DNA错配修复
MSH2
生物
突变体
突变
遗传学
遗传筛选
聚合酶
DNA聚合酶
突变
校对
DNA修复
DNA损伤
DNA
异位表达
细胞生物学
分子生物学
小分子
癌症研究
MSH6型
核苷酸切除修复
药物发现
DNA测序
基因
抗药性
饱和突变
合成致死
计算生物学
移码突变
表型
SOS响应
作者
Alexander-Hoi Nguyen,Vicky Li,Wei‐Min Chen,Jacob Kimberg,Anthony J. Davis,David G. McFadden,Juan Manuel Povedano
标识
DOI:10.1021/acschembio.6c00605
摘要
DNA mismatch repair (MMR) deficiency has been widely utilized in forward genetic screens to identify drug resistance mutations and elucidate the mechanisms of action of cytotoxic small molecules. However, MMR deficiency generates a characteristic mutational signature enriched for C > T transitions that precludes saturation of mutagenesis. We hypothesized that expression of proofreading-deficient DNA polymerase epsilon, as has been observed in patients with biallelic MMR deficiency, would enhance mutagenesis and enable identification of new resistance mutations and cytotoxin mechanisms. Here, we combine auxin-inducible degradation of Msh2 with doxycycline-inducible expression of the proofreading-deficient PolεP286R mutant in murine small cell lung cancer (SCLC) cells. Simultaneous MMR deficiency and mutant Polε expression markedly increased the emergence of bortezomib-resistant clones relative to either perturbation alone, and targeted sequencing of Psmb5 in bortezomib-resistant clones identified recurrent mutations previously reported in resistance screens using MMR-deficient cells and chemical mutagenesis. We next applied this platform to investigate resistance to lurbinectedin, a clinically relevant therapy for SCLC. Whole-exome sequencing revealed recurrent loss-of-function alterations in nucleotide excision repair (NER) genes, most notably Ercc5 and Ercc4, implicating NER deficiency as a major mechanism of lurbinectedin resistance and supporting a central role for NER in mediating lurbinectedin-induced cytotoxicity. Collectively, these findings establish inducible ultramutagenesis as a powerful and versatile platform for the unbiased discovery of drug resistance mechanisms and therapeutic vulnerabilities.
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