Harada Yoichiro
Department of Glyco-Oncology and Medical Biochemistry, Research Institute, Osaka International Cancer Institute, Japan.
FEBS J. 2025 Apr;292(7):1505-1519. doi: 10.1111/febs.17230. Epub 2024 Aug 11.
Cancer cells acquire metabolic advantages over their normal counterparts regarding the use of nutrients for sustained cell proliferation and cell survival in the tumor microenvironment. Notable among the metabolic traits in cancer cells is the Warburg effect, which is a reprogrammed form of glycolysis that favors the rapid generation of ATP from glucose and the production of biological macromolecules by diverting glucose into various metabolic intermediates. Meanwhile, mannose, which is the C-2 epimer of glucose, has the ability to dampen the Warburg effect, resulting in slow-cycling cancer cells that are highly susceptible to chemotherapy. This anticancer effect of mannose appears when its catabolism is compromised in cancer cells. Moreover, de novo synthesis of mannose within cancer cells has also been identified as a potential target for enhancing chemosensitivity through targeting glycosylation pathways. The underlying mechanisms by which alterations in mannose metabolism induce cancer cell vulnerability are just beginning to emerge. This review summarizes the current state of our knowledge of mannose metabolism and provides insights into its manipulation as a potential anticancer strategy.
与正常细胞相比,癌细胞在肿瘤微环境中利用营养物质进行持续细胞增殖和细胞存活方面具有代谢优势。癌细胞的代谢特征中值得注意的是瓦伯格效应,这是一种糖酵解的重编程形式,有利于通过将葡萄糖转化为各种代谢中间体快速从葡萄糖生成ATP并产生生物大分子。同时,甘露糖是葡萄糖的C-2差向异构体,具有抑制瓦伯格效应的能力,导致癌细胞增殖缓慢且对化疗高度敏感。当癌细胞中甘露糖的分解代谢受损时,甘露糖的这种抗癌作用就会出现。此外,癌细胞内甘露糖的从头合成也已被确定为通过靶向糖基化途径增强化疗敏感性的潜在靶点。甘露糖代谢改变诱导癌细胞易感性的潜在机制才刚刚开始显现。本综述总结了我们目前对甘露糖代谢的认识,并深入探讨了将其作为一种潜在抗癌策略进行调控的方法。