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Nature metabolism

Nature metabolism

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ENO2-derived phosphoenolpyruvate functions as an endogenous inhibitor of HDAC1 and confers resistance to antiangiogenic therapy

Published:4 September 2023 DOI: PMID: 37667133
Chenran Wang, Maohua Huang, Yuning Lin, Yiming Zhang, Jinghua Pan, Chang Jiang, Minjing Cheng, Shenrong Li, Wenzhuo He, Zhengqiu Li, Zhengchao Tu, Jun Fan, Huhu Zeng, Jiahui Lin, Yongjin Wang, Nan Yao, Tongzheng Liu, Qi Qi, Xiangning Liu, Zhimin Zhang, Minfeng Chen, Liangping Xia, Dongmei Zhang, Wencai Ye

Abstract

Metabolic reprogramming is associated with resistance to antiangiogenic therapy in cancer. However, its molecular mechanisms have not been clearly elucidated. Here, we identify the glycolytic enzyme enolase 2 (ENO2) as a driver of resistance to antiangiogenic therapy in colorectal cancer (CRC) mouse models and human participants. ENO2 overexpression induces neuroendocrine differentiation, promotes malignant behaviour in CRC and desensitizes CRC to antiangiogenic drugs. Mechanistically, the ENO2-derived metabolite phosphoenolpyruvate (PEP) selectively inhibits histone deacetylase 1 (HDAC1) activity, which increases the acetylation of β-catenin and activates the β-catenin pathway in CRC. Inhibition of ENO2 with enolase inhibitors AP-III-a4 or POMHEX synergizes the efficacy of antiangiogenic drugs in vitro and in mice bearing drug-resistant CRC xenograft tumours. Together, our findings reveal that ENO2 constitutes a useful predictive biomarker and therapeutic target for resistance to antiangiogenic therapy in CRC, and uncover a previously undefined and metabolism-independent role of PEP in regulating resistance to antiangiogenic therapy by functioning as an endogenous HDAC1 inhibitor. In this study, Wang et al. show that the glycolytic metabolite phosphoenolpyruvate, produced by enolase 2, contributes to colorectal cancer malignancy and resistance to antiangiogenic therapy by inhibiting endogenous histone deacetylase 1 and favouring β-catenin signalling.

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