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DDX39A 可分解与复制叉相关的 RNA-DNA 杂交体,以平衡叉保护和切割,从而维持基因组稳定性。

DDX39A resolves replication fork-associated RNA-DNA hybrids to balance fork protection and cleavage for genomic stability maintenance.

作者信息

Xu Zhanzhan, Nie Chen, Liao Junwei, Ma Yujie, Zhou Xiao Albert, Li Xiaoman, Li Shiwei, Lin Haodong, Luo Yefei, Cheng Kaiqi, Mao Zuchao, Zhang Lei, Pan Yichen, Chen Yuke, Wang Weibin, Wang Jiadong

机构信息

Department of Radiation Medicine, School of Basic Medical Sciences, Peking University International Cancer Institute, Institute of Advanced Clinical Medicine, State Key Laboratory of Molecular Oncology, Peking University Health Science Center, Beijing 100191, China.

Department of Urology, Peking University First Hospital, Beijing 100034, China.

出版信息

Mol Cell. 2025 Feb 6;85(3):490-505.e11. doi: 10.1016/j.molcel.2024.11.029. Epub 2024 Dec 19.

Abstract

Safeguarding replication fork stability in transcriptionally active regions is crucial for precise DNA replication and mutation prevention. Here, we discover the pervasive existence of replication fork-associated RNA-DNA hybrids (RF-RDs) in transcriptionally active regions of human cells. These hybrids function as protective barriers, preventing DNA2-mediated nascent DNA degradation and replication fork collapse under replication stress. We also identify DDX39A as a RAD51-associated protein that binds to stalled forks and resolves RF-RDs, facilitating proper DNA2-mediated DNA resection and replication fork restart. Excessive dissolution of RF-RDs causes replication fork collapse and genomic instability, while insufficient dissolution of RF-RDs under replication stress increases fork stability, resulting in chemoresistance that can be reversed by eliminating RF-RDs. In summary, we elucidated the prevalence of RF-RDs at replication forks within transcriptionally active regions, revealed their pivotal role in safeguarding replication fork stability, and proposed that targeting RF-RDs holds promise for augmenting chemotherapeutic efficacy.

摘要

在转录活跃区域保护复制叉稳定性对于精确的DNA复制和预防突变至关重要。在此,我们发现复制叉相关的RNA-DNA杂交体(RF-RDs)在人类细胞转录活跃区域普遍存在。这些杂交体作为保护屏障,在复制应激下防止DNA2介导的新生DNA降解和复制叉崩溃。我们还鉴定出DDX39A作为一种与RAD51相关的蛋白,它结合到停滞的复制叉并解决RF-RDs,促进适当的DNA2介导的DNA切除和复制叉重启。RF-RDs的过度溶解会导致复制叉崩溃和基因组不稳定,而在复制应激下RF-RDs的溶解不足会增加复制叉稳定性,导致化疗耐药性,而消除RF-RDs可逆转这种耐药性。总之,我们阐明了RF-RDs在转录活跃区域复制叉处的普遍性,揭示了它们在保护复制叉稳定性中的关键作用,并提出靶向RF-RDs有望提高化疗疗效。

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