SCRMP-mediated SUMOylation of CSNK2B facilitates DNA damage repair to promote cisplatin resistance in small cell lung cancer

顺铂 DNA损伤 癌症研究 DNA修复 转录组 基因敲除 细胞凋亡 生物 合成致死 肺癌 化学 癌症 医学 DNA损伤修复 细胞 组蛋白 p14arf公司 化疗 程序性细胞死亡 细胞生物学 克拉斯 核苷酸切除修复 癌细胞 支票1
作者
Yuli Chen,Qinnan Chen,Jiahao Guo,Ziwei Li,Shaokun Yu,Peng Huang,Ke Xiao,Xuefei Shi,Ming Sun,聂凤琪,Xiang-hua Liu
出处
期刊:Science Translational Medicine [American Association for the Advancement of Science]
卷期号:18 (868): eaea5653-eaea5653
标识
DOI:10.1126/scitranslmed.aea5653
摘要

Small cell lung cancer (SCLC) represents the most lethal subtype of lung carcinoma. Platinum-based agents, such as cisplatin and carboplatin, remain the cornerstone of first-line therapy for patients with SCLC, whether administered as chemotherapy alone or in combination with immunotherapy. However, patients frequently develop platinum resistance within a short time frame, leading to therapeutic failure. The molecular mechanisms underlying platinum resistance in SCLC require further investigation, given that effective intervention strategies remain elusive. Through multiomic analysis integrating transcriptomic data from cisplatin-resistant PDX tissues and the IMpower133 SCLC cohort study and translatomic data from SCLC cells, we identified a platinum resistance–associated noncanonical open reading frame derived from MIR7 - 3HG . This noncanonical ORF encodes an unannotated 128–amino acid protein, designated SCRMP (SCLC cisplatin resistance–associated microprotein). SCRMP was up-regulated in cisplatin-resistant SCLC tissues and cell lines, and its elevated expression strongly correlated with impaired platinum response and unfavorable survival outcomes in patients. CRISPR-Cas9–mediated SCRMP knockout restored cisplatin sensitivity and promoted apoptosis in SCLC cells, platinum-resistant patient–derived organoids in vitro, and patient-derived xenografts in vivo. Mechanistically, SCRMP potentiated platinum resistance by mediating SUMOylation and nuclear translocation of CSNK2B, which stabilized the RBBP4-p300 complex. This stabilization activated transcription of RAD51C and associated DNA damage repair genes through histone acetylation, ultimately promoting therapeutic resistance. Our study systematically elucidates the biological function of SCRMP in SCLC platinum resistance and delineates its specific molecular mechanism in regulating DNA damage repair, thereby providing theoretical foundations and potential intervention strategies for overcoming platinum resistance in SCLC.
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