A regulatory adaptor for RAD51’s AAA+ unfoldase promotes homologous recombination–mediated DNA repair and genome stability

雷达51 DNA修复 同源重组 DNA损伤 基因组不稳定性 生物 DNA 细胞生物学 信号转导衔接蛋白 癌症研究 DNA修复蛋白XRCC4 同源定向修复 化学 BRCA2蛋白 遗传学 核苷酸切除修复 计算生物学 癌症 分子生物学 癌细胞 非同源性末端接合 基因组
作者
Tao Zhou,Ming Pang,Xinxin Liang,Zenan Zhou,Han Yang,Yilin Cui,Shang Yu,Ling Liang,Pan Wang,Yifan Chen,Jiadong Wang,Weibin Wang
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:123 (33): e2531632123-e2531632123
标识
DOI:10.1073/pnas.2531632123
摘要

DNA double-strand breaks, including those arising from DNA interstrand crosslinks, are highly cytotoxic forms of DNA damage. Their precise repair by homologous recombination (HR) is essential for maintaining genomic stability. During HR, timely disassembly of the core machinery, RAD51 nucleoprotein filaments, is critical. The FIGNL1-FIRRM (also known as C1orf112) AAA+ ATPase has recently been identified by us and others as a novel anti-recombinase that facilitates RAD51 disassembly via an ATPase-driven unfolding mechanism distinct from all previously characterized pathways. In this study, we identify MACIR/C5orf30 as an adaptor for FIGNL1-FIRRM unfoldase. MACIR directly binds FIRRM, forming a ternary complex that promotes RAD51 filament disassembly and facilitates repair of DNA damage induced by agents including aldehydes and platinum drugs. MACIR loss leads to DNA damage accumulation and genome instability, activates inflammatory signaling, linking MACIR deficiency to autoimmune and tumor-related pathologies. We further show that MACIR's direct interactions with FIRRM and DNA are both required for DNA repair, indicating that MACIR functionally links these components. High expression of MACIR-FIRRM-FIGNL1 correlates with poor prognosis in ovarian cancer patients, and pharmacological targeting of this complex with the inhibitors (small-molecule compound 8 and 10) we identified sensitizes ovarian cancer cells to platinum drugs. Therefore, our findings reveal MACIR as a critical regulatory adaptor within this RAD51-unfolding complex, which functions in an additional layer of control over DNA repair and genome stability, and suggest that its inhibition could enhance chemotherapeutic efficacy in cancer treatment.
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