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Oxidative Insults and Mitochondrial DNA Mutation Promote Enhanced Autophagy and Mitophagy Compromising Cell Viability in Pluripotent Cell Model of Mitochondrial Disease

机译:氧化损伤和线粒体DNA突变促进线粒体疾病多能细胞模型中增强的自噬和线粒体损害细胞活力。

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摘要

Dysfunction of mitochondria causes defects in oxidative phosphorylation system (OXPHOS) and increased production of reactive oxygen species (ROS) triggering the activation of the cell death pathway that underlies the pathogenesis of aging and various diseases. The process of autophagy to degrade damaged cytoplasmic components as well as dysfunctional mitochondria is essential for ensuring cell survival. We analyzed the role of autophagy inpatient-specific induced pluripotent stem (iPS) cells generated from fibroblasts of patients with mitochondrial encephalomyopathy, lactic acidosis, and stroke-like episodes (MELAS) with well-characterized mitochondrial DNA mutations and distinct OXPHOS defects. MELAS iPS cells recapitulated the pathogenesis of MELAS syndrome, and showed an increase of autophagy in comparison with its isogenic normal counterpart, whereas mitophagy is very scarce at the basal condition. Our results indicated that the existence of pathogenic mtDNA alone in mitochondrial disease was not sufficient to elicit the degradation of dysfunctional mitochondria. Nonetheless, oxidative insults induced bulk macroautophagy with the accumulation of autophagosomes and autolysosomes upon marked elevation of ROS, overload of intracellular calcium, and robust depolarization of mitochondrial membrane potential, while mitochondria respiratory function was impaired and widespread mitophagy compromised cell viability. Collectively, our studies provide insights into the dysfunction of autophagy and activation of mitophagy contributing to the pathological mechanism of mitochondrial disease.
机译:线粒体功能异常会导致氧化磷酸化系统(OXPHOS)缺陷,并增加活性氧(ROS)的产生,从而触发细胞死亡途径的激活,这是衰老和各种疾病发病机理的基础。自噬降解受损细胞质成分以及功能异常的线粒体的过程对于确保细胞存活至关重要。我们分析了线粒体脑脊髓病,乳酸性酸中毒和中风样发作(MELAS)的特征性线粒体DNA突变和明显的OXPHOS缺陷患者的成纤维细胞产生的自噬住院特异性诱导多能干(iPS)细胞的作用。 MELAS iPS细胞概括了MELAS综合征的发病机理,并且与同基因的正常对应物相比显示出自噬的增加,而在基础条件下线粒体非常缺乏。我们的结果表明,线粒体疾病中仅存在致病性mtDNA不足以引起功能异常的线粒体的降解。然而,氧化损伤导致大量的自噬,伴随着ROS的显着升高,细胞内钙的超载和线粒体膜电位的强去极化,自噬体和自溶酶体的积累,而线粒体的呼吸功能受到损害,广泛的线粒体损害了细胞活力。总的来说,我们的研究提供了对自噬功能障碍和线粒体激活的认识,这些线粒体激活是线粒体疾病的病理机制。

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