← 返回前沿论文

抗原敏感性 B7-H3 靶向纳米抗体 CAR-T 细胞在胶质母细胞瘤中的临床前评估警示在靶、瘤外毒性

英文原题:Preclinical evaluation of antigen-sensitive B7-H3-targeting nanobody-based CAR-T cells in glioblastoma cautions for on-target, off-tumor toxicity.

PubMed 2024/11/19(内容时间) J Immunother Cancer Q1 · IF 11.7(JCR 2025)

研究概要

经体外表征后,B7-H3 nanoCAR-T 细胞在胶质母细胞瘤治疗中显示出前景,但观察到限制性的体内毒性。

中文摘要

背景:胶质母细胞瘤是最常见的致死性原发脑肿瘤,亟需评估新的治疗选择。由于B7同源物3(B7-H3)在胶质母细胞瘤细胞中过表达、而在健康脑组织中不表达,靶向B7-H3的嵌合抗原受体(CAR)T细胞具有治疗前景。基于纳米抗体的CAR(nanoCAR)由于采用单结构域且免疫原性低,正日益受到关注,成为传统单链可变片段(scFv)CAR的潜在替代方案。尽管如此,B7-H3 nanoCAR-T细胞尚未在胶质母细胞瘤中得到充分研究。 方法:我们开发并评估了B7-H3 nanoCAR和scFvCAR T细胞的人胶质母细胞瘤模型。靶向无关抗原的nanoCAR-T细胞作为对照。采用ELISA、活细胞成像和流式细胞术评估体外T细胞活化、细胞因子分泌和杀伤能力。通过CRISPR/Cas9基因组编辑敲除B7-H3,评估抗原特异性杀伤。首先采用核医学成像在体内评估B7-H3纳米抗体的肿瘤示踪能力,随后在异种移植胶质母细胞瘤模型中评估nanoCAR-T细胞的治疗潜力。 结果:体外实验显示,B7-H3 nanoCAR-T细胞对B7-H3阳性胶质母细胞瘤细胞的裂解效率最高。对照nanoCAR-T细胞未能杀伤胶质母细胞瘤细胞,而B7-H3 nanoCAR-T细胞也不能杀伤B7-H3阴性胶质母细胞瘤,证实其抗原特异性。核医学成像实验显示,用于nanoCAR设计的B7-H3纳米抗体具有体内肿瘤靶向能力。体内评估显示,B7-H3 nanoCAR-T细胞治疗小鼠可控制肿瘤,而对照nanoCAR-T细胞治疗小鼠则出现疾病进展。然而,接受B7-H3 nanoCAR-T细胞治疗的小鼠出现限制性毒性;研究还显示,即使小鼠B7-H3表达水平低,也可活化B7-H3 nanoCAR-T细胞。 结论:体外表征显示B7-H3 nanoCAR-T细胞对胶质母细胞瘤治疗有前景,但观察到限制性体内毒性。可与小鼠B7-H3交叉反应的nanoCAR-T细胞识别健康小鼠组织中的B7-H3,可能是毒性的原因,因此使用高度敏感的nanoCAR-T细胞时应谨慎,尤其需考虑健康组织中的低水平B7-H3表达。

展开英文摘要原文

BACKGROUND: Glioblastoma is the most common lethal primary brain tumor, urging evaluation of new treatment options. Chimeric antigen receptor (CAR)-T cells targeting B7 homolog 3 (B7-H3) are promising because of the overexpression of B7-H3 on glioblastoma cells but not on healthy brain tissue. Nanobody-based (nano)CARs are gaining increasing attention as promising alternatives to classical single-chain variable fragment-based (scFv)CARs, because of their single-domain nature and low immunogenicity. Still, B7-H3 nanoCAR-T cells have not been extensively studied in glioblastoma. METHODS: B7-H3 nanoCAR- and scFvCAR-T cells were developed and evaluated in human glioblastoma models. NanoCAR-T cells targeting an irrelevant antigen served as control. T cell activation, cytokine secretion and killing capacity were evaluated in vitro using ELISA, live cell imaging and flow cytometry. Antigen-specific killing was assessed by generating B7-H3 knock-out cells using Clustered Regularly Interspaced Short Palindromic Repeats (CRISPR)/Cas9-genome editing. The tumor tracing capacity of the B7-H3 nanobody was first evaluated in vivo using nuclear imaging. Then, the therapeutic potential of the nanoCAR-T cells was evaluated in a xenograft glioblastoma model. RESULTS: We showed that B7-H3 nanoCAR-T cells were most efficient in lysing B7-H3 pos glioblastoma cells in vitro. Lack of glioblastoma killing by control nanoCAR-T cells and lack of B7-H3 neg glioblastoma killing by B7-H3 nanoCAR-T cells showed antigen-specificity. We showed in vivo tumor targeting capacity of the B7-H3 nanobody-used for the nanoCAR design-in nuclear imaging experiments. Evaluation of the nanoCAR-T cells in vivo showed tumor control in mice treated with B7-H3 nanoCAR-T cells in contrast to progressive disease in mice treated with control nanoCAR-T cells. However, we observed limiting toxicity in mice treated with B7-H3 nanoCAR-T cells and showed that the B7-H3 nanoCAR-T cells are activated even by low levels of mouse B7-H3 expression. CONCLUSIONS: B7-H3 nanoCAR-T cells showed promise for glioblastoma therapy following in vitro characterization, but limiting in vivo toxicity was observed. Off-tumor recognition of healthy mouse tissue by the cross-reactive B7-H3 nanoCAR-T cells was identified as a potential cause for this toxicity, warranting caution when using highly sensitive nanoCAR-T cells, recognizing the low-level expression of B7-H3 on healthy tissue.

论文信息

作者
Meeus F、Funeh CN、Awad RM、Zeven K、Autaers D、De Becker A、Van Riet I、Goyvaerts C
单位
Translational Oncology Research Center (TORC), Department of Biomedical Sciences, Laboratory for Molecular and Cellular Therapy (LMCT), Vrije Universiteit Brussel, Brussels, Belgium fien.meeus@vub.be.Belgium
期刊
Journal for immunotherapy of cancer2024 Nov 19
原文标识
PubMed 39562005 · DOI 10.1136/jitc-2024-009110