决定异体 CAR T 细胞排斥与扩增的细胞和分子机制
Cellular and molecular mechanisms determining allogeneic CAR T cell rejection and expansion.
我们评估了11例接受单一批次cemacabtagene ansegedleucel(cema-cel)治疗的大B细胞淋巴瘤患者,cemacabtagene ansegedleucel是一种异体抗CD19 CAR T产品。
英文原题:CAR-T and TIL therapies in solid tumors: barriers, clinical lessons, and convergent solutions.
2024年lifileucel的获批标志着肿瘤学领域的一个重要里程碑,成为首个获批用于实体瘤的细胞疗法。
2024 年 lifileucel 获批,成为首个获批用于实体瘤的细胞疗法,这在肿瘤学领域树立了重要的里程碑。这一里程碑与 CAR-T 细胞在血液系统恶性肿瘤中的成功形成鲜明对比——已有六款产品获批——并凸显了实体瘤在很大程度上仍未被攻克这一核心挑战。其机制核心是一个三阶段框架,描述治疗性 T 细胞在实体瘤中遇到的主要屏障,即任何治疗性 T 细胞为实现持久肿瘤控制都必须克服的一系列逐级升级的屏障:(1)进入:克服限制 T 细胞浸润肿瘤的基质和血管屏障,(2)识别:在抗原异质性和免疫逃逸的背景下识别恶性细胞,(3)持久性:在免疫抑制性肿瘤微环境中维持 T 细胞功能。历史上,CAR-T 和 TIL 疗法曾被视为相互竞争,各自占据不同的生态位。该领域正日益采用一种趋同范式,即两种平台共同应对一个共同挑战:通过互补的工程化和生物学策略,克服限制实体瘤持久缓解的生物学屏障。我们综述了界定这一新领域的生物学障碍、新兴的趋同策略以及转化框架,包括生物标志物指导的患者选择。治疗选择可能日益由肿瘤的主要生物学屏障所指导,而非仅依据平台分类。
The approval of lifileucel in 2024 marked an important milestone in oncology as the first cellular therapy authorized for a solid tumor. This milestone stands in sharp contrast to the success of CAR-T cells in hematologic malignancies, where six products have been licensed, and highlights the central challenge that solid tumors remain largely unconquered. At the mechanistic core lies a three-stage framework describing the major barriers encountered by therapeutic T cells in solid tumors, a series of escalating barriers that any therapeutic T cell must overcome to achieve durable tumor control: (1) Access: overcoming stromal and vascular barriers that restrict T-cell infiltration into tumors, (2) Recognition: identifying malignant cells in the setting of antigen heterogeneity and immune evasion, and (3) Persistence: maintaining T-cell function within the immunosuppressive tumor microenvironment. Historically, CAR-T and TIL therapies were viewed in competition, each occupying distinct niches. The field is increasingly adopting a convergent paradigm in which both platforms address a common challenge: overcoming the biological barriers that limit durable responses in solid tumors through complementary engineering and biological strategies. We review the biological obstacles, emerging convergence strategies, and translational frameworks including biomarker-guided patient selection that define this new area. Therapeutic selection may increasingly be guided by a tumor's dominant biological barriers rather than by platform classification alone.
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