转铁蛋白通过PHD2介导的PPARα羟基化以铁依赖的方式促进脂肪酸氧化和肝肿瘤生长。
Transferrin promotes fatty acid oxidation and liver tumor growth through PHD2-mediated PPARα hydroxylation in an iron-dependent manner.
作者信息
Qian Xu, Zhou Qimin, Ouyang Yuan, Wu Xiaohong, Sun Xue, Wang Shuo, Duan Yuran, Hu Zhiqiang, Hou Yueru, Wang Zheng, Chen Xiaohan, Wang Katherine L, Shen Yuli, Dong Bofei, Lin Yanni, Wen Ting, Tian Qi, Guo Zhanpeng, Li Min, Xiao Liwei, Wu Qingang, Meng Ying, Liu Guijun, Ying Hangjie, Zhou Yahui, Zhang Wuchang, Duan Shengzhong, Bai Xueli, Liu Tong, Zhan Peng, Lu Zhimin, Xu Daqian
机构信息
Department of Clinical Laboratory, Zhejiang Cancer Hospital, Hangzhou Institute of Medicine, Chinese Academy of Sciences, Hangzhou 310022, China.
Zhejiang Key Laboratory of Pancreatic Disease, The First Affiliated Hospital, Zhejiang Key Laboratory of Frontier Medical Research on Cancer Metabolism, and Institute of Translational Medicine, Zhejiang University School of Medicine, Hangzhou, Zhejiang 310029, China.
出版信息
Proc Natl Acad Sci U S A. 2025 Feb 4;122(5):e2412473122. doi: 10.1073/pnas.2412473122. Epub 2025 Jan 31.
Tumor cells reshape iron and lipid metabolism for their rapid proliferation. However, how tumor cells coordinate the interplay between tumor cell-specific iron homeostasis and lipid metabolism reprogramming to counteract energy shortages remains unclear. Here, we demonstrated that glucose deprivation in hepatocellular carcinoma (HCC) cells induced AMPK-dependent Transferrin S685 phosphorylation, which exposed Transferrin nuclear localization signal (NLS) for binding to importin α7 and subsequent nuclear translocation. Nucleus-translocated Transferrin interacts with PPARα and enhance its protein stability to increase fatty acid oxidation (FAO) upon glucose deprivation. Mechanistically, PPARα-associated Transferrin upregulates iron-dependent PHD2-mediated PPARα P87 hydroxylation and subsequently disrupts the binding of MDM2 to PPARα, therefore inhibiting MDM2-mediated PPARα ubiquitination and degradation. Reconstitution of Transferrin S685A and NLS mutation or knock-in expression of PPARα P87A inhibited PPARα-mediated FAO upon energy stress, enhanced HCC cell apoptosis, and impeded liver tumor growth in mice. Importantly, combined treatment with Transferrin pS685 blocking peptide suppressing AMPK-Transferrin-PPARα axis could synergize with a well-established AMPK activator Metformin to inhibit tumor growth. Additionally, Transferrin pS685-mediated PPARα P87 hydroxylation is positively correlated with PPARα expression levels in human HCC specimens and poor patient prognosis. These findings revealed a mechanism by which Transferrin can sense energy stress to promote the hydroxylation and protein stability of PPARα through iron-dependent activation of PHD2 and underscore the moonlighting function of Transferrin in lipid catabolism and liver tumor development.
肿瘤细胞重塑铁和脂质代谢以实现快速增殖。然而,肿瘤细胞如何协调肿瘤细胞特异性铁稳态与脂质代谢重编程之间的相互作用以应对能量短缺仍不清楚。在此,我们证明肝细胞癌(HCC)细胞中的葡萄糖剥夺诱导了AMPK依赖性转铁蛋白S685磷酸化,这暴露了转铁蛋白核定位信号(NLS),使其与输入蛋白α7结合并随后发生核转位。核转位的转铁蛋白与PPARα相互作用并增强其蛋白质稳定性,以在葡萄糖剥夺时增加脂肪酸氧化(FAO)。机制上,与PPARα相关的转铁蛋白上调铁依赖性PHD2介导的PPARα P87羟基化,随后破坏MDM2与PPARα的结合,从而抑制MDM2介导的PPARα泛素化和降解。转铁蛋白S685A和NLS突变的重建或PPARα P87A的敲入表达在能量应激时抑制了PPARα介导的FAO,增强了HCC细胞凋亡,并阻碍了小鼠肝脏肿瘤的生长。重要的是,用转铁蛋白pS685阻断肽抑制AMPK-转铁蛋白-PPARα轴的联合治疗可以与成熟的AMPK激活剂二甲双胍协同作用以抑制肿瘤生长。此外,转铁蛋白pS685介导的PPARα P87羟基化与人类HCC标本中PPARα表达水平和患者预后不良呈正相关。这些发现揭示了一种机制,即转铁蛋白可以感知能量应激,通过铁依赖性激活PHD2促进PPARα的羟基化和蛋白质稳定性,并强调了转铁蛋白在脂质分解代谢和肝脏肿瘤发展中的兼职功能。