GPER-mediated stabilization of HIF-1α contributes to upregulated aerobic glycolysis in tamoxifen-resistant cells

被引:0
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作者
Yue Zhang
Yuxuan Song
Shuang Ren
Minqin Zhang
Zhao Zhang
Shuangqin Fan
Xing Liu
Xiaoyu Peng
Qi Qi
Xiangchun Shen
Yan Chen
机构
[1] Guizhou Medical University,The High Efficacy Application of Natural Medicinal Resources Engineering Center of Guizhou Province, School of Pharmaceutical Sciences
[2] University Town,Translational Medicine Research Center of Guizhou Medical University
[3] Guian New District,The Key Laboratory of Environmental Pollution Monitoring and Disease Control, Ministry of Education, School of Public Health
[4] Guizhou Medical University,Medical Examination Center
[5] University Town,MOE Key Laboratory of Tumor Molecular Biology, Clinical Translational Center for Targeted Drug, Department of Pharmacology, School of Medicine
[6] Guian New District,undefined
[7] Guizhou Medical University,undefined
[8] Shuguang Hospital Affiliated to Shanghai University of Traditional Chinese Medicine,undefined
[9] Jinan University,undefined
来源
Oncogene | 2023年 / 42卷
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摘要
Tamoxifen is a first-line therapeutic drug for oestrogen-receptor positive breast cancer; however, like other therapeutics, its clinical use is limited by acquired resistance. Tamoxifen-resistant cells have demonstrated enhanced aerobic glycolysis; however, the mechanisms underlying this upregulation remain unclear. Here, we demonstrated that G-protein coupled oestrogen receptor (GPER) was involved in the upregulation of aerobic glycolysis via induction of hypoxia-inducible factor-1α (HIF-1α) expression and transcriptional activity in tamoxifen-resistant cells. Additionally, GPER stabilized HIF-1α through inhibiting its hydroxylation and ubiquitin-mediated degradation, which were associated with upregulation of C-terminal hydrolase-L1 (UCH-L1), downregulation of prolyl hydroxylase 2 (PHD2) and von Hippel-Lindau tumour suppressor protein (pVHL), induction of HIF-1α/UCH-L1 interaction, and suppression of HIF-1α/PHD2-pVHL association. The GPER/HIF-1α axis was functionally responsible for regulating tamoxifen sensitivity both in vitro and in vivo. Moreover, there was a positive correlation between GPER and HIF-1α expression in clinical breast cancer tissues, and high levels of GPER combined with nuclear HIF-1α indicated poor overall survival. High levels of the GPER/HIF-1α axis were also correlated with shorter relapse-free survival in patients receiving tamoxifen. Hence, our findings support a critical role of GPER/HIF-1α axis in the regulation of aerobic glycolysis in tamoxifen-resistant cells, offering a potential therapeutic target for tamoxifen-resistant breast cancer.
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页码:184 / 197
页数:13
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