Stiburek Lukas, Vesela Katerina, Hansikova Hana, Hulkova Helena, Zeman Jiri
Charles University, Prague 128 08, Czech Republic.
Am J Physiol Cell Physiol. 2009 May;296(5):C1218-26. doi: 10.1152/ajpcell.00564.2008. Epub 2009 Mar 18.
Sco1 and Sco2 are mitochondrial copper-binding proteins involved in the biogenesis of the Cu(A) site in the cytochrome c oxidase (CcO) subunit Cox2 and in the maintenance of cellular copper homeostasis. Human Surf1 is a CcO assembly factor with an important but poorly characterized role in CcO biogenesis. Here, we analyzed the impact on CcO assembly and tissue copper levels of a G132S mutation in the juxtamembrane region of SCO1 metallochaperone associated with early onset hypertrophic cardiomyopathy, encephalopathy, hypotonia, and hepatopathy, assessed the total copper content of various SURF1 and SCO2-deficient tissues, and investigated the possible physical association between CcO and Sco1. The steady-state level of mutant Sco1 was severely decreased in the muscle mitochondria of the SCO1 patient, indicating compromised stability and thus loss of function of the protein. Unlike the wild-type variant, residual mutant Sco1 appeared to migrate exclusively in the monomeric form on blue native gels. Both the activity and content of CcO were reduced in the patient's muscle to approximately 10-20% of control values. SCO1-deficient mitochondria showed accumulation of two Cox2 subcomplexes, suggesting that Sco1 is very likely responsible for a different posttranslational aspect of Cox2 maturation than Sco2. Intriguingly, the various SURF1-deficient samples analyzed showed a tissue-specific copper deficiency similar to that of SCO-deficient samples, suggesting a role for Surf1 in copper homeostasis regulation. Finally, both blue native immunoblot analysis and coimmunoprecipitation revealed that a fraction of Sco1 physically associates with the CcO complex in human muscle mitochondria, suggesting a possible direct relationship between CcO and the regulation of cellular copper homeostasis.
Sco1和Sco2是线粒体铜结合蛋白,参与细胞色素c氧化酶(CcO)亚基Cox2中Cu(A)位点的生物合成以及细胞铜稳态的维持。人类Surf1是一种CcO组装因子,在CcO生物合成中起重要作用,但特征尚不明确。在此,我们分析了与早发性肥厚型心肌病、脑病、肌张力减退和肝病相关的SCO1金属伴侣蛋白近膜区域G132S突变对CcO组装和组织铜水平的影响,评估了各种SURF1和SCO2缺陷组织的总铜含量,并研究了CcO与Sco1之间可能的物理关联。SCO1患者肌肉线粒体中突变型Sco1的稳态水平严重降低,表明该蛋白稳定性受损,从而丧失功能。与野生型变体不同,残余的突变型Sco1在蓝色非变性凝胶上似乎仅以单体形式迁移。患者肌肉中CcO的活性和含量均降至对照值的约10 - 20%。SCO1缺陷的线粒体显示出两种Cox2亚复合物的积累,表明Sco1很可能负责Cox2成熟过程中与Sco2不同的翻译后方面。有趣的是,分析的各种SURF1缺陷样本显示出与SCO缺陷样本类似的组织特异性铜缺乏,表明Surf在铜稳态调节中起作用。最后,蓝色非变性免疫印迹分析和免疫共沉淀均显示,一部分Sco1与人类肌肉线粒体中的CcO复合物存在物理关联,表明CcO与细胞铜稳态调节之间可能存在直接关系。