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.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Treating solid tumors with TCR-based chimeric antigen receptor targeting extra domain B-containing fibronectin.
Treating solid tumors with TCR-based chimeric antigen receptor targeting extra domain B-containing fibronectin.
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我们的研究证实了靶向 EDB-纤连蛋白的 rTCR-CAR-T 细胞作为抗肿瘤疗法的潜力。
肿瘤微环境(TME)对嵌合抗原受体(CAR)T 细胞的抑制,是基于 T 细胞治疗实体瘤的一项关键障碍。纤连蛋白额外结构域 B(EDB-fibronectin)是一种胚胎肿瘤抗原,表达于新生血管内皮层和癌细胞。尽管其已被视为 T 细胞治疗靶点,迄今工程化 CAR-T 细胞仍未显示令人满意的体内疗效。本研究报告,靶向 EDB-fibronectin 的重定向 TCR-CAR-T 细胞(rTCR-CAR)可绕过抑制性 TME,用于实体瘤治疗并充分抑制肿瘤生长。研究将单链可变片段与 CD3ζ 融合,构建靶向 EDB 的 CAR,即 rTCR-CAR;使用人原代 T 细胞和 Jurkat 细胞研究靶向 EDB 的 T 细胞,并比较其与传统第二代 CAR-T 细胞在信号传导、免疫突触形成和 T 细胞耗竭方面的差异。研究在体外检测 rTCR-CAR-T 细胞的细胞毒性,并在异种移植模型中评估治疗效果。
在异种移植模型中,rTCR-CAR-T 细胞的体内疗效优于基于传统 CAR 设计的细胞。肿瘤生长受到抑制,同时肿瘤血管密度显著下降;即便肿瘤模型由 EDB 阴性癌细胞建立,也观察到这种效果。rTCR-CAR 可结合固定化 EDB,且这种结合诱导形成的免疫突触优于第二代 CAR 形成的结构。与传统 TCR 复合物的机制相似,EDB-fibronectin 可激活 rTCR-CAR,使 rTCR-CAR-T 细胞基础活化水平较低且体内扩增增加。
本研究显示,靶向 EDB-fibronectin 的 rTCR-CAR-T 细胞具有作为抗癌疗法的潜力。经工程化后,这些细胞同时具有抗血管生成和细胞毒活性,且不受抑制性 TME 影响而保持疗效。单一治疗药物兼具这些特征,提示其可能实现对实体瘤的持续控制。
The suppression of chimeric antigen receptor (CAR) T cells by the tumor microenvironment (TME) is a crucial obstacle in the T-cell-based treatment of solid tumors. Extra domain B (EDB)-fibronectin is an oncofetal antigen expressed on the endothelium layer of the neovasculature and cancer cells. Though recognized as a T cell therapy target, engineered CAR T cells thus far have failed to demonstrate satisfactory in vivo efficacy. In this study, we report that targeting EDB-fibronectin by redirected TCR-CAR T cells (rTCR-CAR) bypasses the suppressive TME for solid tumor treatment and sufficiently suppressed tumor growth.We generated EDB-targeting CAR by fusing single-chain variable fragment to CD3 , resulting in rTCR-CAR. Human primary T cells and Jurkat cells were used to study the EDB-targeting T cells. Differences to the traditional second-generation CAR T cell in signaling, immune synapse formation, and T cell exhaustion were characterized. Cytotoxicity of the rTCR-CAR T cells was tested in vitro, and therapeutic efficacies were demonstrated using xenograft models.
RESULTS: In the xenograft models, the rTCR-CAR T cells demonstrated in vivo efficacies superior to that based on traditional CAR design. A significant reduction in tumor vessel density was observed alongside tumor growth inhibition, extending even to tumor models established with EDB-negative cancer cells. The rTCR-CAR bound to immobilized EDB, and the binding led to immune synapse structures superior to that formed by second-generation CARs. By a mechanism similar to that for the conventional TCR complex, EDB-fibronectin activated the rTCR-CAR, resulting in rTCR-CAR T cells with low basal activation levels and increased in vivo expansion.
Our study has demonstrated the potential of rTCR-CAR T cells targeting the EDB-fibronectin as an anticancer therapeutic. Engineered to possess antiangiogenic and cytotoxic activities, the rTCR-CAR T cells showed therapeutic efficacies not impacted by the suppressive TMEs. These combined characteristics of a single therapeutic agent point to its potential to achieve sustained control of solid tumors.
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