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广泛且功能未知的线粒体磷酸化蛋白质组。

The extensive and functionally uncharacterized mitochondrial phosphoproteome.

机构信息

Department of Biochemistry & Molecular Biophysics, Washington University in St Louis, St Louis, Missouri, USA.

Departments of Cell Biology and Physiology, Biochemistry & Molecular Biophysics, and Genetics, Washington University in St Louis, St Louis, Missouri, USA; Morgridge Institute for Research, Madison, Wisconsin, USA; Department of Biochemistry, University of Madison-Wisconsin, Madison, Wisconsin, USA.

出版信息

J Biol Chem. 2021 Jul;297(1):100880. doi: 10.1016/j.jbc.2021.100880. Epub 2021 Jun 16.

Abstract

More than half a century ago, reversible protein phosphorylation was linked to mitochondrial metabolism through the regulation of pyruvate dehydrogenase. Since this discovery, the number of identified mitochondrial protein phosphorylation sites has increased by orders of magnitude, driven largely by technological advances in mass spectrometry-based phosphoproteomics. However, the majority of these modifications remain uncharacterized, rendering their function and relevance unclear. Nonetheless, recent studies have shown that disruption of resident mitochondrial protein phosphatases causes substantial metabolic dysfunction across organisms, suggesting that proper management of mitochondrial phosphorylation is vital for organellar and organismal homeostasis. While these data suggest that phosphorylation within mitochondria is of critical importance, significant gaps remain in our knowledge of how these modifications influence organellar function. Here, we curate publicly available datasets to map the extent of protein phosphorylation within mammalian mitochondria and to highlight the known functions of mitochondrial-resident phosphatases. We further propose models by which phosphorylation may affect mitochondrial enzyme activities, protein import and processing, and overall organellar homeostasis.

摘要

半个多世纪以前,通过调节丙酮酸脱氢酶,可逆蛋白磷酸化与线粒体代谢联系起来。自这一发现以来,基于质谱的磷酸化蛋白质组学技术的进步极大地推动了鉴定到的线粒体蛋白磷酸化位点数量呈指数级增长。然而,这些修饰中的大多数仍未被描述,其功能和相关性尚不清楚。尽管如此,最近的研究表明,驻留的线粒体蛋白磷酸酶的破坏会导致生物体的代谢功能严重失调,这表明适当管理线粒体磷酸化对于细胞器和生物体的内稳态至关重要。虽然这些数据表明线粒体内部的磷酸化至关重要,但我们对这些修饰如何影响细胞器功能的认识仍存在很大差距。在这里,我们整理了公开可用的数据集,以绘制哺乳动物线粒体中蛋白质磷酸化的程度,并强调线粒体驻留磷酸酶的已知功能。我们进一步提出了一些模型,说明磷酸化可能如何影响线粒体酶活性、蛋白质的输入和加工以及整体细胞器内稳态。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6001/8267538/d0e9aaf6d86a/gr1.jpg

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