线粒体DNA
体细胞
生物
氧化磷酸化
突变
遗传学
种系突变
线粒体
突变积累
分子生物学
基因组
基因
生物化学
作者
Mónica Sánchez-Contreras,Mariya T. Sweetwyne,Kristine A. Tsantilas,Jeremy Whitson,Matthew D. Campbell,Brendan F. Kohrn,Hyeon Jeong Kim,Michael J. Hipp,Jeanne Fredrickson,Megan Nguyen,James B. Hurley,David J. Marcinek,Peter S. Rabinovitch,Scott R. Kennedy
出处
期刊:eLife
[eLife Sciences Publications Ltd]
日期:2023-02-17
卷期号:12
被引量:64
摘要
Accumulation of somatic mutations in the mitochondrial genome (mtDNA) has long been proposed as a possible mechanism of mitochondrial and tissue dysfunction that occurs during aging. A thorough characterization of age-associated mtDNA somatic mutations has been hampered by the limited ability to detect low-frequency mutations. Here, we used Duplex Sequencing on eight tissues of an aged mouse cohort to detect >89,000 independent somatic mtDNA mutations and show significant tissue-specific increases during aging across all tissues examined which did not correlate with mitochondrial content and tissue function. G→A/C→T substitutions, indicative of replication errors and/or cytidine deamination, were the predominant mutation type across all tissues and increased with age, whereas G→T/C→A substitutions, indicative of oxidative damage, were the second most common mutation type, but did not increase with age regardless of tissue. We also show that clonal expansions of mtDNA mutations with age is tissue- and mutation type-dependent. Unexpectedly, mutations associated with oxidative damage rarely formed clones in any tissue and were significantly reduced in the hearts and kidneys of aged mice treated at late age with elamipretide or nicotinamide mononucleotide. Thus, the lack of accumulation of oxidative damage-linked mutations with age suggests a life-long dynamic clearance of either the oxidative lesions or mtDNA genomes harboring oxidative damage.
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