双酚A
GPX4
双酚S
生物化学
化学
巴基斯坦卢比
甲基乙二醛
细胞生物学
表观遗传学
代谢组学
谷胱甘肽
氧化应激
表面等离子共振
过氧化物酶
蛋白质-蛋白质相互作用
药理学
内分泌干扰物
活性氧
下调和上调
聚乙二醇化
蛋白质组学
作者
Yanwei Wang,Jiahui Zhao,Yong Chen,Xuesong Liu,Tengfei Xu,Mingliang Fang
标识
DOI:10.1021/acs.est.5c08855
摘要
Chronic bisphenol exposure is a recognized disruptor of liver function, and although ferroptosis has been implicated, the underlying molecular mechanisms remain poorly defined. Here, integrative chemical proteomics and untargeted metabolomics were used to elucidate mechanisms of ferroptosis induced by bisphenol A (BPA) and bisphenol S (BPS) in hepatic cells. BPA elicited a pronounced ferroptotic phenotype, whereas BPS elicited a moderate phenotype in hepatocytes. Glutathione peroxidase 4 (GPX4) and pyruvate kinase M2 isoform (PKM2) were identified as critical targets, respectively. Validation through cellular thermal shift assay (CETSA), surface plasmon resonance (SPR), and molecular docking confirmed that BPA specifically binds to GPX4 ( K D = 37.6 μM), while BPS exhibits moderate affinity for PKM2 ( K D = 14.4 μM). Functional rescue experiments demonstrated that GPX4 overexpression effectively reversed BPA-induced ferroptosis and partially alleviated BPS-induced effects, whereas PKM2 overexpression specifically mitigated BPS-triggered cytotoxicity. Mechanistically, BPA inhibited GPX4 activity, impairing lipid peroxide detoxification and triggering ferroptosis; BPS suppressed PKM2, promoting glucose flux toward the methylglyoxal (MGO) pathway, depleting glutathione, and activating oxidative stress, thereby inducing ferroptosis indirectly. This study clarifies bisphenol-induced ferroptosis via target heterogeneity, providing mechanistic insights that may inform future safety evaluations.
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