 2021
Gene Product: March 31st, 2021
Gene Model: March 31st, 2021
3 years agoflz26 FCS-like zinc finger26:
5.06
GRMZM5G874697
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: July 12th, 2018
3 years agoflz16 FCS-like zinc finger16:
4.01
GRMZM2G062160
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: May 9th, 2018
3 years agoflz21 FCS-like zinc finger21:
4.06
GRMZM2G080959
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: May 9th, 2018
3 years agopld2 phospholipase D2:
 
GRMZM2G061969
Blein-Nicolas, M, et al. 2020. Genome Res. 0:doi: 10.1101/gr.255224.119     Reference: March 29th, 2021
Gene Product: August 9th, 2016
Gene Model: August 9th, 2016
3 years agoflz1 FCS-like zinc finger1:
 
GRMZM2G496991
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz2 FCS-like zinc finger2:
 
GRMZM2G416156
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz3 FCS-like zinc finger3:
 
GRMZM2G129879
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz5 FCS-like zinc finger5:
 
GRMZM2G040821
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz6 FCS-like zinc finger6:
 
GRMZM2G322817
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz7 FCS-like zinc finger7:
 
GRMZM2G024517
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz8 FCS-like zinc finger8:
 
   Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
3 years agoflz9 FCS-like zinc finger9:
 
GRMZM2G163067
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz10 FCS-like zinc finger10:
 
GRMZM2G098099
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz13 FCS-like zinc finger13:
 
   Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
3 years agoflz17 FCS-like zinc finger17:
 
GRMZM2G152631
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz18 FCS-like zinc finger18:
 
AC197047.3_FG001
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz19 FCS-like zinc finger19:
 
GRMZM2G164098
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz20 FCS-like zinc finger20:
 
GRMZM2G064626
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz22 FCS-like zinc finger22:
 
GRMZM2G016948
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz23 FCS-like zinc finger23:
 
GRMZM2G176748
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz24 FCS-like zinc finger24:
 
GRMZM2G022181
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz27 FCS-like zinc finger27:
 
GRMZM2G057717
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz28 FCS-like zinc finger28:
 
GRMZM2G335685
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz30 FCS-like zinc finger30:
 
GRMZM2G009080
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz31 FCS-like zinc finger31:
 
GRMZM2G166692
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz33 FCS-like zinc finger33:
 
GRMZM2G171752
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz34 FCS-like zinc finger34:
 
GRMZM2G425482
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz36 FCS-like zinc finger36:
 
AC233979.1_FG007
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz37 FCS-like zinc finger37:
 
AC233979.1_FG008
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: March 30th, 2021
3 years agoflz25 FCS-like zinc finger25:
5.05
GRMZM2G056988
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Variation: March 31st, 2005
Gene Model: May 19th, 2020
3 years agoflz4 FCS-like zinc finger4:
1.07
GRMZM5G844703
Chen, SQ et al. 2021. Int J Mol Sci 22:3529     Reference: March 30th, 2021
Gene Product: March 29th, 2021
Gene Model: February 12th, 2020
3 years agoIDP4018  :
1.09
GRMZM2G127559
    Variation: March 31st, 2005
Gene Model: March 27th, 2021
3 years agoIDP4048  :
1.02
GRMZM2G091543
    Variation: March 31st, 2005
Gene Model: March 27th, 2021
3 years agoIDP4052  :
1.06
GRMZM2G129597
    Variation: March 31st, 2005
Gene Model: March 27th, 2021
3 years agotlc14 TRAM/LAG/CRN8 14:
8.01
GRMZM2G020148
Si, WN et al. 2019. Int J Mol Sci 20:5484     Reference: November 4th, 2019
Gene Product: November 4th, 2019
Variation: March 26th, 2021
Gene Model: September 14th, 2018
3 years agoAY109876  :
10.04
GRMZM2G451716
    Variation: July 29th, 2004
Gene Model: March 26th, 2021
3 years agodur3 degradation of urea ortholog3:
 
AC202439.3_FG006
Buoso, S et al. 2021. Plant Physiol Biochem pp.doi: 10.1016/j.plaphy.2021.03.037     Reference: March 25th, 2021
Gene Product: March 25th, 2021
Gene Model: January 24th, 2020
3 years agoIDP3783  :
1.02
GRMZM2G012102
    Variation: March 31st, 2005
Gene Model: March 24th, 2021
3 years agopco108608a  :
1.11
GRMZM2G073511
    Variation: March 24th, 2021
Gene Model: February 15th, 2020
3 years agoppr470 pentatricopeptide repeat protein470:
 
GRMZM5G882758
    Gene Product: December 27th, 2016
Gene Model: March 22nd, 2021
3 years agoumc1430  :
9.02
GRMZM2G156027
    Variation: September 1st, 2003
Gene Model: March 21st, 2021
3 years agoumc1494  :
9.04
GRMZM2G003738
    Variation: September 1st, 2003
Gene Model: March 21st, 2021
3 years agoumc1764  :
9.02
GRMZM2G067646
    Variation: September 1st, 2003
Gene Model: March 21st, 2021
3 years agoumc1958  :
9.02 - 9.02
GRMZM2G151913
    Variation: September 1st, 2003
Gene Model: March 21st, 2021
3 years agoumc1387  :
9.04 - 9.05
GRMZM2G110233
    Variation: September 25th, 2007
Gene Model: March 20th, 2021
3 years agoumc1417  :
9.04
GRMZM2G103270
    Variation: September 1st, 2003
Gene Model: March 20th, 2021
3 years agoumc1420  :
9.03
GRMZM2G031479
    Variation: September 1st, 2003
Gene Model: March 20th, 2021
3 years agofha17 FHA-transcription factor 17:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Variation: March 20th, 2021
3 years agoumc1327  :
8.01
GRMZM2G095114
    Variation: September 1st, 2003
Gene Model: March 19th, 2021
3 years agoumc1617  :
8.03
GRMZM2G050364
    Variation: September 1st, 2003
Gene Model: March 19th, 2021
3 years agoumc1665  :
8.06
GRMZM2G090719
    Variation: September 1st, 2003
Gene Model: March 19th, 2021
3 years agoumc1728  :
8.06
GRMZM2G470942
    Variation: September 1st, 2003
Gene Model: March 19th, 2021
3 years agobnlg1638  :
3.04
GRMZM2G104829
    Variation: March 18th, 2021
Gene Model: March 22nd, 2018
3 years agoumc1174  :
3.05
AC210168.4_FG003
    Variation: March 18th, 2021
Gene Model: March 30th, 2018
3 years agoumc1757  :
4.01
GRMZM5G877647
    Variation: March 18th, 2021
Gene Model: June 8th, 2018
3 years agoumc1780  :
3.00
GRMZM2G153138
    Variation: March 18th, 2021
Gene Model: April 2nd, 2018
3 years agoumc2085  :
2.08
GRMZM2G327595
Liu, J et al. 2015. J Integr Plant Biol 57:943-953     Reference: November 11th, 2020
Variation: March 18th, 2021
Gene Model: February 23rd, 2018
3 years agoras11E3 ras-related protein11E3:
5.03
GRMZM2G122805
    Variation: March 18th, 2021
Gene Model: June 23rd, 2018
3 years agoppr*-GRMZM2G475897 pentatricopeptide repeat*-GRMZM2G475897:
 
GRMZM2G475897
Lv, HY et al. 2021. PLoS One 16:e0244591   AT1G18900 (TAIR) Reference: March 18th, 2021
Gene Product: December 27th, 2016
Gene Model: December 9th, 2015
3 years agovq33 VQ motif-transcription factor33:
 
GRMZM2G420715
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Variation: March 18th, 2021
Gene Model: August 31st, 2019
3 years agoumc1660  :
7.03
GRMZM2G001639
    Variation: September 1st, 2003
Gene Model: March 17th, 2021
3 years agoAY110055  :
3.06
GRMZM2G014452
    Variation: March 17th, 2021
Gene Model: March 20th, 2018
3 years agoopr4 12-oxo-phytodienoic acid reductase4:
8.05
   Pingault, L et al. 2021. BMC Plant Biology 21:138     Reference: March 17th, 2021
Gene Product: September 3rd, 2010
Variation: November 5th, 2010
3 years agoIDP624  :
3.09
GRMZM2G019386
    Variation: March 17th, 2021
Gene Model: February 25th, 2019
3 years agoumc1342  :
7.04
GRMZM2G066197
    Variation: September 1st, 2003
Gene Model: March 16th, 2021
3 years agoumc1481  :
7.03
GRMZM2G149520
    Variation: September 1st, 2003
Gene Model: March 16th, 2021
3 years agoumc1195  :
6.02
GRMZM2G700968
    Variation: September 1st, 2003
Gene Model: March 14th, 2021
3 years agoumc1621  :
6.07
GRMZM5G893630
    Variation: September 1st, 2003
Gene Model: March 14th, 2021
3 years agoumc1751  :
6.05
GRMZM2G323888
    Variation: September 1st, 2003
Gene Model: March 14th, 2021
3 years agoumc1795  :
6.05
GRMZM2G142363
    Variation: September 1st, 2003
Gene Model: March 14th, 2021
3 years agoumc1092  :
5.04
GRMZM2G360589
    Variation: September 1st, 2003
Gene Model: March 12th, 2021
3 years agoumc1192  :
5.04
GRMZM2G386817
    Variation: September 1st, 2003
Gene Model: March 12th, 2021
3 years agoumc1731  :
5.03
GRMZM2G131988
    Variation: September 1st, 2003
Gene Model: March 12th, 2021
3 years agotcl1 tapetal cell layer1:
 
   Yadava, P et al. 2021. Plant Reproduction pp.doi: 10.1007/s00497-021-00406-3     Reference: March 11th, 2021
Variation: February 12th, 2013
3 years agoumc1820  :
4.09
GRMZM2G078862
    Variation: September 1st, 2003
Gene Model: March 8th, 2021
3 years agoumc1317  :
4.05
GRMZM2G448456
    Variation: September 1st, 2003
Gene Model: March 7th, 2021
3 years agoumc1532  :
4.10
GRMZM2G111293
    Variation: September 1st, 2003
Gene Model: March 7th, 2021
3 years agoumc1750  :
3.04
GRMZM2G400223
    Variation: September 1st, 2003
Gene Model: March 5th, 2021
3 years agomo1 molybdate transporter1:
 
GRMZM2G083156
Wu, D et al. 2021. G3 pp.jkab059     Reference: March 5th, 2021
Gene Product: June 12th, 2020
Variation: June 12th, 2020
Gene Model: June 12th, 2020
3 years agomagi45551  :
3.06
   Wu, D et al. 2021. G3 pp.jkab059     Reference: March 5th, 2021
Variation: March 31st, 2005
3 years agoumc1425  :
3.04
AC190933.3_FG004
    Variation: September 1st, 2003
Gene Model: March 4th, 2021
3 years agoIDP798  :
3.09
GRMZM2G036050
Zhang, XB et al. 2021. Genes & Genomics doi: 10.1007/s13258-021-01067-2   AT5G23880 (TAIR) Reference: March 3rd, 2021
Variation: March 31st, 2005
Gene Model: February 25th, 2019
3 years agoumc1749  :
2.06
GRMZM2G336456
    Variation: September 1st, 2003
Gene Model: March 2nd, 2021
3 years agolac23 laccase23:
 
GRMZM2G094375
Kim, SB et al. 2021. Mol Plant Pathol pp.doi: 10.1111/mpp.13040     Reference: March 1st, 2021
Gene Product: March 31st, 2018
Gene Model: March 3rd, 2020
3 years agosbei1 starch branching enzyme IIb interacting protein1:
 
GRMZM2G089553
Zhong, YY et al. 2021. J Agric Food Chem pp.doi: 10.1021/acs.jafc.0c07354     Reference: March 1st, 2021
Gene Product: June 1st, 2020
Gene Model: June 1st, 2020
3 years agohct14 hydroxycinnamoyltransferase14:
 
   Kim, SB et al. 2021. Mol Plant Pathol pp.doi: 10.1111/mpp.13040     Reference: March 1st, 2021
Gene Product: November 7th, 2015
3 years agoumc1410  :
2.05 - 2.05
GRMZM2G412441
    Variation: September 1st, 2003
Gene Model: February 28th, 2021
3 years agoumc1007  :
2.05 - 2.05
GRMZM2G161087
    Variation: September 1st, 2003
Gene Model: February 27th, 2021
3 years agofus6 fusca homolog:
1.01
GRMZM2G062210
Zhang, XG et al. 2021. BMC Plant Biology 21:118     Reference: February 26th, 2021
Variation: September 1st, 2003
Gene Model: July 27th, 2016
3 years agocsu70  :
6.01
GRMZM2G080546
Cruz, DF, et al. 2020. 16:e9667     Reference: February 25th, 2021
Variation: September 1st, 2003
Gene Model: December 14th, 2019
3 years agogpa3 glyceraldehyde-3-phosphate dehydrogenase3:
 
GRMZM5G821433
Qu, JZ et al. 2021. Mol Genet Genomics pp.doi: 10.1007/s00438-021-01761-6     Reference: February 26th, 2021
Gene Product: September 1st, 2003
Gene Model: February 26th, 2021
3 years agogpa4 glyceraldehyde-3-phosphate dehydrogenase4:
 
GRMZM2G162845
    Gene Product: September 1st, 2003
Gene Model: February 26th, 2021
3 years agomsb1 membrane steroid-binding protein1:
 
GRMZM2G119782
Qu, JZ et al. 2021. Mol Genet Genomics pp.doi: 10.1007/s00438-021-01761-6     Reference: February 26th, 2021
Gene Product: February 26th, 2021
Gene Model: February 26th, 2021
3 years agoppr448 pentatricopeptide repeat-containing protein448:
 
GRMZM2G303587
Qu, JZ et al. 2021. Mol Genet Genomics pp.doi: 10.1007/s00438-021-01761-6     Reference: February 26th, 2021
Gene Product: December 27th, 2016
Gene Model: February 26th, 2021
3 years agoumc1353b  :
 
       Variation: February 25th, 2021
3 years agorp7 resistance to Puccinia sorghi7:
 
   Quade, A et al. 2021. Phytopathology pp.doi: 10.1094/PHYTO-11-20-0524-R     Reference: February 24th, 2021
Variation: September 1st, 2003
3 years agozim6 ZIM-transcription factor 6:
 
   Sun, PD et al. 2021. PLoS One 16:e0247271     Reference: February 23rd, 2021
Gene Product: February 24th, 2021
3 years agorp8 resistance to Puccinia sorghi8:
6.04
   Quade, A et al. 2021. Phytopathology pp.doi: 10.1094/PHYTO-11-20-0524-R     Reference: February 24th, 2021
Variation: June 29th, 2005
3 years agozim45 ZIM-transcription factor 45:
 
   Sun, PD et al. 2021. PLoS One 16:e0247271     Reference: February 23rd, 2021
Gene Product: February 24th, 2021
3 years agobnlg1811  :
1.04
GRMZM2G142390
    Variation: September 29th, 2010
Gene Model: February 23rd, 2021
3 years agomrl1 midribless1:
 
   Strable, J. 2021. Mol Breed 41:19     Reference: February 22nd, 2021
Variation: September 1st, 2003
3 years agosem1 semaphore1:
9.00 - 9.03
   Strable, J. 2021. Mol Breed 41:19     Reference: February 22nd, 2021
Variation: May 19th, 2006
3 years agocle6 clavata3/esr-related6:
3.07
   Je, BI et al. 2016. Nature Genetics 48:785-791     Reference: September 17th, 2016
Gene Product: February 22nd, 2021
3 years agocr1 crinkly leaves1:
3.02
   Strable, J. 2021. Mol Breed 41:19     Reference: February 22nd, 2021
Variation: September 1st, 2003
3 years agodvd1 developmental disaster1:
5.03
   Strable, J. 2021. Mol Breed 41:19     Reference: February 22nd, 2021
Variation: March 20th, 2009
3 years agolxm1 lax midrib1:
3.06
   Strable, J. 2021. Mol Breed 41:19     Reference: February 22nd, 2021
Variation: September 1st, 2003
3 years agocle18 clavata3/esr-related18:
5.03
AC233959.1_FG003
Je, BI et al. 2016. Nature Genetics 48:785-791     Reference: September 17th, 2016
Gene Product: February 22nd, 2021
Variation: September 1st, 2003
Gene Model: June 27th, 2018
3 years agosdw2 semi-dwarf2:
3.05
   Strable, J. 2021. Mol Breed 41:19     Reference: February 22nd, 2021
Variation: July 7th, 2009
3 years agoumc1892  :
3.01
GRMZM2G102770
Je, BI et al. 2016. Nature Genetics 48:785-791     Reference: September 17th, 2016
Gene Product: February 22nd, 2021
Gene Model: April 2nd, 2018
3 years agopdlk2 pyruvate dehydrogenase (lipoamide) kinase2:
9.04
GRMZM2G400806
Thelen, J et al. 1998. J Biol Chem 273:26618-26623     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: February 22nd, 2021
3 years agonld1 narrow leaf dwarf1:
 
   Strable, J. 2021. Mol Breed 41:19     Reference: February 22nd, 2021
Variation: August 7th, 2007
3 years agod10 dwarf plant10:
2.08 - 2.09
   Strable, J. 2021. Mol Breed 41:19     Reference: February 22nd, 2021
Variation: September 1st, 2003
3 years agona3 nana3:
4.05
   Strable, J. 2021. Mol Breed 41:19     Reference: February 22nd, 2021
Variation: August 2nd, 2011
3 years agod11 dwarf11:
 
   Strable, J. 2021. Mol Breed 41:19     Reference: February 22nd, 2021
Variation: June 18th, 2013
3 years agocle2 clavata3/esr-related2:
 
AC198414.2_FG001
Je, BI et al. 2016. Nature Genetics 48:785-791     Reference: September 17th, 2016
Gene Product: February 22nd, 2021
Gene Model: December 22nd, 2018
3 years agoGRMZM2G480050  :
 
GRMZM2G480050
Je, BI et al. 2016. Nature Genetics 48:785-791     Reference: September 17th, 2016
Gene Product: February 22nd, 2021
Gene Model: September 17th, 2016
3 years agocle8 clavata3/esr-related8:
 
AC199043.2_FG002
Je, BI et al. 2016. Nature Genetics 48:785-791     Reference: September 17th, 2016
Gene Product: February 22nd, 2021
Gene Model: December 22nd, 2018
3 years agoGRMZM2G423617  :
 
GRMZM2G423617
Je, BI et al. 2016. Nature Genetics 48:785-791     Reference: September 17th, 2016
Gene Product: February 22nd, 2021
Gene Model: September 17th, 2016
3 years agocle13 clavata3/esr-related13:
 
AC212347.3_FG002
Je, BI et al. 2016. Nature Genetics 48:785-791     Reference: September 17th, 2016
Gene Product: February 22nd, 2021
Gene Model: December 22nd, 2018
3 years agocle15 clavata3/esr-related15:
 
AC210731.3_FG002
Je, BI et al. 2016. Nature Genetics 48:785-791     Reference: September 17th, 2016
Gene Product: February 22nd, 2021
Gene Model: March 18th, 2019
3 years agocle20 clavata3/esr-related20:
 
GRMZM2G008651
Je, BI et al. 2016. Nature Genetics 48:785-791     Reference: September 17th, 2016
Gene Product: February 22nd, 2021
Gene Model: September 17th, 2016
3 years agocle21 clavata3/esr-related21:
 
GRMZM5G826174
Je, BI et al. 2016. Nature Genetics 48:785-791     Reference: September 17th, 2016
Gene Product: February 22nd, 2021
Gene Model: September 17th, 2016
3 years agocle23 clavata3/esr-related23:
 
GRMZM2G098918
Je, BI et al. 2016. Nature Genetics 48:785-791     Reference: September 17th, 2016
Gene Product: February 22nd, 2021
Gene Model: September 17th, 2016
3 years agocle29 clavata3/esr-related29:
 
AC206319.2_FG004
Je, BI et al. 2016. Nature Genetics 48:785-791     Reference: September 17th, 2016
Gene Product: February 22nd, 2021
Gene Model: December 22nd, 2018
3 years agopve1 punctate vascular expression1:
5.03
AC211276.4_FG008
Strable, J. 2021. Mol Breed 41:19     Reference: February 22nd, 2021
Variation: June 16th, 2012
Gene Model: June 15th, 2012
3 years agovq42 VQ motif-transcription factor42:
 
GRMZM2G151909
Guo, Y et al. 2021. Crop J doi: 10.1016/j.cj.2021.01.002     Reference: February 22nd, 2021
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
3 years agocle5 clavata3/esr-related5:
5.01
GRMZM5G875999
Je, BI et al. 2016. Nature Genetics 48:785-791     Reference: September 17th, 2016
Gene Product: February 22nd, 2021
Variation: March 31st, 2005
Gene Model: September 17th, 2016
3 years agoIDP1653  :
9.04
GRMZM2G462803
    Variation: March 31st, 2005
Gene Model: February 22nd, 2021
3 years agoumc1083  :
6.02
GRMZM2G474777
    Variation: September 1st, 2003
Gene Model: February 21st, 2021
3 years agoAW244963  :
8.03
GRMZM2G071219
    Variation: July 29th, 2004
Gene Model: February 21st, 2021
3 years agoIDP1462  :
7.00
GRMZM2G369284
    Variation: March 31st, 2005
Gene Model: February 21st, 2021
3 years agoIDP2464  :
7.02
GRMZM5G855005
    Variation: March 31st, 2005
Gene Model: February 21st, 2021
3 years agoIDP639  :
7.02
GRMZM2G060118
    Variation: March 31st, 2005
Gene Model: February 21st, 2021
3 years agopeamt1 phosphoethanolamine N-methyltransferase1:
 
GRMZM2G122296
Niu, G-L et al. 2018. Int. J. Mol. Sci. 191:doi: 10.3390/ijms19010191     Reference: January 9th, 2018
Gene Product: February 18th, 2021
Gene Model: January 9th, 2018
3 years agoIDP1467  :
5.04
GRMZM5G852608
    Variation: March 31st, 2005
Gene Model: February 18th, 2021
3 years agoIDP1676  :
4.06
AC204891.4_FG001
    Variation: March 31st, 2005
Gene Model: February 17th, 2021
3 years agoupd1 uroporphyrinogen decarboxylase1:
 
   Li, TC et al. 2021. PeerJ 9:e10567     Reference: February 16th, 2021
Gene Product: September 1st, 2003
3 years agooxmt1 oxo-glutarate/malate transporter1:
 
GRMZM2G383088
Weissmann, S et al. 2021. Genome Biology and Evolution 13:evaa251     Reference: February 16th, 2021
Gene Product: August 18th, 2014
Gene Model: August 18th, 2014
3 years agoIDP697  :
3.04
GRMZM2G463580
    Variation: March 31st, 2005
Gene Model: February 16th, 2021
3 years agoIDP2390  :
2.02
GRMZM5G805232
    Variation: March 31st, 2005
Gene Model: February 15th, 2021
3 years agoIDP591  :
2.03
GRMZM2G149323
    Variation: March 31st, 2005
Gene Model: February 14th, 2021
3 years agoIDP209  :
1.02
GRMZM2G169360
    Variation: March 31st, 2005
Gene Model: February 12th, 2021
3 years agoara3 ras-related protein ARA-3:
 
GRMZM2G061900
Bu, SH et al. 2021. Frontiers in Plant Genetics and Genomics 11:590012     Reference: February 4th, 2021
Variation: January 17th, 2011
Gene Model: June 1st, 2017
3 years agocyt1 cytidyltransferase1:
 
GRMZM2G092018
Yang, P et al. 2021. Plant J pp.doi: 10.1111/tpj.15183     Reference: February 3rd, 2021
Gene Product: February 3rd, 2021
Gene Model: February 3rd, 2021
3 years agoret1 reticulon-like1:
 
GRMZM2G091973
Yang, P et al. 2021. Plant J pp.doi: 10.1111/tpj.15183     Reference: February 3rd, 2021
Gene Product: February 6th, 2020
Gene Model: February 3rd, 2021
3 years agorlk9 receptor-like protein kinase9:
 
GRMZM2G456487
Yang, P et al. 2021. Plant J pp.doi: 10.1111/tpj.15183     Reference: February 3rd, 2021
Gene Product: July 10th, 2019
Gene Model: February 3rd, 2021
3 years agolic1 lichenase1:
 
GRMZM2G041961
Kraemer, FJ et al. 2021. Plant Physiol pp.doi: 10.1093/plphys/kiab009     Reference: February 1st, 2021
Gene Product: February 1st, 2021
Gene Model: January 7th, 2020
3 years agoaro1 armadillo repeat only1:
 
GRMZM2G043353
Gebert, M et al. 2008. Plant Cell 20:2798-2814   AT5G66200 (TAIR) Reference: February 1st, 2021
Gene Product: February 1st, 2021
Gene Model: February 1st, 2021
3 years agoaro3 armadillo repeat only3:
 
GRMZM2G163242
Gebert, M et al. 2008. Plant Cell 20:2798-2814   AT4G34940 (TAIR) Reference: February 1st, 2021
Gene Product: February 1st, 2021
Gene Model: February 1st, 2021
3 years agoaro4 armadillo repeat only4:
 
GRMZM2G163751
Gebert, M et al. 2008. Plant Cell 20:2798-2814   AT4G34940 (TAIR) Reference: February 1st, 2021
Gene Product: February 1st, 2021
Gene Model: February 1st, 2021
3 years agolic3 lichenase3:
 
GRMZM2G014723
Kraemer, FJ et al. 2021. Plant Physiol pp.doi: 10.1093/plphys/kiab009     Reference: February 1st, 2021
Gene Product: February 1st, 2021
Gene Model: February 1st, 2021
3 years agolic4 lichenase4:
 
GRMZM2G019185
Kraemer, FJ et al. 2021. Plant Physiol pp.doi: 10.1093/plphys/kiab009     Reference: February 1st, 2021
Gene Product: February 1st, 2021
Gene Model: February 1st, 2021
3 years agoGRMZM2G457624  :
 
GRMZM2G457624
Wang, YG et al. 2014. Gene 549:179-185     Reference: January 31st, 2021
Gene Product: January 31st, 2021
Gene Model: January 31st, 2021
3 years agoGRMZM2G544441  :
 
GRMZM2G544441
Wang, YG et al. 2014. Gene 549:179-185     Reference: January 31st, 2021
Gene Product: January 31st, 2021
Gene Model: January 31st, 2021
3 years agoGRMZM2G313754  :
 
GRMZM2G313754
Wang, YG et al. 2014. Gene 549:179-185     Reference: January 31st, 2021
Gene Product: January 31st, 2021
Gene Model: January 31st, 2021
3 years agoGRMZM2G045452  :
 
GRMZM2G045452
Wang, YG et al. 2014. Gene 549:179-185     Reference: January 31st, 2021
Gene Product: January 31st, 2021
Gene Model: January 31st, 2021
3 years agoGRMZM2G051866  :
 
GRMZM2G051866
Wang, YG et al. 2014. Gene 549:179-185     Reference: January 31st, 2021
Gene Product: January 31st, 2021
Gene Model: January 31st, 2021
3 years agoGRMZM2G165788  :
 
GRMZM2G165788
Wang, YG et al. 2014. Gene 549:179-185     Reference: January 31st, 2021
Gene Product: January 31st, 2021
Gene Model: January 31st, 2021
3 years agochls5 chalcone synthase5:
 
GRMZM2G435393
Li, BZ et al. 2021. Plant Soil pp.doi: 10.1007/s11104-020-04814-8     Reference: January 26th, 2021
Gene Product: September 1st, 2003
Gene Model: December 20th, 2020
3 years agoumc2260  :
3.04
GRMZM2G083111
Sun, H et al. 2021. Plant Physiol Biochem pp.doi: 10.1016/j.plaphy.2021.01.031     Reference: January 25th, 2021
Variation: March 31st, 2005
Gene Model: February 23rd, 2019
3 years agosina1 seven in absentia1:
3.00
GRMZM2G309063
Wang, M et al. 2008. DNA Seq 19:206-216     Reference: January 24th, 2021
Gene Product: January 24th, 2021
Variation: March 28th, 2018
Gene Model: March 24th, 2020
3 years agosina2 seven in absentia2:
 
GRMZM2G146354
Wang, M et al. 2008. DNA Seq 19:206-216     Reference: January 24th, 2021
Gene Product: January 24th, 2021
Gene Model: January 24th, 2021
3 years agosina3 seven in absentia3:
5.04
GRMZM2G081075
Wang, M et al. 2008. DNA Seq 19:206-216     Reference: January 24th, 2021
Gene Product: January 24th, 2021
Gene Model: January 24th, 2021
3 years agopco079297  :
2.03
GRMZM2G062554
Warman, C et al. 2021. Plant J pp.doi: 10.1111/tpj.15166     Reference: January 21st, 2021
Variation: January 22nd, 2021
Gene Model: March 11th, 2020
3 years agouce18 ubiquitin-conjugating enzyme18:
 
GRMZM2G038851
Warman, C et al. 2021. Plant J pp.doi: 10.1111/tpj.15166     Reference: January 21st, 2021
Gene Product: December 19th, 2019
Variation: January 22nd, 2021
Gene Model: December 19th, 2019
3 years agomorc1 microrchidia homolog1:
 
AC194405.3_FG021
Warman, C et al. 2021. Plant J pp.doi: 10.1111/tpj.15166     Reference: January 21st, 2021
Variation: January 22nd, 2021
Gene Model: January 21st, 2021
3 years agoppr215 pentatricopeptide repeat protein215:
 
GRMZM2G327263
Wei, KF; Han, P. 2016. Mol Breed 36:170     Reference: December 26th, 2016
Gene Product: December 27th, 2016
Gene Model: January 20th, 2021
3 years agobak5 brassinosteroid insensitive1-associated receptor kinase like5:
3.04
GRMZM2G034855
Ziemanne, S et al. 2018. Nature Plants 4:172-180     Reference: January 18th, 2021
Gene Product: January 18th, 2021
Variation: September 1st, 2003
Gene Model: April 2nd, 2018
3 years agobetl1a basal endosperm transfer layer 1a:
2.09
   Dai, DW et al. 2021. J Integr Plant Biol pp.doi: 10.1111/jipb.13069     Reference: January 16th, 2021
Gene Product: September 1st, 2003
3 years agocyc2 cyclin2:
3.04
   Dai, DW et al. 2021. J Integr Plant Biol pp.doi: 10.1111/jipb.13069     Reference: January 16th, 2021
Gene Product: June 26th, 2009
Variation: January 16th, 2014
3 years agohp3 histidine-containing phosphotransfer protein3:
4.08
GRMZM2G451604
Muniz, LM et al. 2010. BMC Plant Biology 10:84     Reference: January 16th, 2021
Variation: April 4th, 2015
Gene Model: April 4th, 2015
3 years agocyc22 cyclin22:
 
GRMZM2G047637
Dai, DW et al. 2021. J Integr Plant Biol pp.doi: 10.1111/jipb.13069     Reference: January 16th, 2021
Gene Product: June 26th, 2009
Gene Model: November 8th, 2020
3 years agoane1 androgenic embryo1:
4.09
   Dai, DW et al. 2021. J Integr Plant Biol pp.doi: 10.1111/jipb.13069     Reference: January 16th, 2021
Variation: May 11th, 2004
3 years agoane3 androgenic embryo3:
10.03
   Dai, DW et al. 2021. J Integr Plant Biol pp.doi: 10.1111/jipb.13069     Reference: January 16th, 2021
Variation: April 13th, 2007
3 years agoIDP1426  :
8.01
GRMZM2G004006
    Variation: March 31st, 2005
Gene Model: January 16th, 2021
3 years agoIDP397  :
8.01
GRMZM2G051842
    Variation: March 31st, 2005
Gene Model: January 16th, 2021
3 years agoIDP98  :
8.02
GRMZM2G155232
    Variation: March 31st, 2005
Gene Model: January 16th, 2021
3 years agopyk1 pyruvate kinase1:
1.05
   Kaur, G et al. 2021. Plant Sci pp.doi: 10.1016/j.plantsci.2021.110823     Reference: January 15th, 2021
Gene Product: April 8th, 2011
3 years agopco090876  :
4.08
GRMZM2G111818
Kaur, G et al. 2021. Plant Sci pp.doi: 10.1016/j.plantsci.2021.110823     Reference: January 15th, 2021
Gene Product: November 26th, 2019
Gene Model: November 26th, 2019
3 years agoalt9 alanine aminotransferase9:
7.04
GRMZM2G053999
Kaur, G et al. 2021. Plant Sci pp.doi: 10.1016/j.plantsci.2021.110823     Reference: January 15th, 2021
Gene Product: October 2nd, 2020
Variation: January 13th, 2015
Gene Model: July 23rd, 2014
3 years agoIDP748  :
3.08
GRMZM2G092152
Kaur, G et al. 2021. Plant Sci pp.doi: 10.1016/j.plantsci.2021.110823     Reference: January 15th, 2021
Variation: March 31st, 2005
Gene Model: February 25th, 2019
3 years agoIDP680  :
6.01
GRMZM2G089688
    Variation: January 15th, 2021
Gene Model: January 15th, 2021
3 years agoIDP113  :
4.09
GRMZM2G027479
    Variation: March 31st, 2005
Gene Model: January 14th, 2021
3 years agoIDP1451  :
5.03
GRMZM2G084021
    Variation: March 31st, 2005
Gene Model: January 14th, 2021
3 years agoIDP1625  :
5.05
GRMZM2G001033
    Variation: March 31st, 2005
Gene Model: January 14th, 2021
3 years agoIDP471  :
5.08
GRMZM2G150984
    Variation: March 31st, 2005
Gene Model: January 14th, 2021
3 years agoIDP1684  :
4.06
GRMZM2G137029
    Variation: March 31st, 2005
Gene Model: January 13th, 2021
3 years agouce17 ubiquitin conjugating enzyme17:
9.04
GRMZM2G163398
Wang, HY et al. 2021. Ecotoxicol Environ Safety 211:111909     Reference: January 12th, 2021
Gene Product: December 19th, 2019
Gene Model: November 26th, 2019
3 years agoplc6 phospholipase C6:
1.11
   Zhu, JT et al. 2021. Frontiers in Plant Genetics and Genomics 12:611414     Reference: January 12th, 2021
Gene Product: January 12th, 2021
Variation: September 25th, 2007
3 years agoplc2 phospholipase C2:
 
GRMZM2G114354
Zhu, JT et al. 2021. Frontiers in Plant Genetics and Genomics 12:611414     Reference: January 12th, 2021
Gene Product: January 12th, 2021
Gene Model: January 12th, 2021
3 years agoplc4 phospholipase C4:
 
GRMZM2G137435
Zhu, JT et al. 2021. Frontiers in Plant Genetics and Genomics 12:611414     Reference: January 12th, 2021
Gene Product: January 12th, 2021
Gene Model: January 12th, 2021
3 years agoplc10 phospholipase C10:
 
   Zhu, JT et al. 2021. Frontiers in Plant Genetics and Genomics 12:611414     Reference: January 12th, 2021
Gene Product: January 12th, 2021
3 years agocyc25 cyclin25:
 
GRMZM2G062453
Lara-Nunez, A et al. 2021. Biochimie pp.doi: 10.1016/j.biochi.2020.12.013     Reference: January 11th, 2021
Gene Product: June 26th, 2009
Gene Model: January 11th, 2021
3 years agoumc1385  :
8.03
AC234185.1_FG004
Zhang, N; Huang, XQ. 2021. PLoS One 16:e0245129     Reference: January 6th, 2021
Variation: September 1st, 2003
Gene Model: August 28th, 2019
3 years agopme4 pectin methylesterase4:
 
GRMZM2G060400
Zhang, N; Huang, XQ. 2021. PLoS One 16:e0245129     Reference: January 6th, 2021
Gene Product: September 10th, 2018
Gene Model: June 4th, 2012
3 years agoIDP1417  :
7.00
GRMZM2G019200
Zhong, Y et al. 2021. Genet Resour Crop Evol pp.doi: 10.1007/s10722-020-01085-1     Reference: January 5th, 2021
Variation: March 31st, 2005
Gene Model: January 30th, 2019
3 years agoparp1 poly(ADP-ribose) polymerase1:
8.03
GRMZM2G099231
Muli, JK et al. 2018. Plant 6:8-15     Reference: April 28th, 2018
Gene Product: September 7th, 2018
Variation: August 19th, 2010
Gene Model: January 4th, 2021
3 years agosmr4 siamese-related4:
 
GRMZM2G019353
Dai, DW et al. 2021. Mol Breed 41:2     Reference: January 4th, 2021
Gene Product: March 8th, 2017
Gene Model: March 14th, 2018
3 years agohak14 potassium high-affinity transporter14:
7.03
GRMZM2G139931
Gao, ZF et al. 2020. Genomics, Proteomics & Bioinformatics doi: 10.1016/j.gpb.2020.12.004     Reference: January 2nd, 2021
Gene Product: March 12th, 2020
Variation: September 1st, 2003
Gene Model: September 10th, 2018
3 years agoppr317 pentatricopeptide repeat protein317:
 
GRMZM2G046058
Chen, WW et al. 2020. Plant Cell Physiol pp.doi: 10.1093/pcp/pcaa161     Reference: December 30th, 2020
Gene Product: December 27th, 2016
Gene Model: December 30th, 2020
3 years agotdy1 tie-dyed1:
6.07
GRMZM2G321778
Ferris, AC; Walbot, V. 2021. J. Fungi 7:8     Reference: December 28th, 2020
Variation: September 14th, 2011
Gene Model: July 14th, 2011
3 years agoork2 outward rectifying potassium channel2:
 
GRMZM2G310569
Sun, YL et al. 2018. Sci. Rep. 8:16203     Reference: December 22nd, 2020
Gene Product: February 19th, 2008
Gene Model: December 22nd, 2020
3 years agodba2 DNA binding activity2:
 
GRMZM2G070360
Mallikarjuna, MG et al. 2020. Plants 9:1812     Reference: December 21st, 2020
Variation: September 25th, 2018
Gene Model: September 25th, 2018
3 years agochls4 chalcone synthase4:
 
AC191551.3_FG003
Han, YH et al. 2016. Int J Mol Sci 17:161     Reference: December 20th, 2020
Gene Product: September 1st, 2003
Gene Model: December 20th, 2020
3 years agochls7 chalcone synthase7:
 
GRMZM2G009348
Han, YH et al. 2016. Int J Mol Sci 17:161     Reference: December 20th, 2020
Gene Product: September 1st, 2003
Gene Model: December 20th, 2020
3 years agochls8 chalcone synthase8:
 
GRMZM2G009510
Han, YH et al. 2016. Int J Mol Sci 17:161     Reference: December 20th, 2020
Gene Product: September 1st, 2003
Gene Model: December 20th, 2020
3 years agochls9 chalcone synthase9:
 
GRMZM2G027130
Han, YH et al. 2016. Int J Mol Sci 17:161     Reference: December 20th, 2020
Gene Product: September 1st, 2003
Gene Model: December 20th, 2020
3 years agokan3 kanadi3:
4.05
   Li, N et al. 2020. Int J Mol Sci 21:9506     Reference: December 14th, 2020
Variation: April 4th, 2015
3 years agoumc1323  :
1.05
GRMZM2G100121
Li, N et al. 2020. Int J Mol Sci 21:9506     Reference: December 14th, 2020
Variation: October 18th, 2016
Gene Model: October 20th, 2016
3 years agoburp5 BURP domain-containing protein-RD22-like5:
 
GRMZM2G108422
Li, N et al. 2020. Int J Mol Sci 21:9506     Reference: December 14th, 2020
Gene Product: August 18th, 2017
Gene Model: August 18th, 2017
3 years agopco139551  :
6.05
   Li, N et al. 2020. Int J Mol Sci 21:9506     Reference: December 14th, 2020
Variation: September 25th, 2007
3 years agoumc1386b  :
1.05
GRMZM2G052650
Li, N et al. 2020. Int J Mol Sci 21:9506     Reference: December 14th, 2020
Variation: October 27th, 2016
Gene Model: October 27th, 2016
3 years agotdp1 tyrosyl-DNA phosphodiesterase1:
 
GRMZM2G080174
Mutti, G et al. 2020. Genes 11:1465     Reference: December 7th, 2020
Gene Product: November 8th, 2016
Gene Model: December 7th, 2020
3 years agotdp2 tyrosyl-DNA phosphodiesterase2:
 
GRMZM2G069856
Mutti, G et al. 2020. Genes 11:1465     Reference: December 7th, 2020
Gene Product: November 8th, 2016
Gene Model: December 7th, 2020
3 years agobnlg2122  :
9.01
GRMZM2G124276
Kloiber-Maitz, M et al. 2020. Patent application WO/2020/239680     Reference: December 3rd, 2020
Variation: October 11th, 2018
Gene Model: October 11th, 2018
3 years agoxcl1 extra cell layers1:
 
   Matschi, S, et al. 2020. 0:doi: 10.1002/pld3.282     Reference: December 3rd, 2020
Variation: October 31st, 2020
3 years agohct7 hydroxycinnamoyltransferase7:
 
AC215260.3_FG003
Matschi, S, et al. 2020. 0:doi: 10.1002/pld3.282     Reference: December 3rd, 2020
Gene Product: November 7th, 2015
Gene Model: November 7th, 2015
3 years agomyo4 myosin4:
 
GRMZM2G435294
Kloiber-Maitz, M et al. 2020. Patent application WO/2020/239680     Reference: December 3rd, 2020
Gene Product: September 1st, 2003
Variation: December 3rd, 2020
Gene Model: June 20th, 2020
3 years agowty2 warty2:
 
   Matschi, S, et al. 2020. 0:doi: 10.1002/pld3.282     Reference: December 3rd, 2020
Gene Product: October 31st, 2020
Variation: October 31st, 2020
3 years agoppr458 pentatricopeptide repeat458:
 
GRMZM2G094586
Kloiber-Maitz, M et al. 2020. Patent application WO/2020/239680     Reference: December 3rd, 2020
Gene Product: December 27th, 2016
Variation: December 3rd, 2020
Gene Model: December 3rd, 2020
3 years agowrky141 WRKY-transcription factor 141:
 
GRMZM2G089696
Dou, DD et al. 2020. J Exp Bot pp.doi: 10.1093/jxb/eraa565   LOC_Os03g55164 (MSU/TIGR) Reference: December 3rd, 2020
Gene Product: July 24th, 2017
Gene Model: December 3rd, 2020
3 years agoaae1 acyl-activating enzyme1:
 
GRMZM2G016774
Yang, T et al. 2020. Plant Cell pp.doi: 10.1093/plcell/koaa008     Reference: November 27th, 2020
Gene Product: November 27th, 2020
Gene Model: November 27th, 2020
3 years agotaci1 taciturn1:
 
   Paszkowski, U et al. 2006. Plant J 47:165-173     Reference: November 20th, 2020
Variation: November 21st, 2020
3 years agopram1 precocious arbuscular mycorrhiza1:
 
   Paszkowski, U et al. 2006. Plant J 47:165-173     Reference: November 20th, 2020
Variation: November 21st, 2020
3 years agoaer1 alkenal reductase1:
 
GRMZM2G080650
Wang, Y et al. 2020. Plant Cell Environ pp.doi: 10.1111/pce.13956     Reference: November 21st, 2020
Gene Product: November 21st, 2020
Gene Model: November 21st, 2020
3 years agosro5 similar to RCD one5:
 
GRMZM2G145236
Qin, LM et al. 2020. Plant J pp.doi: 10.1111/tpj.15083   AT1G32230 (TAIR) Reference: November 20th, 2020
Gene Product: September 7th, 2018
Gene Model: August 10th, 2018
3 years agosro2 similar to RCD one2:
 
GRMZM5G866843
Qin, LM et al. 2020. Plant J pp.doi: 10.1111/tpj.15083     Reference: November 20th, 2020
Gene Product: September 7th, 2018
Variation: February 13th, 2019
Gene Model: August 10th, 2018
3 years agosro3 similar to RCD one3:
 
GRMZM2G011469
Qin, LM et al. 2020. Plant J pp.doi: 10.1111/tpj.15083     Reference: November 20th, 2020
Gene Product: September 7th, 2018
Gene Model: August 10th, 2018
3 years agocast1 castor-like1:
 
GRMZM2G099160
Ramirez Flores, MR et al. 2020. Elife 9:e61701     Reference: November 20th, 2020
Gene Product: November 20th, 2020
Variation: November 20th, 2020
Gene Model: November 20th, 2020
3 years agosymrk1 symbiosis receptor-like kinase-like1:
 
GRMZM2G700291
Paszkowski, U et al. 2006. Plant J 47:165-173     Reference: November 20th, 2020
Gene Product: July 10th, 2019
Gene Model: November 20th, 2020
3 years agorlk3 receptor-like protein kinase3:
 
GRMZM2G463493
He, CM et al. 2020. Frontiers Plant Sci 11:579120     Reference: November 11th, 2020
Gene Product: July 10th, 2019
Gene Model: November 11th, 2020
3 years agoAY110352  :
3.05
GRMZM2G163514
Gautam, V et al. 2020. Development pp.doi: 10.1242/dev.190033   AT5G23570 (TAIR) Reference: November 9th, 2020
Variation: July 29th, 2004
Gene Model: March 20th, 2018
3 years agoipt7 isopentenyl transferase7:
 
GRMZM2G436770
Gautam, V et al. 2020. Development pp.doi: 10.1242/dev.190033     Reference: November 9th, 2020
Gene Product: March 19th, 2014
Gene Model: July 10th, 2013
3 years agoipt3 isopentenyl transferase3:
 
GRMZM2G393014
Gautam, V et al. 2020. Development pp.doi: 10.1242/dev.190033     Reference: November 9th, 2020
Gene Product: March 19th, 2014
Gene Model: July 11th, 2013
3 years agorrb2 related to retinoblastoma2:
4.08
   Kamal, KY et al. 2020. Physiol Plant pp.doi: 10.1111/ppl.13260     Reference: November 8th, 2020
Gene Product: September 1st, 2003
Variation: April 17th, 2015
3 years agocyc17 cyclin17:
 
GRMZM2G180728
Kamal, KY et al. 2020. Physiol Plant pp.doi: 10.1111/ppl.13260     Reference: November 8th, 2020
Gene Product: June 26th, 2009
Gene Model: November 7th, 2020
3 years agocyc18 cyclin18:
 
GRMZM2G363437
Kamal, KY et al. 2020. Physiol Plant pp.doi: 10.1111/ppl.13260     Reference: November 8th, 2020
Gene Product: June 26th, 2009
Gene Model: November 7th, 2020
3 years agocyc19 cyclin19:
 
GRMZM2G026346
Kamal, KY et al. 2020. Physiol Plant pp.doi: 10.1111/ppl.13260     Reference: November 8th, 2020
Gene Product: June 26th, 2009
Gene Model: November 7th, 2020
3 years agocyc20 cyclin20:
 
GRMZM2G476685
Kamal, KY et al. 2020. Physiol Plant pp.doi: 10.1111/ppl.13260     Reference: November 8th, 2020
Gene Product: June 26th, 2009
Gene Model: November 7th, 2020
3 years agoIDP847  :
1.01
GRMZM2G038485
Kamal, KY et al. 2020. Physiol Plant pp.doi: 10.1111/ppl.13260     Reference: November 8th, 2020
Variation: March 31st, 2005
Gene Model: February 11th, 2019
3 years agoumc1501  :
3.05
       Gene Product: November 3rd, 2020
Variation: September 1st, 2003
3 years agocfm1 CRM family member1:
 
GRMZM5G813259
Feiz, L et al. 2020. Plant J pp.doi: 10.1111/tpj.15060   At3g18390 (TAIR)
LOC_Os05g47850 (MSU/TIGR)
Reference: November 3rd, 2020
Gene Product: November 3rd, 2020
Variation: November 3rd, 2020
Gene Model: May 20th, 2017
3 years agocfm4 cp RNA splicing factor, CRM domain containing protein4:
 
GRMZM2G142740
  At4g29750 (TAIR)
LOC_Os09g19850 (MSU/TIGR)
Gene Product: November 3rd, 2020
Gene Model: May 21st, 2017
3 years agocfm7 CRM family member7:
 
   Asakura, M; Barkan, A. 2007. Plant Cell. 19:3864-75   AT3G01370 (TAIR) Reference: December 15th, 2015
Gene Product: November 3rd, 2020
3 years agocfm2 CRM family member2:
 
GRMZM2G094072
Asakura, Y; Bayraktar, OA; Barkan, A. 2008. RNA-Publ RNA Soc. 14:2319-32   AT3G01370 (TAIR) Reference: December 15th, 2015
Gene Product: November 3rd, 2020
Gene Model: December 15th, 2015
3 years agocfm3 CRM family member3:
 
GRMZM2G436001
Asakura, Y; Bayraktar, OA; Barkan, A. 2008. RNA-Publ RNA Soc. 14:2319-32     Reference: December 15th, 2015
Gene Product: November 3rd, 2020
Gene Model: December 15th, 2015
3 years agocfm6 CRM family member6:
 
AC214507.3_FG001
Barkan, A, et al. 2007. RNA-Publ RNA Soc. 13:55-64     Reference: December 7th, 2015
Gene Product: November 3rd, 2020
Gene Model: December 16th, 2015
3 years agohasp1 haspin-like1:
 
GRMZM2G102944
Liu, Y et al. 2020. J Exp Bot pp.eraa506     Reference: November 2nd, 2020
Gene Product: May 13th, 2014
Gene Model: November 2nd, 2020
3 years agonactf136 NAC-transcription factor 136:
 
   Sahito, JH et al. 2020. Plants 9:1447     Reference: October 27th, 2020
Gene Product: July 8th, 2019
3 years agosar1 secretion-associated Ras-related homolog1:
3.04
   Schnable, J; Freeling, M. 2011. PLoS One 6(3):e17855. doi:10.1371/journal.pone.0017855     Reference: September 27th, 2011
Gene Product: October 26th, 2020
Variation: March 16th, 2015
3 years agopx17 peroxidase17:
 
GRMZM2G427903
Ko, DK; Brandizzi, F. 2020. Plant J pp.doi: 10.1111/tpj.15044     Reference: October 26th, 2020
Gene Product: September 18th, 2015
Gene Model: October 26th, 2020
3 years agosar2 secretion-associated Ras-related homolog2:
 
GRMZM2G181536
Ko, DK; Brandizzi, F. 2020. Plant J pp.doi: 10.1111/tpj.15044     Reference: October 26th, 2020
Gene Product: October 26th, 2020
Gene Model: October 26th, 2020
3 years agocep8 C-terminally encoded peptide8:
8.03
GRMZM2G061450
Aggarwal, S et al. 2020. Physiology and Molecular Biology of Plants 26:2019-2033     Reference: October 23rd, 2020
Gene Product: October 23rd, 2020
Gene Model: August 30th, 2019
3 years agocep7 C-terminally encoded peptide7:
7.02
GRMZM2G446946
Aggarwal, S et al. 2020. Physiology and Molecular Biology of Plants 26:2019-2033     Reference: October 23rd, 2020
Gene Product: October 23rd, 2020
Gene Model: September 6th, 2018
3 years agocep4 C-terminally encoded peptide4:
 
AC187283.3_FG005
Aggarwal, S et al. 2020. Physiology and Molecular Biology of Plants 26:2019-2033     Reference: October 23rd, 2020
Gene Product: October 23rd, 2020
Gene Model: October 23rd, 2020
3 years agocep6 C-terminally encoded peptide6:
 
AC206165.3_FG009
Aggarwal, S et al. 2020. Physiology and Molecular Biology of Plants 26:2019-2033     Reference: October 23rd, 2020
Gene Product: October 23rd, 2020
Gene Model: October 23rd, 2020
3 years agocep9 C-terminally encoded peptide9:
 
   Aggarwal, S et al. 2020. Physiology and Molecular Biology of Plants 26:2019-2033     Reference: October 23rd, 2020
Gene Product: October 23rd, 2020
3 years agocep10 C-terminally encoded peptide10:
 
   Aggarwal, S et al. 2020. Physiology and Molecular Biology of Plants 26:2019-2033     Reference: October 23rd, 2020
Gene Product: October 23rd, 2020
3 years agocep5 C-terminally encoded peptide5:
6.05
GRMZM2G148964
Aggarwal, S et al. 2020. Physiology and Molecular Biology of Plants 26:2019-2033     Reference: October 23rd, 2020
Gene Product: October 23rd, 2020
Variation: March 31st, 2005
Gene Model: October 23rd, 2020
3 years agodapf1 diaminopimelate+epimerase1:
1.05
GRMZM2G130332
Liu, YW et al. 2016. PLoS One 11:e0148287     Reference: October 21st, 2020
Gene Product: October 21st, 2020
Gene Model: February 9th, 2020
3 years agodps2 dihydrodipicolinate synthase2:
 
GRMZM2G556131
Liu, YW et al. 2016. PLoS One 11:e0148287     Reference: October 21st, 2020
Gene Product: September 1st, 2003
Gene Model: October 21st, 2020
3 years agodapf2 diaminopimelate+epimerase2:
 
AC182617.3_FG001
Liu, YW et al. 2016. PLoS One 11:e0148287     Reference: October 21st, 2020
Gene Product: October 21st, 2020
Gene Model: October 21st, 2020
3 years agolysA1 dihydrodipicolinate decarboxylase1:
 
GRMZM2G020446
Liu, YW et al. 2016. PLoS One 11:e0148287     Reference: October 21st, 2020
Gene Product: October 21st, 2020
Gene Model: October 21st, 2020
3 years agolysA2 dihydrodipicolinate decarboxylase2:
 
GRMZM2G090722
Liu, YW et al. 2016. PLoS One 11:e0148287     Reference: October 21st, 2020
Gene Product: October 21st, 2020
Gene Model: October 21st, 2020
3 years agodapat2 diaminopimelate aminotransferase2:
 
GRMZM2G415117
Liu, YW et al. 2016. PLoS One 11:e0148287     Reference: October 21st, 2020
Gene Product: October 21st, 2020
Gene Model: October 21st, 2020
3 years agodapat3 diaminopimelate aminotransferase3:
 
GRMZM2G119150
Liu, YW et al. 2016. PLoS One 11:e0148287     Reference: October 21st, 2020
Gene Product: October 21st, 2020
Gene Model: October 21st, 2020
3 years agodapB1 dihydrodipicolinate reductase1:
 
GRMZM2G104575
Liu, YW et al. 2016. PLoS One 11:e0148287     Reference: October 21st, 2020
Gene Product: October 21st, 2020
Gene Model: October 21st, 2020
3 years agodapB2 dihydrodipicolinate reductase2:
 
GRMZM2G090241
Liu, YW et al. 2016. PLoS One 11:e0148287     Reference: October 21st, 2020
Gene Product: October 21st, 2020
Gene Model: October 21st, 2020
3 years agogmp1 mannose-1-phosphate guanylyltransferase1:
 
GRMZM2G119300
Yu, CM et al. 2020. Plant Sci pp.doi: 10.1016/j.plantsci.2020.110676     Reference: October 21st, 2020
Gene Product: October 21st, 2020
Gene Model: October 21st, 2020
3 years agopmi1 phosphomannose isomerase1:
 
GRMZM2G121066
Yu, CM et al. 2020. Plant Sci pp.doi: 10.1016/j.plantsci.2020.110676     Reference: October 21st, 2020
Gene Product: October 21st, 2020
Gene Model: October 21st, 2020
3 years agosbp4 (GRASSIUS) SBP-transcription factor 4:
 
   Li, J et al. 2020. J Exp Bot pp.doi: 10.1093/jxb/eraa480     Reference: October 19th, 2020
Gene Product: July 5th, 2019
3 years agoumc2297  :
5.03
GRMZM2G347721
Li, J et al. 2020. J Exp Bot pp.doi: 10.1093/jxb/eraa480     Reference: October 19th, 2020
Variation: September 25th, 2007
Gene Model: June 23rd, 2018
3 years agouce20 ubiquitin-conjugating enzyme20:
 
GRMZM2G433968
Li, J et al. 2020. J Exp Bot pp.doi: 10.1093/jxb/eraa480     Reference: October 19th, 2020
Gene Product: December 19th, 2019
Gene Model: December 19th, 2019
3 years agoppr375 pentatricopeptide repeat protein375:
 
GRMZM2G030263
Li, J et al. 2020. J Exp Bot pp.doi: 10.1093/jxb/eraa480   AT5G64320 (TAIR) Reference: October 19th, 2020
Gene Product: December 27th, 2016
Gene Model: September 17th, 2020
3 years agoIDP723  :
2.05
GRMZM2G008864
Li, J et al. 2020. J Exp Bot pp.doi: 10.1093/jxb/eraa480     Reference: October 19th, 2020
Variation: March 31st, 2005
Gene Model: February 19th, 2019
3 years agoIDP1657  :
2.07
GRMZM2G154904
    Variation: March 31st, 2005
Gene Model: October 17th, 2020
3 years agosig3 Sigma70-like-transcription factor 3:
 
GRMZM2G003182
Hendron, R-W; Kelly, S. 2019. Plant Physiol pp.doi: 10.1104/pp.19.01053     Reference: December 23rd, 2019
Gene Product: December 24th, 2019
Gene Model: October 16th, 2020
3 years agopropep2 precursor elicitor peptide2:
 
GRMZM2G177412
Poretsky, E et al. 2020. Plant J pp.doi: 10.1111/tpj.15022     Reference: October 15th, 2020
Gene Product: October 16th, 2020
Gene Model: May 17th, 2013
3 years agopropep4 precursor elicitor peptide4:
 
GRMZM2G141133
Poretsky, E et al. 2020. Plant J pp.doi: 10.1111/tpj.15022     Reference: October 15th, 2020
Gene Product: October 16th, 2020
Gene Model: May 17th, 2013
3 years agopropep5 precursor elicitor peptide5:
 
GRMZM2G141071
Poretsky, E et al. 2020. Plant J pp.doi: 10.1111/tpj.15022     Reference: October 15th, 2020
Gene Product: October 16th, 2020
Gene Model: May 17th, 2013
3 years agopropep6 precursor elicitor peptide6:
 
GRMZM2G440972
Poretsky, E et al. 2020. Plant J pp.doi: 10.1111/tpj.15022     Reference: October 15th, 2020
Gene Product: October 16th, 2020
Gene Model: October 16th, 2020
3 years agocl29906_1  :
1.04
GRMZM2G057412
    Variation: September 25th, 2007
Gene Model: October 15th, 2020
3 years agoskus9 skewed root growth similar9:
1.07
GRMZM2G438386
Zhang, K et al. 2020. New Phytol pp.doi: 10.1111/nph.16988     Reference: October 9th, 2020
Gene Product: October 9th, 2020
Variation: September 28th, 2016
Gene Model: September 28th, 2016
3 years agolac13 laccase13:
 
GRMZM2G166857
Zhang, K et al. 2020. New Phytol pp.doi: 10.1111/nph.16988     Reference: October 9th, 2020
Gene Product: March 31st, 2018
Gene Model: March 3rd, 2020
3 years agolac14 laccase14:
 
AC234190.1_FG002
Zhang, K et al. 2020. New Phytol pp.doi: 10.1111/nph.16988     Reference: October 9th, 2020
Gene Product: March 31st, 2018
Gene Model: March 3rd, 2020
3 years agolac17 laccase17:
 
GRMZM2G309594
Zhang, K et al. 2020. New Phytol pp.doi: 10.1111/nph.16988     Reference: October 9th, 2020
Gene Product: March 31st, 2018
Gene Model: March 3rd, 2020
3 years agolac20 laccase20:
 
GRMZM5G800488
Zhang, K et al. 2020. New Phytol pp.doi: 10.1111/nph.16988     Reference: October 9th, 2020
Gene Product: March 31st, 2018
Gene Model: March 3rd, 2020
3 years agolac7 laccase7:
 
GRMZM2G400390
Zhang, K et al. 2020. New Phytol pp.doi: 10.1111/nph.16988     Reference: October 9th, 2020
Gene Product: March 31st, 2018
Gene Model: March 16th, 2020
3 years agoskus2 skewed root growth similar2:
 
GRMZM2G068682
Zhang, K et al. 2020. New Phytol pp.doi: 10.1111/nph.16988     Reference: October 9th, 2020
Gene Product: October 9th, 2020
Gene Model: October 9th, 2020
3 years agoskus3 skewed root growth similar3:
 
GRMZM2G129064
Zhang, K et al. 2020. New Phytol pp.doi: 10.1111/nph.16988     Reference: October 9th, 2020
Gene Product: October 9th, 2020
Gene Model: October 9th, 2020
3 years agoskus4 skewed root growth similar4:
 
GRMZM2G142584
Zhang, K et al. 2020. New Phytol pp.doi: 10.1111/nph.16988     Reference: October 9th, 2020
Gene Product: October 9th, 2020
Gene Model: October 9th, 2020
3 years agoskus7 skewed root growth similar7:
 
GRMZM2G416509
Zhang, K et al. 2020. New Phytol pp.doi: 10.1111/nph.16988     Reference: October 9th, 2020
Gene Product: October 9th, 2020
Gene Model: October 9th, 2020
3 years agoskus8 skewed root growth similar8:
 
GRMZM2G360529
Zhang, K et al. 2020. New Phytol pp.doi: 10.1111/nph.16988     Reference: October 9th, 2020
Gene Product: October 9th, 2020
Gene Model: October 9th, 2020
3 years agoskus11 skewed root growth similar11:
 
GRMZM2G402584
Zhang, K et al. 2020. New Phytol pp.doi: 10.1111/nph.16988     Reference: October 9th, 2020
Gene Product: October 9th, 2020
Gene Model: October 9th, 2020
3 years agoskus14 skewed root growth similar14:
 
GRMZM2G172642
Zhang, K et al. 2020. New Phytol pp.doi: 10.1111/nph.16988     Reference: October 9th, 2020
Gene Product: October 9th, 2020
Gene Model: October 9th, 2020
3 years agoskus15 skewed root growth similar15:
 
GRMZM2G064106
Zhang, K et al. 2020. New Phytol pp.doi: 10.1111/nph.16988     Reference: October 9th, 2020
Gene Product: October 9th, 2020
Gene Model: October 9th, 2020
3 years agoskus16 skewed root growth similar16:
 
GRMZM2G386170
Zhang, K et al. 2020. New Phytol pp.doi: 10.1111/nph.16988     Reference: October 9th, 2020
Gene Product: October 9th, 2020
Gene Model: October 9th, 2020
3 years agoskus5 skewed root growth similar5:
5.04
GRMZM2G076985
Zhang, K et al. 2020. New Phytol pp.doi: 10.1111/nph.16988     Reference: October 9th, 2020
Gene Product: October 9th, 2020
Gene Model: May 9th, 2020
3 years agoemb5 embryo specific5:
2.08 - 2.09
   Li, Y et al. 2020. Plant Mol Biol Rep pp.doi: 10.1007/s11105-020-01251-w     Reference: October 8th, 2020
Variation: September 1st, 2003
3 years agornrs3 ribonucleotide reductase small subunit3:
2.04
GRMZM2G323679
Xie, SY et al. 2020. Plant Physiol pp.doi: 10.1104/pp.20.00219     Reference: October 6th, 2020
Gene Product: October 6th, 2020
Gene Model: February 19th, 2019
3 years agornrs1 ribonucleotide reductase small subunit1:
 
GRMZM2G340527
Xie, SY et al. 2020. Plant Physiol pp.doi: 10.1104/pp.20.00219     Reference: October 6th, 2020
Gene Product: October 6th, 2020
Gene Model: October 6th, 2020
3 years agornrs2 ribonucleotide reductase small subunit2:
 
GRMZM2G155546
Xie, SY et al. 2020. Plant Physiol pp.doi: 10.1104/pp.20.00219     Reference: October 6th, 2020
Gene Product: October 6th, 2020
Gene Model: October 6th, 2020
3 years agoumc1597  :
5.03
GRMZM2G124791
Zhang, HS et al. 2020. Plant Genome 13:e20022     Reference: October 5th, 2020
Variation: September 1st, 2003
Gene Model: June 19th, 2018
3 years agopdi6 protein disulfide isomerase6:
3.04
GRMZM2G128171
Zhang, HS et al. 2020. Plant Genome 13:e20022     Reference: October 5th, 2020
Gene Product: September 1st, 2003
Variation: December 30th, 2015
Gene Model: December 18th, 2015
3 years agohak22 potassium high-affinity transporter22:
 
GRMZM2G438960
Wang, QJ et al. 2019. Plant Genome 12:190039     Reference: October 5th, 2020
Gene Product: March 12th, 2020
Gene Model: March 12th, 2020
3 years agotrpp5 trehalose-6-phosphate phosphatase5:
 
GRMZM2G059840
Zhou, ML et al. 2014. J Plant Growth Reg 33:256-271     Reference: June 26th, 2014
Gene Product: October 3rd, 2020
Gene Model: September 15th, 2013
3 years agotrps3 trehalose-6-phosphate synthase3:
 
GRMZM2G079928
Paul, MJ et al. 2020. Biochem Soc Trans pp.doi: 10.1042/BST20200286     Reference: October 3rd, 2020
Gene Product: October 3rd, 2020
Gene Model: September 15th, 2013
3 years agotrps6 trehalose-6-phosphate synthase6:
 
GRMZM2G304274
Acosta-Perez, P et al. 2020. Plants 9:315     Reference: March 3rd, 2020
Gene Product: October 3rd, 2020
Gene Model: September 15th, 2013
3 years agotrps8 trehalose-6-phosphate synthase8:
 
GRMZM2G007736
Zhou, ML et al. 2014. J Plant Growth Reg 33:256-271     Reference: June 26th, 2014
Gene Product: October 3rd, 2020
Gene Model: September 15th, 2013
3 years agoalt3 L-alanine:2-oxoglutarate aminotransferase3:
 
   Watson, NR et al. 1992. Biochem Genet 30:371-383     Reference: September 1st, 2003
Gene Product: October 2nd, 2020
3 years agoalt8 alanine amino transferase8:
 
GRMZM5G840582
Tausta, SL et al. 2014. J Exp Bot 65:3543-3555     Reference: November 20th, 2014
Gene Product: October 2nd, 2020
Gene Model: July 23rd, 2014
3 years agoalt10 alanine aminotransferase10:
 
GRMZM2G124963
Tausta, SL et al. 2014. J Exp Bot 65:3543-3555     Reference: November 20th, 2014
Gene Product: October 2nd, 2020
Variation: February 20th, 2019
Gene Model: August 1st, 2014
3 years agoalt11 alanine aminotransferase11:
 
GRMZM2G088018
    Gene Product: October 2nd, 2020
Gene Model: July 16th, 2020
3 years agogo1 glycolate oxidase1:
 
GRMZM2G129246
Li, Z et al. 2020. Plant Cell pp.doi: 10.1105/tpc.20.00320     Reference: October 1st, 2020
Gene Product: June 26th, 2009
Variation: April 4th, 2011
Gene Model: January 12th, 2016
3 years agotcptf31 TCP-transcription factor 31:
 
   Zhang, CP et al. 2020. New Phytol pp.doi: 10.1111/nph.16974     Reference: October 1st, 2020
Gene Product: September 27th, 2019
3 years agorf10 restoration of fertility10:
 
   Qin, XN et al. 2020. PeerJ doi: 10.7717/peerj.10015     Reference: September 30th, 2020
Variation: September 30th, 2020
3 years agohis403 histone H4 family3:
 
GRMZM2G421279
Conklin, PA et al. 2020. Development pp.doi: 10.1242/dev.193623     Reference: September 30th, 2020
Gene Product: September 1st, 2003
Gene Model: September 30th, 2020
3 years agoAI714716  :
3.09
GRMZM2G418515
    Variation: July 29th, 2004
Gene Model: September 28th, 2020
3 years agobnk*-N1519C brown kernelN1519C:
1.00 - 1.05
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 25th, 2020
3 years agolu2 lutescent2:
 
   Shortess, DK et al. 1968. Genetics 58:227-235     Reference: September 1st, 2003
Variation: September 22nd, 2020
3 years agogrp7 glycine-rich protein7:
 
GRMZM2G082931
    Gene Product: September 18th, 2020
Gene Model: September 19th, 2020
3 years agogrp5 glycine-rich protein5:
 
GRMZM2G146308
Tao, TY et al. 2006. Plant Cell Rep 25:848-858     Reference: September 18th, 2020
Gene Product: September 18th, 2020
Gene Model: September 18th, 2020
3 years agobas1 beta alanine synthase1:
7.03 - 7.04
GRMZM2G077673
Sun, XC et al. 2020. J Plant Physiol pp.doi: 10.1016/j.jplph.2020.153281     Reference: September 17th, 2020
Gene Product: September 1st, 2003
Variation: October 18th, 2013
Gene Model: July 27th, 2016
3 years agoppr282 pentatricopeptide repeat protein282:
 
GRMZM2G177845
Yang, Y-Z et al. 2020. RNA Biol. doi: 10.1080/15476286.2020.1817267   AT3G61360 (TAIR) Reference: September 17th, 2020
Gene Product: December 27th, 2016
Gene Model: September 17th, 2020
3 years agopolm2 polymerase II transcription-mediator2:
9.08
GRMZM5G828278
Nunez-Rios, T et al. 2020. Int J Dev Biol pp.doi: 10.1387/ijdb.200098sg     Reference: September 15th, 2020
Gene Product: December 29th, 2016
Variation: December 29th, 2016
Gene Model: December 29th, 2016
3 years agopolm3 polymerase II transcription-mediator3:
9.03
GRMZM2G053588
Nunez-Rios, T et al. 2020. Int J Dev Biol pp.doi: 10.1387/ijdb.200098sg     Reference: September 15th, 2020
Gene Product: December 29th, 2016
Variation: December 29th, 2016
Gene Model: December 29th, 2016
3 years agopolm1 polymerase II transcription-mediator1:
 
GRMZM2G114459
Nunez-Rios, T et al. 2020. Int J Dev Biol pp.doi: 10.1387/ijdb.200098sg     Reference: September 15th, 2020
Gene Product: December 29th, 2016
Variation: December 29th, 2016
Gene Model: December 29th, 2016
3 years agocyc12 cyclin12:
7.03
GRMZM2G408242
Nunez-Rios, T et al. 2020. Int J Dev Biol pp.doi: 10.1387/ijdb.200098sg     Reference: September 15th, 2020
Gene Product: June 26th, 2009
Variation: December 29th, 2016
Gene Model: December 29th, 2016
3 years agolysm1 lysin motif domain protein1:
 
GRMZM2G135244
Ma, XM et al. 2020. Ann Bot pp.doi: 10.1093/aob/mcaa159   LOC_Os01g57400 (MSU/TIGR) Reference: September 7th, 2020
Gene Product: September 8th, 2020
Gene Model: September 7th, 2020
3 years agoltp2 lipid transfer protein2:
9.03
GRMZM2G040689
Wang, N et al. 2020. Frontiers Plant Sci 11:1298   AT2G10940 (TAIR) Reference: September 3rd, 2020
Gene Product: September 1st, 2003
Gene Model: June 20th, 2020
3 years agoh1 soft starch1:
3.04
   Gustin, JL et al. 2013. J Agric Food Chem 61:10872-10880     Reference: September 1st, 2020
Variation: September 1st, 2003
3 years agotrx4 thioredoxin4:
 
GRMZM5G892522
Sytykiewicz, H et al. 2020. Int J Mol Sci 21:6296     Reference: August 31st, 2020
Gene Product: August 31st, 2020
Gene Model: August 31st, 2020
3 years agotrx5 thioredoxin5:
 
GRMZM2G086779
Sytykiewicz, H et al. 2020. Int J Mol Sci 21:6296     Reference: August 31st, 2020
Gene Product: August 31st, 2020
Gene Model: August 31st, 2020
3 years agotrxr2 thioredoxin reductase2:
 
GRMZM5G889769
    Gene Product: August 31st, 2020
Gene Model: August 31st, 2020
3 years agocda3 cytidine deaminase3:
 
GRMZM2G008297
Xu, JH; Messing, J. 2006. BMC Genetics. 7:52     Reference: August 26th, 2008
Gene Product: August 26th, 2008
Gene Model: August 31st, 2020
3 years agopsa3 photosystemI3:
 
GRMZM2G051403
Chotewutmontri, P; Barkan, A. 2020. Proc Natl Acad Sci, USA pp.doi: 10.1073/pnas.2007833117   AT3G55250 (TAIR) Reference: August 19th, 2020
Gene Product: May 20th, 2017
Variation: May 20th, 2017
Gene Model: May 20th, 2017
3 years agonlp9 NLP-transcription factor 9:
10.04
GRMZM2G105004
He, KH et al. 2020. Mol Breed 40:83     Reference: August 17th, 2020
Gene Product: December 3rd, 2019
Variation: July 29th, 2004
Gene Model: October 21st, 2018
3 years agomha10 membrane H(+)-ATPase10:
 
GRMZM2G131309
Cao, YB, et al. 2020. Nature communications. 11:186     Reference: August 7th, 2020
Gene Product: September 1st, 2003
Gene Model: January 10th, 2020
3 years agoccha1 chloroplast-localized potential Ca2+/H+ antiporter1:
 
GRMZM2G464891
Wang, CJ et al. 2020. Plant Physiol Biochem pp.doi: 10.1016/j.plaphy.2020.08.002   At1g64150 (TAIR) Reference: August 6th, 2020
Gene Product: August 6th, 2020
Variation: August 6th, 2020
Gene Model: August 6th, 2020
3 years agoconr1 concentric ring1:
2.04
GRMZM2G014695
Kim, SB et al. 2020. Plant J pp.doi: 10.1111/tpj.14945     Reference: August 4th, 2020
Variation: August 4th, 2020
Gene Model: March 15th, 2020
3 years agolfy1 leafy1:
 
   Du, XM et al. 2020. Plant Breed pp.doi: 10.1111/pbr.12849     Reference: August 3rd, 2020
Variation: September 24th, 2015
3 years agocdc201 cell division cycle201:
4.06
GRMZM2G063192
Wu, H et al. 2020. Plant Physiol pp.doi: 10.1104/pp.20.00703     Reference: August 1st, 2020
Variation: March 31st, 2005
Gene Model: November 18th, 2016
3 years agosmr1 siamese-related1:
 
GRMZM2G013463
Zhang, ZQ et al. 2020. BMC Evolutionary Biology 20:91     Reference: July 30th, 2020
Gene Product: March 8th, 2017
Gene Model: July 30th, 2020
3 years agosmr2 siamese-related2:
 
GRMZM2G144024
Zhang, ZQ et al. 2020. BMC Evolutionary Biology 20:91     Reference: July 30th, 2020
Gene Product: March 8th, 2017
Gene Model: July 30th, 2020
3 years agosmr7 siamese-related7:
 
GRMZM2G004898
Zhang, ZQ et al. 2020. BMC Evolutionary Biology 20:91     Reference: July 30th, 2020
Gene Product: March 8th, 2017
Gene Model: July 30th, 2020
3 years agosmr9 siamese-related9:
 
GRMZM2G337190
Zhang, ZQ et al. 2020. BMC Evolutionary Biology 20:91     Reference: July 30th, 2020
Gene Product: March 8th, 2017
Gene Model: July 30th, 2020
3 years agosmr11 siamese-related11:
 
GRMZM2G140032
Zhang, ZQ et al. 2020. BMC Evolutionary Biology 20:91     Reference: July 30th, 2020
Gene Product: March 8th, 2017
Gene Model: July 30th, 2020
3 years agosmr12 siamese-related12:
 
GRMZM2G388297
Zhang, ZQ et al. 2020. BMC Evolutionary Biology 20:91     Reference: July 30th, 2020
Gene Product: March 8th, 2017
Gene Model: July 30th, 2020
3 years agopco129709  :
7.06
GRMZM2G140758
    Variation: September 25th, 2007
Gene Model: July 30th, 2020
3 years agosmr8 siamese-related8:
6.02
GRMZM5G897944
Zhang, ZQ et al. 2020. BMC Evolutionary Biology 20:91     Reference: July 30th, 2020
Gene Product: March 8th, 2017
Variation: March 31st, 2005
Gene Model: January 17th, 2020
3 years agopco077498  :
7.04
GRMZM2G577405
    Variation: September 25th, 2007
Gene Model: July 29th, 2020
3 years agoumc1543  :
7.04
GRMZM5G898305
    Variation: September 1st, 2003
Gene Model: July 28th, 2020
3 years agoumc1456  :
7.03
GRMZM2G004990
    Variation: September 1st, 2003
Gene Model: July 25th, 2020
3 years agocptk1 chloroplast thymidine kinase1:
 
GRMZM2G048821
Najera-Martinez, M et al. 2020. Plants 9:930     Reference: July 23rd, 2020
Variation: October 11th, 2018
Gene Model: September 6th, 2011
3 years agocsu996  :
7.04
GRMZM2G047592
Baysdorfer, C. 1996. Nucleotide sequence submission to dbEST     Reference: September 1st, 2003
Variation: September 1st, 2003
Gene Model: July 21st, 2020
3 years agoumc1549a  :
7.02
GRMZM2G375667
    Variation: September 1st, 2003
Gene Model: July 21st, 2020
3 years agoumc1409  :
7.02
GRMZM2G396540
    Variation: September 1st, 2003
Gene Model: July 16th, 2020
3 years agoIDP293  :
6.01
GRMZM2G075408
    Variation: March 31st, 2005
Gene Model: July 11th, 2020
3 years agoes1 embryo sac1:
 
GRMZM2G012012
Odintsova, TI et al. 2020. Biomolecules 10:1029     Reference: July 10th, 2020
Gene Product: April 22nd, 2011
Variation: April 25th, 2011
Gene Model: April 22nd, 2011
3 years agoes2 embryo sac2:
 
GRMZM2G128301
Odintsova, TI et al. 2020. Biomolecules 10:1029     Reference: July 10th, 2020
Gene Product: April 22nd, 2011
Gene Model: April 22nd, 2011
3 years agoIDP455  :
6.01
GRMZM2G172664
    Variation: March 31st, 2005
Gene Model: July 10th, 2020
3 years agoscp1 serine carboxypeptidase1:
 
GRMZM2G075676
Tamiru, A et al. 2020. Sci. Rep. 10:11205     Reference: July 9th, 2020
Gene Product: August 5th, 2013
Gene Model: August 5th, 2013
3 years agopsei10 cystatin10:
8.06
GRMZM2G030717
Tamiru, A et al. 2020. Sci. Rep. 10:11205     Reference: July 9th, 2020
Gene Product: April 21st, 2008
Variation: April 21st, 2008
Gene Model: June 1st, 2017
3 years agoumc1369  :
 
GRMZM2G049269
Parvathaneni, RK et al. 2020. Genome Biol 21:165     Reference: July 6th, 2020
Variation: September 1st, 2003
Gene Model: September 3rd, 2019
3 years agoumc2558  :
9.04
GRMZM2G020468
Lopez-Ruiz, BA et al. 2020. Plants 9:849     Reference: July 6th, 2020
Variation: January 22nd, 2019
Gene Model: January 23rd, 2019
3 years agomagi93696  :
10.04
GRMZM2G476555
    Variation: March 31st, 2005
Gene Model: July 3rd, 2020
3 years agoxt8 beta-1,2-xylosyltransferase8:
4.11
   Kozlova, LV et al. 2020. Sci. Rep. 10:10956     Reference: July 2nd, 2020
Gene Product: February 10th, 2020
Variation: September 1st, 2003
3 years agocesa14 cellulose synthase14:
 
   Kozlova, LV et al. 2020. Sci. Rep. 10:10956     Reference: July 2nd, 2020
Gene Product: October 7th, 2016
3 years agoxt7 beta-1,2-xylosyltransferase7:
 
GRMZM2G354610
Kozlova, LV et al. 2020. Sci. Rep. 10:10956     Reference: July 2nd, 2020
Gene Product: February 10th, 2020
Gene Model: July 2nd, 2020
3 years agoxt9 beta-1,2-xylosyltransferase9:
 
GRMZM2G074896
Kozlova, LV et al. 2020. Sci. Rep. 10:10956     Reference: July 2nd, 2020
Gene Product: February 10th, 2020
Gene Model: July 2nd, 2020
3 years agoxgat1 xyloglucan galactosyltransferase1:
 
GRMZM2G075492
Kozlova, LV et al. 2020. Sci. Rep. 10:10956     Reference: July 2nd, 2020
Gene Product: July 2nd, 2020
Gene Model: July 2nd, 2020
3 years agofut1 galactoside 2-alpha-L-fucosyltransferase1:
 
GRMZM2G096268
Kozlova, LV et al. 2020. Sci. Rep. 10:10956     Reference: July 2nd, 2020
Gene Product: July 2nd, 2020
Gene Model: July 2nd, 2020
3 years agofut3 galactoside 2-alpha-L-fucosyltransferase3:
 
GRMZM2G080696
Kozlova, LV et al. 2020. Sci. Rep. 10:10956     Reference: July 2nd, 2020
Gene Product: July 2nd, 2020
Gene Model: July 2nd, 2020
3 years agofut4 galactoside 2-alpha-L-fucosyltransferase4:
 
GRMZM2G387087
Kozlova, LV et al. 2020. Sci. Rep. 10:10956     Reference: July 2nd, 2020
Gene Product: July 2nd, 2020
Gene Model: July 2nd, 2020
3 years agofut5 galactoside 2-alpha-L-fucosyltransferase5:
 
GRMZM2G471594
Kozlova, LV et al. 2020. Sci. Rep. 10:10956     Reference: July 2nd, 2020
Gene Product: July 2nd, 2020
Gene Model: July 2nd, 2020
3 years agopmt2 pectin methyltransferase2:
 
GRMZM2G140893
Kozlova, LV et al. 2020. Sci. Rep. 10:10956     Reference: July 2nd, 2020
Gene Product: July 2nd, 2020
Gene Model: July 2nd, 2020
3 years agofut6 O-fucosyltransferase6:
 
GRMZM2G104511
Kozlova, LV et al. 2020. Sci. Rep. 10:10956     Reference: July 2nd, 2020
Gene Product: July 2nd, 2020
Gene Model: July 2nd, 2020
3 years agoarad1 arabinosyltransferase1:
 
GRMZM2G060579
Kozlova, LV et al. 2020. Sci. Rep. 10:10956     Reference: July 2nd, 2020
Gene Product: July 2nd, 2020
Gene Model: July 2nd, 2020
3 years agomyb103 MYB-transcription factor 103:
4.06
   Qiao, P, et al. 2020. Proc Natl Acad Sci, USA. 0:doi: 10.1073/pnas.2004945117     Reference: June 30th, 2020
Variation: September 25th, 2007
3 years agocsu861  :
2.03
GRMZM2G001241
Qiao, P, et al. 2020. Proc Natl Acad Sci, USA. 0:doi: 10.1073/pnas.2004945117     Reference: June 30th, 2020
Variation: September 1st, 2003
Gene Model: March 13th, 2020
3 years agormr2 required to maintain repression 2:
 
GRMZM2G009208
Zhang, XX et al. 2020. Theor Appl Genet pp.doi: 10.1007/s00122-020-03639-4     Reference: July 1st, 2020
Gene Product: August 28th, 2012
Variation: August 28th, 2012
Gene Model: August 28th, 2012
3 years agoumc1411a  :
1.09
   Qiao, P, et al. 2020. Proc Natl Acad Sci, USA. 0:doi: 10.1073/pnas.2004945117     Reference: June 30th, 2020
Variation: September 1st, 2003
3 years agomyb151 MYB-transcription factor 151:
 
   Qiao, P, et al. 2020. Proc Natl Acad Sci, USA. 0:doi: 10.1073/pnas.2004945117   AT4G37780 (TAIR) Reference: June 30th, 2020
Gene Product: July 25th, 2017
3 years agotcptf34 TCP-transcription factor 34:
 
   Zhang, XX et al. 2020. Theor Appl Genet pp.doi: 10.1007/s00122-020-03639-4     Reference: July 1st, 2020
Gene Product: September 27th, 2019
3 years agoMuk Mu killer:
 
   Burgess, D; Li, H; Zhao, M; Kim, SY; Lisch, D. 2020. Genetics. 215:379-391     Reference: June 30th, 2020
Variation: November 12th, 2004
3 years agoadd1 alternative discordia1:
8.05
GRMZM2G120178
Schnable, J; Freeling, M. 2011. PLoS One 6(3):e17855. doi:10.1371/journal.pone.0017855     Reference: September 27th, 2011
Variation: March 6th, 2009
Gene Model: June 30th, 2020
3 years agocsu1005  :
9.07
GRMZM2G096348
Baysdorfer, C. 1996. Nucleotide sequence submission to dbEST     Reference: September 1st, 2003
Variation: September 1st, 2003
Gene Model: June 27th, 2020
3 years agogpm937b  :
9.07
GRMZM2G178787
    Variation: April 4th, 2007
Gene Model: June 27th, 2020
3 years agouaz7c01f11  :
 
GRMZM2G113159
    Variation: September 1st, 2003
Gene Model: June 26th, 2020
3 years agoumc1310  :
9.06
GRMZM5G826763
    Variation: September 1st, 2003
Gene Model: June 26th, 2020
3 years agogpx4 glycerophosphodiester phosphodiesterase4:
 
GRMZM2G045753
Wang, JX et al. 2020. Crop J. doi: 10.1016/j.cj.2020.05.004     Reference: June 25th, 2020
Gene Product: June 24th, 2020
Gene Model: June 24th, 2020
3 years agogpx6 glycerophosphodiester phosphodiesterase6:
 
GRMZM2G153274
Wang, JX et al. 2020. Crop J. doi: 10.1016/j.cj.2020.05.004     Reference: June 25th, 2020
Gene Product: June 24th, 2020
Gene Model: June 24th, 2020
3 years agogpx7 glycerophosphodiester phosphodiesterase7:
 
GRMZM2G017550
Wang, JX et al. 2020. Crop J. doi: 10.1016/j.cj.2020.05.004     Reference: June 25th, 2020
Gene Product: June 24th, 2020
Gene Model: June 24th, 2020
3 years agogpx8 glycerophosphodiester phosphodiesterase8:
 
GRMZM2G038001
Wang, JX et al. 2020. Crop J. doi: 10.1016/j.cj.2020.05.004     Reference: June 25th, 2020
Gene Product: June 24th, 2020
Gene Model: June 24th, 2020
3 years agogpx9 glycerophosphodiester phosphodiesterase9:
 
GRMZM2G103382
Wang, JX et al. 2020. Crop J. doi: 10.1016/j.cj.2020.05.004     Reference: June 25th, 2020
Gene Product: June 24th, 2020
Gene Model: June 24th, 2020
3 years agogpx11 glycerophosphodiester phosphodiesterase11:
 
GRMZM2G013324
Wang, JX et al. 2020. Crop J. doi: 10.1016/j.cj.2020.05.004     Reference: June 25th, 2020
Gene Product: June 24th, 2020
Gene Model: June 24th, 2020
3 years agogpx12 glycerophosphodiester phosphodiesterase12:
 
GRMZM2G060194
Wang, JX et al. 2020. Crop J. doi: 10.1016/j.cj.2020.05.004     Reference: June 25th, 2020
Gene Product: June 24th, 2020
Gene Model: June 24th, 2020
3 years agogpx13 glycerophosphodiester phosphodiesterase13:
 
GRMZM2G059129
Wang, JX et al. 2020. Crop J. doi: 10.1016/j.cj.2020.05.004     Reference: June 25th, 2020
Gene Product: June 24th, 2020
Gene Model: June 24th, 2020
3 years agogpx14 glycerophosphodiester phosphodiesterase14:
 
GRMZM2G481904
Wang, JX et al. 2020. Crop J. doi: 10.1016/j.cj.2020.05.004     Reference: June 25th, 2020
Gene Product: June 24th, 2020
Gene Model: June 24th, 2020
3 years agomgt8 magnesium transporter8:
 
GRMZM2G065971
Kong, XY et al. 2020. Plant Soil pp.doi: 10.1007/s11104-020-04605-1     Reference: June 22nd, 2020
Gene Product: April 18th, 2016
Gene Model: April 18th, 2016
3 years agosrl5 semi-rolled leaf5:
 
GRMZM2G139852
Pan, ZY et al. 2020. J Integr Plant Biol pp.doi: 10.1111/jipb.12982     Reference: June 17th, 2020
Gene Product: June 17th, 2020
Variation: June 17th, 2020
Gene Model: June 17th, 2020
3 years agoumc1497  :
2.07
GRMZM2G137558
    Variation: June 16th, 2020
Gene Model: June 16th, 2020
3 years agobsd*-pg bundle sheath defective*-pale green:
 
   Fan, ZY et al. 2020. Plant Signal Behav pp.doi: 10.1080/15592324.2020.1777374     Reference: June 15th, 2020
Variation: September 5th, 2015
3 years agoumc1238  :
 
GRMZM2G072550
    Variation: September 1st, 2003
Gene Model: June 14th, 2020
3 years agomcsf2 mitochondrial CAF-like splicing factor2:
4.04
GRMZM2G129615
Wang, H-C et al. 2020. Frontiers Plant Sci pp.doi: 10.3389/fpls.2020.00814     Reference: June 12th, 2020
Gene Product: July 23rd, 2009
Gene Model: April 13th, 2020
3 years agoumc1118  :
1.11
GRMZM2G012224
Lopez-Castillo, LM et al. 2020. Frontiers Plant Sci pp.doi: 10.3389/fpls.2020.00781     Reference: June 11th, 2020
Variation: September 21st, 2016
Gene Model: October 19th, 2017
3 years agoppr392 pentatricopeptide repeat protein392:
 
GRMZM2G040947
Zhou, GF et al. 2020. Crop J doi: 10.1016/j.cj.2020.03.009     Reference: June 8th, 2020
Gene Product: December 27th, 2016
Gene Model: June 8th, 2020
3 years agoIDP144  :
8.03
GRMZM2G154278
    Variation: March 31st, 2005
Gene Model: June 6th, 2020
3 years agophd5 PHD-transcription factor 5:
4.10
GRMZM2G057265
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: July 8th, 2017
Variation: September 25th, 2007
Gene Model: May 30th, 2020
3 years agoAY104784  :
4.08
GRMZM2G179737
Chao, S; Baysdorfer, C; Heredia-Diaz, O; Musket, T; Xu, G; Coe, EH. 1994. Theor Appl Genet 88:717-721     Reference: September 1st, 2003
Variation: March 2nd, 2007
Gene Model: May 29th, 2020
3 years agoIDP217  :
5.09
GRMZM2G143627
    Variation: March 31st, 2005
Gene Model: May 26th, 2020
3 years agoumc1375  :
5.07
GRMZM2G118366
    Variation: September 1st, 2003
Gene Model: May 24th, 2020
3 years agoIDP3821  :
5.06
GRMZM2G385999
    Variation: March 31st, 2005
Gene Model: May 24th, 2020
3 years agoembp1 EM binding protein1 homologue:
7.02
GRMZM2G095078
Perveen, S et al. 2020. J Exp Bot pp.doi: 10.1093/jxb/eraa248     Reference: May 23rd, 2020
Gene Product: August 21st, 2018
Variation: September 5th, 2018
Gene Model: September 5th, 2018
3 years agoIDP737  :
5.07
GRMZM2G339943
    Variation: March 31st, 2005
Gene Model: May 23rd, 2020
3 years agoIDP89  :
5.06
GRMZM2G029029
    Variation: March 31st, 2005
Gene Model: May 23rd, 2020
3 years agoppr316 pentatricopeptide repeat protein316:
5.06
GRMZM2G014977
    Gene Product: December 27th, 2016
Gene Model: May 22nd, 2020
3 years agoumc1995  :
10.04
GRMZM2G343291
Zenda, T et al. 2018. Int J Mol Sci 19:3225     Reference: May 22nd, 2020
Variation: September 1st, 2003
Gene Model: December 15th, 2017
3 years agonad1 NADH ubiquinone oxidoreductase1:
1.03
GRMZM2G018941
Zenda, T et al. 2018. Int J Mol Sci 19:3225     Reference: May 22nd, 2020
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: March 4th, 2016
3 years agopco093974b  :
5.03
GRMZM2G053236
Zenda, T et al. 2018. Int J Mol Sci 19:3225     Reference: May 22nd, 2020
Gene Product: June 3rd, 2014
Gene Model: May 9th, 2013
3 years agoIDP290  :
5.05
GRMZM2G398500
    Variation: March 31st, 2005
Gene Model: May 21st, 2020
3 years agotil2 temperature-induced lipocalin2:
1.07
GRMZM2G124307
Charron, J-BF et al. 2005. Plant Physiol 139:2017-2028     Reference: May 20th, 2020
Gene Product: May 20th, 2020
Gene Model: February 12th, 2020
3 years agogll1 glossy2-like1:
 
GRMZM2G315767
Alexander, LE et al. 2020. Plant Physiol pp.doi: 10.1104/pp.20.00241   AT4G13840 (TAIR) Reference: May 20th, 2020
Gene Product: February 28th, 2020
Gene Model: February 28th, 2020
3 years agoumc1687  :
5.05
GRMZM2G029922
    Variation: September 1st, 2003
Gene Model: May 19th, 2020
3 years agoIDP1623  :
5.04
GRMZM2G167356
    Variation: March 31st, 2005
Gene Model: May 16th, 2020
3 years agoIDP207  :
5.04
GRMZM2G109315
    Variation: March 31st, 2005
Gene Model: May 16th, 2020
3 years agoIDP359  :
5.04
GRMZM2G060167
    Variation: March 31st, 2005
Gene Model: May 16th, 2020
3 years agohstf1 heat shock transcription factor1:
 
   Gagliardi, D et al. 1995. Plant Mol Biol 29:841-856     Reference: September 1st, 2003
Gene Product: May 15th, 2020
3 years agohstf3 heat shock transcription factor 3:
 
   Gagliardi, D et al. 1995. Plant Mol Biol 29:841-856     Reference: September 1st, 2003
Gene Product: May 15th, 2020
3 years agopco096212  :
5.04
GRMZM2G322129
    Variation: September 25th, 2007
Gene Model: May 14th, 2020
3 years agoinvan2 invertase alkaline neutral2:
5.05
GRMZM2G118737
Gong, XP et al. 2020. J Exp Bot pp.doi: 10.1093/jxb/eraa229     Reference: May 12th, 2020
Gene Product: June 12th, 2018
Variation: September 1st, 2003
Gene Model: July 10th, 2018
3 years agoIDP51  :
5.05
   Gong, XP et al. 2020. J Exp Bot pp.doi: 10.1093/jxb/eraa229     Reference: May 12th, 2020
Variation: September 25th, 2007
3 years agoumc1274  :
5.03
GRMZM2G053500
    Variation: September 1st, 2003
Gene Model: May 11th, 2020
3 years agoumc1373  :
5.03
GRMZM2G132060
    Variation: September 1st, 2003
Gene Model: May 11th, 2020
3 years agoIDP101  :
5.03
GRMZM2G165351
    Variation: March 31st, 2005
Gene Model: May 11th, 2020
3 years agoIDP1604  :
5.03
GRMZM2G112805
    Variation: March 31st, 2005
Gene Model: May 11th, 2020
4 years agoumc1212  :
5.03
GRMZM5G854533
    Variation: September 25th, 2007
Gene Model: May 10th, 2020
4 years agosfp7 sulfate transporter7:
 
GRMZM2G068212
Chorianopoulou, SN et al. 2020. Int J Mol Sci 21:3249     Reference: May 8th, 2020
Gene Product: May 8th, 2020
Gene Model: November 13th, 2017
4 years agopco090715  :
5.03
GRMZM2G067306
    Variation: September 25th, 2007
Gene Model: May 7th, 2020
4 years agoIDP337  :
5.02
GRMZM2G079083
    Variation: March 31st, 2005
Gene Model: May 6th, 2020
4 years agoIDP1425  :
1.02
GRMZM2G136081
Gao, H et al. 2020. Frontiers Plant Sci 11:535     Reference: May 5th, 2020
Variation: March 31st, 2005
Gene Model: February 11th, 2019
4 years agoIDP532  :
5.01
GRMZM2G009928
    Variation: March 31st, 2005
Gene Model: May 3rd, 2020
4 years agoIDP122  :
5.00
GRMZM2G144020
    Variation: March 31st, 2005
Gene Model: May 2nd, 2020
4 years agoact6 actin6:
 
GRMZM2G053284
Moniz de Sa, M and Drouin, G. 1996. Mol Biol Evol 13:1198-1212     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: April 29th, 2020
Gene Model: April 29th, 2020
4 years agohyd8 hydroxylase8:
 
GRMZM5G826824
Baseggio, M et al. 2020. Plant Genome pp.doi: 10.1002/tpg2.20008     Reference: April 27th, 2020
Gene Product: December 13th, 2011
Gene Model: October 4th, 2014
4 years agoumc1322  :
 
GRMZM2G306032
    Variation: September 1st, 2003
Gene Model: April 25th, 2020
4 years agoIDP498  :
4.09
GRMZM2G474119
    Variation: March 31st, 2005
Gene Model: April 25th, 2020
4 years agoIDP276  :
4.08
GRMZM2G076087
    Variation: March 31st, 2005
Gene Model: April 24th, 2020
4 years agopco123260  :
4.07
GRMZM2G079353
    Variation: September 25th, 2007
Gene Model: April 23rd, 2020
4 years agoIDP1421  :
4.07
GRMZM2G010491
    Variation: March 31st, 2005
Gene Model: April 22nd, 2020
4 years agopco068393  :
4.07
GRMZM2G054012
    Variation: September 25th, 2007
Gene Model: April 21st, 2020
4 years agoIDP851  :
4.06
GRMZM2G119258
    Variation: March 31st, 2005
Gene Model: April 20th, 2020
4 years agoIDP325  :
4.06
GRMZM2G043414
    Variation: March 31st, 2005
Gene Model: April 19th, 2020
4 years agoIDP2421  :
4.06
GRMZM2G146786
    Variation: March 31st, 2005
Gene Model: April 18th, 2020
4 years agocsu716  :
4.05
GRMZM2G045944
    Variation: September 1st, 2003
Gene Model: April 17th, 2020
4 years agoIDP476  :
4.05
GRMZM2G112050
    Variation: March 31st, 2005
Gene Model: April 14th, 2020
4 years agoIDP68  :
4.05
GRMZM2G131595
    Variation: March 31st, 2005
Gene Model: April 14th, 2020
4 years agoIDP454  :
4.04
GRMZM2G090010
    Variation: March 31st, 2005
Gene Model: April 13th, 2020
4 years agoIDP388  :
4.03
GRMZM2G574782
    Variation: March 31st, 2005
Gene Model: April 12th, 2020
4 years agoIDP85  :
4.02
GRMZM2G133756
    Variation: March 31st, 2005
Gene Model: April 11th, 2020
4 years agoumc2048  :
3.09
GRMZM2G319878
    Variation: February 25th, 2007
Gene Model: April 10th, 2020
4 years agoumc1286  :
3.07
GRMZM2G425249
    Variation: September 1st, 2003
Gene Model: April 8th, 2020
4 years agocl23834_1  :
3.07
GRMZM2G005082
    Variation: September 25th, 2007
Gene Model: April 7th, 2020
4 years agoppr19 pentatricopeptide repeat protein19:
3.07
GRMZM2G105827
    Gene Product: December 27th, 2016
Gene Model: April 7th, 2020
4 years agogpm649  :
3.07
GRMZM2G128688
    Variation: September 25th, 2007
Gene Model: April 7th, 2020
4 years agocsu471  :
9.02
GRMZM2G109720
Kost, MA et al. 2020. Evolutionary Applications doi: 10.1111/eva.12954     Reference: April 6th, 2020
Variation: September 1st, 2003
Gene Model: March 1st, 2018
4 years agocsu180  :
3.06
AC213654.3_FG001
Baysdorfer, C. 1994. cDNA sequence submission to dbEST     Reference: September 1st, 2003
Variation: September 1st, 2003
Gene Model: April 6th, 2020
4 years agoIDP750  :
2.05
GRMZM2G116812
Zhu, Y-X et al. 2020. Int J Mol Sci 21:2529     Reference: April 6th, 2020
Variation: March 31st, 2005
Gene Model: February 19th, 2019
4 years agoIDP1436  :
8.06
GRMZM5G805585
Kost, MA et al. 2020. Evolutionary Applications doi: 10.1111/eva.12954     Reference: April 6th, 2020
Variation: March 31st, 2005
Gene Model: September 3rd, 2019
4 years agoumc1400  :
3.05 - 3.06
GRMZM2G093119
    Variation: September 1st, 2003
Gene Model: April 5th, 2020
4 years agoumc1954  :
3.05
GRMZM2G179465
    Variation: September 1st, 2003
Gene Model: April 4th, 2020
4 years agocsu268  :
3.05
GRMZM5G801369
Baysdorfer, C. 1994. cDNA sequence submission to dbEST     Reference: September 1st, 2003
Variation: September 1st, 2003
Gene Model: April 4th, 2020
4 years agooec2 oxygen evolving complex2:
2.03
GRMZM2G021617
Yan, Z et al. 2020. J Plant Physiol 248:153158     Reference: April 3rd, 2020
Variation: February 6th, 2015
Gene Model: October 13th, 2018
4 years agoumc1347  :
3.04
GRMZM2G096548
    Variation: September 1st, 2003
Gene Model: March 30th, 2020
4 years agocl14964_1  :
3.04
GRMZM2G151653
    Variation: September 25th, 2007
Gene Model: March 30th, 2020
4 years agopco137802  :
3.04
GRMZM2G022088
    Variation: September 25th, 2007
Gene Model: March 29th, 2020
4 years agoxer3 xerico3:
 
GRMZM2G005840
Shi, QB et al. 2019. Biochem Biophys Res Commun pp.doi: 10.1016/j.bbrc.2019.05.142     Reference: June 17th, 2019
Gene Product: March 26th, 2020
Variation: September 14th, 2017
Gene Model: September 14th, 2017
4 years agoxer2 xerico2:
 
GRMZM2G393349
Brugiere, N et al. 2017. Plant Physiol pp.doi: 10.1104/pp.17.01072     Reference: September 14th, 2017
Gene Product: March 26th, 2020
Gene Model: September 14th, 2017
4 years agoxer4 xerico4:
 
GRMZM2G029623
Brugiere, N et al. 2017. Plant Physiol pp.doi: 10.1104/pp.17.01072     Reference: September 14th, 2017
Gene Product: March 26th, 2020
Gene Model: September 14th, 2017
4 years agoogdh2 2-oxoglutarate dehydrogenase2:
 
   Eprinstev, AT et al. 2020. Russ J Plant Physiol 67:378-385     Reference: March 25th, 2020
Gene Product: March 25th, 2020
4 years agocsu622  :
2.09
GRMZM2G001444
    Variation: September 1st, 2003
Gene Model: March 23rd, 2020
4 years agoIDP2586  :
2.05
GRMZM2G106604
    Variation: March 31st, 2005
Gene Model: March 23rd, 2020
4 years agouaz265b(sbe)  :
 
GRMZM2G169073
Yan, H-B et al. 2009. Theor Appl Genet 119:815-825     Reference: March 21st, 2020
Gene Product: September 1st, 2003
Gene Model: February 7th, 2015
4 years agoumc1554  :
2.07
GRMZM2G002879
    Variation: September 1st, 2003
Gene Model: March 21st, 2020
4 years agoisol1 isoamylase3-like1:
 
GRMZM2G385578
Yan, H-B et al. 2009. Theor Appl Genet 119:815-825     Reference: March 21st, 2020
Gene Product: October 25th, 2011
Gene Model: March 21st, 2020
4 years agoIDP738  :
1.10
GRMZM2G443453
Lin, M et al. 2020. G3 pp.doi: 10.1534/g3.119.400884     Reference: March 19th, 2020
Variation: March 31st, 2005
Gene Model: February 16th, 2019
4 years agoeif2 elongation initiation factor2:
7.04
GRMZM2G107654
Wang, Y-F et al. 2020. Genomics Proteomics Bioinformatics doi: 10.1016/j.gpb.2018.05.005     Reference: March 18th, 2020
Gene Product: September 1st, 2003
Variation: July 8th, 2017
Gene Model: January 13th, 2015
4 years agouce7 ubiquitin conjugating enzyme7:
 
GRMZM2G053764
Wang, Y-F et al. 2020. Genomics Proteomics Bioinformatics doi: 10.1016/j.gpb.2018.05.005     Reference: March 18th, 2020
Gene Product: December 19th, 2019
Variation: August 23rd, 2017
Gene Model: August 23rd, 2017
4 years agogpat11 glycerol-3-phosphate acyltransferase11:
 
GRMZM2G059637
Wang, Y-F et al. 2020. Genomics Proteomics Bioinformatics doi: 10.1016/j.gpb.2018.05.005     Reference: March 18th, 2020
Gene Product: March 25th, 2019
Gene Model: March 25th, 2019
4 years agoc3h55 C3H-transcription factor 55:
2.04
GRMZM2G021834
    Variation: September 1st, 2003
Gene Model: March 16th, 2020
4 years agohak8 potassium high-affinity transporter8:
1.04
GRMZM2G173387
Zhang, ZB et al. 2012. Mol Biol Rep 39:8465-8473     Reference: March 16th, 2020
Gene Product: March 12th, 2020
Gene Model: February 7th, 2020
4 years agohak2 potassium high-affinity transporter2:
 
AC233953.1_FG005
Zhang, ZB et al. 2012. Mol Biol Rep 39:8465-8473     Reference: March 16th, 2020
Gene Product: March 12th, 2020
Gene Model: March 12th, 2020
4 years agohak9 potassium high-affinity transporter9:
 
GRMZM2G166738
Zhang, ZB et al. 2012. Mol Biol Rep 39:8465-8473     Reference: March 16th, 2020
Gene Product: March 12th, 2020
Gene Model: March 12th, 2020
4 years agohak11 potassium high-affinity transporter11:
 
GRMZM2G005040
Zhang, ZB et al. 2012. Mol Biol Rep 39:8465-8473     Reference: March 16th, 2020
Gene Product: March 12th, 2020
Gene Model: March 12th, 2020
4 years agohak12 potassium high-affinity transporter12:
 
GRMZM2G009353
Zhang, ZB et al. 2012. Mol Biol Rep 39:8465-8473     Reference: March 16th, 2020
Gene Product: March 12th, 2020
Gene Model: March 12th, 2020
4 years agohak13 potassium high-affinity transporter13:
 
GRMZM2G146140
Zhang, ZB et al. 2012. Mol Biol Rep 39:8465-8473     Reference: March 16th, 2020
Gene Product: March 12th, 2020
Gene Model: March 12th, 2020
4 years agohak15 potassium high-affinity transporter15:
 
GRMZM2G121063
Zhang, ZB et al. 2012. Mol Biol Rep 39:8465-8473     Reference: March 16th, 2020
Gene Product: March 12th, 2020
Gene Model: March 12th, 2020
4 years agohak18 potassium high-affinity transporter18:
 
GRMZM2G086389
Zhang, ZB et al. 2012. Mol Biol Rep 39:8465-8473     Reference: March 16th, 2020
Gene Product: March 12th, 2020
Gene Model: March 12th, 2020
4 years agohak27 potassium high-affinity transporter27:
 
GRMZM2G455817
Zhang, ZB et al. 2012. Mol Biol Rep 39:8465-8473     Reference: March 16th, 2020
Gene Product: March 12th, 2020
Gene Model: March 12th, 2020
4 years agoIDP1415  :
2.04
GRMZM2G021834
    Variation: March 31st, 2005
Gene Model: March 15th, 2020
4 years agopmei50 pectin methylesterase inhibitor50:
 
AC194254.3_FG004
Tran, QH et al. 2020. Genes 11:281     Reference: March 6th, 2020
Gene Product: January 8th, 2019
Gene Model: March 6th, 2020
4 years agoIDP3798  :
1.09
GRMZM2G075974
    Variation: March 31st, 2005
Gene Model: February 15th, 2020
4 years agohdac1 histone deacetylase1:
 
GRMZM2G163572
Zhang, K et al. 2020. PeerJ DOI: 10.7717/peerj.8539     Reference: February 12th, 2020
Gene Product: February 12th, 2020
Gene Model: February 12th, 2020
4 years agopmei3 pectin methylesterase inhibitor3:
6.05
   Zhang, XY et al. 2020. BMC Plant Biology 20:67     Reference: February 11th, 2020
Gene Product: January 8th, 2019
Variation: September 25th, 2007
4 years agofuct1 alpha 1,3-fucosyltransferase:
 
GRMZM2G103939
Bondili, JS et al. 2006. Phytochemistry 67:2215-2224     Reference: February 10th, 2020
Gene Product: February 10th, 2020
Gene Model: February 10th, 2020
4 years agodhn6 dehydrin6:
3.07
GRMZM2G031308
Zhang, X et al. 2020. Elife 9:e51918   AT4G23630 (TAIR) Reference: February 6th, 2020
Gene Product: August 5th, 2017
Variation: February 9th, 2014
Gene Model: July 27th, 2016
4 years agodhn7 dehydrin7:
 
GRMZM2G002786
Zhang, X et al. 2020. Elife 9:e51918   AT4G23630 (TAIR) Reference: February 6th, 2020
Gene Product: August 5th, 2017
Variation: February 9th, 2014
Gene Model: July 27th, 2016
4 years agocl244_1  :
1.02
GRMZM2G093125
    Variation: September 25th, 2007
Gene Model: February 4th, 2020
4 years agocsu738  :
1.01 - 1.01
GRMZM2G109725
    Variation: September 1st, 2003
Gene Model: February 2nd, 2020
4 years agogalox1 galactose oxidase1:
 
GRMZM2G070555
Liu, HJ et al. 2020. Genome Biol 21:20     Reference: January 25th, 2020
Gene Product: January 25th, 2020
Gene Model: January 25th, 2020
4 years agoIDP139  :
6.01
GRMZM2G102923
    Variation: March 31st, 2005
Gene Model: January 17th, 2020
4 years agomagi7438  :
6.01
GRMZM2G342243
    Variation: March 31st, 2005
Gene Model: January 17th, 2020
4 years agod*-3010 dwarf candidate3010:
9.03
   Incognito, SJP et al. 2020. Euphytica 216:20     Reference: January 14th, 2020
Variation: September 1st, 2003
4 years agogl*-N681A glossyN681A:
5.00 - 5.04
   Incognito, SJP et al. 2020. Euphytica 216:20     Reference: January 14th, 2020
Variation: September 1st, 2003
4 years agoIDP659  :
6.04
GRMZM2G331316
    Variation: March 31st, 2005
Gene Model: January 13th, 2020
4 years agotubg2 gamma-tubulin2:
6.05
GRMZM2G085970
    Gene Product: January 12th, 2020
Variation: July 22nd, 2015
Gene Model: May 8th, 2015
4 years agotubg1 gamma-tubulin1:
 
GRMZM2G073888
Lopez, I; Khan, S; Sevik, M; Cande, WZ; Hussey, PJ. 1995. Plant Physiol 107:309-310     Reference: September 1st, 2003
Gene Product: January 12th, 2020
Variation: July 22nd, 2015
Gene Model: July 22nd, 2015
4 years agotubg3 gamma-tubulin 3:
 
GRMZM2G008093
    Gene Product: January 12th, 2020
Gene Model: January 11th, 2020
4 years agoAI665898  :
6.05
GRMZM2G142409
    Variation: March 31st, 2005
Gene Model: January 12th, 2020
4 years agoIDP1959  :
6.05
GRMZM2G558539
    Variation: March 31st, 2005
Gene Model: January 11th, 2020
4 years agodtc2 dicarboxylate/tricarboxylate transporter2:
6.05
GRMZM2G051630
Dong, ZB et al. 2018. Nucl Acid Res 46:5012-5028     Reference: November 22nd, 2019
Gene Product: January 11th, 2020
Gene Model: November 22nd, 2019
4 years agoznf7 zinc finger protein7:
 
GRMZM2G302912
    Gene Product: January 9th, 2020
Gene Model: January 8th, 2020
4 years agoznf8 zinc finger protein8:
6.05
GRMZM2G061980
    Gene Product: January 9th, 2020
Gene Model: January 8th, 2020
4 years agoIDP86  :
6.05
GRMZM5G874277
    Variation: March 31st, 2005
Gene Model: January 9th, 2020
4 years agoras1 ras related protein1:
2.04
GRMZM2G330430
Zhang, JM et al. 2007. J Integr Plant Biol 49:1129-1141     Reference: January 12th, 2011
Gene Product: January 7th, 2020
Variation: January 14th, 2011
Gene Model: October 25th, 2013
4 years agoIDP635  :
6.05
GRMZM2G088669
    Variation: March 31st, 2005
Gene Model: January 7th, 2020
4 years agoosca11 hyperosmolality-gated calcium-permeable channels11:
 
GRMZM2G162253
Cao, LR et al. 2019. Int J Mol Sci 21:351     Reference: January 6th, 2020
Gene Product: January 6th, 2020
Gene Model: January 6th, 2020
4 years agoAY104589  :
6.05
GRMZM2G479608
    Variation: March 21st, 2007
Gene Model: January 6th, 2020
4 years agoumc1462  :
6.05
GRMZM2G033641
    Variation: September 1st, 2003
Gene Model: January 5th, 2020
4 years agorpl33 50S ribosomal protein L33:
6.06
GRMZM2G176133
    Variation: March 31st, 2005
Gene Model: December 31st, 2019
4 years agosrs3 SHI/STY (SRS)-transcription factor 3:
 
   He, B et al. 2019. J Genet 99:3     Reference: December 30th, 2019
Gene Product: April 27th, 2015
4 years agosrs4 SHI/STY (SRS)-transcription factor 4:
 
   He, B et al. 2019. J Genet 99:3     Reference: December 30th, 2019
Gene Product: April 27th, 2015
4 years agosrs5 SHI/STY (SRS)-transcription factor 5:
 
   He, B et al. 2019. J Genet 99:3     Reference: December 30th, 2019
Gene Product: April 27th, 2015
4 years agosrs6 SHI/STY (SRS)-transcription factor 6:
 
   He, B et al. 2019. J Genet 99:3     Reference: December 30th, 2019
Gene Product: April 27th, 2015
4 years agosrs8 SHI/STY (SRS)-transcription factor 8:
 
   He, B et al. 2019. J Genet 99:3     Reference: December 30th, 2019
Gene Product: April 27th, 2015
4 years agogeb5 glucan endo-1,3-beta-glucosidase homolog5:
 
GRMZM2G310739
    Gene Product: September 1st, 2003
Gene Model: December 30th, 2019
4 years agopmei40 pectin methylesterase inhibitor40:
9.03
GRMZM2G040311
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei17 pectin methylesterase inhibitor17:
1.11
GRMZM2G458349
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopme44 pectin methylesterase44:
 
GRMZM2G043415
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
4 years agopme18 pectin methylesterase18:
 
GRMZM2G062996
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
4 years agopme9 pectin methylesterase9:
 
GRMZM2G352359
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
4 years agopme21 pectin methylesterase21:
 
AC212451.4_FG009
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
4 years agopme23 pectin methylesterase23:
 
GRMZM2G442593
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
4 years agopme27 pectin methylesterase27:
 
GRMZM2G123018
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
4 years agopme29 pectin methylesterase29:
 
GRMZM2G440016
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: September 10th, 2018
Gene Model: December 28th, 2019
4 years agopmei13 pectin methylesterase inhibitor13:
 
GRMZM2G482245
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei7 pectin methylesterase inhibitor7:
 
GRMZM2G451028
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei8 pectin methylesterase inhibitor8:
 
GRMZM2G439908
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei10 pectin methylesterase inhibitor10:
 
GRMZM2G369432
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei12 pectin methylesterase inhibitor12:
 
GRMZM2G362828
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei14 pectin methylesterase inhibitor14:
 
GRMZM2G339129
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei11 pectin methylesterase inhibitor11:
 
GRMZM5G891247
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei18 pectin methylesterase inhibitor18:
 
GRMZM2G174263
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei20 pectin methylesterase inhibitor20:
 
GRMZM2G164929
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei22 pectin methylesterase inhibitor22:
 
GRMZM2G157873
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei23 pectin methylesterase inhibitor23:
 
GRMZM2G157825
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei24 pectin methylesterase inhibitor24:
 
GRMZM2G152141
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei25 pectin methylesterase inhibitor25:
 
GRMZM2G138999
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei27 pectin methylesterase inhibitor27:
 
GRMZM2G129092
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei29 pectin methylesterase inhibitor29:
 
GRMZM2G116140
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei30 pectin methylesterase inhibitor30:
 
GRMZM2G101945
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei33 pectin methylesterase inhibitor33:
 
GRMZM2G078886
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei34 pectin methylesterase inhibitor34:
 
GRMZM2G078804
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei35 pectin methylesterase inhibitor35:
 
GRMZM2G067710
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei37 pectin methylesterase inhibitor37:
 
GRMZM2G057220
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei39 pectin methylesterase inhibitor39:
 
GRMZM2G046111
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei41 pectin methylesterase inhibitor41:
 
GRMZM2G035490
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei42 pectin methylesterase inhibitor42:
 
GRMZM2G034846
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei43 pectin methylesterase inhibitor43:
 
GRMZM2G008047
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei45 pectin methylesterase inhibitor45:
 
AC233850.1_FG003
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei47 pectin methylesterase inhibitor47:
 
AC213432.2_FG004
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei48 pectin methylesterase inhibitor48:
 
AC212023.4_FG004
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei49 pectin methylesterase inhibitor49:
 
AC186577.3_FG006
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: December 28th, 2019
4 years agopmei19 pectin methylesterase inhibitor19:
4.11
GRMZM2G167149
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Variation: June 7th, 2018
Gene Model: June 8th, 2018
4 years agopmei2 pectin methylesterase inhibitor2:
 
GRMZM2G122230
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: January 8th, 2019
4 years agopmei4 pectin methylesterase inhibitor4:
 
GRMZM2G457612
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: January 8th, 2019
4 years agopmei6 pectin methylesterase inhibitor6:
 
GRMZM2G343236
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: January 8th, 2019
4 years agopmei1 pectin methylesterase inhibitor1:
6.07
GRMZM2G079661
Zhang, PP et al. 2019. Sci. Rep. 9:19918     Reference: December 27th, 2019
Gene Product: January 8th, 2019
Gene Model: January 8th, 2019
4 years agosig2 Sigma70-like-transcription factor 2:
 
   Hendron, R-W; Kelly, S. 2019. Plant Physiol pp.doi: 10.1104/pp.19.01053     Reference: December 23rd, 2019
Gene Product: December 24th, 2019
4 years agosig7 Sigma70-like-transcription factor 7:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: December 24th, 2019
4 years agompkl2 MAP kinase-like2:
 
GRMZM2G178822
Zhu, D et al. 2019. Plant J pp.doi: 10.1111/tpj.14660     Reference: December 21st, 2019
Gene Product: May 13th, 2014
Gene Model: December 21st, 2019
4 years agompkl4 MAP kinase-like4:
 
GRMZM2G045241
Zhu, D et al. 2019. Plant J pp.doi: 10.1111/tpj.14660     Reference: December 21st, 2019
Gene Product: May 13th, 2014
Gene Model: December 21st, 2019
4 years agonudix22 nudix type motif 22:
 
GRMZM5G886561
    Gene Product: June 18th, 2014
Gene Model: December 21st, 2019
4 years agouce8 ubiquitin conjugating enzyme8:
5.03
GRMZM2G146374
    Gene Product: December 19th, 2019
Variation: August 23rd, 2017
Gene Model: August 23rd, 2017
4 years agouce5 ubiquitin conjugating enzyme5:
1.10
GRMZM2G022859
Beavis, WD et al. 1991. Theor Appl Genet 83:141-145     Reference: September 1st, 2003
Gene Product: December 19th, 2019
Variation: September 16th, 2016
Gene Model: September 16th, 2016
4 years agouce1 ubiquitin conjugating enzyme1:
1.08
GRMZM2G053764
Helentjaris, T et al. 1994. MNL 68:101-104     Reference: September 1st, 2003
Gene Product: December 19th, 2019
Variation: August 23rd, 2017
Gene Model: July 7th, 2017
4 years agouce2 ubiquitin conjugating enzyme2:
9.01
GRMZM2G177276
Hawkins, JS et al. 2014. Plant J 79:375-384     Reference: September 25th, 2015
Gene Product: December 19th, 2019
Gene Model: April 26th, 2014
4 years agouce6 ubiquitin conjugating enzyme6:
 
GRMZM2G018447
    Gene Product: December 19th, 2019
Variation: August 23rd, 2017
Gene Model: July 7th, 2017
4 years agouce11 ubiquitin conjugating enzyme11:
 
GRMZM2G464572
Du, QG et al. 2018. Plant Physiol pp.doi: 10.1104/pp.18.00034   AT2G33770 (TAIR) Reference: July 2nd, 2018
Gene Product: December 19th, 2019
Gene Model: July 2nd, 2018
4 years agocal6 calmodulin6:
 
GRMZM2G142693
Parish, F et al. 2019. Front Microbiol 10:2683     Reference: December 19th, 2019
Gene Product: September 1st, 2003
Gene Model: December 19th, 2019
4 years agoIDP1627  :
6.01
GRMZM2G112238
    Variation: March 31st, 2005
Gene Model: December 17th, 2019
4 years agolimtf12 LIM-transcription factor 12:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: December 16th, 2019
4 years agolimtf3 LIM-transcription factor 3:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: December 16th, 2019
4 years agolimtf7 LIM-transcription factor 7:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: December 16th, 2019
4 years agolimtf10 LIM-transcription factor 10:
6.01
GRMZM2G004959
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: December 16th, 2019
Gene Model: December 16th, 2019
4 years agompk16 MAP kinase16:
 
GRMZM2G034052
Bin Khalid, MH et al. 2019. Int J Mol Sci 20:E6173     Reference: December 13th, 2019
Gene Product: July 12th, 2013
Gene Model: December 13th, 2019
4 years agosksc1 silk scar color1:
 
   Stinard, PS. 2017. MNL 91     Reference: March 21st, 2018
Variation: December 10th, 2019
4 years agosmc2 structural maintenance of chromosomes2:
 
GRMZM2G006452
Wang, HF et al. 2019. Plant J pp.doi: 10.1111/tpj.14639   AT3G47460 (TAIR) Reference: December 10th, 2019
Gene Product: December 10th, 2019
Gene Model: December 10th, 2019
4 years agosmc4 structural maintenance of chromosomes4:
6.06
GRMZM2G383623
Wang, HF et al. 2019. Plant J pp.doi: 10.1111/tpj.14639   AT5G48600 (TAIR) Reference: December 10th, 2019
Gene Product: December 10th, 2019
Gene Model: December 10th, 2019
4 years agocsu173  :
5.05
   Watkins, KP et al. 2019. Plant J pp.doi: 10.1111/tpj.14629     Reference: December 4th, 2019
Variation: September 1st, 2003
4 years agoriba3 monofunctional riboflavin biosynthesis proteinA3:
 
GRMZM2G336908
Watkins, KP et al. 2019. Plant J pp.doi: 10.1111/tpj.14629   AT5G59750 (TAIR) Reference: December 4th, 2019
Variation: December 4th, 2019
Gene Model: December 4th, 2019
4 years agoIDP447  :
6.00
GRMZM5G871143
    Variation: March 31st, 2005
Gene Model: December 4th, 2019
4 years agonlp1 NLP-transcription factor 1:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: December 3rd, 2019
4 years agonlp10 NLP-transcription factor 10:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: December 3rd, 2019
4 years agonlp11 NLP-transcription factor 11:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: December 3rd, 2019
4 years agonlp12 NLP-transcription factor 12:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: December 3rd, 2019
4 years agonlp16 NLP-transcription factor 16:
 
   Wang, YL et al. 2019. Mol Genet Genomics pp.doi: 10.1007/s00438-019-01586-4     Reference: July 10th, 2019
Gene Product: December 3rd, 2019
4 years agonlp3 NLP-transcription factor 3:
 
   Ge, M et al. 2018. Plant Growth Regulation 84:95-105     Reference: December 3rd, 2019
Gene Product: December 3rd, 2019
4 years agoupl8 ubiquitin-protein ligase8:
7.03
GRMZM2G181378
Li, YF et al. 2019. Genetica pp.doi: 10.1007/s10709-019-00080-4     Reference: November 19th, 2019
Gene Product: November 26th, 2019
Gene Model: September 7th, 2018
4 years agoupl3 ubiquitin-protein ligase3:
 
GRMZM2G411536
Li, YF et al. 2019. Genetica pp.doi: 10.1007/s10709-019-00080-4     Reference: November 19th, 2019
Gene Product: November 26th, 2019
Gene Model: November 19th, 2019
4 years agoupl5 ubiquitin-protein ligase5:
 
GRMZM2G034622
Li, YF et al. 2019. Genetica pp.doi: 10.1007/s10709-019-00080-4     Reference: November 19th, 2019
Gene Product: November 26th, 2019
Gene Model: November 19th, 2019
4 years agoupl6 ubiquitin-protein ligase6:
 
GRMZM2G124297
Li, YF et al. 2019. Genetica pp.doi: 10.1007/s10709-019-00080-4     Reference: November 19th, 2019
Gene Product: November 26th, 2019
Gene Model: November 19th, 2019
4 years agoupl7 ubiquitin-protein ligase7:
 
GRMZM2G380619
Li, YF et al. 2019. Genetica pp.doi: 10.1007/s10709-019-00080-4     Reference: November 19th, 2019
Gene Product: November 26th, 2019
Gene Model: November 19th, 2019
4 years agoupl9 ubiquitin-protein ligase9:
 
GRMZM2G021299
Li, YF et al. 2019. Genetica pp.doi: 10.1007/s10709-019-00080-4     Reference: November 19th, 2019
Gene Product: November 26th, 2019
Gene Model: November 19th, 2019
4 years agoupl11 ubiquitin-protein ligase11:
 
GRMZM2G101098
Li, YF et al. 2019. Genetica pp.doi: 10.1007/s10709-019-00080-4     Reference: November 19th, 2019
Gene Product: November 26th, 2019
Gene Model: November 19th, 2019
4 years agosae3 SUMO-activating enzyme3:
 
   Augustine, RC et al. 2016. Plant Physiol pp.DOI: 10.1104/pp.16.00353     Reference: May 23rd, 2016
Gene Product: November 26th, 2019
4 years agoumc1170  :
9.02
GRMZM2G016323
Dong, ZB et al. 2018. Nucl Acid Res 46:5012-5028     Reference: November 22nd, 2019
Variation: September 1st, 2003
Gene Model: March 7th, 2018
4 years agoAY110260  :
6.05
GRMZM2G319109
Dong, ZB et al. 2018. Nucl Acid Res 46:5012-5028     Reference: November 22nd, 2019
Variation: September 25th, 2007
Gene Model: August 27th, 2018
4 years agorfa1 replication factor A homolog1:
 
   Zheng, ZH et al. 2019. Plant Physiol pp.doi: 10.1104/pp.19.00752     Reference: November 19th, 2019
Gene Product: September 1st, 2003
Variation: December 30th, 2010
4 years agoyab1 C2C2-YABBY-transcription factor 1:
 
   Liu, L et al. 2019. Mol Breed 39:157     Reference: November 18th, 2019
Gene Product: October 16th, 2015
4 years agoaco8 aconitase8:
 
GRMZM2G467338
    Gene Product: September 1st, 2003
Gene Model: November 15th, 2019
4 years agoaco9 aconitase9:
 
GRMZM2G325666
    Gene Product: September 1st, 2003
Gene Model: November 15th, 2019
4 years agoatp11 ATPase11:
 
GRMZM2G115372
Chaengsakul, C et al. 2019. J Integr Agric 18:2435-2445     Reference: November 7th, 2019
Gene Product: November 7th, 2019
Gene Model: November 7th, 2019
4 years agotlc6 TRAM/LAG/CRN8 6:
3.06
GRMZM2G077279
Si, WN et al. 2019. Int J Mol Sci 20:5484     Reference: November 4th, 2019
Gene Product: November 4th, 2019
Gene Model: November 4th, 2019
4 years agotlc7 TRAM/LAG/CRN8 7:
3.06
GRMZM2G021589
Si, WN et al. 2019. Int J Mol Sci 20:5484     Reference: November 4th, 2019
Gene Product: November 4th, 2019
Gene Model: November 4th, 2019
4 years agotlc1 TRAM/LAG/CRN8 1:
 
GRMZM2G151521
Si, WN et al. 2019. Int J Mol Sci 20:5484     Reference: November 4th, 2019
Gene Product: November 4th, 2019
Gene Model: November 4th, 2019
4 years agotlc2 TRAM/LAG/CRN8 2:
 
GRMZM2G429128
Si, WN et al. 2019. Int J Mol Sci 20:5484     Reference: November 4th, 2019
Gene Product: November 4th, 2019
Gene Model: November 4th, 2019
4 years agotlc3 TRAM/LAG/CRN8 3:
 
GRMZM2G138330
Si, WN et al. 2019. Int J Mol Sci 20:5484     Reference: November 4th, 2019
Gene Product: November 4th, 2019
Gene Model: November 4th, 2019
4 years agotlc4 TRAM/LAG/CRN8 4:
 
GRMZM2G132084
Si, WN et al. 2019. Int J Mol Sci 20:5484     Reference: November 4th, 2019
Gene Product: November 4th, 2019
Gene Model: November 4th, 2019
4 years agotlc5 TRAM/LAG/CRN8 5:
 
GRMZM2G163426
Si, WN et al. 2019. Int J Mol Sci 20:5484     Reference: November 4th, 2019
Gene Product: November 4th, 2019
Gene Model: November 4th, 2019
4 years agotlc8 TRAM/LAG/CRN8 8:
 
GRMZM2G170868
Si, WN et al. 2019. Int J Mol Sci 20:5484     Reference: November 4th, 2019
Gene Product: November 4th, 2019
Gene Model: November 4th, 2019
4 years agotlc11 TRAM/LAG/CRN8 11:
 
GRMZM2G444643
Si, WN et al. 2019. Int J Mol Sci 20:5484     Reference: November 4th, 2019
Gene Product: November 4th, 2019
Gene Model: November 4th, 2019
4 years agotlc13 TRAM/LAG/CRN8 13:
 
GRMZM2G016551
Si, WN et al. 2019. Int J Mol Sci 20:5484     Reference: November 4th, 2019
Gene Product: November 4th, 2019
Gene Model: November 4th, 2019
4 years agotlc15 TRAM/LAG/CRN8 15:
 
   Si, WN et al. 2019. Int J Mol Sci 20:5484     Reference: November 4th, 2019
Gene Product: November 4th, 2019
4 years agotlc16 TRAM/LAG/CRN8 16:
 
GRMZM2G075023
Si, WN et al. 2019. Int J Mol Sci 20:5484     Reference: November 4th, 2019
Gene Product: November 4th, 2019
Gene Model: November 4th, 2019
4 years agotlc18 TRAM/LAG/CRN8 18:
 
GRMZM2G083427
Si, WN et al. 2019. Int J Mol Sci 20:5484     Reference: November 4th, 2019
Gene Product: November 4th, 2019
Gene Model: November 4th, 2019
4 years agotlc10 TRAM/LAG/CRN8 10:
5.02
GRMZM2G016184
Si, WN et al. 2019. Int J Mol Sci 20:5484     Reference: November 4th, 2019
Gene Product: November 4th, 2019
Gene Model: November 4th, 2019
4 years agovpp10 vacuolar proton pump10:
 
GRMZM2G163233
Kang, C et al. 2019. Int J Mol Sci 20:E5125     Reference: October 19th, 2019
Gene Product: September 1st, 2003
Gene Model: October 19th, 2019
4 years agoktn2 katanin2:
 
GRMZM2G054715
Lau, KH. 2016. Co-orthologs of KATANIN1 impact plant morphology and show differential evolution in maize. Ph.D. dissertation, Purdue University, 145pp     Reference: October 15th, 2019
Gene Product: October 15th, 2019
Variation: October 15th, 2019
Gene Model: October 15th, 2019
4 years agotcptf39 TCP-transcription factor 39:
 
   Gyawali, A et al. 2019. BMC Plant Biology 19:412     Reference: October 8th, 2019
Gene Product: September 27th, 2019
4 years agotcptf11 TCP-transcription factor 11:
 
   Pecher, P et al. 2019. PloS Pathogens 15: e1008035     Reference: September 27th, 2019
Gene Product: September 27th, 2019
4 years agotcptf13 TCP-transcription factor 13:
 
   Pecher, P et al. 2019. PloS Pathogens 15: e1008035     Reference: September 27th, 2019
Gene Product: September 27th, 2019
4 years agotcptf17 TCP-transcription factor 17:
 
   Pecher, P et al. 2019. PloS Pathogens 15: e1008035     Reference: September 27th, 2019
Gene Product: September 27th, 2019
4 years agotcptf28 TCP-transcription factor 28:
 
   Pecher, P et al. 2019. PloS Pathogens 15: e1008035     Reference: September 27th, 2019
Gene Product: September 27th, 2019
4 years agotcptf32 TCP-transcription factor 32:
 
   Pecher, P et al. 2019. PloS Pathogens 15: e1008035     Reference: September 27th, 2019
Gene Product: September 27th, 2019
4 years agotcptf35 TCP-transcription factor 35:
 
   Pecher, P et al. 2019. PloS Pathogens 15: e1008035     Reference: September 27th, 2019
Gene Product: September 27th, 2019
4 years agotcptf36 TCP-transcription factor 36:
 
   Pecher, P et al. 2019. PloS Pathogens 15: e1008035     Reference: September 27th, 2019
Gene Product: September 27th, 2019
4 years agotcptf37 TCP-transcription factor 37:
 
   Pecher, P et al. 2019. PloS Pathogens 15: e1008035     Reference: September 27th, 2019
Gene Product: September 27th, 2019
4 years agotcptf41 TCP-transcription factor 41:
 
   Pecher, P et al. 2019. PloS Pathogens 15: e1008035     Reference: September 27th, 2019
Gene Product: September 27th, 2019
4 years agotcptf42 TCP-transcription factor 42:
 
   Pecher, P et al. 2019. PloS Pathogens 15: e1008035     Reference: September 27th, 2019
Gene Product: September 27th, 2019
4 years agotcptf6 TCP-transcription factor 6:
 
   Pecher, P et al. 2019. PloS Pathogens 15: e1008035     Reference: September 27th, 2019
Gene Product: September 27th, 2019
4 years agotcptf8 TCP-transcription factor 8:
 
   Pecher, P et al. 2019. PloS Pathogens 15: e1008035     Reference: September 27th, 2019
Gene Product: September 27th, 2019
4 years agoles1 lesion1:
2.03 - 2.04
   Neuffer, MG et al. 1983. pp.123-134 in Reddy, GM and Coe, E. 1983. Oxford and IBH Pub, New Delhi     Reference: September 24th, 2019
Variation: September 1st, 2003
4 years agoles*-N1378 lesion candidate 1378:
 
   Neuffer, MG et al. 1983. pp.123-134 in Reddy, GM and Coe, E. 1983. Oxford and IBH Pub, New Delhi     Reference: September 24th, 2019
Variation: September 1st, 2003
4 years agoles21 lesion21:
 
   Neuffer, MG et al. 1983. pp.123-134 in Reddy, GM and Coe, E. 1983. Oxford and IBH Pub, New Delhi     Reference: September 24th, 2019
Variation: September 1st, 2003
4 years agomn5 miniature5:
5.04
   Sheridan, WF; Neuffer, MG pp.105-122 in Reddy, GM and Coe, EH (eds). 1983. Gene Structure and Function in Higher Plants     Reference: September 18th, 2019
Variation: February 9th, 2006
4 years agorgh*-N1524 roughN1524:
10.00 - 10.02
   Sheridan, WF; Neuffer, MG pp.105-122 in Reddy, GM and Coe, EH (eds). 1983. Gene Structure and Function in Higher Plants     Reference: September 18th, 2019
Variation: September 1st, 2003
4 years agosmk*-N1529 small kernelN1529:
5.00 - 5.04
   Sheridan, WF; Neuffer, MG pp.105-122 in Reddy, GM and Coe, EH (eds). 1983. Gene Structure and Function in Higher Plants     Reference: September 18th, 2019
Variation: September 1st, 2003
4 years agobnlg565  :
5.01
GRMZM5G840435
Suzuki, M et al. 2019. Plant J pp.doi: 10.1111/tpj.14535     Reference: September 16th, 2019
Variation: September 1st, 2003
Gene Model: June 15th, 2018
4 years agobio1 biotin1:
 
GRMZM2G102156
Suzuki, M et al. 2019. Plant J pp.doi: 10.1111/tpj.14535     Reference: September 16th, 2019
Gene Product: September 16th, 2019
Variation: September 16th, 2019
Gene Model: September 16th, 2019
4 years agoumc1788a  :
7.00
GRMZM2G090824
    Variation: September 1st, 2003
Gene Model: September 8th, 2019
4 years agorfi1 restorer of Cms-C fertility inhibitor1:
 
   Hu, YM et al. 2006. Theor Appl Genet 113:357-360     Reference: September 7th, 2019
Variation: September 6th, 2019
4 years agorfi2 restorer of Cms-S fertility inhibitor2:
 
   Gabay-Laughnan, S et al. 2009. Genetics 182:91-103     Reference: December 21st, 2009
Variation: September 6th, 2019
4 years agocl9362_1  :
8.06
GRMZM2G461793
    Variation: September 25th, 2007
Gene Model: September 3rd, 2019
4 years agoIDP1628  :
8.09
GRMZM2G148881
    Variation: March 31st, 2005
Gene Model: September 3rd, 2019
4 years agoIDP2398  :
8.08
GRMZM2G002858
    Variation: March 31st, 2005
Gene Model: September 3rd, 2019
4 years agoIDP2402  :
8.06
GRMZM5G893263
    Variation: March 31st, 2005
Gene Model: September 3rd, 2019
4 years agoIDP27  :
8.06
GRMZM2G472991
    Variation: March 31st, 2005
Gene Model: September 3rd, 2019
4 years agoIDP763  :
8.08
GRMZM2G097032
    Variation: March 31st, 2005
Gene Model: September 3rd, 2019
4 years agoIDP771  :
8.06
GRMZM2G112079
    Variation: March 31st, 2005
Gene Model: September 3rd, 2019
4 years agoppr447 pentatricopeptide repeat protein447:
8.06
GRMZM5G838388
    Gene Product: December 27th, 2016
Gene Model: September 2nd, 2019
4 years agoppr440 pentatricopeptide repeat protein440:
8.05
GRMZM2G011491
    Gene Product: December 27th, 2016
Gene Model: September 1st, 2019
4 years agoIDP374  :
8.05
GRMZM2G456835
    Variation: March 31st, 2005
Gene Model: September 1st, 2019
4 years agoumc1605  :
1.12
GRMZM5G821637
Cao, HW et al. 2019. Plant Sci pp.doi: 10.1016/j.plantsci.2019.110243     Reference: August 31st, 2019
Variation: November 18th, 2016
Gene Model: November 18th, 2016
4 years agovq4 VQ motif-transcription factor4:
 
GRMZM2G128644
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq5 VQ motif-transcription factor5:
 
GRMZM2G174650
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq7 VQ motif-transcription factor7:
 
GRMZM2G421934
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq11 VQ motif-transcription factor11:
 
GRMZM2G174210
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq12 VQ motif-transcription factor12:
 
AC206638.3_FG007
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq13 VQ motif-transcription factor13:
 
GRMZM2G023921
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq15 VQ motif-transcription factor15:
 
GRMZM2G147443
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq16 VQ motif-transcription factor16:
 
GRMZM2G101409
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq17 VQ motif-transcription factor17:
 
GRMZM2G354123
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq18 VQ motif-transcription factor18:
 
GRMZM2G055404
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq19 VQ motif-transcription factor19:
 
GRMZM2G378442
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq20 VQ motif-transcription factor20:
 
GRMZM2G314520
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq24 VQ motif-transcription factor24:
 
GRMZM2G153597
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq25 VQ motif-transcription factor25:
 
GRMZM2G010333
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq26 VQ motif-transcription factor26:
 
GRMZM2G124290
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq27 VQ motif-transcription factor27:
 
GRMZM2G129140
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq28 VQ motif-transcription factor28:
 
GRMZM2G325208
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq31 VQ motif-transcription factor31:
 
GRMZM2G061941
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq32 VQ motif-transcription factor32:
 
GRMZM2G003669
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq34 VQ motif-transcription factor34:
 
GRMZM2G082118
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq37 VQ motif-transcription factor37:
 
GRMZM5G814101
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq38 VQ motif-transcription factor38:
 
GRMZM2G355499
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq40 VQ motif-transcription factor40:
 
GRMZM2G126413
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq44 VQ motif-transcription factor44:
 
GRMZM2G180668
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq46 VQ motif-transcription factor46:
 
GRMZM5G800535
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq47 VQ motif-transcription factor47:
 
GRMZM2G374336
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq48 VQ motif-transcription factor48:
 
GRMZM5G849527
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq49 VQ motif-transcription factor49:
 
GRMZM5G864059
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq50 VQ motif-transcription factor50:
 
GRMZM2G138370
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq51 VQ motif-transcription factor51:
 
GRMZM2G069169
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq54 VQ motif-transcription factor54:
 
GRMZM2G035531
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq55 VQ motif-transcription factor55:
 
GRMZM2G014839
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq57 VQ motif-transcription factor57:
 
GRMZM5G864133
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq60 VQ motif-transcription factor60:
 
GRMZM2G064903
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agovq61 VQ motif-transcription factor61:
 
GRMZM2G475276
Song, WB et al. 2016. Frontiers Plant Sci pp.doi: 10.3389/fpls.2015.01177     Reference: August 31st, 2019
Gene Product: August 31st, 2019
Gene Model: August 31st, 2019
4 years agopco077003  :
8.03
GRMZM2G147051
    Variation: September 25th, 2007
Gene Model: August 30th, 2019
4 years agobzip141 bZIP-transcription factor 141:
 
GRMZM2G024851
Cao, LR et al. 2019. Int J Mol Sci pp.doi: 10.3390/ijms20174103     Reference: August 26th, 2019
Gene Product: August 21st, 2018
Gene Model: August 26th, 2019
4 years agoo*-QCL3024 opaque*-QCL3024:
 
   Wang, W et al. 2019. Sci. Rep. 9:12265     Reference: August 22nd, 2019
Variation: February 16th, 2013
4 years agohex3 hexokinase3:
8.05
   Aguilera-Alvarado, GP et al. 2019. BMC Plant Biology 19:27     Reference: January 15th, 2019
Gene Product: September 15th, 2013
Variation: August 15th, 2019
4 years agoami4 amidase4:
 
GRMZM2G022192
Lehmann, T et al. 2010. Eur J Cell Biol 89:895-905     Reference: June 4th, 2012
Gene Product: June 4th, 2012
Gene Model: August 12th, 2019
4 years agoami2 amidase5:
 
GRMZM5G819320
Lehmann, T et al. 2010. Eur J Cell Biol 89:895-905     Reference: June 4th, 2012
Gene Product: June 4th, 2012
Gene Model: August 12th, 2019
4 years agoami3 amidase3:
5.07
GRMZM2G159542
Lehmann, T et al. 2010. Eur J Cell Biol 89:895-905     Reference: June 4th, 2012
Gene Product: June 4th, 2012
Gene Model: August 12th, 2019
4 years agoami5 amidase2:
 
GRMZM2G448233
Lehmann, T et al. 2010. Eur J Cell Biol 89:895-905   AT1G08980 (TAIR) Reference: June 4th, 2012
Gene Product: June 4th, 2012
Gene Model: August 11th, 2019
4 years agoumc1419  :
2.00 - 2.01
GRMZM2G064202
    Variation: September 1st, 2003
Gene Model: August 10th, 2019
4 years agoacd6 accelerated cell death ortholog6:
 
GRMZM2G123977
Zhang, ZQ et al. 2019. Plant Signal Behav pp.doi: 10.1080/15592324.2019.1651604   At4g14400 (TAIR) Reference: August 10th, 2019
Gene Product: August 10th, 2019
Variation: August 10th, 2019
Gene Model: August 10th, 2019
4 years agonactf135 NAC-transcription factor 135:
 
   He, L et al. 2019. J Agric Food Chem pp.doi: 10.1021/acs.jafc.9b02331     Reference: August 6th, 2019
Gene Product: July 8th, 2019
4 years agoc3h48 C3H-transcription factor 348:
3.09 - 3.10
GRMZM2G044004
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Variation: September 1st, 2003
Gene Model: August 4th, 2019
4 years agolaz2 lazarus ortholog2:
 
GRMZM2G498656
Liu, BL et al. 2019. J Plant Growth Reg pp.doi: 10.1007/s00344-019-10008-z     Reference: July 27th, 2019
Gene Product: July 27th, 2019
Gene Model: July 27th, 2019
4 years agolaz7 lazarus ortholog7:
 
GRMZM2G078238
Liu, BL et al. 2019. J Plant Growth Reg pp.doi: 10.1007/s00344-019-10008-z     Reference: July 27th, 2019
Gene Product: July 27th, 2019
Gene Model: July 27th, 2019
4 years agolaz9 lazarus ortholog9:
 
GRMZM2G082181
Liu, BL et al. 2019. J Plant Growth Reg pp.doi: 10.1007/s00344-019-10008-z     Reference: July 27th, 2019
Gene Product: July 27th, 2019
Gene Model: July 27th, 2019
4 years agogras10 GRAS-transcription factor 10:
5.06
GRMZM2G110579
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Variation: July 19th, 2019
Gene Model: July 19th, 2019
4 years agophd13 PHD-transcription factor 13:
4.05
GRMZM2G059266
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Variation: September 1st, 2003
Gene Model: July 18th, 2019
4 years agomrpa8 multidrug resistance associated protein8:
8.02
   Goodman, CD; Casati, P; Walbot, V. 2004. Plant Cell. 16:1812-1826     Reference: October 31st, 2009
Gene Product: July 11th, 2019
4 years agomrpa7 multidrug resistance associated protein7:
 
GRMZM5G830695
Goodman, CD; Casati, P; Walbot, V. 2004. Plant Cell. 16:1812-1826     Reference: October 31st, 2009
Gene Product: July 11th, 2019
Variation: May 14th, 2011
Gene Model: January 12th, 2016
4 years agoptk3 receptor-like protein kinase3:
1.06
GRMZM2G151216
Kim, HY et al. 2002. Plant Mol Biol 50:1-16     Reference: September 1st, 2003
Gene Product: July 10th, 2019
Gene Model: July 11th, 2013
4 years agobzip89 bZIP-transcription factor 89:
5.04
GRMZM2G158313
Li, CH et al. 2016. BMC Genomics 17:894     Reference: July 10th, 2019
Variation: September 1st, 2003
Gene Model: June 28th, 2018
4 years agosln1 sister of liguleless narrow1:
 
GRMZM2G009506
Moon, J; Candela, H; Hake, S. 2013. Development. 140:405-412     Reference: January 30th, 2013
Gene Product: July 10th, 2019
Gene Model: January 3rd, 2013
4 years agosirk1 sucrose-induced receptor kinase1:
 
GRMZM2G161664
Aquino, B et al. 2017. Frontiers Plant Sci pp.doi: 10.3389/fpls.2017.00852   AT5G10020 (TAIR) Reference: June 14th, 2017
Gene Product: July 10th, 2019
Gene Model: June 13th, 2017
4 years agomsp2 multiple sporocyte2:
 
GRMZM2G306771
van der Linde, K et al. 2018. Plant Cell pp.doi: 10.1105/tpc.17.00238   AT5G07280 (TAIR)
LOC_Os01g68870 (MSU/TIGR)
Reference: February 17th, 2018
Gene Product: July 10th, 2019
Gene Model: February 17th, 2018
4 years agomsp3 multiple sporocyte3:
 
GRMZM2G107484
van der Linde, K et al. 2018. Plant Cell pp.doi: 10.1105/tpc.17.00238   AT5G07280 (TAIR)
LOC_Os01g68870 (MSU/TIGR)
Reference: February 17th, 2018
Gene Product: July 10th, 2019
Gene Model: February 17th, 2018
4 years agoepf1 epidermal patterning factor-like1:
 
GRMZM2G177393
Caine, RS et al. 2016. Development 143:3306-3314     Reference: July 10th, 2019
Gene Product: July 10th, 2019
Gene Model: July 10th, 2019
4 years agoereb226 AP2-EREBP-transcription factor 226:
 
       Gene Product: July 5th, 2019
4 years agosbp4 SBP-domain protein4:
9.03
   Cardon, G et al. 1999. Gene 237:91-104     Reference: September 1st, 2003
Gene Product: July 5th, 2019
Variation: September 1st, 2003
4 years agopld4 phospholipase D4:
 
GRMZM2G029896
Chen, L et al. 2016. Plant Growth Regulation pp.doi: 10.1007/s10725-016-0197-4     Reference: August 9th, 2016
Gene Product: August 9th, 2016
Gene Model: July 4th, 2019
4 years agogras26 GRAS-transcription factor 26:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: June 24th, 2019
4 years agogras83 GRAS-transcription factor 83:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: June 24th, 2019
4 years agogras34 GRAS-transcription factor 34:
4.00
GRMZM2G163427
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: June 24th, 2019
Gene Model: June 6th, 2018
4 years agogras50 GRAS domain family50:
3.04
GRMZM2G159475
Gray, J et al. 2009. Plant Physiol 149:4-6     Reference: May 6th, 2013
Gene Product: June 24th, 2019
Gene Model: April 9th, 2013
4 years agoras8A1 ras-related protein8A1:
 
GRMZM5G886109
    Variation: January 20th, 2011
Gene Model: June 9th, 2019
4 years agosmd1 suppressor of meiotic drive1:
10.06
   Dawe, RK, et al. 2018. Cell. 173:doi: 10.1016/j.cell.2018.03.009     Reference: June 3rd, 2019
Variation: April 7th, 2018
4 years agosmd12 suppressor of meiotic drive12:
 
   Dawe, RK, et al. 2018. Cell. 173:doi: 10.1016/j.cell.2018.03.009     Reference: June 3rd, 2019
Variation: April 7th, 2018
4 years agoki1 Kindr-RNAi1:
 
   Dawe, RK, et al. 2018. Cell. 173:doi: 10.1016/j.cell.2018.03.009     Reference: June 3rd, 2019
Variation: April 8th, 2018
4 years agoras11G1 ras-related protein11G1:
 
AC197246.3_FG001
Zhang, XG et al. 2019. J Plant Biol 62:217-228     Reference: May 31st, 2019
Variation: January 24th, 2011
Gene Model: September 1st, 2017
4 years agows2 white sheath2:
 
   Clark, FH. 1932. J Hered. 23:235-237     Reference: May 29th, 2019
Variation: September 1st, 2003
4 years agomco1 multicopper oxidase1:
 
GRMZM2G086727
Zhang, XR et al. 2019. Plant Sci 283:177-188     Reference: May 29th, 2019
Gene Product: May 29th, 2019
Gene Model: May 29th, 2019
4 years agocsu221  :
4.00
GRMZM2G131409
Dong, L et al. 2019. Int J Mol Sci 20:2472     Reference: May 21st, 2019
Variation: September 1st, 2003
Gene Model: April 17th, 2018
5 years agogpat9 glycerol-3-phosphate acyltransferase9:
 
GRMZM2G131378
Zhu, TT et al. 2019. Theor Appl Genet pp.doi: 10.1007/s00122-019-03343-y     Reference: April 25th, 2019
Gene Product: March 25th, 2019
Gene Model: March 25th, 2019
5 years agogpat17 glycerol-3-phosphate acyltransferase17:
 
   Zhu, TT et al. 2019. Theor Appl Genet pp.doi: 10.1007/s00122-019-03343-y     Reference: April 25th, 2019
Gene Product: March 25th, 2019
5 years agogpat18 glycerol-3-phosphate acyltransferase18:
 
   Zhu, TT et al. 2019. Theor Appl Genet pp.doi: 10.1007/s00122-019-03343-y     Reference: April 25th, 2019
Gene Product: March 25th, 2019
5 years agojmj17 JUMONJI-transcription factor 17:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: April 3rd, 2019
5 years agojmj19 JUMONJI-transcription factor 19:
 
   Qian, YX et al. 2019. BMC Genomics 20:256     Reference: April 3rd, 2019
Gene Product: April 3rd, 2019
5 years agojmj6 JUMONJI-transcription factor 6:
 
   Qian, YX et al. 2019. BMC Genomics 20:256     Reference: April 3rd, 2019
Gene Product: April 3rd, 2019
5 years agojmj9 JUMONJI-transcription factor 9:
 
   Qian, YX et al. 2019. BMC Genomics 20:256     Reference: April 3rd, 2019
Gene Product: April 3rd, 2019
5 years agocbl12 calcineurin B-like12:
 
GRMZM2G137751
Zhang, F et al. 2016. Plant Sci 253:118-129     Reference: December 27th, 2016
Gene Product: October 19th, 2016
Gene Model: March 30th, 2019
5 years agomab31 math-btb31:
 
GRMZM2G091251
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Gene Model: March 30th, 2019
5 years agogpm46  :
9.03
GRMZM2G174738
Bahaji, A et al. 2019. Frontiers Plant Sci pp.doi: 10.3389/fpls.2019.00242     Reference: March 28th, 2019
Gene Product: February 24th, 2015
Gene Model: February 24th, 2015
5 years agocol9 C2C2-CO-like-transcription factor 9:
 
GRMZM2G042198
Song, NN et al. 2018. Gene pp.doi: 10.1016/j.gene.2018.06.032     Reference: June 16th, 2018
Gene Product: June 18th, 2018
Gene Model: March 22nd, 2019
5 years agotpj1 translation of psbJ1:
 
GRMZM2G056116
Williams-Carrier, R et al. 2019. Plant J pp.doi: 10.1111/tpj.14308   AT3G46610 (TAIR) Reference: March 8th, 2019
Gene Product: December 27th, 2016
Variation: March 8th, 2019
Gene Model: March 14th, 2018
5 years agoIDP137  :
3.07
GRMZM2G176912
    Variation: March 31st, 2005
Gene Model: February 25th, 2019
5 years agoIDP1480  :
3.09
GRMZM2G078826
    Variation: March 31st, 2005
Gene Model: February 25th, 2019
5 years agoIDP149  :
3.06
GRMZM2G445100
    Variation: March 31st, 2005
Gene Model: February 25th, 2019
5 years agoIDP1617  :
3.07
GRMZM5G818186
    Variation: March 31st, 2005
Gene Model: February 25th, 2019
5 years agoIDP253  :
3.09
GRMZM2G094428
    Variation: March 31st, 2005
Gene Model: February 25th, 2019
5 years agoIDP284  :
3.09
GRMZM2G463032
    Variation: March 31st, 2005
Gene Model: February 25th, 2019
5 years agoIDP366  :
3.07
GRMZM2G042099
    Variation: March 31st, 2005
Gene Model: February 25th, 2019
5 years agoIDP427  :
3.09
GRMZM2G034943
    Variation: March 31st, 2005
Gene Model: February 25th, 2019
5 years agoIDP546  :
3.08
GRMZM5G816356
    Variation: March 31st, 2005
Gene Model: February 25th, 2019
5 years agoIDP783  :
3.07
GRMZM2G069865
    Variation: March 31st, 2005
Gene Model: February 25th, 2019
5 years agoumc2269  :
3.06
GRMZM2G145753
    Variation: February 24th, 2019
Gene Model: April 3rd, 2018
5 years agoIDP138  :
3.05
GRMZM2G439884
    Variation: March 31st, 2005
Gene Model: February 24th, 2019
5 years agoIDP1433  :
3.05
GRMZM2G155096
    Variation: March 31st, 2005
Gene Model: February 24th, 2019
5 years agoIDP227  :
3.05
AC209377.3_FG003
    Variation: March 31st, 2005
Gene Model: February 24th, 2019
5 years agoIDP667  :
3.05
GRMZM2G006277
    Variation: March 31st, 2005
Gene Model: February 24th, 2019
5 years agoIDP692  :
3.05
GRMZM2G349187
    Variation: March 31st, 2005
Gene Model: February 24th, 2019
5 years agoIDP73  :
3.06
GRMZM2G038281
    Variation: March 31st, 2005
Gene Model: February 24th, 2019
5 years agoIDP813  :
3.07
GRMZM2G043212
    Variation: March 31st, 2005
Gene Model: February 24th, 2019
5 years agoIDP125  :
3.00
GRMZM2G047509
    Variation: March 31st, 2005
Gene Model: February 23rd, 2019
5 years agoIDP1475  :
3.04
GRMZM2G326465
    Variation: March 31st, 2005
Gene Model: February 23rd, 2019
5 years agoIDP1634  :
3.04
GRMZM2G119778
    Variation: March 31st, 2005
Gene Model: February 23rd, 2019
5 years agoIDP2429  :
3.00
GRMZM2G093104
    Variation: March 31st, 2005
Gene Model: February 23rd, 2019
5 years agoIDP2443  :
3.04
GRMZM2G120115
    Variation: March 31st, 2005
Gene Model: February 23rd, 2019
5 years agoIDP319  :
3.04
GRMZM2G135322
    Variation: March 31st, 2005
Gene Model: February 23rd, 2019
5 years agoIDP370  :
3.04
GRMZM2G108847
    Variation: March 31st, 2005
Gene Model: February 23rd, 2019
5 years agoIDP428  :
3.04
GRMZM2G033626
    Variation: March 31st, 2005
Gene Model: February 23rd, 2019
5 years agoIDP506  :
3.05
GRMZM2G367026
    Variation: March 31st, 2005
Gene Model: February 23rd, 2019
5 years agoIDP664  :
3.04
GRMZM2G111164
    Variation: March 31st, 2005
Gene Model: February 23rd, 2019
5 years agoIDP703  :
3.01
GRMZM2G153181
    Variation: March 31st, 2005
Gene Model: February 23rd, 2019
5 years agoIDP876  :
3.04
GRMZM2G035305
    Variation: March 31st, 2005
Gene Model: February 23rd, 2019
5 years agoumc1049  :
2.08
GRMZM2G144180
    Variation: February 20th, 2019
Gene Model: February 15th, 2018
5 years agoIDP114  :
2.09
GRMZM2G134559
    Variation: March 31st, 2005
Gene Model: February 20th, 2019
5 years agoIDP117  :
2.08
GRMZM2G097568
    Variation: March 31st, 2005
Gene Model: February 20th, 2019
5 years agoIDP171  :
2.09
GRMZM2G444533
    Variation: March 31st, 2005
Gene Model: February 20th, 2019
5 years agoIDP176  :
2.08
GRMZM2G010551
    Variation: March 31st, 2005
Gene Model: February 20th, 2019
5 years agoIDP7614  :
2.09
GRMZM2G169095
    Variation: March 31st, 2005
Gene Model: February 20th, 2019
5 years agoIDP2141  :
2.06
GRMZM2G078959
    Variation: March 31st, 2005
Gene Model: February 20th, 2019
5 years agoIDP456  :
2.07
GRMZM2G409722
    Variation: March 31st, 2005
Gene Model: February 20th, 2019
5 years agoIDP502  :
2.07
GRMZM2G087662
    Variation: March 31st, 2005
Gene Model: February 20th, 2019
5 years agoIDP504  :
2.07
GRMZM2G031837
    Variation: March 31st, 2005
Gene Model: February 20th, 2019
5 years agoIDP616  :
2.07
GRMZM2G081676
    Variation: March 31st, 2005
Gene Model: February 20th, 2019
5 years agoIDP785  :
2.08
GRMZM2G172138
    Variation: March 31st, 2005
Gene Model: February 20th, 2019
5 years agoras11A1 ras related protein11A1:
 
GRMZM2G029486
    Variation: January 21st, 2011
Gene Model: February 19th, 2019
5 years agoIDP1496  :
2.04
GRMZM2G177561
    Variation: March 31st, 2005
Gene Model: February 19th, 2019
5 years agoIDP1971  :
2.02
GRMZM2G162230
    Variation: March 31st, 2005
Gene Model: February 19th, 2019
5 years agoIDP200  :
2.04
GRMZM2G057006
    Variation: March 31st, 2005
Gene Model: February 19th, 2019
5 years agoIDP445  :
2.02
GRMZM2G463280
    Variation: March 31st, 2005
Gene Model: February 19th, 2019
5 years agoIDP496  :
2.04
GRMZM2G022347
    Variation: March 31st, 2005
Gene Model: February 19th, 2019
5 years agoIDP592  :
2.05
GRMZM2G319454
    Variation: March 31st, 2005
Gene Model: February 19th, 2019
5 years agorth2 roothair defective2:
5.04 - 5.09
   Klamer, F et al. 2019. Ann Bot pp.doi: 10.1093/aob/mcz011     Reference: February 18th, 2019
Variation: September 1st, 2003
5 years agoIDP2388  :
2.02
GRMZM2G007914
    Variation: March 31st, 2005
Gene Model: February 18th, 2019
5 years agoIDP53  :
2.01
GRMZM2G407347
    Gene Product: March 25th, 2010
Gene Model: February 18th, 2019
5 years agoIDP776  :
2.01
GRMZM2G065012
    Variation: March 31st, 2005
Gene Model: February 18th, 2019
5 years agoIDP1478  :
1.11
GRMZM2G001661
    Variation: March 31st, 2005
Gene Model: February 16th, 2019
5 years agoIDP2395  :
1.10
GRMZM2G031870
    Variation: March 31st, 2005
Gene Model: February 16th, 2019
5 years agoIDP2400  :
1.12
GRMZM2G021742
    Variation: March 31st, 2005
Gene Model: February 16th, 2019
5 years agoIDP340  :
1.09
GRMZM2G042040
    Variation: March 31st, 2005
Gene Model: February 16th, 2019
5 years agoIDP538  :
1.11
GRMZM2G062289
    Variation: March 31st, 2005
Gene Model: February 16th, 2019
5 years agoIDP72  :
1.11
GRMZM5G878153
    Variation: March 31st, 2005
Gene Model: February 16th, 2019
5 years agoIDP772  :
1.11
GRMZM2G477609
    Variation: March 31st, 2005
Gene Model: February 16th, 2019
5 years agoIDP352  :
1.08
GRMZM2G015005
    Variation: March 31st, 2005
Gene Model: February 15th, 2019
5 years agoIDP437  :
1.09
GRMZM2G038217
    Variation: May 12th, 2006
Gene Model: February 15th, 2019
5 years agorgh*-N802 roughN802:
3.05 - 3.09
   Kowles, RV et al. 1992. Genome 35:68-77     Reference: September 1st, 2003
Variation: February 14th, 2019
5 years agoppr48 pentatricopeptide repeat protein48:
1.06
GRMZM2G056056
    Gene Product: December 27th, 2016
Variation: March 31st, 2005
Gene Model: February 14th, 2019
5 years agoIDP190  :
1.08
GRMZM2G144782
    Variation: May 12th, 2006
Gene Model: February 14th, 2019
5 years agoIDP1982  :
1.07
GRMZM5G832380
    Variation: March 31st, 2005
Gene Model: February 14th, 2019
5 years agoIDP2492  :
1.07
GRMZM2G135866
    Variation: March 31st, 2005
Gene Model: February 14th, 2019
5 years agoIDP295  :
1.06
GRMZM2G317770
    Variation: March 31st, 2005
Gene Model: February 14th, 2019
5 years agoIDP640  :
1.07
GRMZM2G113062
    Variation: March 31st, 2005
Gene Model: February 14th, 2019
5 years agoIDP820  :
1.07
GRMZM2G153208
    Variation: March 31st, 2005
Gene Model: February 14th, 2019
5 years agoIDP856  :
1.07
AC217910.3_FG004
    Variation: March 31st, 2005
Gene Model: February 14th, 2019
5 years agoIDP1407  :
1.05
GRMZM2G114356
    Variation: March 31st, 2005
Gene Model: February 13th, 2019
5 years agomagi23951  :
1.04
GRMZM2G330650
    Variation: September 25th, 2007
Gene Model: February 13th, 2019
5 years agoIDP1473  :
1.04
GRMZM2G074138
    Variation: March 31st, 2005
Gene Model: February 13th, 2019
5 years agoIDP1675  :
1.05
GRMZM2G424181
    Variation: March 31st, 2005
Gene Model: February 13th, 2019
5 years agoIDP194  :
1.05
GRMZM2G034372
    Variation: March 31st, 2005
Gene Model: February 13th, 2019
5 years agoIDP1953  :
1.04
GRMZM2G074946
    Variation: March 31st, 2005
Gene Model: February 13th, 2019
5 years agoIDP1986  :
1.04
GRMZM2G028302
    Variation: March 31st, 2005
Gene Model: February 13th, 2019
5 years agoIDP2553  :
1.04
GRMZM2G107473
    Variation: March 31st, 2005
Gene Model: February 13th, 2019
5 years agoIDP34  :
1.05
GRMZM2G167728
    Variation: March 31st, 2005
Gene Model: February 13th, 2019
5 years agoIDP741  :
1.06
GRMZM2G067028
    Variation: March 31st, 2005
Gene Model: February 13th, 2019
5 years agoIDP839  :
1.04
GRMZM2G039880
    Variation: March 31st, 2005
Gene Model: February 13th, 2019
5 years agopdi9 protein disulfide isomerase9:
1.03
GRMZM2G073628
Jia, SG et al. 2019. pp.doi: 10.1016/j.gpb.2018.02.003     Reference: February 12th, 2019
Gene Product: September 1st, 2003
Variation: December 23rd, 2015
Gene Model: December 18th, 2015
5 years agoIDP112  :
1.03
GRMZM2G319781
    Variation: March 31st, 2005
Gene Model: February 12th, 2019
5 years agoIDP329  :
1.03
GRMZM2G049190
    Variation: March 31st, 2005
Gene Model: February 12th, 2019
5 years agoIDP643  :
1.03
GRMZM2G307992
    Variation: March 31st, 2005
Gene Model: February 12th, 2019
5 years agoIDP92  :
1.03
GRMZM2G049041
    Variation: March 31st, 2005
Gene Model: February 12th, 2019
5 years agoIDP2362  :
1.03
GRMZM2G364145
    Variation: March 31st, 2005
Gene Model: February 11th, 2019
5 years agoIDP2385  :
1.03
GRMZM2G012501
    Variation: March 31st, 2005
Gene Model: February 11th, 2019
5 years agoIDP29  :
1.02
GRMZM2G080586
    Variation: March 31st, 2005
Gene Model: February 11th, 2019
5 years agoIDP1464  :
1.01
GRMZM2G013634
    Variation: March 31st, 2005
Gene Model: February 10th, 2019
5 years agoIDP658  :
1.02
GRMZM2G070259
    Variation: May 13th, 2006
Gene Model: February 10th, 2019
5 years agoIDP755  :
1.01
GRMZM2G089976
    Variation: March 31st, 2005
Gene Model: February 10th, 2019
5 years agopza01089  :
10.04
   Hurst, P et al. 2019. bioRxiv preprint pp.doi: 10.1101/543264     Reference: February 8th, 2019
Variation: January 26th, 2019
5 years agospt*-N1620B spottedN1620B:
4.03 - 4.05
   Neuffer, MG. 1995. Personal communication-mutant collection     Reference: September 1st, 2003
Variation: February 7th, 2019
5 years agoIDP1466  :
7.06
GRMZM2G133819
    Variation: March 31st, 2005
Gene Model: February 6th, 2019
5 years agoIDP1611  :
7.05
GRMZM2G427937
    Variation: March 31st, 2005
Gene Model: February 6th, 2019
5 years agoIDP705  :
7.05
GRMZM2G003172
    Variation: March 31st, 2005
Gene Model: February 6th, 2019
5 years agoumc1333  :
7.03
GRMZM2G132486
    Variation: February 5th, 2019
Gene Model: February 5th, 2019
5 years agoIDP1704  :
7.03
GRMZM2G052336
    Variation: March 31st, 2005
Gene Model: February 5th, 2019
5 years agoIDP2483  :
7.03
GRMZM2G148864
    Variation: March 31st, 2005
Gene Model: February 5th, 2019
5 years agoIDP2590  :
7.04
GRMZM5G886969
    Variation: March 31st, 2005
Gene Model: February 5th, 2019
5 years agoIDP789  :
7.03
GRMZM2G071015
    Variation: March 31st, 2005
Gene Model: February 5th, 2019
5 years agoIDP836  :
7.03
GRMZM2G052483
    Variation: March 31st, 2005
Gene Model: February 5th, 2019
5 years agoIDP865  :
7.03
GRMZM2G085670
    Variation: March 31st, 2005
Gene Model: February 5th, 2019
5 years agoIDP96  :
7.03
GRMZM2G161302
    Variation: March 31st, 2005
Gene Model: February 4th, 2019
5 years agotlk2 tousled-like protein kinase2:
5.01
   Mazaheri, M et al. 2019. BMC Plant Biology 19:45     Reference: January 31st, 2019
Gene Product: February 15th, 2008
Variation: June 25th, 2015
5 years agobnlg1057  :
1.06
   Mazaheri, M et al. 2019. BMC Plant Biology 19:45     Reference: January 31st, 2019
Variation: September 1st, 2003
5 years agoIDP1643  :
7.02
GRMZM2G032944
    Variation: March 31st, 2005
Gene Model: January 31st, 2019
5 years agoIDP353  :
7.02
GRMZM2G054120
    Variation: March 31st, 2005
Gene Model: January 31st, 2019
5 years agoIDP754  :
7.02
GRMZM2G461159
    Variation: March 31st, 2005
Gene Model: January 31st, 2019
5 years agoIDP767  :
7.02
GRMZM2G053927
    Variation: March 31st, 2005
Gene Model: January 31st, 2019
5 years agoIDP84  :
7.02
GRMZM2G022014
    Variation: March 31st, 2005
Gene Model: January 31st, 2019
5 years agoIDP1688  :
7.00
AC205122.4_FG003
    Variation: March 31st, 2005
Gene Model: January 30th, 2019
5 years agoIDP497  :
7.01
GRMZM2G060866
    Variation: March 31st, 2005
Gene Model: January 30th, 2019
5 years agoIDP80  :
7.01
GRMZM2G012324
    Variation: March 31st, 2005
Gene Model: January 30th, 2019
5 years agoIDP2364  :
9.02
GRMZM2G008326
    Variation: March 31st, 2005
Gene Model: January 24th, 2019
5 years agoIDP2406  :
9.03
GRMZM2G110993
    Variation: March 31st, 2005
Gene Model: January 24th, 2019
5 years agoIDP534  :
9.04
GRMZM2G124567
    Variation: March 31st, 2005
Gene Model: January 24th, 2019
5 years agoIDP850  :
9.07
AC149475.2_FG002
    Variation: March 31st, 2005
Gene Model: January 24th, 2019
5 years agoIDP1419  :
9.07
GRMZM2G060564
    Variation: March 31st, 2005
Gene Model: January 23rd, 2019
5 years agoIDP256  :
9.03
GRMZM2G112951
    Variation: March 31st, 2005
Gene Model: January 22nd, 2019
5 years agoIDP2570  :
9.02
GRMZM2G100873
    Variation: March 31st, 2005
Gene Model: January 22nd, 2019
5 years agoIDP300  :
9.04
GRMZM2G005869
    Variation: March 31st, 2005
Gene Model: January 22nd, 2019
5 years agoIDP310  :
9.04
GRMZM2G359070
    Variation: March 31st, 2005
Gene Model: January 22nd, 2019
5 years agoIDP717  :
9.03
GRMZM2G097995
    Variation: March 31st, 2005
Gene Model: January 22nd, 2019
5 years agoIDP760  :
9.01
GRMZM2G152177
    Variation: March 31st, 2005
Gene Model: January 22nd, 2019
5 years agosun1 SUN domain protein1:
 
GRMZM2G109818
Gumber, HK et al. 2019. J Cell Sci pp.doi: 10.1242/jcs.221390     Reference: January 19th, 2019
Variation: April 20th, 2011
Gene Model: April 20th, 2011
5 years agosun4 SUN domain protein4:
 
   Gumber, HK et al. 2019. J Cell Sci pp.doi: 10.1242/jcs.221390     Reference: January 19th, 2019
Variation: April 20th, 2011
5 years agosun5 SUN domain protein5:
 
AC194341.4_FG003
Gumber, HK et al. 2019. J Cell Sci pp.doi: 10.1242/jcs.221390     Reference: January 19th, 2019
Variation: April 20th, 2011
Gene Model: April 20th, 2011
5 years agohex4 hexokinase4:
 
GRMZM2G068913
Aguilera-Alvarado, GP et al. 2019. BMC Plant Biology 19:27     Reference: January 15th, 2019
Gene Product: September 15th, 2013
Gene Model: September 15th, 2013
5 years agohex8 hexokinase8:
 
GRMZM2G046686
Aguilera-Alvarado, GP et al. 2019. BMC Plant Biology 19:27     Reference: January 15th, 2019
Gene Product: September 15th, 2013
Gene Model: September 15th, 2013
5 years agoles*-A467 lesion*-A467:
 
   Johal, GS; Hulbert, SH; Briggs, SP. 1995. Disease lesion mimics of maize: A model for cell death in plants. Bioessays 17:685-692     Reference: September 1st, 2003
Variation: January 14th, 2019
5 years agocsu1118  :
9.07
GRMZM5G860976
Baysdorfer, C. 1996. Nucleotide sequence submission to dbEST     Reference: September 1st, 2003
Variation: September 1st, 2003
Gene Model: January 14th, 2019
5 years agoc3h6 C3H-transcription factor 36:
9.04
GRMZM2G086614
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Variation: March 31st, 2005
Gene Model: January 14th, 2019
5 years agoIDP1681  :
9.03
GRMZM2G037624
    Variation: March 31st, 2005
Gene Model: January 14th, 2019
5 years agobbx12 b-box12:
 
   Shalmani, A et al. 2019. BMC Genomics 20:27     Reference: January 10th, 2019
Gene Product: January 11th, 2019
5 years agoms*-6015  :
 
   van der Linde, K; Walbot, V. 2019. Current Topics in Developmental Biology 131:239-256     Reference: January 8th, 2019
Variation: August 8th, 2014
5 years agopmei5 pectin methylesterase inhibitor5:
 
GRMZM5G888934
Woriedh, M et al. 2013. Plant Reproduction 26:255-266     Reference: January 8th, 2019
Gene Product: January 8th, 2019
Gene Model: January 8th, 2019
5 years agosep1 selenoprotein1:
3.05 - 3.06
GRMZM2G109429
Zhu, JT et al. 2018. Plant Cell Environ pp.doi: 10.1111/pce.13507     Reference: December 24th, 2018
Gene Product: December 24th, 2018
Variation: December 24th, 2018
Gene Model: March 3rd, 2017
5 years agouggt1 UDP-glucose:glycoprotein glucosyltransferase1:
 
GRMZM2G370162
Zhu, JT et al. 2018. Plant Cell Environ pp.doi: 10.1111/pce.13507     Reference: December 24th, 2018
Gene Product: December 24th, 2018
Gene Model: December 24th, 2018
5 years agoppr360 pentatricopeptide repeat protein360:
 
GRMZM2G141202
Chen, L et al. 2018. BMC Plant Biology 18:366     Reference: December 21st, 2018
Gene Product: December 27th, 2016
Gene Model: December 21st, 2018
5 years agoarpg1 acid phosphatase-regulating gene1:
 
GRMZM2G041022
Yu, TT et al. 2018. Theor Appl Genet pp.doI: 10.1007/s00122-018-3257-5     Reference: December 10th, 2018
Variation: December 10th, 2018
Gene Model: December 10th, 2018
5 years agocys3 cysteine synthase3:
 
GRMZM2G003289
Xia, ZL et al. 2018. Frontiers Plant Sci 9:1680     Reference: December 1st, 2018
Gene Product: September 1st, 2003
Gene Model: December 1st, 2018
5 years agocys4 cysteine synthase4:
 
GRMZM2G003289
    Gene Product: September 1st, 2003
Gene Model: December 1st, 2018
5 years agocys5 cysteine synthase5:
 
GRMZM2G443985
    Gene Product: September 1st, 2003
Gene Model: December 1st, 2018
5 years agocys6 cysteine synthase6:
9.02
GRMZM2G104269
    Gene Product: September 1st, 2003
Gene Model: December 1st, 2018
5 years agoatp10 ATP synthase10:
 
   Zoschke, R et al. 2013. Plant Cell 25:2265-2275     Reference: February 17th, 2015
Variation: November 29th, 2018
5 years agopap31 purple acid phosphatase31:
2.07
GRMZM5G868679
Gonzalez Munoz, E et al. 2015. Frontiers Plant Sci 6:341     Reference: November 21st, 2018
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
5 years agopap5 purple acid phosphatase5:
 
AC207043.3_FG004
Gonzalez Munoz, E et al. 2015. Frontiers Plant Sci 6:341     Reference: November 21st, 2018
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
5 years agopap6 purple acid phosphatase6:
 
GRMZM2G007754
Gonzalez Munoz, E et al. 2015. Frontiers Plant Sci 6:341     Reference: November 21st, 2018
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
5 years agopap9 purple acid phosphatase9:
 
GRMZM2G096363
Gonzalez Munoz, E et al. 2015. Frontiers Plant Sci 6:341     Reference: November 21st, 2018
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
5 years agopap10 purple acid phosphatase10:
 
GRMZM2G104676
Gonzalez Munoz, E et al. 2015. Frontiers Plant Sci 6:341     Reference: November 21st, 2018
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
5 years agopap14 purple acid phosphatase14:
 
GRMZM2G111425
Gonzalez Munoz, E et al. 2015. Frontiers Plant Sci 6:341     Reference: November 21st, 2018
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
5 years agopap16 purple acid phosphatase16:
 
GRMZM2G138698
Gonzalez Munoz, E et al. 2015. Frontiers Plant Sci 6:341     Reference: November 21st, 2018
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
5 years agopap21 purple acid phosphatase21:
 
GRMZM2G157027
Gonzalez Munoz, E et al. 2015. Frontiers Plant Sci 6:341     Reference: November 21st, 2018
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
5 years agopap24 purple acid phosphatase24:
 
GRMZM2G326625
Gonzalez Munoz, E et al. 2015. Frontiers Plant Sci 6:341     Reference: November 21st, 2018
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
5 years agopap26 purple acid phosphatase26:
 
GRMZM2G366607
Gonzalez Munoz, E et al. 2015. Frontiers Plant Sci 6:341     Reference: November 21st, 2018
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
5 years agopap27 purple acid phosphatase27:
 
GRMZM2G386998
Gonzalez Munoz, E et al. 2015. Frontiers Plant Sci 6:341     Reference: November 21st, 2018
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
5 years agopap32 purple acid phosphatase32:
 
GRMZM5G881649
Gonzalez Munoz, E et al. 2015. Frontiers Plant Sci 6:341     Reference: November 21st, 2018
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
5 years agopap13 purple acid phosphatase13:
7.03
GRMZM2G109405
Gonzalez Munoz, E et al. 2015. Frontiers Plant Sci 6:341     Reference: November 21st, 2018
Gene Product: November 21st, 2018
Gene Model: November 23rd, 2018
5 years agosh6 shrunken pale green6:
7.00 - 7.02
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: November 19th, 2018
5 years agobnlg1677  :
10.07
GRMZM5G898792
    Variation: September 1st, 2003
Gene Model: October 24th, 2018
5 years agolug1 leunig-related1:
 
GRMZM2G361398
Li, HY et al. 2016. J Plant Biol 59:603-615     Reference: December 12th, 2016
Gene Product: October 23rd, 2018
Gene Model: December 12th, 2016
5 years agolug4 leunig-related4:
 
GRMZM2G097640
Li, HY et al. 2016. J Plant Biol 59:603-615     Reference: December 12th, 2016
Gene Product: October 23rd, 2018
Gene Model: December 12th, 2016
5 years agolug6 leunig-related6:
 
GRMZM2G149708
Li, HY et al. 2016. J Plant Biol 59:603-615     Reference: December 12th, 2016
Gene Product: October 23rd, 2018
Gene Model: December 12th, 2016
5 years agolug7 leunig-related7:
 
GRMZM2G111247
Li, HY et al. 2016. J Plant Biol 59:603-615     Reference: December 12th, 2016
Gene Product: October 23rd, 2018
Gene Model: December 12th, 2016
5 years agolug8 leunig-related8:
 
GRMZM2G061186
Li, HY et al. 2016. J Plant Biol 59:603-615     Reference: December 12th, 2016
Gene Product: October 23rd, 2018
Gene Model: December 12th, 2016
5 years agolug2 leunig-related2:
5.08
GRMZM2G079013
Li, HY et al. 2016. J Plant Biol 59:603-615     Reference: December 12th, 2016
Gene Product: October 23rd, 2018
Gene Model: December 12th, 2016
5 years agoumc1345  :
10.03
GRMZM2G073077
    Variation: September 1st, 2003
Gene Model: October 21st, 2018
5 years agoisr1 inhibitor of striate1:
10.06
   Kumar, D; Kellogg, EA. 2018. New Phytol pp.doi: 10.1111/nph.15491     Reference: October 18th, 2018
Variation: September 1st, 2003
5 years agobnlg1129  :
9.08
GRMZM2G168760
    Variation: September 1st, 2003
Gene Model: October 15th, 2018
5 years agoras18B1 ras related protein11B1:
 
AC149818.2_FG001
    Variation: January 25th, 2011
Gene Model: October 15th, 2018
5 years agohsk1 high-sulfur keratin homolog1:
9.03
GRMZM5G844723
Schnable, J; Freeling, M. 2011. PLoS One 6(3):e17855. doi:10.1371/journal.pone.0017855     Reference: September 27th, 2011
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: October 12th, 2018
5 years agohnh1 HNH endonuclease domain-containing protein1:
 
GRMZM2G074804
Ma, F et al. 2018. Plant Physiol pp.DOI: 10.1104/pp.18.00754   AT1G18680 (TAIR) Reference: October 10th, 2018
Gene Product: October 10th, 2018
Gene Model: October 10th, 2018
5 years agophp20793  :
8.08
GRMZM2G166441
Beavis, WD et al. 1991. Theor Appl Genet 83:141-145     Reference: September 1st, 2003
Variation: September 24th, 2018
Gene Model: September 2nd, 2018
5 years agoumc1005  :
8.08
GRMZM2G091121
    Variation: September 1st, 2003
Gene Model: September 24th, 2018
5 years agoumc1607  :
8.07
GRMZM2G033330
    Variation: September 1st, 2003
Gene Model: September 24th, 2018
5 years agoumc1663  :
8.09
GRMZM2G160444
    Variation: September 1st, 2003
Gene Model: September 24th, 2018
5 years agoAY110053  :
8.08
GRMZM2G139223
    Variation: July 29th, 2004
Gene Model: September 24th, 2018
5 years agobnlg1031  :
8.06
GRMZM2G092817
    Variation: September 1st, 2003
Gene Model: September 23rd, 2018
5 years agobnlg1651  :
8.05
GRMZM2G020544
    Variation: September 1st, 2003
Gene Model: September 20th, 2018
5 years agoumc1263  :
8.05
GRMZM2G372200
    Variation: September 1st, 2003
Gene Model: September 19th, 2018
5 years agoAY110056  :
8.04 - 8.04
GRMZM2G131152
    Variation: September 25th, 2007
Gene Model: September 19th, 2018
5 years agobnlg1863  :
8.03
GRMZM2G022768
    Variation: September 1st, 2003
Gene Model: September 18th, 2018
5 years agobnlg2082  :
8.03
GRMZM5G842965
    Variation: September 1st, 2003
Gene Model: September 18th, 2018
5 years agoumc1157  :
8.03
GRMZM2G058913
    Variation: September 1st, 2003
Gene Model: September 18th, 2018
5 years agoumc1470  :
8.03
GRMZM2G145573
    Variation: September 1st, 2003
Gene Model: September 18th, 2018
5 years agoAY110032  :
8.03
GRMZM2G102745
    Variation: July 29th, 2004
Gene Model: September 18th, 2018
5 years agoumc1817  :
8.01
GRMZM2G049781
    Variation: September 1st, 2003
Gene Model: September 17th, 2018
5 years agoras7B1 ras-related protein7B1:
 
GRMZM2G058366
Zhang, JM et al. 2007. J Integr Plant Biol 49:1129-1141     Reference: January 12th, 2011
Variation: January 20th, 2011
Gene Model: September 17th, 2018
5 years agophi116  :
7.06
GRMZM2G056772
    Variation: September 1st, 2003
Gene Model: September 13th, 2018
5 years agobnlg2259  :
7.04
GRMZM2G037444
    Variation: September 1st, 2003
Gene Model: September 12th, 2018
5 years agoumc1029  :
7.04
GRMZM2G023346
    Variation: September 1st, 2003
Gene Model: September 12th, 2018
5 years agoumc1295a  :
7.04
GRMZM2G080567
    Variation: September 1st, 2003
Gene Model: September 12th, 2018
5 years agoumc1768  :
7.04
GRMZM2G351469
Chao, S; Baysdorfer, C; Heredia-Diaz, O; Musket, T; Xu, G; Coe, EH. 1994. Theor Appl Genet 88:717-721     Reference: September 1st, 2003
Variation: September 1st, 2003
Gene Model: September 12th, 2018
5 years agoIDP363  :
2.05
GRMZM2G042981
    Variation: March 31st, 2005
Gene Model: September 12th, 2018
5 years agobnlg1805  :
7.03
GRMZM2G167591
    Variation: September 1st, 2003
Gene Model: September 11th, 2018
5 years agoumc1708  :
7.04
GRMZM2G131228
    Variation: September 1st, 2003
Gene Model: September 11th, 2018
5 years agoumc1324  :
7.03
GRMZM2G108874
    Variation: September 1st, 2003
Gene Model: September 10th, 2018
5 years agoumc1450  :
7.03
GRMZM2G181371
    Variation: September 1st, 2003
Gene Model: September 8th, 2018
5 years agoyg3 yellow-green3:
 
GRMZM2G165521
Sorgini, CA. 2018. Utilizing maize genomics for pre-breeding insights     Reference: September 7th, 2018
Gene Product: December 27th, 2016
Variation: September 7th, 2018
Gene Model: September 7th, 2018
5 years agophd30 PHD-transcription factor 30:
7.02
GRMZM2G091265
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Variation: September 1st, 2003
Gene Model: September 6th, 2018
5 years agoumc1787  :
7.02
GRMZM2G121189
    Variation: September 1st, 2003
Gene Model: September 6th, 2018
5 years agoAY109809  :
7.02
GRMZM2G366020
    Variation: July 29th, 2004
Gene Model: September 6th, 2018
5 years agoras11C2 ras-related protein11C2:
 
GRMZM2G124732
Zhang, JM et al. 2007. J Integr Plant Biol 49:1129-1141     Reference: January 12th, 2011
Variation: January 22nd, 2011
Gene Model: September 6th, 2018
5 years agoAY110576  :
7.02
GRMZM2G032699
    Variation: July 29th, 2004
Gene Model: September 5th, 2018
5 years agopco103663  :
7.02
GRMZM2G125516
    Variation: September 25th, 2007
Gene Model: September 5th, 2018
5 years agoumc1426  :
7.00
GRMZM2G006071
    Variation: September 1st, 2003
Gene Model: September 4th, 2018
5 years agomeg2 maternally expressed gene2:
7.01
GRMZM2G094054
Xiong, Y et al. 2014. BMC Plant Biology 14:204     Reference: August 29th, 2014
Variation: August 29th, 2014
Gene Model: September 4th, 2018
5 years agophp20719a  :
10.04
GRMZM2G139797
Jia, SG et al. 2016. G3 6:2385-2395     Reference: August 10th, 2016
Variation: September 3rd, 2018
Gene Model: September 2nd, 2018
5 years agonpi114a  :
8.01
GRMZM2G140885
Stuber, CW et al. 1992. Genetics 132:823-839     Reference: September 1st, 2003
Variation: September 1st, 2003
Gene Model: September 2nd, 2018
5 years agotrh4 thioredoxin h homolog4:
 
GRMZM2G066612
Righini, S et al. 2018. Plant Cell Environ pp.doi: 10.1111/pce.13428     Reference: August 30th, 2018
Gene Product: September 1st, 2003
Gene Model: August 30th, 2018
5 years agoumc1490  :
6.07
GRMZM2G174741
    Variation: September 1st, 2003
Gene Model: August 29th, 2018
5 years agoAY110400  :
6.07
GRMZM5G872417
    Variation: July 29th, 2004
Gene Model: August 29th, 2018
5 years agoras11C3 ras-related protein11C3:
 
GRMZM2G020661
Zhang, JM et al. 2007. J Integr Plant Biol 49:1129-1141     Reference: January 12th, 2011
Variation: January 24th, 2011
Gene Model: August 29th, 2018
5 years agoIDP148  :
6.06
GRMZM2G157596
    Variation: March 31st, 2005
Gene Model: August 29th, 2018
5 years agoubi7 ubiquitin-conjugating enzyme7:
6.05
GRMZM2G012052
van Nocker, S. 1998. Plant Physiol 116:1191     Reference: September 1st, 2003
Variation: September 1st, 2003
Gene Model: August 28th, 2018
5 years agoumc1379  :
6.05
GRMZM2G117439
    Variation: September 1st, 2003
Gene Model: August 27th, 2018
5 years agoumc1388  :
6.05
GRMZM2G093325
    Variation: September 1st, 2003
Gene Model: August 27th, 2018
5 years agoumc1114  :
6.05
GRMZM5G898274
    Variation: September 1st, 2003
Gene Model: August 26th, 2018
5 years agobnlg2191  :
6.02
GRMZM2G047969
    Variation: September 1st, 2003
Gene Model: August 24th, 2018
5 years agoumc1105  :
6.04
GRMZM2G041258
    Variation: September 1st, 2003
Gene Model: August 24th, 2018
5 years agoAY104775  :
6.03
GRMZM2G106427
    Variation: September 25th, 2007
Gene Model: August 24th, 2018
5 years agoend1 early nodulin homolog1:
6.01
GRMZM2G014705
Schnable, J; Freeling, M. 2011. PLoS One 6(3):e17855. doi:10.1371/journal.pone.0017855     Reference: September 27th, 2011
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: August 22nd, 2018
5 years agobzip130 bZIP-transcription factor 130:
 
       Gene Product: August 21st, 2018
5 years agobzip131 bZIP-transcription factor 131:
 
       Gene Product: August 21st, 2018
5 years agobzip132 bZIP-transcription factor 132:
 
       Gene Product: August 21st, 2018
5 years agobzip136 bZIP-transcription factor 136:
 
       Gene Product: August 21st, 2018
5 years agobzip137 bZIP-transcription factor 137:
 
       Gene Product: August 21st, 2018
5 years agobzip63 bZIP-transcription factor 63:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: August 21st, 2018
5 years agobzip138 bZIP-transcription factor 138:
2.08
       Gene Product: August 21st, 2018
5 years agobzip140 bZIP-transcription factor 140:
4.05
       Gene Product: August 21st, 2018
5 years agoppr335 pentatricopeptide repeat protein335:
6.01
GRMZM2G154743
    Gene Product: December 27th, 2016
Gene Model: August 18th, 2018
5 years agobhlh192 bHLH-transcription factor 192:
6.00
       Gene Product: September 14th, 2016
Variation: August 17th, 2018
5 years agodgatii1 diacylglycerol acyltransferase-typeII1:
 
GRMZM2G042356
Yan, BW et al. 2018. Genome doi: 10.1139/gen-2018-002     Reference: August 11th, 2018
Gene Product: August 12th, 2018
Gene Model: August 11th, 2018
5 years agodgatii2 diacylglycerol acyltransferase-typeII2:
 
GRMZM2G050641
Yan, BW et al. 2018. Genome doi: 10.1139/gen-2018-002     Reference: August 11th, 2018
Gene Product: August 12th, 2018
Gene Model: August 11th, 2018
5 years agow*-6577 white candidate 6577:
1.06 - 1.12
   MGCSC. 1972. Unpublished mimeographed notes     Reference: September 1st, 2003
Variation: August 2nd, 2018
5 years agocb2 crossbanded2:
2.02 - 2.03
   Coe, E. 2006. MNL 80:7     Reference: July 25th, 2006
Variation: August 2nd, 2018
5 years agoj*-5828 japonica*-5828:
1.00 - 1.12
       Variation: August 2nd, 2018
5 years agohox1 homeobox1:
8.05
GRMZM2G136369
Han, ZX et al. 2018. Genetics 209:983-995     Reference: July 31st, 2018
Gene Product: September 1st, 2003
Variation: June 26th, 2014
Gene Model: June 25th, 2014
5 years agoumc2403  :
2.02
GRMZM2G106413
    Variation: February 23rd, 2010
Gene Model: July 27th, 2018
5 years agoldp1 luminidependens protein1:
3.05
GRMZM2G106613
Cui, ZH et al. 2018. Theor Appl Genet pp.doi: 10.1007/s00122-018-3142-2     Reference: July 26th, 2018
Variation: April 28th, 2007
Gene Model: August 13th, 2014
5 years agohagtf3 GNAT-transcription factor 3:
1.08
GRMZM2G131618
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: January 4th, 2018
Variation: July 25th, 2018
Gene Model: July 25th, 2018
5 years agosos1 Suppressor of sessile spikelets1:
4.02
   Stitzer, MC; Ross-Ibarra, J. 2018. New Phytol pp.doi: 10.1111/nph.15350     Reference: July 24th, 2018
Variation: September 1st, 2003
5 years agoumc1076  :
1.05
GRMZM2G152526
    Variation: September 1st, 2003
Gene Model: July 23rd, 2018
5 years agoslr1 short lateral root1:
 
   Bray, AL; Topp, CN. 2018. Plant Cell Physiol pp.doi: 10.1093/pcp/pcy141     Reference: July 19th, 2018
Variation: October 5th, 2009
5 years agoslr2 short lateral root2:
 
   Bray, AL; Topp, CN. 2018. Plant Cell Physiol pp.doi: 10.1093/pcp/pcy141     Reference: July 19th, 2018
Variation: October 5th, 2009
5 years agonbcs2 nucleobase:cation symporter2:
1.07
GRMZM2G115635
Chai, WB et al. 2018. Frontiers Plant Sci 9:856     Reference: July 14th, 2018
Gene Product: July 14th, 2018
Gene Model: September 7th, 2017
5 years agoAY110182  :
5.08
GRMZM2G017923
    Variation: July 29th, 2004
Gene Model: July 14th, 2018
5 years agonbcs6 nucleobase:cation symporter6:
 
GRMZM2G171880
Chai, WB et al. 2018. Frontiers Plant Sci 9:856     Reference: July 14th, 2018
Gene Product: July 14th, 2018
Gene Model: July 14th, 2018
5 years agonbcs10 nucleobase:cation symporter10:
 
GRMZM2G085420
Chai, WB et al. 2018. Frontiers Plant Sci 9:856     Reference: July 14th, 2018
Gene Product: July 14th, 2018
Gene Model: July 14th, 2018
5 years agonbcs11 nucleobase:cation symporter11:
 
GRMZM2G358791
Chai, WB et al. 2018. Frontiers Plant Sci 9:856     Reference: July 14th, 2018
Gene Product: July 14th, 2018
Gene Model: July 14th, 2018
5 years agonbcs13 nucleobase:cation symporter13:
 
   Chai, WB et al. 2018. Frontiers Plant Sci 9:856     Reference: July 14th, 2018
Gene Product: July 14th, 2018
5 years agonbcs14 nucleobase:cation symporter14:
 
GRMZM2G027608
Chai, WB et al. 2018. Frontiers Plant Sci 9:856     Reference: July 14th, 2018
Gene Product: July 14th, 2018
Gene Model: July 14th, 2018
5 years agonbcs20 nucleobase:cation symporter20:
 
GRMZM5G802881
Chai, WB et al. 2018. Frontiers Plant Sci 9:856     Reference: July 14th, 2018
Gene Product: July 14th, 2018
Gene Model: July 14th, 2018
5 years agonbcs24 nucleobase:cation symporter24:
 
GRMZM2G363292
Chai, WB et al. 2018. Frontiers Plant Sci 9:856     Reference: July 14th, 2018
Gene Product: July 14th, 2018
Gene Model: July 14th, 2018
5 years agobnlg1118  :
5.07
GRMZM2G152703
    Variation: September 1st, 2003
Gene Model: July 13th, 2018
5 years agoAY110369  :
5.07
GRMZM2G046407
    Variation: July 29th, 2004
Gene Model: July 13th, 2018
5 years agoumc1680  :
5.06
GRMZM2G057958
    Variation: September 1st, 2003
Gene Model: July 12th, 2018
5 years agoumc1155  :
5.05
GRMZM2G044359
    Variation: September 1st, 2003
Gene Model: July 11th, 2018
5 years agoumc1264  :
5.05
GRMZM2G025236
    Variation: September 1st, 2003
Gene Model: July 11th, 2018
5 years agoAY109938  :
5.06
GRMZM2G031952
    Variation: July 29th, 2004
Gene Model: July 11th, 2018
5 years agorht* reducing-height*:
 
   Chen, Q et al. 2018. Genes Genom doi: 10.1007/s13258-018-0716-y     Reference: June 29th, 2018
Variation: June 29th, 2018
5 years agouaz275  :
5.04 - 5.04
GRMZM2G096972
Helentjaris, T et al. 1994. MNL 68:101-104     Reference: September 1st, 2003
Variation: September 1st, 2003
Gene Model: June 27th, 2018
5 years agomch4 maize CRY1 homolog4:
 
GRMZM5G882378
    Variation: October 14th, 2010
Gene Model: June 27th, 2018
5 years agoumc1355  :
5.03
GRMZM5G823135
    Variation: September 1st, 2003
Gene Model: June 23rd, 2018
5 years agoumc1557a  :
5.03
GRMZM2G133895
    Variation: September 1st, 2003
Gene Model: June 23rd, 2018
5 years agopco105903  :
5.03
GRMZM2G152853
    Variation: September 25th, 2007
Gene Model: June 23rd, 2018
5 years agobnlg1046  :
5.03
GRMZM2G152764
    Variation: September 1st, 2003
Gene Model: June 18th, 2018
5 years agowtf2 what's this factor2:
5.01
AC210013.4_FG013
  At5g62990 (TAIR)
LOC_Os04g24710 (MSU/TIGR)
Variation: September 1st, 2003
Gene Model: June 15th, 2018
5 years agoumc1445  :
5.00
GRMZM2G121840
    Variation: September 1st, 2003
Gene Model: June 13th, 2018
5 years agoinvan5 invertase alkaline neutral5:
2.05
GRMZM2G115451
Juarez-Colunga, S et al. 2018. Plant Mol Biol pp.doi: 10.1007/s11103-018-0746-5     Reference: June 12th, 2018
Gene Product: June 12th, 2018
Gene Model: June 12th, 2018
5 years agoinvan3 invertase alkaline neutral3:
 
GRMZM2G170842
Juarez-Colunga, S et al. 2018. Plant Mol Biol pp.doi: 10.1007/s11103-018-0746-5     Reference: June 12th, 2018
Gene Product: June 12th, 2018
Gene Model: June 12th, 2018
5 years agoinvan4 invertase alkaline neutral4:
 
GRMZM2G007277
Juarez-Colunga, S et al. 2018. Plant Mol Biol pp.doi: 10.1007/s11103-018-0746-5     Reference: June 12th, 2018
Gene Product: June 12th, 2018
Gene Model: June 12th, 2018
5 years agoinvan8 invertase alkaline neutral8:
 
GRMZM2G040843
Juarez-Colunga, S et al. 2018. Plant Mol Biol pp.doi: 10.1007/s11103-018-0746-5     Reference: June 12th, 2018
Gene Product: June 12th, 2018
Gene Model: June 12th, 2018
5 years agoinvan9 invertase alkaline neutral9:
 
GRMZM2G022782
Juarez-Colunga, S et al. 2018. Plant Mol Biol pp.doi: 10.1007/s11103-018-0746-5     Reference: June 12th, 2018
Gene Product: June 12th, 2018
Gene Model: June 12th, 2018
5 years agoumc19  :
4.07
GRMZM2G125838
Beavis, WD et al. 1991. Theor Appl Genet 83:141-145     Reference: September 1st, 2003
Variation: September 1st, 2003
Gene Model: June 8th, 2018
5 years agoumc1101  :
4.09
GRMZM2G041310
    Variation: September 1st, 2003
Gene Model: June 7th, 2018
5 years agoumc1132  :
4.08
GRMZM2G131957
    Variation: September 1st, 2003
Gene Model: June 7th, 2018
5 years agoumc1650  :
4.09
GRMZM2G121495
    Variation: September 1st, 2003
Gene Model: June 7th, 2018
5 years agoumc1652  :
4.04
GRMZM5G852329
    Variation: September 1st, 2003
Gene Model: June 7th, 2018
6 years agocul1 cullin1:
 
GRMZM2G166089
Hu, SL et al. 2017. Frontiers Plant Sci 8:1039     Reference: July 6th, 2017
Gene Product: May 10th, 2018
Gene Model: July 6th, 2017
6 years agosin2 sin homolog2:
 
GRMZM2G334457
Dechorgnat, J et al. 2018. Frontiers Plant Sci 9:531     Reference: May 10th, 2018
Gene Product: September 1st, 2003
Gene Model: May 10th, 2018
6 years agocl13018_1  :
1.05
GRMZM2G135045
    Variation: September 25th, 2007
Gene Model: May 4th, 2018
6 years agocl44168_1  :
2.02
GRMZM2G008060
    Variation: September 25th, 2007
Gene Model: May 4th, 2018
6 years agogg2 G-protein gamma subunit2:
 
   Wu, QY et al. 2018. PLoS Genetics pp.doi: 10.1371/journal.pgen.1007374   AT3G22942 (TAIR)
LOC_Os03g43480 (MSU/TIGR)
Reference: May 1st, 2018
Gene Product: May 1st, 2018
6 years agobnlg589  :
4.10
GRMZM2G101920
    Variation: September 1st, 2003
Gene Model: April 25th, 2018
6 years agobnlg1434  :
4.00
GRMZM2G008369
    Variation: September 1st, 2003
Gene Model: April 25th, 2018
6 years agobnl7.65  :
4.08
GRMZM2G138936
Grant, D et al. 1993. MNL 67:55-61     Reference: September 1st, 2003
Variation: September 1st, 2003
Gene Model: April 25th, 2018
6 years agopki1 protein kinase inhibitor1:
1.03
   Wu, LJ et al. 2011. Plant Mol Biol Rep 29:1006-1012     Reference: April 21st, 2018
Gene Product: September 1st, 2003
Variation: October 7th, 2014
6 years agoumc1142  :
4.05
GRMZM2G030125
    Variation: September 1st, 2003
Gene Model: April 17th, 2018
6 years agoumc1964  :
4.05
GRMZM2G075496
    Variation: September 1st, 2003
Gene Model: April 17th, 2018
6 years agoAY110355  :
4.06
GRMZM2G074436
    Variation: July 29th, 2004
Gene Model: April 17th, 2018
6 years agoAY109980  :
4.08
GRMZM2G363038
    Variation: July 29th, 2004
Gene Model: April 12th, 2018
6 years agoAY109933  :
4.09
GRMZM2G078832
    Variation: September 25th, 2007
Gene Model: April 12th, 2018
6 years agoumc2270  :
3.06
GRMZM2G047384
    Variation: February 24th, 2007
Gene Model: April 3rd, 2018
6 years agoumc1273  :
3.08
GRMZM2G047298
    Variation: September 1st, 2003
Gene Model: April 2nd, 2018
6 years agoumc1311  :
3.06
GRMZM2G105184
    Variation: September 1st, 2003
Gene Model: April 2nd, 2018
6 years agoumc1392  :
3.04
GRMZM2G395983
    Variation: September 1st, 2003
Gene Model: April 2nd, 2018
6 years agoumc1399  :
3.07
GRMZM2G055898
    Variation: September 1st, 2003
Gene Model: April 2nd, 2018
6 years agoumc1449  :
3.04
GRMZM2G061655
    Variation: February 24th, 2007
Gene Model: April 2nd, 2018
6 years agoumc1458  :
3.02
GRMZM2G055089
    Variation: September 1st, 2003
Gene Model: April 2nd, 2018
6 years agoumc1717a  :
3.04
GRMZM2G076029
    Variation: September 1st, 2003
Gene Model: April 2nd, 2018
6 years agoumc1767  :
3.07
AC210193.4_FG002
    Variation: September 1st, 2003
Gene Model: April 2nd, 2018
6 years agoumc1773  :
3.04
GRMZM2G390374
    Variation: September 1st, 2003
Gene Model: April 2nd, 2018
6 years agocsu636  :
3.05
GRMZM2G359505
    Variation: September 1st, 2003
Gene Model: March 23rd, 2018
6 years agommc0022  :
3.05
GRMZM5G832175
    Variation: September 1st, 2003
Gene Model: March 23rd, 2018
6 years agobnlg1601  :
3.05
GRMZM2G081935
    Variation: September 1st, 2003
Gene Model: March 22nd, 2018
6 years agoAY110151  :
3.04
GRMZM2G017835
    Variation: July 29th, 2004
Gene Model: March 20th, 2018
6 years agoBE639846  :
3.06
GRMZM2G127180
    Variation: July 29th, 2004
Gene Model: March 20th, 2018
6 years agoo*-N1244A opaqueN1244A:
4.00 - 4.05
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: March 13th, 2018
6 years agopsk2 phytosulfokine2:
3.05
GRMZM2G084859
Lorbiecke, R et al. 2005. J Exp Bot 56: 1805-1819     Reference: January 17th, 2007
Variation: December 30th, 2015
Gene Model: March 13th, 2018
6 years agoumc1743  :
9.03
GRMZM2G108570
    Variation: September 1st, 2003
Gene Model: March 8th, 2018
6 years agoumc1789  :
9.06
GRMZM2G008638
    Variation: September 1st, 2003
Gene Model: March 8th, 2018
6 years agoumc109  :
9.01
GRMZM2G136831
Anderson, L, et al. 2004. Genetics. 166:1923-1933     Reference: February 12th, 2011
Variation: March 8th, 2018
Gene Model: April 20th, 2017
6 years agoumc1271  :
9.03
GRMZM2G342738
    Variation: September 1st, 2003
Gene Model: March 7th, 2018
6 years agoumc1492  :
9.04
GRMZM2G151387
    Variation: September 1st, 2003
Gene Model: March 7th, 2018
6 years agoumc1120  :
9.04
GRMZM2G136538
    Variation: September 1st, 2003
Gene Model: March 6th, 2018
6 years agocsu623a  :
9.03
GRMZM2G463953
    Variation: September 1st, 2003
Gene Model: March 1st, 2018
6 years agoaga6 alkaline galactosidase6:
 
GRMZM2G311756
Li, T et al. 2017. Molecular Plant 10:1540-1555     Reference: March 1st, 2018
Gene Product: March 1st, 2018
Gene Model: March 1st, 2018
6 years agoAY109764  :
9.04
GRMZM2G314769
    Variation: September 25th, 2007
Gene Model: February 28th, 2018
6 years agobnlg1316  :
2.08
GRMZM2G086805
    Variation: September 1st, 2003
Gene Model: February 22nd, 2018
6 years agoumc1604  :
2.08
GRMZM2G109120
    Variation: September 1st, 2003
Gene Model: February 22nd, 2018
6 years agoumc1658  :
2.06
GRMZM2G083972
    Variation: September 1st, 2003
Gene Model: February 22nd, 2018
6 years agoumc1755  :
2.06
GRMZM2G398089
    Variation: September 1st, 2003
Gene Model: February 22nd, 2018
6 years agoIDP825  :
2.06
GRMZM5G874167
    Variation: March 31st, 2005
Gene Model: February 22nd, 2018
6 years agoumc1465  :
2.04
GRMZM2G447691
    Variation: September 1st, 2003
Gene Model: February 21st, 2018
6 years agoumc1541  :
2.04
GRMZM2G124079
    Variation: September 1st, 2003
Gene Model: February 21st, 2018
6 years agoumc1108  :
2.06
GRMZM2G123972
    Variation: September 1st, 2003
Gene Model: February 16th, 2018
6 years agoumc1004  :
2.06
GRMZM2G098076
    Variation: September 1st, 2003
Gene Model: February 15th, 2018
6 years agocox10a cytochrome c oxidase subunit10a:
 
GRMZM2G178859
Hunter, CT, III et al. 2018. Plant J 93:799-813     Reference: February 15th, 2018
Gene Product: September 1st, 2003
Gene Model: January 8th, 2018
6 years agocox10b cytochrome c oxidase subunit10b:
 
GRMZM2G162776
Hunter, CT, III et al. 2018. Plant J 93:799-813     Reference: February 15th, 2018
Gene Product: September 1st, 2003
Gene Model: January 8th, 2018
6 years agophpt1 para-hydroxybenzoate-polyprenyltransferase1:
 
GRMZM2G080497
Hunter, CT, III et al. 2018. Plant J 93:799-813     Reference: February 15th, 2018
Gene Product: January 8th, 2018
Gene Model: January 8th, 2018
6 years agotacs1 terminal acidic SANT 1:
2.08
GRMZM2G111906
Marian, CO; Bass, HW. 2005. Biochim Biophys Acta. 14:81-86     Reference: February 7th, 2005
Variation: February 14th, 2018
Gene Model: July 15th, 2015
6 years agobnl17.14  :
2.10
GRMZM2G345270
Grant, D et al. 1993. MNL 67:55-61     Reference: September 1st, 2003
Variation: September 1st, 2003
Gene Model: February 2nd, 2018
6 years agoAY110410  :
2.07
GRMZM5G860226
    Variation: July 29th, 2004
Gene Model: February 1st, 2018
6 years agoAY110535  :
2.00
GRMZM2G348959
    Variation: September 25th, 2007
Gene Model: February 1st, 2018
6 years agobass1 bile acid sodium symporter1:
 
GRMZM2G123884
Huang, L et al. 2018. Biochem J pp.doi: 10.1042/BCJ20170883   At1g78560 (TAIR) Reference: February 1st, 2018
Gene Product: February 1st, 2018
Gene Model: February 1st, 2018
6 years agoslac3 slow anion channel-associated3:
 
GRMZM2G447657
Qi, G-N et al. 2018. Plant Cell Physiol pp.doi: 10.1093/pcp/pcy015     Reference: February 1st, 2018
Gene Product: February 1st, 2018
Gene Model: February 1st, 2018
6 years agoslac2 slow anion channel-associated2:
6.05
GRMZM2G061469
Qi, G-N et al. 2018. Plant Cell Physiol pp.doi: 10.1093/pcp/pcy015     Reference: February 1st, 2018
Gene Product: February 1st, 2018
Gene Model: February 1st, 2018
6 years agoAY110266  :
2.04
GRMZM2G081689
    Variation: September 25th, 2007
Gene Model: January 31st, 2018
6 years agoAW681281  :
2.05
GRMZM2G472770
    Variation: July 29th, 2004
Gene Model: January 30th, 2018
6 years agoAY104214  :
2.03
GRMZM2G059365
    Variation: September 25th, 2007
Gene Model: January 30th, 2018
6 years agoAY109586  :
2.10
GRMZM2G096814
    Variation: July 29th, 2004
Gene Model: January 30th, 2018
6 years agodba3 DNA binding activity3:
10.07
GRMZM2G011513
Mroczek, RJ; Melo, JR; Luce, AC; Hiatt, EN; Dawe, RK. 2006. Genetics. 174:145-154     Reference: October 2nd, 2006
Variation: January 18th, 2018
Gene Model: January 16th, 2018
6 years agobnlg1074  :
10.04
GRMZM2G005126
    Variation: September 1st, 2003
Gene Model: January 16th, 2018
6 years agobnlg1712  :
10.03
GRMZM2G093858
    Variation: September 1st, 2003
Gene Model: January 16th, 2018
6 years agomzetc34  :
10.04
GRMZM2G027241
Katzir, N et al. 1996. Mol Breed 2:291-292     Reference: September 1st, 2003
Variation: January 16th, 2018
Gene Model: January 16th, 2018
6 years agoIDP774  :
10.04
GRMZM2G096695
    Variation: March 31st, 2005
Gene Model: January 16th, 2018
6 years agocsu625  :
10.03
GRMZM2G011136
    Variation: September 1st, 2003
Gene Model: January 15th, 2018
6 years agoIDP620  :
10.04
GRMZM2G134539
    Variation: March 31st, 2005
Gene Model: January 15th, 2018
6 years agostk3 serine-threonine kinase3:
 
GRMZM2G301647
Fan, MX et al. 2018. Plant Biotechnol J pp.doi: 10.1111/pbi.12880     Reference: January 13th, 2018
Gene Product: May 13th, 2014
Variation: January 13th, 2018
Gene Model: May 16th, 2017
6 years agoAY109829  :
10.07
GRMZM2G040876
    Variation: July 29th, 2004
Gene Model: January 12th, 2018
6 years agogpa2 glyceraldehyde-3-phosphate dehydrogenase2:
10.04
GRMZM2G039723
Quigley, F et al. 1988. Proc Natl Acad Sci, USA 85:2672-2676     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Gene Model: January 11th, 2018
6 years agocdpk25 calcium dependent protein kinase25:
 
GRMZM2G109843
Mittal, S et al. 2018. Front Chem 5:115     Reference: January 10th, 2018
Gene Product: December 3rd, 2013
Gene Model: January 10th, 2018
6 years agohis2b6  :
10.04
GRMZM2G046841
Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Gene Model: January 9th, 2018
6 years agorfl2 restorer fertility lethal2:
 
   Gabay-Laughnan, S et al. 2018. G3 8:291-302     Reference: January 5th, 2018
Variation: November 27th, 2017
6 years agohagtf29 GNAT-transcription factor 29:
6.05
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: January 4th, 2018
6 years agoIDP524  :
10.04
GRMZM2G177203
    Variation: March 31st, 2005
Gene Model: January 3rd, 2018
6 years agoIDP2353  :
10.02
GRMZM2G164113
    Variation: March 31st, 2005
Gene Model: January 2nd, 2018
6 years agoIDP2556  :
10.04
GRMZM2G143725
    Variation: March 31st, 2005
Gene Model: January 2nd, 2018
6 years agoIDP2561  :
10.04
GRMZM2G164538
    Variation: March 31st, 2005
Gene Model: January 2nd, 2018
6 years agoIDP2579  :
10.04
GRMZM2G177182
    Variation: March 31st, 2005
Gene Model: January 2nd, 2018
6 years agoIDP258  :
10.01
GRMZM5G803318
    Variation: March 31st, 2005
Gene Model: January 2nd, 2018
6 years agoIDP475  :
10.03
GRMZM2G029307
    Variation: March 31st, 2005
Gene Model: January 2nd, 2018
6 years agoIDP48  :
10.03
GRMZM2G046861
    Variation: March 31st, 2005
Gene Model: January 2nd, 2018
6 years agoAY110060  :
10.00
GRMZM5G832378
    Variation: July 29th, 2004
Gene Model: December 29th, 2017
6 years agoAY110248  :
10.03
GRMZM2G149894
    Variation: July 29th, 2004
Gene Model: December 29th, 2017
6 years agoAY110514  :
10.04
GRMZM2G119116
    Variation: July 29th, 2004
Gene Model: December 29th, 2017
6 years agoAY109920  :
10.04
GRMZM2G059965
    Variation: July 29th, 2004
Gene Model: December 15th, 2017
6 years agoumc1453  :
10.04
GRMZM5G857936
    Variation: September 1st, 2003
Gene Model: December 14th, 2017
6 years agoumc1507  :
10.04 - 10.05
GRMZM2G071518
    Variation: September 1st, 2003
Gene Model: December 14th, 2017
6 years agoumc1589  :
10.04
GRMZM2G401883
    Variation: September 1st, 2003
Gene Model: December 14th, 2017
6 years agoumc1380  :
10.00
GRMZM2G138659
    Variation: September 1st, 2003
Gene Model: December 13th, 2017
6 years agoumc1280  :
10.04
GRMZM2G098577
    Variation: September 1st, 2003
Gene Model: December 12th, 2017
6 years agoumc1293  :
10.01
GRMZM2G181546
    Variation: April 6th, 2007
Gene Model: December 12th, 2017
6 years agoumc1113  :
10.02 - 10.04
GRMZM2G440259
    Variation: September 1st, 2003
Gene Model: December 10th, 2017
6 years agoumc1115  :
10.04
GRMZM2G167280
    Variation: September 1st, 2003
Gene Model: December 10th, 2017
6 years agoumc1152  :
10.01 - 10.02
GRMZM2G050709
    Variation: September 1st, 2003
Gene Model: December 9th, 2017
6 years agoumc1196a  :
10.07
GRMZM2G324767
    Variation: September 1st, 2003
Gene Model: December 9th, 2017
6 years agorfl1 restorer fertility lethal1:
 
   Laughnan, JR and Gabay-Laughnan, SJ 1975. pp.330-349 in Birky, CW et al. 1975.Ohio State Univ Press, Columbus     Reference: December 31st, 2010
Variation: November 24th, 2017
6 years agotel2 telomere maintenance2:
 
GRMZM2G144166
Garcia, NS; Messing, J. 2017. Frontiers Plant Sci 8:1723     Reference: November 23rd, 2017
Gene Product: June 2nd, 2017
Gene Model: June 1st, 2017
6 years agotti1 tel2-interacting protein1:
 
GRMZM2G056403
Garcia, NS; Messing, J. 2017. Frontiers Plant Sci 8:1723     Reference: November 23rd, 2017
Gene Product: June 2nd, 2017
Variation: June 1st, 2017
Gene Model: June 1st, 2017
6 years agosmg1 suppressor with morphogenetic defects on genitalia1 :
 
GRMZM2G033135
Garcia, NS; Messing, J. 2017. Frontiers Plant Sci 8:1723     Reference: November 23rd, 2017
Gene Product: May 13th, 2014
Gene Model: November 23rd, 2017
6 years agotrrap1 transformation/transcription domain-associated protein1 :
 
AC198481.3_FG004
Garcia, NS; Messing, J. 2017. Frontiers Plant Sci 8:1723     Reference: November 23rd, 2017
Gene Product: August 15th, 2017
Gene Model: November 23rd, 2017
6 years agoGRMZM5G899476  :
 
GRMZM5G899476
Yang, MT et al. 2017. Theor Appl Genet pp.doi: 10.1007/s00122-017-3012-3     Reference: November 17th, 2017
Variation: November 17th, 2017
Gene Model: November 17th, 2017
6 years agopza02266  :
2.09
       Variation: November 16th, 2017
6 years agopco118092  :
2.01
GRMZM2G070287
    Variation: September 25th, 2007
Gene Model: November 15th, 2017
6 years agophm4353  :
7.02
       Variation: November 8th, 2017
6 years agopza00271  :
4.07
       Variation: November 7th, 2017
6 years agopco137067b  :
2.06
GRMZM2G030312
    Variation: November 3rd, 2017
Gene Model: November 4th, 2017
6 years agoumc1635  :
2.05
GRMZM2G085086
    Variation: November 3rd, 2017
Gene Model: November 3rd, 2017
6 years agopza00381  :
1.08
       Variation: November 1st, 2017
6 years agoumc1819  :
1.12
GRMZM2G058511
    Variation: September 1st, 2003
Gene Model: October 20th, 2017
6 years agow*-8954 white*-8954:
 
       Variation: October 19th, 2017
6 years agomaf1 MFP1 attachment factor1:
 
GRMZM2G479245
Forestan, C et al. 2017. BMC Plant Biology 17:161     Reference: October 16th, 2017
Gene Product: September 1st, 2003
Gene Model: June 3rd, 2017
6 years agomcm2 minichromosome maintenance2:
3.05
GRMZM2G112074
Studer, AJ et al. 2017. Genetics 207:755-765   AT4G02060 (TAIR) Reference: October 9th, 2017
Gene Product: August 2nd, 2017
Variation: July 31st, 2017
Gene Model: July 30th, 2017
6 years agoacm1 accomplice1:
 
GRMZM2G175065
Lisch, D. 2015. Microbiol Spectr. pp.doi: 10.1128/microbiolspec.MDNA3-0032-2014     Reference: June 25th, 2015
Variation: October 7th, 2017
Gene Model: October 7th, 2017
6 years agodgk4 diacylglycerol kinase4:
 
GRMZM2G019562
Gu, YN et al. 2017. J Plant Biochem pp.DOI: 10.1007/s13562-017-0424-8     Reference: September 18th, 2017
Gene Product: September 18th, 2017
Variation: September 18th, 2017
Gene Model: September 18th, 2017
6 years agodgk5 diacylglycerol kinase5:
 
GRMZM5G827286
Gu, YN et al. 2017. J Plant Biochem pp.DOI: 10.1007/s13562-017-0424-8     Reference: September 18th, 2017
Gene Product: September 18th, 2017
Variation: September 18th, 2017
Gene Model: September 18th, 2017
6 years agodgk6 diacylglycerol kinase6:
 
GRMZM2G128214
Gu, YN et al. 2017. J Plant Biochem pp.DOI: 10.1007/s13562-017-0424-8     Reference: September 18th, 2017
Gene Product: September 18th, 2017
Variation: September 18th, 2017
Gene Model: September 18th, 2017
6 years agopipf1 Ping-Pong family plant transposase1:
 
GRMZM2G440198
Yang, Q, et al. 2017. Nature Genetics. 0:doi: 10.1038/ng.3919     Reference: September 7th, 2017
Gene Product: July 25th, 2017
Variation: July 25th, 2017
Gene Model: July 25th, 2017
6 years agomgt10 magnesium transporter10:
 
GRMZM2G018706
Li, HY et al. 2017. Plant Mol Biol pp.doi: 10.1007/s11103-017-0645-1     Reference: September 6th, 2017
Gene Product: April 18th, 2016
Gene Model: April 18th, 2016
6 years agobnl5.59a  :
1.06
GRMZM2G113840
Cowen, N et al. 1992. Theor Appl Genet 84:720-724     Reference: September 1st, 2003
Variation: September 1st, 2003
Gene Model: August 25th, 2017
6 years agoIDP1951  :
1.06
GRMZM2G113726
    Variation: March 31st, 2005
Gene Model: August 25th, 2017
6 years agomyb164 MYB-transcription factor 164:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: July 25th, 2017
Variation: August 24th, 2017
6 years agogun1 genomes uncoupled1:
1.05
GRMZM2G432850
  AT2G31400 (TAIR) Gene Product: December 27th, 2016
Gene Model: August 22nd, 2017
6 years agopop1 putative organelle permease1 :
 
GRMZM2G024823
    Variation: August 18th, 2017
Gene Model: August 18th, 2017
6 years agoburp1 BURP domain-containing protein-RD22-like1:
 
GRMZM2G446170
Phillips, K; Ludidi, N. 2017. Sci. Rep. 7:8821     Reference: August 18th, 2017
Gene Product: August 18th, 2017
Variation: August 18th, 2017
Gene Model: August 18th, 2017
6 years agoburp9 BURP domain-containing protein-RD22-like9:
 
GRMZM2G406170
Gan, D et al. 2011. Mol Biol Rep 38:4553-4563     Reference: August 18th, 2017
Gene Product: August 18th, 2017
Variation: August 18th, 2017
Gene Model: August 18th, 2017
6 years agoburp4 BURP domain-containing protein-RD22-like4:
7.03
GRMZM2G078779
Gan, D et al. 2011. Mol Biol Rep 38:4553-4563     Reference: August 18th, 2017
Gene Product: August 18th, 2017
Variation: August 18th, 2017
Gene Model: August 18th, 2017
6 years agocsu323  :
1.04
GRMZM2G036543
Baysdorfer, C. 1996. Nucleotide sequence submission to dbEST     Reference: September 1st, 2003
Variation: September 1st, 2003
Gene Model: August 17th, 2017
6 years agoumc1297  :
1.05
GRMZM2G086869
    Variation: October 12th, 2016
Gene Model: August 17th, 2017
6 years agovps2 vacuolar protein sorting2:
 
GRMZM2G179662
Li, F et al. 2015. Plant Cell 27:1389-1408   AT4G29380 (TAIR) Reference: August 15th, 2017
Gene Product: August 15th, 2017
Gene Model: August 15th, 2017
6 years agommp66  :
1.03
GRMZM2G073591
    Variation: August 8th, 2017
Gene Model: August 8th, 2017
6 years agostk4 serine-threonine kinase4:
 
GRMZM2G156013
Azad, I; Alemzadeh, A. 2017. Molecular Cell Biology Research Communications 6:65-75     Reference: August 5th, 2017
Gene Product: May 13th, 2014
Variation: August 5th, 2017
Gene Model: August 5th, 2017
6 years agoras11E1 ras-related protein11E1:
 
GRMZM2G164527
    Variation: January 24th, 2011
Gene Model: August 4th, 2017
6 years agomcm6 minichromosome maintenance6:
 
GRMZM2G021069
Dresselhaus, T et al. 2006. Plant Physiol 140:512-527   AT5G44635 (TAIR) Reference: July 31st, 2017
Gene Product: August 2nd, 2017
Gene Model: July 31st, 2017
6 years agomybr36 MYB-related-transcription factor 36:
2.02
GRMZM2G014534
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: July 25th, 2017
Gene Model: June 23rd, 2016
6 years agomyb45 MYB-transcription factor 45:
7.01
GRMZM2G051793
Grant, D et al. 1993. MNL 67:55-61     Reference: September 1st, 2003
Gene Product: July 25th, 2017
Gene Model: April 7th, 2017
6 years agowrky133 WRKY-transcription factor 133:
 
       Gene Product: July 24th, 2017
6 years agowrky134 WRKY-transcription factor 134:
 
       Gene Product: July 24th, 2017
6 years agonl3 narrow leaf3:
 
   Brewbaker, JL. 2010. MNL 84:in press     Reference: July 24th, 2017
Variation: January 21st, 2011
6 years agolw5 lemon white5:
 
   Stinard, PS. 2013. MNL 86:29-31     Reference: March 10th, 2014
Variation: July 24th, 2017
6 years agolw6 lemon white6:
 
   Stinard, PS. 2013. MNL 86:29-31     Reference: March 10th, 2014
Variation: July 24th, 2017
6 years agobnlg2238  :
1.04
GRMZM2G016480
    Variation: September 1st, 2003
Gene Model: July 20th, 2017
6 years agobnlg2295  :
1.04
GRMZM2G143703
    Variation: September 29th, 2010
Gene Model: July 20th, 2017
6 years agobnlg1564  :
1.07
GRMZM5G821828
    Variation: September 1st, 2003
Gene Model: July 14th, 2017
6 years agobnlg1014  :
1.01
GRMZM2G020548
    Variation: September 1st, 2003
Gene Model: July 11th, 2017
6 years agobnlg1025  :
1.07
GRMZM2G078088
    Variation: September 1st, 2003
Gene Model: July 11th, 2017
6 years agobnlg1331  :
1.09
GRMZM2G466385
    Variation: September 1st, 2003
Gene Model: July 11th, 2017
6 years agobnl9.11b(lts)  :
1.04
GRMZM2G067371
    Gene Product: September 1st, 2003
Gene Model: July 6th, 2017
6 years agouaz248b(his3)  :
5.05
GRMZM2G176358
Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Gene Model: July 5th, 2017
6 years agoumc1948  :
1.01
GRMZM2G172758
    Variation: May 10th, 2016
Gene Model: June 14th, 2017
6 years agofha2 FHA-transcription factor 2:
1.06
GRMZM2G424241
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Variation: September 1st, 2003
Gene Model: June 9th, 2017
6 years agoumc1111  :
1.11
GRMZM2G163912
    Variation: September 21st, 2016
Gene Model: June 9th, 2017
6 years agoumc1123  :
1.06
GRMZM5G854901
    Variation: September 1st, 2003
Gene Model: June 9th, 2017
6 years agoAY110052  :
1.03
GRMZM2G141799
    Variation: September 25th, 2007
Gene Model: June 7th, 2017
6 years agoAY110396  :
1.05
GRMZM2G110572
    Variation: July 29th, 2004
Gene Model: June 7th, 2017
6 years agoAY109916  :
1.12
GRMZM2G422649
    Variation: July 29th, 2004
Gene Model: June 6th, 2017
6 years agocap2 calcium pump2:
1.03
GRMZM2G141704
Subbaiah, C et al. 2017. Mol Plant-Microbe Interact pp.doi: 10.1094/MPMI-02-17-0026-R     Reference: March 7th, 2017
Gene Product: May 20th, 2015
Variation: June 6th, 2017
Gene Model: June 6th, 2017
6 years agoucp1 uncoupling protein1:
 
GRMZM5G852877
Xu, JH et al. 2017. Plant Physiol Biochem 117:51-60     Reference: June 5th, 2017
Gene Product: June 5th, 2017
Variation: June 5th, 2017
Gene Model: June 5th, 2017
6 years agoucp2 uncoupling protein2:
 
GRMZM2G165629
Xu, JH et al. 2017. Plant Physiol Biochem 117:51-60     Reference: June 5th, 2017
Gene Product: June 5th, 2017
Gene Model: June 5th, 2017
6 years agocda1 cytidine deaminase1:
7.02
GRMZM2G082924
Xu, JH; Messing, J. 2006. BMC Genetics. 7:52     Reference: August 26th, 2008
Gene Product: August 26th, 2008
Variation: February 7th, 2009
Gene Model: June 3rd, 2017
6 years agocda2 cytidine deaminase2:
2.06
GRMZM2G008216
Xu, JH; Messing, J. 2006. BMC Genetics. 7:52     Reference: August 26th, 2008
Gene Product: August 26th, 2008
Variation: February 7th, 2009
Gene Model: June 3rd, 2017
6 years agoorc3 origin recognition complex3:
 
GRMZM2G381822
Witmer, X et al. 2003. Putative subunits of the maize origin of replication recognition complex ZmORC1-ZmORC5. Nucl Acid Res 31:619-628     Reference: September 1st, 2003
Variation: November 6th, 2010
Gene Model: June 2nd, 2017
6 years agorgp2 ras-related protein RGP2:
 
GRMZM2G093186
Zhang, JM et al. 2007. J Integr Plant Biol 49:1129-1141     Reference: January 12th, 2011
Variation: January 17th, 2011
Gene Model: June 1st, 2017
6 years agopsei5 cystatin5:
6.05
GRMZM2G024264
Massonneau, A; Condamine, P; Wisniewski, J; Zivy, M; Rogowsky, P. 2005. Biochim Biophys Acta. 1729:186-199     Reference: February 20th, 2009
Gene Product: April 21st, 2008
Variation: April 21st, 2008
Gene Model: June 1st, 2017
6 years agomab27 math-btb27:
 
GRMZM2G161569
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Variation: May 28th, 2017
Gene Model: February 14th, 2017
6 years agomab20 math-btb20:
 
GRMZM2G009724
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Variation: May 26th, 2017
Gene Model: February 14th, 2017
6 years agomab1 math-btb1:
 
AC195147.3_FG001
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Variation: May 24th, 2017
Gene Model: February 13th, 2017
6 years agomab15 math-btb15:
 
GRMZM2G148213
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Variation: May 24th, 2017
Gene Model: February 13th, 2017
6 years agomab24 math-btb24:
 
GRMZM2G103251
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Variation: May 23rd, 2017
Gene Model: February 14th, 2017
6 years agomab26 math-btb26:
 
GRMZM2G161610
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Variation: May 23rd, 2017
Gene Model: February 14th, 2017
6 years agoppr102 pentatricopeptide repeat102:
 
GRMZM2G012174
  At5g50280 (TAIR)
LOC_Os05g22870 (MSU/TIGR)
Gene Product: December 27th, 2016
Gene Model: May 21st, 2017
6 years agoppr36 pentatricopeptide repeat36:
 
GRMZM2G333678
  AT4G19191 (TAIR)
LOC_Os11g14980 (MSU/TIGR)
Gene Product: December 27th, 2016
Gene Model: May 21st, 2017
6 years agoppr61 pentatricopeptide repeat61:
 
GRMZM2G341479
  AT1G09220 (TAIR)
LOC_Os02g49830 (MSU/TIGR)
Gene Product: December 27th, 2016
Gene Model: May 21st, 2017
6 years agoppr6 pentatricopeptide repeat6:
 
GRMZM2G093291
  At5g27270 (TAIR)
LOC_Os06g02120 (MSU/TIGR)
Gene Product: December 27th, 2016
Gene Model: May 20th, 2017
6 years agoak2 ankyrin repeat protein2:
4.10
GRMZM2G019838
  At5g40160 (TAIR)
LOC_Os06g13000 (MSU/TIGR)
Variation: September 25th, 2007
Gene Model: May 20th, 2017
7 years agomab14 math-btb14:
 
GRMZM2G052985
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Variation: May 10th, 2017
Gene Model: February 13th, 2017
7 years agomab7 math-btb7:
 
GRMZM2G110531
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Variation: May 4th, 2017
Gene Model: February 13th, 2017
7 years agomab18 math-btb18:
 
GRMZM2G060765
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Variation: May 4th, 2017
Gene Model: February 14th, 2017
7 years agomab30 math-btb30:
 
GRMZM2G319215
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Variation: May 4th, 2017
Gene Model: February 14th, 2017
7 years agoumc1457  :
8.03
GRMZM5G887068
    Variation: April 14th, 2017
Gene Model: April 14th, 2017
7 years agofdr1 first division restitution1:
 
   Ren, J et al. 2017. Theor Appl Genet pp.doi: 10.1007/s00122-017-2892-6     Reference: April 10th, 2017
Variation: September 6th, 2013
7 years agoasg49  :
7.03
GRMZM2G003869
Grant, D and Helentjaris, T. 1995. RFLP probe sequence submission to dbSTS     Reference: September 1st, 2003
Variation: April 7th, 2017
Gene Model: April 7th, 2017
7 years agoumc1482  :
5.04
GRMZM2G037865
    Variation: September 1st, 2003
Gene Model: March 29th, 2017
7 years agophp20608a  :
4.10
GRMZM2G101818
Beavis, WD et al. 1991. Theor Appl Genet 83:141-145     Reference: September 1st, 2003
Variation: March 17th, 2017
Gene Model: March 17th, 2017
7 years agoglk22 G2-like-transcription factor 22:
4.04
GRMZM2G315506
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Variation: September 1st, 2003
Gene Model: March 10th, 2017
7 years agokri1 ketol-acid reductoisomerase1:
1.04
GRMZM2G161868
Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: March 8th, 2017
Gene Model: March 8th, 2017
7 years agoumc17a  :
3.08
GRMZM2G057283
Grant, D et al. 1993. MNL 67:55-61     Reference: September 1st, 2003
Variation: March 7th, 2017
Gene Model: March 7th, 2017
7 years agocap3 calcium pump3:
 
GRMZM2G162426
Subbaiah, C et al. 2017. Mol Plant-Microbe Interact pp.doi: 10.1094/MPMI-02-17-0026-R     Reference: March 7th, 2017
Gene Product: May 20th, 2015
Variation: May 20th, 2015
Gene Model: May 20th, 2015
7 years agocap4 calcium pump4:
 
AC233878.1_FG004
Subbaiah, C et al. 2017. Mol Plant-Microbe Interact pp.doi: 10.1094/MPMI-02-17-0026-R     Reference: March 7th, 2017
Gene Product: May 20th, 2015
Gene Model: May 26th, 2015
7 years agozar3 Zea mays ARGOS homolog3:
 
GRMZM2G137546
Bruce, W et al. 2017. Patent Application 20170037424     Reference: March 2nd, 2017
Gene Product: August 3rd, 2015
Gene Model: April 14th, 2014
7 years agozar7 Zea mays ARGOS7:
 
GRMZM2G113583
Bruce, W et al. 2017. Patent Application 20170037424     Reference: March 2nd, 2017
Gene Product: August 3rd, 2015
Gene Model: August 1st, 2015
7 years agozar4 Zea mays ARGOS4:
 
GRMZM2G066029
Bruce, W et al. 2017. Patent Application 20170037424     Reference: March 2nd, 2017
Gene Product: August 3rd, 2015
Gene Model: August 1st, 2015
7 years agogts1 Glutamine--tRNA ligase cytoplasmic1:
3.03
GRMZM2G048012
Grant, D et al. 1993. MNL 67:55-61     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: March 2nd, 2017
Gene Model: March 2nd, 2017
7 years agocsu32a  :
3.02
GRMZM2G093405
Chao, S; Baysdorfer, C; Heredia-Diaz, O; Musket, T; Xu, G; Coe, EH. 1994. Theor Appl Genet 88:717-721     Reference: September 1st, 2003
Variation: March 1st, 2017
Gene Model: March 1st, 2017
7 years agomab2 math-btb2:
 
GRMZM2G404188
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Gene Model: February 13th, 2017
7 years agomab3 math-btb3:
 
GRMZM2G337139
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Gene Model: February 13th, 2017
7 years agomab5 math-btb5:
 
GRMZM2G372171
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Gene Model: February 13th, 2017
7 years agomab6 math-btb6:
 
GRMZM2G125162
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Gene Model: February 13th, 2017
7 years agomab8 math-btb8:
 
GRMZM2G418031
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Gene Model: February 13th, 2017
7 years agomab9 math-btb9:
 
GRMZM2G574887
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Gene Model: February 13th, 2017
7 years agomab11 math-btb11:
 
GRMZM2G077428
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Gene Model: February 13th, 2017
7 years agomab12 math-btb12:
 
GRMZM2G181276
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Gene Model: February 13th, 2017
7 years agomab13 math-btb13:
 
GRMZM2G027688
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Gene Model: February 13th, 2017
7 years agomab21 math-btb21:
 
GRMZM2G109738
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Gene Model: February 14th, 2017
7 years agomab22 math-btb22:
 
GRMZM2G046238
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Gene Model: February 14th, 2017
7 years agomab28 math-btb28:
 
GRMZM2G041963
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Gene Model: February 14th, 2017
7 years agomab29 math-btb29:
 
GRMZM2G077951
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Gene Model: February 14th, 2017
7 years agomab19 math-btb19:
7.01
GRMZM2G074323
Juranic, M et al. 2012. Plant Cell 24:4974-4991     Reference: February 14th, 2017
Gene Product: June 6th, 2014
Gene Model: February 14th, 2017
7 years agoexpb1 beta expansin1:
9.04
GRMZM2G146551
Zhou, LZ et al. 2017. Molecular Plant pp.doi: 10.1016/j.molp.2017.01.012     Reference: February 13th, 2017
Gene Product: April 24th, 2008
Variation: December 1st, 2012
Gene Model: February 10th, 2015
7 years agohrl1 heirless1:
 
   Zhou, LZ et al. 2017. Molecular Plant pp.doi: 10.1016/j.molp.2017.01.012     Reference: February 13th, 2017
Variation: July 29th, 2016
7 years agonol1 no legacy1:
 
   Zhou, LZ et al. 2017. Molecular Plant pp.doi: 10.1016/j.molp.2017.01.012     Reference: February 13th, 2017
Variation: July 29th, 2016
7 years agobsl2 baseless2:
 
   Zhou, LZ et al. 2017. Molecular Plant pp.doi: 10.1016/j.molp.2017.01.012     Reference: February 13th, 2017
Variation: July 29th, 2016
7 years agosba1 superbase1:
 
   Zhou, LZ et al. 2017. Molecular Plant pp.doi: 10.1016/j.molp.2017.01.012     Reference: February 13th, 2017
Variation: July 29th, 2016
7 years agomrn1 maternally reduced endosperm1:
 
   Zhou, LZ et al. 2017. Molecular Plant pp.doi: 10.1016/j.molp.2017.01.012     Reference: February 13th, 2017
Variation: July 29th, 2016
7 years agobsl1 baseless1:
 
   Zhou, LZ et al. 2017. Molecular Plant pp.doi: 10.1016/j.molp.2017.01.012     Reference: February 13th, 2017
Variation: July 29th, 2016
7 years agocsu3  :
1.05
GRMZM2G162292
Chao, S; Baysdorfer, C; Heredia-Diaz, O; Musket, T; Xu, G; Coe, EH. 1994. Theor Appl Genet 88:717-721     Reference: September 1st, 2003
Variation: February 15th, 2007
Gene Model: February 1st, 2017
7 years agoumc2244  :
1.12
GRMZM5G876146
    Variation: January 25th, 2017
Gene Model: January 25th, 2017
7 years agoumc2235  :
1.06
GRMZM2G074270
    Variation: January 18th, 2017
Gene Model: January 18th, 2017
7 years agoumc2228  :
1.04
GRMZM2G125241
    Variation: January 10th, 2017
Gene Model: January 10th, 2017
7 years agoumc2229  :
1.04
GRMZM2G093962
    Variation: January 10th, 2017
Gene Model: January 10th, 2017
7 years agomfs18 male flower specific18:
3.04
EF517601.1_FG016
Basse, C. 2005. Plant Physiol. 138:1774-1784     Reference: November 23rd, 2011
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: January 6th, 2017
7 years agoprl1 protease PrlC candidate1:
5.08
GRMZM2G133919
Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: December 28th, 2016
7 years agoppr110 pentatricopeptide repeat protein110:
 
       Gene Product: December 27th, 2016
7 years agoppr111 pentatricopeptide repeat protein111:
 
       Gene Product: December 27th, 2016
7 years agoppr3 pentatricopeptide repeat protein3:
 
       Gene Product: December 27th, 2016
7 years agoppr7 pentatricopeptide repeat protein7:
 
       Gene Product: December 27th, 2016
7 years agoppr10 pentatricopeptide repeat10:
 
       Gene Product: December 27th, 2016
7 years agoppr12 pentatricopeptide repeat protein12:
 
       Gene Product: December 27th, 2016
7 years agoppr26 pentatricopeptide repeat protein26:
 
       Gene Product: December 27th, 2016
7 years agoppr32 pentatricopeptide repeat protein32:
 
       Gene Product: December 27th, 2016
7 years agoppr1036 pentatricopeptide repeat protein1036:
 
       Gene Product: December 27th, 2016
7 years agoppr40 pentatricopeptide repeat protein40:
 
       Gene Product: December 27th, 2016
7 years agoppr47 pentatricopeptide repeat protein47:
 
       Gene Product: December 27th, 2016
7 years agoppr1061 pentatricopeptide repeat protein1061:
 
       Gene Product: December 27th, 2016
7 years agoppr1101 pentatricopeptide repeat protein1101:
 
       Gene Product: December 27th, 2016
7 years agoppr106 pentatricopeptide repeat protein106:
 
       Gene Product: December 27th, 2016
7 years agoppr124 pentatricopeptide repeat protein124:
 
       Gene Product: December 27th, 2016
7 years agoppr125 pentatricopeptide repeat protein125:
 
       Gene Product: December 27th, 2016
7 years agoppr126 pentatricopeptide repeat protein126:
 
       Gene Product: December 27th, 2016
7 years agoppr128 pentatricopeptide repeat protein128:
 
       Gene Product: December 27th, 2016
7 years agoppr131 pentatricopeptide repeat protein131:
 
       Gene Product: December 27th, 2016
7 years agoppr133 pentatricopeptide repeat protein133:
 
       Gene Product: December 27th, 2016
7 years agoppr154 pentatricopeptide repeat protein154:
 
       Gene Product: December 27th, 2016
7 years agoppr158 pentatricopeptide repeat protein158:
 
       Gene Product: December 27th, 2016
7 years agoppr161 pentatricopeptide repeat protein161:
 
       Gene Product: December 27th, 2016
7 years agoppr162 pentatricopeptide repeat protein162:
 
       Gene Product: December 27th, 2016
7 years agoppr172 pentatricopeptide repeat protein172:
 
       Gene Product: December 27th, 2016
7 years agoppr175 pentatricopeptide repeat protein175:
 
       Gene Product: December 27th, 2016
7 years agoppr177 pentatricopeptide repeat protein177:
 
       Gene Product: December 27th, 2016
7 years agoppr187 pentatricopeptide repeat protein187:
 
       Gene Product: December 27th, 2016
7 years agoppr189 pentatricopeptide repeat protein189:
 
       Gene Product: December 27th, 2016
7 years agoppr209 pentatricopeptide repeat protein209:
 
       Gene Product: December 27th, 2016
7 years agoppr210 pentatricopeptide repeat protein210:
 
       Gene Product: December 27th, 2016
7 years agoppr219 pentatricopeptide repeat protein219:
 
       Gene Product: December 27th, 2016
7 years agoppr226 pentatricopeptide repeat protein226:
 
       Gene Product: December 27th, 2016
7 years agoppr232 pentatricopeptide repeat protein232:
 
       Gene Product: December 27th, 2016
7 years agoppr247 pentatricopeptide repeat protein247:
 
       Gene Product: December 27th, 2016
7 years agoppr250 pentatricopeptide repeat protein250:
 
       Gene Product: December 27th, 2016
7 years agoppr252 pentatricopeptide repeat protein252:
 
       Gene Product: December 27th, 2016
7 years agoppr277 pentatricopeptide repeat protein277:
 
       Gene Product: December 27th, 2016
7 years agoppr279 pentatricopeptide repeat protein279:
 
       Gene Product: December 27th, 2016
7 years agoppr283 pentatricopeptide repeat protein283:
 
       Gene Product: December 27th, 2016
7 years agoppr285 pentatricopeptide repeat protein285:
 
       Gene Product: December 27th, 2016
7 years agoppr295 pentatricopeptide repeat protein295:
 
       Gene Product: December 27th, 2016
7 years agoppr288 pentatricopeptide repeat protein288:
 
       Gene Product: December 27th, 2016
7 years agoppr296 pentatricopeptide repeat protein296:
 
       Gene Product: December 27th, 2016
7 years agoppr312 pentatricopeptide repeat protein312:
 
       Gene Product: December 27th, 2016
7 years agoppr323 pentatricopeptide repeat protein323:
 
       Gene Product: December 27th, 2016
7 years agoppr330 pentatricopeptide repeat protein330:
 
       Gene Product: December 27th, 2016
7 years agoppr328 pentatricopeptide repeat protein328:
 
       Gene Product: December 27th, 2016
7 years agoppr350 pentatricopeptide repeat protein350:
 
       Gene Product: December 27th, 2016
7 years agoppr353 pentatricopeptide repeat protein353:
 
       Gene Product: December 27th, 2016
7 years agoppr361 pentatricopeptide repeat protein361:
 
       Gene Product: December 27th, 2016
7 years agoppr366 pentatricopeptide repeat protein366:
 
       Gene Product: December 27th, 2016
7 years agoppr373 pentatricopeptide repeat protein373:
 
       Gene Product: December 27th, 2016
7 years agoppr377 pentatricopeptide repeat protein377:
 
       Gene Product: December 27th, 2016
7 years agoppr379 pentatricopeptide repeat protein379:
 
       Gene Product: December 27th, 2016
7 years agoppr386 pentatricopeptide repeat protein386:
 
       Gene Product: December 27th, 2016
7 years agoppr396 pentatricopeptide repeat protein396:
 
       Gene Product: December 27th, 2016
7 years agoppr399 pentatricopeptide repeat protein399:
 
       Gene Product: December 27th, 2016
7 years agoppr433 pentatricopeptide repeat protein433:
 
       Gene Product: December 27th, 2016
7 years agoppr459 pentatricopeptide repeat protein459:
 
       Gene Product: December 27th, 2016
7 years agoppr475 pentatricopeptide repeat protein475:
 
       Gene Product: December 27th, 2016
7 years agoppr480 pentatricopeptide repeat protein480:
 
       Gene Product: December 27th, 2016
7 years agoppr487 pentatricopeptide repeat protein487:
 
       Gene Product: December 27th, 2016
7 years agoppr490 pentatricopeptide repeat protein490:
 
       Gene Product: December 27th, 2016
7 years agoppr493 pentatricopeptide repeat protein493:
 
       Gene Product: December 27th, 2016
7 years agoppr495 pentatricopeptide repeat protein495:
 
       Gene Product: December 27th, 2016
7 years agoppr499 pentatricopeptide repeat protein499:
 
       Gene Product: December 27th, 2016
7 years agoppr502 pentatricopeptide repeat protein502:
 
       Gene Product: December 27th, 2016
7 years agoppr510 pentatricopeptide repeat protein510:
 
       Gene Product: December 27th, 2016
7 years agoppr513 pentatricopeptide repeat protein513:
 
       Gene Product: December 27th, 2016
7 years agoppr515 pentatricopeptide repeat protein515:
 
       Gene Product: December 27th, 2016
7 years agoppr413 pentatricopeptide repeat protein413:
 
       Gene Product: December 27th, 2016
7 years agoppr49 pentatricopeptide repeat protein49:
 
     AT4G18750 (TAIR) Gene Product: December 27th, 2016
7 years agoppr50 pentatricopeptide repeat protein50:
 
       Gene Product: December 27th, 2016
7 years agocrs4 chloroplast RNA splicing4:
 
GRMZM2G053196
Wei, KF; Han, P. 2016. Mol Breed 36:170     Reference: December 26th, 2016
Gene Product: September 15th, 2012
Variation: December 27th, 2016
Gene Model: July 15th, 2011
7 years agocl15714_1a  :
3.05
       Gene Product: December 27th, 2016
7 years agoppr168 pentatricopeptide repeat protein168:
 
       Gene Product: December 27th, 2016
7 years agoppr239 pentatricopeptide repeat protein239:
4.06
       Gene Product: December 27th, 2016
7 years agoppr*-59040 pentatricopeptide repeat*-59040:
 
GRMZM2G005938
  At3g59040 (TAIR)
LOC_Os08g09270 (MSU/TIGR)
Os08g0191900 (Gramene)
Gene Product: December 27th, 2016
Variation: January 22nd, 2015
Gene Model: January 21st, 2015
7 years agopprsmr4 pentatricopeptide repeat smr4:
 
GRMZM2G164202
Liu, S et al. 2013. RNA Biology 10: 1501-1510   AT2G17033 (TAIR) Reference: December 9th, 2015
Gene Product: December 27th, 2016
Gene Model: December 9th, 2015
7 years agoppr521 pentatricopeptide repeat521:
 
GRMZM2G337701
Wei, KF; Han, P. 2016. Mol Breed 36:170     Reference: December 26th, 2016
Gene Product: December 27th, 2016
Gene Model: December 26th, 2016
7 years agoppr428 pentatricopeptide repeat protein428:
8.03
       Gene Product: December 27th, 2016
7 years agoppr505 pentatricopeptide repeat protein505:
10.04
       Gene Product: December 27th, 2016
7 years agoppr105 pentatricopeptide repeat protein105:
2.04
       Gene Product: December 27th, 2016
7 years agoppr55 pentatricopeptide repeat protein55:
1.07
       Gene Product: December 27th, 2016
7 years agoppr520 pentatricopeptide repeat protein520:
10.07
       Gene Product: December 27th, 2016
7 years agoumc1955  :
1.08
GRMZM2G067315
    Variation: December 22nd, 2016
Gene Model: December 22nd, 2016
7 years agoumc1917  :
1.04
AC213099.3_FG001
    Variation: December 20th, 2016
Gene Model: December 20th, 2016
7 years agogst33 glutathione transferase33:
 
   Li, DZ et al. 2016. J Agric Food Chem pp.DOI: 10.1021/acs.jafc.6b04129     Reference: December 20th, 2016
Gene Product: September 1st, 2003
7 years agoumc1812  :
1.06
GRMZM2G169451
    Variation: September 1st, 2003
Gene Model: December 13th, 2016
7 years agoumc1711  :
1.02
GRMZM2G107815
    Variation: December 7th, 2016
Gene Model: December 7th, 2016
7 years agoemp9 empty pericarp9:
 
   Sangiorgio, S et al. 2016. Plant Reproduction pp.doi: 10.1007/s00497-016-0294-6     Reference: November 21st, 2016
Variation: November 21st, 2016
7 years agoemp8 empty pericarp8:
 
   Sangiorgio, S et al. 2016. Plant Reproduction pp.doi: 10.1007/s00497-016-0294-6     Reference: November 21st, 2016
Variation: November 21st, 2016
7 years agoumc1590  :
1.06
GRMZM2G176962
    Variation: November 17th, 2016
Gene Model: November 17th, 2016
7 years agoumc1601  :
1.05
GRMZM2G038855
    Variation: November 17th, 2016
Gene Model: November 17th, 2016
7 years agoumc1553  :
1.11
GRMZM2G371210
    Variation: September 1st, 2003
Gene Model: November 16th, 2016
7 years agoumc1558  :
1.05
GRMZM2G047187
    Variation: November 16th, 2016
Gene Model: November 16th, 2016
7 years agoumc1479  :
1.03
GRMZM2G042032
    Variation: November 10th, 2016
Gene Model: November 10th, 2016
7 years agoumc1484  :
1.01
GRMZM2G107532
    Variation: November 10th, 2016
Gene Model: November 10th, 2016
7 years agoumc1469  :
1.05
GRMZM2G466982
    Variation: September 1st, 2003
Gene Model: November 9th, 2016
7 years agoumc1452  :
1.04 - 1.04
GRMZM2G107463
    Variation: November 8th, 2016
Gene Model: November 8th, 2016
7 years agoumc1467  :
1.02
GRMZM2G134367
    Variation: November 8th, 2016
Gene Model: November 8th, 2016
7 years agoumc1421  :
1.11
GRMZM2G078200
    Variation: September 1st, 2003
Gene Model: November 4th, 2016
7 years agoumc140a  :
1.09
GRMZM2G108861
Winkler, RG and Helentjaris, T. 1993. MNL 67:110-111     Reference: September 1st, 2003
Variation: November 2nd, 2016
Gene Model: November 2nd, 2016
7 years agoumc1396  :
1.06
GRMZM2G005652
    Variation: September 1st, 2003
Gene Model: October 28th, 2016
7 years agoumc1397  :
1.03
GRMZM2G160506
    Variation: October 27th, 2016
Gene Model: October 27th, 2016
7 years agoet*-N1322C etchedN1322C:
3.05 - 3.09
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: October 26th, 2016
7 years agoumc1374  :
1.07 - 1.07
GRMZM2G119761
    Variation: October 25th, 2016
Gene Model: October 25th, 2016
7 years agosudh8 succinate dehydrogenase8:
 
GRMZM2G023760
Eprintsev, AT et al. 2016. J Plant Physiol 205:33-40     Reference: October 25th, 2016
Gene Product: October 25th, 2016
Gene Model: October 25th, 2016
7 years agosudh9 succinate dehydrogenase9:
 
GRMZM2G160685
Eprintsev, AT et al. 2016. J Plant Physiol 205:33-40     Reference: October 25th, 2016
Gene Product: October 25th, 2016
Gene Model: October 25th, 2016
7 years agosudh10 succinate dehydrogenase10:
 
GRMZM2G076524
Eprintsev, AT et al. 2016. J Plant Physiol 205:33-40     Reference: October 25th, 2016
Gene Product: October 25th, 2016
Gene Model: October 25th, 2016
7 years agosudh11 succinate dehydrogenase11:
 
GRMZM2G306945
Eprintsev, AT et al. 2016. J Plant Physiol 205:33-40     Reference: October 25th, 2016
Gene Product: October 25th, 2016
Gene Model: October 25th, 2016
7 years agoumc1331  :
1.11
GRMZM5G874478
    Variation: October 19th, 2016
Gene Model: October 20th, 2016
7 years agoumc1356  :
1.07
GRMZM2G112617
    Variation: October 20th, 2016
Gene Model: October 20th, 2016
7 years agoglk50 G2-like-transcription factor50:
1.05
GRMZM2G034563
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Variation: September 1st, 2003
Gene Model: October 18th, 2016
7 years agoumc1290  :
1.10
GRMZM2G026780
    Variation: September 1st, 2003
Gene Model: October 7th, 2016
7 years agoasg3  :
1.04
GRMZM2G418289
Grant, D et al. 1993. MNL 67:55-61     Reference: September 1st, 2003
Variation: October 5th, 2016
Gene Model: October 5th, 2016
7 years agotgr1 transgene reactivated1:
 
   Huang, J et al. 2016. International Review of Cell and Molecular Biology. doi: 10.1016/bs.ircmb.2016.08.002     Reference: October 3rd, 2016
Variation: December 23rd, 2014
7 years agoumc115  :
1.02
GRMZM2G162814
Chao, S; Baysdorfer, C; Heredia-Diaz, O; Musket, T; Xu, G; Coe, EH. 1994. Theor Appl Genet 88:717-721     Reference: September 1st, 2003
Variation: September 28th, 2016
Gene Model: March 4th, 2016
7 years agocyp1710  :
4.00
       Gene Product: September 26th, 2016
7 years agocyp2707  :
4.00
       Gene Product: September 26th, 2016
7 years agoarid1 ARID-transcription factor 1:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Variation: September 20th, 2016
7 years agobhlh179 bHLH-transcription factor 179:
 
       Gene Product: September 14th, 2016
7 years agobhlh180 bHLH-transcription factor 180:
 
       Gene Product: September 14th, 2016
7 years agobhlh181 bHLH-transcription factor 181:
 
       Gene Product: September 14th, 2016
7 years agobhlh183 bHLH-transcription factor 183:
 
       Gene Product: September 14th, 2016
7 years agobhlh184 bHLH-transcription factor 184:
 
       Gene Product: September 14th, 2016
7 years agobhlh186 bHLH-transcription factor 186:
 
       Gene Product: September 14th, 2016
7 years agobhlh188 bHLH-transcription factor 188:
 
       Gene Product: September 14th, 2016
7 years agobhlh191 bHLH-transcription factor 191:
 
       Gene Product: September 14th, 2016
7 years agobhlh194 bHLH-transcription factor 194:
 
       Gene Product: September 14th, 2016
7 years agobhlh200 bHLH-transcription factor 200:
 
       Gene Product: September 14th, 2016
7 years agobhlh201 bHLH-transcription factor 201:
 
       Gene Product: September 14th, 2016
7 years agobhlh203 bHLH-transcription factor 203:
 
       Gene Product: September 14th, 2016
7 years agobhlh64 bHLH-transcription factor 64:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: September 14th, 2016
7 years agoLOC118476899  :
 
       Gene Product: September 14th, 2016
7 years agobhlh177 bHLH-transcription factor 177:
 
       Gene Product: September 14th, 2016
7 years agobhlh178 bHLH-transcription factor 178:
 
       Gene Product: September 14th, 2016
7 years agoIDP1489  :
1.04
GRMZM2G043493
Ge, F et al. 2016. Physiol Plant pp.doi: 10.1111/ppl.12470     Reference: May 20th, 2016
Gene Product: September 14th, 2016
Variation: March 31st, 2005
Gene Model: May 20th, 2016
7 years agomel1 maternal effect lethal1:
2.02
   Chettoor, AM et al. 2016. Genetics 204:233-248     Reference: September 7th, 2016
Variation: July 29th, 2016
7 years agostt1 stunter1:
 
   Chettoor, AM et al. 2016. Genetics 204:233-248     Reference: September 7th, 2016
Variation: July 29th, 2016
7 years agomre1 maternal rough endosperm1:
 
   Bai, F et al. 2016. Genetics 204:221-231     Reference: September 7th, 2016
Variation: July 22nd, 2016
7 years agomre2 maternal rough endosperm2:
 
   Bai, F et al. 2016. Genetics 204:221-231     Reference: September 7th, 2016
Variation: July 22nd, 2016
7 years agomre3 maternal rough endosperm3:
 
   Bai, F et al. 2016. Genetics 204:221-231     Reference: September 7th, 2016
Variation: July 22nd, 2016
7 years agossc1 sans scion1:
 
   Chettoor, AM et al. 2016. Genetics 204:233-248     Reference: September 7th, 2016
Variation: July 29th, 2016
7 years agotpn1 topknot1:
 
   Chettoor, AM et al. 2016. Genetics 204:233-248     Reference: September 7th, 2016
Variation: July 29th, 2016
7 years agohrl2 heirless2:
 
   Chettoor, AM et al. 2016. Genetics 204:233-248     Reference: September 7th, 2016
Variation: July 29th, 2016
7 years agonbe1 no bet1 expression1:
 
   Chettoor, AM et al. 2016. Genetics 204:233-248     Reference: September 7th, 2016
Variation: July 29th, 2016
7 years agomrn3 maternally reduced endosperm3:
 
   Chettoor, AM et al. 2016. Genetics 204:233-248     Reference: September 7th, 2016
Variation: July 29th, 2016
7 years agomrn2 maternally reduced endosperm2:
 
   Chettoor, AM et al. 2016. Genetics 204:233-248     Reference: September 7th, 2016
Variation: July 29th, 2016
7 years agostt2 stunter2:
 
   Chettoor, AM et al. 2016. Genetics 204:233-248     Reference: September 7th, 2016
Variation: July 29th, 2016
7 years agostt3 stunter3:
 
   Chettoor, AM et al. 2016. Genetics 204:233-248     Reference: September 7th, 2016
Variation: July 29th, 2016
7 years agoecr1 empty creche1:
 
   Chettoor, AM et al. 2016. Genetics 204:233-248     Reference: September 7th, 2016
Variation: July 29th, 2016
7 years agoecr2 empty creche2:
 
   Chettoor, AM et al. 2016. Genetics 204:233-248     Reference: September 7th, 2016
Variation: July 29th, 2016
7 years agomn*-866248U miniature kernel*-866248U:
 
   Chettoor, AM et al. 2016. Genetics 204:233-248     Reference: September 7th, 2016
Variation: August 5th, 2016
7 years agoifc1 incompletely fused carpels1:
 
   Li, HP et al. 2016. Sci. Rep. 6:32652     Reference: September 3rd, 2016
Variation: September 4th, 2016
7 years agoduf177 domain of unknown function177:
 
GRMZM2G433025
Yang, JN et al. 2016. J Exp Bot pp.doi: 10.1093/jxb/erw311   At3g19810 (TAIR) Reference: August 31st, 2016
Gene Product: August 31st, 2016
Variation: August 31st, 2016
Gene Model: August 31st, 2016
7 years agoGRMZM2G021694  :
 
GRMZM2G021694
Yang, JN et al. 2016. J Exp Bot pp.doi: 10.1093/jxb/erw311   At3g19800 (TAIR) Reference: August 31st, 2016
Gene Product: August 31st, 2016
Gene Model: August 31st, 2016
7 years agoumc1613  :
1.01 - 1.01
GRMZM2G161560
    Variation: September 1st, 2003
Gene Model: August 16th, 2016
7 years agoZm00001d013450  :
 
       Gene Product: August 12th, 2016
7 years agopfk2 phosphofructose kinase2:
 
GRMZM2G450163
Liu, N et al. 2016. Frontiers Plant Sci 7:1046   LOC_Os08g25720 (MSU/TIGR) Reference: August 12th, 2016
Gene Product: August 12th, 2016
Gene Model: August 12th, 2016
7 years agogpm893  :
5.06
       Gene Product: August 12th, 2016
7 years agovde2 violaxanthin de-epoxidase2:
 
GRMZM2G701673
Xu, J et al. 2016. Frontiers in Plant Genetics and Genomics pp.doi: 10.3389/fgene.2016.00131     Reference: August 11th, 2016
Gene Product: December 13th, 2011
Gene Model: August 11th, 2016
7 years agowi3 wilted3:
 
   Rock, CD and Ng, PF. 1999. Am J Bot 86:1796-1800     Reference: August 10th, 2016
Variation: September 1st, 2003
7 years agowi4 wilted4:
5.03 - 5.05
   Rock, CD and Ng, PF. 1999. Am J Bot 86:1796-1800     Reference: August 10th, 2016
Variation: August 10th, 2016
7 years agoca2p2 CCAAT-HAP2-transcription factor 22:
 
   Zhang, Z et al. 2016. Biochem Biophys Res Commun pp.doi: 10.1016/j.bbrc.2016.08.020     Reference: August 8th, 2016
Gene Product: August 9th, 2016
7 years agopld6 phospholipase D6:
 
GRMZM2G019029
Chen, L et al. 2016. Plant Growth Regulation pp.doi: 10.1007/s10725-016-0197-4     Reference: August 9th, 2016
Gene Product: August 9th, 2016
Gene Model: August 9th, 2016
7 years agopld8 phospholipase D8:
 
GRMZM2G159125
Chen, L et al. 2016. Plant Growth Regulation pp.doi: 10.1007/s10725-016-0197-4     Reference: August 9th, 2016
Gene Product: August 9th, 2016
Gene Model: August 9th, 2016
7 years agopld10 phospholipase D10:
 
GRMZM2G108912
Chen, L et al. 2016. Plant Growth Regulation pp.doi: 10.1007/s10725-016-0197-4     Reference: August 9th, 2016
Gene Product: August 9th, 2016
Gene Model: August 9th, 2016
7 years agopld12 phospholipase D12:
 
GRMZM2G145944
Chen, L et al. 2016. Plant Growth Regulation pp.doi: 10.1007/s10725-016-0197-4     Reference: August 9th, 2016
Gene Product: August 9th, 2016
Gene Model: August 9th, 2016
7 years agopld13 phospholipase D13:
 
GRMZM2G066485
Chen, L et al. 2016. Plant Growth Regulation pp.doi: 10.1007/s10725-016-0197-4     Reference: August 9th, 2016
Gene Product: August 9th, 2016
Gene Model: August 9th, 2016
7 years agopld14 phospholipase D14:
 
GRMZM2G158008
    Gene Product: August 9th, 2016
Gene Model: August 9th, 2016
7 years agopld15 phospholipase D15:
 
GRMZM2G312438
    Gene Product: August 9th, 2016
Gene Model: August 9th, 2016
7 years agopld16 phospholipase D16:
 
GRMZM2G343588
    Gene Product: August 9th, 2016
Gene Model: August 9th, 2016
7 years agophp20537b  :
1.01
GRMZM2G089056
Beavis, WD et al. 1991. Theor Appl Genet 83:141-145     Reference: September 1st, 2003
Variation: August 6th, 2016
Gene Model: May 6th, 2016
7 years agolbp1 lipid binding protein1:
 
   Forestan, C et al. 2016. Sci. Rep. 6:30446     Reference: August 1st, 2016
Gene Product: August 1st, 2016
Variation: August 1st, 2016
7 years agoabil1 abelson interactor1-like protein1:
 
GRMZM5G832362
Forestan, C et al. 2016. Sci. Rep. 6:30446     Reference: August 1st, 2016
Variation: August 1st, 2016
Gene Model: August 1st, 2016
7 years agopba1 PBA1 homolog1:
1.01
GRMZM2G177508
    Variation: September 25th, 2007
Gene Model: July 28th, 2016
7 years agonbp35 nuclear binding protein35:
5.05
GRMZM2G031496
    Gene Product: September 1st, 2003
Variation: February 18th, 2013
Gene Model: July 28th, 2016
7 years agomyb9 MYB transcription factor9:
 
GRMZM2G081557
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: February 16th, 2011
Variation: January 30th, 2013
Gene Model: July 28th, 2016
7 years agoras11B2 ras-related protein11B2:
5.00
GRMZM2G144008
Zhang, JM et al. 2007. J Integr Plant Biol 49:1129-1141     Reference: January 12th, 2011
Variation: January 18th, 2011
Gene Model: July 28th, 2016
7 years agopdlk1 pyruvate dehydrogenase (lipoamide) kinase1:
1.04
GRMZM2G107196
Thelen, J et al. 1998. J Biol Chem 273:26618-26623     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: February 26th, 2013
Gene Model: July 28th, 2016
7 years agoorc1 origin recognition complex1:
9.02
GRMZM2G455243
Witmer, X et al. 2003. Putative subunits of the maize origin of replication recognition complex ZmORC1-ZmORC5. Nucl Acid Res 31:619-628     Reference: September 1st, 2003
Variation: September 25th, 2007
Gene Model: July 28th, 2016
7 years agoras8B1 ras related protein8B1:
 
GRMZM2G149847
    Variation: January 21st, 2011
Gene Model: July 28th, 2016
7 years agospr9 signal recognition particle protein subunit 9:
6.05
GRMZM2G046576
    Variation: February 12th, 2008
Gene Model: July 28th, 2016
7 years agomyo2 myosin2:
 
GRMZM2G034362
Liu, L et al. 2001. Cell Motil Cytoskeleton 48:130-148     Reference: April 8th, 2011
Gene Product: September 1st, 2003
Variation: February 21st, 2008
Gene Model: July 28th, 2016
7 years agopsei6 cystatin6:
1.04
GRMZM2G401328
Massonneau, A; Condamine, P; Wisniewski, J; Zivy, M; Rogowsky, P. 2005. Biochim Biophys Acta. 1729:186-199     Reference: February 20th, 2009
Gene Product: April 21st, 2008
Variation: April 21st, 2008
Gene Model: July 28th, 2016
7 years agopsei7 cystatin7:
1.04
GRMZM2G148925
Massonneau, A; Condamine, P; Wisniewski, J; Zivy, M; Rogowsky, P. 2005. Biochim Biophys Acta. 1729:186-199     Reference: February 20th, 2009
Gene Product: April 21st, 2008
Variation: April 21st, 2008
Gene Model: July 28th, 2016
7 years agocka4 CK2 protein kinase alpha 4:
7.00
GRMZM5G845755
Coles, N; McMullen, M; Balint-Kurti, P; Pratt, RC; Holland, JB. 2010. Genetics. 184:799-812     Reference: April 1st, 2010
Gene Product: December 3rd, 2013
Variation: January 10th, 2014
Gene Model: July 27th, 2016
7 years agocop1 coatomer protein1:
3.05
GRMZM2G143354
    Gene Product: September 1st, 2003
Variation: January 14th, 2014
Gene Model: July 27th, 2016
7 years agocop2 coatomer protein2:
10.07
GRMZM2G028929
    Gene Product: September 1st, 2003
Variation: September 28th, 2011
Gene Model: July 27th, 2016
7 years agoelfa2 elongation factor alpha2:
6.05
GRMZM2G149768
Carneiro, N et al. 1999. Plant Mol Biol 41:801-813     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: April 7th, 2014
Gene Model: July 27th, 2016
7 years agocbp1 calmodulin binding protein1:
5.05
GRMZM2G113453
Reddy, ASN; Takezawa, D; Fromm, H; Poovaiah, BW. 1993. Plant Sci 94:109-117     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: June 21st, 2006
Gene Model: July 27th, 2016
7 years agoaap1 acylaminoacyl-peptidase1:
9.01
GRMZM2G120302
Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: July 1st, 2012
Gene Model: July 27th, 2016
7 years agoap17 clathrin coat assembly protein AP17:
2.08
AC195874.2_FG002
Roca, R et al. 1998. Gene 208:67-72     Reference: December 18th, 2006
Gene Product: May 10th, 2004
Variation: May 10th, 2004
Gene Model: July 27th, 2016
7 years agopg*-N526C palegreenN526C:
1.00 - 1.05
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: June 29th, 2016
8 years agofha1 FHA-transcription factor 1:
1.01
GRMZM2G129243
Burdo, BL, et al. 2014. Plant J. 0:doi: 10.1111/tpj.12623     Reference: August 27th, 2014
Variation: May 4th, 2016
Gene Model: May 4th, 2016
8 years agommp93  :
1.01
GRMZM2G087918
    Variation: April 29th, 2016
Gene Model: April 28th, 2016
8 years agodpr1 dihydrodipicolinate reductase1:
1.01
GRMZM2G044247
Armstrong, CL et al. 1992. Theor Appl Genet 84:755-762     Reference: September 1st, 2003
Variation: April 28th, 2016
Gene Model: April 28th, 2016
8 years agopmp1 peroxisomal membrane protein homolog1:
1.01
GRMZM2G029824
    Variation: April 26th, 2016
Gene Model: October 23rd, 2013
8 years agonad5 (homolog) NADH ubiquinone oxidoreductase B14 subunit5 (homolog):
1.01 - 1.01
GRMZM2G014382
    Variation: April 26th, 2016
Gene Model: April 26th, 2016
8 years agotho1 THO complex subunit 7B-like1:
1.01
GRMZM2G473389
Beavis, WD et al. 1991. Theor Appl Genet 83:141-145     Reference: September 1st, 2003
Variation: September 1st, 2003
Gene Model: April 26th, 2016
8 years agophi002  :
 
GRMZM2G346455
    Variation: April 22nd, 2016
Gene Model: April 22nd, 2016
8 years agoygl1 yellow-green leaf1:
 
   Guan, HY et al. 2016. PLoS One 11:e0153962     Reference: April 22nd, 2016
Variation: April 22nd, 2016
8 years agocp*-N918A collapsedN918A:
1.06 - 1.12
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: April 18th, 2016
8 years agomgt3 magnesium transporter3:
 
GRMZM2G064467
Li, H et al. 2016. Plant Cell Physiol pp.doi: 10.1093/pcp/pcw064     Reference: April 18th, 2016
Gene Product: April 18th, 2016
Gene Model: April 18th, 2016
8 years agomgt4 magnesium transporter4:
 
GRMZM2G145794
Li, H et al. 2016. Plant Cell Physiol pp.doi: 10.1093/pcp/pcw064     Reference: April 18th, 2016
Gene Product: April 18th, 2016
Gene Model: April 18th, 2016
8 years agomgt7 magnesium transporter7:
 
GRMZM2G458879
Li, H et al. 2016. Plant Cell Physiol pp.doi: 10.1093/pcp/pcw064     Reference: April 18th, 2016
Gene Product: April 18th, 2016
Gene Model: April 18th, 2016
8 years agomgt11 magnesium transporter11:
 
GRMZM2G054632
Li, H et al. 2016. Plant Cell Physiol pp.doi: 10.1093/pcp/pcw064     Reference: April 18th, 2016
Gene Product: April 18th, 2016
Gene Model: April 18th, 2016
8 years agomib1 metal ion binding1:
1.01
GRMZM2G136859
    Variation: May 5th, 2011
Gene Model: April 14th, 2016
8 years agohtm1 Exserohilum turcicum Mayorbela resistance1:
 
   Robbins, Jr, WA and Warren, HL. 1993. Maydica 38:209-213     Reference: September 1st, 2003
Variation: March 30th, 2016
8 years agonad3 NADH-ubiquinone oxidorectase3:
 
GRMZM2G008464
    Gene Product: September 1st, 2003
Gene Model: March 4th, 2016
8 years agoumc1041  :
1.00
GRMZM2G448701
    Variation: September 1st, 2003
Gene Model: March 3rd, 2016
8 years agophb1 prohibitin1:
2.06
GRMZM2G134955
Johnston, R et al. 2015. New Phytol 205:306-315     Reference: February 29th, 2016
Gene Product: September 1st, 2003
Variation: March 10th, 2013
Gene Model: October 8th, 2015
8 years agopdi11 protein disulfide isomerase11:
10.04
GRMZM2G176443
Houston, N et al. 2005. Plant Physiol 137: 762-778     Reference: February 10th, 2009
Gene Product: September 1st, 2003
Variation: January 22nd, 2016
Gene Model: December 18th, 2015
8 years agopsk4 phytosulfokine4:
10.01
GRMZM2G031261
Lorbiecke, R et al. 2005. J Exp Bot 56: 1805-1819     Reference: January 17th, 2007
Variation: January 21st, 2016
Gene Model: December 30th, 2015
8 years agopdi5 protein disulfide isomerase5:
9.02
GRMZM2G014076
Houston, N et al. 2005. Plant Physiol 137: 762-778     Reference: February 10th, 2009
Gene Product: September 1st, 2003
Variation: January 20th, 2016
Gene Model: December 18th, 2015
8 years agoqsox1 thiol oxidoreductase1:
6.07
GRMZM2G113216
Houston, N et al. 2005. Plant Physiol 137: 762-778     Reference: February 10th, 2009
Variation: January 7th, 2016
Gene Model: January 7th, 2016
8 years agopdi4 protein disulfide isomerase4:
5.03
GRMZM2G033829
Houston, N et al. 2005. Plant Physiol 137: 762-778     Reference: February 10th, 2009
Gene Product: September 1st, 2003
Variation: January 5th, 2016
Gene Model: December 18th, 2015
8 years agopx12 peroxidase12:
 
   Dowd, PF. 1994. J Chem Ecol 20:2777-2803     Reference: December 30th, 2015
Gene Product: September 18th, 2015
8 years agopx10 peroxidase10:
 
   Dowd, PF. 1994. J Chem Ecol 20:2777-2803     Reference: December 30th, 2015
Gene Product: September 18th, 2015
8 years agoch1 chocolate pericarp1:
2.09
   Dowd, PF. 1994. J Chem Ecol 20:2777-2803     Reference: December 30th, 2015
Variation: September 1st, 2003
8 years agoe1 esterase1:
7.04
   Khavkin, EE; Zabrodina, MV. 1994. Heritable variations in peroxidase and esterase isoenzyme patterns of maize somaclones. Fiziol Rast 41:754-761     Reference: December 30th, 2015
Gene Product: September 1st, 2003
Variation: September 1st, 2003
8 years agoe5(I) esterase:
 
   Macdonald, T and Brewbaker, JL. 1972. J Hered 63:11-14     Reference: December 30th, 2015
Gene Product: September 1st, 2003
8 years agoe5(II) esterase:
 
   Macdonald, T and Brewbaker, JL. 1972. J Hered 63:11-14     Reference: December 30th, 2015
Gene Product: September 1st, 2003
8 years agoe6 esterase6:
 
   Macdonald, T and Brewbaker, JL. 1972. J Hered 63:11-14     Reference: December 30th, 2015
Gene Product: September 1st, 2003
8 years agoe9 esterase9:
 
   Macdonald, T and Brewbaker, JL. 1972. J Hered 63:11-14     Reference: December 30th, 2015
Gene Product: September 1st, 2003
8 years agomrpi2 MRP interacting2:
3.06
GRMZM2G105224
Royo, J; Hueros, G. 2009. Planta. 230:807-818     Reference: October 26th, 2009
Variation: December 30th, 2015
Gene Model: December 30th, 2015
8 years agoabc1 ABC(yeast) homolog1:
4.07
GRMZM2G157369
Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: November 18th, 2011
Gene Model: December 28th, 2015
8 years agotgz15a transglutaminase15a:
10.04
GRMZM2G025054
Villalobos, E; Santos, MA; Talavera, D; Rodriguez-Falcon, M; Torne, JM. 2004. Gene. 336:93-104     Reference: February 1st, 2010
Gene Product: December 24th, 2015
Gene Model: December 24th, 2015
8 years agoak1 Adenylyl-sulfate kinase1:
7.04
GRMZM2G061234
Bolchi, A et al. 1999. Plant Mol Biol 39:527-537     Reference: September 1st, 2003
Gene Product: December 24th, 2015
Variation: February 13th, 2008
Gene Model: December 24th, 2015
8 years agotfIIB1 transcription initiation factor1:
9.07
GRMZM2G017831
Lagrange, T et al. 2003. Mol Cell Biol 23:3274-3286     Reference: January 29th, 2010
Gene Product: December 24th, 2015
Gene Model: December 24th, 2015
8 years agopdi10 protein disulfide isomerase10:
2.04
GRMZM2G113629
Houston, N et al. 2005. Plant Physiol 137: 762-778     Reference: February 10th, 2009
Gene Product: September 1st, 2003
Variation: December 23rd, 2015
Gene Model: December 18th, 2015
8 years agoder2 derlin2:
5.00
GRMZM2G082976
Kirst, M; Meyer, DJ; Gibbon, BC; Jung, R; Boston, RS. 2005. Plant Physiol. 138:218-231     Reference: June 28th, 2006
Variation: February 3rd, 2014
Gene Model: December 22nd, 2015
8 years agoypt2 ypt homolog2:
5.05
GRMZM2G097728
Zhang, JM et al. 2007. J Integr Plant Biol 49:1129-1141     Reference: January 12th, 2011
Gene Product: September 1st, 2003
Variation: January 13th, 2011
Gene Model: December 21st, 2015
8 years agoypt3 ypt homolog3:
4.05
GRMZM2G416142
Zhang, JM et al. 2007. J Integr Plant Biol 49:1129-1141     Reference: January 12th, 2011
Variation: January 14th, 2011
Gene Model: December 21st, 2015
8 years agow*-N1893 white*-N1893:
9.00 - 9.02
   Neuffer, MG. 1995. personal communication: data from mutant collection     Reference: September 1st, 2003
Variation: November 30th, 2015
8 years agosmp*-N706A small plantN706A:
1.06 - 1.12
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: November 5th, 2015
8 years agoyab4 C2C2-YABBY-transcription factor 4:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: October 16th, 2015
8 years agoyab5 C2C2-YABBY-transcription factor 5:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: October 16th, 2015
8 years agotrm1 thioredoxin M1:
10.03
GRMZM2G181251
Trevanion, SJ; Ashton, AR. 1995. Plant Physiol     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: October 15th, 2015
Gene Model: October 15th, 2015
8 years agocsu948  :
10.04
GRMZM2G147390
    Variation: October 14th, 2015
Gene Model: October 14th, 2015
8 years agostm1 stomatin1:
10.03
GRMZM2G023073
Nadimpalli, R et al. 2000. J Biol Chem 275:29579-29586     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: October 14th, 2015
Gene Model: October 14th, 2015
8 years agos1fa1 S1Fa-like-transcription factor 1:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: October 13th, 2015
8 years agosfb1 SF1 binding protein candidate1:
10.04
GRMZM2G147424
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: October 13th, 2015
Variation: October 13th, 2015
Gene Model: October 13th, 2015
8 years agophb2 prohibitin2:
10.04
GRMZM2G107114
Nadimpalli, R et al. 2000. J Biol Chem 275:29579-29586     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: October 8th, 2015
Gene Model: October 8th, 2015
8 years agophb3 prohibitin3:
5.05
GRMZM2G410710
Nadimpalli, R et al. 2000. J Biol Chem 275:29579-29586     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: March 11th, 2013
Gene Model: October 8th, 2015
8 years agophb4 prohibitin4:
1.11
AC217358.3_FG005
Nadimpalli, R et al. 2000. J Biol Chem 275:29579-29586     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: March 19th, 2013
Gene Model: October 8th, 2015
8 years agodnp2 diphosphonucleotide phosphatase2:
3.07
GRMZM2G111510
Betti, M et al. 2001. J Biol Chem 276:18038-18045     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: February 16th, 2014
Gene Model: October 6th, 2015
8 years agohox3 homeobox3:
3.07
GRMZM2G314546
Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: September 1st, 2003
Variation: May 13th, 2005
Gene Model: September 30th, 2015
8 years agopc326 plasmacytoma 326 homolog:
9.04
GRMZM2G123709
Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Variation: September 1st, 2003
Gene Model: September 17th, 2015
8 years agoibp1 initiator binding protein1:
9.06
GRMZM2G063151
Schmidt, RJ and Ambrose, B. 1998. Curr Opin Plant Biol 1:60-67     Reference: April 3rd, 2008
Gene Product: September 1st, 2003
Variation: September 15th, 2015
Gene Model: September 15th, 2015
8 years agoendo1 endosperm specific protein1:
9.03
GRMZM2G144610
Carlson, SJ and Chourey, PS. 1997. Cloning of a novel maize endosperm-specific protein with partial sequence homology to a pollen surface protein. Biochim Biophys Acta 1341:101-104     Reference: September 1st, 2003
Variation: September 1st, 2015
Gene Model: September 1st, 2015
8 years agofpox1 fowlpox viral protein homolog1:
7.04
GRMZM2G108767
Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Variation: August 7th, 2015
Gene Model: August 29th, 2015
8 years agoarpp2b acidic ribosomal protein P2b (rpp2b):
8.03
GRMZM2G114954
Bailey-Serres, J et al. 1997. Plant Physiol 114:1293-1305     Reference: September 1st, 2003
Variation: January 23rd, 2009
Gene Model: August 28th, 2015
8 years agoy8 pale yellow8:
7.01 - 7.02
   Stinard, PS. 2013. MNL 86:29-31     Reference: March 10th, 2014
Variation: August 26th, 2015
8 years agornp1 RNA binding protein 1:
7.06
GRMZM2G158835
Baysdorfer, C. 1993. Personal communication to MaizeDB     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: August 12th, 2015
Gene Model: August 12th, 2015
8 years agomus3 mismatch binding protein Mus3:
7.02
GRMZM2G421541
Franklin, A; Cande, WZ. 2000. mus3, a second maize MSH6 homolog - unpublished submission to GenBank     Reference: October 28th, 2006
Gene Product: August 15th, 2005
Variation: August 5th, 2015
Gene Model: August 5th, 2015
8 years agolon2 LON protease2:
7.06
GRMZM2G113056
Rapp, W et al. 1997. Maize Genetics Conference Abstracts 39     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: July 31st, 2015
8 years agoctn1 caltractin1:
7.04
GRMZM2G048846
Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: July 23rd, 2015
Gene Model: July 23rd, 2015
8 years agorps21a 40S ribosomal protein S21a:
6.05
GRMZM2G093574
Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: July 9th, 2015
Gene Model: July 9th, 2015
8 years agotha9 thylakoid assembly 9:
 
GRMZM2G128454
Walker, M et al. 1999. J Cell Biol 147:267-275     Reference: September 1st, 2003
Variation: February 14th, 2008
Gene Model: July 7th, 2015
8 years agoo15 opaque endosperm15:
7.05
   Wu, H et al. 2015. PLoS One 10:e0130856     Reference: June 27th, 2015
Variation: September 1st, 2003
8 years agotrap1 transposon associated protein1:
8.05
   Lisch, D. 2015. Microbiol Spectr. pp.doi: 10.1128/microbiolspec.MDNA3-0032-2014     Reference: June 25th, 2015
Gene Product: June 26th, 2015
8 years agomudrB MuDR geneB:
 
   Lisch, D. 2015. Microbiol Spectr. pp.doi: 10.1128/microbiolspec.MDNA3-0032-2014     Reference: June 25th, 2015
Gene Product: September 1st, 2003
8 years agotct1 translationally controlled tumor1:
5.03
GRMZM2G075624
Helentjaris, T. 1995. Nucleotide sequence submission to dbEST     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: June 25th, 2015
Gene Model: June 25th, 2015
8 years agotap1 translocon-associated protein homolog1:
5.03
GRMZM2G075844
Helentjaris, T. 1995. Nucleotide sequence submission to dbEST     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: June 24th, 2015
Gene Model: June 24th, 2015
8 years agowip2 wound inducible protein2:
4.03
GRMZM2G112795
Sheng, J; Mehdy, MC. 1993. Plant Physiol. 101:1409     Reference: January 24th, 2005
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: May 15th, 2015
9 years agotola1 tola protein homolog1:
4.06
AC185226.4_FG001
Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: May 12th, 2015
9 years agopls1 phospholipid synthesis1:
 
GRMZM2G037104
Brown, AP; Coleman, J; Tommey, AM; Watson, MD; Slabas, AR. 1994. Plant Mol Biol 26:211-223     Reference: September 1st, 2003
Gene Product: April 27th, 2009
Variation: April 11th, 2015
Gene Model: April 11th, 2015
9 years agopdh4 pyruvate dehydrogenase4:
7.03
GRMZM2G128121
Thelen, J et al. 1999. Plant Physiol 119:635-643     Reference: September 1st, 2003
Gene Product: February 14th, 2008
Variation: November 11th, 2010
Gene Model: April 10th, 2015
9 years agogol1 goliath1:
4.08
   Schnable, J; Freeling, M. 2011. PLoS One 6(3):e17855. doi:10.1371/journal.pone.0017855     Reference: September 27th, 2011
Gene Product: September 1st, 2003
Variation: April 4th, 2015
9 years agoles28 lesion mimic28:
 
   Martienssen, R; Baron, A. 1994. Genetics 136:1157-1170     Reference: September 1st, 2003
Variation: April 2nd, 2015
9 years agocdpk14 calcium dependent protein kinase14:
 
GRMZM2G178756
Saijo, Y et al. 1997. cDNA cloning and prokaryotic expression of maize calcium-dependent protein kinases. Biochim Biophys Acta 1350:109-114     Reference: September 1st, 2003
Gene Product: December 3rd, 2013
Variation: November 16th, 2013
Gene Model: March 31st, 2015
9 years agopth1 peptidyl-tRNA hydrolase1:
 
GRMZM2G050596
Alexandrov, NN, et al. 2009. Plant Mol Biol. 69:179-194     Reference: January 11th, 2009
Variation: March 25th, 2015
Gene Model: March 25th, 2015
9 years agotaf1 transcription associated factor1:
3.06
   Schnable, J; Freeling, M. 2011. PLoS One 6(3):e17855. doi:10.1371/journal.pone.0017855     Reference: September 27th, 2011
Gene Product: September 1st, 2003
Variation: March 19th, 2015
9 years agopy2 pigmy plant2:
1.11
   Beavis, WD et al. 1991. Theor Appl Genet 83:141-145     Reference: September 1st, 2003
Variation: March 18th, 2015
9 years agov13 virescent13:
5.00 - 5.04
   Stinard, P and Jackson, J. 1999. MNL 73:90     Reference: March 18th, 2015
Variation: September 1st, 2003
9 years agorcph1 root-cap periphery1:
3.05
GRMZM2G097316
Matsuyama, T et al. 1999. Plant Cell Physiol 40:469-476     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Gene Model: March 13th, 2015
9 years agorps27 ribosomal protein S27:
3.05
GRMZM2G066222
Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: March 13th, 2015
Gene Model: March 13th, 2015
9 years agophys1 phytase1:
3.05
GRMZM2G140101
Maugenest, S et al. 1997. Biochem J 322:511-517     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: March 5th, 2015
Gene Model: March 4th, 2015
9 years agosu3 sugary3:
4.05 - 4.05
   Stinard, P. 2004. MNL. 78:65     Reference: March 5th, 2015
Variation: September 1st, 2003
9 years agophys2 phytase2:
3.05
GRMZM2G043336
Maugenest, S et al. 1997. Biochem J 322:511-517     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: March 4th, 2015
Gene Model: March 4th, 2015
9 years agooro1 orobanche1:
6.00 - 6.05
   Stinard, PS; Sachs, M. 2014. MNL 87:24     Reference: March 3rd, 2015
Variation: October 15th, 2008
9 years agockb1 CK2 regulatory subunit B1:
2.03
GRMZM5G857992
Riera, M; Figueras, M; Goday, A; Lopez, C; Pages, M. 2004. Proc Natl Acad Sci, USA. 101:9879-9884     Reference: September 10th, 2004
Gene Product: February 10th, 2006
Variation: February 16th, 2015
Gene Model: February 16th, 2015
9 years agoploc2 plastocyanin2:
2.04
GRMZM2G078409
    Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: February 13th, 2015
9 years agotub3 beta tubulin3:
1.09
   Schnable, J; Freeling, M. 2011. PLoS One 6(3):e17855. doi:10.1371/journal.pone.0017855     Reference: September 27th, 2011
Gene Product: September 1st, 2003
Variation: February 9th, 2015
9 years agotoc35 translocon of outer membrane of chloroplast35:
1.03
GRMZM2G157157
Hirohashi, T and Nakai, M. 2000. Biochem Biophys Acta 1491:309-314     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: February 5th, 2015
Gene Model: February 5th, 2015
9 years agotlk1 tousled-like protein kinase1:
1.10
   Schnable, J; Freeling, M. 2011. PLoS One 6(3):e17855. doi:10.1371/journal.pone.0017855     Reference: September 27th, 2011
Gene Product: February 15th, 2008
Variation: February 5th, 2015
9 years agontf1 nuclear transport factor1:
1.06
GRMZM2G407249
    Gene Product: September 1st, 2003
Variation: February 2nd, 2015
Gene Model: February 1st, 2015
9 years agoibp2 initiator-binding protein2:
1.03
   Schnable, J; Freeling, M. 2011. PLoS One 6(3):e17855. doi:10.1371/journal.pone.0017855     Reference: September 27th, 2011
Gene Product: September 1st, 2003
Variation: January 30th, 2015
9 years agogpt1 glucose 6-phosphate/phosphate translocator1:
10.03
GRMZM2G180720
Kammerer, B et al. 1998. Plant Cell 10:105-117     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: January 24th, 2015
9 years agotub6 beta tubulin6:
8.08
GRMZM2G172932
Yandeau-Nelson, M et al. 2011. Plant Physiol 156:479-490     Reference: June 6th, 2011
Gene Product: September 1st, 2003
Variation: January 21st, 2015
Gene Model: January 20th, 2015
9 years agoeif7 eucaryotic initiation factor7:
5.03
GRMZM2G022019
Manjunath, S et al. 1999. Plant J 19:21-30     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: February 24th, 2014
Gene Model: January 15th, 2015
9 years agoprf2 profilin homolog2:
8.05
GRMZM2G109842
Jimenez-Lopez, JC et al. 2012. PLoS One 7:E30878     Reference: January 15th, 2015
Gene Product: September 1st, 2003
Variation: January 15th, 2015
Gene Model: January 15th, 2015
9 years agoumi8 ustilago maydis induced8:
3.08
GRMZM2G330302
Basse, C. 2005. Plant Physiol. 138:1774-1784     Reference: November 23rd, 2011
Gene Product: January 12th, 2015
Variation: April 17th, 2008
Gene Model: January 12th, 2015
9 years agorps1 Ribosomal protein S1-like1:
7.02
GRMZM2G100467
Heuer, S. 1996. Nucleotide sequence submission to EMBL.     Reference: September 1st, 2003
Variation: January 10th, 2015
Gene Model: January 8th, 2015
9 years agobrta1 branched tassel1:
 
   Brewbaker, JL. 2015. Crop Sci 55:65-78     Reference: January 8th, 2015
Variation: January 21st, 2011
9 years agopiip1 physical impedance induced protein1:
7.02
   Schnable, J; Freeling, M. 2011. PLoS One 6(3):e17855. doi:10.1371/journal.pone.0017855     Reference: September 27th, 2011
Gene Product: September 1st, 2003
Variation: January 6th, 2015
9 years agotgr9 transgene reactivated9:
 
   Li, Q et al. 2014. Plant Cell pp.doi: 10.1105/tpc.114.133140     Reference: December 23rd, 2014
Variation: December 23rd, 2014
9 years agotgr2 transgene reactivated2:
 
   Madzima, TF et al. 2011. G3 1:75-83     Reference: June 23rd, 2011
Variation: December 23rd, 2014
9 years agotgr3 transgene reactivated3:
 
   Madzima, TF et al. 2011. G3 1:75-83     Reference: June 23rd, 2011
Variation: December 23rd, 2014
9 years agotgr4 transgene reactivated4:
 
   Madzima, TF et al. 2011. G3 1:75-83     Reference: June 23rd, 2011
Variation: December 23rd, 2014
9 years agotgr5 transgene reactivated5:
 
   Madzima, TF et al. 2011. G3 1:75-83     Reference: June 23rd, 2011
Variation: December 23rd, 2014
9 years agotgr6 transgene reactivated6:
 
   Madzima, TF et al. 2011. G3 1:75-83     Reference: June 23rd, 2011
Variation: December 23rd, 2014
9 years agotgr8 transgene reactivated8:
 
   Madzima, TF et al. 2011. G3 1:75-83     Reference: June 23rd, 2011
Variation: December 23rd, 2014
9 years agotgr10 transgene reactivated10:
 
   Madzima, TF et al. 2011. G3 1:75-83     Reference: June 23rd, 2011
Variation: December 23rd, 2014
9 years agotgr11 transgene reactivated11:
 
   Madzima, TF et al. 2011. G3 1:75-83     Reference: June 23rd, 2011
Variation: December 23rd, 2014
9 years agonec*-t necrotic leaf*-t:
 
   Wang, L et al. 2013. Journal of Genetics and Genomics 40:307-314     Reference: November 28th, 2014
Variation: April 29th, 2013
9 years agode*-N1142 defectiveN1142:
1.00 - 1.05
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: November 5th, 2014
9 years agoptk2 protein kinase homolog2:
4.08
GRMZM2G099754
Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: October 30th, 2014
Gene Model: October 30th, 2014
9 years agoga2ox11 gibberellin 2-oxidase11:
 
GRMZM2G127757
Nelissen, H et al. 2012. Curr Microbiol 22:1183-1187     Reference: October 29th, 2014
Gene Product: October 27th, 2014
Gene Model: October 29th, 2014
9 years agoy10 pale yellow10:
3.07
   Stinard, PS. 2013. MNL 86:29-31     Reference: March 10th, 2014
Variation: October 27th, 2014
9 years agothi3 thiamine synthesis3:
 
GRMZM2G401934
Guan, JC et al. 2014. Frontiers Plant Sci 5:370     Reference: August 20th, 2014
Gene Product: August 20th, 2014
Variation: October 16th, 2014
Gene Model: November 19th, 2013
9 years agocoe1 collapsed endosperm1:
 
       Variation: October 13th, 2014
9 years agouaz282  :
1.05
GRMZM2G024823
Schnable, J; Freeling, M. 2011. PLoS One 6(3):e17855. doi:10.1371/journal.pone.0017855     Reference: September 27th, 2011
Gene Product: September 1st, 2003
Variation: October 7th, 2014
Gene Model: October 7th, 2014
9 years agosfl1 sporophytic floury1:
 
       Variation: September 15th, 2014
9 years agohrbp1 harpin binding protein1:
2.04
GRMZM2G015285
    Variation: September 9th, 2014
Gene Model: September 9th, 2014
9 years agomlo5 barley mlo defense gene homolog5:
3.06
GRMZM2G471142
Devoto, A et al. 2003. J Mol Evol 56: 77-88     Reference: March 16th, 2006
Variation: October 19th, 2010
Gene Model: September 4th, 2014
9 years agomlo1 barley mlo defense gene homolog1:
1.01
GRMZM2G032219
Devoto, A et al. 2003. J Mol Evol 56: 77-88     Reference: March 16th, 2006
Variation: January 15th, 2013
Gene Model: September 4th, 2014
9 years agomlo2 barley mlo defense gene homolog2:
1.05
GRMZM2G040441
Devoto, A et al. 2003. J Mol Evol 56: 77-88     Reference: March 16th, 2006
Variation: January 15th, 2013
Gene Model: September 4th, 2014
9 years agomgs3 male gametophyte specific3:
9.02 - 9.03
GRMZM2G323418
Turcich, MP; Hamilton, DA; Mascarenhas, JP. 1993. Plant Mol Biol 23:1061-1065     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: September 2nd, 2014
Gene Model: September 2nd, 2014
9 years agotrh2 thioredoxin h homolog2:
7.01
GRMZM2G144653
Weichel, M et al. 2006. J Allerg Clin Immunol 117:676-681     Reference: March 29th, 2008
Gene Product: September 1st, 2003
Gene Model: August 29th, 2014
9 years agomde1 mouse DNA EBV homolog1:
2.04
GRMZM2G155281
Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Variation: August 23rd, 2014
Gene Model: August 23rd, 2014
9 years agorph1 RNase PH homolog:
8.03
GRMZM2G345039
Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: August 21st, 2014
9 years agoatp3 ATP synthase3:
1.11
GRMZM2G171628
Helentjaris, T. 1995. Nucleotide sequence submission to dbEST     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: September 4th, 2012
Gene Model: August 21st, 2014
9 years agonudix1 NUDIX domain hydrolase1:
 
GRMZM2G031461
Guan, JC et al. 2014. Frontiers Plant Sci 5:370     Reference: August 20th, 2014
Gene Product: June 18th, 2014
Variation: June 18th, 2014
Gene Model: June 17th, 2014
9 years agothic1 hydroxymethylpyrimidine phosphate synthase1:
1.09
GRMZM2G027663
Guan, JC et al. 2014. Frontiers Plant Sci 5:370     Reference: August 20th, 2014
Gene Product: August 20th, 2014
Gene Model: August 20th, 2014
9 years agothim1 thiamin thiazole kinase M1:
 
GRMZM2G094558
Guan, JC et al. 2014. Frontiers Plant Sci 5:370     Reference: August 20th, 2014
Gene Product: August 20th, 2014
Gene Model: July 8th, 2013
9 years agotdpk1 thiamin diphosphokinase1:
 
GRMZM2G055458
Guan, JC et al. 2014. Frontiers Plant Sci 5:370     Reference: August 20th, 2014
Gene Product: August 20th, 2014
Gene Model: August 20th, 2014
9 years agotdpk2 thiamin diphosphokinase2:
 
GRMZM5G864815
Guan, JC et al. 2014. Frontiers Plant Sci 5:370     Reference: August 20th, 2014
Gene Product: August 20th, 2014
Gene Model: August 20th, 2014
9 years agotena1 thiaminase1:
 
GRMZM2G078283
Guan, JC et al. 2014. Frontiers Plant Sci 5:370     Reference: August 20th, 2014
Gene Product: August 20th, 2014
Gene Model: August 20th, 2014
9 years agotena2 thiaminase2:
 
GRMZM2G148896
Guan, JC et al. 2014. Frontiers Plant Sci 5:370     Reference: August 20th, 2014
Gene Product: August 20th, 2014
Gene Model: August 20th, 2014
9 years agotcp1 thiamine diphosphate carrier protein1:
8.06
GRMZM2G118515
Guan, JC et al. 2014. Frontiers Plant Sci 5:370     Reference: August 20th, 2014
Gene Product: August 20th, 2014
Gene Model: January 31st, 2013
9 years agotena3 thiaminase3:
9.05
GRMZM2G080501
Guan, JC et al. 2014. Frontiers Plant Sci 5:370     Reference: August 20th, 2014
Gene Product: August 20th, 2014
Gene Model: August 20th, 2014
9 years agopks1 polyketide synthesis homolog1:
2.02
GRMZM2G091302
Helentjaris, T. 1995. Nucleotide sequence submission to dbEST     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: September 1st, 2003
Gene Model: August 13th, 2014
9 years agoms11 male sterile11:
10.03 - 10.04
   Kelliher, T et al. 2014. Frontiers Plant Sci 5:347     Reference: August 8th, 2014
Variation: September 18th, 2010
9 years agoimd3 isopropylmalate dehydrogenase3:
 
GRMZM2G104613
    Gene Product: September 1st, 2003
Variation: July 22nd, 2014
Gene Model: July 22nd, 2014
9 years agofea*-9LB030 fasciated ear*-9LB030:
 
   Xia, C et al. 2014. Euphytica pp.DOI: 10.1007/s10681-014-1202-5     Reference: July 22nd, 2014
Variation: July 22nd, 2014
9 years agohis2b4 histone 2B4:
3.06
GRMZM2G306258
Joanin, P; Gigot, C; Philipps, G. 1994. Plant Physiol Biochem 32:693-696     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: June 24th, 2014
Gene Model: June 24th, 2014
9 years agobpd1 BTB/POZ domain1:
 
GRMZM5G805008
Chen, Z-L et al. 2014. BMC Genomics 15:433   At3G06190 (TAIR) Reference: June 6th, 2014
Gene Product: June 6th, 2014
Gene Model: June 6th, 2014
10 years agomcf2 mitochrondrial carrier family protein2:
8.05
GRMZM2G420119
Zallot, R; et al. 2013. Plant Physiol. 162:581-8     Reference: April 15th, 2014
Gene Product: April 15th, 2014
Gene Model: April 15th, 2014
10 years agomcf1 mitochondrial carrier family protein1:
5.04
GRMZM2G161299
Zallot, R; et al. 2013. Plant Physiol. 162:581-8     Reference: April 15th, 2014
Gene Product: April 15th, 2014
Gene Model: April 15th, 2014
10 years agobrn2 brown kernel2:
 
   Stinard, P. 2002. MNL 76:64-65     Reference: April 10th, 2014
Variation: June 24th, 2005
10 years agoipt10 isopentenyl transferase10:
 
GRMZM2G102915
Vyroubalova, S, et al. 2009. Plant Physiol. 151:433-447     Reference: March 25th, 2014
Gene Product: March 19th, 2014
Gene Model: July 10th, 2013
10 years agoipt8 isopentenyl transferase8:
 
GRMZM2G025429
Vyroubalova, S, et al. 2009. Plant Physiol. 151:433-447     Reference: March 25th, 2014
Gene Product: March 19th, 2014
Gene Model: July 10th, 2013
10 years agoipt9 isopentenyl transferase9:
 
GRMZM2G018046
Vyroubalova, S, et al. 2009. Plant Physiol. 151:433-447     Reference: March 25th, 2014
Gene Product: March 19th, 2014
Gene Model: July 10th, 2013
10 years agoet*-N1332 etchedN1332:
7.02 - 7.06
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: February 17th, 2014
10 years agopg*-N484B palegreenN484B:
1.00 - 1.05
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: February 13th, 2014
10 years agocp*-N1379A collapsedN1379A:
3.05 - 3.09
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: December 12th, 2013
10 years agotrm3 thioredoxin M3:
 
GRMZM2G131202
    Gene Product: September 1st, 2003
Gene Model: October 24th, 2013
10 years agoypt1 ypt homolog1:
2.04
GRMZM2G086971
Schnable, J; Freeling, M. 2011. PLoS One 6(3):e17855. doi:10.1371/journal.pone.0017855     Reference: September 27th, 2011
Gene Product: September 1st, 2003
Variation: January 10th, 2011
Gene Model: October 23rd, 2013
10 years agofim1 fimbrin homolog1:
 
GRMZM2G010937
    Gene Product: October 22nd, 2013
Gene Model: October 22nd, 2013
10 years agorlc1 rindless culm1:
10.03 - 10.03
   Choe, B and Lee, H. 1992. Korean J Breed 24:42-47     Reference: April 19th, 2013
Variation: August 29th, 2013
10 years agocrw1 corn rootworm1:
 
   Venkata, BP, et al. 2013. PLoS One. 8:e71296     Reference: August 27th, 2013
Variation: August 15th, 2013
10 years agoms34 male sterile34:
7.02 - 7.06
   Patterson, EB. 1995. MNL 69:126-128     Reference: September 1st, 2003
Variation: August 23rd, 2013
10 years agoms*-6025  :
 
       Variation: August 23rd, 2013
10 years agoms*-6033  :
 
       Variation: August 23rd, 2013
10 years agoms47 male sterile47:
10.03 - 10.04
   Trimnell, M et al. 2002. MNL 76:38     Reference: September 1st, 2003
Variation: August 23rd, 2013
10 years agoms*-6058  :
 
       Variation: August 23rd, 2013
10 years agotrh3 thioredoxin h homolog3:
 
GRMZM2G079089
    Gene Product: September 1st, 2003
Variation: August 7th, 2013
Gene Model: August 7th, 2013
10 years agonced10 nine-cis-epoxycarotenoid dioxygenase10:
 
   Capelle, V et al. 2010. BMC Plant Biology 10:2     Reference: July 31st, 2013
Gene Product: September 20th, 2012
10 years agonas7 nicotianamine synthase7:
 
AC233955.1_FG003
Zhou, X et al. 2013. BMC Genomics 14:238     Reference: July 26th, 2013
Gene Product: July 26th, 2013
Gene Model: July 27th, 2013
10 years agoser1 seryl-tRNA synthetase1:
2.09
   Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Gene Product: February 13th, 2008
Variation: July 26th, 2013
10 years agotb*-poey1013 teosinte branched*-poey1013:
 
       Variation: May 21st, 2013
10 years agooro4 orobanche4:
 
   Dale, EE and Anderson, EG. 1950. MNL 24:13     Reference: May 13th, 2013
Variation: September 1st, 2003
11 years agouaz237a(prc)  :
9.02
GRMZM2G005080
Schnable, J; Freeling, M. 2011. PLoS One 6(3):e17855. doi:10.1371/journal.pone.0017855     Reference: September 27th, 2011
Gene Product: September 1st, 2003
Gene Model: May 7th, 2013
11 years agoinr1 inhibitor of r1 aleurone color1:
10.04
   Stinard, PS. 2012. MNL 85:74-75     Reference: April 16th, 2013
Variation: February 4th, 2010
11 years agoinr2 inhibitor of r1 aleurone color2:
9.04 - 9.05
   Stinard, PS. 2012. MNL 85:74-75     Reference: April 16th, 2013
Variation: November 30th, 2004
11 years agoenr1 enhancement of r1:
 
   Stinard, PS. 2012. MNL 85:74-75     Reference: April 16th, 2013
Variation: April 16th, 2013
11 years agoenr2 enhancement of r2:
 
   Stinard, PS. 2012. MNL 85:74-75     Reference: April 16th, 2013
Variation: April 16th, 2013
11 years agomot1 mottling factor1:
 
   Goncalves-Butruille, M et al. 2012. MNL 85:75-80     Reference: April 16th, 2013
Variation: April 16th, 2013
11 years agomot2 mottling factor2:
 
   Goncalves-Butruille, M et al. 2012. MNL 85:75-80     Reference: April 16th, 2013
Variation: April 16th, 2013
11 years agosed1 segregation distortion1:
 
   Xu, X et al. 2013. J Exp Bot 64:1083-1096     Reference: April 2nd, 2013
Variation: April 2nd, 2013
11 years agol7 luteus7:
9.02 - 9.02
   Robertson, DS. 1974. MNL 48:75-76     Reference: March 27th, 2013
Variation: September 1st, 2003
11 years agoemb13 embryo specific13:
1.00 - 1.04
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: March 9th, 2013
11 years agohcf47 high chlorophyll fluorescence47:
10.00 - 10.03
   Heck, DA et al. 1999. Plant Physiol 120:1129-1136     Reference: March 1st, 2013
Variation: September 1st, 2003
11 years agopol1 DNA polymerase like1:
 
GRMZM2G023422
Udy, DB et al. 2012. Plant Physiol 160:1420-1431     Reference: February 28th, 2013
Gene Product: September 19th, 2012
Gene Model: September 19th, 2012
11 years agolop1 lo1 pI allergen homolog1:
9.04
   Schnable, J; Freeling, M. 2011. PLoS One 6(3):e17855. doi:10.1371/journal.pone.0017855     Reference: September 27th, 2011
Gene Product: April 24th, 2008
Variation: January 8th, 2013
11 years agohir1 hypersensitive induced reaction1:
4.05
   Schnable, J; Freeling, M. 2011. PLoS One 6(3):e17855. doi:10.1371/journal.pone.0017855     Reference: September 27th, 2011
Gene Product: September 1st, 2003
Variation: December 18th, 2012
11 years agocl*-N801 colorless aleuroneN801:
1.06 - 1.12
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: December 3rd, 2012
11 years agodts1 aspartyl-tRNA synthetase1:
5.03
   Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: November 21st, 2012
11 years agoo*-N1119A opaqueN1119A:
4.00 - 4.05
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: November 9th, 2012
11 years agoo*-N1368 opaqueN1368:
6.02 - 6.08
   Kowles, RV et al. 1992. Genome 35:68-77     Reference: September 1st, 2003
Variation: November 9th, 2012
11 years agocl*-N795 colorless aleuroneN795:
4.06 - 4.11
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: November 8th, 2012
11 years agourl1 upright leaf angle1:
 
   Hartwig, T; et al. 2012. Maize Genetics Conference Abstracts. 54:T01     Reference: March 1st, 2012
Variation: October 31st, 2012
11 years agocpc1 clear patches1:
 
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: May 30th, 2012
11 years agodsy*-Staiger desynaptic candidate:
 
   Staiger, C and Cande, WZ 1993. pp.157-171 in Ormrod, JC and Francis, D (eds). 1993. Molecular and Cell Biology of the Plant Cell Cycle     Reference: September 1st, 2003
Variation: May 19th, 2012
12 years agosmk*-N1160 small kernelN1160:
5.05 - 5.09
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: March 23rd, 2012
12 years agoibn1 inhibitor of bn1:
 
   Stinard, PS. 2011. MNL 84:42-43     Reference: February 15th, 2012
Variation: February 15th, 2012
12 years agoms*-6003  :
 
       Variation: January 25th, 2012
12 years agov*-N826 virescentN826:
8.04 - 8.09
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: January 24th, 2012
12 years agoet*-N357C etchedN357C:
9.03 - 9.08
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: November 29th, 2011
12 years agoms27 male sterile27:
 
   Albertsen, MC. 1996. MNL 70:30-31     Reference: September 1st, 2003
Variation: November 9th, 2011
12 years agotsh5 tassel sheath5:
 
   Whipple, C, et al. 2010. Plant Cell. 22:565-578     Reference: June 26th, 2010
Variation: October 11th, 2011
12 years agotsh2 tassel sheath2:
 
   Whipple, C, et al. 2010. Plant Cell. 22:565-578     Reference: June 26th, 2010
Variation: October 6th, 2011
12 years agotsh3 tassel sheath3:
 
   Vollbrecht, E; Schmidt, RJ pp.13-40 in Bennetzen, J; Hake, S. (eds) 2009 (vol1). Springer-Verlag, NY     Reference: August 21st, 2010
Variation: October 6th, 2011
12 years agoseg2 segregation2:
 
   Cande, WZ; Freeling, M. 2011. Genetics. 188:491-8     Reference: September 28th, 2011
Variation: August 11th, 2011
12 years agoscm1 self-colored marbled1:
10.06
   Schnable, J; Freeling, M. 2011. PLoS One 6(3):e17855. doi:10.1371/journal.pone.0017855     Reference: September 27th, 2011
Variation: September 1st, 2003
12 years agotm20 transmembrane protein20:
6.00 - 6.01
   Schnable, J; Freeling, M. 2011. PLoS One 6(3):e17855. doi:10.1371/journal.pone.0017855     Reference: September 27th, 2011
Gene Product: September 1st, 2003
Variation: October 8th, 2010
12 years agotbp2 TATA-binding protein2:
5.02
   Schnable, J; Freeling, M. 2011. PLoS One 6(3):e17855. doi:10.1371/journal.pone.0017855     Reference: September 27th, 2011
Gene Product: September 1st, 2003
Variation: September 1st, 2003
12 years agof1 fine stripe1:
1.07
   Phipps, IF. 1929. Cornell Univ Agric Exp Stn Memoir 125:1-63     Reference: August 23rd, 2011
Variation: September 1st, 2003
12 years agov16 virescent16:
8.06
   Phipps, IF. 1929. Cornell Univ Agric Exp Stn Memoir 125:1-63     Reference: August 23rd, 2011
Variation: September 1st, 2003
12 years agov18 virescent18:
10.06 - 10.07
   Phipps, IF. 1929. Cornell Univ Agric Exp Stn Memoir 125:1-63     Reference: August 23rd, 2011
Variation: September 1st, 2003
12 years agolcm1 Lc similarity at Marbled1:
10.06
   Panavas, T et al. 1999. Genetics 153:979-991     Reference: July 16th, 2011
Variation: September 1st, 2003
12 years agolcm2 Lc similarity at Marbled2:
10.06
   Panavas, T et al. 1999. Genetics 153:979-991     Reference: July 16th, 2011
Variation: September 1st, 2003
13 years agophd23  :
6.01
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Variation: September 25th, 2007
13 years agomyb47 MYB-transcription factor 47:
3.07
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Variation: September 25th, 2007
13 years agohox4 homeobox4:
 
   Yilmaz, A et al. 2009. Plant Physiol 149:171-180     Reference: May 12th, 2011
Gene Product: September 1st, 2003
13 years agovp*-5111 viviparous*-5111:
 
       Variation: April 21st, 2011
13 years agolty1 light yellow endosperm1:
 
   Dollinger, EJ. 1985. Crop Sci 25:819-821     Reference: September 1st, 2003
Variation: April 11th, 2011
13 years agoog1 old gold stripe1:
10.03 - 10.03
   Stinard, PS. 2009. MNL 83:52     Reference: March 17th, 2011
Variation: September 1st, 2003
13 years agow*-017-14 white*-017-14:
8.05 - 8.09
       Variation: February 4th, 2011
13 years agodbcb1 double cob1:
 
   Brewbaker, JL. 2009. MNL 83:19     Reference: January 20th, 2011
Variation: January 21st, 2011
13 years agoflta1 floppy tassel1:
 
   Brewbaker, JL; Yu, H. 2009. MNL 83:19-20     Reference: January 20th, 2011
Variation: January 21st, 2011
13 years agoms*-6063  :
 
       Variation: January 20th, 2011
13 years agoo*-N1065A opaqueN1065A:
5.05 - 5.09
   Chang, MT; Neuffer, MG. 1994. Maydica 39:9-18     Reference: September 1st, 2003
Variation: January 14th, 2011
13 years agomgp1 small GTP binding protein1:
 
   Zhang, JM et al. 2007. J Integr Plant Biol 49:1129-1141     Reference: January 12th, 2011
Gene Product: September 1st, 2003
Variation: September 1st, 2003
13 years agomgp2 small GTP binding protein2:
 
   Zhang, JM et al. 2007. J Integr Plant Biol 49:1129-1141     Reference: January 12th, 2011
Gene Product: September 1st, 2003
Variation: September 1st, 2003
13 years agod*-N394 dwarfN394:
8.08
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: January 11th, 2011
13 years agorfv1 restorer fertility viable1:
 
   Laughnan, JR and Gabay-Laughnan, SJ 1975. pp.330-349 in Birky, CW et al. 1975.Ohio State Univ Press, Columbus     Reference: December 31st, 2010
Variation: January 4th, 2011
13 years agorfn1 restorer fertility non-functional1:
 
   Laughnan, JR and Gabay-Laughnan, SJ 1975. pp.330-349 in Birky, CW et al. 1975.Ohio State Univ Press, Columbus     Reference: December 31st, 2010
Variation: January 4th, 2011
13 years agorad1 RAD1 DNA repair protein homolog:
 
   Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: December 29th, 2010
13 years agodgr1 distorted growth1:
 
   Pilu, R et al. 2002. Plant Physiol 128:502-511     Reference: November 21st, 2008
Variation: October 9th, 2010
13 years agoms*-775 male sterile*-775:
10.04
       Variation: September 16th, 2010
14 years agopn1 papyrescent glumes1:
7.05 - 7.06
   Galinat, WC. 1957. Bot Mus Leafl, Harvard 18:57-76     Reference: May 13th, 2010
Variation: September 1st, 2003
14 years agoskb1 suppressor of kernel blotching1:
9.00 - 9.02
   Cone, KC. 1995. Personal Comm.     Reference: September 1st, 2003
Variation: April 20th, 2010
14 years agoanr1 anthocyanin regulator1:
 
       Variation: April 20th, 2010
14 years agospb1 suppressor of plant blotching1:
 
   Shin, K; Cone, KC. 2006. Maize Genetics Conference Abstracts. 48:P137     Reference: April 20th, 2006
Variation: April 20th, 2010
14 years agol10 luteus10:
6.02
   Robertson, DS. 1973. MNL 47:82-87     Reference: September 1st, 2003
Variation: April 7th, 2010
14 years agoffm1 filifolium1:
 
   Mellor, E A; Langdale, J. 2009. Am J Bot 96:1594-1602     Reference: February 26th, 2010
Variation: March 15th, 2010
14 years agopun1 plastids undifferentiated1:
 
   Roth, R et al. 2001. Planta 213:647-658     Reference: May 8th, 2009
Variation: March 12th, 2010
14 years agogrt1 green tip1:
5.04 - 5.09
   Neuffer, MG and Beckett, JB. 1987. MNL 61:50     Reference: September 1st, 2003
Variation: March 10th, 2010
14 years agots*-br tassel seed*-branched:
 
       Variation: February 19th, 2010
14 years agoglo1 globby1:
1.06
   Costa, LM; Gutierrez-Marcos, J; Brutnell, TP; Greenland, AJ; Dickinson, HG. 2003. Development. 130:5009-5017     Reference: June 30th, 2009
Variation: June 17th, 2009
14 years agodap1 dappled aleurone1:
5.07 - 5.08
   Pirona, R et al. 2005. Maydica 50:515-530     Reference: June 24th, 2009
Variation: May 20th, 2006
14 years agoles*-D101 lesion*-D101:
 
   Johal, GS; Hulbert, SH; Briggs, SP. 1995. Disease lesion mimics of maize: A model for cell death in plants. Bioessays 17:685-692     Reference: September 1st, 2003
Variation: June 4th, 2009
14 years agoles*-MA102 lesion*-MA102:
 
   Johal, GS; Hulbert, SH; Briggs, SP. 1995. Disease lesion mimics of maize: A model for cell death in plants. Bioessays 17:685-692     Reference: September 1st, 2003
Variation: June 4th, 2009
14 years agoles*-EC91 lesion*-EC91:
 
   Johal, GS; Hulbert, SH; Briggs, SP. 1995. Disease lesion mimics of maize: A model for cell death in plants. Bioessays 17:685-692     Reference: September 1st, 2003
Variation: June 4th, 2009
14 years agoles*-1369 lesion*-1369:
 
   Johal, GS; Hulbert, SH; Briggs, SP. 1995. Disease lesion mimics of maize: A model for cell death in plants. Bioessays 17:685-692     Reference: September 1st, 2003
Variation: June 4th, 2009
14 years agoles*-28Q lesion*-28Q:
 
   Johal, GS; Hulbert, SH; Briggs, SP. 1995. Disease lesion mimics of maize: A model for cell death in plants. Bioessays 17:685-692     Reference: September 1st, 2003
Variation: June 4th, 2009
14 years agoles*-U957 lesion candidateU957:
 
   Lee, EA et al. 1993. MNL 67:33-34     Reference: September 1st, 2003
Variation: June 4th, 2009
14 years agorgh2 rough endosperm2:
2.01 - 2.02
   Neuffer, MG. 1995. Data on kernel mutations from laboratory records     Reference: September 1st, 2003
Variation: May 29th, 2009
15 years agoba4 barren stalk4:
 
   Peterson, PA in Kanellis, AK et al. 1999.     Reference: April 25th, 2009
Variation: July 7th, 2004
15 years agowcr1 wandering carpel1:
 
   Irish, EE et al. 2003. The wandering carpel mutation of Zea mays (Gramineae) causes misorientation and loss of zygomorphy in flowers and two-seeded kernels. Am J Bot 90:551-560     Reference: September 1st, 2003
Variation: March 19th, 2009
15 years agoenr3 enhancement of r3:
 
   Stinard, PS et al. 2009. J Hered 100:217-228     Reference: February 23rd, 2009
Variation: February 23rd, 2009
15 years agoelfa4 elongation factor alpha4:
 
   Carneiro, N et al. 1999. Plant Mol Biol 41:801-813     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: December 31st, 2008
15 years agoles9 lesion9:
7.02
   Morris, SW et al. 1998. Mol Plant-Microbe Interact 11:643-658     Reference: August 1st, 2008
Variation: September 1st, 2003
15 years agoles13 lesion13:
6.01 - 6.03
   Morris, SW et al. 1998. Mol Plant-Microbe Interact 11:643-658     Reference: August 1st, 2008
Variation: September 1st, 2003
15 years agoles16 lesion16:
10.02 - 10.03
   Morris, SW et al. 1998. Mol Plant-Microbe Interact 11:643-658     Reference: August 1st, 2008
Variation: September 1st, 2003
16 years agowl*-N56 white luteusN56:
1.06 - 1.12
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: February 19th, 2008
16 years agoser3 seryl-tRNA synthetase3:
9.04
   Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Gene Product: February 13th, 2008
16 years agohmgr1 3-hydroxy-3-methylglutaryl coenzyme A reductase :
 
       Gene Product: September 1st, 2003
Variation: February 13th, 2008
16 years agopoln1 pollen specific mRNA :
 
       Variation: February 12th, 2008
16 years agode*-N1175 defectiveN1175:
2.05 - 2.10
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: February 7th, 2008
16 years agonec*-N249A necroticN249A:
8.03 - 8.05
   Neuffer, MG. 1995. Personal communication-mutant collection     Reference: September 1st, 2003
Variation: January 15th, 2008
16 years agorgh*-N1112 roughN1112:
3.04
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: January 15th, 2008
16 years agowl*-N1982 white luteusN1982:
8.05 - 8.06
   Neuffer, MG. 1995. white luteus mutations: data from laboratory records     Reference: September 1st, 2003
Variation: January 15th, 2008
16 years agopza00817  :
3.09
       Variation: September 25th, 2007
16 years agopza01272  :
9.02
       Variation: September 25th, 2007
16 years agopza01304  :
5.05
       Variation: September 25th, 2007
16 years agopza01870  :
1.01
       Variation: September 25th, 2007
16 years agopza01936  :
7.02
       Variation: September 25th, 2007
16 years agopza01946  :
7.02
       Variation: September 25th, 2007
16 years agopza02083  :
4.08
       Variation: September 25th, 2007
16 years agopza02155  :
4.09
       Variation: September 25th, 2007
16 years agopza02508  :
8.05
       Variation: September 25th, 2007
16 years agopza02519  :
10.06
       Variation: September 25th, 2007
16 years agopza02727  :
2.09
       Variation: September 25th, 2007
16 years agopza02731  :
2.07
       Variation: September 25th, 2007
16 years agopza03361  :
7.02
       Variation: September 25th, 2007
16 years agopza03435  :
5.05
       Variation: September 25th, 2007
16 years agopzb00665  :
8.05
       Variation: September 25th, 2007
16 years agopzb01112  :
5.03
       Variation: September 25th, 2007
16 years agopzb01115  :
5.03
       Variation: September 25th, 2007
16 years agopzb01228  :
7.02
       Variation: September 25th, 2007
16 years agoumc1316  :
8.05
       Variation: September 25th, 2007
16 years agoAY106040  :
2.02
       Variation: September 25th, 2007
16 years agoAY109678  :
1.05
       Variation: September 25th, 2007
16 years agoAY110019  :
1.10
       Variation: September 25th, 2007
16 years agoAY110297  :
3.04
       Variation: September 25th, 2007
16 years agoPCO063726  :
1.11
       Variation: September 25th, 2007
16 years agocl7929_1  :
1.05
       Variation: September 25th, 2007
16 years agocl3927_1a  :
1.01
       Variation: September 25th, 2007
16 years agopco060326  :
1.11
       Variation: September 25th, 2007
16 years agopco071369  :
1.04
       Variation: September 25th, 2007
16 years agopco083348  :
1.04
       Variation: September 25th, 2007
16 years agopco115388  :
1.07
       Variation: September 25th, 2007
16 years agopco139091  :
1.07
       Variation: September 25th, 2007
16 years agocl26752_1  :
2.05
       Variation: September 25th, 2007
16 years agocl11096_1  :
2.01
       Variation: September 25th, 2007
16 years agopco120183  :
3.04
       Variation: September 25th, 2007
16 years agocl32627_1e  :
4.08
       Variation: September 25th, 2007
16 years agocl35669_1  :
5.01
       Variation: September 25th, 2007
16 years agopco136495a  :
5.04
       Variation: September 25th, 2007
16 years agopco143498  :
5.01
       Variation: September 25th, 2007
16 years agopco140565  :
6.05
       Variation: September 25th, 2007
16 years agopco110957  :
7.03
       Variation: September 25th, 2007
16 years agopco079267  :
8.02
       Variation: September 25th, 2007
16 years agocl27880_1  :
9.02
       Variation: September 25th, 2007
16 years agocl4939_2  :
9.02
       Variation: September 25th, 2007
16 years agopco078062b  :
10.03
       Variation: September 25th, 2007
16 years agopco144235  :
10.03
       Variation: September 25th, 2007
16 years agoIDP2440  :
1.11
       Variation: September 25th, 2007
16 years agoIDP257  :
8.07
       Variation: September 25th, 2007
16 years agocl3534_2  :
10.04
       Variation: September 25th, 2007
16 years agopco098051  :
2.04
       Variation: September 25th, 2007
16 years agoyd2 yellow dwarf2:
3.06
   Robertson, DS. 1974. MNL 48:70-72     Reference: September 1st, 2003
Variation: August 7th, 2007
16 years agoad*-N664 adherentN664:
5.00 - 5.04
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: August 7th, 2007
16 years agocp*-N1319A collapsedN1319A:
2.00 - 2.03
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: August 7th, 2007
16 years agoptd*-N901A pittedN901A:
2.00 - 2.03
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: August 7th, 2007
16 years agobk3 brittle stalk3:
9.03
   Multani, DS and Johal, G. 2003. bk3, a new brittle stalk mutant of maize. MNL 77:45-46     Reference: September 1st, 2003
Variation: August 7th, 2007
16 years agopep5 phosphoenolpyruvate carboxylase5:
 
   Yanagisawa, S and Izui, K. 1989. J Biochem 106:982-987     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: June 5th, 2007
17 years agoles23 lesion23:
2.04 - 2.06
   Penning, B; Johal, G; McMullen, M. 2004. Genome. 47:961-969     Reference: April 13th, 2006
Variation: April 4th, 2007
17 years agoIDP3833  :
3.09
       Variation: February 25th, 2007
17 years agow*-034-5  :
9.02 - 9.03
       Variation: January 31st, 2007
17 years agospt1 spotted1:
2.07 - 2.08
   Beckett, JB pp.493-529 in Gupta, PK and Tsuchiya, T (eds). 1991.Elsevier Science Publishers, New York     Reference: September 1st, 2003
Variation: January 10th, 2007
17 years agoLOC103653362  :
 
       Gene Product: October 25th, 2006
17 years agolep*-8691 leopard spotting*-8691:
 
       Variation: August 16th, 2006
17 years agozn1 zebra necrotic1:
10.03 - 10.04
   Horovitz, S. 1948. MNL 22:42-43     Reference: September 1st, 2003
Variation: May 20th, 2006
17 years agonec*-016-15 necrotic*-016-15:
4.05 - 4.11
       Variation: May 19th, 2006
17 years agoyg*-8951 yellow green*-8951:
 
       Variation: May 19th, 2006
17 years agoms41 male sterile41:
4.09
   Neuffer, MG et al. 1987. MNL 61:50-51     Reference: September 1st, 2003
Variation: May 19th, 2006
17 years agov21 virescent21:
8.07 - 8.08
   Beckett, JB and Neuffer, MG. 1973. MNL 47:147     Reference: September 1st, 2003
Variation: May 19th, 2006
17 years agol*-1104 luteus*1104:
 
       Variation: May 19th, 2006
17 years agoren2 reduced endosperm2:
7.04
   James, MG et al. 1992. MNL 66:6     Reference: September 1st, 2003
Variation: May 19th, 2006
17 years agoet2 etched2:
2.02 - 2.03
   Stinard, PS et al. 1993. MNL 67:9     Reference: September 1st, 2003
Variation: May 19th, 2006
17 years agoms29 male sterile29:
10.02 - 10.03
   Trimnell, MR et al. 1998. MNL 72:37-38     Reference: September 1st, 2003
Variation: May 19th, 2006
17 years agorli1 rough lineate1:
1.06 - 1.12
   Sylvester, A; Zhang, J; Cui, P; Nielson, A. 2005. Maize Genetics Conference Abstracts. 47:T16     Reference: July 29th, 2005
Gene Product: August 5th, 2005
Variation: May 19th, 2006
17 years agod*-GFS1994 dwarf candidate GFS1994:
 
   Sprague, GF. 1994. MNL 68:105     Reference: September 1st, 2003
Variation: May 19th, 2006
17 years agocrp*-N2207 crumpledN2207:
3.05 - 3.09
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: May 19th, 2006
17 years agow*-N21A whiteN21A:
5.05 - 5.09
   Shadley, J and Weber, DF. 1984. MNL 58:160-161     Reference: September 1st, 2003
Variation: May 19th, 2006
17 years agoms*-V754  :
 
   Coe, E, Jr. 1998. Personal Communication     Reference: September 1st, 2003
Variation: May 19th, 2006
17 years agoms*-V755  :
 
   Coe, E, Jr. 1998. Personal Communication     Reference: September 1st, 2003
Variation: May 19th, 2006
17 years agov*-8623  :
3.00 - 3.10
   McHugh, D et al. 1957. MNL 31:112-113     Reference: September 1st, 2003
Variation: May 19th, 2006
17 years agow*-8336  :
3.00 - 3.10
       Variation: May 19th, 2006
17 years agowlv1 white leaf-virescent1:
2.05
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: May 19th, 2006
18 years agonec3 necrotic3:
5.04
   Neuffer, MG. 1973. MNL 47:150-151     Reference: September 1st, 2003
Variation: May 2nd, 2006
18 years agoet3 etched3:
2.00
   Kowles, RV et al. 1992. Genome 35:68-77     Reference: September 1st, 2003
Variation: February 10th, 2006
18 years agov36 virescent36:
5.05
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: February 10th, 2006
18 years agowlu9 white luteus9:
5.05
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: February 10th, 2006
18 years agowlu8 white luteus8:
3.08
   Neuffer, MG. 1995. white luteus mutations: data from laboratory records     Reference: September 1st, 2003
Variation: February 10th, 2006
18 years agosr3 striate leaves3:
10.03 - 10.03
   Glover, DV. 1968. MNL. 42:151     Reference: December 20th, 2004
Variation: February 9th, 2006
18 years agohcf16 high chlorophyll fluorescence16:
 
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: November 1st, 2005
18 years agohcf17 high chlorophyll fluorescence17:
 
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: November 1st, 2005
18 years agomph1 modifier of phototropism1:
 
   Baskin, TI et al. 1999. Maydica 44:119-125     Reference: September 1st, 2003
Variation: October 7th, 2005
18 years agoalm1 aluminum tolerance1:
 
   Moon, D et al. 1997. Plant Cell Rep 16:686-691     Reference: September 1st, 2003
Gene Product: September 28th, 2005
18 years agoalm2 aluminum tolerance2:
 
   Sibov, S et al. 1999. Genome 42:475-482     Reference: September 1st, 2003
Gene Product: September 28th, 2005
18 years agolag1 lowered Ac/Ds germinal reversion1:
9.03
   Eisses, J et al. 1997. Mol Gen Genet 256:158-168     Reference: September 1st, 2003
Variation: July 6th, 2005
18 years agoshr1 shredded leaf1:
5.04
   Trimnell, M et al. 2000. MNL 74:36     Reference: September 1st, 2003
Variation: June 29th, 2005
18 years agosw1 Stewart's wilt resistance1:
1.05
   Ming, R et al. 1999. Maydica 44:319-323     Reference: September 1st, 2003
Variation: June 29th, 2005
18 years agondh1 non-dehiscent1:
 
   Walden, DB and Cheng, PC. 1997. MNL 71:59-60     Reference: September 1st, 2003
Variation: June 29th, 2005
18 years agobrt1 brown roots1:
 
   Hochholdinger, F and Feix, G. 1998. MNL 72:29-30     Reference: September 1st, 2003
Variation: June 29th, 2005
18 years agoms31 male sterile31:
2.09
   Trimnell, MR et al. 1998. MNL 72:38     Reference: September 1st, 2003
Variation: June 29th, 2005
18 years agolmes1 long mesocotyl1:
3.00 - 3.04
   Troyer, AF. 1997. Genetics 145:1149-1154     Reference: September 1st, 2003
Variation: June 29th, 2005
18 years agolmes2 long mesocotyl2:
6.03 - 6.08
   Troyer, AF. 1997. Genetics 145:1149-1154     Reference: September 1st, 2003
Variation: June 29th, 2005
18 years agolmes3 long mesocotyl3:
9.00 - 9.02
   Troyer, AF. 1997. Genetics 145:1149-1154     Reference: September 1st, 2003
Variation: June 29th, 2005
18 years agochm1 chlorophyll-mutable1:
 
   Uhrig, H et al. 1997. The clonal origin of the lateral meristem generating the ear shoot of maize. Planta 201:9-17     Reference: September 1st, 2003
Variation: June 29th, 2005
18 years agotufc1 elongation factor, chloroplast 1:
 
   Rao, D; Momcilovic, I; Kobayashi, S; Callegari, E; Ristic, Z. 2004. Eur J Biochem. 271:3684-3692     Reference: October 29th, 2004
Gene Product: June 7th, 2005
19 years agogst43 glutathione transferase43:
 
   Rossini, L; Frova, C; Mizzi, L; Sari-Gorla, M. 1998. Pestic Biochem Physiol. 60:205-211     Reference: May 5th, 2005
Gene Product: September 1st, 2003
19 years agogst44 glutathione transferase44:
 
   Rossini, L; Frova, C; Mizzi, L; Sari-Gorla, M. 1998. Pestic Biochem Physiol. 60:205-211     Reference: May 5th, 2005
Gene Product: September 1st, 2003
19 years agogst45 glutathione transferase45:
 
   Rossini, L; Frova, C; Mizzi, L; Sari-Gorla, M. 1998. Pestic Biochem Physiol. 60:205-211     Reference: May 5th, 2005
Gene Product: September 1st, 2003
19 years agow24 white seedling24:
1.08
   MGCSC. 1972. Unpublished mimeographed notes     Reference: September 1st, 2003
Variation: April 3rd, 2005
19 years agopg15 pale green15:
1.02
   Hoisington, DA. 1984. MNL 58:82-84     Reference: September 1st, 2003
Variation: April 1st, 2005
19 years agoIDP126  :
1.08
       Variation: March 31st, 2005
19 years agoIDP1410  :
1.03
       Variation: March 31st, 2005
19 years agoIDP1423  :
1.03
       Variation: March 31st, 2005
19 years agoIDP1703  :
1.06
       Variation: March 31st, 2005
19 years agoIDP2347  :
1.09
       Variation: March 31st, 2005
19 years agoIDP2516  :
1.09
       Variation: March 31st, 2005
19 years agoIDP2518  :
1.07
       Variation: March 31st, 2005
19 years agoIDP254  :
1.05
       Variation: March 31st, 2005
19 years agoIDP2551  :
1.05
       Variation: March 31st, 2005
19 years agoIDP2552  :
1.02
       Variation: March 31st, 2005
19 years agoIDP2571  :
1.05
       Variation: March 31st, 2005
19 years agoIDP261  :
1.10
       Variation: March 31st, 2005
19 years agoIDP376  :
1.04
       Variation: March 31st, 2005
19 years agoIDP466  :
1.02
       Variation: March 31st, 2005
19 years agoIDP656  :
1.03
       Variation: March 31st, 2005
19 years agoIDP676  :
1.05
       Variation: March 31st, 2005
19 years agoIDP762  :
1.01
       Variation: March 31st, 2005
19 years agoIDP802  :
1.09
       Variation: March 31st, 2005
19 years agoIDP806  :
1.11
       Variation: March 31st, 2005
19 years agoIDP81  :
1.03
       Variation: March 31st, 2005
19 years agoIDP823  :
1.10
       Variation: March 31st, 2005
19 years agoIDP831  :
1.05
       Variation: March 31st, 2005
19 years agoIDP835  :
1.11
       Variation: March 31st, 2005
19 years agomagi93868  :
1.10
       Variation: March 31st, 2005
19 years agoIDP1435  :
2.04
       Variation: March 31st, 2005
19 years agoIDP1453  :
2.04
       Variation: March 31st, 2005
19 years agoIDP1612  :
2.03
       Variation: March 31st, 2005
19 years agoIDP1679  :
2.07
       Variation: March 31st, 2005
19 years agoIDP1702  :
2.01
       Variation: March 31st, 2005
19 years agoIDP2371  :
2.01
       Variation: March 31st, 2005
19 years agoIDP2396a  :
2.05
       Variation: March 31st, 2005
19 years agoIDP2477  :
2.08
       Variation: March 31st, 2005
19 years agoIDP2559  :
2.06
       Variation: March 31st, 2005
19 years agoIDP2573  :
2.05
       Variation: March 31st, 2005
19 years agoIDP283  :
2.01
       Variation: March 31st, 2005
19 years agoIDP296  :
2.03
       Variation: March 31st, 2005
19 years agoIDP309  :
2.07
       Variation: March 31st, 2005
19 years agoIDP364  :
2.07
       Variation: March 31st, 2005
19 years agoIDP383  :
2.05
       Variation: March 31st, 2005
19 years agoIDP467  :
2.05
       Variation: March 31st, 2005
19 years agoIDP485  :
2.08
       Variation: March 31st, 2005
19 years agoIDP492  :
2.06
       Variation: March 31st, 2005
19 years agoIDP633  :
2.08
       Variation: March 31st, 2005
19 years agoIDP677  :
2.01
       Variation: March 31st, 2005
19 years agoIDP682  :
2.02
       Variation: March 31st, 2005
19 years agoIDP699  :
2.07
       Variation: March 31st, 2005
19 years agoIDP726  :
2.02
       Variation: March 31st, 2005
19 years agoIDP732  :
2.08
       Variation: March 31st, 2005
19 years agoIDP735  :
2.06
       Variation: March 31st, 2005
19 years agoIDP746  :
2.06
       Variation: March 31st, 2005
19 years agoIDP816  :
2.08
       Variation: March 31st, 2005
19 years agoIDP819  :
2.06
       Variation: March 31st, 2005
19 years agoIDP97  :
2.07
       Variation: March 31st, 2005
19 years agoIDP3869  :
2.02
       Variation: March 31st, 2005
19 years agoIDP3936  :
2.05
       Variation: March 31st, 2005
19 years agoIDP11  :
3.09
       Variation: March 31st, 2005
19 years agoIDP128  :
3.08
       Variation: March 31st, 2005
19 years agoIDP1440  :
3.06
       Variation: March 31st, 2005
19 years agoIDP1460  :
3.04
       Variation: March 31st, 2005
19 years agoIDP1608  :
3.08
       Variation: March 31st, 2005
19 years agoIDP1689  :
3.06
       Variation: March 31st, 2005
19 years agoIDP1693  :
3.04
       Variation: March 31st, 2005
19 years agoIDP1974  :
3.05
       Variation: March 31st, 2005
19 years agoIDP1985  :
3.05
       Variation: March 31st, 2005
19 years agoIDP2345  :
3.05
       Variation: March 31st, 2005
19 years agoIDP2374  :
3.04
       Variation: March 31st, 2005
19 years agoIDP2379  :
3.09
       Variation: March 31st, 2005
19 years agoIDP2394  :
3.09
       Variation: March 31st, 2005
19 years agoIDP2414  :
3.05
       Variation: March 31st, 2005
19 years agoIDP2417  :
3.09
       Variation: March 31st, 2005
19 years agoIDP2422  :
3.08
       Variation: March 31st, 2005
19 years agoIDP2435  :
3.04
       Variation: March 31st, 2005
19 years agoIDP2495  :
3.05
       Variation: March 31st, 2005
19 years agoIDP2566  :
3.09
       Variation: March 31st, 2005
19 years agoIDP2576a  :
3.04
       Variation: March 31st, 2005
19 years agoIDP2591  :
3.09
       Variation: March 31st, 2005
19 years agoIDP394  :
3.01
       Variation: March 31st, 2005
19 years agoIDP398  :
3.09
       Variation: March 31st, 2005
19 years agoIDP401  :
3.05
       Variation: March 31st, 2005
19 years agoIDP426  :
3.06
       Variation: March 31st, 2005
19 years agoIDP448  :
3.04
       Variation: March 31st, 2005
19 years agoIDP474  :
3.05
       Variation: March 31st, 2005
19 years agoIDP477  :
3.09
       Variation: March 31st, 2005
19 years agoIDP522  :
3.06
       Variation: March 31st, 2005
19 years agoIDP58  :
3.09
       Variation: March 31st, 2005
19 years agoIDP685  :
3.04
       Variation: March 31st, 2005
19 years agoIDP817  :
3.04
       Variation: March 31st, 2005
19 years agoIDP834  :
3.01
       Variation: March 31st, 2005
19 years agoIDP854  :
3.06
       Variation: March 31st, 2005
19 years agoIDP869  :
3.05
       Variation: March 31st, 2005
19 years agoIDP100  :
4.08
       Variation: March 31st, 2005
19 years agoIDP1422  :
4.09
       Variation: March 31st, 2005
19 years agoIDP161  :
4.05
       Variation: March 31st, 2005
19 years agoIDP1646  :
4.09
       Variation: March 31st, 2005
19 years agoIDP1667  :
4.06
       Variation: March 31st, 2005
19 years agoIDP188  :
4.08
       Variation: March 31st, 2005
19 years agoIDP1943  :
4.06
       Variation: March 31st, 2005
19 years agoIDP1949  :
4.09
       Variation: March 31st, 2005
19 years agoIDP210  :
4.09
       Variation: March 31st, 2005
19 years agoIDP216  :
4.05
       Variation: March 31st, 2005
19 years agoIDP2349  :
4.06
       Variation: March 31st, 2005
19 years agoIDP238  :
4.00
       Variation: March 31st, 2005
19 years agoIDP2397  :
4.02
       Variation: March 31st, 2005
19 years agoIDP2418  :
4.06
       Variation: March 31st, 2005
19 years agoIDP2425  :
4.05
       Variation: March 31st, 2005
19 years agoIDP2476  :
4.03
       Variation: March 31st, 2005
19 years agoIDP2480  :
4.08
       Variation: March 31st, 2005
19 years agoIDP2484  :
4.02
       Variation: March 31st, 2005
19 years agoIDP2574  :
4.05
       Variation: March 31st, 2005
19 years agoIDP2583  :
4.05
       Variation: March 31st, 2005
19 years agomagi46088  :
4.11
       Variation: March 31st, 2005
19 years agoIDP389  :
4.09
       Variation: March 31st, 2005
19 years agoIDP414  :
4.09
       Variation: March 31st, 2005
19 years agoIDP416  :
4.05
       Variation: March 31st, 2005
19 years agoIDP424  :
4.04
       Variation: March 31st, 2005
19 years agoIDP508  :
4.09
       Variation: March 31st, 2005
19 years agoIDP510  :
4.04
       Variation: March 31st, 2005
19 years agoIDP513  :
4.09
       Variation: March 31st, 2005
19 years agoIDP521  :
4.05
       Variation: March 31st, 2005
19 years agoIDP528  :
4.08
       Variation: March 31st, 2005
19 years agoIDP539  :
4.06
       Variation: March 31st, 2005
19 years agoIDP544  :
4.09
       Variation: March 31st, 2005
19 years agoIDP547  :
4.05
       Variation: March 31st, 2005
19 years agoIDP578  :
4.01
       Variation: March 31st, 2005
19 years agoIDP607  :
4.08
       Variation: March 31st, 2005
19 years agomagi108146  :
4.05
       Variation: March 31st, 2005
19 years agoIDP666  :
4.09
       Variation: March 31st, 2005
19 years agoIDP713  :
4.02
       Variation: March 31st, 2005
19 years agoIDP733  :
4.09
       Variation: March 31st, 2005
19 years agoIDP799  :
4.06
       Variation: March 31st, 2005
19 years agoIDP801  :
4.05
       Variation: March 31st, 2005
19 years agoIDP857  :
4.05
       Variation: March 31st, 2005
19 years agoIDP860  :
4.05
       Variation: March 31st, 2005
19 years agoIDP91  :
4.10
       Variation: March 31st, 2005
19 years agoIDP1408  :
5.04
       Variation: March 31st, 2005
19 years agoIDP1470  :
5.03
       Variation: March 31st, 2005
19 years agoIDP1491  :
5.08
       Variation: March 31st, 2005
19 years agoIDP1607b  :
5.04
       Variation: March 31st, 2005
19 years agoIDP163  :
5.05
       Variation: March 31st, 2005
19 years agoIDP1658  :
5.00
       Variation: March 31st, 2005
19 years agoIDP181a  :
5.08
       Variation: March 31st, 2005
19 years agoIDP1955  :
5.08
       Variation: March 31st, 2005
19 years agoIDP237  :
5.05
       Variation: March 31st, 2005
19 years agoIDP2389  :
5.01
       Variation: March 31st, 2005
19 years agoIDP2438  :
5.03
       Variation: March 31st, 2005
19 years agoIDP2575b  :
5.04
       Variation: March 31st, 2005
19 years agoIDP2587  :
5.04
       Variation: March 31st, 2005
19 years agoIDP265  :
5.01
       Variation: March 31st, 2005
19 years agoIDP285  :
5.04
       Variation: March 31st, 2005
19 years agoIDP30  :
5.04
       Variation: March 31st, 2005
19 years agoIDP368  :
5.01
       Variation: March 31st, 2005
19 years agoIDP396  :
5.00
       Variation: March 31st, 2005
19 years agoIDP404  :
5.05
       Variation: March 31st, 2005
19 years agoIDP41  :
5.04
       Variation: March 31st, 2005
19 years agoIDP419  :
5.03
       Variation: March 31st, 2005
19 years agoIDP458  :
5.05
       Variation: March 31st, 2005
19 years agoIDP684  :
5.01
       Variation: March 31st, 2005
19 years agoIDP722  :
5.04
       Variation: March 31st, 2005
19 years agoIDP766  :
5.04
       Variation: March 31st, 2005
19 years agoIDP78  :
5.06
       Variation: March 31st, 2005
19 years agoIDP821  :
5.04
       Variation: March 31st, 2005
19 years agoIDP129  :
6.05
       Variation: March 31st, 2005
19 years agoIDP133  :
6.03
       Variation: March 31st, 2005
19 years agoIDP1406  :
6.06
       Variation: March 31st, 2005
19 years agoIDP1413  :
6.01
       Variation: March 31st, 2005
19 years agoIDP1427  :
6.05
       Variation: March 31st, 2005
19 years agoIDP1474  :
6.03
       Variation: March 31st, 2005
19 years agoIDP1476  :
6.07
       Variation: March 31st, 2005
19 years agoIDP1664  :
6.01
       Variation: March 31st, 2005
19 years agoIDP1699  :
6.05
       Variation: March 31st, 2005
19 years agoIDP1701  :
6.01
       Variation: March 31st, 2005
19 years agomagi84474  :
6.01
       Variation: March 31st, 2005
19 years agoIDP185  :
6.01
       Variation: March 31st, 2005
19 years agoIDP1946  :
6.01
       Variation: March 31st, 2005
19 years agoIDP1966  :
6.03
       Variation: March 31st, 2005
19 years agoIDP1993  :
6.01
       Variation: March 31st, 2005
19 years agoIDP2001  :
6.06
       Variation: March 31st, 2005
19 years agoIDP2008  :
6.05
       Variation: March 31st, 2005
19 years agoIDP2010  :
6.01
       Variation: March 31st, 2005
19 years agoIDP205  :
6.01
       Variation: March 31st, 2005
19 years agoIDP206  :
6.01
       Variation: March 31st, 2005
19 years agoIDP221  :
6.01
       Variation: March 31st, 2005
19 years agoIDP2391  :
6.05
       Variation: March 31st, 2005
19 years agoIDP2424  :
6.02
       Variation: March 31st, 2005
19 years agoIDP2433  :
6.01
       Variation: March 31st, 2005
19 years agoIDP2514b  :
6.01
       Variation: March 31st, 2005
19 years agoIDP255  :
6.01
       Variation: March 31st, 2005
19 years agoIDP2582a  :
6.01
       Variation: March 31st, 2005
19 years agoIDP301  :
6.01
       Variation: March 31st, 2005
19 years agoIDP330  :
6.05
       Variation: March 31st, 2005
19 years agoIDP344  :
6.04
       Variation: March 31st, 2005
19 years agoIDP350  :
6.02
       Variation: March 31st, 2005
19 years agoIDP392  :
6.03
       Variation: March 31st, 2005
19 years agoIDP479  :
6.05
       Variation: March 31st, 2005
19 years agoIDP503  :
6.05
       Variation: March 31st, 2005
19 years agoIDP530  :
6.02
       Variation: March 31st, 2005
19 years agoIDP558  :
6.01
       Variation: March 31st, 2005
19 years agoIDP562  :
6.01
       Variation: March 31st, 2005
19 years agoIDP564  :
6.04
       Variation: March 31st, 2005
19 years agoIDP587  :
6.02
       Variation: March 31st, 2005
19 years agoIDP588  :
6.06
       Variation: March 31st, 2005
19 years agoIDP606  :
6.00
       Variation: March 31st, 2005
19 years agoIDP609  :
6.01
       Variation: March 31st, 2005
19 years agoIDP613  :
6.04
       Variation: March 31st, 2005
19 years agoIDP649  :
6.02
       Variation: March 31st, 2005
19 years agoIDP710  :
6.05
       Variation: March 31st, 2005
19 years agoIDP775  :
6.05
       Variation: March 31st, 2005
19 years agoIDP777  :
6.01
       Variation: March 31st, 2005
19 years agoIDP87  :
6.01
       Variation: March 31st, 2005
19 years agoIDP106  :
7.00
       Variation: March 31st, 2005
19 years agoIDP1424  :
7.02
       Variation: March 31st, 2005
19 years agoIDP1642  :
7.04
       Variation: March 31st, 2005
19 years agoIDP2005  :
7.00
       Variation: March 31st, 2005
19 years agoIDP234  :
7.02
       Variation: March 31st, 2005
19 years agoIDP2355  :
7.03
       Variation: March 31st, 2005
19 years agoIDP2524  :
7.02
       Variation: March 31st, 2005
19 years agoIDP2585  :
7.01
       Variation: March 31st, 2005
19 years agoIDP311  :
7.02
       Variation: March 31st, 2005
19 years agoIDP365  :
7.02
       Variation: March 31st, 2005
19 years agoIDP371  :
7.04
       Variation: March 31st, 2005
19 years agoIDP470  :
7.03
       Variation: March 31st, 2005
19 years agoIDP574  :
7.02
       Variation: March 31st, 2005
19 years agoIDP824  :
7.02
       Variation: March 31st, 2005
19 years agoIDP828  :
7.04
       Variation: March 31st, 2005
19 years agoIDP837  :
7.02
       Variation: March 31st, 2005
19 years agoIDP872  :
7.02
       Variation: March 31st, 2005
19 years agoIDP93  :
7.02
       Variation: March 31st, 2005
19 years agoIDP115  :
8.08
       Variation: March 31st, 2005
19 years agoIDP127  :
8.01
       Variation: March 31st, 2005
19 years agoIDP1432  :
8.08
       Variation: March 31st, 2005
19 years agoIDP1449  :
8.03
       Variation: March 31st, 2005
19 years agoIDP1485  :
8.04
       Variation: March 31st, 2005
19 years agoIDP1495  :
8.07
       Variation: March 31st, 2005
19 years agoIDP1629  :
8.01
       Variation: March 31st, 2005
19 years agoIDP1685  :
8.04
       Variation: March 31st, 2005
19 years agoIDP179  :
8.03
       Variation: March 31st, 2005
19 years agoIDP1987  :
8.01
       Variation: March 31st, 2005
19 years agoIDP2146  :
8.06
       Variation: March 31st, 2005
19 years agoIDP235  :
8.01
       Variation: March 31st, 2005
19 years agoIDP2354  :
8.02
       Variation: March 31st, 2005
19 years agoIDP2454  :
8.05
       Variation: March 31st, 2005
19 years agoIDP2461  :
8.04
       Variation: March 31st, 2005
19 years agoIDP2593b  :
8.03
       Variation: March 31st, 2005
19 years agoIDP289  :
8.03
       Variation: March 31st, 2005
19 years agoIDP31  :
8.04
       Variation: March 31st, 2005
19 years agomagi52178  :
8.02
       Variation: March 31st, 2005
19 years agoIDP378  :
8.03
       Variation: March 31st, 2005
19 years agoIDP40  :
8.08
       Variation: March 31st, 2005
19 years agoIDP400  :
8.07
       Variation: March 31st, 2005
19 years agoIDP421  :
8.06
       Variation: March 31st, 2005
19 years agoIDP422  :
8.02
       Variation: March 31st, 2005
19 years agoIDP500  :
8.00
       Variation: March 31st, 2005
19 years agoIDP551  :
8.02
       Variation: March 31st, 2005
19 years agoIDP57  :
8.07
       Variation: March 31st, 2005
19 years agoIDP605  :
8.05
       Variation: March 31st, 2005
19 years agoIDP617  :
8.02
       Variation: March 31st, 2005
19 years agoIDP652  :
8.08
       Variation: March 31st, 2005
19 years agoIDP698  :
8.08
       Variation: March 31st, 2005
19 years agoIDP811  :
8.03
       Variation: March 31st, 2005
19 years agoIDP830  :
8.08
       Variation: March 31st, 2005
19 years agoIDP848  :
8.08
       Variation: March 31st, 2005
19 years agoIDP1465  :
9.06
       Variation: March 31st, 2005
19 years agoIDP1488  :
9.07
       Variation: March 31st, 2005
19 years agoIDP159  :
9.06
       Variation: March 31st, 2005
19 years agoIDP1694  :
9.03
       Variation: March 31st, 2005
19 years agoIDP189  :
9.04
       Variation: March 31st, 2005
19 years agoIDP192  :
9.06
       Variation: March 31st, 2005
19 years agoIDP1976  :
9.02
       Variation: March 31st, 2005
19 years agoIDP214  :
9.06
       Variation: March 31st, 2005
19 years agoIDP2408  :
9.06
       Variation: March 31st, 2005
19 years agoIDP2479  :
9.03
       Variation: March 31st, 2005
19 years agoIDP2506  :
9.06
       Variation: March 31st, 2005
19 years agoIDP2582b  :
9.04
       Variation: March 31st, 2005
19 years agoIDP312  :
9.03
       Variation: March 31st, 2005
19 years agoIDP523  :
9.03
       Variation: March 31st, 2005
19 years agoIDP529  :
9.02
       Variation: March 31st, 2005
19 years agoIDP593  :
9.03
       Variation: March 31st, 2005
19 years agoIDP702  :
9.04
       Variation: March 31st, 2005
19 years agoIDP838  :
9.07
       Variation: March 31st, 2005
19 years agoIDP1486  :
10.00
       Variation: March 31st, 2005
19 years agoIDP1502  :
10.03
       Variation: March 31st, 2005
19 years agoIDP1616  :
10.03
       Variation: March 31st, 2005
19 years agoIDP165  :
10.02
       Variation: March 31st, 2005
19 years agoIDP1682  :
10.04
       Variation: March 31st, 2005
19 years agoIDP1990  :
10.04
       Variation: March 31st, 2005
19 years agoIDP2  :
10.04
       Variation: March 31st, 2005
19 years agoIDP2430a  :
10.03
       Variation: March 31st, 2005
19 years agoIDP2434  :
10.02
       Variation: March 31st, 2005
19 years agoIDP2514a  :
10.02
       Variation: March 31st, 2005
19 years agoIDP268  :
10.06
       Variation: March 31st, 2005
19 years agoIDP316  :
10.02
       Variation: March 31st, 2005
19 years agoIDP377  :
10.06
       Variation: March 31st, 2005
19 years agoIDP3832  :
10.03
       Variation: March 31st, 2005
19 years agoIDP409  :
10.03
       Variation: March 31st, 2005
19 years agoIDP435  :
10.06
       Variation: March 31st, 2005
19 years agoIDP439  :
10.03
       Variation: March 31st, 2005
19 years agoIDP443  :
10.04
       Variation: March 31st, 2005
19 years agoIDP573  :
10.03
       Variation: March 31st, 2005
19 years agoIDP580  :
10.00
       Variation: March 31st, 2005
19 years agoIDP586  :
10.04
       Variation: March 31st, 2005
19 years agoIDP721  :
10.04
       Variation: March 31st, 2005
19 years agoIDP743  :
10.03
       Variation: March 31st, 2005
19 years agoIDP791  :
10.03
       Variation: March 31st, 2005
19 years agoIDP841  :
10.06
       Variation: March 31st, 2005
19 years agoIDP4076  :
10.03
       Variation: March 31st, 2005
19 years agov34 virescent34:
1.01
       Variation: April 1st, 2005
19 years agoAY109583  :
2.08
       Variation: July 29th, 2004
19 years agoAY109611  :
4.10
       Variation: July 29th, 2004
19 years agoAY109712  :
2.01
       Variation: July 29th, 2004
19 years agoAY109758  :
5.00
       Variation: July 29th, 2004
19 years agoAY110411  :
10.03
       Variation: July 29th, 2004
19 years agoAY109499  :
1.06
       Variation: July 29th, 2004
19 years agoAY110356  :
1.07
       Variation: July 29th, 2004
19 years agofw1 fuzzy-wuzzy1:
 
   Peterson, PA. 2001. Sex Plant Reprod 14:117-121     Reference: September 1st, 2003
Variation: July 7th, 2004
19 years agoms48 male sterile48:
9.04
   Trimnell, M et al. 2002. MNL 76:38     Reference: September 1st, 2003
Variation: June 29th, 2004
19 years agod12 dwarf12:
8.08 - 8.09
   Neuffer, MG. 1995. Personal Communication     Reference: September 1st, 2003
Variation: June 29th, 2004
19 years agoyel*-5344 yellow*-5344:
10.00 - 10.04
       Variation: June 22nd, 2004
19 years agotpase transposase of Ac:
 
   Long, DM, et al. 1993. Mol Gen Genet. 241:627-636     Reference: June 12th, 2004
Gene Product: September 1st, 2003
19 years agov4 virescent4:
2.05
   Sprague, GF. 1990. MNL 64:110     Reference: September 1st, 2003
Variation: June 7th, 2004
19 years agoms50 male sterile50:
6.05 - 6.07
   Trimnell, M et al. 2002. MNL 76:39     Reference: September 1st, 2003
Variation: May 27th, 2004
19 years agotnpA transposase A:
 
   Schlappi, M; Smith, DL; Fedoroff, NV. 1993. Genetics. 133:1009-1021     Reference: May 20th, 2004
Gene Product: September 1st, 2003
20 years agogm*-6372 germless*6372:
 
       Variation: April 13th, 2004
20 years agouaz58a  :
4.01
       Gene Product: October 23rd, 2003
Variation: September 1st, 2003
20 years agogpm74a  :
 
       Gene Product: September 1st, 2003
20 years agoLOC100283908  :
 
       Gene Product: September 1st, 2003
20 years agoLOC100273029  :
 
       Gene Product: September 1st, 2003
20 years agoLOC103634086  :
 
       Gene Product: September 1st, 2003
20 years agogzs1 Gibberella zea silk mediated resistance1:
 
   Reid, LM et al. 1992. Can J Plant Pathol 14:211-214     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoORF170 (cp)  :
 
   Kangasjarvi, J et al. 1991. Plant Mol Biol 17:513-515     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agodes*-GG21 defective seedling GG21:
 
   Gavazzi, G; Dolfini, S; Galbiati, M; Helentjaris, T; Landoni, M; Pelucchi, N; Todesco, G. 1993. Maydica 38:265-274     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodes*-GG22 defective seedling GG22:
 
   Gavazzi, G; Dolfini, S; Galbiati, M; Helentjaris, T; Landoni, M; Pelucchi, N; Todesco, G. 1993. Maydica 38:265-274     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodes*-GG23 defective seedling GG23:
 
   Gavazzi, G; Dolfini, S; Galbiati, M; Helentjaris, T; Landoni, M; Pelucchi, N; Todesco, G. 1993. Maydica 38:265-274     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoolc1 oleic acid content1:
1.06 - 1.12
   Wright, A. 1995. Maydica 40:85-88     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agorhm2 resistance to Bipolaris maydis2:
6.00 - 6.01
   Chang, RY; Peterson, PA. 1995. J Hered 86:94-97     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoms*-6016  :
 
       Variation: September 1st, 2003
20 years agoms*-6023  :
 
       Variation: September 1st, 2003
20 years agoms*-6045  :
 
       Variation: September 1st, 2003
20 years agoms*-6053  :
 
       Variation: September 1st, 2003
20 years agoms*-6056  :
 
       Variation: September 1st, 2003
20 years agohtz3 high tryptophan zein3:
 
   Shmaraev, GE; Podolskaya, AP; Kamyshova, TV. 1994. Genetika 30:1400-1402     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agohtz2 high tryptophan zein2:
 
   Shmaraev, GE; Podolskaya, AP; Kamyshova, TV. 1994. Genetika 30:1400-1402     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodek*-MS2082  :
 
   Scanlon, MJ; Stinard, PS; James, MG; Myers, AM; Robertson, DS. 1994. Genetics 136:281-294     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodek*-MS1104  :
 
   Scanlon, MJ; Stinard, PS; James, MG; Myers, AM; Robertson, DS. 1994. Genetics 136:281-294     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodek*-MS2444  :
 
   Scanlon, MJ; Stinard, PS; James, MG; Myers, AM; Robertson, DS. 1994. Genetics 136:281-294     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodek*-MS2425  :
 
   Scanlon, MJ; Stinard, PS; James, MG; Myers, AM; Robertson, DS. 1994. Genetics 136:281-294     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agopsl32 position shift locus32:
2.07
   Damerval, C; Maurice, A; Josse, JM; de Vienne, D. 1994. Genetics 137:289-301     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agopsl45 position shift locus45:
4.03 - 4.05
   Damerval, C; Maurice, A; Josse, JM; de Vienne, D. 1994. Genetics 137:289-301     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agow*-N1834 whiteN1834:
5.05
   Neuffer, MG. 1995. Seedling and plant mutations: data from laboratory records     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agorpl3 ribosomal protein L3:
 
   Beltran-Pena, E; Ortiz-Lopez, A; Sanchez de Jimenez, E. 1995. Plant Mol Biol 28:327-336     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agorpl16 ribosomal protein L16:
 
   Beltran-Pena, E; Ortiz-Lopez, A; Sanchez de Jimenez, E. 1995. Plant Mol Biol 28:327-336     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agoben2 bentazon resistance2:
 
   Bradshaw, LD; Barrett, M; Poneleit, CG. 1994. Weed Sci 42:641-647     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agogl25 glossy25:
5.00 - 5.04
   Schnable, PS; Stinard, PS; Wen, TJ; Heinen, S; Weber, D; Schneerman, M; Zhang, L; Hansen, JD; Nikola. 1994. Maydica 39:279-287     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agosee3 senescence-enhanced3:
 
   Smart, CM; Hosken, SE; Thomas, H; Greaves, JA; Blair, BG; Schuch, W. 1995. Physiol Plant 93:673-682     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agosee4 senescence-enhanced4:
 
   Smart, CM; Hosken, SE; Thomas, H; Greaves, JA; Blair, BG; Schuch, W. 1995. Physiol Plant 93:673-682     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agoht4 Helminthosporium turcicum response4:
1.03 - 1.06
   Carson, ML. 1995. Plant Dis 79:717-720     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agozlp1 zeamatin-like protein1:
 
   Malehorn, DE; Borgmeyer, ER; Smith, CE; Shah, DM. 1994. Plant Physiol 106:1471-1481     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agoles*-35587 lesion*-35587:
 
   Johal, GS; Hulbert, SH; Briggs, SP. 1995. Disease lesion mimics of maize: A model for cell death in plants. Bioessays 17:685-692     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoles*-911 lesion*-911:
 
   Johal, GS; Hulbert, SH; Briggs, SP. 1995. Disease lesion mimics of maize: A model for cell death in plants. Bioessays 17:685-692     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoles*-1790 lesion*-1790:
 
   Johal, GS; Hulbert, SH; Briggs, SP. 1995. Disease lesion mimics of maize: A model for cell death in plants. Bioessays 17:685-692     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoles*-MO141 lesion*-MO141:
 
   Johal, GS; Hulbert, SH; Briggs, SP. 1995. Disease lesion mimics of maize: A model for cell death in plants. Bioessays 17:685-692     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoaec1 aminoethyl-L-cysteine resistant1:
 
   Azevedo, RA; Arruda, P. 1995. J Plant Physiol 145:321-326     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoaec5 aminoethyl-L-cysteine resistant5:
 
   Azevedo, RA; Arruda, P. 1995. J Plant Physiol 145:321-326     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agohmp1 humpback1:
1.00 - 1.04
   Schneeberger, RG et al. 1996. MNL 70:14     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agonl*-1517 narrow leaf*-1517:
3.00 - 3.04
   Scanlon, MJ and Freeling, M. 1996. MNL 70:15     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocsu833  :
2.05
       Variation: September 1st, 2003
20 years agocsu844  :
10.07
       Variation: September 1st, 2003
20 years agocsu877  :
9.06
       Variation: September 1st, 2003
20 years agocsu155  :
 
   Keith, CS et al. 1993. Plant Physiol 101:329-332     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocsu399  :
 
   Baysdorfer, C. 1996. Nucleotide sequence submission to dbEST     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocsu440  :
5.06
   Baysdorfer, C. 1996. Nucleotide sequence submission to dbEST     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agotrnQ (cp)  :
 
   Maier, RM; Neckermann, K; Igloi, GL; Kossel, H. 1995. J Mol Biol 251:614-628     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agotrnY (cp)  :
 
   Maier, RM; Neckermann, K; Igloi, GL; Kossel, H. 1995. J Mol Biol 251:614-628     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agoORF69 (cp)  :
 
   Maier, RM; Neckermann, K; Igloi, GL; Kossel, H. 1995. J Mol Biol 251:614-628     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agoles*-NA7145 lesionNA7145:
10.00 - 10.02
   Neuffer, MG pp.291-296 in Freeling, M. and Walbot, V.(eds). 1994.Springer-Verlag, NY     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoadr1 alcohol dehydrogenase regulator1:
 
   Lai, Y-K and Scandalios, JG. 1980. Dev Genet 1:311-324     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoamp2 aminopeptidase2:
1.07 - 1.07
   Ott, L and Scandalios, JG. 1978. Genetics 89:137-146     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agocsuU64437  :
 
       Variation: September 1st, 2003
20 years agoaph1 aphid resistance1:
 
   Chang, SH and Brewbaker, JL. 1976. The genetics of resistance to the corn leaf aphid, Rhopalosiphum maidis (Fitch). MNL 50:31-32     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocsu575(elf1A)  :
6.05
       Variation: September 1st, 2003
20 years agoatn1 anaerobic tolerant null1:
 
   Lemke-Keyes, CA and Sachs, MM. 1989. J Hered 80:316-319     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoats1 atrazine susceptible1:
8.03
   Grogan, CO et al. 1963. Crop Sci 3:451     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocsu620  :
8.03
       Variation: September 1st, 2003
20 years agoblh1 bleached1:
1.05
   Neuffer, MG. 1989. MNL 63:62-63     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agobu1 leaf burn1:
7.02
   Galinat, WC et al. 1978. MNL 52:58-59     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agobv2 brevis plant2:
 
   Piovarci, A. 1982. MNL 56:157     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agorld*-ce rolled leaf*:
 
   Chourey, PS and Mouli, C. 1975. Genetics 77:11     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodek11 defective kernel11:
4.00 - 4.05
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodek22 defective kernel22:
1.06 - 1.12
   Clark, JK and Sheridan, WF. 1986. J Hered 77:83-92     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodek24 defective kernel24:
3.00 - 3.04
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodek25 defective kernel25:
4.02 - 4.02
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodek26 defective kernel26:
5.04 - 5.09
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodek30 defective kernel30:
9.03 - 9.08
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodek31 defective kernel31:
4.07 - 4.08
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodek9 defective kernel9:
5.04 - 5.09
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodep1 defective pistils1:
6.00 - 6.08
   Micu, V and Mustyatsa, SI. 1978. Genetika 14:365-368     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodia1 diaphorase1:
2.06
   Burr, B et al. 1988. Genetics 118:519-526     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: September 1st, 2003
20 years agodia2 diaphorase 2:
1.11
   Wendel, JF, Goodman, MM, and Stuber, CW. 1986. MNL 60:109-110     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agog6 golden plant6:
9.02
   Neuffer, MG. 1987. MNL 61:51     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agogl5 glossy5:
4.03
   Emerson, RA et al. 1935. Cornell Univ Agric Exp Stn Memoir 180:1-83     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agogs1 green stripe1:
1.10
   Burnham, CR and Brink, RA. 1932. J Am Soc Agron 24:960-963     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agohcf15 high chlorophyll fluorescence15:
2.05 - 2.10
   Leto, KJ pp.317-325 in Sheridan, WF (ed). 1982.Plant Mol Biol Assoc, Charlottesville, Virginia     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agohcf26 high chlorophyll fluorescence26:
6.00 - 6.01
   Leto, KJ pp.317-325 in Sheridan, WF (ed). 1982.Plant Mol Biol Assoc, Charlottesville, Virginia     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agohcf28 high chlorophyll fluorescence28:
10.04 - 10.07
   Miles, CD et al. 1985. pp.361-365 in Steinback, KE et al. 1985.Cold Spring Harbor Laboratory, New York     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agohcf31 high chlorophyll fluorescence31:
1.00 - 1.05
   Miles, CD et al. 1985. pp.361-365 in Steinback, KE et al. 1985.Cold Spring Harbor Laboratory, New York     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoij2 iojap striping2:
1.11
   Matz, EC et al. 1992. MNL 66:107     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agol16 luteus16:
1.03
   Neuffer, MG and Beckett, JB. 1987. MNL 61:50     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agol18 luteus18:
2.05 - 2.06
   Neuffer, MG and Beckett, JB. 1987. MNL 61:50     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agol19 luteus19:
10.02 - 10.03
   Neuffer, MG and Beckett, JB. 1987. MNL 61:50     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoli1 lineate leaves1:
10.04
   Collins, GN and Kempton, JH. 1920. J Hered 11:3-6     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agomep1 modifier of embryo protein1:
5.04 - 5.05
   Schwartz, D. 1979. Mol Gen Genet 174:233-240     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agommm1 modifier of mitochondrial malate dehydrogenases1:
1.08
   Stuber, CW and Goodman, MM. 1983.ARS-ARR NC Agric Res Serv 8284, vol.     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoms12 male sterile12:
1.07
   Beadle, GW. 1932. Genetics 17:413-431     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoms17 male sterile17:
1.03
   Emerson, RA. 1932. Science 75:566     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agomsc2 mosaic2:
5.00 - 5.02
   Neuffer, MG et al. 1987. MNL 61:50-51     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agonec5 necrotic5:
4.06 - 4.11
   Neuffer, MG and Beckett, JB. 1987. MNL 61:50     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agopd1 paired rows1:
4.02
   Langham, DG. 1940. Genetics 25:88-107     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agopg11 pale green11:
6.03 - 6.04
   Rhoades, MM. 1951. Am Nat 85:105-110     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agopg13 pale green13:
 
   Shortess, DK and Amby, RP. 1979. Maydica 24:215-221     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agopg16 pale green16:
1.06 - 1.12
   Neuffer, MG and Beckett, JB. 1987. MNL 61:50     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agophp1 chloroplast phosphoprotein1:
10.03
   Burr, B et al. 1991. MNL 65:105-110     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agopm1 pale midrib1:
3.05
   Brink, RA. 1935. J Hered 26:249-251     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoppg1 pale pale green1:
5.04 - 5.09
   Neuffer, MG and Beckett, JB. 1987. MNL 61:50     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agorcm1 rectifier1:
7.02 - 7.02
   Allen, JO et al. 1989. Maydica 34:277-290     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agosbd1 sunburned1:
6.01 - 6.08
   Galinat, WC et al. 1978. MNL 52:58-59     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agosen5 soft endosperm5:
2.00 - 2.10
   Stierwalt, TR and Crane, PL. 1974. MNL 48:139-140     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agospc1 speckled1:
3.06 - 3.06
   Neuffer, MG and Sheridan, KA. 1977. MNL 51:59-60     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agospc3 speckled3:
3.05 - 3.09
   Neuffer, MG and Beckett, JB. 1987. MNL 61:50     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agotr1 two-ranked ear1:
2.02 - 2.05
   Langham, DG. 1940. Genetics 25:88-107     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov1 virescent1:
9.03
   Harpster, MH et al. 1984. Plant Mol Biol 3:59-71     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov2 virescent2:
5.08 - 5.09
   Emerson, RA. 1912. Nebr Agric Exp Stn Ann Rep 25:89-105     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov24 virescent24:
2.07
   Polacco, M. 1986. MNL 60:44-45     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov25 virescent25:
 
   Neuffer, MG and Beckett, JB. 1987. MNL 61:50     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agow11 white seedling11:
9.03
   Demerec, M. 1926. Am Nat 60:172-176     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agow16 white seedling16:
7.02
   Motto, M et al. 1983. Maydica 28:25-39     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agow17 white seedling17:
7.01
   Motto, M et al. 1983. Maydica 28:25-39     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agowrk1 wrinkled kernel1:
3.04
   Neuffer, MG et al. 1987. MNL 61:50-51     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agowt1 white tip1:
2.04
   Sprague, GF. 1990. MNL 64:110     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoyg1 yellow-green1:
5.07 - 5.08
   Eyster, WH. 1926. Science 64:22     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoys2 yellow stripe2:
1.00 - 1.05
   Pogna, NE et al. 1982. MNL 56:153-154     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agozb8 zebra crossbands8:
9.02 - 9.03
   Neuffer, MG and Sheridan, KA. 1977. MNL 51:59-60     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodek*-MS4160  :
2.05 - 2.10
   Scanlon, MJ; Stinard, PS; James, MG; Myers, AM; Robertson, DS. 1994. Genetics 136:281-294     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agolnec*-8549 luteus necrotic*-8549:
 
       Variation: September 1st, 2003
20 years agoada1 adherent anthers1:
 
   Gabay-Laughnan, SJ. 1996. Personal Comm     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoabs1 abnormal stomates1:
 
   Lambert, RJ et al. 1996. J Hered 87:389-391     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agohsp70*-chem3  :
 
   Didierjean, L et al. 1996. Planta 199:1-8     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agoubi*-chem6  :
 
   Callis, J; Bedinger, P. 1994. Proc Natl Acad Sci, USA 91:6074-6077     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agomip*-chem8  :
 
   Didierjean, L et al. 1996. Planta 199:1-8     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agogams1 gametophytic male sterile1:
2.04
   Sari-Gorla, M et al. 1996. Sex Plant Reprod 9:216-220     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agobif*-SH1606 barren inflorescence SH1606:
 
   McSteen, P and Hake, S. 1997. Maize Genetics Conference Abstracts 39     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agolbl2 leafbladeless2:
 
   Springer, N et al. 1997. Maize Genetics Conference Abstracts 39     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agogl*-SK97  :
 
   Kessler, S and Sinha, NR. 1997. MNL 71:30-31     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agobnlg1138  :
2.06
       Variation: September 1st, 2003
20 years agobnlg1401  :
9.02
       Variation: September 1st, 2003
20 years agocms-21A  :
 
   Liu, X et al. 1997. MNL 71:5-6     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoumc1001  :
7.03
       Variation: September 1st, 2003
20 years agogl*-1258  :
7.02 - 7.06
   Cook, WB and Miles, CD. 1989. MNL 63:65-66     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agopd2 paired rows2:
8.04
   Szabo, VM and Burr, B. 1996. Mol Gen Genet 252:33-41     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoumc1027  :
3.06
       Variation: September 1st, 2003
20 years agodis1 distichous tassel1:
5.04
   Szabo, VM and Burr, B. 1996. Mol Gen Genet 252:33-41     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocox5 cytochrome c oxidase subunit5:
 
   Auger, DL et al. 1999. Maize Genetics Conference Abstracts 41     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agol*-4-6(4447) luteus*-4-6(4447):
 
       Variation: September 1st, 2003
20 years agogams2 gametophytic male sterile2:
 
   Sari-Gorla, M et al. 1997. Sex Plant Reprod 10:22-26     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoms36 male sterile36:
9.06 - 9.07
   Trimnell, MR et al. 1999. MNL 73:49-50     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoms37 male sterile 37:
3.08 - 3.09
   Trimnell, MR et al. 1999. MNL 73:48     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agorps13(mt) ribosomal protein S13, mitochondrion:
 
   Williams, ME et al. 1998. Curr Genet 34:221-226     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agoumc1130  :
8.05
       Variation: September 1st, 2003
20 years agoumc1150  :
 
       Variation: September 1st, 2003
20 years agoumc1176  :
10.07
       Variation: September 1st, 2003
20 years agoms38 male sterile38:
2.07 - 2.08
   Albertsen, MC et al. 1996. MNL 70:30     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoumc1249  :
10.07 - 10.07
       Variation: September 1st, 2003
20 years agoles*-3F-3330 lesion*-3F-3330:
 
       Variation: September 1st, 2003
20 years agoog*-0376 old gold stripe*-0376:
 
       Variation: September 1st, 2003
20 years agodes17 defective seedling17:
8.04 - 8.09
   Galbiati, M and Gavazzi, G. 1992. MNL 66:80     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoSc self-color:
10.06
   Kermicle, JL; Eggleston, WB; Alleman, M. 1995. Genetics 141:361-372     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoNc1 near-colorless1:
10.06
   Eggleston, WB; Alleman, M; Kermicle, JL. 1995. Genetics 141:347-360     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoNc2 near-colorless2:
10.06
   Eggleston, WB; Alleman, M; Kermicle, JL. 1995. Genetics 141:347-360     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoNc3 near-colorless3:
10.06
   Eggleston, WB; Alleman, M; Kermicle, JL. 1995. Genetics 141:347-360     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoumc1401  :
7.02
       Variation: September 1st, 2003
20 years agoumc1428  :
7.01 - 7.02
       Variation: September 1st, 2003
20 years agoumc1476  :
4.08
       Variation: September 1st, 2003
20 years agoemp1 empty pericarp1:
1.02 - 1.03
   Scanlon, MJ et al. 1992. MNL 66:8     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoumc1563  :
5.04
       Variation: September 1st, 2003
20 years agoyel*-1-7(4302-31) yellow seedling*-1-7(4302-31):
 
       Variation: September 1st, 2003
20 years agoumc1697  :
10.04
       Variation: September 1st, 2003
20 years agoumc1766  :
5.01
       Variation: September 1st, 2003
20 years agophi243966  :
3.04
       Variation: September 1st, 2003
20 years agorgh1 rough kernel1:
8.09 - 8.09
   Neuffer, MG. 1993. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agotrn1 torn1:
9.03
   Neuffer, MG. 1993. MNL 67:33     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agohcf73 high chlorophyll fluorescence73:
 
       Variation: September 1st, 2003
20 years agozpl1d zein protein 1d:
4.01
   Wilson, CM. 1991. MNL 65:91     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: September 1st, 2003
20 years agoORF42 (cp)  :
 
   Haley, J and Bogorad, L. 1990. Plant Cell 2:323-333     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agocsu39  :
4.09 - 4.09
   Baysdorfer, C. 1993. Personal communication to MaizeDB     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agosca*-csu149 short chain alcohol dehydrogenase homolog csu149:
 
   Chao, S; Baysdorfer, C; Heredia-Diaz, O; Musket, T; Xu, G; Coe, EH. 1994. Theor Appl Genet 88:717-721     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: September 1st, 2003
20 years agow*-018-3 white candidate 018-3:
1.00 - 1.12
   MGCSC. 1972. Unpublished mimeographed notes     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agow20 white seedling20:
1.06 - 1.06
   MGCSC. 1972. Unpublished mimeographed notes     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov*-5688 virescent candidate 5688:
1.00 - 1.12
   MGCSC. 1972. Unpublished mimeographed notes     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov*-8943 virescent candidate 8943:
1.00 - 1.04
   MGCSC. 1972. Unpublished mimeographed notes     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoad2 adherent2:
 
   Neuffer, MG. 1993. MNL 67:33     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agotrnM(CAU) (cp) plastid Met tDNA isoacceptor (CAU):
 
   Selden, RF et al. 1983. Plant Mol Biol 2:141-153     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agocsp1 white spot1:
 
   Neuffer, MG et al. 1997.Cold Spring Harbor Laboratory, New York     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agolld1 lethal dwarf1:
 
   Neuffer, MG et al. 1997.Cold Spring Harbor Laboratory, New York     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agomyg1 maternal yellow-green1:
 
   Mourad, G and Polacco, M. 1988. Plant Mol Biol Rep 6:193-199     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoprg1 pitted rough germless1:
5.05 - 5.05
   Scanlon, MJ et al. 1991. MNL 65:11     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoref1 reduced floury endosperm1:
3.04 - 3.05
   Scanlon, MJ et al. 1991. MNL 65:11     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agor16-I (cp) 16S ribosomal RNA gene:
 
   Schwarz, Z et al. 1981. Proc Natl Acad Sci, USA 78:4748-4752     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agowsm2 wheat streak mosaic virus resistance2:
3.05
   Simcox, K et al. 1993. MNL 67:117-118     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agowsm3 wheat streak mosaic virus resistance3:
10.04
   Neuffer, MG et al. 1997.Cold Spring Harbor Laboratory, New York     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agokri2 ketol-acid reductoisomerase2:
8.03
   Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agoblc1 bilateral coleoptile1:
 
   Tracy, WF. 2000. MNL 74:48     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agor5-I (cp) 5S ribosomal RNA gene:
 
   Strittmatter, G and Kossel, H. 1984. Nucl Acid Res 12:7633-7647     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agor5-II (cp) 5S ribosomal RNA gene:
 
   Strittmatter, G and Kossel, H. 1984. Nucl Acid Res 12:7633-7647     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agor4.5-I (cp) 4.5S ribosomal RNA gene:
 
   Strittmatter, G and Kossel, H. 1984. Nucl Acid Res 12:7633-7647     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agor4.5-II (cp) 4.5S ribosomal RNA gene:
 
   Strittmatter, G and Kossel, H. 1984. Nucl Acid Res 12:7633-7647     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agor23-I (cp) 23S ribosomal RNA gene:
 
   Strittmatter, G and Kossel, H. 1984. Nucl Acid Res 12:7633-7647     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agor16-II (cp) 16S ribosomal RNA gene:
 
   Schwarz, Z and Kossel, H. 1979. Nature 279:520-522     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agorps12-I (cp) 30S ribosomal protein S12 gene:
 
   Weglohner, W and Subramanian, AR. 1993. Plant Mol Biol 21:543-548     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agorps12-II (cp) 30S ribosomal protein S12 gene:
 
   Weglohner, W and Subramanian, AR. 1993. Plant Mol Biol 21:543-548     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agoORF62 (cp)  :
 
   Christopher, DA et al. 1992. Plant Cell 4:785-798     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agoatp6(mtNA) mitochondrial ATPase subunit 6:
 
   Kumar, R and Levings, CS. 1993. Curr Genet 23:154-159     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agonad3(mtNB) NADH dehydrogenase subunit 3:
 
   Gualberto, JM et al. 1988. Mol Gen Genet 215:118-127     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agorps12(mtT) ribosomal protein S12:
 
   Finnegan, PM and Brown, GG. 1990. Plant Cell 2:71-83     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agoatp9(mtNA) ATP synthase subunit 9:
 
   Kumar, R and Levings, CS. 1993. Curr Genet 23:154-159     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agocob(mtNB)  :
 
   Dawson, AJ et al. 1984. EMBO J 3:2107-2113     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agorps13(mtNB) ribosomal protein S13:
 
   Bland, MM et al. 1986. Mol Gen Genet 204:8-16     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agocoxI(mtNA) cytochrome c oxidase:
 
   Isaac, P et al. 1985. EMBO J 4:1617-1623     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agocoxIII(mtNA) cytochrome c oxidase subunit III:
 
   McCarty, DM et al. 1988. Nucl Acid Res 16:9873     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agocoxIII(mtNB) cytochrome c oxidase subunit III:
 
   McCarty, DM et al. 1988. Nucl Acid Res 16:9873     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agotrnD-1(mtNA) tRNA-Asp copy 1:
 
   Fauron, CMR; Casper, M. 1994. Genetics 137:875-882     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agotrnN-1(mtNA) tRNA-Asn copy 1:
 
   Dormann-Przybyl, D et al. 1986. Plant Mol Biol 7:419-431     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agotrnC(mtNA) tRNA-Cys:
 
   Fauron, CMR; Casper, M. 1994. Genetics 137:875-882     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agotrnQ(mtNA) tRNA-Gln:
 
   Fauron, CMR; Casper, M. 1994. Genetics 137:875-882     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agotrnE-1(mtNA) tRNA-Glu:
 
   Fauron, CMR; Casper, M. 1994. Genetics 137:875-882     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agotrnH(mtNA tRNA-His:
 
   Fauron, CMR; Casper, M. 1994. Genetics 137:875-882     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agotrnK(mtNA) tRNA-Lys:
 
   Fauron, CMR; Casper, M. 1994. Genetics 137:875-882     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agotrnFm(mtNA) tRNA-Met:
 
   Rodermel, S. 1992. Nucl Acid Res 20:5844     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agotrnM1-1(CAU)(mtNA) tRNA-Met copy 1:
 
   Selden, RF et al. 1983. Plant Mol Biol 2:141-153     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agotrnM2(mtNA) tRNA-Met:
 
   Selden, RF et al. 1983. Plant Mol Biol 2:141-153     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agotrnF(mtNA) tRNA-Phe:
 
   Fauron, CMR; Casper, M. 1994. Genetics 137:875-882     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agotrnP-1(UGC)(mtNA) mitochondrial tRNA-Pro copy 1:
 
   Fauron, CMR; Casper, M. 1994. Genetics 137:875-882     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agotrnS1-1(GCU)(mtNA) mitochondrial tRNA-Ser copy 1:
 
   Selden, RF et al. 1983. Plant Mol Biol 2:141-153     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agotrnS2(mtNA) tRNA-Ser:
 
   Krebbers, ET et al. 1984. Plant Mol Biol 3:13-20     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agotrnW(mtNA) tRNA-Trp:
 
   Lukens, JH and Bogorad, L. 1988. Nucl Acid Res 16:5192     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agotrnY(mtNA) tRNA-Tyr:
 
   Fauron, CMR; Casper, M. 1994. Genetics 137:875-882     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agoemb1 embryo specific1:
1.00 - 1.05
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb3 embryo specific3:
6.01 - 6.08
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb4 embryo specific4:
1.00 - 1.05
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb6 embryo specific6:
4.06 - 4.11
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb7 embryo specific7:
1.00 - 1.05
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb8 embryo specific8:
4.06 - 4.11
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb9 embryo specific9:
3.05 - 3.09
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb10 embryo specific10:
1.00 - 1.05
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb11 embryo specific11:
4.06 - 4.11
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodek32 defective kernel32:
1.00 - 1.05
   Neuffer, MG. 1992. MNL 66:39     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agohcf11 high chlorophyll fluorescence11:
 
   Miles, CD 1982. pp.75-107 in Edelman, M. 1982.Elsevier Science Publ, Amsterdam     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agohcf45 high chlorophyll fluorescence45:
 
   Miles, CD 1982. pp.75-107 in Edelman, M. 1982.Elsevier Science Publ, Amsterdam     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agohcf120 high chlorophyll fluorescence120:
 
   Taylor, WC et al. 1987. Dev Genet 8:305-320     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoatpA-2(mtNB) mitochondrial ATPase alpha subunit:
 
       Gene Product: September 1st, 2003
20 years agov7 virescent7:
6.00 - 6.08
   Carver, WA. 1927. Genetics 12:415-440     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agohcf43 high chlorophyll fluorescence43:
5.05 - 5.09
   Miles, CD et al. 1985. pp.361-365 in Steinback, KE et al. 1985.Cold Spring Harbor Laboratory, New York     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agophi082  :
7.05
   Helentjaris, T et al. 1994. MNL 68:101-104     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoblh*-N2359 bleached leafN2359:
8.04 - 8.09
   Neuffer, MG and England, DJ. 1994. MNL 68:27     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agor23-II (cp) 23S ribosomal RNA gene:
 
   Edwards, KJ and Kossel, H. 1981. Nucl Acid Res 9:2853-28-69     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agocp3 collapsed kernel3:
1.05
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agomn4 miniature seed4:
 
   Neuffer, MG and Wright, AD. 1994. MNL 68:28     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoles18 lesion18:
2.03 - 2.04
   Neuffer, MG and England, DJ. 1994. MNL 68:29     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoles19 lesion19:
2.06 - 2.07
   Neuffer, MG and England, DJ. 1994. MNL 68:29     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agopbp1 promoter binding protein1:
 
   Kano-Murakami, Y et al. 1991. Mol Gen Genet 225:203-208     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8525 embryo-specific-8525:
 
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8546 embryo specific-8546:
 
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8543 embryo specific-8543:
10.00 - 10.03
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8512 embryo specific-8512:
3.05 - 3.10
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8529 embryo specific-8529:
 
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8530 embryo specific-8530:
 
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8534 embryo specific-8534:
4.06 - 4.11
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8523 embryo specific-8523:
 
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8524 embryo specific-8524:
 
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8548 embryo specific-8548:
 
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8539 embryo specific-8539:
 
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8535 embryo specific-8535:
 
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8505 embryo specific-8505:
 
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8504 embryo specific-8504:
5.00 - 5.04
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8511 embryo specific-8511:
 
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8528 embryo specific-8528:
 
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8537 embryo specific-8537:
4.06 - 4.11
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8509 embryo specific-8509:
4.06 - 4.11
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8515 embryo specific-8515:
3.05 - 3.10
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8551 embryo specific-8551:
3.05 - 3.10
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8506 embryo specific-8506:
1.00 - 1.05
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8538 embryo specific-8538:
4.06 - 4.11
   Sheridan, WF and Clark, JK. 1993. Plant J 3:347-358     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoga*-GFS1994 gametophyte factor GFS1994:
 
   Sprague, GF. 1994. MNL 68:105     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8501 embryo specific-8501:
4.06 - 4.11
   Clark, JK and Sheridan, WF. 1991. Plant Cell 3:935-951     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8507 embryo specific-8507:
 
   Clark, JK and Sheridan, WF. 1991. Plant Cell 3:935-951     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8508 embryo specific-8508:
 
   Clark, JK and Sheridan, WF. 1991. Plant Cell 3:935-951     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8510 embryo specific-8510:
 
   Clark, JK and Sheridan, WF. 1991. Plant Cell 3:935-951     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8526 embryo specific-8526:
 
   Clark, JK and Sheridan, WF. 1991. Plant Cell 3:935-951     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8527 embryo specific-8527:
 
   Clark, JK and Sheridan, WF. 1991. Plant Cell 3:935-951     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8532 embryo specific-8532:
3.05 - 3.10
   Clark, JK and Sheridan, WF. 1991. Plant Cell 3:935-951     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8533 embryo specific-8533:
 
   Clark, JK and Sheridan, WF. 1991. Plant Cell 3:935-951     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8536 embryo specific-8536:
 
   Clark, JK and Sheridan, WF. 1991. Plant Cell 3:935-951     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8541 embryo specific-8541:
 
   Clark, JK and Sheridan, WF. 1991. Plant Cell 3:935-951     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8542 embryo specific-8542:
 
   Clark, JK and Sheridan, WF. 1991. Plant Cell 3:935-951     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8544 embryo specific-8544:
 
   Clark, JK and Sheridan, WF. 1991. Plant Cell 3:935-951     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoemb*-8550 embryo specific-8550:
1.00 - 1.05
   Clark, JK and Sheridan, WF. 1991. Plant Cell 3:935-951     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agochs1 chitin synthase homolog1:
10.03
   Helentjaris, T. 1994. Nucleotide sequence submission to dbEST/GenBank     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: September 1st, 2003
20 years agod*-3 dwarf candidate3:
 
   Gavazzi, G et al. 1993. MNL 67:82     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agod*-4 dwarf candidate4:
 
   Gavazzi, G et al. 1993. MNL 67:82     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agod*-8 dwarf candidate8:
 
   Gavazzi, G et al. 1993. MNL 67:82     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agod*-9 dwarf candidate9:
6.00 - 6.01
   Gavazzi, G et al. 1993. MNL 67:82     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agorps12 (cp) 30S ribosomal protein S12 gene:
 
   Weglohner, W and Subramanian, AR. 1993. Plant Mol Biol 21:543-548     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agoORF3 (mt)  :
 
   Paillard, M et al. 1985. EMBO J 4:1125-1128     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agopsaF photosystemI subunitF:
 
   Anandan, S et al. 1989. FEBS Lett 256:150-154     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agorps3(mtNA) ribosomal protein S3:
 
   Hunt, M and Newton, KJ. 1991. EMBO J 10:1045-1052     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agoers1 enhancer of rough sheath1:
 
   Becraft, PW; Freeling, M. 1994. Genetics 136:295-311     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoad*-N377B adherentN377B:
10.03 - 10.07
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoad*-N605B adherentN605B:
1.00 - 1.05
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoad*-N613B adherentN613B:
1.06 - 1.12
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoblh*-N487C bleachedN487C:
1.00 - 1.05
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocl*-N818A colorless aleuroneN818A:
5.00 - 5.04
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoo*-N1009 opaqueN1009:
1.00 - 1.04
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocp*-N1076A collapsedN1076A:
2.00 - 2.04
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocp*-N1078B collapsedN1078B:
1.00 - 1.05
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocp*-N1092A collapsedN1092A:
9.00 - 9.02
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocp*-N1104B collapsedN1104B:
7.02 - 7.06
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocp*-N1275A collapsedN1275A:
5.05 - 5.09
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocp*-N1294 collapsedN1294:
7.00 - 7.01
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agofl*-N1308A flouryN1308A:
 
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocp*-N1311C collapsedN1311C:
1.06 - 1.12
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocp*-N1313 collapsedN1313:
4.00 - 4.05
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocp*-N1369 collapsedN1369:
5.05 - 5.09
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocp*-N1381 collapsedN1381:
9.03 - 9.08
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocp*-N1385 collapsedN1385:
5.05 - 5.09
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocp*-N1393A collapsedN1393A:
1.00 - 1.05
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocp*-N1399A collapsedN1399A:
1.00 - 1.05
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocp*-N1417 collapsedN1417:
7.02 - 7.06
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocp*-N1430 collapsedN1430:
5.00 - 5.04
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocp*-N1436A collapsedN1436A:
3.05 - 3.09
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocp*-N628 collapsedN628:
1.00 - 1.05
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocp*-N863A collapsedN863A:
5.05 - 5.09
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocp*-N935 collapsedN935:
5.05 - 5.09
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agocp*-N991 collapsedN991:
1.00 - 1.05
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agod*-N1352B dwarfN1352B:
1.06 - 1.12
   Neuffer, MG. 1995. Personal Communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agod*-N155B dwarf N155B:
2.01 - 2.02
   Neuffer, MG. 1995. Personal Communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agod*-N1883 dwarfN1883:
 
   Neuffer, MG. 1995. Personal Communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agod*-N210 dwarfN210:
 
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agod*-N454A dwarfN454A:
1.06 - 1.12
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodcr*-N1053A defective crownN1053A:
3.00 - 3.04
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodcr*-N1176B defective crownN1176B:
1.00 - 1.05
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodcr*-N1233A defective crownN1233A:
2.00 - 2.03
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodcr*-N1409 defective crownN1409:
9.03 - 9.08
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodcr*-N925A defective crownN925A:
5.00 - 5.04
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agode*-N1002A defectiveN1002A:
5.00 - 5.04
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agode*-N1122A defectiveN1122A:
2.03 - 2.04
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agode*-N1126A defectiveN1126A:
3.05 - 3.09
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agode*-N1136A defectiveN1136A:
7.00 - 7.01
   Neuffer, MG. 1995. Data from laboratory: kernel mutations     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agode*-N1162 defectiveN1162:
1.00 - 1.05
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agode*-N1166 defectiveN1166:
3.05 - 3.09
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agode*-N1177A defectiveN1177A:
7.02 - 7.06
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agode*-N1196 defectiveN1196:
5.05 - 5.09
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agode*-N1202A defectiveN1202A:
1.06 - 1.12
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agode*-N1310B defectiveN1310B:
1.06 - 1.12
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agode*-N1345B defectiveN1345B:
1.00 - 1.05
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agode*-N1390A defectiveN1390A:
1.00 - 1.05
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agode*-N1400 defectiveN1400:
6.02 - 6.08
   Kowles, RV et al. 1992. Genome 35:68-77     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agode*-N1420 defectiveN1420:
1.06 - 1.12
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agode*-N660C defectiveN660C:
2.05 - 2.10
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agode*-N929 defectiveN929:
4.00 - 4.05
   Neuffer, MG. 1995. Data from laboratory: kernel mutations     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agode*-N932 defectiveN932:
3.05 - 3.09
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agode*-N978 defectiveN978:
1.06 - 1.12
   Neuffer, MG. 1995. Data from laboratory: kernel mutations     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodnt*-N1185A dentN1185A:
1.06 - 1.12
   Kowles, RV et al. 1992. Genome 35:68-77     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodsc*-N749 discoloredN749:
9.03 - 9.08
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoet*-N1001A etchedN1001A:
1.06 - 1.12
   Neuffer, MG. 1995. Data from laboratory: personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoet*-N1078A etchedN1078A:
2.05 - 2.10
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoet*-N617 etchedN617:
1.00 - 1.05
   Neuffer, MG. 1995. Data from laboratory: personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoet*-N745 etchedN745:
1.00 - 1.05
   Neuffer, MG. 1995. Data from laboratory: personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agofl*-N1163 flouryN1163:
8.01 - 8.09
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agofl*-N1208A flouryN1208A:
1.00 - 1.05
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agofl*-N1287 flouryN1287:
2.05 - 2.10
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agofl*-N1333B flouryN1333B:
5.00 - 5.04
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agofl*-N1426 flouryN1426:
2.03 - 2.04
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agogm*-N1311B germlessN1311B:
3.05 - 3.09
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agogm*-N1312 germlessN1312:
2.00 - 2.03
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agogm*-N1319B germlessN1319B:
9.03 - 9.08
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agogm*-N1390C germlessN1390C:
1.00 - 1.05
   Neuffer, MG. 1995. Data from laboratory: personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agogs*-N163B greenstripeN163B:
10.03 - 10.04
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agol*-N113 luteusN113:
6.02 - 6.08
   Neuffer, MG. 1995. Personal Communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agol*-N129 luteusN129:
1.06 - 1.12
   Harpster, MH et al. 1984. Plant Mol Biol 3:59-71     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agol*-N1838 luteusN1838:
5.00 - 5.04
   Neuffer, MG. 1995. Personal Communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agol*-N1878 luteusN1878:
10.03
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agol*-N1879 luteusN1879:
10.04 - 10.07
   Neuffer, MG. 1995. Personal Communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agol*-N1908 luteusN1908:
10.07
   Neuffer, MG. 1995. Personal Communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agol*-N195 luteusN195:
10.04 - 10.07
   Neuffer, MG. 1995. Personal Communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agol*-N31 luteusN31:
10.04 - 10.07
   Neuffer, MG. 1995. Personal Communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agol*-N392A luteusN392A:
10.04 - 10.07
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agol*-N612B luteusN612B:
6.02 - 6.08
   Neuffer, MG. 1995. Personal Communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agol*-N62 luteusN62:
6.02 - 6.08
   Neuffer, MG. 1995. Personal Communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoles20 lesion20:
1.06
   Neuffer, MG and England, DJ. 1995. MNL 69:43     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agomn*-N1120A miniatureN1120A:
2.05 - 2.10
   Neuffer, MG. 1995. Data from laboratory: personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agonec*-N1119B necroticN1119B:
2.00 - 2.03
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agonec*-N1487 necroticN1487:
4.06 - 4.11
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agonec*-N193 necroticN193:
4.06 - 4.11
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agonec*-N562 necroticN562:
4.00 - 4.05
   Beckett, JB. 1984. MNL 58:73-74     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agonec*-N673B necroticN673B:
4.00 - 4.05
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agonec*-N720C necroticN720C:
3.05 - 3.09
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoo*-N1046 opaqueN1046:
10.00 - 10.02
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoo*-N1172A opaqueN1172A:
1.06 - 1.12
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoo*-N1189A opaqueN1189A:
2.00 - 2.04
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoo*-N1195A opaqueN1195A:
2.08 - 2.09
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoo*-N1228 opaqueN1228:
4.00 - 4.05
   Kowles, RV et al. 1992. Genome 35:68-77     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoo*-N1298 opaqueN1298:
7.02 - 7.06
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoo*-N1310A opaqueN1310A:
7.02 - 7.06
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoo*-N1320A opaqueN1320A:
6.02 - 6.08
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoo*-N1384A opaqueN1384A:
6.02 - 6.08
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoo*-N1422 opaqueN1422:
10.04 - 10.07
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agopg*-N1822A palegreenN1822A:
1.06 - 1.12
   Neuffer, MG. 1972. MNL 46:137-138     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agopg*-N1881 palegreenN1881:
4.00 - 4.05
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agopg*-N1885 palegreenN1885:
6.04 - 6.05
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agopg*-N296A palegreenN296A:
 
   Neuffer, MG. 1995. Personal communication-mutant collection     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agopg*-N408C palegreenN408C:
5.05 - 5.09
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agopg*-N484A palegreenN484A:
1.00 - 1.05
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agopg*-N590B palegreenN590B:
7.02
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agopg*-N660A palegreenN660A:
9.03 - 9.08
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agopg*-N673A palegreenN673A:
4.00 - 4.05
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agopg*-N71A palegreenN71A:
 
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoppg2 pale palegreen2:
1.05
   Neuffer, MG. 1995. Personal communication-mutant collection     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agopr*-N850 red aleuroneN850:
5.05 - 5.09
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoptd*-N1425A pittedN1425A:
6.02 - 6.08
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoptd*-N660E pittedN660E:
2.02 - 2.03
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoptd*-N923 pittedN923:
1.00 - 1.05
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agorgh*-N1060 roughN1060:
3.05 - 3.09
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agorgh*-N1105A roughN1105A:
4.06 - 4.11
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agorgh*-N799A roughN799A:
10.03 - 10.07
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agosh*-N1320B shrunkenN1320B:
6.02 - 6.08
   Kowles, RV et al. 1992. Genome 35:68-77     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agosh*-N1341 shrunkenN1341:
7.02 - 7.06
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agosh*-N1519B shrunkenN1519B:
4.00 - 4.05
   Kowles, RV et al. 1992. Genome 35:68-77     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agosh*-N887A shrunkenN887A:
5.04 - 5.05
   Neuffer, MG. 1995. Kernel mutations: from M.G. Neuffer laboratory data     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agosi*-N1323 silkyN1323:
3.00 - 3.04
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agosmk*-N1057A small kernelN1057A:
1.00 - 1.05
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agosmk*-N1168A small kernelN1168A:
3.05 - 3.09
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agosmk*-N1230 small kernelN1230:
3.04 - 3.05
   Neuffer, MG and Sheridan, WF. 1980. Genetics 95:929-944     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agosmp*-N1324B small plantN1324B:
3.05 - 3.09
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agosmp*-N272A small plantN272A:
6.02 - 6.08
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agosmp*-N586B small plantN586B:
7.02 - 7.06
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agosms*-N146C small seedlingN146C:
5.05 - 5.09
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agospc*-N357A speckledN357A:
7.03 - 7.05
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov*-N114A virescentN114A:
10.04 - 10.07
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov33 virescent33:
3.06
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov*-N1806 virescentN1806:
1.06 - 1.12
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov*-N1871 virescentN1871:
9.03 - 9.08
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov*-N245 virescentN245:
1.06 - 1.12
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov*-N26 virescentN26:
5.05 - 5.09
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov*-N29 virescentN29:
8.01 - 8.09
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov*-N308 virescentN308:
5.05 - 5.09
   Shadley, J and Weber, DF. 1984. MNL 58:160-161     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov*-N354B virescentN354B:
10.04 - 10.07
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov*-N378A virescentN378A:
4.06 - 4.11
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov*-N470A virescentN470A:
10.04 - 10.05
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov*-N473B virescentN473B:
5.05 - 5.09
   Shadley, J and Weber, DF. 1984. MNL 58:160-161     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov*-N53A virescentN53A:
9.03 - 9.04
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov35 virescent35:
1.05 - 1.06
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov*-N634A virescentN634A:
6.02 - 6.08
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov*-N69A virescentN69A:
6.02 - 6.08
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov*-N735 virescentN735:
5.05 - 5.09
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov*-N779A virescentN779A:
8.04 - 8.09
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov*-N806C virescentN806C:
9.03 - 9.08
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agov*-N829A virescentN829A:
9.00 - 9.01
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agovp*-N1136B viviparousN1136B:
1.00 - 1.05
   Kowles, RV et al. 1992. Genome 35:68-77     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agovsr*-N716 virescent stripedN716:
 
   Neuffer, MG. 1995. Dominant mutations--data from laboratory records     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agow*-N1126B whiteN1126B:
5.05 - 5.09
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agow*-N1830 whiteN1830:
9.00 - 9.02
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agow*-N1854 whiteN1854:
9.01
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agow*-N1865 whiteN1865:
9.00 - 9.01
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agow*-N1890 whiteN1890:
1.06 - 1.12
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agow*-N24 whiteN24:
10.04 - 10.06
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agow*-N278A whiteN278A:
6.02 - 6.08
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agow*-N346 whiteN346:
2.05 - 2.10
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agow*-N42 whiteN42:
7.00 - 7.01
   Neuffer, MG. 1995. Seedling and plant mutations: data from laboratory records     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agow*-N547A whiteN547A:
1.06 - 1.12
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agow*-N627B whiteN627B:
9.00 - 9.02
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agowl*-N1803 white luteusN1803:
9.00 - 9.02
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agowl*-N1831 white luteusN1831:
1.06 - 1.12
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agowl*-N1857 white luteusN1857:
9.00 - 9.02
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agowlu7 white luteus7:
1.05 - 1.05
   Neuffer, MG. 1995. white luteus mutations: data from laboratory records     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agowl*-N311B white luteusN311B:
4.06 - 4.11
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agowl*-N358A white luteusN358A:
6.02 - 6.08
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agowl*-N362B white luteusN362B:
6.02 - 6.08
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agowl*-N4 white luteusN4:
3.05 - 3.09
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agowl*-N44 white luteusN44:
5.00 - 5.04
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agowl*-N47 white luteusN47:
1.06 - 1.12
   Harpster, MH et al. 1984. Plant Mol Biol 3:59-71     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agowl*-N60 white luteusN60:
1.06 - 1.12
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agowl*-N709B white luteusN709B:
1.06 - 1.12
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agowst*-N1877 white stripe*-N1877:
 
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agowst*-N173B white stripeN173B:
10.05 - 10.06
   Neuffer, MG. 1995. Lab data, seedling and plant mutations     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agowst*-N413A white stripeN413A:
4.00 - 4.05
   Neuffer, MG. 1994. Personal communication     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agowst*-N548 white stripeN548:
10.05 - 10.06
   Neuffer, MG. 1995. Lab data, seedling and plant mutations     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agowt*-N650A white tipN650A:
1.00 - 1.05
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoyg*-N2448 yellowgreenN2448:
1.02 - 1.05
   Neuffer, MG and England, DJ. 1994. MNL 68:27     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agozn*-N571D zebra necroticN571D:
5.05 - 5.09
   Neuffer, MG and England, DJ. 1995. MNL 69:43-46     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agosdb1 spermidine binding protein1:
 
   Tassoni, A et al. 2002. Plant Physiol 128:1303-1312     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agodek*-MS6214 defective kernelMS6214:
 
   Scanlon, MJ et al. 1991. MNL 65:11     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoym23  :
 
   Leon, P et al. 1989. Nucl Acid Res 17:4089-4099     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agohsp70*-X78415 heat shock protein70*--X78415:
 
   Rochester, DE et al. 1986. EMBO J 5:451-458     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: September 1st, 2003
20 years agocsu225  :
6.05
   Baysdorfer, C. 1994. cDNA sequence submission to dbEST     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agouaz10  :
1.06
       Variation: September 1st, 2003
20 years agouaz105  :
 
   Helentjaris, T. 1994. Unpublished submission to MaizeDB     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agouaz106  :
 
   Helentjaris, T. 1994. Unpublished submission to MaizeDB     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agouaz107  :
 
   Helentjaris, T. 1994. Unpublished submission to MaizeDB     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agouaz108  :
 
   Helentjaris, T. 1994. Unpublished submission to MaizeDB     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agouaz11  :
 
   Helentjaris, T. 1994. Unpublished submission to MaizeDB     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agorpl7*-rsp81  :
 
   Habben, JE; Kirleis, AW; Larkins, BA. 1993. Plant Mol Biol 23:825-838     Reference: September 1st, 2003
Gene Product: September 1st, 2003
Variation: September 1st, 2003
20 years agouaz240  :
 
   Helentjaris, T. 1994. Unpublished submission to MaizeDB     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agouaz31  :
 
       Variation: September 1st, 2003
20 years agouaz86  :
 
       Variation: September 1st, 2003
20 years agouazrsp111  :
 
   Helentjaris, T et al. 1994. MNL 68:101-104     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agouazrsp35  :
 
   Helentjaris, T et al. 1994. MNL 68:101-104     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agouazrsp37  :
 
   Habben, JE; Kirleis, AW; Larkins, BA. 1993. Plant Mol Biol 23:825-838     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agouazrsp96  :
 
   Helentjaris, T et al. 1994. MNL 68:101-104     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agouazspf1  :
 
   Helentjaris, T. 1994. Unpublished submission to MaizeDB     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agouazspf11  :
 
   Helentjaris, T. 1994. Unpublished submission to MaizeDB     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agouazspf14  :
 
   Helentjaris, T. 1994. Unpublished submission to MaizeDB     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agouazspf18  :
 
   Helentjaris, T. 1994. Unpublished submission to MaizeDB     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agouazspf20  :
 
   Helentjaris, T. 1994. Unpublished submission to MaizeDB     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agouazspf24  :
 
   Helentjaris, T. 1994. Unpublished submission to MaizeDB     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agouazspf27  :
 
   Helentjaris, T. 1994. Unpublished submission to MaizeDB     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agouazspf34  :
 
   Helentjaris, T. 1994. Unpublished submission to MaizeDB     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agouazspf8  :
 
   Helentjaris, T. 1994. Unpublished submission to MaizeDB     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agorea1 red embryonic axis1:
3.05 - 3.06
   Gavazzi, G; Dolfini, S; Galbiati, M; Helentjaris, T; Landoni, M; Pelucchi, N; Todesco, G. 1993. Maydica 38:265-274     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agoy-vp*-8102 white viviparous 8102:
1.01 - 1.02
       Variation: September 1st, 2003
20 years agoyg*-W23 yellowgreen*-W23:
3.04 - 3.10
       Variation: September 1st, 2003
20 years agow*-062-3 white*-062-3:
3.00 - 3.10
       Variation: September 1st, 2003
20 years agov*-8609 virescent*-8609:
3.04 - 3.10
       Variation: September 1st, 2003
20 years agopg2 pale green2:
3.05 - 3.06
   Demerec, M. 1925. Genetics 10:318-344     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agofrz1 frazzled1:
 
   Pettem, FD. 1957. MNL 31:29     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agodp*-4301-43 distal pale*-4301-43:
 
       Variation: September 1st, 2003
20 years agow*-9005 white*-9005:
 
       Variation: September 1st, 2003
20 years agonec*-3-9c Dominant Necrotic*-3-9c:
 
       Variation: September 1st, 2003
20 years agovms*-8522 virescent mosaic*-8522:
 
       Variation: September 1st, 2003
20 years agoyel*-7285 yellow*-7285:
 
       Variation: September 1st, 2003
20 years agoyel*-8631 Yellow*-8631:
 
       Variation: September 1st, 2003
20 years agoyel*-024-5 yellow*-024-5:
8.04 - 8.09
       Variation: September 1st, 2003
20 years agodp*-8925 distal pale*-8925:
 
       Variation: September 1st, 2003
20 years agov32 virescent32:
1.05
       Variation: September 1st, 2003
20 years agov*-8574 virescent*-8574:
10.04 - 10.07
       Variation: September 1st, 2003
20 years agosr5 striate5:
2.04
   Carson, C. 2002. Personal communication to MaizeDB     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agol20 luteus20:
4.07 - 4.09
   Carson, C. 2002. Personal communication to MaizeDB     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agonec*-8624 necrotic*-8624:
 
       Variation: September 1st, 2003
20 years agonec*-T5-9(5614) necrotic*-5-9(5614):
5.00 - 5.09
       Variation: September 1st, 2003
20 years agonec*-8376 necrotic*-8376:
5.00 - 5.09
       Variation: September 1st, 2003
20 years agov*-6373 virescent*-6373:
 
       Variation: September 1st, 2003
20 years agow*-021-7 white*-021-7:
5.00 - 5.04
       Variation: September 1st, 2003
20 years agol*-4923 luteus*-4923:
 
       Variation: September 1st, 2003
20 years agoyel*-039-13 yellow*-039-13:
 
       Variation: September 1st, 2003
20 years agov*-8647 virescent*-8647:
7.02
       Variation: September 1st, 2003
20 years agoyel*-7748 yellow*-7748:
 
       Variation: September 1st, 2003
20 years agow*-8889 white*-8889:
9.03 - 9.08
       Variation: September 1st, 2003
20 years agow*-8950 white*-8950:
 
       Variation: September 1st, 2003
20 years agow*-9000 white*-9000:
9.01
       Variation: September 1st, 2003
20 years agoygzb*-5588 yellow green zebra*-5588:
9.00 - 9.02
       Variation: September 1st, 2003
20 years agoyel*-8721 yellow*-8721:
10.00 - 10.04
       Variation: September 1st, 2003
20 years agosur1 sulfonylurea herbicide response1:
 
   Green, JM and Ulrich, JF. 1993. Weed Sci 41:508-516     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agosht1 susceptible to H. turcicum1:
 
   Simcox, KD; Bennetzen, JL. 1993. Phytopathology 83:1326-1330     Reference: September 1st, 2003
Variation: September 1st, 2003
20 years agomat-r(mtNA) maturase related:
 
   Thomson, MC; Macfarlane, JL; Beagley, CT; Wolstenholme, DR. 1994. Nucl Acid Res 22:5745-5752     Reference: September 1st, 2003
Gene Product: September 1st, 2003
20 years agomtr1 methyltryptophan resistant1:
 
   Kang, KK; Kameya, T. 1993. Euphytica 69:95-101     Reference: September 1st, 2003
Variation: September 1st, 2003

Return to the homepage