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Nonsense mutations in the COX1 subunit impair the stability of respiratory chain complexes rather than their assembly

机译:COX1亚基中的无意义突变会削弱呼吸链复合物的稳定性而不是其组装的稳定性

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摘要

Respiratory chain (RC) complexes are organized into supercomplexes forming ‘respirasomes'. The mechanism underlying the interdependence of individual complexes is still unclear. Here, we show in human patient cells that the presence of a truncated COX1 subunit leads to destabilization of complex IV (CIV) and other RC complexes. Surprisingly, the truncated COX1 protein is integrated into subcomplexes, the holocomplex and even into supercomplexes, which however are all unstable. Depletion of the m-AAA protease AFG3L2 increases stability of the truncated COX1 and other mitochondrially encoded proteins, whereas overexpression of wild-type AFG3L2 decreases their stability. Both full-length and truncated COX1 proteins physically interact with AFG3L2. Expression of a dominant negative AFG3L2 variant also promotes stabilization of CIV proteins as well as the assembled complex and rescues the severe phenotype in heteroplasmic cells. Our data indicate that the mechanism underlying pathogenesis in these patients is the rapid clearance of unstable respiratory complexes by quality control pathways, rather than their impaired assembly.
机译:呼吸链(RC)复合物被组织成形成“呼吸小体”的超级复合物。各个复合物相互依存的机制仍不清楚。在这里,我们在人类患者细胞中显示出被截短的COX1亚基的存在会导致复合物IV(CIV)和其他RC复合物的不稳定。出乎意料的是,截短的COX1蛋白被整合到亚复合体,全复合体甚至超复合体中,但是它们都是不稳定的。 m-AAA蛋白酶AFG3L2的耗竭会增加截短的COX1和其他线粒体编码蛋白的稳定性,而野生型AFG3L2的过表达则会降低其稳定性。全长和截短的COX1蛋白都与AFG3L2物理相互作用。显性阴性AFG3L2变异体的表达还促进了CIV蛋白以及组装复合物的稳定,并拯救了异质细胞中的严重表型。我们的数据表明,这些患者发病机理的基本机制是通过质量控制途径快速清除不稳定的呼吸道复合物,而不是通过受损的组装。

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