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从. 中获得的质体 3-磷酸甘油酸脱氢酶的氧化还原调控的生化见解。

Biochemical insight into redox regulation of plastidial 3-phosphoglycerate dehydrogenase from .

机构信息

Laboratory for Chemistry and Life Science, Institute of Innovative Research, Tokyo Institute of Technology, Yokohama, Japan.

RIKEN Center for Sustainable Resource Science, Yokohama, Japan; Department of Chemical and Biological Sciences, Faculty of Science, Japan Women's University, Tokyo, Japan.

出版信息

J Biol Chem. 2020 Oct 30;295(44):14906-14915. doi: 10.1074/jbc.RA120.014263. Epub 2020 Aug 25.

Abstract

Thiol-based redox regulation is a post-translational protein modification for controlling enzyme activity by switching oxidation/reduction states of Cys residues. In plant cells, numerous proteins involved in a wide range of biological systems have been suggested as the target of redox regulation; however, our knowledge on this issue is still incomplete. Here we report that 3-phosphoglycerate dehydrogenase (PGDH) is a novel redox-regulated protein. PGDH catalyzes the first committed step of Ser biosynthetic pathway in plastids. Using an affinity chromatography-based method, we found that PGDH physically interacts with thioredoxin (Trx), a key factor of redox regulation. The studies using recombinant proteins from showed that a specific PGDH isoform, PGDH1, forms the intramolecular disulfide bond under nonreducing conditions, which lowers PGDH enzyme activity. MS and site-directed mutagenesis analyses allowed us to identify the redox-active Cys pair that is mainly involved in disulfide bond formation in PGDH1; this Cys pair is uniquely found in land plant PGDH. Furthermore, we revealed that some plastidial Trx subtypes support the reductive activation of PGDH1. The present data show previously uncharacterized regulatory mechanisms of PGDH and expand our understanding of the Trx-mediated redox-regulatory network in plants.

摘要

巯基氧化还原调控是一种通过改变半胱氨酸残基的氧化还原状态来控制酶活性的翻译后蛋白质修饰。在植物细胞中,许多参与广泛生物系统的蛋白质被认为是氧化还原调控的靶标;然而,我们对此问题的了解仍然不完整。在这里,我们报告 3-磷酸甘油酸脱氢酶(PGDH)是一种新的氧化还原调控蛋白。PGDH 催化质体中丝氨酸生物合成途径的第一步。使用基于亲和层析的方法,我们发现 PGDH 与硫氧还蛋白(Trx)物理相互作用,Trx 是氧化还原调控的关键因素。使用来自 的重组蛋白进行的研究表明,特定的 PGDH 同工型 PGDH1 在非还原条件下形成分子内二硫键,从而降低 PGDH 酶活性。MS 和定点突变分析使我们能够鉴定主要参与 PGDH1 中二硫键形成的氧化还原活性半胱氨酸对;该半胱氨酸对仅存在于陆地植物的 PGDH 中。此外,我们揭示了一些质体 Trx 亚型支持 PGDH1 的还原激活。目前的数据显示了 PGDH 的以前未表征的调节机制,并扩展了我们对植物中 Trx 介导的氧化还原调节网络的理解。

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