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:Mechanical preconditioning by shear stress enhances memory formation and anti-tumor function of CAR-T cells.
我们的研究结果首次证明,流体剪切力机械预处理可将 CAR-T 细胞重编程为功能更强、更持久的表现型,为优化实体瘤 CAR-T 治疗提供了新策略。
CAR-T 细胞疗法在血液系统恶性肿瘤治疗中取得显著成功,目前其在实体瘤中的应用也正积极研究。CAR-T 细胞输注进入血液后会暴露于血流产生的流体剪切应力(SS),但 SS 对 CAR-T 细胞功能的影响尚不清楚。本研究将抗间皮素(MSLN)CAR-T 细胞暴露于 5 dynes/cm² 的剪切应力,观察到细胞活率降低、活化增强、耗竭标志物表达下降。值得注意的是,在 T 细胞分离并活化 7 天后施加 1 小时 SS 刺激,可显著提高干细胞记忆 T 细胞(Tscm)比例、减轻耗竭,并增强抗 MSLN CAR-T 细胞的抗肿瘤疗效。此外,经 SS 预处理的 CAR-T 细胞可抵抗 SS 诱导的细胞死亡,迁移能力也有所提高。体内实验显示,SS 预处理 CAR-T 细胞在荷瘤小鼠中具有更强肿瘤浸润、更好持续性、更优肿瘤控制及良好安全性。转录组分析发现,与活化、浸润和微管动态相关的基因上调,而与耗竭、凋亡和免疫抑制相关的基因下调。总之,本研究首次表明,流体剪切应力机械预处理可将 CAR-T 细胞重编程为功能更强、持续性更好的表型,为优化实体瘤 CAR-T 疗法提供新策略。
Chimeric antigen receptor T-cell (CAR-T) therapy has achieved remarkable success in the treatment of hematological malignancies, and its application to solid tumors is currently under active investigation. Upon infusion into the bloodstream, CAR-T cells are exposed to fluid shear stress (SS) generated by blood flow. However, the impacts of SS on CAR-T cells function are not well understood. In this study, we exposed anti-mesothelin (MSLN) CAR-T cells to a shear stress of 5 dynes/cm2, and observed reduced cell viability, enhanced activation, and decreased expression of exhaustion markers. Notably, we found that a one-hour SS stimulation applied seven days after T cell isolation and activation significantly increased the proportion of stem cell memory T cells (Tscm), mitigated exhaustion, and enhanced the anti-tumor efficacy of anti-MSLN CAR-T cells. Furthermore, SS-preconditioned CAR-T cells exhibited resistance to SS-induced cell death and demonstrated increased migratory capacity. In vivo experiments, SS-preconditioned CAR-T cells exhibited greater tumor infiltration, improved persistence, superior tumor control, and a favorable safety profile in tumor-bearing mice. Transcriptomic analysis revealed upregulation of genes associated with activation, infiltration, and microtubule dynamics, alongside downregulation of genes linked to exhaustion, apoptosis, and immunosuppression. Collectively, our findings demonstrate for the first time that mechanical preconditioning with fluid shear stress can reprogram CAR-T cells toward a more functional and persistent phenotype, offering a novel strategy to optimize CAR-T therapy for solid tumors.
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