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蛋氨酸补充刺激线粒体呼吸。

Methionine supplementation stimulates mitochondrial respiration.

机构信息

Department of Biotechnology and Biosciences, University of Milano-Bicocca, Milan, Italy; SYSBIO, Centre of Systems Biology, Milan, Italy.

Department of Biotechnology and Biosciences, University of Milano-Bicocca, Milan, Italy.

出版信息

Biochim Biophys Acta Mol Cell Res. 2018 Dec;1865(12):1901-1913. doi: 10.1016/j.bbamcr.2018.09.007. Epub 2018 Oct 2.

Abstract

Mitochondria play essential metabolic functions in eukaryotes. Although their major role is the generation of energy in the form of ATP, they are also involved in maintenance of cellular redox state, conversion and biosynthesis of metabolites and signal transduction. Most mitochondrial functions are conserved in eukaryotic systems and mitochondrial dysfunctions trigger several human diseases. By using multi-omics approach, we investigate the effect of methionine supplementation on yeast cellular metabolism, considering its role in the regulation of key cellular processes. Methionine supplementation induces an up-regulation of proteins related to mitochondrial functions such as TCA cycle, electron transport chain and respiration, combined with an enhancement of mitochondrial pyruvate uptake and TCA cycle activity. This metabolic signature is more noticeable in cells lacking Snf1/AMPK, the conserved signalling regulator of energy homeostasis. Remarkably, snf1Δ cells strongly depend on mitochondrial respiration and suppression of pyruvate transport is detrimental for this mutant in methionine condition, indicating that respiration mostly relies on pyruvate flux into mitochondrial pathways. These data provide new insights into the regulation of mitochondrial metabolism and extends our understanding on the role of methionine in regulating energy signalling pathways.

摘要

线粒体在真核生物中发挥着重要的代谢功能。尽管它们的主要作用是以 ATP 的形式产生能量,但它们也参与细胞氧化还原状态的维持、代谢物的转化和生物合成以及信号转导。大多数线粒体功能在真核系统中是保守的,线粒体功能障碍会引发多种人类疾病。我们通过多组学方法研究了蛋氨酸补充对酵母细胞代谢的影响,考虑到它在调节关键细胞过程中的作用。蛋氨酸补充诱导与线粒体功能相关的蛋白质上调,如 TCA 循环、电子传递链和呼吸作用,同时增强了线粒体丙酮酸摄取和 TCA 循环活性。在缺乏 Snf1/AMPK 的细胞中,这种代谢特征更为明显,Snf1/AMPK 是能量稳态的保守信号调节因子。值得注意的是,snf1Δ 细胞强烈依赖于线粒体呼吸作用,并且在蛋氨酸条件下抑制丙酮酸转运对该突变体有害,表明呼吸作用主要依赖于丙酮酸流入线粒体途径。这些数据为线粒体代谢的调节提供了新的见解,并扩展了我们对蛋氨酸在调节能量信号通路中的作用的理解。

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