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:Enhanced antitumoral activity of the academic CAR-T ARI0002h against normal and low BCMA-expressing myeloma cells after incorporating a transmembrane CD28 domain.
将 CD28-TMD 整合到 ARI0002h CAR 中可增强肿瘤控制,即使在靶抗原下调的复发模型中也是如此,从而提供更好的长期疾病管理。该修饰增强了对 BCMA 表达正常和降低的 MM 肿瘤细胞系的效力,表现出更优的代谢耐力和体内活性。
B细胞成熟抗原(BCMA)是多发性骨髓瘤(MM)中嵌合抗原受体(CAR)-T细胞的主要靶点,展现出有前景的疗效。然而,与CART19在淋巴细胞白血病和非霍奇金淋巴瘤中的情况不同,由于抗原表达不足、CAR-T细胞持久性低和/或T细胞耗竭,高比例的患者在接受CAR-T BCMA治疗后会出现复发。在其他B细胞恶性肿瘤中,带有CD28跨膜结构域(TMD)的第二代抗CD19 4-1BB CAR显示出高疗效和良好的毒性特征。我们开发了针对复发/难治性MM患者的第二代CD8-TM BCMA-4-1BB CAR-T产品ARI0002h(Cesnicabtagene-autoleucel)。我们假设将ARI0002h的TMD替换为CD28-TMD可以提高疗效并减少肿瘤逃逸,同时保持可耐受的毒性特征。
我们使用从白膜层中分离的 T 细胞生成 CAR-T 细胞,并在扩增第 8-10 天评估 CAR-T 针对几种 MM 细胞系的疗效和适应度。体外分析包括细胞毒性、增殖、细胞因子分泌、T 细胞亚群标志物、活化和耗竭谱分析、代谢组学检测,以及多次肿瘤攻击后的 RNA-seq。在使用 NSG 小鼠的体内异种移植研究中,肿瘤细胞表达 GFP-ffLuc,通过生物发光成像每周监测疾病进展。
尽管在细胞毒性、增殖和细胞因子产生方面表现出相似的体外性能,但 ARI2h-TM28 在低 BCMA 表达环境中优于 ARI0002h,并在抗原下调的复发模型中实现了更优的体内肿瘤控制和生存。此外,ARI2h-TM28 显示出优化的代谢特征,与 ARI0002h 相比更具氧化性和能量性,同时 CD8 T 细胞中促炎基因下调,共同促成 CAR 耗竭减少和持久性增加,从而提高其在临床前模型中的疗效。
BACKGROUND: B-cell maturation antigen (BCMA) is the main target for chimeric antigen receptor (CAR)-T cells in multiple myeloma (MM), demonstrating promising outcomes. However, unlike what happens with CART19 in lymphoblastic leukemia and non-Hodgkin's lymphoma, a high proportion of patients will relapse after CAR-T BCMA therapy due to insufficient antigen expression, low CAR-T cell persistence and/or T-cell exhaustion. In other B cell malignancies, second-generation anti-CD19 4-1BB CARs with CD28-transmembrane domain (TMD) have shown high efficacy and a favorable toxicity profile. We have developed a second-generation CD8 -TM BCMA-4-1BB CAR-T product, ARI0002h (Cesnicabtagene-autoleucel) for patients with relapsed/refractory MM. We hypothesized that replacing the TMD of ARI0002h with a CD28-TMD could increase efficacy and reduce tumor escape while maintaining a tolerable toxicity profile. METHODS: We generated CAR-T cells using T-cells isolated from buffy coats and evaluated the efficacy and fitness of CAR-Ts at day 8-10 of expansion against several MM cell lines. In vitro analyses included cytotoxicity, proliferation, cytokine secretion, T-cell subset markers, activation and exhaustion profiling, metabolomic assays, and RNA-seq after multiple tumor challenges. In in vivo xenograft studies using NSG mice, with tumor cells expressing GFP-ffLuc, disease progression was monitored weekly via bioluminescence imaging. RESULTS: Despite showing similar in vitro performance regarding cytotoxicity, proliferation and cytokine production, ARI2h-TM28 outperforms ARI0002h in a low BCMA expression setting and achieves superior in vivo tumor control and survival in relapse models with antigen downregulation. Furthermore, ARI2h-TM28 showed an optimized metabolic profile, more oxidative and energetic compared with ARI0002h, with downregulation of proinflammatory genes in CD8 T cells, contributing altogether both to reduced exhaustion and increased persistence of the CARs, improving their efficacy in preclinical models. CONCLUSIONS: Incorporating a CD28-TMD into the ARI0002h CAR enhances tumor control even in relapse models with downregulation of the target antigen, offering improved long-term disease management. This modification increases potency against MM tumor cell lines with both normal and reduced BCMA expression, demonstrating superior metabolic endurance and in vivo activity.
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