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OsASR5 enhances drought tolerance through a stomatal closure pathway associated with ABA and H(2)O(2) signalling in rice

Drought is one of the major abiotic stresses that directly implicate plant growth and crop productivity. Although many genes in response to drought stress have been identified, genetic improvement to drought resistance especially in food crops is showing relatively slow progress worldwide. Here, we...

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Autores principales: Li, Jinjie, Li, Yang, Yin, Zhigang, Jiang, Jihong, Zhang, Minghui, Guo, Xiao, Ye, Zhujia, Zhao, Yan, Xiong, Haiyan, Zhang, Zhanying, Shao, Yujie, Jiang, Conghui, Zhang, Hongliang, An, Gynheung, Paek, Nam‐Chon, Ali, Jauhar, Li, Zichao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5258865/
https://www.ncbi.nlm.nih.gov/pubmed/27420922
http://dx.doi.org/10.1111/pbi.12601
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author Li, Jinjie
Li, Yang
Yin, Zhigang
Jiang, Jihong
Zhang, Minghui
Guo, Xiao
Ye, Zhujia
Zhao, Yan
Xiong, Haiyan
Zhang, Zhanying
Shao, Yujie
Jiang, Conghui
Zhang, Hongliang
An, Gynheung
Paek, Nam‐Chon
Ali, Jauhar
Li, Zichao
author_facet Li, Jinjie
Li, Yang
Yin, Zhigang
Jiang, Jihong
Zhang, Minghui
Guo, Xiao
Ye, Zhujia
Zhao, Yan
Xiong, Haiyan
Zhang, Zhanying
Shao, Yujie
Jiang, Conghui
Zhang, Hongliang
An, Gynheung
Paek, Nam‐Chon
Ali, Jauhar
Li, Zichao
author_sort Li, Jinjie
collection PubMed
description Drought is one of the major abiotic stresses that directly implicate plant growth and crop productivity. Although many genes in response to drought stress have been identified, genetic improvement to drought resistance especially in food crops is showing relatively slow progress worldwide. Here, we reported the isolation of abscisic acid, stress and ripening (ASR) genes from upland rice variety, IRAT109 (Oryza sativa L. ssp. japonica), and demonstrated that overexpression of OsASR5 enhanced osmotic tolerance in Escherichia coli and drought tolerance in Arabidopsis and rice by regulating leaf water status under drought stress conditions. Moreover, overexpression of OsASR5 in rice increased endogenous ABA level and showed hypersensitive to exogenous ABA treatment at both germination and postgermination stages. The production of H(2)O(2), a second messenger for the induction of stomatal closure in response to ABA, was activated in overexpression plants under drought stress conditions, consequently, increased stomatal closure and decreased stomatal conductance. In contrast, the loss‐of‐function mutant, osasr5, showed sensitivity to drought stress with lower relative water content under drought stress conditions. Further studies demonstrated that OsASR5 functioned as chaperone‐like protein and interacted with stress‐related HSP40 and 2OG‐Fe (II) oxygenase domain containing proteins in yeast and plants. Taken together, we suggest that OsASR5 plays multiple roles in response to drought stress by regulating ABA biosynthesis, promoting stomatal closure, as well as acting as chaperone‐like protein that possibly prevents drought stress‐related proteins from inactivation.
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spelling pubmed-52588652017-02-03 OsASR5 enhances drought tolerance through a stomatal closure pathway associated with ABA and H(2)O(2) signalling in rice Li, Jinjie Li, Yang Yin, Zhigang Jiang, Jihong Zhang, Minghui Guo, Xiao Ye, Zhujia Zhao, Yan Xiong, Haiyan Zhang, Zhanying Shao, Yujie Jiang, Conghui Zhang, Hongliang An, Gynheung Paek, Nam‐Chon Ali, Jauhar Li, Zichao Plant Biotechnol J Research Articles Drought is one of the major abiotic stresses that directly implicate plant growth and crop productivity. Although many genes in response to drought stress have been identified, genetic improvement to drought resistance especially in food crops is showing relatively slow progress worldwide. Here, we reported the isolation of abscisic acid, stress and ripening (ASR) genes from upland rice variety, IRAT109 (Oryza sativa L. ssp. japonica), and demonstrated that overexpression of OsASR5 enhanced osmotic tolerance in Escherichia coli and drought tolerance in Arabidopsis and rice by regulating leaf water status under drought stress conditions. Moreover, overexpression of OsASR5 in rice increased endogenous ABA level and showed hypersensitive to exogenous ABA treatment at both germination and postgermination stages. The production of H(2)O(2), a second messenger for the induction of stomatal closure in response to ABA, was activated in overexpression plants under drought stress conditions, consequently, increased stomatal closure and decreased stomatal conductance. In contrast, the loss‐of‐function mutant, osasr5, showed sensitivity to drought stress with lower relative water content under drought stress conditions. Further studies demonstrated that OsASR5 functioned as chaperone‐like protein and interacted with stress‐related HSP40 and 2OG‐Fe (II) oxygenase domain containing proteins in yeast and plants. Taken together, we suggest that OsASR5 plays multiple roles in response to drought stress by regulating ABA biosynthesis, promoting stomatal closure, as well as acting as chaperone‐like protein that possibly prevents drought stress‐related proteins from inactivation. John Wiley and Sons Inc. 2016-11-11 2017-02 /pmc/articles/PMC5258865/ /pubmed/27420922 http://dx.doi.org/10.1111/pbi.12601 Text en © 2016 The Authors. Plant Biotechnology Journal published by Society for Experimental Biology and The Association of Applied Biologists and John Wiley & Sons Ltd. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Li, Jinjie
Li, Yang
Yin, Zhigang
Jiang, Jihong
Zhang, Minghui
Guo, Xiao
Ye, Zhujia
Zhao, Yan
Xiong, Haiyan
Zhang, Zhanying
Shao, Yujie
Jiang, Conghui
Zhang, Hongliang
An, Gynheung
Paek, Nam‐Chon
Ali, Jauhar
Li, Zichao
OsASR5 enhances drought tolerance through a stomatal closure pathway associated with ABA and H(2)O(2) signalling in rice
title OsASR5 enhances drought tolerance through a stomatal closure pathway associated with ABA and H(2)O(2) signalling in rice
title_full OsASR5 enhances drought tolerance through a stomatal closure pathway associated with ABA and H(2)O(2) signalling in rice
title_fullStr OsASR5 enhances drought tolerance through a stomatal closure pathway associated with ABA and H(2)O(2) signalling in rice
title_full_unstemmed OsASR5 enhances drought tolerance through a stomatal closure pathway associated with ABA and H(2)O(2) signalling in rice
title_short OsASR5 enhances drought tolerance through a stomatal closure pathway associated with ABA and H(2)O(2) signalling in rice
title_sort osasr5 enhances drought tolerance through a stomatal closure pathway associated with aba and h(2)o(2) signalling in rice
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5258865/
https://www.ncbi.nlm.nih.gov/pubmed/27420922
http://dx.doi.org/10.1111/pbi.12601
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