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:Targeting the extracellular matrix with Tenascin-C-specific CAR T cells extends survival in preclinical models of glioblastoma.
Targeting the extracellular matrix with Tenascin-C-specific CAR T cells extends survival in preclinical models of glioblastoma.
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靶向 TNC 选择性剪接 FNIII-D 结构域的 CAR-T 细胞为 GBM 提供了一种有前景的治疗方法。TNC-CAR-T 细胞表现出特异性肿瘤识别、强大的抗肿瘤活性以及由分泌型 TNC 介导的旁观者效应。其在临床前模型中的疗效,结合良好的安全性特征,凸显了其临床转化潜力。
胶质母细胞瘤(GBM)是一种侵袭性脑肿瘤,预后差且治疗选择有限。靶向细胞表面抗原的嵌合抗原受体(CAR)T细胞已被证明可在GBM患者中诱导肿瘤消退,尽管疗效是短暂的。为了拓宽肿瘤限制性抗原的范围,我们开发了靶向Tenascin-C(TNC)的CAR-T 细胞,TNC是一种分泌型细胞外基质蛋白,在GBM中过表达,并在肿瘤进展中发挥关键作用。
第二代CAR-T 细胞被设计为靶向TNC的可变剪接纤连蛋白III型(FNIII)-D结构域,使用从R6N抗体分离的单链可变片段,并与CD28共刺激结构域偶联。TNC-CAR-T 细胞在体外使用表达TNC的患者来源GBM细胞系以贴壁细胞或神经球形式培养,评估了抗原特异性、活化和细胞增殖。还评估了对纯化TNC蛋白、肿瘤上清液和离体患者肿瘤样本的反应性。CAR-T 细胞的细胞毒性活性针对TNC阳性和TNC阴性GBM细胞系进行了测试,包括由分泌型TNC介导的旁观者效应。在携带患者来源GBM肿瘤的NOD scid gamma小鼠中确定了体内疗效和安全性。
TNC-CAR-T 细胞在暴露于 TNC 阳性 GBM 细胞、细胞来源上清液或纯化 TNC 蛋白时表现出活化。它们对表达 TNC 的 GBM 来源贴壁细胞和神经球表现出强效细胞毒性,并在存在 TNC 分泌细胞或纯化 TNC 的情况下诱导对 TNC 阴性细胞的旁观者杀伤。在体内,TNC-CAR-T 细胞有效浸润肿瘤,触发癌细胞凋亡,并显著延长携带患者来源 GBM 小鼠的生存期,且无脱靶毒性证据。值得注意的是,TNC-CAR-T 细胞仅在肿瘤样本存在时被活化,对患者来源的非肿瘤组织未表现出反应性。
Glioblastoma (GBM) is an aggressive brain tumor associated with poor outcome and limited treatment options. Chimeric antigen receptor (CAR) T cells targeting cell surface antigens were shown to induce tumor regression in patients with GBM, although efficacy was transient. To broaden the range of tumor-restricted antigens, we developed CAR T cells targeting Tenascin-C (TNC), a secreted extracellular matrix protein that is overexpressed in GBM and plays a critical role in tumor progression.
Second-generation CAR T cells were engineered to target the alternatively spliced fibronectin type III (FNIII)-D domain of TNC using a single-chain variable fragment isolated from the R6N antibody and coupled to a CD28 costimulatory domain. TNC-CAR T cells were evaluated in vitro for antigen specificity, activation, and cell proliferation using TNC-expressing patient-derived GBM cell lines cultured as adherent cells or as neurospheres. Reactivity toward purified TNC protein, tumor supernatant, and ex vivo patient tumor samples was also assessed. Cytotoxic CAR T-cell activity was tested against TNC-positive and TNC-negative GBM cell lines, including bystander effects mediated by secreted TNC. In vivo efficacy and safety were determined in NOD scid gamma mice bearing patient-derived GBM tumors.
TNC-CAR T cells demonstrated activation when exposed to TNC-positive GBM cells, cell-derived supernatants, or purified TNC protein. They exhibited potent cytotoxicity against TNC-expressing, GBM-derived adherent cells and neurospheres, and induced bystander killing of TNC-negative cells in the presence of either TNC-secreting cells or purified TNC. In vivo, TNC-CAR T cells efficiently infiltrated tumors, triggered cancer cell apoptosis, and significantly extended survival of mice bearing patient-derived GBM, with no evidence of off-tumor toxicity. Notably, TNC-CAR T cells were activated exclusively in the presence of tumor samples and showed no reactivity toward patient-derived non-tumor tissues.
Targeting the alternatively spliced FNIII-D domain of TNC with CAR T cells offers a promising therapeutic approach for GBM. TNC-CAR T cells demonstrated specific tumor recognition, robust antitumor activity and the ability to induce bystander effects mediated by secreted TNC. Their efficacy in preclinical models, combined with a favorable safety profile, underscores their potential for clinical translation.
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