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:Dual-antigen recognition iPSC-derived CAR-T cells for B-cell malignancies: establishment of a COVID-19 vaccine synergy strategy.
Dual-antigen recognition iPSC-derived CAR-T cells for B-cell malignancies: establishment of a COVID-19 vaccine synergy strategy.
与常规CD19-CAR-T细胞相比,iPSC介导的年轻化与通过CAR和天然TCR实现的双抗原识别的组合,赋予了更优越的细胞毒性、持久性和增殖潜力。这些发现为疫苗协同策略提供了概念验证,其中体内TCR再刺激支持双抗原识别T细胞的选择性扩增和持续抗肿瘤效应,这可能成为B细胞恶性肿瘤的一种有前景的治疗方法。
靶向CD19的嵌合抗原受体(CD19-CAR)T细胞疗法显著改善了复发和难治性B细胞恶性肿瘤的结局,但其疗效仍受到体内持久性不足和功能性耗竭的限制。我们通过将抗原特异性细胞毒性T淋巴细胞(CTL)重编程为诱导多能干细胞(iPSC),再将其重新分化为增殖能力恢复的CTL,从而制备出功能上焕新的T细胞(rejTs)。在本研究中,我们探索了一种疫苗协同策略,通过T细胞受体(TCR)再刺激来增强CAR焕新CTL(CARrejTs)的持久性。
SARS-CoV-2 刺突蛋白特异性 rejTs(COVID19-rejTs)由源自刺突蛋白特异性 CTLs 的 iPSCs 建立。将 CD19-CAR 引入这些 iPSCs,以生成靶向 CD19 和 COVID-19 刺突蛋白的双抗原识别 CARrejTs(1919-CARrejTs)。随后,使用 51 Cr 释放试验、序贯再刺激试验以及基于 CFSE 的增殖分析(在 CAR 或 TCR 依赖性刺激下),评估 1919-CARrejTs 的细胞毒性、增殖能力和耗竭表型。
1919-CARrejTs 均一表达 CD19-CAR 和 spike 蛋白特异性 TCR,保留抗原特异性细胞毒性,并呈现年轻化表型,与常规 CD19-CAR-T 细胞相比,颗粒酶 B 和穿孔素表达更高、耗竭标志物表达更低。双抗原识别在抗原提呈匹配的条件下增强细胞毒性,且 1919-CARrejTs 在序贯再攻击试验中维持持久的肿瘤控制。CFSE 稀释分析显示,spike 蛋白特异性肽经 TCR 介导的刺激以 HLA 依赖的方式为 1919-CARrejTs 提供了强大的增殖能力。
INTRODUCTION: CD19-directed chimeric antigen receptor (CD19-CAR) T-cell therapy has markedly improved outcomes in relapsed and refractory B-cell malignancies, but its efficacy remains limited by insufficient in vivo persistence and functional exhaustion. We have generated functionally rejuvenated T-cells (rejTs) by reprogramming antigen-specific cytotoxic T lymphocytes (CTLs) into induced pluripotent stem cells (iPSCs) and redifferentiating them into CTLs with restored proliferative capacity. In this study, we explored a vaccine synergy strategy to enhance the persistence of CAR-rejuvenated CTLs (CARrejTs) through T-cell receptor (TCR) restimulation. METHODS: SARS-CoV-2 spike protein-specific rejTs (COVID19-rejTs) were established from iPSCs derived from spike protein-specific CTLs. A CD19-CAR was introduced into these iPSCs to generate dual-antigen recognition CARrejTs targeting CD19 and COVID-19 spike protein (1919-CARrejTs). Subsequently, 1919-CARrejTs were assessed for cytotoxicity, proliferative capacity, and exhaustion phenotype using 51 Cr release assays, sequential rechallenge assays, and CFSE-based proliferation analysis with CAR- or TCR-dependent stimulation. RESULTS: 1919-CARrejTs uniformly expressed both CD19-CAR and spike protein-specific TCRs, retained antigen-specific cytotoxicity, and exhibited a rejuvenated phenotype with higher expression of granzyme B and perforin and lower expression of exhaustion markers compared with conventional CD19-CAR-T cells. Dual-antigen recognition enhanced cytotoxicity under matched antigen presentation, and 1919-CARrejTs maintained durable tumor control in sequential rechallenge assays. CFSE dilution analysis revealed that TCR-mediated stimulation by spike protein-specific peptide provided strong proliferative capacity of 1919-CARrejTs in an HLA-dependent manner. CONCLUSION: The combination of iPSC-mediated rejuvenation and dual-antigen recognition via CAR and native TCR confers superior cytotoxicity, persistence, and proliferative potential compared to conventional CD19-CAR-T cells. These findings provide a proof-of-concept for a vaccine-synergy strategy in which in vivo TCR restimulation supports selective expansion and sustained antitumor effect of dual-antigen recognition T-cells that can be a promising treatment approach for B-cell malignancies.
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