生物
细胞生物学
重编程
线粒体
效应器
肿瘤微环境
线粒体融合
MFN1型
祖细胞
嵌合抗原受体
癌症研究
细胞凋亡
线粒体分裂
代谢途径
机制(生物学)
细胞
谷氨酰胺
细胞疗法
生物信息学
线粒体DNA
焊剂(冶金)
粒体自噬
免疫疗法
微泡
表观遗传学
线粒体内膜
干细胞
信号转导
染色体易位
间充质干细胞
作者
Soohyun Chun,Sanghyeon Yu,Hyun Gu Lee,Man S. Kim
标识
DOI:10.3389/fimmu.2026.1822668
摘要
Chimeric antigen receptor (CAR)-T cell therapy has achieved remarkable success in hematological malignancies, yet its efficacy in solid tumors is severely limited by the metabolically hostile tumor microenvironment (TME). Within this landscape, CAR-T cells undergo rapid functional exhaustion driven by mitochondrial dysfunction and metabolic insufficiency. This mini-review synthesizes emerging mitochondrial engineering strategies designed to restore metabolic fitness and persistence. We first examine the newly identified metabolic-epigenetic axis, where the pathological mitochondrial translocation of P4HA1 and the concomitant accumulation of oncometabolite succinate lock T cells in an exhausted state, and discuss how targeting this pathway restores progenitor subsets. Furthermore, we explore genetic reprogramming approaches, including “Envirotune” platforms that couple hypoxia-sensing elements (HRE) with enhanced glutamine transport ( SLC38A2 ), and CRISPR-identified targets such as RHOG and FAS that prevent fratricide and apoptosis to preserve effector pools. Finally, we highlight the frontier of organelle medicine, focusing on intercellular mitochondrial transfer via tunneling nanotubes (TNTs) mediated by Talin-2, and emerging computational strategies to detect mitochondrial hijacking risk. By integrating these metabolic interventions, next-generation CAR-T cells can be engineered to overcome the TME’s metabolic barriers, transforming them from transient effectors into long-lived, highly effective therapeutic agents.
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