Department of Plant Biotechnology, Korea University, Seongbuk-Gu, Seoul, 02841, Republic of Korea.
Department of Plant Biotechnology, Korea University, Seongbuk-Gu, Seoul, 02841, Republic of Korea; Department of Plant Resources, Kongju National University, Yesan, Chungnam, 32439, Republic of Korea.
Plant Physiol Biochem. 2021 Feb;159:400-414. doi: 10.1016/j.plaphy.2020.11.014. Epub 2020 Nov 18.
Abscisic acid-, stress-, and ripening-induced (ASR) proteins play an important role in protecting plants against adverse environmental conditions. Here, we identified 24 ASR genes in the wheat genome and analyzed their characteristics. Among these, five ASR genes highly induced by abscisic acid (ABA) and polyethylene glycol were cloned and further characterized. The TaASR genes were expressed in response to different abiotic stresses and ABA and were found to be localized in the nucleus and plasma membrane of transformed tobacco cells. Brachypodium distachyon transgenic plants overexpressing TaASR2D showed enhanced drought tolerance by regulating leaf transpiration. The expression levels of stress-related and ABA-responsive genes were higher in transgenic plants than in wild-type plants under drought stress conditions. Moreover, overexpression of TaASR2D increased the levels of both endogenous ABA and hydrogen peroxide in response to drought stress, and these plants showed hypersensitivity to exogenous ABA at the germination stage. Furthermore, plants overexpressing TaASR2D showed increased stomatal closure. Further analysis revealed that TaASR2D interacts with ABA biosynthesis and stress-related proteins in yeast and tobacco plants. Collectively, these findings indicate that TaASR2D plays an important role in the response of plants to drought stress by regulating the ABA biosynthesis pathway and redox homeostasis system.
脱落酸、胁迫和成熟诱导(ASR)蛋白在保护植物免受不利环境条件方面起着重要作用。在这里,我们在小麦基因组中鉴定了 24 个 ASR 基因,并分析了它们的特征。其中,克隆并进一步表征了 5 个对脱落酸(ABA)和聚乙二醇高度诱导的 TaASR 基因。TaASR 基因在响应不同的非生物胁迫和 ABA 时表达,并发现它们定位于转化烟草细胞的核和质膜中。过表达 TaASR2D 的拟南芥转基因植物通过调节叶片蒸腾来提高耐旱性。在干旱胁迫条件下,转基因植物中与胁迫相关和 ABA 响应的基因的表达水平高于野生型植物。此外,过表达 TaASR2D 增加了内源 ABA 和过氧化氢的水平,以响应干旱胁迫,这些植物在萌发阶段对外源 ABA 表现出超敏性。此外,过表达 TaASR2D 的植物表现出气孔关闭增加。进一步的分析表明,TaASR2D 在酵母和烟草植物中与 ABA 生物合成和应激相关蛋白相互作用。总之,这些发现表明 TaASR2D 通过调节 ABA 生物合成途径和氧化还原稳态系统在植物对干旱胁迫的响应中起着重要作用。