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:Beyond CAR-T Cells: exploring CAR-NK, CAR-M, and CAR-γδ T strategies in solid tumor immunotherapy.
采用嵌合抗原受体(CAR)工程化的过继性细胞疗法(ACT)代表了癌症免疫治疗的一项变革性进展。
采用嵌合抗原受体(CAR)工程的过继细胞疗法(ACT)代表了癌症免疫治疗的一项变革性进展。CAR-T细胞疗法已在血液系统恶性肿瘤中展现出显著的临床成功,但其在实体瘤中的应用仍面临持续挑战。主要局限性包括肿瘤特异性抗原匮乏、瘤内浸润不良、免疫抑制性肿瘤微环境(TME),以及细胞因子释放综合征(CRS)和神经毒性等治疗相关毒性。相比之下,CAR自然杀伤(CAR-NK)细胞在卵巢癌、胰腺癌和胶质母细胞瘤等实体瘤中显示出前景,临床前和早期临床证据令人鼓舞,尽管持久性有限和抗原异质性仍是主要挑战。与CAR-T细胞不同,CAR-NK疗法通过细胞毒性(如颗粒酶/穿孔素释放)和细胞因子介导的双重机制介导肿瘤清除,同时降低毒性风险。其不依赖人类白细胞抗原(HLA)的特性使得可从异体供者进行“现货型”制造,从而规避了患者特异性生产的瓶颈。CAR巨噬细胞(CAR-M)疗法通过利用固有吞噬清除、抗原呈递功能和TME穿透能力,进一步应对实体瘤障碍。巨噬细胞天然浸润缺氧肿瘤区域并重塑基质屏障,使CAR-M能够通过交叉致敏T细胞与适应性免疫协同作用。临床前模型突出了CAR-M在清除免疫抑制性肿瘤相关巨噬细胞(TAM)和逆转TME驱动的免疫逃逸方面的疗效。新兴的CAR-γδ T(CAR-γδ T)细胞疗法将CAR介导的抗原特异性与γδ T细胞固有的杀肿瘤活性相结合,后者可不依赖主要组织相容性复合体(MHC)提呈而识别应激诱导的配体。这种双靶向能力增强了肿瘤选择性,同时降低了靶向/脱靶毒性。本综述系统探讨了细胞来源、机制优势及临床进展。通过评估这些平台的互补优势,我们提出了将CAR-NK、CAR-M和CAR-γδ T细胞整合为针对实体瘤的定制治疗方案的合理策略。
Adoptive cell therapy (ACT) employing chimeric antigen receptor (CAR) engineering represents a transformative advancement in cancer immunotherapy. CAR-T cell therapies have demonstrated significant clinical success in hematological malignancies, yet their application to solid tumors faces persistent challenges. Key limitations include the paucity of tumor-specific antigens, poor intratumoral infiltration, immunosuppressive tumor microenvironment (TME), and treatment-related toxicities such as cytokine release syndrome (CRS) and neurotoxicity. In contrast, CAR natural killer (CAR-NK) cells show promise in solid tumors such as ovarian, pancreatic, and glioblastoma, with encouraging preclinical and early clinical evidence, although limited persistence and antigen heterogeneity remain major challenges. Unlike CAR-T cells, CAR-NK therapies mediate tumor clearance through both cytotoxic (e.g., granzyme/perforin release) and cytokine-mediated mechanisms while mitigating toxicity risks. Their lack of human leukocyte antigen (HLA) dependency enables "off-the-shelf" manufacturing from allogeneic donors, circumventing patient-specific production bottlenecks. CAR-macrophage (CAR-M) therapies further address solid tumor barriers by leveraging innate phagocytic clearance, antigen-presenting functions, and TME penetration. Macrophages inherently infiltrate hypoxic tumor regions and remodel stromal barriers, enabling CAR-Ms to synergize with adaptive immunity by cross-priming T cells. Preclinical models highlight CAR-M efficacy in depleting immunosuppressive tumor-associated macrophages (TAMs) and reversing TME-driven immune evasion. Emerging CAR- Gamma-Delta T (CAR- T) cell therapies combine CAR-mediated antigen specificity with the intrinsic tumoricidal activity of T cells, which recognize stress-induced ligands independently of major histocompatibility complex (MHC) presentation. This dual-targeting capability enhances tumor selectivity while reducing on-target/off-tumor toxicity. This review systematically examines cellular sources, mechanistic advantages and clinical progress. By evaluating these platforms' complementary strengths, we propose rational strategies for integrating CAR-NK, CAR-M, and CAR- T cells into tailored therapeutic regimens for solid tumors.
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