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重编程 T 细胞代谢以增强实体瘤微环境中 CAR-T 细胞的功能

英文原题:Rewiring T Cell Metabolism to Enhance CAR T Cell Function in Solid Tumor Microenvironments.

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Rewiring T Cell Metabolism to Enhance CAR T Cell Function in Solid Tumor Microenvironments.

PubMed 2025/11/26(内容时间) Pharmaceutics Q1 · IF 6.9(JCR 2025)

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中文摘要

嵌合抗原受体(CAR)T细胞在某些血液肿瘤中取得显著临床成功,但对实体瘤总体疗效仍有限。主要原因之一是恶劣的肿瘤微环境:氧气和营养物质不足,同时积累有毒代谢物,抑制免疫细胞活性。本综述旨在探讨靶向代谢重编程如何克服这些障碍并改善CAR-T 细胞表现。

评估聚焦于工程化CAR-T 细胞的临床前及转化研究,重点考察其抵抗缺氧、改善营养利用、减少代谢耗竭并抵消实体瘤抑制性代谢物的策略。

新兴策略包括增强对低氧和高乳酸的耐受、通过转运体过表达提高营养摄取,以及阻断腺苷驱动等抑制通路。这些方法可改善CAR-T 细胞在恶劣肿瘤环境中的持久性、记忆形成和细胞毒功能。

将代谢重编程融入常规CAR设计,是释放CAR-T 治疗实体瘤潜力的关键。持续创新对于将实验室进展转化为有效临床治疗至关重要。

展开英文摘要原文

Background/Objectives : Chimeric antigen receptor (CAR) T cells have shown remarkable clinical success in certain blood cancers but remain largely ineffective in solid tumors. A major reason for this limitation is the hostile tumor microenvironment, which restricts oxygen and nutrients while producing toxic metabolites that suppress immune cell activity. This review aims to examine how targeted metabolic reprogramming can overcome these barriers and improve CAR T cell performance. Methods : We evaluated preclinical and translational studies that focused on engineering CAR T cells to resist hypoxia, improve nutrient utilization, reduce metabolic exhaustion, and counteract suppressive metabolites in solid tumors.

Results : Emerging strategies include engineering resistance to low oxygen and high lactate, enhancing nutrient uptake through transporter overexpression, and blocking inhibitory pathways such as those driven by adenosine. These approaches improve CAR T cell persistence, memory formation, and cytotoxic function in challenging tumor environments.

Conclusions: Integrating metabolic reprogramming with conventional CAR design is essential to unlock the full potential of CAR T therapy against solid tumors. Continued innovation in this area will be critical for translating laboratory advances into effective clinical treatments.

论文信息

作者
Song AW、Song X
第一作者单位
Cellula BioPharma, Inc., 2450 Holcombe Blvd Suite J, Houston, TX 77021, USA.United States
通讯作者单位
Department of Translational Medical Sciences, College of Medicine, Texas A&M University, 2121 W Holcombe Blvd, Houston, TX 77030, USA.United States
文献类型
综述
期刊
Pharmaceutics2025 Nov 26
原文标识
PubMed 41471036 · DOI 10.3390/pharmaceutics17121520