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:Enhancing Glioblastoma Immunotherapy with Integrated Chimeric Antigen Receptor T Cells through the Re-Education of Tumor-Associated Microglia and Macrophages.
Enhancing Glioblastoma Immunotherapy with Integrated Chimeric Antigen Receptor T Cells through the Re-Education of Tumor-Associated Microglia and Macrophages.
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胶质母细胞瘤(GBM)是一种侵袭性脑癌,对包括嵌合抗原受体(CAR)T细胞在内的治疗高度耐药。肿瘤相关小胶质细胞和巨噬细胞(TAM)是GBM免疫抑制性微环境的重要组成部分,可促进肿瘤进展和治疗耐药。
因此,调节TAM是提高CAR-T 治疗GBM免疫疗效的有前景策略。靶向药物pexidartinib(PLX)据报道可使TAM重新教育为抗肿瘤的M1样表型。
本研究开发了一种细胞-药物整合技术,可逆地将含PLX的脂质体(PLX-Lip)偶联至CAR-T 细胞,构建肿瘤应答型整合CAR-T 细胞(PLX-Lip/AZO-T细胞),作为GBM联合治疗方案。
我们在小鼠GBM模型中显示,PLX-Lip/AZO-T细胞在循环中可使PLX-Lip稳定附着于细胞表面,并能穿过血脑屏障,将PLX-Lip递送至肿瘤部位。TAM摄取PLX-Lip后被有效重塑为M1样表型,进而增强CAR-T 细胞抗肿瘤功能。接受PLX-Lip/AZO-T细胞治疗后,60%的小鼠肿瘤完全清除,总生存期延长至50天以上;相比之下,其他治疗组小鼠中位生存期均不超过35天。
总体而言,本研究利用细胞-药物整合技术成功结合CAR-T 细胞和小分子药物,提供了治疗GBM的优越联合策略,并为构建整合型细胞药物提供参考。
Glioblastoma (GBM) is an aggressive brain cancer that is highly resistant to treatment including chimeric antigen receptor (CAR)-T cells. Tumor-associated microglia and macrophages (TAMs) are major contributors to the immunosuppressive GBM microenvironment, which promotes tumor progression and treatment resistance.
Hence, the modulation of TAMs is a promising strategy for improving the immunotherapeutic efficacy of CAR-T cells against GBM. Molecularly targeting drug pexidartinib (PLX) has been reported to re-educate TAMs toward the antitumorigenic M1-like phenotype.
Here, we developed a cell-drug integrated technology to reversibly conjugate PLX-containing liposomes (PLX-Lip) to CAR-T cells and establish tumor-responsive integrated CAR-T cells (PLX-Lip/AZO-T cells) as a combination therapy for GBM.
We used a mouse model of GBM to show that PLX-Lip was stably maintained on the surface of PLX-Lip/AZO-T cells in circulation and these cells could transmigrate across the blood-brain barrier and deposit PLX-Lip at the tumor site. The uptake of PLX-Lip by TAMs effectively re-educated them into the M1-like phenotype, which in turn boosted the antitumor function of CAR-T cells.
GBM tumor growth was completely eradicated in 60% of the mice after receiving PLX-Lip/AZO-T cells and extended their overall survival time beyond 50 days; in comparison, the median survival time of mice in other treatment groups did not exceed 35 days.
Overall, we demonstrated the successful fusion of CAR-T cells and small-molecule drugs with the cell-drug integrated technology. These integrated CAR-T cells provided a superior combination strategy for GBM treatment and presented a reference for the construction of integrated cell-based drugs.
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