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低氧和心肌缺血时依赖线粒体 Lon 蛋白酶的细胞色素 c 氧化酶亚基降解。

Mitochondrial LON protease-dependent degradation of cytochrome c oxidase subunits under hypoxia and myocardial ischemia.

机构信息

Department of Biomedical Sciences, School of Veterinary Medicine, University of Pennsylvania, 3800 Spruce Street, Philadelphia, PA 19104-6009, USA.

Department of Microbiology, Biochemistry and Molecular Genetics, Rutgers The State University, New Jersey Medical School, 225 Warren Street, Newark, NJ 17103-3535, USA.

出版信息

Biochim Biophys Acta Bioenerg. 2017 Jul;1858(7):519-528. doi: 10.1016/j.bbabio.2017.04.003. Epub 2017 Apr 23.

Abstract

The mitochondrial ATP dependent matrix protease, Lon, is involved in the maintenance of mitochondrial DNA nucleoids and degradation of abnormal or misfolded proteins. The Lon protease regulates mitochondrial Tfam (mitochondrial transcription factor A) level and thus modulates mitochondrial DNA (mtDNA) content. We have previously shown that hypoxic stress induces the PKA-dependent phosphorylation of cytochrome c oxidase (CcO) subunits I, IVi1, and Vb and a time-dependent reduction of these subunits in RAW 264.7 murine macrophages subjected to hypoxia and rabbit hearts subjected to ischemia/reperfusion. Here, we show that Lon is involved in the preferential turnover of phosphorylated CcO subunits under hypoxic/ischemic stress. Induction of Lon protease occurs at 6 to 12 h of hypoxia and this increase coincides with lower CcO subunit contents. Over-expression of flag-tagged wild type and phosphorylation site mutant Vb and IVi1 subunits (S40A and T52A, respectively) caused marked degradation of wild type protein under hypoxia while the mutant proteins were relatively resistant. Furthermore, the recombinant purified Lon protease degraded the phosphorylated IVi1 and Vb subunits, while the phosphorylation-site mutant proteins were resistant to degradation. 3D structural modeling shows that the phosphorylation sites are exposed to the matrix compartment, accessible to matrix PKA and Lon protease. Hypoxic stress did not alter CcO subunit levels in Lon depleted cells, confirming its role in CcO turnover. Our results therefore suggest that Lon preferentially degrades the phosphorylated subunits of CcO and plays a role in the regulation of CcO activity in hypoxia and ischemia/reperfusion injury.

摘要

线粒体 ATP 依赖的基质蛋白酶 Lon 参与维持线粒体 DNA 核体和降解异常或错误折叠的蛋白质。Lon 蛋白酶调节线粒体 Tfam(线粒体转录因子 A)水平,从而调节线粒体 DNA(mtDNA)含量。我们之前已经表明,缺氧应激诱导细胞色素 c 氧化酶(CcO)亚基 I、IVi1 和 Vb 的 PKA 依赖性磷酸化以及在缺氧和缺血/再灌注处理的兔心中经历缺氧的 RAW 264.7 鼠巨噬细胞中这些亚基的时间依赖性减少。在这里,我们表明 Lon 参与缺氧/缺血应激下磷酸化 CcO 亚基的优先周转。Lon 蛋白酶的诱导发生在缺氧 6 至 12 小时,并且这种增加与 CcO 亚基含量降低相一致。Flag 标记的野生型和磷酸化位点突变体 Vb 和 IVi1 亚基(分别为 S40A 和 T52A)的过表达导致在缺氧下野生型蛋白的明显降解,而突变蛋白相对耐受。此外,重组纯化的 Lon 蛋白酶降解磷酸化的 IVi1 和 Vb 亚基,而磷酸化位点突变蛋白则抵抗降解。3D 结构建模表明,磷酸化位点暴露在基质隔室中,可被基质 PKA 和 Lon 蛋白酶访问。Lon 耗尽细胞中的 CcO 亚基水平在缺氧应激下没有改变,这证实了它在 CcO 周转中的作用。因此,我们的结果表明 Lon 优先降解磷酸化的 CcO 亚基,并在缺氧和缺血/再灌注损伤中调节 CcO 活性中发挥作用。

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