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:Enhancing Anti-Tumor Effects of Engineered Extracellular Vesicles via Endocytosis Route Switching and Interferon Response Suppression.
本研究表明,具有强大肿瘤靶向和杀伤能力的工程化 EV 可由易于操作的非杀伤细胞生成,为克服 CAR-T-EV 的局限提供了一种解决方案。
工程化细胞外囊泡(EV)是一种有前景的治疗策略,可用于癌症治疗等多个领域。工程化肿瘤靶向杀伤细胞(如CAR-T 细胞)可产生EV,但CAR-T来源EV的应用受到若干局限。本研究显示,易于操作的非杀伤细胞也能产生具有强效癌症靶向和杀伤能力的工程化EV,从而为克服CAR-T-EV的局限提供了方案。研究发现,源自非杀伤细胞(如靶向CD19的293细胞)的EV,其杀伤靶细胞的能力可与CD19-CAR-T细胞来源EV相当。研究者通过嵌合CD8-CD63/CD81跨膜区技术,确保EV表面具有足量靶向模块。通过将CD19内吞途径由网格蛋白介导内吞(CME)切换为聚集依赖性内吞(ADE),可优化靶细胞对CD19靶向EV的摄取,并促使CD19/EV复合物发生溶酶体降解。EV降解会削弱干扰素(IFN)应答,继而增强靶细胞对EV的摄取,形成强效反馈循环。CD19耗竭会破坏靶细胞中的CD19-AKT-Myc通路,从而增强体内外杀伤能力。
Engineered extracellular vesicles (EVs) represent a promising therapeutic strategy with many applications in cancer therapy. EVs derived from engineered tumor-targeting killer cells, such as chimeric antigen receptor (CAR)-T cells. However, the application of CAR-T-EVs is limited by several drawbacks. This study shows that engineered EVs with potent cancer-targeting and killing abilities can be generated from easily manipulable non-killer cells, providing a solution to overcome the limitations of CAR-T-EVs. It is found that EVs derived from non-killer cells such as CD19-targeting 293 cells possess target cell killing capacities comparable to those derived from CD19-CAR-T cells. A technique is developed to ensure the presence of sufficient targeting modules on the EV surface using a chimeric CD8-CD63/CD81 transmembrane region. Uptake of CD19-targeting EVs by target cells can be optimized by switching the route of CD19 endocytosis from clathrin-mediated endocytosis (CME) to aggregation-dependent endocytosis (ADE), leading to lysosomal degradation of the CD19/EVs complex. Degradation of the EVs leads to impairment in the IFN response and subsequent enhancement in EV uptake by target cells, creating a potent feedback cycle. CD19 depletion results in the disruption of the CD19-AKT-Myc pathway in the target cells, enhancing the killing capacity both in vitro and in vivo.
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