Translational Aspects of DNA Damage Repair in Optimizing Cancer Chemotherapy

DNA损伤 DNA修复 癌症研究 DNA损伤修复 免疫疗法 计算生物学 同源重组 DNA错配修复 核苷酸切除修复 生物 免疫检查点 化疗 信号转导 癌症 癌症免疫疗法 共济失调毛细血管扩张 生物标志物 聚ADP核糖聚合酶 PARP1 肿瘤微环境 医学 转化研究 生物信息学 基底切除修复术 DNA 机制(生物学) 免疫系统 G2-M DNA损伤检查点 细胞信号 肿瘤进展 突变 细胞周期检查点 合成致死 基因组不稳定性
作者
Anqi Lin,HE Jinyue,Aimin Jiang,Jian Zhang,Quan Cheng,Hengguo Zhang,Wenjun MAO,P. Luo
出处
期刊:Advanced genetics [Wiley]
卷期号:6 (4): e00036-e00036
标识
DOI:10.1002/ggn2.202500036
摘要

The DNA Damage Repair (DDR) signaling pathway serves as a crucial molecular hub that regulates chemotherapy efficacy, offering significant translational value in the field of precision oncology. This review systematically analyzes the molecular mechanisms of five core DDR pathways (Homologous Recombination Repair, Non-Homologous End Joining, Base Excision Repair, Nucleotide Excision Repair, and Mismatch Repair) in mediating chemotherapy resistance in tumors, and thoroughly elucidates the correlation between key molecular events-such as BRCA1/2 deficiency, MMR functional abnormalities, and Ataxia Telangiectasia Mutated/Ataxia Telangiectasia and Rad3-related (ATM/ATR) signaling pathway dysregulation-and chemotherapy sensitivity. The DDR deficiency biomarker system established through the integration of multi-omics data provides molecular classification tools for predicting the efficacy of platinum-based drugs. This study focuses on the mechanism by which Poly ADP-Ribose Polymerase inhibitors reverse Homologous Recombination-Deficient tumor resistance through "synthetic lethality" effects while also revealing the synergistic anti-tumor effects of ATM/ATR inhibitors in combination with chemotherapeutic agents. The research presents an innovative molecular synergy model between DDR regulation and Immune Checkpoint Blockade, confirming that tumor neoantigen release induced by DDR deficiency can enhance immunotherapy responses. This article also provides perspectives on multidimensional intervention strategies based on the DDR network, including the development of inhibitors targeting novel DDR targets, the establishment of DDR pathway functional assessment systems based on multidimensional biomarkers, and the investigation of synergistic paradigms between DDR and novel therapeutic modalities. Additionally, we explore the dynamic evolution mechanisms of DDR-mediated chemotherapy resistance by analyzing the interactions between DDR and metabolic reprogramming, as well as other related processes. These breakthrough advances provide theoretical foundations and innovative directions for overcoming chemotherapy resistance and advancing personalized treatment, marking a new era in cancer therapy characterized by precision targeting of DDR pathways.
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