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通过体外转导经 TS-2021 增强的 CD70 CAR-T 细胞显示出针对胶质母细胞瘤的强效抗肿瘤疗效

英文原题:CD70 CAR-T cells empowered by TS-2021 through ex vivo transduction show potent antitumor efficacy against glioblastoma.

PubMed 2025/06/05(内容时间) J Exp Clin Cancer Res Q1 · IF 14.3(JCR 2025)

研究概要

通过将携带 IL15 的 OAd 整合到 CAR-T 细胞中,我们展示了一种协同策略,可同时增强病毒溶瘤作用、维持 T 细胞持久性并对抗 GBM 免疫抑制。

中文摘要

背景:由于肿瘤抗原异质性和免疫抑制性微环境,嵌合抗原受体(CAR)T细胞治疗胶质母细胞瘤(GBM)的疗效有限。为应对这些障碍,我们开发了一种新型联合策略:利用第三代溶瘤腺病毒(OAd)工程化CAR-T细胞,实现病毒靶向递送和持续免疫活化。不同于传统OAd给药方式,该策略利用CAR-T细胞作为趋肿瘤载体,在局部溶瘤并调节细胞因子。方法:将靶向CD70的CAR-T细胞转导入两种第三代OAd(E1B19K/E3缺失、复制选择性):OAd-GFP(对照)或OAd-IL15(TS-2021),分别制得CAR-T OAd-GFP和CAR-T TS-2021。体外评估病毒复制动力学和CAR-T细胞扩增;通过CAR-T OAd细胞与GBM细胞共培养,量化OAd递送效率。反复抗原刺激后,采用流式细胞术分析IL-15对干样标志物(CCR7、CD45RA)和耗竭标志物(PD-1、TIM-3、LAG-3)的影响。通过体外细胞毒性实验及原位GBM异种移植瘤NCG小鼠模型评估抗肿瘤活性,并采用RNA测序和蛋白质印迹开展机制研究。结果:基因工程化OAd-GFP可在CAR-T细胞内特异性复制,并通过抗原特异性机制精准递送至GBM。持续抗原刺激会诱导T细胞耗竭,限制CAR-T疗效。感染TS-2021的CAR-T细胞在体外扩增和持久性增强,持续抗原刺激下耗竭标志物表达降低。IL-15自分泌信号活化JAK-STAT和MAPK-ERK通路,修复OAd导致的CAR-T细胞DNA损伤,并维持其扩增和持久性。通过结合OAd介导的溶瘤作用与IL-15驱动的CAR-T持久性,CAR-T TS-2021细胞在体内外均显示出对GBM的强效抗肿瘤活性。结论:将IL-15装甲型OAd整合进CAR-T细胞,可实现协同策略,同时增强病毒溶瘤作用、维持T细胞持久性并抵消GBM免疫抑制。该方法可应对抗原异质性和微环境驱动的耐药,为实体瘤免疫治疗提供了可转化的新范式。

展开英文摘要原文

BACKGROUND: Chimeric antigen receptor (CAR) T-cell therapy has shown limited efficacy in glioblastoma (GBM) due to tumor antigen heterogeneity and the immunosuppressive microenvironment. To address these barriers, we developed a novel combinatorial approach: engineering CAR-T cells with third-generation oncolytic adenoviruses (OAd) to enable targeted viral delivery and sustained immune activation. Unlike conventional OAd administration, this strategy leverages CAR-T cells as tumor-tropic vectors for localized oncolysis and cytokine modulation. METHODS: CD70-specific CAR-T cells were transduced with two third-generation OAds (E1B19K/E3-deleted, replication-selective): OAd-GFP (control) or OAd-IL15 (TS-2021), generating CAR-T OAd-GFP and CAR-T TS-2021 . Viral replication kinetics and CAR-T expansion were assessed in vitro. OAd delivery efficiency was quantified by co-culturing CAR-T OAd cells with GBM cells. Flow cytometry was used to analyze IL15-mediated effects on stem-like markers (CCR7, CD45RA) and exhaustion markers (PD-1, TIM-3, and LAG-3) after repeated antigen stimulation. Antitumor activity was evaluated in vitro using cytotoxicity assays and in NCG mice bearing orthotopic GBM xenografts. Mechanistic studies were conducted using RNA-seq and Western blotting. RESULTS: In this study, we found that genetically engineered OAd-GFP can specifically replicate within CAR-T cells and be precisely delivered to GBM through an antigen-specific mechanism. Prolonged antigen stimulation induced T-cell exhaustion, limiting the efficacy of CAR-T therapy. TS-2021-infected CAR-T cells exhibited enhanced expansion and persistence in vitro, with reduced expression of exhaustion markers under sustained antigen stimulation. IL15 autocrine signaling activated JAK-STAT and MAPK-ERK pathways. This process repaired the DNA damage induced by OAd in CAR-T cells and maintained their expansion and persistence. By combining OAd-mediated oncolysis with IL15-driven CAR-T persistence, CAR-T TS-2021 cells demonstrated potent antitumor efficacy against GBM both in vitro and in vivo. CONCLUSIONS: By integrating IL15-armed OAd into CAR-T cells, we demonstrate a synergistic strategy that simultaneously enhances viral oncolysis, sustains T-cell persistence, and counteracts GBM immunosuppression. This approach addresses both antigenic heterogeneity and microenvironment-driven resistance, providing a translatable paradigm for solid tumor immunotherapy.

论文信息

作者
Fang S、Wu J、Liu Y、Wang P、Yuan G、Gao J、Zhang W、Zhang J
第一作者单位
Brain Tumor Research Center, Beijing Neurosurgical Institute, Capital Medical University, Beijing, 100070, China.China
通讯作者单位
Brain Tumor Research Center, Beijing Neurosurgical Institute, Capital Medical University, Beijing, 100070, China. liufusheng@ccmu.edu.cn.China
期刊
Journal of experimental & clinical cancer research : CR2025 Jun 5
原文标识
PubMed 40474210 · DOI 10.1186/s13046-025-03431-6