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:Tumor Microenvironmental Regulation of CAR T-Cell Therapy in High Risk Medulloblastoma.
Tumor Microenvironmental Regulation of CAR T-Cell Therapy in High Risk Medulloblastoma.
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优化的 CAR 设计与 TLR7/8 介导的髓系重编程相结合,可增强 T 细胞活性,为 G3MB 的 TME 导向免疫治疗提供支持。
靶向B7-H3的嵌合抗原受体(CAR)T细胞疗法在儿童脑肿瘤(pBT)中显示出临床安全性和抗肿瘤活性,但应答不持久。尽管临床前研究证明其有效性,哪种CAR设计最适合在免疫抑制性肿瘤微环境(TME)中维持功能仍不清楚。3组髓母细胞瘤(G3MB)是一种致死性pBT,对免疫治疗应答较差。TME中髓系细胞占主导,并通过包括Toll样受体7/8(TLR7/8)轴在内的先天免疫通路调节T细胞功能。TLR7/8激动剂可激活抗肿瘤髓系程序,但尚未与CAR-T 细胞疗法结合研究。因此,我们假设CAR结构与TLR7/8介导的髓系活化可协同调控G3MB中的CAR-T 细胞功能及后续治疗结局。
在体外和原位G3MB模型中评估包含CD28、4-1BB或CD28/4-1BB双重共刺激的B7-H3 CAR。将Resiquimod制备成可穿透脑组织的聚(2-噁唑啉)纳米颗粒(ResiPOx),以激活表达TLR7/8的髓系细胞。通过流式细胞术、整体及单细胞RNA测序评估T细胞和髓系细胞状态。
在免疫缺陷宿主中,各CAR设计的肿瘤控制效果相似;但在免疫功能完整模型中,双重共刺激CAR-T 细胞表现出更强细胞毒性和持久性。最佳CAR可诱导CAR-T 细胞持续增殖及TAM重编程,同时下调占主导地位的髓系细胞簇中的TLR7/8。ResiPOx通过激活髓系细胞并减少免疫抑制细胞群,增强了CAR-T 细胞疗效。
优化CAR设计并联合TLR7/8介导的髓系重编程可增强T细胞活性,支持为G3MB制定由TME特征指导的免疫治疗。
B7-H3-directed chimeric antigen receptor (CAR) T cell therapy has demonstrated clinical safety and antitumor activity in pediatric brain tumors (pBTs) but lacks durable responses. Although preclinical studies show efficacy, the CAR designs that best support sustained function in immunosuppressive tumor microenvironments (TMEs) remain unclear. Group 3 medulloblastoma (G3MB) is a lethal pBT with poor responsiveness to immunotherapy. Within the TME, myeloid cells dominate the immune landscape and regulate T cell function through innate immune pathways, including the Toll-like receptor 7/8 (TLR7/8) axis. While TLR7/8 agonists activate antitumor myeloid programs, their integration with CAR T-cell therapy has not been explored. Therefore, we hypothesize that CAR architecture and TLR7/8-mediated myeloid activation cooperatively govern CAR T-cell function and subsequent therapeutic outcomes in G3MB.
B7-H3 CARs incorporating CD28, 4-1BB, or dual CD28/4-1BB co-stimulation were evaluated in vitro and in orthotopic G3MB models. Resiquimod was formulated in a brain-penetrant poly (2-oxazoline) nanoparticle (ResiPOx) to activate TLR7/8-expressing myeloid cells. T cell and myeloid states were assessed by flow cytometry, bulk, and single-cell RNA sequencing.
CAR designs showed similar tumor control in immunodeficient hosts but diverged in immunocompetent models, where dual-costimulatory CAR T-cells demonstrated superior cytotoxicity and persistence. The optimal CAR induced sustained CAR T-cell cycling and TAM reprogramming while downregulating TLR7/8 in dominant myeloid clusters. ResiPOx enhanced CAR T-cell efficacy by activating myeloid cells and reducing suppressive populations.
Optimized CAR design combined with TLR7/8-mediated myeloid reprogramming enhances T cell activity, supporting TME-guided immunotherapy for G3MB.
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