英文原题:Metabolic rewiring of the dendritic cell-T cell axis: tumour-derived barriers and therapeutic opportunities.
肿瘤微环境施加了严重的代谢限制,这些限制在整个癌症-免疫循环中重塑了抗肿瘤免疫。
肿瘤微环境施加了严重的代谢限制,从而在癌症-免疫循环的各个阶段重塑抗肿瘤免疫。肿瘤来源的代谢物和营养失衡并非仅仅是肿瘤生长的被动副产物,而是作为强效的代谢检查点——阶段特异性屏障,破坏树突状细胞(DC)和T细胞从抗原呈递到有效清除肿瘤的功能进程。在本综述中,我们提出一个框架,将癌症-免疫循环与主要代谢检查点相叠加,包括葡萄糖和氨基酸竞争、酸中毒和脂质过载,以阐明不同的代谢应激如何在抗肿瘤反应的不同阶段造成免疫瓶颈。随后,我们讨论以高糖酵解、氨基酸依赖或脂质失调为特征的不同肿瘤代谢表型如何产生局部环境应激,从而差异化地重编程DC功能和T细胞适应性。特别强调DC-T细胞轴作为多个代谢缺陷汇聚的关键位点,破坏抗原呈递、共刺激和免疫突触功能的稳定性。我们进一步综述旨在恢复DC-T细胞轴和有效抗肿瘤免疫的新兴治疗策略,从小分子代谢抑制剂到经代谢工程改造、设计用于在恶劣微环境中发挥作用的过继细胞疗法。最后,我们重点介绍新兴技术,如单细胞和空间多组学、实时代谢成像和微生理系统,这些技术能够解析肿瘤免疫代谢的时空异质性,并支持更精准的免疫代谢干预。
The tumour microenvironment imposes severe metabolic constraints that reshape anti-tumour immunity across the cancer-immunity cycle. Rather than serving merely as passive byproducts of tumour growth, tumour-derived metabolites and nutrient imbalances act as potent metabolic checkpoints-stage-specific barriers that disrupt the functional progression of dendritic cells (DCs) and T cells from antigen presentation to effective tumour clearance. In this review, we propose a framework that overlays the cancer-immunity cycle with major metabolic checkpoints, including glucose and amino acid competition, acidosis and lipid overload, to clarify how distinct metabolic stresses create immune bottlenecks at different stages of the anti-tumour response. We then discuss how distinct tumour metabolic phenotypes, characterized by high glycolysis, amino acid dependency or lipid dysregulation, generate local environmental stresses that differentially reprogram DC function and T cell fitness. Particular emphasis is placed on the DC-T cell axis as a critical site where multiple metabolic defects converge, destabilizing antigen presentation, co-stimulation and immunological synapse function. We further survey emerging therapeutic strategies aimed at restoring the DC-T cell axis and effective anti-tumour immunity, ranging from small-molecule metabolic inhibitors to metabolically engineered adoptive cell therapies designed to function in hostile microenvironments. Finally, we highlight emerging technologies such as single-cell and spatial multi-omics, real-time metabolic imaging and microphysiological systems that can resolve the spatiotemporal heterogeneity of tumour immunometabolism and support more precise immunometabolic interventions.
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