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:Erythrocyte membrane-liposome coating sustains circulation stability and targeted tumor therapy of CAR-T cells.
Rlip 表面工程代表了一种通用的、可在临床上转化的策略,用以克服 CAR-T 生物分布屏障。通过将红细胞模拟免疫逃逸与优化的肿瘤递送相结合,该方法改善了 CAR-T 细胞在血液系统恶性肿瘤和实体恶性肿瘤肿瘤部位的聚集。
CAR-T 疗法受到肝脏、脾脏和肺部脱靶隔离的限制,这降低了肿瘤递送效率并带来全身毒性风险。基因工程方法复杂且存在安全性问题,因此需要高效的非基因策略来优化 CAR-T 的生物分布。
我们开发了红细胞膜嵌合脂质体(Rlip)作为一种仿生涂层系统,用于对CAR-T细胞进行非基因修饰,旨在增强免疫逃逸、延长循环持久性,并将转运重定向至肿瘤,同时保留其内在效应功能。
Rlip-CAR-T 细胞通过简单孵育制备。体外表征评估了涂层稳定性、CD47 介导的巨噬细胞抗性、表型保持以及抗原特异性细胞毒性。体内研究评估了在 Nalm-6 系统性白血病和 1806-luc 皮下卵巢癌模型中的生物分布、肿瘤浸润和疗效。
Rlip涂层稳定呈递CD47,功能性损害巨噬细胞吞噬作用并增强外周持久性,而不改变记忆亚群、活化标志物或细胞毒性。在两种模型中,Rlip-CAR-T细胞均表现出显著减少的脱靶器官蓄积和增加的瘤内富集,在白血病模型中观察到更优的肿瘤控制和延长的生存期。
BACKGROUND: CAR-T therapy is limited by off-target sequestration in liver, spleen, and lungs, which reduces tumor delivery and risks systemic toxicity. Genetic engineering approaches are complex and carry safety concerns, necessitating efficient non-genetic strategies to optimize CAR-T biodistribution. PURPOSE: We developed red blood cell membrane-chimeric liposomes (Rlip) as a biomimetic coating system to non-genetically modify CAR-T cells, aiming to enhance immune evasion, prolong circulatory persistence, and redirect trafficking toward tumors while preserving intrinsic effector function. METHODS: Rlip-CAR-T cells were prepared via simple incubation. In vitro characterization assessed coating stability, CD47-mediated macrophage resistance, phenotype preservation, and antigen-specific cytotoxicity. In vivo studies evaluated biodistribution, tumor infiltration, and efficacy in Nalm-6 systemic leukemia and 1806-luc subcutaneous ovarian cancer models. RESULTS: Rlip coating stably presented CD47, functionally impairing macrophage phagocytosis and enhancing peripheral persistence without altering memory subsets, activation markers, or cytotoxicity. Rlip-CAR-T cells demonstrated markedly reduced off-target organ accumulation and increased intratumoral enrichment in both models, with superior tumor control and prolonged survival observed in the leukemia model. CONCLUSIONS: Rlip surface engineering represents a universal, clinically translatable strategy to overcome CAR-T biodistribution barriers. By integrating erythrocyte-mimetic immune evasion with optimized tumor delivery, this approach improves CAR-T cell accumulation at tumor sites across hematologic and solid malignancies.
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