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 Properties Measured by Atomic Force Microscopy Help Evaluate Different Constructions of Re-engineered Chimeric Antigen Receptor-T Models.
尽管嵌合抗原受体-T(CAR-T)在血液系统恶性肿瘤中取得成功,但挑战依然存在,包括在实体瘤中疗效有限、on-off 肿瘤毒性以及 CAR-T 细胞持久性。
尽管CAR-T(CAR-T)细胞在血液系统恶性肿瘤中取得成功,其应用仍面临实体瘤疗效有限、靶向肿瘤同时损伤正常组织的毒性以及CAR-T细胞持久性不足等挑战。细胞力学会深刻影响细胞行为和功能,但CAR-T细胞的生物物理特征研究不足。在此,我们研究了多种含CD19或CD123识别结构域的CAR分子。评估其对表达CD19和/或CD123的癌细胞的体外细胞毒性,并检测其在小鼠模型中的体内疗效。值得注意的是,单靶向CD19或CD123的CAR-T细胞表现出强细胞毒性;而在动物实验中,平行排列或串联交叉设计的双靶点CAR-T细胞效果最佳。通过原子力显微镜(AFM),我们在5种表达双CAR的CAR-T细胞中发现,CAR-T细胞与抗原之间的结合力与动物实验中的CAR-T疗效呈负相关。我们提出,较低结合力可使CAR-T细胞更快发挥作用并脱离靶细胞,从而提高杀伤效率。研究结果凸显结合力对CAR-T细胞功能的重要性,说明细胞力学可指导CAR-T疗法的设计和评估。
Despite the success of chimeric antigen receptor-T (CAR-T) in hematological malignancies, challenges persist, including limited efficacy in solid tumors, on-off tumor toxicity, and CAR-T cell persistence. Cellular mechanics profoundly influence cell behavior and function, yet the biophysical aspects of CAR-T cells remain underexplored. Here, we investigate various CAR molecules incorporating CD19 or CD123 recognition domains. We assess their in vitro cytotoxicity against cancer cells expressing CD19 and/or CD123 and evaluate their in vivo efficacy in mouse models. Notably, single-specific CAR-T cells targeting CD19 or CD123 exhibit potent cytotoxicity, while dual-target CAR-T cells arranged in parallel or in crossing series yield optimal outcomes in animal experiments. Through atomic force microscopy (AFM), we uncover a negative correlation between the binding forces of CAR-T cells and antigens and the efficacy of CAR-T therapy in animal experiments in our five dual CAR-expressing CAR-T cells. We proposed that lower binding forces lead to a faster CAR-T cell effect and detachment, enhancing killing efficiency. Our findings underscore the significance of binding forces in CAR-T cell function, highlighting the role of cellular mechanics in guiding the design and evaluation of CAR-T therapies.
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