同源重组
DNA修复
PARP1
细胞生物学
DNA损伤
基因组不稳定性
生物
DNA
先天免疫系统
聚ADP核糖聚合酶
分子生物学
化学
遗传学
聚合酶
免疫系统
作者
Haipeng Liu,Haiping Zhang,Xiangyang Wu,Dapeng Ma,Juehui Wu,Lin Wang,Yan Jiang,Yiyan Fei,Chenggang Zhu,Rong Tan,Peter R. Jungblut,Gang Pei,Anca Dorhoi,Qiaoling Yan,Fan Zhang,Ruijuan Zheng,Siyu Liu,Haijiao Liang,Liu Z,Hua Yang
出处
期刊:Nature
[Nature Portfolio]
日期:2018-10-23
卷期号:563 (7729): 131-136
被引量:522
标识
DOI:10.1038/s41586-018-0629-6
摘要
Accurate repair of DNA double-stranded breaks by homologous recombination preserves genome integrity and inhibits tumorigenesis. Cyclic GMP–AMP synthase (cGAS) is a cytosolic DNA sensor that activates innate immunity by initiating the STING–IRF3–type I IFN signalling cascade1,2. Recognition of ruptured micronuclei by cGAS links genome instability to the innate immune response3,4, but the potential involvement of cGAS in DNA repair remains unknown. Here we demonstrate that cGAS inhibits homologous recombination in mouse and human models. DNA damage induces nuclear translocation of cGAS in a manner that is dependent on importin-α, and the phosphorylation of cGAS at tyrosine 215—mediated by B-lymphoid tyrosine kinase—facilitates the cytosolic retention of cGAS. In the nucleus, cGAS is recruited to double-stranded breaks and interacts with PARP1 via poly(ADP-ribose). The cGAS–PARP1 interaction impedes the formation of the PARP1–Timeless complex, and thereby suppresses homologous recombination. We show that knockdown of cGAS suppresses DNA damage and inhibits tumour growth both in vitro and in vivo. We conclude that nuclear cGAS suppresses homologous-recombination-mediated repair and promotes tumour growth, and that cGAS therefore represents a potential target for cancer prevention and therapy.
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