重编程
过氧化物酶体
肝细胞
自噬
肝细胞癌
癌症研究
细胞生物学
生物
泛素连接酶
化学
脂滴
肿瘤缺氧
脂毒性
缺氧(环境)
癌变
肿瘤微环境
细胞器
运动性
细胞培养
泛素
体外
细胞分化
干细胞
作者
Qi Su,Yi Yang,Jiayan Ren,Yu Zhang,Lijuan Fu,Qing Wu,Xu Han,Yanmin Zhang,Yanmin Zhang,Yanmin Zhang
标识
DOI:10.1073/pnas.2535777123
摘要
Tumor hypoxia promotes dedifferentiation and metabolic reprogramming in hepatocellular carcinoma (HCC), undermining normal liver functions. Here, we identify the E3 ubiquitin ligase RNF126 as a hypoxia-inducible "peroxisomal fate" switch that links the hypoxic microenvironment to loss of hepatocyte differentiation. Under hypoxia, HIF-2α drives RNF126 expression, which in turn ubiquitinates the peroxisomal membrane transporter ABCD3, triggering selective peroxisome autophagy (pexophagy) and depletion of peroxisomes. This organelle loss ablates very-long-chain fatty acid β-oxidation and hydrogen peroxide detoxification, erasing key hepatocyte differentiation features. We show that genetic RNF126 ablation restores peroxisomal functions and impairs hypoxic HCC growth. Leveraging these insights, we developed a small-molecule RNF126 inhibitor, D665-1412, which selectively blocks hypoxia-induced pexophagy. D665-1412 treatment stabilizes peroxisomes, normalizes lipid metabolism, and reactivates hepatocytic differentiation markers, thereby "redifferentiating" HCC cells and suppressing tumor progression in vitro and in vivo. Our findings establish the HIF-2α-RNF126-ABCD3 axis as a driver of HCC dedifferentiation and present organelle-targeted redifferentiation therapy as a promising approach for liver cancer.
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