Yuanyuan Wu , Jiangbin Ye , Zhenglong Gu
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摘要

许多线粒体 DNA(mtDNA)变异与癌症有关,但其中的因果关系仍未确定。利用 DddA 衍生的胞嘧啶碱基编辑器,我们在 HEK293 细胞中诱导了 MT-ND5 的新截断突变,建立了异质体,即突变型和野生型 mtDNA 的共存。本研究旨在探究这些有害 mtDNA 突变后的全部分子病因,尤其是在肿瘤发生过程中。我们发现,低到中等程度的异质突变体足以损害线粒体功能并改变细胞氧化还原状态。在不同的异质体水平下,都能观察到细胞对 ROS(活性氧)升高、能量危机和氧化还原状态改变的适应性。体外肿瘤发生和体内异种移植试验证实了致癌潜力的增加。转录组分析表明,迁移、侵袭和基因组不稳定性通路上调,ROS 清除通路下调。我们的研究结果表明,MT-ND5 突变通过增加细胞 ROS 和基因组不稳定性,以及通过改变氧化还原平衡和表观遗传景观来推动癌症进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploring the oncogenic impact of heteroplasmic de novo MT-ND5 truncating mutations
Numerous mitochondrial DNA (mtDNA) variants are associated with cancers, yet the causal link remains inconclusive. Using DddA-derived cytosine base editors, we induced de novo truncating mutations in MT-ND5 in HEK293 cells, establishing heteroplasmy, the coexistence of mutant and wild-type mtDNA. This study aimed to investigate the full molecular etiology following these deleterious mtDNA mutations, particularly in oncogenesis. We found that low to moderate heteroplasmic levels of the mutants were sufficient to impair mitochondrial functions and alter cellular redox status. Cellular adaptation to elevated ROS (Reactive Oxygen Species), energy crisis, and altered redox status was observed across varying heteroplasmy levels. Increased oncogenic potential was confirmed through in vitro oncogenesis and in vivo xenograft assays. Transcriptomic analysis revealed upregulated migration, invasion, and genome instability pathways, and downregulated ROS scavenging pathways. Our results demonstrate that MT-ND5 mutations drive cancer progression by increasing cellular ROS and genome instability, and by altering the redox balance and epigenetic landscapes.
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