氧化磷酸化
粒线体疾病
线粒体
生物发生
ATP合酶
线粒体DNA
电子传输链
表型
生物
基因
辅因子
人类线粒体遗传学
酶
细胞生物学
呼吸链
遗传学
生物化学
作者
Erika Fernández‐Vizarra,Massimo Zeviani
出处
期刊:FEBS Letters
[Wiley]
日期:2020-11-07
卷期号:595 (8): 1062-1106
被引量:267
标识
DOI:10.1002/1873-3468.13995
摘要
Mitochondrial disorders are among the most frequent inborn errors of metabolism, their primary cause being the dysfunction of the oxidative phosphorylation system (OXPHOS). OXPHOS is composed of the electron transport chain (ETC), formed by four multimeric enzymes and two mobile electron carriers, plus an ATP synthase [also called complex V (cV)]. The ETC performs the redox reactions involved in cellular respiration while generating the proton motive force used by cV to synthesize ATP. OXPHOS biogenesis involves multiple steps, starting from the expression of genes encoded in physically separated genomes, namely the mitochondrial and nuclear DNA, to the coordinated assembly of components and cofactors building each individual complex and eventually the supercomplexes. The genetic cause underlying around half of the diagnosed mitochondrial disease cases is currently known. Many of these cases result from pathogenic variants in genes encoding structural subunits or additional factors directly involved in the assembly of the ETC complexes. Here, we review the historical and most recent findings concerning the clinical phenotypes and the molecular pathological mechanisms underlying this particular group of disorders.
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