Literature DB >> 26908760

Genome-Wide Mapping of Targets of Maize Histone Deacetylase HDA101 Reveals Its Function and Regulatory Mechanism during Seed Development.

Hua Yang1, Xinye Liu1, Mingming Xin1, Jinkun Du1, Zhaorong Hu1, HuiRu Peng1, Vincenzo Rossi2, Qixin Sun1, Zhongfu Ni1, Yingyin Yao3.   

Abstract

Histone deacetylases (HDACs) regulate histone acetylation levels by removing the acetyl group from lysine residues. The maize (Zea mays) HDACHDA101 influences several aspects of development, including kernel size; however, the molecular mechanism by which HDA101 affects kernel development remains unknown. In this study, we find that HDA101 regulates the expression of transfer cell-specific genes, suggesting that their misregulation may be associated with the defects in differentiation of endosperm transfer cells and smaller kernels observed in hda101 mutants. To investigate HDA101 function during the early stages of seed development, we performed genome-wide mapping of HDA101 binding sites. We observed that, like mammalian HDACs, HDA101 mainly targets highly and intermediately expressed genes. Although loss of HDA101 can induce histone hyperacetylation of its direct targets, this often does not involve variation in transcript levels. A small subset of inactive genes that must be negatively regulated during kernel development is also targeted by HDA101 and its loss leads to hyperacetylation and increased expression of these inactive genes. Finally, we report that HDA101 interacts with members of different chromatin remodeling complexes, such as NFC103/MSI1 and SNL1/SIN3-like protein corepressors. Taken together, our results reveal a complex genetic network regulated by HDA101 during seed development and provide insight into the different mechanisms of HDA101-mediated regulation of transcriptionally active and inactive genes.
© 2016 American Society of Plant Biologists. All rights reserved.

Entities:  

Mesh:

Substances:

Year:  2016        PMID: 26908760      PMCID: PMC4826005          DOI: 10.1105/tpc.15.00691

Source DB:  PubMed          Journal:  Plant Cell        ISSN: 1040-4651            Impact factor:   11.277


  82 in total

1.  rgf1, a mutation reducing grain filling in maize through effects on basal endosperm and pedicel development.

Authors:  M Maitz; G Santandrea; Z Zhang; S Lal; L C Hannah; F Salamini; R D Thompson
Journal:  Plant J       Date:  2000-07       Impact factor: 6.417

Review 2.  Dynamics of histone acetylation in vivo. A function for acetylation turnover?

Authors:  Jakob H Waterborg
Journal:  Biochem Cell Biol       Date:  2002       Impact factor: 3.626

3.  Eaf3 chromodomain interaction with methylated H3-K36 links histone deacetylation to Pol II elongation.

Authors:  Amita A Joshi; Kevin Struhl
Journal:  Mol Cell       Date:  2005-12-22       Impact factor: 17.970

Review 4.  Transcriptional repression by histone deacetylases in plants.

Authors:  Xuncheng Liu; Songguang Yang; Minglei Zhao; Ming Luo; Chun-Wei Yu; Chia-Yang Chen; Ready Tai; Keqiang Wu
Journal:  Mol Plant       Date:  2014-03-21       Impact factor: 13.164

Review 5.  The roles of histone acetylation in seed performance and plant development.

Authors:  Zhi Wang; Hong Cao; Fengying Chen; Yongxiu Liu
Journal:  Plant Physiol Biochem       Date:  2014-09-24       Impact factor: 4.270

6.  Requirement of Hos2 histone deacetylase for gene activity in yeast.

Authors:  Amy Wang; Siavash K Kurdistani; Michael Grunstein
Journal:  Science       Date:  2002-11-15       Impact factor: 47.728

7.  Maternal gametophytic baseless1 is required for development of the central cell and early endosperm patterning in maize (Zea mays).

Authors:  José F Gutiérrez-Marcos; Liliana M Costa; Matthew M S Evans
Journal:  Genetics       Date:  2006-07-18       Impact factor: 4.562

8.  agriGO: a GO analysis toolkit for the agricultural community.

Authors:  Zhou Du; Xin Zhou; Yi Ling; Zhenhai Zhang; Zhen Su
Journal:  Nucleic Acids Res       Date:  2010-04-30       Impact factor: 16.971

9.  Genome-wide binding map of the histone deacetylase Rpd3 in yeast.

Authors:  Siavash K Kurdistani; Daniel Robyr; Saeed Tavazoie; Michael Grunstein
Journal:  Nat Genet       Date:  2002-06-24       Impact factor: 38.330

Review 10.  Physical and functional HAT/HDAC interplay regulates protein acetylation balance.

Authors:  Alessia Peserico; Cristiano Simone
Journal:  J Biomed Biotechnol       Date:  2010-12-05
View more
  23 in total

1.  Systems biology of seeds: deciphering the molecular mechanisms of seed storage, dormancy and onset of germination.

Authors:  Nese Sreenivasulu
Journal:  Plant Cell Rep       Date:  2017-04-18       Impact factor: 4.570

2.  Nitric Oxide Modulates Histone Acetylation at Stress Genes by Inhibition of Histone Deacetylases.

Authors:  Alexander Mengel; Alexandra Ageeva; Elisabeth Georgii; Jörg Bernhardt; Keqiang Wu; Jörg Durner; Christian Lindermayr
Journal:  Plant Physiol       Date:  2016-12-15       Impact factor: 8.340

Review 3.  Epigenetics and epigenomics: underlying mechanisms, relevance, and implications in crop improvement.

Authors:  Gaurav Agarwal; Himabindu Kudapa; Abirami Ramalingam; Divya Choudhary; Pallavi Sinha; Vanika Garg; Vikas K Singh; Gunvant B Patil; Manish K Pandey; Henry T Nguyen; Baozhu Guo; Ramanjulu Sunkar; Chad E Niederhuth; Rajeev K Varshney
Journal:  Funct Integr Genomics       Date:  2020-10-21       Impact factor: 3.410

4.  Wheat TaSPL8 Modulates Leaf Angle Through Auxin and Brassinosteroid Signaling.

Authors:  Kaiye Liu; Jie Cao; Kuohai Yu; Xinye Liu; Yujiao Gao; Qian Chen; Wenjia Zhang; Huiru Peng; Jinkun Du; Mingming Xin; Zhaorong Hu; Weilong Guo; Vincenzo Rossi; Zhongfu Ni; Qixin Sun; Yingyin Yao
Journal:  Plant Physiol       Date:  2019-06-17       Impact factor: 8.340

5.  Wheat miR9678 Affects Seed Germination by Generating Phased siRNAs and Modulating Abscisic Acid/Gibberellin Signaling.

Authors:  Guanghui Guo; Xinye Liu; Fenglong Sun; Jie Cao; Na Huo; Bala Wuda; Mingming Xin; Zhaorong Hu; Jinkun Du; Rui Xia; Vincenzo Rossi; Huiru Peng; Zhongfu Ni; Qixin Sun; Yingyin Yao
Journal:  Plant Cell       Date:  2018-03-22       Impact factor: 11.277

Review 6.  Molecular mechanisms of maize endosperm transfer cell development.

Authors:  Yankun Zheng
Journal:  Plant Cell Rep       Date:  2021-10-24       Impact factor: 4.570

7.  Genome-wide Target Mapping Shows Histone Deacetylase Complex1 Regulates Cell Proliferation in Cucumber Fruit.

Authors:  Zhen Zhang; Bowen Wang; Shenhao Wang; Tao Lin; Li Yang; Zunlian Zhao; Zhonghua Zhang; Sanwen Huang; Xueyong Yang
Journal:  Plant Physiol       Date:  2019-08-04       Impact factor: 8.340

8.  Meta Gene Regulatory Networks in Maize Highlight Functionally Relevant Regulatory Interactions.

Authors:  Peng Zhou; Zhi Li; Erika Magnusson; Fabio Gomez Cano; Peter A Crisp; Jaclyn M Noshay; Erich Grotewold; Candice N Hirsch; Steven P Briggs; Nathan M Springer
Journal:  Plant Cell       Date:  2020-03-17       Impact factor: 11.277

9.  Construction and Optimization of a Large Gene Coexpression Network in Maize Using RNA-Seq Data.

Authors:  Ji Huang; Stefania Vendramin; Lizhen Shi; Karen M McGinnis
Journal:  Plant Physiol       Date:  2017-08-02       Impact factor: 8.340

10.  Characteristic and evolution of HAT and HDAC genes in Gramineae genomes and their expression analysis under diverse stress in Oryza sativa.

Authors:  Jiaqi Hou; Ruifei Ren; Huangzhuo Xiao; Zhenfei Chen; Jinfu Yu; Haorui Zhang; Qipeng Shi; Haoli Hou; Shibin He; Lijia Li
Journal:  Planta       Date:  2021-02-19       Impact factor: 4.116

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.