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Sci Transl Med. 2018 Mar 28;10(434). doi: 10.1126/scitranslmed.aan4935.
2
m-AAA and i-AAA complexes coordinate to regulate OMA1, the stress-activated supervisor of mitochondrial dynamics.m-AAA 和 i-AAA 复合物协调调节 OMA1,即应激激活的线粒体动力学监督因子。
J Cell Sci. 2018 Apr 9;131(7):jcs213546. doi: 10.1242/jcs.213546.
3
Ydj1 governs fungal morphogenesis and stress response, and facilitates mitochondrial protein import via Mas1 and Mas2.Ydj1调控真菌形态发生和应激反应,并通过Mas1和Mas2促进线粒体蛋白导入。
Microb Cell. 2017 Oct 2;4(10):342-361. doi: 10.15698/mic2017.10.594.
4
Metalloproteases of the Inner Mitochondrial Membrane.线粒体内膜金属蛋白酶
Biochemistry. 2017 Sep 12;56(36):4737-4746. doi: 10.1021/acs.biochem.7b00663. Epub 2017 Aug 30.
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Multitiered and Cooperative Surveillance of Mitochondrial Phosphatidylserine Decarboxylase 1.线粒体磷脂酰丝氨酸脱羧酶1的多层合作监测
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J Neuroimmune Pharmacol. 2016 Dec;11(4):629-644. doi: 10.1007/s11481-016-9683-8. Epub 2016 May 2.
8
Reciprocal Degradation of YME1L and OMA1 Adapts Mitochondrial Proteolytic Activity during Stress.YME1L与OMA1的相互降解在应激过程中调节线粒体蛋白水解活性
Cell Rep. 2016 Mar 8;14(9):2041-2049. doi: 10.1016/j.celrep.2016.02.011. Epub 2016 Feb 25.
9
Imbalanced OPA1 processing and mitochondrial fragmentation cause heart failure in mice.OPA1 加工失衡和线粒体碎片化导致小鼠心力衰竭。
Science. 2015 Dec 4;350(6265):aad0116. doi: 10.1126/science.aad0116.
10
Loss of OMA1 delays neurodegeneration by preventing stress-induced OPA1 processing in mitochondria.OMA1的缺失通过阻止线粒体中应激诱导的OPA1加工来延缓神经退行性变。
J Cell Biol. 2016 Jan 18;212(2):157-66. doi: 10.1083/jcb.201507022.

氧化还原调节线粒体质量控制蛋白酶 Oma1。

Redox Regulation of the Mitochondrial Quality Control Protease Oma1.

机构信息

1 Department of Biochemistry, University of Nebraska-Lincoln, Lincoln, Nebraska.

2 Nebraska Redox Biology Center, University of Nebraska-Lincoln, Lincoln, Nebraska.

出版信息

Antioxid Redox Signal. 2019 Aug 20;31(6):429-443. doi: 10.1089/ars.2018.7642. Epub 2019 Jun 18.

DOI:10.1089/ars.2018.7642
PMID:31044600
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6653804/
Abstract

Normal mitochondrial function and integrity are crucial for cellular physiology. Given the paramount role of mitochondrial quality control proteases in these processes, our study focused on investigating mechanisms by which the activity of a key quality control protease Oma1 is regulated under normal conditions and in response to homeostatic insults. Oma1 was found to be a redox-dependent protein that exists in a semi-oxidized state in yeast and mammalian mitochondria. Biochemical and genetic analyses provide evidence that activity and stability of the Oma1 oligomeric complex can be dynamically tuned in a reduction/oxidation-sensitive manner. Mechanistically, these features appear to be mediated by two intermembrane space (IMS)-exposed highly conserved cysteine residues, Cys and Cys. These residues form a disulfide bond, which likely plays a structural role and influences conformational stability and activity of the Oma1 high-mass complex. Finally, in line with these findings, engineered Oma1 substrate is shown to engage with the protease in a redox-sensitive manner. This study provides new insights into the function of the Oma1 protease, a central controller of mitochondrial membrane homeostasis and dynamics, and reveals the novel conserved mechanism of the redox-dependent regulation of Oma1. Disulfide bonds formed by IMS-exposed residues Cys and Cys play an important evolutionarily conserved role in the regulation of Oma1 function. We propose that the redox status of these cysteines may act as a redox-tunable switch to optimize Oma1 proteolytic function for specific cellular conditions or homeostatic challenges.

摘要

正常的线粒体功能和完整性对于细胞生理至关重要。鉴于线粒体质量控制蛋白酶在这些过程中的重要作用,我们的研究集中在研究关键质量控制蛋白酶 Oma1 在正常条件下和应对体内平衡损伤时的活性调节机制。发现 Oma1 是一种依赖于氧化还原的蛋白质,在酵母和哺乳动物线粒体中处于半氧化状态。生化和遗传分析提供的证据表明,Oma1 寡聚复合物的活性和稳定性可以以还原/氧化敏感的方式动态调节。从机制上讲,这些特征似乎是由两个跨膜间隙(IMS)暴露的高度保守半胱氨酸残基 Cys 和 Cys 介导的。这些残基形成二硫键,可能发挥结构作用,并影响 Oma1 高分子复合物的构象稳定性和活性。最后,与这些发现一致,工程化的 Oma1 底物被证明以氧化还原敏感的方式与蛋白酶结合。本研究为 Oma1 蛋白酶的功能提供了新的见解,Oma1 蛋白酶是线粒体膜动态和动态平衡的核心控制器,并揭示了 Oma1 氧化还原依赖性调节的新保守机制。由 IMS 暴露残基 Cys 和 Cys 形成的二硫键在 Oma1 功能的调节中发挥着重要的进化保守作用。我们提出,这些半胱氨酸的氧化还原状态可能作为氧化还原可调开关,以优化 Oma1 蛋白水解功能,以适应特定的细胞条件或体内平衡挑战。