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通过 MYB75 介导的 ROS 稳态和转录调控协同调节植物镉耐受性。

Synergetic modulation of plant cadmium tolerance via MYB75-mediated ROS homeostasis and transcriptional regulation.

机构信息

College of Life Sciences, Sichuan Normal University, Chengdu, China.

Plant Functional Genomics and Bioinformatics Research Center, Sichuan Normal University, Chengdu, China.

出版信息

Plant Cell Rep. 2022 Jul;41(7):1515-1530. doi: 10.1007/s00299-022-02871-0. Epub 2022 May 3.

Abstract

MYB75 enhances plant cadmium tolerance by mediating ROS homeostasis and cadmium tolerance-related genes expression. Cadmium (Cd) is a heavy metal with biological toxicity, which can be detoxified through chelation and compartmentation in plants. Transcriptional regulation mediates plant Cd tolerance by modulating these processes. However, the mechanism remains to be studied. Our results showed a previously unknown function of MYB75 transcription factor in the regulation of Cd tolerance. Cd exposure stimulates anthocyanin accumulation by raising MYB75 expression. Enhanced Cd tolerance was observed in the MYB75-overexpressing plants, whereas increased Cd sensitivity was found in the MYB75 loss-of-function mutants. Under Cd stress conditions, lower reactive oxygen species (ROS) levels were detected in MYB75-overexpressing plants than in wild type plants. In contrast, higher ROS levels were found in MYB75 loss-of-function mutants. Overexpression of MYB75 was associated with increased glutathione (GSH) and phytochelatin (PC) content under Cd exposure. Furthermore, the expression of Cd stress-related gene including ACBP2 and ABCC2 was elevated in MYB75-overexpressing plants, and this upregulation was mediated through the mechanism by which MYB75 directly bind to the promoter of ACBP2 and ABCC2. Our findings reveal an important role for MYB75 in the regulation of plant Cd tolerance via anthocyanin-mediated ROS homeostasis, and through upregulation of Cd stress-related gene at the transcriptional level.

摘要

MYB75 通过调节活性氧(ROS)稳态和镉耐性相关基因的表达来增强植物的镉耐性。镉(Cd)是一种具有生物毒性的重金属,植物可以通过螯合和区室化来解毒。转录调控通过调节这些过程来介导植物对 Cd 的耐受性。然而,其机制仍有待研究。我们的研究结果显示,MYB75 转录因子在调节 Cd 耐受性方面具有以前未知的功能。Cd 暴露通过提高 MYB75 的表达来刺激花青素的积累。过表达 MYB75 的植物表现出增强的 Cd 耐性,而 MYB75 功能丧失突变体则表现出更高的 Cd 敏感性。在 Cd 胁迫条件下,过表达 MYB75 的植物中的活性氧(ROS)水平低于野生型植物。相比之下,在 MYB75 功能丧失突变体中检测到更高的 ROS 水平。过表达 MYB75 与 Cd 暴露下谷胱甘肽(GSH)和植物螯合肽(PC)含量的增加有关。此外,Cd 应激相关基因如 ACBP2 和 ABCC2 的表达在过表达 MYB75 的植物中上调,这种上调是通过 MYB75 直接结合到 ACBP2 和 ABCC2 启动子的机制介导的。我们的研究结果揭示了 MYB75 在通过花青素介导的 ROS 稳态和转录水平上调 Cd 应激相关基因来调节植物 Cd 耐性方面的重要作用。

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