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Mitochondrial thiol oxidase Erv1: both shuttle cysteine residues are required for its function with distinct roles

机译:线粒体硫醇氧化酶Erv1:两个穿梭半胱氨酸残基都需要发挥其功能并具有不同的作用

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摘要

Erv1 (essential for respiration and viability 1), is an essential component of the MIA (mitochondrial import and assembly) pathway, playing an important role in the oxidative folding of mitochondrial intermembrane space proteins. In the MIA pathway, Mia40, a thiol oxidoreductase with a CPC motif at its active site, oxidizes newly imported substrate proteins. Erv1 a FAD-dependent thiol oxidase, in turn reoxidizes Mia40 via its N-terminal Cys30–Cys33 shuttle disulfide. However, it is unclear how the two shuttle cysteine residues of Erv1 relay electrons from the Mia40 CPC motif to the Erv1 active-site Cys130–Cys133 disulfide. In the present study, using yeast genetic approaches we showed that both shuttle cysteine residues of Erv1 are required for cell growth. In organelle and in vitro studies confirmed that both shuttle cysteine residues were indeed required for import of MIA pathway substrates and Erv1 enzyme function to oxidize Mia40. Furthermore, our results revealed that the two shuttle cysteine residues of Erv1 are functionally distinct. Although Cys33 is essential for forming the intermediate disulfide Cys33–Cys130′ and transferring electrons to the redox active-site directly, Cys30 plays two important roles: (i) dominantly interacts and receives electrons from the Mia40 CPC motif; and (ii) resolves the Erv1 Cys33–Cys130 intermediate disulfide. Taken together, we conclude that both shuttle cysteine residues are required for Erv1 function, and play complementary, but distinct, roles to ensure rapid turnover of active Erv1.
机译:Erv1(对呼吸和活力至关重要的1)是MIA(线粒体导入和组装)途径的重要组成部分,在线粒体膜间空间蛋白的氧化折叠中起着重要作用。在MIA途径中,Mia40是一种在其活性位点具有CPC基序的硫醇氧化还原酶,可氧化新导入的底物蛋白。 Fv依赖的硫醇氧化酶Erv1通过其N端Cys 30 -Cys 33 穿梭二硫化物再氧化Mia40。但是,还不清楚Erv1的两个穿梭半胱氨酸残基如何将电子从Mia40 CPC主题传递到Erv1活性位点Cys 130 -Cys 133 二硫化物。在本研究中,使用酵母遗传方法,我们表明Erv1的两个穿梭半胱氨酸残基都是细胞生长所必需的。在细胞器和体外研究中证实,穿梭半胱氨酸残基确实是MIA途径底物进口所必需的,并且Erv1酶具有氧化Mia40的功能。此外,我们的结果表明,Erv1的两个穿梭半胱氨酸残基在功能上是不同的。尽管Cys 33 对于形成中间体二硫化物Cys 33 –Cys 130 '并将电子直接转移到氧化还原活性位点至关重要,但Cys < sup> 30 扮演两个重要角色:(i)显性地相互作用并接收Mia40 CPC图案中的电子; (ii)拆分Erv1 Cys 33 –Cys 130 中间体二硫化物。两者合计,我们得出结论,两个穿梭半胱氨酸残基是Erv1功能所必需的,并发挥互补但截然不同的作用,以确保活性Erv1的快速周转。

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