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:CAR-T Cell Performance: How to Improve Their Persistence?
CAR-T Cell Performance: How to Improve Their Persistence?
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用表达嵌合抗原受体(CAR)重编程的T细胞进行的过继细胞疗法(CAR-T 细胞)在血液系统肿瘤患者中取得了高度成功。然而,其在实体瘤病例中的治疗获益有限。即使那些对这种免疫疗法有反应的患者,也因CAR-T 细胞的短期持续性或非扩增而面临复发风险;此外,敌对的肿瘤微环境(TME)导致这些细胞在回输后功能失调。一些研究表明,在过继T细胞疗法中,输注产品中存在分化程度较低的T细胞亚群与更好的临床结局相关。初始和记忆T细胞比效应T细胞持续更久,并表现出更强的抗肿瘤活性。
因此,正在研究新方法以克服该疗法的局限性,从而生成具有这些理想表型的CAR-T 细胞。在本文中,我们综述了T细胞亚群的特征及其在CAR-T 细胞过继疗法临床结局中的意义。
此外,我们描述了一些为克服CAR-T 细胞持续性降低而开发的策略,以及通过增加修饰T细胞的扩增能力和寿命来改进该疗法的替代方案。这些方法包括细胞培养优化、在生产扩增阶段加入稳态细胞因子、调节CAR-T 细胞代谢、操控参与T细胞分化的信号通路,以及与CAR构建体设计相关的策略。
Adoptive cell therapy with T cells reprogrammed to express chimeric antigen receptors (CAR-T cells) has been highly successful in patients with hematological neoplasms.
However, its therapeutic benefits have been limited in solid tumor cases. Even those patients who respond to this immunotherapy remain at risk of relapse due to the short-term persistence or non-expansion of CAR-T cells; moreover, the hostile tumor microenvironment (TME) leads to the dysfunction of these cells after reinfusion.
Some research has shown that, in adoptive T-cell therapies, the presence of less differentiated T-cell subsets within the infusion product is associated with better clinical outcomes. Naive and memory T cells persist longer and exhibit greater antitumor activity than effector T cells.
Therefore, new methods are being studied to overcome the limitations of this therapy to generate CAR-T cells with these ideal phenotypes. In this paper, we review the characteristics of T-cell subsets and their implications in the clinical outcomes of adoptive therapy with CAR-T cells.
In addition, we describe some strategies developed to overcome the reduced persistence of CAR T-cells and alternatives to improve this therapy by increasing the expansion ability and longevity of modified T cells. These methods include cell culture optimization, incorporating homeostatic cytokines during the expansion phase of manufacturing, modulation of CAR-T cell metabolism, manipulating signaling pathways involved in T-cell differentiation, and strategies related to CAR construct designs.
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