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:Manufacturing CD20/CD19-targeted iCasp9 regulatable CAR-TSCM cells using a Quantum pBac-based CAR-T engineering system.
Manufacturing CD20/CD19-targeted iCasp9 regulatable CAR-TSCM cells using a Quantum pBac-based CAR-T engineering system.
然而,>50%接受CD19-CAR-T治疗的患者出现疾病进展,主要原因是抗原逃逸和低持久性。
CD19靶向嵌合抗原受体(CAR)T细胞疗法已推动复发/难治性B细胞恶性肿瘤的治疗发生范式转变。然而,超过50%接受CD19-CAR-T治疗的患者出现疾病进展,主要原因是抗原逃逸和低持久性。临床预后在很大程度上受CAR-T细胞功能和全身性细胞因子毒性的影响。此外,高效、经济且一致地生产临床相关数量的病毒工程化CAR-T细胞仍然是一项挑战。利用基于piggyBac转座子的高效载体Quantum pBac(qPB),我们开发了一种无病毒细胞工程系统,用于多重CAR-T疗法的开发和生产。在此,我们在体外和体内证明,使用qPB可以高效生产一致、稳健且具有功能的CD20/CD19双靶向CAR-T干细胞记忆(CAR-TSCM)细胞,用于临床应用。特别是,我们表明,来自癌症患者的qPB生产的CAR-T细胞能够高效扩增、快速清除肿瘤,并且可以通过iCasp9自杀基因诱导药物进行安全控制。因此,使用qPB系统生产多重CAR-T细胞的简便性有可能提高疗效并拓宽CAR-T疗法的可及性。
CD19-targeted chimeric antigen receptor (CAR) T cell therapies have driven a paradigm shift in the treatment of relapsed/refractory B-cell malignancies. However, >50% of CD19-CAR-T-treated patients experience progressive disease mainly due to antigen escape and low persistence. Clinical prognosis is heavily influenced by CAR-T cell function and systemic cytokine toxicities. Furthermore, it remains a challenge to efficiently, cost-effectively, and consistently manufacture clinically relevant numbers of virally engineered CAR-T cells. Using a highly efficient piggyBac transposon-based vector, Quantum pBac (qPB), we developed a virus-free cell-engineering system for development and production of multiplex CAR-T therapies. Here, we demonstrate in vitro and in vivo that consistent, robust and functional CD20/CD19 dual-targeted CAR-T stem cell memory (CAR-TSCM) cells can be efficiently produced for clinical application using qPB . In particular, we showed that qPB -manufactured CAR-T cells from cancer patients expanded efficiently, rapidly eradicated tumors, and can be safely controlled via an iCasp9 suicide gene-inducing drug. Therefore, the simplicity of manufacturing multiplex CAR-T cells using the qPB system has the potential to improve efficacy and broaden the accessibility of CAR-T therapies.
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