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:CAR T Cell Therapy in Solid Tumors: Lessons From Early-Phase Clinical Trials and Biological Barriers to Efficacy.
CAR T Cell Therapy in Solid Tumors: Lessons From Early-Phase Clinical Trials and Biological Barriers to Efficacy.
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嵌合抗原受体(CAR)T细胞疗法已改变部分血液系统恶性肿瘤的治疗;在这些疾病中,病灶易于接近、谱系抗原明确且靶细胞清除可在临床管理范围内,因此能够实现更持久的应答。
然而,该疗法向实体瘤转化的进展有限,因为实体瘤存在许多血液肿瘤中不突出的结构、代谢和免疫屏障。本综述以血液系统恶性肿瘤作为CAR-T 治疗成功的参照,同时综合临床前模型的机制认识及实体瘤早期临床试验的新兴数据。
我们阐明抗原异质性、迁移受损、代谢抑制、免疫抑制信号及靶向肿瘤同时损伤正常组织的毒性,如何限制CAR-T 细胞在实体瘤中的浸润、持久性和功能。
我们还总结反复出现的临床规律:当靶点为肿瘤富集抗原、递送策略能够克服物理屏障,且CAR-T 细胞经工程化后能够抵抗恶劣微环境中的耗竭和抑制时,最有可能实现抗肿瘤活性。通过评估细胞因子装甲、多抗原及逻辑门控识别、局部递送和可调控安全回路等新一代方法,我们提出一套理性CAR-T 设计模型:依据实体瘤生物学量身定制,同时借鉴血液肿瘤治疗成功的原则。这些认识支持开发依具体情境设计的工程化免疫疗法,将血液肿瘤中取得的疗效持久性和安全性拓展至实体恶性肿瘤。
Chimeric antigen receptor (CAR) T cell therapy has transformed the treatment of select hematologic malignancies, where disease accessibility, well-defined lineage antigens, and clinically manageable target cell depletion have enabled more durable responses.
However, translation to solid tumors has been far more limited due to the structural, metabolic, and immunologic barriers that are less prominent in many blood cancers. This review uses hematologic malignancies as the standard for CAR T cell therapy success while synthesizing mechanistic insights from preclinical models and emerging data from early-phase solid tumor trials.
We define how antigen heterogeneity, impaired trafficking, metabolic suppression, immunosuppressive signaling, and on-target, off-tumor toxicity limit CAR T cell infiltration, persistence, and function in solid tumors.
We also highlight recurring clinical patterns indicating that antitumor activity is most achievable when tumor-enriched antigens are targeted, delivery strategies overcome physical barriers, and CAR T cells are engineered to resist exhaustion and suppression within hostile microenvironments.
By evaluating next-generation approaches, including cytokine armoring, multi-antigen and logic-gated recognition, regional delivery, and regulatable safety circuits, we propose a model for rational CAR T cell design tailored to solid tumor biology while informed by the principles underlying hematologic success. These insights support context-dependent engineered immunotherapies capable of extending the durability and safety achieved in blood cancers to solid malignancies.
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