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:In vivo CAR-cell therapy: current challenges and emerging therapeutic advances.
体内嵌合抗原受体(CAR)细胞疗法正在经历从传统的体外制造向原位细胞编辑的变革性转变,旨在通过靶向载体递送直接在患者体内生成功能性CAR工程免疫细胞,从而显著提高治疗的可及性和适用性。
体内嵌合抗原受体(CAR)细胞疗法正经历从传统体外制造向原位细胞编辑的变革性转变,旨在通过靶向载体递送直接在患者体内生成功能性CAR工程化免疫细胞,从而显著提升治疗的可及性和适用性。尽管病毒(慢病毒和腺相关病毒载体)和非病毒(脂质纳米颗粒)递送平台均取得了快速进展,效应细胞谱系也扩展至CAR-T、CAR-NK和CAR-M,但关键的转化瓶颈仍然存在。这些瓶颈包括递送精度不足、细胞持久性有限、免疫抑制性肿瘤微环境(TME)抵抗以及安全可控性方面的挑战。本综述系统审视了当前用于体内基因转移的递送平台的工作机制和局限性。它全面比较了CAR-T、CAR-NK和CAR-M平台如何采用不同但互补的策略来应对肿瘤异质性、实体瘤物理和免疫屏障以及原位编辑的特异性约束。此外,我们重点介绍了新兴前沿领域,如人工智能引导的个性化治疗设计、智能递送系统(逻辑门控CAR、环状RNA载体)以及多细胞协同“合成免疫系统”的开发。通过整合多学科视角,本综述不仅提供了连接基础机制与临床转化的全面路线图,还为推进下一代安全、精准、有效的体内CAR疗法奠定了理论基础和技术支撑。
In vivo chimeric antigen receptor (CAR) cell therapy is undergoing a transformative shift from conventional ex vivo manufacturing toward in situ cellular editing, aiming to generate functional CAR-engineered immune cells directly within patients through targeted vector delivery, thereby significantly enhancing therapeutic accessibility and applicability. While rapid advances have been made in both viral (lentiviral and adeno-associated viral vectors) and non-viral (lipid nanoparticle) delivery platforms, along with the expansion of effector cell lineages including CAR-T, CAR-NK, and CAR-M, critical translational bottlenecks remain. These include insufficient delivery precision, limited cellular persistence, immunosuppressive tumor microenvironment (TME) resistance, and challenges in safety controllability. This review systematically examines the working mechanisms and limitations of current delivery platforms for in vivo gene transfer. It provides a comprehensive comparison of how CAR-T, CAR-NK, and CAR-M platforms employ distinct yet complementary strategies to address tumor heterogeneity, solid tumor physical and immune barriers, and the specificity constraints of in situ editing. Furthermore, we highlight emerging frontiers such as artificial intelligence-guided personalized therapy design, smart delivery systems (logic-gated CARs, circular RNA vectors), and the development of multicellular synergistic "synthetic immune systems." By integrating multidisciplinary perspectives, this review not only offers a comprehensive roadmap bridging fundamental mechanisms to clinical translation but also lays a theoretical and technical foundation for advancing the next generation of safe, precise, and efficacious in vivo CAR therapies.
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