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Timing and structural consideration for the processing of mitochondrial matrix space proteins by the mitochondrial processing peptidase (MPP)

机译:线粒体加工肽酶(MPP)加工线粒体基质空间蛋白的时间和结构考虑

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摘要

Most mitochondrial matrix space proteins are synthesized as a precursor protein, and the N-terminal extension of amino acids that served as the leader sequence is removed after import by the action of a metalloprotease called mitochondrial processing peptidase (MPP). The crystal structure of MPP has been solved very recently, and it has been shown that synthetic leader peptides bind with MPP in an extended conformation. However, it is not known how MPP recognizes hundreds of leader peptides with different primary and secondary structures or when during import the leader is removed. Here we took advantage of the fact that the structure of the leader from rat liver aldehyde dehydrogenase has been determined by 2D-NMR to possess two helical portions separated by a three amino acid (RGP) linker. When the linker was deleted, the leader formed one long continuous helix that can target a protein to the matrix space but is not removed by the action of MPP. Repeats of two and three leaders were fused to the precursor protein to determine the stage of import at which processing occurs, if MPP could function as an endo peptidase, and if it would process if the cleavage site was part of a helix. Native or linker deleted constructs were used. Import into isolated yeast mitochondria or processing with recombinantly expressed MPP was performed. It was concluded that processing did not occur as the precursor was just entering the matrix space, but most likely coincided with the folding of the protein. Further, finding that hydrolysis could not take place if the processing site was part of a stable helix is consistent with the crystal structure of MPP. Lastly, it was found that MPP could function at sites as far as 108 residues from the N terminus of the precursor protein, but its ability to process decreases exponentially as the distance increases.
机译:大多数线粒体基质空间蛋白是作为前体蛋白合成的,在导入后,通过称为线粒体加工肽酶(MPP)的金属蛋白酶的作用,去除了作为前导序列的氨基酸的N端延伸。 MPP的晶体结构最近已经得到解决,并且已经显示合成的前导肽以扩展的构象与MPP结合。但是,未知的是MPP如何识别数百个具有不同一级和二级结构的前导肽,或者在导入过程中何时去除前导肽。在这里,我们利用了以下事实:来自大鼠肝醛脱氢酶的前导序列的结构已通过2D-NMR确定,具有由三个氨基酸(RGP)接头隔开的两个螺旋部分。删除接头后,前导序列形成了一个长长的连续螺旋,该螺旋可以将蛋白质靶向到基质空间,但不会被MPP的作用除去。将两个和三个前导序列的重复片段融合到前体蛋白上,以确定加工的输入阶段,MPP是否可以充当内肽酶,以及如果切割位点是螺旋的一部分,是否可以加工。使用了本机或连接子删除的构建体。导入分离的酵母线粒体或用重组表达的MPP进行加工。结论是,由于前体仅进入基质空间而未发生加工,但是很可能与蛋白质折叠同时发生。此外,发现如果加工位点是稳定螺旋的一部分则不会发生水解,这与MPP的晶体结构一致。最后,发现MPP可以在距前体蛋白N末端最多108个残基的位点发挥作用,但随着距离的增加,其加工能力呈指数下降。

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