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胁迫条件下植物中的谷胱甘肽代谢:超越活性氧解毒作用

Glutathione Metabolism in Plants under Stress: Beyond Reactive Oxygen Species Detoxification.

作者信息

Dorion Sonia, Ouellet Jasmine C, Rivoal Jean

机构信息

IRBV, Université de Montréal, 4101 rue Sherbrooke est, Montréal, QC H1X 2B2, Canada.

出版信息

Metabolites. 2021 Sep 19;11(9):641. doi: 10.3390/metabo11090641.

Abstract

Glutathione is an essential metabolite for plant life best known for its role in the control of reactive oxygen species (ROS). Glutathione is also involved in the detoxification of methylglyoxal (MG) which, much like ROS, is produced at low levels by aerobic metabolism under normal conditions. While several physiological processes depend on ROS and MG, a variety of stresses can dramatically increase their concentration leading to potentially deleterious effects. In this review, we examine the structure and the stress regulation of the pathways involved in glutathione synthesis and degradation. We provide a synthesis of the current knowledge on the glutathione-dependent glyoxalase pathway responsible for MG detoxification. We present recent developments on the organization of the glyoxalase pathway in which alternative splicing generate a number of isoforms targeted to various subcellular compartments. Stress regulation of enzymes involved in MG detoxification occurs at multiple levels. A growing number of studies show that oxidative stress promotes the covalent modification of proteins by glutathione. This post-translational modification is called -glutathionylation. It affects the function of several target proteins and is relevant to stress adaptation. We address this regulatory function in an analysis of the enzymes and pathways targeted by -glutathionylation.

摘要

谷胱甘肽是植物生命中一种重要的代谢物,因其在控制活性氧(ROS)方面的作用而最为人所知。谷胱甘肽还参与甲基乙二醛(MG)的解毒过程,与ROS一样,在正常条件下,需氧代谢会产生少量的MG。虽然一些生理过程依赖于ROS和MG,但多种胁迫会显著增加它们的浓度,从而导致潜在的有害影响。在这篇综述中,我们研究了谷胱甘肽合成和降解途径的结构及其胁迫调节。我们综合了目前关于负责MG解毒的谷胱甘肽依赖性乙二醛酶途径的知识。我们介绍了乙二醛酶途径组织方面的最新进展,其中可变剪接产生了许多靶向不同亚细胞区室的异构体。参与MG解毒的酶的胁迫调节发生在多个层面。越来越多的研究表明,氧化胁迫会促进谷胱甘肽对蛋白质的共价修饰。这种翻译后修饰被称为谷胱甘肽化。它影响多种靶蛋白的功能,与胁迫适应相关。我们在对谷胱甘肽化靶向的酶和途径的分析中探讨了这种调节功能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0197/8464934/857877a464a2/metabolites-11-00641-g001.jpg

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