4.7 Article

A Direct Link between Abscisic Acid Sensing and the Chromatin-Remodeling ATPase BRAHMA via Core ABA Signaling Pathway Components

期刊

MOLECULAR PLANT
卷 9, 期 1, 页码 136-147

出版社

CELL PRESS
DOI: 10.1016/j.molp.2015.10.003

关键词

abscisic acid; hormone signaling; chromatin remodeling

资金

  1. Ministerio de Ciencia e Innovacion
  2. Fondo Europeo de Desarrollo Regional
  3. Consejo Superior de Investigaciones Cientificas [BIO2014-52537-R]
  4. FPI
  5. JAE-DOC
  6. National Science Foundation [MCB-0925071]
  7. Direct For Biological Sciences
  8. Div Of Molecular and Cellular Bioscience [1614355] Funding Source: National Science Foundation
  9. Div Of Molecular and Cellular Bioscience
  10. Direct For Biological Sciences [1243757] Funding Source: National Science Foundation

向作者/读者索取更多资源

Optimal response to drought is critical for plant survival and will affect biodiversity and crop performance during climate change. Mitotically heritable epigenetic or dynamic chromatin state changes have been implicated in the plant response to the drought stress hormone abscisic acid (ABA). The Arabidopsis SWI/SNF chromatin-remodeling ATPase BRAHMA (BRM) modulates response to ABA by preventing premature activation of stress response pathways during germination. We show that core ABA signaling pathway components physically interact with BRM and post-translationally modify BRM by phosphorylation/dephosphorylation. Genetic evidence suggests that BRM acts downstream of SnRK2.2/2.3 kinases, and biochemical studies identified phosphorylation sites in the C-terminal region of BRM at SnRK2 target sites that are evolutionarily conserved. Finally, the phosphomimetic BRMS1760D (S1762D) mutant displays ABA hypersensitivity. Prior studies showed that BRM resides at target loci in the ABA pathway in the presence and absence of the stimulus, but is only active in the absence of ABA. Our data suggest that SnRK2-dependent phosphorylation of BRM leads to its inhibition, and PP2CA-mediated dephosphorylation of BRM restores the ability of BRM to repress ABA response. These findings point to the presence of a rapid phosphorylation-based switch to control BRM activity; this property could be potentially harnessed to improve drought tolerance in plants.

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