肾毒性
顺铂
药理学
活性氧
线粒体
肾
癌症研究
化疗
药品
医学
化学
免疫系统
急性肾损伤
信号转导
线粒体ROS
癌症
氧化应激
联合疗法
炎症
生物
病理生理学
肾脏生理学
药物发现
代谢途径
氧化磷酸化
作用机理
细胞信号
癌症治疗
生物信息学
癌细胞
细胞因子
作者
Piao Luo,Junhui Chen,Yehai An,Kun Meng,Wei Zhou,Wenhui Li,Jing Liu,Wentong Zhao,Weiyi He,Ting Cao,Jingnan Huang,Sha Feng,Shiguang Yang,Hongling Hu,Junjie Liao,Hengkai He,Mingjing Hao,Qian Zhang,Jigang Wang,Yue Gao
标识
DOI:10.1002/advs.202506712
摘要
Cisplatin (CDDP) is a highly effective chemotherapy drug with broad clinical utility. Yet its therapeutic application is significantly constrained by off-target toxicities, especially nephrotoxicity. However, the molecular mechanisms underlying CDDP-induced kidney injury remain incompletely elucidated. Here, integrated multi-omics approaches are employed to dissect the pathophysiology of CDDP nephrotoxicity and uncover that CDDP directly binds to mitochondrial proteins, causing metabolic dysfunction and impairing mitochondrial respiration. Additionally, CDDP triggers mitochondrial reactive oxygen species generation, activating the nuclear factor kappa-B (NF-κB) signaling pathway and downstream inflammatory effectors. scRNA-seq analysis reveals remarkable cellular heterogeneity in the renal response to CDDP exposure. Mechanistically, it is identified that CDDP-bound proteins are predominantly localized in proximal tubular (PT) cells. Ligand-receptor analysis demonstrates that CDDP-damaged PT cells recruit and activate renal immune cells in tumor-bearing mice, exacerbating renal injury. Notably, icaritin (ICA) effectively mitigates CDDP-induced reactive oxygen species (ROS) accumulation, suppresses NF-κB activation and inflammation, and restores metabolic homeostasis. Combinatorial treatment with ICA not only ameliorates CDDP-induced nephrotoxicity but also enhances its anti-cancer efficacy. Taken together, these findings provide novel mechanistic insights into CDDP nephrotoxicity and propose a dual-function therapeutic strategy to optimize CDDP-based cancer therapy while minimizing renal damage.
科研通智能强力驱动
Strongly Powered by AbleSci AI