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OsASR5 enhances drought tolerance through a stomatal closure pathway associated with ABA and H2O2 signalling in rice

脱落酸 生物 水稻 耐旱性 非生物胁迫 稻属 拟南芥 警卫室 突变体 渗透性休克 基因 植物 细胞生物学 生物化学
作者
Jinjie Li,Li Yang,Zhigang Yin,Jihong Jiang,Minghui Zhang,Xiao Guo,Zhujia Ye,Yan Zhao,Haiyan Xiong,Zhanying Zhang,Yujie Shao,Conghui Jiang,Hongliang Zhang,Gynheung An,Nam‐Chon Paek,Jauhar Ali,Zichao Li
出处
期刊:Plant Biotechnology Journal [Wiley]
卷期号:15 (2): 183-196 被引量:230
标识
DOI:10.1111/pbi.12601
摘要

Summary 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, IRAT 109 ( Oryza sativa L. ssp. japonica ), and demonstrated that overexpression of Os ASR 5 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 Os ASR 5 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 Os ASR 5 functioned as chaperone‐like protein and interacted with stress‐related HSP 40 and 2 OG ‐Fe ( II ) oxygenase domain containing proteins in yeast and plants. Taken together, we suggest that Os ASR 5 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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