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低氧激活乳腺癌微环境中的 PFKFB4 以塑造代谢和细胞可塑性,从而增强转移能力。

Hypoxic activation of PFKFB4 in breast tumor microenvironment shapes metabolic and cellular plasticity to accentuate metastatic competence.

机构信息

Department of Cell Stress Biology, Roswell Park Comprehensive Cancer Center, Buffalo, NY 14263, USA.

Department of Biostatistics and Bioinformatics, Roswell Park Comprehensive Cancer Center, Buffalo, NY 14263, USA.

出版信息

Cell Rep. 2022 Dec 6;41(10):111756. doi: 10.1016/j.celrep.2022.111756.

Abstract

Cancer cells encounter a hostile tumor microenvironment (TME), and their adaptations to metabolic stresses determine metastatic competence. Here, we show that the metabolic enzyme 6-phosphofructo-2-kinase/fructose-2,6-biphosphatase-4 (PFKFB4) is induced in hypoxic tumors acquiring metabolic plasticity and invasive phenotype. In mouse models of breast cancer, genetic ablation of PFKFB4 significantly delays distant organ metastasis, reducing local lymph node invasion by suppressing expression of invasive gene signature including integrin β3. Photoacoustic imaging followed by metabolomics analyses of hypoxic tumors show that PFKFB4 drives metabolic flexibility, enabling rapid detoxification of reactive oxygen species favoring survival under selective pressure. Mechanistically, hypoxic induction triggers nuclear translocation of PFKFB4 accentuating non-canonical transcriptional activation of HIF-1α, and breast cancer patients with increased nuclear PFKFB4 in their tumors are found to be significantly associated with poor prognosis. Our findings imply that PFKFB4 induction is crucial for tumor cell adaptation in the hypoxic TME that determines metastatic competence.

摘要

癌细胞会遇到恶劣的肿瘤微环境(TME),它们对代谢压力的适应能力决定了转移能力。在这里,我们表明,在获得代谢可塑性和侵袭表型的缺氧肿瘤中,代谢酶 6-磷酸果糖-2-激酶/果糖-2,6-二磷酸酶-4(PFKFB4)被诱导。在乳腺癌的小鼠模型中,PFKFB4 的基因缺失显著延迟了远处器官的转移,通过抑制包括整合素 β3 在内的侵袭基因特征的表达,减少了局部淋巴结的侵袭。对缺氧肿瘤的光声成像和代谢组学分析表明,PFKFB4 驱动代谢灵活性,使肿瘤能够快速解毒活性氧,从而在选择性压力下有利于存活。在机制上,缺氧诱导触发 PFKFB4 的核易位,从而增强 HIF-1α 的非经典转录激活,并且在肿瘤中核 PFKFB4 增加的乳腺癌患者被发现与预后不良显著相关。我们的研究结果表明,PFKFB4 的诱导对于决定转移能力的缺氧 TME 中的肿瘤细胞适应至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/81ee/9807018/5a5a66aff7e5/nihms-1855848-f0002.jpg

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