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:Systematic optimization of PD-L1 and CLDN18.2 CAR-T designs identifies a bicistronic dual-target, double-CD3ζ architecture with enhanced antitumor activity in gastric cancer.
该研究鉴定出一种双顺反子双靶点、双 CD3 的 CAR-T 设计,其在胃癌模型中增强了 T 细胞功能适应性及抗肿瘤疗效。
背景:胃癌是癌症相关死亡的重要原因之一。由于肿瘤内异质性、免疫抑制性微环境及抗原丢失逃逸,免疫疗法疗效有限。优化靶向PD-L1和Claudin18.2(CLDN18.2)的嵌合抗原受体(CAR)T细胞疗法,对于改善抗肿瘤应答至关重要。 方法:我们逐步优化靶向PD-L1和CLDN18.2的CAR设计,重点考察共刺激结构域和胞内信号结构。采用CD28或4-1BB共刺激结构域构建单特异性PD-L1和CLDN18.2 CAR-T细胞,并评估CAR表达、活化表型、亚群构成及细胞毒性。随后设计三种具有不同CD3配置的双顺反子双靶点CAR,并通过体外实验及体内NUGC4-Luc胃癌异种移植模型评估功能。 结果:单靶点CLDN18.2-CD28 CAR-T细胞在体外显示最强细胞毒性。在双顺反子设计中,双CD3 CAR-T细胞的扩增、分化和细胞毒性优于其他双顺反子构建体及单靶点CAR-T细胞。整体RNA测序显示,双CD3 CAR-T细胞免疫活化增强,耗竭标志物减少。在NUGC4-Luc异种移植模型中,双CD3 CAR-T细胞抑制肿瘤生长63.23%,优于单靶点CLDN18.2 CAR-T细胞的48.06%。 结论:本研究确定了一种双顺反子双靶点、双CD3 CAR-T设计,可增强胃癌模型中的T细胞功能状态及抗肿瘤疗效。该策略有望应对抗原异质性并提高实体瘤CAR-T疗法的持久性。
BACKGROUND: Gastric cancer is a leading cause of cancer-related mortality, with limited efficacy of immunotherapies due to intratumoral heterogeneity, an immunosuppressive microenvironment, and antigen-loss escape. The optimization of chimeric antigen receptor (CAR) T-cell therapy targeting PD-L1 and Claudin18.2 (CLDN18.2) is crucial for improving the antitumor response. METHODS: We performed a stepwise optimization of CAR designs targeting PD-L1 and CLDN18.2, focusing on the costimulatory domains and intracellular signaling architecture. We engineered monospecific PD-L1 and CLDN18.2 CAR-T cells using CD28 or 4-1BB costimulatory domains and assessed their CAR expression, activation phenotype, subset composition, and cytotoxicity. We then engineered three bicistronic dual-target CARs with distinct CD3 configurations and evaluated their functionality through in vitro assays and in vivo NUGC4-Luc gastric cancer xenograft models. RESULTS: The single-target CLDN18.2-CD28 CAR-T cells exhibited the strongest cytotoxicity in vitro . Among the bicistronic designs, the double-CD3 CAR-T cells showed superior expansion, differentiation, and cytotoxicity compared to alternative bicistronic constructs and single-target CAR-T cells. Bulk RNA sequencing revealed enhanced immune activation and reduced exhaustion markers in the double-CD3 CAR-T cells. In the NUGC4-Luc xenograft model, the double-CD3 CAR-T cells achieved a tumor growth inhibition of 63.23%, outperforming the 48.06% inhibition observed with single CLDN18.2 CAR-T cells. CONCLUSIONS: The study identifies a bicistronic dual-target, double-CD3 CAR-T design that enhances T-cell functional fitness and antitumor efficacy in gastric cancer models. This approach offers a promising strategy for addressing antigen heterogeneity and improving the durability of CAR-T therapies in solid tumors.
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