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Integrated analysis of the molecular pathogenesis of FDXR-associated disease

机译:FDXR相关疾病分子发病机制的综合分析

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The mitochondrial flavoprotein ferredoxin reductase (FDXR) is required for biogenesis of iron–sulfur clusters and for steroidogenesis. Iron–sulfur (Fe–S) clusters are ubiquitous cofactors essential to various cellular processes, and an increasing number of disorders are associated with disruptions in the synthesis of Fe–S clusters. Our previous studies have demonstrated that hypomorphic mutations in FDXR cause a novel mitochondriopathy and optic atrophy in humans and mice, attributed in part to reduced function of the electron transport chain (ETC) as well as elevated production of reactive oxygen species (ROS). Inflammation and peripheral neuropathy are also hallmarks of this disease. In this paper, we demonstrate that FDXR mutation leads to significant optic transport defects that are likely to underlie optic atrophy, a major clinical presentation in FDXR patients, as well as a neurodegenerative loss of cells in the central nervous system (CNS). Molecular analysis indicates that FDXR mutation also leads to mitochondrial iron overload and an associated depolarization of the mitochondrial membrane, further supporting the hypothesis that FDXR mutations cause neurodegeneration by affecting FDXR’s critical role in iron homeostasis.
机译:用于生物发生的铁 - 硫簇和甾体制性,所需的线粒体黄酮蛋白还原酶(FDXR)是必需的。铁硫(Fe-S)簇是对各种细胞过程必不可少的辅助因子,并且越来越多的疾病与Fe-S簇的合成中断相关。我们以前的研究表明,FDXR中的警长突变导致人和小鼠中的新型线粒体提发病和视神经萎缩,其归因于电子传输链(ETC)的函数以及反应性氧(ROS)的升高。炎症和周围神经病变也是这种疾病的标志。在本文中,我们证明FDXR突变导致可能对FDXR患者的主要临床介绍的重要视神经传递缺陷,以及中枢神经系统中的细胞神经变性丧失(CNS)。分子分析表明FDXR突变还导致线粒体铁过载和线粒体膜的相关去极化,进一步支持FDXR突变通过影响FDXR在铁袜中的关键作用引起神经变性的假设。

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