癌症之外的 CAR 工程化细胞治疗:重编程纤维化和免疫介导炎症
CAR-Engineered Cell Therapies Beyond Cancer: Reprogramming Fibrosis and Immune-Mediated Inflammation.
嵌合抗原受体(CAR)工程化细胞疗法正从血液系统恶性肿瘤拓展至自身免疫性、炎症性和纤维化疾病,尽管各平台和适应证的证据成熟度差异显著。
英文原题:GD2-CAR-Engineered Microglia Exhibit Antitumor Effects in Organoids and Animal Models of Retinoblastoma.
我们的研究结果表明,GD2-CAR工程化小胶质细胞在视网膜母细胞瘤中具有强效的抗肿瘤作用,为支持继续开发CAR-小胶质细胞作为该疾病的治疗策略提供了有力证据。
视网膜母细胞瘤(RB)是儿童中最常见的眼内恶性肿瘤,严重影响患者的生活质量。嵌合抗原受体(CAR)免疫细胞疗法为治疗肿瘤开辟了一条新途径。然而,视网膜中的常驻免疫细胞——小胶质细胞是否可被工程化以治疗视网膜母细胞瘤仍不清楚。本研究的目的是生成人源CAR-小胶质细胞,并探讨CAR-小胶质细胞在RB中的抗肿瘤作用。
通过荧光显微镜、PCR和流式细胞术分析验证了microglia细胞中CAR的存在。由诱导多能干细胞生成的CAR-microglia通过免疫荧光、流式细胞术分析和RNA测序(RNA-seq)进行了鉴定。通过活体成像、流式细胞术分析、RNA-seq、实时定量PCR、细胞活力分析、细胞生物发光分析、ELISA、光学相干断层扫描、眼底摄影、生物发光成像和苏木精-伊红染色,在体外和体内研究了CAR-microglia在视网膜母细胞瘤中的抗肿瘤作用。
我们开发了人GD2 CAR-小胶质细胞,并通过活细胞成像发现,它们对视网膜母细胞瘤Y79细胞和视网膜母细胞瘤类器官表现出显著的吞噬作用。此外,将GD2 CAR-小胶质细胞给予携带视网膜母细胞瘤异种移植瘤的免疫缺陷小鼠后,肿瘤生长显著减少,生存期延长。
PURPOSE: Retinoblastoma (RB) is the most prevalent intraocular malignancy in children, which significantly impacts patients' quality of life. Chimeric antigen receptor (CAR) immune cell therapies opened a door to treating tumors. However, whether microglia, the resident immune cell in the retina, could be engineered to treat retinoblastoma remains unknown. The purpose of this study is to generate human CAR-microglia and to investigate the antitumor effects of CAR-microglia in RB. METHODS: The presence of CAR in microglia cells was verified using a fluorescence microscope, PCR, and flow cytometry analysis. The CAR-microglia generated from induced pluripotent stem cells were identified by immunofluorescence, flow cytometry analysis, and RNA sequencing (RNA-seq). The antitumor effects of CAR-microglia in retinoblastoma are investigated in vitro and in vivo by live imaging, flow cytometry analysis, RNA-seq, quantitative real-time PCR, cell viability analysis, cell bioluminescence analysis, ELISA, optical coherence tomography, fundus photography, bioluminescence imaging, and hematoxylin and eosin staining. RESULTS: We developed human GD2 CAR-microglia and found that they exhibited a remarkable phagocytic effect against retinoblastoma Y79 cells and retinoblastoma organoids, as demonstrated by live imaging. Moreover, GD2 CAR-microglia administration to immunodeficient mice carrying a retinoblastoma xenograft resulted in a significant reduction in tumor growth and prolonged survival. CONCLUSIONS: Our findings demonstrate a potent antitumor effect of GD2-CAR-engineered microglia in retinoblastoma, offering compelling evidence to support the continued development of CAR-microglia as a therapeutic strategy for this disease.
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