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三羧酸循环的非经典互作网络:意料之中与意料之外的代谢互作

The Extra-Pathway Interactome of the TCA Cycle: Expected and Unexpected Metabolic Interactions.

机构信息

Max-Planck-Institut für Molekulare Pflanzenphysiologie, 14476 Potsdam-Golm, Germany.

Consiglio per la Ricerca in Agricoltura e l'Analisi dell'Economia Agraria, 00134 Rome, Italy.

出版信息

Plant Physiol. 2018 Jul;177(3):966-979. doi: 10.1104/pp.17.01687. Epub 2018 May 23.

Abstract

The plant tricarboxylic acid (TCA) cycle provides essential precursors for respiration, amino acid biosynthesis, and general nitrogen metabolism; moreover, it is closely involved in biotic stress responses and cellular redox homeostasis. To further understand the in vivo function of the TCA cycle enzymes, we combined affinity purification with proteomics to generate a comprehensive extra-pathway protein-protein interaction network of the plant TCA cycle. We identified 125 extra-pathway interactions in Arabidopsis () mostly related to the mitochondrial electron transport complex/ATP synthesis and amino acid metabolism but also to proteins associated with redox stress. We chose three high-scoring and two low-scoring interactions for complementary bimolecular fluorescence complementation and yeast two-hybrid assays, which highlighted the reliability of our approach, supported the intimate involvement of TCA cycle enzymes within many biological processes, and reflected metabolic changes reported previously for the corresponding mutant lines. To analyze the function of a subset of these interactions, we selected two mutants of mitochondrial glutaredoxin S15 and Amidase, which have not yet been analyzed with respect to their TCA cycle function, and performed metabolite profiling and flux analysis. Consistent with their interactions identified in this study, TCA cycle metabolites and the relative TCA flux of the two mutants were altered significantly.

摘要

植物三羧酸(TCA)循环为呼吸作用、氨基酸生物合成和一般氮代谢提供必要的前体;此外,它还与生物胁迫反应和细胞氧化还原稳态密切相关。为了进一步了解 TCA 循环酶的体内功能,我们将亲和纯化与蛋白质组学相结合,生成了植物 TCA 循环的综合非途径蛋白-蛋白相互作用网络。我们在拟南芥中鉴定出 125 种非途径相互作用,这些相互作用主要与线粒体电子传递复合物/ATP 合成和氨基酸代谢有关,但也与与氧化还原应激相关的蛋白质有关。我们选择了三个高分值和两个低分值的相互作用进行互补双分子荧光互补和酵母双杂交测定,这突出了我们方法的可靠性,支持了 TCA 循环酶在许多生物过程中的密切参与,并反映了先前针对相应突变体系报道的代谢变化。为了分析这些相互作用的一部分功能,我们选择了两个线粒体谷胱甘肽 S15 和天冬酰胺酶的突变体进行分析,它们尚未对其 TCA 循环功能进行分析,并进行了代谢物分析和通量分析。与它们在本研究中鉴定的相互作用一致,两个突变体的 TCA 循环代谢物和相对 TCA 通量都发生了显著变化。

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