基因组不稳定性
细胞生物学
DNA复制
生物
DNA损伤
遗传学
DNA再复制
染色体
染色体分离
染色体复制控制
染色体不稳定性
DNA
分子生物学
细胞周期蛋白D
基因
DNA修复
细胞分裂
DNA合成
细胞周期蛋白
细胞周期
染色质
作者
Anna Oravetzova,Markéta Dvořáková,Anca-Irina Mihai,Martin Andrš,Margarita Sobol,Anton P. Zuev,Kaustubh Shukla,Barbora Boleslavska,Vinicio Rosano,Christiane König,Jiri Prokes,Hana Hanzlíková,Libor Macůrek,Jana Dobrovolná,Pavel Janščák
标识
DOI:10.1038/s41467-026-71353-8
摘要
Activated oncogenes elicit genomic instability by inducing DNA replication stress. Here we show that replication fork reversal and chromosome mis-segregation induced by oncogenic RAS (HRASV12) or cyclin E1 overexpression are largely caused by co-transcriptional RNA:DNA hybrids (R-loops) formed during S-phase. Furthermore, we demonstrate that replication stress induced by HRASV12, but not cyclin E1, is driven by reactive oxygen species (ROS) in a manner dependent on the replisome-associated ROS sensor peroxiredoxin 2 (PRDX2) and is linked to PRDX2-mediated release of the fork acceleration factor TIMELESS from the replisome. Inhibition of fork reversal in cells overexpressing HRASV12 or cyclin E1 induces unrestrained DNA synthesis mediated by the MUS81 endonuclease and the primase-polymerase PRIMPOL, thereby promoting proper chromosome segregation in mitosis. These results establish PRIMPOL repriming as part of the MUS81-dependent replication restart mechanism that operates at sites of R-loop-mediated transcription-replication conflicts to maintain genomic stability. Furthermore, our data indicate that, despite their protective role during S-phase, persistent reversed forks impair chromosome segregation in mitosis, potentially leading to DNA breaks and chromosomal rearrangements.
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