CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CAR-T(CAR-T)细胞在血液系统恶性肿瘤中的应用推动了这种免疫治疗形式的显著进展。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Upregulation of the TCA Cycle and Oxidative Phosphorylation Enhances the Fitness of CD99 CAR-T Cells Under Dynamic Cultivation.
Upregulation of the TCA Cycle and Oxidative Phosphorylation Enhances the Fitness of CD99 CAR-T Cells Under Dynamic Cultivation.
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制备过程显著影响嵌合抗原受体(CAR)T细胞的增殖、代谢状态和功能持久性。然而,不同培养系统如何调节CAR-T 细胞代谢并影响其长期抗肿瘤活性,目前仍了解不足。
本研究比较了使用波浪式生物反应器进行动态培养与使用透气培养瓶或常规T瓶进行静态扩增,制备CD99特异性CAR-T 细胞的效果。波浪式生物反应器扩增的CAR-T 细胞在培养期间增殖更快、细胞毒性更强。经反复抗原刺激后,这些细胞仍保持增强的功能特性,免疫检查点分子表达降低,记忆样亚群得到优先保留;其转录特征也符合记忆维持和耗竭抵抗。靶向代谢组分析显示,三羧酸(TCA)循环活性增强,并呈现氧化磷酸化持续维持的特征,支持以线粒体为中心的代谢重编程。在尤文肉瘤异种移植模型中,波浪式生物反应器培养的CAR-T 细胞中,肿瘤浸润记忆样淋巴细胞的比例较高。
总体而言,波浪式生物反应器动态培养可促进线粒体代谢重编程,表现为TCA循环增强和氧化磷酸化持续,从而维持CAR-T 细胞功能,并为制备强效、持久的细胞治疗产品提供稳健平台。
The manufacturing process contributes significantly to the proliferation, metabolic state, and functional persistence of chimeric antigen receptor (CAR)-T cells.
However, how different culture systems regulate CAR-T cell metabolism and thereby influence their long-term antitumor activity remains poorly understood. In this study, we compared dynamic cultivation using a wave bioreactor with static expansion systems (gas-permeable and conventional T-flasks) for the production of CD99-specific CAR-T cells. CAR-T cells expanded by the wave bioreactor exhibited faster proliferation and stronger cytotoxicity during culture. Upon repeated antigen stimulation, they retained these enhanced functional properties and showed the reduced expression of immune checkpoint molecules, preferentially preserved memory-like subsets, and displayed transcriptional features consistent with memory maintenance and exhaustion resistance.
Targeted metabolomic profiling revealed enhanced Tricarboxylic Acid (TCA) cycle activity and features consistent with sustained oxidative phosphorylation, supporting mitochondrial-centered metabolic reprogramming. In a Ewing sarcoma xenograft model, wave bioreactor-cultured CAR-T cells showed a greater percentage of memory-like tumor-infiltrating lymphocytes.
Collectively, these results indicate that wave bioreactor-based dynamic cultivation promotes mitochondrial metabolic reprogramming, which is characterized by an enhanced TCA cycle and sustained oxidative phosphorylation, thereby sustaining CAR-T cell functionality and providing a robust platform for the manufacturing of potent and durable cellular therapeutics.
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