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为代谢引擎增压:用于实体瘤中 CAR-T 持久性的线粒体工程策略

英文原题:Supercharging the metabolic engine: mitochondrial engineering strategies for CAR-T persistence in solid tumors.

PubMed 2026/05/08(内容时间) Front Immunol Q1 · IF 7(JCR 2025)

研究概要

嵌合抗原受体(CAR)-T 细胞疗法在血液系统恶性肿瘤中取得了显著成功,但其在实体瘤中的疗效受到代谢上不利的肿瘤微环境(TME)的严重限制。

中文摘要

嵌合抗原受体(CAR)T细胞疗法在血液系统恶性肿瘤中取得了显著成功,但其在实体瘤中的疗效受到代谢环境恶劣的肿瘤微环境(TME)严重限制。在这种环境中,线粒体功能障碍和代谢不足会驱动CAR-T细胞迅速发生功能耗竭。本短篇综述总结了旨在恢复代谢适能和持久性的线粒体工程新策略。首先,我们考察新近发现的代谢-表观遗传轴:P4HA1异常转位至线粒体并伴随致癌代谢物琥珀酸积累,会使T细胞锁定于耗竭状态;并讨论靶向该通路如何恢复祖细胞样亚群。此外,我们探讨基因重编程方法,包括将缺氧感知元件(HRE)与增强谷氨酸运输(SLC38A2)相结合的“Envirotune”平台,以及通过CRISPR筛选发现的RHOG和FAS等靶点;这些靶点可防止同类相残和细胞凋亡,以维持效应细胞群。最后,我们介绍细胞器医学前沿,重点关注由Talin-2介导、通过隧道纳米管(TNT)进行的细胞间线粒体转移,以及用于检测线粒体劫持风险的新兴计算策略。通过整合这些代谢干预措施,可将下一代CAR-T细胞工程化,使其克服TME的代谢屏障,从短暂效应细胞转变为持久且高效的治疗细胞。

展开英文摘要原文

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.

论文信息

作者
Chun S、Yu S、Lee HG、Kim MS
单位
Translational-Transdisciplinary Research Center, Medical Science Research Institute, Kyung Hee University Hospital at Gangdong, College of Medicine, Kyung Hee University, Seoul, Republic of Korea.South Korea
文献类型
综述
期刊
Frontiers in immunology2026
原文标识
PubMed 42183245 · DOI 10.3389/fimmu.2026.1822668