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拟南芥细胞质苹果酸脱氢酶对氧化应激的自我保护。

Self-protection of cytosolic malate dehydrogenase against oxidative stress in Arabidopsis.

机构信息

Department of Plant Biotechnology and Bioinformatics, Ghent University, Ghent, Belgium.

Center for Plant Systems Biology, VIB, Ghent, Belgium.

出版信息

J Exp Bot. 2018 Jun 19;69(14):3491-3505. doi: 10.1093/jxb/erx396.

DOI:10.1093/jxb/erx396
PMID:29194485
Abstract

Plant malate dehydrogenase (MDH) isoforms are found in different cell compartments and function in key metabolic pathways. It is well known that the chloroplastic NADP-dependent MDH activities are strictly redox regulated and controlled by light. However, redox dependence of other NAD-dependent MDH isoforms have been less studied. Here, we show by in vitro biochemical characterization that the major cytosolic MDH isoform (cytMDH1) is sensitive to H2O2 through sulfur oxidation of cysteines and methionines. CytMDH1 oxidation affects the kinetics, secondary structure, and thermodynamic stability of cytMDH1. Moreover, MS analyses and comparison of crystal structures between the reduced and H2O2-treated cytMDH1 further show that thioredoxin-reversible homodimerization of cytMDH1 through Cys330 disulfide formation protects the protein from overoxidation. Consistently, we found that cytosolic thioredoxins interact specifically with cytMDH in a yeast two-hybrid system. Importantly, we also show that cytosolic and chloroplastic, but not mitochondrial NAD-MDH activities are sensitive to H2O2 stress in Arabidopsis. NAD-MDH activities decreased both in a catalase2 mutant and in an NADP-thioredoxin reductase mutant, emphasizing the importance of the thioredoxin-reducing system to protect MDH from oxidation in vivo. We propose that the redox switch of the MDH activity contributes to adapt the cell metabolism to environmental constraints.

摘要

植物苹果酸脱氢酶(MDH)同工酶存在于不同的细胞区室中,并在关键代谢途径中发挥作用。众所周知,质体 NADP 依赖性 MDH 活性受到严格的氧化还原调控,并受光的控制。然而,其他 NAD 依赖性 MDH 同工酶的氧化还原依赖性研究较少。在这里,我们通过体外生化特性表明,主要的细胞质 MDH 同工酶(cytMDH1)对 H2O2 敏感,通过半胱氨酸和蛋氨酸的硫氧化。cytMDH1 的氧化影响动力学、二级结构和热力学稳定性。此外,MS 分析和还原与 H2O2 处理的 cytMDH1 之间的晶体结构比较进一步表明,通过 Cys330 二硫键形成的硫氧还蛋白可逆同二聚化保护蛋白免受过度氧化。一致地,我们发现细胞质硫氧还蛋白在酵母双杂交系统中与 cytMDH 特异性相互作用。重要的是,我们还表明,拟南芥中的细胞质和叶绿体 NAD-MDH 活性对 H2O2 应激敏感,但线粒体 NAD-MDH 活性不敏感。在过氧化氢酶 2 突变体和 NADP 硫氧还蛋白还原酶突变体中,NAD-MDH 活性均降低,这强调了硫氧还蛋白还原系统在体内保护 MDH 免于氧化的重要性。我们提出,MDH 活性的氧化还原开关有助于使细胞代谢适应环境限制。

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