CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Metabolic modulation of immune cell function: mechanisms and therapeutic implications in cancer immunotherapy.
Metabolic modulation of immune cell function: mechanisms and therapeutic implications in cancer immunotherapy.
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免疫细胞功能具有显著可塑性,T 细胞、NK 细胞和巨噬细胞可从静息或低活性状态转变为增殖、细胞毒性或炎症程序。这些功能变化与代谢重编程密切相关;代谢重编程不仅提供能量和生物合成原料,也塑造引导免疫应答的表观遗传和转录图谱。本综述重点介绍糖酵解、脂肪酸氧化、氨基酸代谢和三羧酸循环中间产物等细胞内在代谢通路,如何调节 T 细胞与 NK 细胞的增殖、细胞毒性、记忆形成和表观遗传程序。文章还讨论巨噬细胞促炎性 M1 状态或组织修复性 M2 状态的极化如何由精氨酸代谢、氧化磷酸化和脂肪酸氧化等不同代谢程序驱动,并影响局部免疫调节。随后,综述探讨肿瘤如何利用这些代谢依赖性,营造限制营养物质、积累免疫抑制性代谢物并抑制免疫细胞活性的恶劣微环境。
最后,文章讨论旨在恢复免疫功能、提高免疫检查点抑制剂疗效,并改善营养匮乏和缺氧肿瘤区域中过继性 T 细胞疗法(包括 CAR-T 细胞)持续性和细胞毒性的新兴代谢干预措施。通过将免疫细胞可塑性与代谢调控相联系,本综述为理解代谢如何塑造免疫提供框架,并指出可用于下一代癌症免疫治疗的干预策略。
Immune cell function is remarkably plastic, allowing T cells, NK cells, and macrophages to transition from resting or quiescent states to proliferative, cytotoxic, or inflammatory programs. These functional shifts are tightly coupled to metabolic reprogramming, which not only fuels energy and biosynthesis but also shapes epigenetic and transcriptional landscapes that guide immune responses.
In this review, we highlight how intrinsic metabolic pathways which include glycolysis, fatty acid oxidation, amino acid metabolism, and TCA cycle intermediates, regulate T and NK cell proliferation, cytotoxicity, memory formation, and epigenetic programs.
We also examine macrophages, whose polarization into pro-inflammatory M1 or tissue-reparative M2 states is orchestrated by distinct metabolic programs such as arginine metabolism, oxidative phosphorylation, and fatty acid oxidation, with consequences for local immune regulation.
We then explore how tumors exploit these metabolic dependencies to create hostile microenvironments that restrict nutrients, accumulate immunosuppressive metabolites, and dampen immune cell activity.
Finally, we discuss emerging metabolic interventions designed to restore immune fitness, enhance the efficacy of immune checkpoint inhibitors, and improve the persistence and cytotoxicity of adoptive T cell therapies, including CAR-T cells, in nutrient-deprived and hypoxic tumor niches. By linking immune cell plasticity to metabolic control, this review provides a framework for understanding how metabolism shapes immunity and identifies strategies to harness these pathways for next-generation cancer immunotherapies.
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