DNA损伤
DNA修复
生物
癌症研究
MLH1
DNA错配修复
突变
泛素
生物信息学
泛素连接酶
DNA
癌症
细胞培养
癌细胞
DNA连接酶
合成致死
结直肠癌
分子生物学
DDB1型
同源重组
细胞
癌变
DNA损伤修复
细胞生长
蛋白质降解
MSH2
DNA修复蛋白XRCC4
ERCC1公司
基因
遗传学
程序性细胞死亡
细胞生物学
细胞毒性
抑癌基因
拓扑异构酶
化学
作者
Garik V. Mkrtchyan,Alexander Veviorskiy,Zarah Meisen,Michael Petr,Tobias Mercurio,Daniela Bakula,Peter Sykora,Li‐Wei Kuo,Dean S. Rosenthal,Cynthia Simbulan-Rosenthal,Peiran Zhang,Qiuqiong Tang,Andreyan Osipov,Ivan Ozerov,Alex Aliper,Alex Zhavoronkov,Morten Scheibye‐Knudsen
标识
DOI:10.5061/dryad.sbcc2frp8
摘要
Cancer cells exploit DNA repair to overcome damage and errors induced by rapid proliferation and repressed checkpoints. Thus, the loss of one DNA repair protein can make tumors more susceptible to inhibition of other repair pathways. Here, using in silico methodologies and high-content genetic and cell survival screens, we found that the antimalarial drug quinacrine impaired the DNA damage response (DDR) in multiple cancer cell lines. Quinacrine disrupted the interaction of the stress-response protein NDRG1 with the major segregase VCP, which in turn promoted the degradation of the E3 ubiquitin ligase RNF8 and other proteins that mediate the recruitment of the critical DDR protein 53BP1 to sites of DNA damage. This impaired recruitment of 53BP1 caused increases in the DNA damage marker γH2AX. High NDRG1 expression in tumors correlated with poor survival in patients, and high expression in various cancer cell lines correlated with quinacrine sensitivity. Colorectal carcinoma cells were particularly vulnerable to pharmacological or genetic inhibition of NDRG1, and high NDRG1 expression and mutations in MLH1 and PARP3 resulted in synthetic lethality. Our findings identify combination genetic markers that might be therapeutically exploited in colon cancer, as well as provide a platform for such discovery in distinct cancer types.
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