Departments of Oncology and Medicine, Segal Cancer Center, Lady Davis Institute for Medical Research, McGill University, Montréal, QC, Canada.
Genome Stability Laboratory, Oncology Division, CHU de Québec-Université Laval, Québec, QC, Canada.
EMBO J. 2019 Aug 1;38(15):e100986. doi: 10.15252/embj.2018100986. Epub 2019 Jun 21.
Aberrant transcription-associated RNA:DNA hybrid (R-loop) formation often causes catastrophic conflicts during replication, resulting in DNA double-strand breaks and genomic instability. Preventing such conflicts requires hybrid dissolution by helicases and/or RNase H. Little is known about how such helicases are regulated. Herein, we identify DDX5, an RGG/RG motif-containing DEAD-box family RNA helicase, as crucial player in R-loop resolution. In vitro, recombinant DDX5 resolves R-loops in an ATP-dependent manner, leading to R-loop degradation by the XRN2 exoribonuclease. DDX5-deficient cells accumulate R-loops at loci with propensity to form such structures based on RNA:DNA immunoprecipitation (DRIP)-qPCR, causing spontaneous DNA double-strand breaks and hypersensitivity to replication stress. DDX5 associates with XRN2 and resolves R-loops at transcriptional termination regions downstream of poly(A) sites, to facilitate RNA polymerase II release associated with transcriptional termination. Protein arginine methyltransferase 5 (PRMT5) binds and methylates DDX5 at its RGG/RG motif. This motif is required for DDX5 interaction with XRN2 and repression of cellular R-loops, but not essential for DDX5 helicase enzymatic activity. PRMT5-deficient cells accumulate R-loops, resulting in increased formation of γH2AX foci. Our findings exemplify a mechanism by which an RNA helicase is modulated by arginine methylation to resolve R-loops, and its potential role in regulating transcription.
异常转录相关 RNA:DNA 杂交(R 环)的形成常常在复制过程中引起灾难性的冲突,导致 DNA 双链断裂和基因组不稳定。防止这种冲突需要解旋酶和/或 RNase H 来溶解杂交体。目前尚不清楚这些解旋酶是如何被调控的。在这里,我们鉴定出 DDX5,一种含有 RGG/RG 基序的 DEAD -box 家族 RNA 解旋酶,是 R 环解析的关键因子。在体外,重组 DDX5 以 ATP 依赖的方式解析 R 环,导致 XRN2 外切核酸酶降解 R 环。DDX5 缺陷细胞在倾向于形成这些结构的基因座积累 R 环,根据 RNA:DNA 免疫沉淀(DRIP)-qPCR 检测,这会导致自发的 DNA 双链断裂和对复制应激的敏感性增加。DDX5 与 XRN2 结合,并在多聚(A)位点下游的转录终止区域解析 R 环,以促进与转录终止相关的 RNA 聚合酶 II 释放。蛋白质精氨酸甲基转移酶 5(PRMT5)结合并在 DDX5 的 RGG/RG 基序上进行甲基化。该基序是 DDX5 与 XRN2 相互作用和抑制细胞内 R 环所必需的,但不是 DDX5 解旋酶酶活性所必需的。PRMT5 缺陷细胞积累 R 环,导致 γH2AX 焦点形成增加。我们的研究结果说明了一种 RNA 解旋酶通过精氨酸甲基化来调节 R 环的形成及其在调节转录中的潜在作用的机制。