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探究共刺激结构域在增强三阴性乳腺癌中 CAR-T 细胞持久性中的作用

英文原题:Investigating the role of costimulatory domains in enhancing CAR-T cell persistence in TNBC.

PubMed 2026/08/21(内容时间) Cancer Gene Ther Q1 · IF 6.4(JCR 2025)

研究概要

本工作总结了共刺激结构域如何介导CAR-T细胞在三阴性乳腺癌(TNBC)中的持久性、功能和治疗潜力,TNBC是一种高度侵袭性的恶性肿瘤,治疗选择有限且具有免疫抑制性肿瘤微环境。

中文摘要

本工作总结了共刺激结构域如何介导CAR-T细胞在三阴性乳腺癌(TNBC)中的持久性、功能和治疗潜力,TNBC是一种高度侵袭性的恶性肿瘤,治疗选择有限,且具有免疫抑制性肿瘤微环境。尽管CAR-T细胞疗法在血液系统恶性肿瘤中取得了显著结果,但其向TNBC的转化仍受限于T细胞持久性差、代谢功能障碍和快速耗竭。当前证据表明,经典共刺激结构域(CD28和4-1BB)对细胞内信号传导、代谢重编程和T细胞分化具有不同影响;基于CD28的CAR-T细胞促进快速激活和糖酵解代谢,但通常与终末分化和持久性降低相关,而4-1BB信号支持线粒体适应性、氧化磷酸化以及支持更持久存续的记忆样T细胞发育。CAR-T细胞的功能差异依赖于情境,并受TNBC肿瘤微环境内抗原密度、缺氧和其他免疫抑制信号的影响。较新的共刺激结构域,如HVEM和TNFRSF9,通过调节激活性和抑制性通路,为T细胞信号传导增加了额外的复杂性,将其纳入CAR设计为最佳调节T细胞反应提供了新方法;然而,它们在TNBC模型中的功能尚未完全明确。此外,双重共刺激策略和联合治疗(T细胞代谢重编程、表观遗传调节和免疫检查点阻断)已在临床前研究中显示出前景,但其转化价值仍有待验证。本综述传递的一个重要信息是,虽然通过增强共刺激信号可以提高持久性,但 CAR T 疗法的理想性能出现在建立理想的刺激信号平衡时,这种平衡既能促进效应 T 细胞的持续功能,又能抑制 T 细胞耗竭并避免强直性激活的有害影响。此外,评估 TNBC 模型与其他实体瘤相比的数据对于指导 TNBC 中合理的 CAR T 设计策略至关重要。

展开英文摘要原文

This work summarizes how costimulatory domains can mediate the persistence, function, and therapeutic potential of CAR-T cells in triple-negative breast cancer (TNBC), a highly aggressive malignancy with limited treatment options and an immunosuppressive tumor microenvironment. Although CAR-T cell therapy has produced remarkable results in hematologic malignancies, its translation to TNBC remains limited by poor T cell persistence, metabolic dysfunction, and rapid exhaustion. Current evidence identifies canonical costimulatory domains (CD28 and 4-1BB) as having differential effects on intracellular signaling, metabolic programming, and T cell differentiation; CD28-based CAR-T cells promote rapid activation and glycolytic metabolism but are commonly associated with terminal differentiation and decreased durability, whereas 4-1BB signaling supports mitochondrial fitness, oxidative phosphorylation, and the development of memory-like T cells that support longer-lasting persistence. The functional differences in CAR-T cells are context-dependent and influenced by antigen density, hypoxia, and other immunosuppressive signals within the TNBC tumor microenvironment. Newer costimulatory domains, such as HVEM and TNFRSF9, have added an additional layer of complexity to T cell signaling by modulating activating and inhibitory pathways, and their incorporation into CAR designs offers new ways to optimally regulate T cell responses; however, their functions are not fully defined in TNBC models. Additionally, dual costimulation strategies and combination therapies (metabolic reprogramming of T cells, epigenetic modulation, and immune checkpoint blockade) have shown promise in preclinical studies, but their translational value remains to be validated. An important message arising from this review is that while persistence may be improved through enhanced costimulatory signaling, the ideal performance of CAR T therapy occurs with the establishment of an ideal balance of stimulating signals that promote the sustained function of effector T cells while inhibiting the exhaustion of T cells and avoiding the deleterious effects of tonic activation. Furthermore, it is critical to evaluate data from TNBC models compared to other solid tumors to inform rational CAR T design strategies in TNBC.

论文信息

作者
Marei HE、Pozzoli G、Cenciarelli C
单位
Department of Cytology and Histology, Faculty of Veterinary Medicine, Mansoura University, Mansoura, Egypt. hanymarei@mans.edu.eg.Egypt
文献类型
综述
期刊
Cancer gene therapy2026 Aug 21
原文标识
PubMed 42629367 · DOI 10.1038/s41417-026-01073-0