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The addition of ketone bodies alleviates mitochondrial dysfunction by restoring complex I assembly in a MELAS cellular model

机译:通过在mELas细胞模型中恢复复合物I组装,酮体的添加减轻了线粒体功能障碍

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摘要

Ketogenic Diet used to treat refractory epilepsy for almost a century may represent a treatment option for mitochondrial disorders for which effective treatments are still lacking. Mitochondrial complex I deficiencies are involved in a broad spectrum of inherited diseases including Mitochondrial Encephalomyopathy, Lactic Acidosis and Stroke-like episodes syndrome leading to recurrent cerebral insults resembling strokes and associated with a severe complex I deficiency caused by mitochondrial DNA (mtDNA) mutations. The analysis of MELAS neuronal cybrid cells carrying the almost homoplasmic m.3243AG mutation revealed a metabolic switch towards glycolysis with the production of lactic acid, severe defects in respiratory chain activity and complex I disassembly with an accumulation of assembly intermediates. Metabolites, NADH/NAD+ ratio, mitochondrial enzyme activities, oxygen consumption and BN-PAGE analysis were evaluated in mutant compared to control cells. A severe complex I enzymatic deficiency was identified associated with a major complex I disassembly with an accumulation of assembly intermediates of 400kDa. We showed that Ketone Bodies (KB) exposure for 4weeks associated with glucose deprivation significantly restored complex I stability and activity, increased ATP synthesis and reduced the NADH/NAD+ ratio, a key component of mitochondrial metabolism. In addition, without changing the mutant load, mtDNA copy number was significantly increased with KB, indicating that the absolute amount of wild type mtDNA copy number was higher in treated mutant cells. Therefore KB may constitute an alternative and promising therapy for MELAS syndrome, and could be beneficial for other mitochondrial diseases caused by complex I deficiency
机译:过去近一个世纪以来,用于治疗难治性癫痫的生酮饮食可能代表线粒体疾病的治疗选择,而线粒体疾病仍缺乏有效的治疗方法。线粒体复合物I缺乏与广泛的遗传疾病有关,包括线粒体脑病,乳酸性酸中毒和中风样发作综合征,导致反复发作类似于中风的脑损伤,并与线粒体DNA(mtDNA)突变引起的严重的复合物I缺乏有关。对带有几乎同质的m.3243A> G突变的MELAS神经细胞的分析表明,代谢向糖酵解转变,产生乳酸,呼吸链活性严重缺陷,复杂的I分解以及组装中间体的堆积。与对照细胞相比,评估了突变体中的代谢物,NADH / NAD +比,线粒体酶活性,耗氧量和BN-PAGE分析。鉴定出严重的复合物I酶缺乏与主要的复合物I拆卸相关,堆积的装配中间体为400kDa。我们显示,与葡萄糖剥夺相关的酮体(KB)暴露4周可显着恢复复合物I的稳定性和活性,增加ATP合成,并降低线粒体代谢的关键成分NADH / NAD +比率。另外,在不改变突变体负荷的情况下,用KB显着增加了mtDNA拷贝数,这表明在处理过的突变细胞中野生型mtDNA拷贝数的绝对量更高。因此,KB可能是MELAS综合征的另一种有希望的治疗方法,并且可能对由复杂的I缺乏症引起的其他线粒体疾病有益

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