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:IL-18 metabolically reprograms CAR-expressing natural killer T cells and enhances their antitumor activity.
这些发现支持利用IL-18开发下一代细胞因子武装的CAR-NKT癌症免疫疗法。
恒定自然杀伤T细胞(NKT)具有内在的抗肿瘤特性,使其成为嵌合抗原受体(CAR)免疫治疗的有前景候选者。转基因细胞因子表达可以增强细胞治疗效力,我们假设单独共表达白细胞介素-18(IL-18)或与IL-15共表达将提升CAR-NKT的治疗潜力。为验证这一点,我们构建了表达IL-15和/或IL-18并带有诱导型caspase-9安全开关的逆转录病毒载体,并将其与GD2特异性CAR共转导至人NKT中。与单独IL-15相比,IL-18或IL-15/IL-18的共表达在体外增强了CAR-NKT的细胞毒性、增殖和细胞因子分泌。IL-18还分别增强了GPC3.CAR和CD19.CAR NKT对肝细胞癌和B细胞白血病细胞的活性。在转移性神经母细胞瘤模型中,表达IL-18的GD2.CAR-NKT比仅表达IL-15的细胞更有效地控制肿瘤,但IL-15/IL-18组小鼠出现了IL-18单独组未观察到的严重毒性。在机制上,IL-18诱导了不同于IL-15的转录程序,其特征为更低的耗竭特征和代谢通路的富集。最后,靶向代谢组学显示,IL-18在CAR-NKT中驱动广泛的代谢重编程,包括氧化磷酸化、糖酵解、谷氨酰胺分解和嘌呤代谢的增加。这些发现支持使用IL-18开发下一代细胞因子武装的CAR-NKT癌症免疫疗法。
Invariant natural killer T cells (NKTs) have intrinsic antitumor properties that make them promising candidates for chimeric antigen receptor (CAR) immunotherapies. Transgenic cytokine expression can enhance cellular therapy potency, and we hypothesized that co-expressing interleukin-18 (IL-18) alone or with IL-15 would boost CAR-NKT therapeutic potential. To test this, we generated retroviral constructs expressing IL-15 and/or IL-18 with an inducible caspase-9 safety switch and co-transduced them with a GD2-specific CAR into human NKTs. Co-expression of IL-18 or IL-15/IL-18 increased CAR-NKT cytotoxicity, proliferation, and cytokine secretion in vitro compared to IL-15 alone. IL-18 also enhanced GPC3.CAR and CD19.CAR NKT activity against hepatocellular carcinoma and B cell leukemia cells, respectively. In a metastatic neuroblastoma model, IL-18-expressing GD2.CAR-NKTs controlled tumors more effectively than IL-15-only cells, but mice in the IL-15/IL-18 group developed severe toxicities not observed in the IL-18-only group. Mechanistically, IL-18 induced a transcriptional program distinct from IL-15, marked by lower exhaustion signatures and enrichment of metabolic pathways. Finally, targeted metabolomics showed that IL-18 drives broad metabolic reprogramming in CAR-NKTs including increased oxidative phosphorylation, glycolysis, glutaminolysis, and purine metabolism. These findings support the use of IL-18 in developing the next generation of cytokine-armed CAR-NKT cancer immunotherapies.
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