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.
CAR-T(CAR-T)细胞在血液系统恶性肿瘤中的应用推动了这种免疫治疗形式的显著进展。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Overcoming T cell exhaustion and senescence in CAR T cell therapy for solid tumors.
Overcoming T cell exhaustion and senescence in CAR T cell therapy for solid tumors.
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嵌合抗原受体(CAR)T 细胞疗法在血液系统恶性肿瘤中疗效显著,但在实体瘤中的临床获益仍有限。主要障碍之一是 T 细胞功能障碍,尤其是耗竭和衰老,这会损害细胞持续性、效应功能和持久肿瘤控制。
因此,针对这些功能障碍状态是提高 CAR-T 实体瘤疗效的关键。本综述总结了近期旨在预防或逆转实体瘤中 CAR-T 细胞耗竭和衰老的临床前策略。两者都是相关的功能障碍状态,但目前综述所纳入的临床前证据更多支持调节耗竭相关程序,直接逆转经典 T 细胞衰老的证据相对较少。本文按主要机制将策略分为基因编辑、代谢调节、受体重新设计和肿瘤微环境改造。各类策略报告的获益包括增强 CAR-T 细胞持续性、降低 PD-1、LAG-3 和 TIM-3 等抑制性受体表达、维持或恢复记忆样表型,以及提高抗肿瘤细胞毒性。
值得注意的是,在临床前模型中,同时靶向多条功能障碍通路的联合策略持续显示出更好的疗效。尽管取得这些进展,转化仍面临重要挑战,包括现有临床前系统的预测价值有限、潜在安全性问题,以及细胞产品工程化程度提高所带来的生产复杂性。
总体而言,临床前证据支持合理整合互补策略,以构建能够抵抗功能障碍、并在免疫抑制性实体瘤微环境中维持活性的下一代 CAR-T 细胞。要推动其转化为安全且疗效持久的癌症免疫疗法,还需在具有临床相关性的模型中进一步验证。
Chimeric antigen receptor (CAR) T cell therapies have demonstrated remarkable efficacy in hematologic malignancies; however, their clinical benefit in solid tumors remains limited. A major barrier is T cell dysfunction, particularly exhaustion and senescence, which impair persistence, effector function, and durable tumor control. Targeting these dysfunctional states is therefore essential in order to improve CAR T cell efficacy in solid tumors. This review summarizes recent preclinical strategies aimed at preventing or reversing CAR T cell exhaustion and senescence in solid malignancies.
While both exhaustion and senescence are relevant dysfunctional states, the preclinical evidence summarized in this review is currently more extensive for modulation of exhaustion-associated programs than for direct reversal of canonical T cell senescence. Approaches are organized according to their primary mechanistic focus, including gene editing, metabolic modulation, receptor redesign, and remodeling of the tumor microenvironment.
Across these mechanistic categories, reported benefits include enhanced CAR T cell persistence, reduced expression of inhibitory receptors, such as PD-1, LAG-3, and TIM-3, preservation or restoration of memory-like phenotypes, and improved antitumor cytotoxicity.
Notably, combinatorial strategies targeting multiple dysfunction pathways consistently demonstrate superior efficacy in preclinical models. Despite these advances, important translational challenges remain, including the limited predictive value of current preclinical systems, potential safety concerns, and the manufacturing complexity associated with increasingly engineered cell products.
Collectively, preclinical evidence supports the rational integration of complementary approaches to generate next-generation CAR T cells capable of resisting dysfunction and maintaining activity within immunosuppressive solid tumor microenvironments.
Further validation in clinically relevant models will be critical to facilitate translation into safe and durable cancer immunotherapies.
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