Departments of Experimental Immunology and Hematology, Amsterdam UMC location University of Amsterdam, The Netherlands.
Cancer Immunology, Cancer Center Amsterdam, The Netherlands.
Mol Oncol. 2024 Jul;18(7):1777-1794. doi: 10.1002/1878-0261.13570. Epub 2024 Jan 3.
Glucose catabolism, one of the essential pathways sustaining cellular bioenergetics, has been widely studied in the context of tumors. Nevertheless, the function of various branches of glucose metabolism that stem from 'classical' glycolysis have only been partially explored. This review focuses on discussing general mechanisms and pathological implications of glycolysis and its branching pathways in the biology of B cell malignancies. We summarize here what is known regarding pentose phosphate, hexosamine, serine biosynthesis, and glycogen synthesis pathways in this group of tumors. Despite most findings have been based on malignant B cells themselves, we also discuss the role of glucose metabolism in the tumor microenvironment, with a focus on T cells. Understanding the contribution of glycolysis branching pathways and how they are hijacked in B cell malignancies will help to dissect the role they have in sustaining the dissemination and proliferation of tumor B cells and regulating immune responses within these tumors. Ultimately, this should lead to deciphering associated vulnerabilities and improve current therapeutic schedules.
葡萄糖分解代谢是维持细胞生物能量的基本途径之一,在肿瘤学领域已得到广泛研究。然而,源自“经典”糖酵解的葡萄糖代谢的各个分支的功能仅得到部分探索。本综述重点讨论了糖酵解及其分支途径在 B 细胞恶性肿瘤生物学中的普遍机制和病理意义。我们在这里总结了在该肿瘤组中戊糖磷酸、己糖胺、丝氨酸生物合成和糖原合成途径的已知内容。尽管大多数发现基于恶性 B 细胞本身,但我们也讨论了葡萄糖代谢在肿瘤微环境中的作用,重点是 T 细胞。了解糖酵解分支途径的贡献以及它们如何在 B 细胞恶性肿瘤中被劫持,将有助于剖析它们在维持肿瘤 B 细胞的扩散和增殖以及调节这些肿瘤内免疫反应中的作用。最终,这应该可以揭示相关的脆弱性,并改善当前的治疗方案。