抗辐射性
选择性拼接
DNA修复
癌症研究
RNA剪接
基因敲除
生物
外显子
DNA损伤
同源重组
下调和上调
合成致死
调节器
拼接因子
癌症
基因亚型
PARP抑制剂
克隆形成试验
细胞
细胞生长
细胞生物学
细胞凋亡
抑制器
癌细胞
小基因
DNA损伤修复
细胞培养
癌变
化学
DNA
作者
Fan-Tong Xia,Siqi Cai,Jie Yang,Jia Jiang,Yi-hong Hu,H. Zhang,Meng-Qi Yang,Xi Zhang,Dan Li,Yun-Chang Liu,Zhi-yun Liao,Jiang-Dong Sui,Yu Wang
标识
DOI:10.1186/s13046-026-03697-4
摘要
Radioresistance remains a major obstacle in oral squamous cell carcinoma (OSCC) therapy. This study aimed to elucidate the role of abnormal alternative splicing (AS) and key splicing factors in this process, focusing on their mechanistic contributions to DNA repair. We integrated RNA-sequencing data from irradiated OSCC mouse models with public datasets to profile splicing factor dynamics. Clinical relevance of hnRNPA1 was validated in an OSCC cohort. Functional roles were assessed via clonogenic survival, CCK-8, and xenograft assays. Mechanisms were delineated using co-immunoprecipitation, immunofluorescence, and analysis of MARF1 splicing and downstream DNA repair pathways. hnRNPA1 was significantly upregulated in OSCC tissues and correlated with poor radiotherapy response. Its knockdown suppressed OSCC cell proliferation and impaired DNA double-strand break repair. Mechanistically, hnRNPA1 interacted with SF3B3 to inhibit exon 8 skipping of MARF1, promoting the oncogenic MARF1-L isoform. MARF1-L enhanced radioresistance by degrading PPP1R10, a negative regulator of Chk1, thereby activating homologous recombination repair (HR). These findings identified hnRNPA1 as a pivotal orchestrator of OSCC radioresistance, which, through an SF3B3-dependent MARF1 splicing switch and subsequent PPP1R10 degradation, activates HR repair. Targeting the hnRNPA1-SF3B3-MARF1 axis presents a novel therapeutic strategy to overcome radioresistance in OSCC.
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