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:B7-H3 CAR-T cell therapy combined with irradiation is effective in targeting bulk and radiation-resistant chordoma cancer cells.
B7-H3 CAR-T cell therapy combined with irradiation is effective in targeting bulk and radiation-resistant chordoma cancer cells.
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我们的初步数据显示,在体外和异种移植小鼠模型中,IR 与 B7-H3 CAR-T 细胞疗法在杀伤脊索瘤细胞方面比单独使用 IR 或 CAR-T 细胞单药治疗具有协同增效作用。这些结果为在脊索瘤中进一步开发这种 RT 与 B7-H3 CAR-T 细胞联合治疗模型提供了临床前证据。
脊索瘤是一种生长缓慢的原发性恶性骨肿瘤,起源于中轴骨骼中线的脊索组织。手术切除并达到阴性切缘是主要治疗手段,但据报道即使切缘阴性,局部复发率仍较高。高剂量放射治疗 (RT),如质子或碳离子,已被用作手术的替代方案,但晚期局部失败仍是一个问题。B7-H3 是一种免疫检查点跨膜蛋白,在包括脊索瘤在内的许多癌症中失调。本研究探讨 B7-H3 CAR-T (CAR-T) 疗法在体外和体内的疗效。
脊索瘤肿瘤干细胞 (CCSCs) 通过流式细胞术、成球实验和 western blot 分析进行鉴定。采用免疫组化染色检测石蜡包埋脊索瘤组织中 B7-H3 的表达,并通过流式细胞术检测脊索瘤细胞中 B7-H3 的表达。将含有表达 B7-H3 或 CD19 CAR 病毒的逆转录病毒颗粒转导至从健康人供者血液中分离的外周血单个核细胞衍生的 T 细胞中,以制备 CAR-T 细胞。采用动物生物发光成像评估 CAR-T 细胞在体内对脊索瘤细胞的杀伤作用。所有辐照 (IR) 实验均使用辐照仪。
与 CAR-T 细胞或 IR 单药治疗相比,B7-H3 CAR-T 细胞疗法联合 IR 对放疗抵抗的 CCSCs 和整体脊索瘤细胞具有更强的杀伤作用。此外,CCSCs 和整体肿瘤细胞上 B7-H3 抗原表达升高与体外及体内异种移植小鼠模型中 CAR-T 细胞杀伤作用增强相关。IR 上调 B7-H3 表达可增加 CCSCs 对 B7-H3 CAR-T 细胞介导杀伤的敏感性。
Chordoma is a slow-growing, primary malignant bone tumor that arises from notochordal tissue in the midline of the axial skeleton. Surgical excision with negative margins is the mainstay of treatment, but high local recurrence rates are reported even with negative margins. High-dose radiation therapy (RT), such as with proton or carbon ions, has been used as an alternative to surgery, but late local failure remains a problem. B7-H3 is an immune checkpoint, transmembrane protein that is dysregulated in many cancers, including chordoma. This study explores the efficacy of B7-H3 chimeric antigen receptor T (CAR-T) therapy in vitro and in vivo.
Chordoma cancer stem cells (CCSCs) were identified using flow cytometry, sphere formation, and western blot analysis. The expression of B7-H3 in paraffin-embedded chordoma tissue was determined by immunohistochemical staining, and the expression of B7-H3 in chordoma cells was measured by flow cytometry. Retroviral particles containing either B7-H3 or CD19 CAR-expressing virus were transduced into T cells derived from peripheral blood mononuclear cells isolated from healthy human donor blood to prepare CAR-T cells. Animal bioluminescent imaging was used to evaluate the killing effect of CAR-T cells on chordoma cells in vivo. An irradiator was used for all irradiation (IR) experiments.
The combination of B7-H3 CAR-T cell therapy and IR has a greater killing effect on killing radiation-resistant CCSCs and bulk chordoma cells compared with CAR-T cell or IR monotherapy. Additionally, increased expression of B7-H3 antigens on CCSCs and bulk tumor cells is associated with enhanced CAR-T cell killing in vitro and in vivo xenograft mouse models. Upregulation of B7-H3 expression by IR increases CCSCs sensitivity to B7-H3 CAR-T cell-mediated killing.
Our preliminary data show that IR and B7-H3 CAR-T cell therapy is synergistically more effective than either IR or CAR-T cell monotherapy in killing chordoma cells in vitro and in a xenograft mouse model. These results provide preclinical evidence for further developing this combinatorial RT and B7-H3 CAR-T cell therapy model in chordoma.
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