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An Impaired Respiratory Electron Chain Triggers Down-regulation of the Energy Metabolism and De-ubiquitination of Solute Carrier Amino Acid Transporters

机译:呼吸电子链受损触发溶质载体氨基酸转运蛋白的能量代谢和去泛素化的下调。

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摘要

Hundreds of genes have been associated with respiratory chain disease (RCD), the most common inborn error of metabolism so far. Elimination of the respiratory electron chain by depleting the entire mitochondrial DNA (mtDNA, ρ0 cells) has therefore one of the most severe impacts on the energy metabolism in eukaryotic cells. In this study, proteomic data sets including the post-translational modifications (PTMs) phosphorylation and ubiquitination were integrated with metabolomic data sets and selected enzyme activities in the osteosarcoma cell line 143B.TK. A shotgun based SILAC LC-MS proteomics and a targeted metabolomics approach was applied to elucidate the consequences of the ρ0 state. Pathway and protein–protein interaction (PPI) network analyses revealed a nonuniform down-regulation of the respiratory electron chain, the tricarboxylic acid (TCA) cycle, and the pyruvate metabolism in ρ0 cells. Metabolites of the TCA cycle were dysregulated, such as a reduction of citric acid and cis-aconitic acid (six and 2.5-fold), and an increase of lactic acid, oxalacetic acid (both twofold), and succinic acid (fivefold) in ρ0 cells. Signaling pathways such as GPCR, EGFR, G12/13 alpha, and Rho GTPases were up-regulated in ρ0 cells, which could be indicative for the mitochondrial retrograde response, a pathway of communication from mitochondria to the nucleus. This was supported by our phosphoproteome data, which revealed two main processes, GTPase-related signal transduction and cytoskeleton organization. Furthermore, a general de-ubiquitination in ρ0 cells was observed, for example, 80S ribosomal proteins were in average threefold and SLC amino acid transporters fivefold de-ubiquitinated. The latter might cause the observed significant increase of amino acid levels in ρ0 cells. We conclude that an elimination of the respiratory electron chain, e.g. mtDNA depletion, not only leads to an uneven down-regulation of mitochondrial energy pathways, but also triggers the retrograde response.
机译:数百种基因与呼吸链疾病(RCD)相关,这是迄今为止最常见的先天性代谢错误。因此,通过消耗整个线粒体DNA(mtDNA,ρ 0 细胞)消除呼吸电子链,对真核细胞能量代谢的影响最为严重。在这项研究中,蛋白质组学数据集包括翻译后修饰(PTM)的磷酸化和泛素化与代谢组学数据集和骨肉瘤细胞系143B.TK -中选定的酶活性整合在一起。基于弹枪的SILAC LC-MS蛋白质组学和靶向代谢组学方法,阐明了ρ 0 状态的后果。途径和蛋白质-蛋白质相互作用(PPI)网络分析表明,ρ 0 细胞中呼吸电子链,三羧酸(TCA)循环和丙酮酸代谢的下调不均匀。 TCA循环的代谢产物失调,例如柠檬酸和顺式乌头酸的减少(分别为6倍和2.5倍),乳酸,草酰乙酸(均为两倍)和琥珀酸(为5倍)的增加 0 单元格。在ρ 0 细胞中,GPCR,EGFR,G12 / 13 alpha和Rho GTPases等信号通路上调,这可能表明线粒体逆行反应是一种从线粒体到核糖体的通讯途径。核。我们的磷酸化蛋白质组数据支持了这一点,该数据揭示了两个主要过程,即GTPase相关信号转导和细胞骨架组织。此外,在ρ 0 细胞中观察到普遍的去泛素化,例如,80S核糖体蛋白的平均泛素化程度是三倍,而SLC氨基酸转运蛋白的泛素化程度是五倍。后者可能导致观察到的ρ 0 细胞中氨基酸水平的显着增加。我们得出结论,消除了呼吸电子链,例如线粒体DNA耗竭,不仅导致线粒体能量途径的不均匀下调,而且引发逆行反应。

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