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增强的 FOS 表达改善慢性抗原暴露下 NR4A3 缺陷 CAR-T 细胞的肿瘤清除并抵抗耗竭

英文原题:Enhanced FOS expression improves tumor clearance and resists exhaustion in NR4A3-deficient CAR T cells under chronic antigen exposure.

查看英文原题

Enhanced FOS expression improves tumor clearance and resists exhaustion in NR4A3-deficient CAR T cells under chronic antigen exposure.

PubMed 2025/10/17(内容时间) Sci Adv Q1 · IF 13.9(JCR 2025)

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中文摘要

肿瘤微环境中的嵌合抗原受体(CAR)T细胞功能障碍,是其治疗实体瘤疗效受限的主要障碍。通过对胶质瘤患者肿瘤浸润T细胞进行单细胞RNA测序分析,研究者发现NR4A家族基因与T细胞耗竭密切相关,并与功能障碍基因HAVCR2和TIGIT共同表达。值得注意的是,敲低NR4A3的CAR-T 细胞表现出更强的抗肿瘤细胞毒活性,从而改善体内肿瘤清除并延长生存。然而,随着肿瘤负荷持续增加,这种抗耗竭表型的改善逐渐减弱。该T细胞功能下降与慢性抗原暴露后FOS代偿性下调相关。在敲低NR4A3的同时过表达FOS,可通过改变CAR-T 细胞表型和转录特征,使其远离耗竭状态、增强效应功能,从而有力提升抗肿瘤应答。这些发现为临床改造CAR-T 细胞疗法提供了一种有前景的策略。

展开英文摘要原文

The dysfunction of chimeric antigen receptor (CAR) T cells in the tumor microenvironment is a major obstacle to their therapeutic efficacy against solid tumors. Through single-cell RNA sequencing analysis of tumor-infiltrating T cells from patients with glioma, NR4A family genes were identified as closely associated with T cell exhaustion and were coexpressed with dysfunctional genes HAVCR2 and TIGIT .

Notably, CAR T cells with NR4A3 knockdown exhibited enhanced cytotoxic activity against tumors, leading to improved tumor clearance and prolonged survival in vivo.

However, the promoted antiexhausted phenotype diminished with prolonged tumor burden. This decline in T cell function correlates with the compensatory down-regulation of FOS induced by chronic antigen exposure following NR4A3 knockdown. Overexpressing FOS alongside NR4A3 knockdown robustly boosted the antitumor responses of CAR T cells by skewing their phenotypes and transcriptional profiles away from exhaustion and toward increased effector function.

These findings offer a promising strategy for the clinical modification of CAR T cell therapy.

论文信息

作者
Yin P、Yang J、Jiang Y、Han L、Xiong T、Liu H、Fang Y、Ruan W
单位
Department of Pathology, School of Basic Medical Sciences, Southern Medical University, Guangzhou 510515, P.R. China.China
文献类型
非美国政府资助研究
期刊
Science advances2025 Oct 17
原文标识
PubMed 41105771 · DOI 10.1126/sciadv.adw3571