肿瘤细胞治疗研究
英文原题:In Vitro Assessment of Thermo-Responsive Scaffold as a 3D Synthetic Matrix for CAR-T Potency Testing Against Glioblastoma Spheroids.
In Vitro Assessment of Thermo-Responsive Scaffold as a 3D Synthetic Matrix for CAR-T Potency Testing Against Glioblastoma Spheroids.
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嵌合抗原受体(CAR)T细胞免疫疗法对血液系统恶性肿瘤疗效卓越,但对实体瘤的疗效明显较弱。为克服这一局限,亟需在能够模拟实体瘤物理屏障的合成三维微环境中研究CAR-T 细胞的抗肿瘤效力。
本研究总体目标是初步评估一种合成热响应材料,作为体外共培养抗双唾液酸神经节苷脂(GD2)CAR-T 细胞与患者来源胶质母细胞瘤(GBM)细胞球的支架。独立的共培养实验表明,包埋过程不会对胶质瘤干细胞(GSC)或CAR-T 细胞的细胞周期进程造成不利影响。以与悬浮对照相同的比例接种后,GSC细胞球可在三元共聚物支架内随时间生长。将悬浮CAR-T 细胞与水凝胶包埋的GSC细胞球共培养显示,CAR-T 细胞能够穿过水凝胶并靶向包埋其中的GSC细胞球。CAR-T 细胞杀伤了约80%的包埋GSC,同时维持有效的CD4:CD8 T细胞比例;与表达GD2的GSC相互作用后,还能分泌炎性细胞因子。
值得注意的是,该支架也便于回收细胞,供后续细胞分析使用。本研究表明,合成三元共聚物三维水凝胶可作为人工支架,用于研究细胞免疫疗法对实体瘤的效力。
Chimeric antigen receptor (CAR) T cell immunotherapy has demonstrated exceptional efficacy against hematological malignancies, but notably less against solid tumors. To overcome this limitation, it is critical to investigate antitumor CAR-T cell potency in synthetic 3D microenvironments that can simulate the physical barriers presented by solid tumors. The overall goal of this study was the preliminary assessment of a synthetic thermo-responsive material as a substrate for in vitro co-cultures of anti-disialoganglioside (GD2) CAR-T cells and patient-derived glioblastoma (GBM) spheroids.
Independent co-culture experiments demonstrated that the encapsulation process did not adversely affect the cell cycle progression of glioma stem cells (GSCs) or CAR-T cells. GSC spheroids grew over time within the terpolymer scaffold, when seeded in the same ratio as the suspension control.
Co-cultures of CAR-T cells in suspension with hydrogel-encapsulated GSC spheroids demonstrated that CAR-T cells could migrate through the hydrogel and target the encapsulated GSC spheroids. CAR-T cells killed approximately 80% of encapsulated GSCs, while maintaining effective CD4:CD8 T cell ratios and secreting inflammatory cytokines after interacting with GD2-expressing GSCs.
Importantly, the scaffolds also facilitated cell harvesting for downstream cellular analysis.
This study demonstrated that a synthetic 3D terpolymer hydrogel can serve as an artificial scaffold to investigate cellular immunotherapeutic potency against solid tumors.
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