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MaASR 基因作为拟南芥中多种干旱胁迫响应途径的关键组成部分。

The MaASR gene as a crucial component in multiple drought stress response pathways in Arabidopsis.

机构信息

Key Laboratory of Biology and Genetic Resources of Tropical Crops, Ministry of Agriculture, Institute of Tropical Bioscience and Biotechnology, Chinese Academy of Tropical Agricultural Sciences, Haikou, 571101, Hainan, China,

出版信息

Funct Integr Genomics. 2015 Mar;15(2):247-60. doi: 10.1007/s10142-014-0415-y. Epub 2014 Nov 21.

Abstract

Abscisic acid (ABA)-, stress-, and ripening-induced (ASR) proteins are involved in abiotic stress responses. However, the exact molecular mechanism underlying their function remains unclear. In this study, we report that MaASR expression was induced by drought stress and MaASR overexpression in Arabidopsis strongly enhanced drought stress tolerance. Physiological analyses indicated that transgenic lines had higher plant survival rates, seed germination rates, and leaf proline content and lower water loss rates (WLR) and malondialdehyde (MDA) content. MaASR-overexpressing lines also showed smaller leaves and reduced sensitivity to ABA. Further, microarray and chromatin immunoprecipitation-based sequencing (ChIP-seq) analysis revealed that MaASR participates in regulating photosynthesis, respiration, carbohydrate and phytohormone metabolism, and signal transduction to confer plants with enhanced drought stress tolerance. Direct interactions of MaASR with promoters for the hexose transporter and Rho GTPase-activating protein (RhoGAP) genes were confirmed by electrophoresis mobility shift array (EMSA) analysis. Our results indicate that MaASR acts as a crucial regulator of photosynthesis, respiration, carbohydrate and phytohormone metabolism, and signal transduction to mediate drought stress tolerance.

摘要

脱落酸(ABA)、胁迫和成熟诱导(ASR)蛋白参与非生物胁迫反应。然而,其功能的确切分子机制尚不清楚。在本研究中,我们报告了 MaASR 的表达受干旱胁迫诱导,拟南芥中 MaASR 的过表达强烈增强了干旱胁迫耐受性。生理分析表明,转基因系的植物存活率、种子发芽率和叶片脯氨酸含量较高,水分损失率(WLR)和丙二醛(MDA)含量较低。MaASR 过表达系的叶片也较小,对 ABA 的敏感性降低。此外,通过微阵列和染色质免疫沉淀测序(ChIP-seq)分析表明,MaASR 参与调节光合作用、呼吸作用、碳水化合物和植物激素代谢以及信号转导,从而赋予植物增强的干旱胁迫耐受性。MaASR 与己糖转运蛋白和 Rho GTP 酶激活蛋白(RhoGAP)基因启动子之间的直接相互作用通过电泳迁移率变动分析(EMSA)得到证实。我们的研究结果表明,MaASR 作为光合作用、呼吸作用、碳水化合物和植物激素代谢以及信号转导的关键调节因子,介导干旱胁迫耐受性。

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