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i-AAA蛋白酶Yme1中中央孔突变对底物结合的底物特异性影响。

Substrate specific consequences of central pore mutations in the i-AAA protease Yme1 on substrate engagement.

作者信息

Graef Martin, Langer Thomas

机构信息

Institute for Genetics and Center for Molecular Medicine, CMMC, University of Cologne, Cologne, Germany.

出版信息

J Struct Biol. 2006 Oct;156(1):101-8. doi: 10.1016/j.jsb.2006.01.009. Epub 2006 Feb 21.

DOI:10.1016/j.jsb.2006.01.009
PMID:16527490
Abstract

Two membrane-bound ATP-dependent AAA proteases conduct protein quality surveillance in the inner membrane of mitochondria and control crucial steps during mitochondrial biogenesis. AAA domains of proteolytic subunits are critical for the recognition of non-native membrane proteins which are extracted from the membrane bilayer for proteolysis. Here, we have analysed the role of the conserved loop motif YVG, which has been localized to the central pore in other hexameric AAA(+) ring complexes, for the degradation of membrane proteins by the i-AAA protease Yme1. Proteolytic activity was found to depend on the presence of hydrophobic amino acid residues at position 354 within the pore loop of Yme1. Mutations affected proteolysis in a substrate-specific manner: whereas the degradation of misfolded membrane proteins was impaired at a post-binding step, folded substrate proteins did not interact with mutant Yme1. This reflects most likely deficiencies in the ATP-dependent unfolding of substrate proteins, since we observed similar effects for ATPase-deficient Yme1 mutants. Our findings therefore suggest an essential function of the central pore loop for the ATP-dependent translocation of membrane proteins into a proteolytic cavity formed by AAA proteases.

摘要

两种膜结合的依赖ATP的AAA蛋白酶在线粒体内膜中进行蛋白质质量监测,并控制线粒体生物发生过程中的关键步骤。蛋白水解亚基的AAA结构域对于识别从膜双层中提取出来进行蛋白水解的非天然膜蛋白至关重要。在此,我们分析了保守的环基序YVG的作用,该基序已定位到其他六聚体AAA(+)环复合物的中央孔中,其对于i-AAA蛋白酶Yme1降解膜蛋白的作用。发现蛋白水解活性取决于Yme1孔环中第354位疏水氨基酸残基的存在。突变以底物特异性方式影响蛋白水解:虽然错误折叠的膜蛋白的降解在结合后步骤受损,但折叠的底物蛋白不与突变型Yme1相互作用。这很可能反映了底物蛋白ATP依赖性解折叠的缺陷,因为我们观察到ATP酶缺陷型Yme1突变体有类似的效应。因此,我们的研究结果表明中央孔环对于膜蛋白ATP依赖性转运到由AAA蛋白酶形成的蛋白水解腔中具有重要功能。

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