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:Mass Spectrometry in Allogeneic CAR-T Cell Manufacturing: From Cellular Starting Materials to Multi-Attribute Quality Control.
这些方法展示了 MS 驱动分析在解决 CAR T 细胞生产当前局限性方面的潜力,具体体现在提升工艺理解、实现全面质量评估以及支持监管决策等方面。
嵌合抗原受体(CAR)T细胞疗法已在血液系统恶性肿瘤中表现出显著的临床疗效,但其更广泛的应用受到生产复杂性和变异性的限制,尤其是在自体环境中。同种异体CAR T细胞疗法的发展通过实现可扩展的现货型生产提供了一种有前景的替代方案;然而,这些方法带来了与供者变异性、基因组编辑和产品一致性相关的额外挑战。因此,需要稳健的分析策略来确保安全性、有效性和批间重现性。常规分析方法,如流式细胞术和酶联免疫吸附试验,可对预定义的细胞和可溶性标志物提供靶向、高置信度的测量,但其捕获CAR T细胞产品完整分子和功能复杂性的能力本质上有限。在当前生产范式中,这些检测通常作为孤立的质量控制读数使用,而不是作为整合控制策略的组成部分,该策略将供者变异性、基因编辑材料质量、过程代谢状态、最终产品关键质量属性以及临床生物标志物反应联系起来。在此背景下,质谱(MS)已成为高维分子表征的强大平台,能够对CAR T细胞生产工作流程中的基因编辑试剂、蛋白质、代谢物、脂质以及培养物和用过的培养基组成进行分析。在本综述中,我们考察了 MS 在异体 CAR T 细胞工作流程关键阶段中的各种应用和工具,包括供体表征、基因编辑材料分析、过程中培养监测、药品质量评估以及输注后生物标志物评价。总体而言,这些方法展示了 MS 驱动分析在解决 CAR T 细胞制造当前局限性方面的潜力,其途径包括改善工艺理解、实现全面质量评估以及支持监管决策。将 MS 整合到 CAR T 细胞工作流程中,最终可能促进开发更一致、可扩展且有效的细胞疗法。
Chimeric antigen receptor (CAR) T-cell therapies have demonstrated remarkable clinical efficacy in hematological malignancies, yet their broader application is constrained by manufacturing complexity and variability, particularly in autologous settings. The development of allogeneic CAR T-cell therapies offers a promising alternative by enabling scalable, "off-the-shelf" production; however, these approaches introduce additional challenges related to donor variability, genome editing, and product consistency. Robust analytical strategies are therefore required to ensure safety, efficacy, and batch-to-batch reproducibility. Conventional analytical methods, such as flow cytometry and enzyme-linked immunosorbent assays, provide targeted, high-confidence measurements of predefined cellular and soluble markers but are inherently limited in their ability to capture the full molecular and functional complexity of CAR T-cell products. In current manufacturing paradigms, these assays are typically deployed as isolated quality control readouts rather than as components of an integrated control strategy that links donor variability, gene-editing material quality, in-process metabolic state, final product critical quality attributes, and clinical biomarker responses. In this context, mass spectrometry (MS) has emerged as a powerful platform for high-dimensional molecular characterization, enabling analysis of gene-editing reagents, proteins, metabolites, lipids, and both culture and spent-media composition across the CAR T-cell manufacturing workflow. In this review, we examine the various applications and tools of MS across key stages of the allogeneic CAR T-cell workflow, including donor characterization, analysis of gene-editing materials, in-process culture monitoring, drug product quality assessment, and post-infusion biomarker evaluation. Collectively, these approaches demonstrate the potential of MS-driven analytics to address current limitations in CAR T-cell manufacturing by improving process understanding, enabling comprehensive quality assessment, and supporting regulatory decision-making. The integration of MS into CAR T-cell workflows may ultimately facilitate the development of more consistent, scalable, and effective cell therapies.
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