线粒体DNA
氧化应激
生物
线粒体
神经退行性变
DNA损伤
细胞生物学
DNA修复
物候学
氧化磷酸化
遗传学
活性氧
粒体自噬
基因组不稳定性
表型
基因
DNA
生物化学
自噬
细胞凋亡
病理
医学
疾病
作者
Xavier Renaudin,Mi-Young Lee,Mona Shehata,Eva‐Maria Surmann,Ashok R. Venkitaraman
出处
期刊:Cell Reports
[Cell Press]
日期:2021-08-01
卷期号:36 (5): 109478-109478
被引量:36
标识
DOI:10.1016/j.celrep.2021.109478
摘要
Oxidative stress is a ubiquitous cellular challenge implicated in aging, neurodegeneration, and cancer. By studying pathogenic mutations in the tumor suppressor BRCA2, we identify a general mechanism by which oxidative stress restricts mitochondrial (mt)DNA replication. BRCA2 inactivation induces R-loop accumulation in the mtDNA regulatory region and diminishes mtDNA replication initiation. In BRCA2-deficient cells, intracellular reactive oxygen species (ROS) are elevated, and ROS scavengers suppress the mtDNA defects. Conversely, wild-type cells exposed to oxidative stress by pharmacologic or genetic manipulation phenocopy these defects. Mechanistically, we find that 8-oxoguanine accumulation in mtDNA caused by oxidative stress suffices to impair recruitment of the mitochondrial enzyme RNaseH1 to sites of R-loop accrual, restricting mtDNA replication initiation. Thus, oxidative stress impairs RNaseH1 function to cripple mtDNA maintenance. Our findings highlight a molecular mechanism that links oxidative stress to mitochondrial dysfunction and is elicited by the inactivation of genes implicated in neurodegeneration and cancer.
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