蛋白质转位到线粒体的机制

Wolfgang Voos, Heiko Martin, Thomas Krimmer, Nikolaus Pfanner
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引用次数: 165

摘要

线粒体生物发生利用复杂的蛋白质机制来输入细胞合成的前蛋白。至少有三个大的多亚基蛋白复合物,一个在外膜,两个在内膜,已被确定。这些转位酶复合物与来自细胞质、膜间空间和基质的可溶性蛋白合作。含序列前蛋白通过外膜通道的易位包括带电线粒体靶向序列与一系列进口组分的连续静电相互作用。线粒体内膜的易位利用了细胞膜的质子动力能量和ATP的水解。线粒体热休克蛋白70的基质伴侣系统通过与转运中的多肽链和内膜转位酶组分相互作用形成atp依赖的进口马达。代谢物载体家族的整体内膜蛋白的前体与新发现的膜间空间的进口组分相互作用,并通过第二个转位酶复合物插入内膜。对酵母酿酒酵母和线虫秀丽隐杆线虫全套进口成分的比较表明,线粒体进口机制的大多数成分具有进化保守性,而内膜载体蛋白的进口途径可能存在更大的差异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mechanisms of protein translocation into mitochondria

Mitochondrial biogenesis utilizes a complex proteinaceous machinery for the import of cytosolically synthesized preproteins. At least three large multisubunit protein complexes, one in the outer membrane and two in the inner membrane, have been identified. These translocase complexes cooperate with soluble proteins from the cytosol, the intermembrane space and the matrix. The translocation of presequence-containing preproteins through the outer membrane channel includes successive electrostatic interactions of the charged mitochondrial targeting sequence with a chain of import components. Translocation across the inner mitochondrial membrane utilizes the energy of the proton motive force of the inner membrane and the hydrolysis of ATP. The matrix chaperone system of the mitochondrial heat shock protein 70 forms an ATP-dependent import motor by interaction with the polypeptide chain in transit and components of the inner membrane translocase. The precursors of integral inner membrane proteins of the metabolite carrier family interact with newly identified import components of the intermembrane space and are inserted into the inner membrane by a second translocase complex. A comparison of the full set of import components between the yeast Sacccharomyces cerevisiae and the nematode Caenorhabditis elegans demonstrates an evolutionary conservation of most components of the mitochondrial import machinery with a possible greater divergence for the import pathway of the inner membrane carrier proteins.

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