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:Ionizing radiation enhances CAR T-cell infiltration and efficacy in solid tumors.
这些数据强调了共刺激结构域在CAR T细胞体内功能中的重要性,并证明在全身性CAR T细胞输注前对肿瘤进行照射可以增加CAR T细胞在实体瘤中的浸润和疗效。
嵌合抗原受体(CAR)T细胞是一种令人振奋的治疗策略,可改善血液系统恶性肿瘤患者的生存结局。然而,由于实体瘤微环境相关的治疗障碍,CAR T细胞疗法在实体瘤治疗中的疗效仍不理想。我们在表达EGFRvIII的B16F10黑色素瘤模型中研究了电离辐射是否能改善血管灌注和CAR T细胞递送。肿瘤接受2-12 Gy的辐射剂量,并在多个时间点通过免疫荧光检测静脉注射的荧光染料来评估灌注。我们发现,单次8 Gy剂量的电离辐射在照射后4 h使B16F10肿瘤灌注增加最为显著。一致的是,在全身给予靶向EGFRvIII的CAR T细胞前4 h对肿瘤进行照射,导致瘤内CAR T细胞积聚高于未照射的肿瘤。与单独放疗或CAR T细胞相比,该方法还显著延缓了肿瘤生长并改善了生存。有趣的是,与4-1BB EGFRvIII-CAR T细胞相比,CD28 EGFRvIII-CAR T细胞水平在照射肿瘤中随时间显著增加,并且与以10倍更高浓度给予的4-1BB EGFRvIII-CAR T细胞相比,产生了更大的肿瘤生长延迟和生存改善。综上所述,这些数据突出了共刺激结构域在体内CAR T细胞功能中的重要性,并证明在全身CAR T细胞输注前对肿瘤进行照射可以增加CAR T细胞在实体瘤中的浸润和疗效。
Chimeric antigen receptor (CAR) T cells represent an exciting therapeutic strategy with improved survival outcomes for patients with hematological malignancies. However, the efficacy of CAR T-cell therapy in the treatment of solid tumors remains suboptimal due to therapeutic barriers associated with the solid tumor microenvironment. We investigated whether ionizing radiation could improve vascular perfusion and CAR T-cell delivery in an EGFRvIII-expressing B16F10 melanoma model. Tumors received radiation doses of 2-12 Gy, and perfusion was evaluated at multiple time points using immunofluorescence detection of intravenously administered fluorescent dyes. We found that a single 8-Gy dose of ionizing radiation produced the most significant increase in B16F10 tumor perfusion 4 h after irradiation. Consistently, the irradiation of tumors 4 h prior to a systemic administration of EGFRvIII-targeting CAR T cells led to higher intratumoral CAR T-cell accumulation than in non-irradiated tumors. This approach also resulted in a significantly delayed tumor growth and improved survival relative to radiation or CAR T cells alone. Interestingly, the CD28 EGFRvIII-CAR T-cell levels substantially increased in irradiated tumors over time relative to 4-1BB EGFRvIII-CAR T cells and produced greater tumor growth delays and survival improvements in comparison to 4-1BB EGFRvIII-CAR T cells administered at a 10-fold higher concentration. Taken together, these data highlight the importance of co-stimulatory domains in CAR T-cell function in vivo and demonstrate that irradiating tumors prior to systemic CAR T-cell infusion can increase CAR T-cell infiltration and efficacy in solid tumors.
MEMBER ACCOUNT
登录成功会直接打开下一页。