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:Development of a 3-day manufacturing method to generate CD19-CD20-CD22 trispecific CAR T-cells from whole blood.
本研究建立了一种快速、符合GMP要求的方法,可直接从全血制造多功能的CAR T细胞。本文概述的工作流程获得了强效、表型有利的CAR T细胞产品,且未损害活力或细胞毒性功能。与标准7天方法相比,3天方案导致与更干细胞样表型相关的基因表达,同时缩短了生产时间并降低了成本。该方法可为分散式CAR T细胞生产提供一种实用替代方案,尤其适用于资源有限的环境。
嵌合抗原受体(CAR)T细胞疗法已改变了多种血液系统恶性肿瘤的治疗格局。然而,高复发率和可及性有限仍是重大挑战。我们开发了一种为期3天的简化流程以应对这些局限。
通过自动化密度梯度分离从健康供者采集的全血中分离T细胞,该分离包括T-isopure抗体混合物,其通过阴性选择分离T细胞。T细胞被激活,然后用编码三特异性CAR的慢病毒载体转导。T细胞在G-Rex容器中培养,并在第3天或第7天收获用于分析。通过流式细胞术和基因表达分析评估CAR表达和T细胞表型。在与靶细胞系共培养后,通过测量细胞毒性和细胞因子分泌来评估功能活性。
T-isopure分离法将全血中的CD3+ T细胞从CD45+细胞的18.9%富集至88.5%,平均回收率为40.6%。RBC以99%的效率被去除,剩余CD45+细胞主要由单核细胞和NK细胞组成。3天的制备过程产生的T细胞活力> 95%,转导效率为53%,载体拷贝数< 3拷贝/细胞。表型分析显示,两个时间点均存在高比例的干/中枢记忆T细胞,未观察到显著差异。细胞毒性试验显示对NALM6肿瘤细胞具有强效且持续的杀伤作用,两种产品之间相当。基因表达谱分析表明,第3天产品分化程度较低,表现出记忆样表型并减少炎症信号传导,培养上清的蛋白分析进一步支持了这一点。
BACKGROUND: Chimeric antigen receptor (CAR) T-cell therapy has transformed the treatment landscape for many hematological malignancies. However, high relapse rates and limited accessibility remain significant challenges. We developed a 3-day streamlined process to address these limitations. METHODS: T-cells were isolated from whole blood collected from healthy donors via an automated density gradient separation that included a T-isopure antibody cocktail, which isolates T-cells through negative selection. T-cells were activated then transduced with a lentiviral vector encoding a trispecific CAR. T-cells were cultured in G-Rex vessels and harvested at day 3 or day 7 for analysis. CAR expression and T-cell phenotype were assessed by flow cytometry and gene expression analysis. Functional activity was evaluated by measuring cytotoxicity and cytokine secretion following co-culture with target cell lines. RESULTS: The T-isopure isolation enriched CD3 + T-cells in whole blood from 18.9% to 88.5% of CD45 + cells, with a mean recovery of 40.6%. RBCs were depleted with 99% efficiency, with monocytes and NK cells comprising the bulk of remaining CD45 + cells. The 3-day manufacturing process produced T-cells with > 95% viability, 53% transduction efficiency, and vector copy number < 3 copies/cell. Phenotypic analysis revealed a high proportion of stem/central memory T-cells at both timepoints, with no significant differences observed. Cytotoxicity assays demonstrated strong and sustained killing of NALM6 tumor cells, comparable between both products. Gene expression profiling indicated that day 3 products were less differentiated, exhibiting a memory-like phenotype and reduced inflammatory signaling, further supported by protein analysis of culture supernatants. CONCLUSION: This study establishes a rapid, GMP-compliant method for manufacturing polyfunctional, CAR T-cells directly from whole blood. The workflow outlined here achieved a potent, phenotypically favorable CAR T-cell product without compromising viability or cytotoxic function. Compared to the standard 7-day method, the 3-day approach resulted in expression of genes associated with a more stem-like phenotype while reducing manufacturing time and cost. This method may provide a practical alternative for decentralized CAR T-cell manufacturing, particularly in resource-limited settings.
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