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利用细胞 FAD 自发荧光作为无标记细胞属性用于 CAR-T 细胞生产

英文原题:Use of cellular FAD autofluorescence as a label-free cellular attribute for the production of chimeric antigen receptor T cells.

查看英文原题

Use of cellular FAD autofluorescence as a label-free cellular attribute for the production of chimeric antigen receptor T cells.

PubMed 2025/05/15(内容时间) Cytotherapy Q1 · IF 4.5(JCR 2025)

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中文摘要

嵌合抗原受体(CAR)T细胞疗法已成为治疗血液系统恶性肿瘤的一种有吸引力的方法。然而,复杂的生产流程、生产设施能力有限,以及CAR-T 细胞生产中的手工步骤需要高技能人员等因素,限制了该疗法的可及性。为减少手工流程,CAR-T 细胞生产领域正转向封闭式自动化系统,并配备可间歇监测生产中细胞的分析工具。

因此,需要开发可在封闭系统内密切监测CAR-T 细胞的无标记技术。NADH和FAD是自发荧光分子,可作为与T细胞活化相关的无标记生物标志物。本文评估使用配备405 nm紫色激光的流式细胞仪,检测T细胞中还原型烟酰胺腺嘌呤二核苷酸(NADH)和黄素腺嘌呤二核苷酸(FAD)的自发荧光。

结果显示,T细胞活化后最初3天内,NADH和FAD自发荧光增加与T细胞活化标志物CD25上调及培养后培养液细胞外乳酸增加显著相关。

我们还通过建立CAR-T 细胞FAD平均荧光强度(MFI)变化速率与G-Rex生物反应器中T细胞增殖变化速率的关系,展示了利用FAD判定CAR-T 细胞生产终点的潜力。

总体而言,研究结果提示,自发荧光,特别是FAD自发荧光,可作为无标记生物标志物(细胞属性),监测CAR-T 生产过程中的T细胞活化和扩增。使用405 nm可见光取代具有基因毒性的紫外波长来检测NADH和FAD自发荧光,为将其整合进封闭式自动化CAR-T 生产过程监测系统铺平道路。

展开英文摘要原文

Chimeric antigen receptor (CAR) T-cell therapy has become an attractive approach for treating hematologic malignancies.

However, the accessibility of this therapy is limited by factors such as complex manufacturing processes, limited capacity of manufacturing facilities, and the requirement of a highly skilled workforce for the manual steps of CAR T-cell production. To minimize manual processes, the CAR T-cell manufacturing field is shifting towards closed and automated systems, including analytical tools that offer intermittent monitoring of cells in production.

Therefore, label-free technologies for closely monitoring CAR T-cells in closed systems are needed. NADH and FAD are autofluorescent molecules that can serve as label-free biomarkers that correlate with T cell activation.

Here, we evaluate the use of a flow cytometer equipped with a 405-nm violet laser for investigating the nicotinamide adenine dinucleotide reduced (NADH) and flavin adenine dinucleotide (FAD) autofluorescence in T cells.

Our results revealed that the increase of NADH and FAD autofluorescence was significantly correlated with the upregulation of T-cell activation marker CD25 and the increase of extracellular lactate in spent media in the first 3 days after T-cell activation.

We demonstrate the potential use of FAD for determining the endpoint of CAR T-cell manufacture by establishing a relationship between the rate of change in the mean fluorescence intensity (MFI) of FAD in CAR T-cells and the rate of change in T-cell proliferation using a G-Rex bioreactor.

Collectively, these findings suggest that autofluorescence, particularly FAD autofluorescence, can serve as a label-free biomarker (cellular attribute) for monitoring T-cell activation and expansion during CAR T-cell production. The use of 405-nm visible light to substitute for the genotoxic ultraviolet wavelengths for assessing NADH and FAD autofluorescence paves the way to incorporate autofluorescence measurements into closed and automated systems for in-process monitoring of CAR T-cell manufacturing.

论文信息

作者
Cheung KW、Kairi F、Teo DBL、Sin WX、Luah YH、Chen Y、Lim FLWI、Lee YH
第一作者单位
Critical Analytics for Manufacturing Personalized-Medicine (CAMP), Singapore-MIT Alliance for Research and Technology Centre (SMART), Singapore.Italy
通讯作者单位
Critical Analytics for Manufacturing Personalized-Medicine (CAMP), Singapore-MIT Alliance for Research and Technology Centre (SMART), Singapore; Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts, USA; Koch Institute for Integrative Cancer Research, Cambridge, Massachusetts, USA; Ragon Institute of MIT, MGH and Harvard, Cambridge, Massachusetts, USA. Electronic address: mbirnb@mit.edu.Italy
期刊
Cytotherapy2025 Aug
原文标识
PubMed 40481831 · DOI 10.1016/j.jcyt.2025.05.002