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B7-H3 介导的 CAR-T 细胞耗竭逆转在卵巢癌模型中诱导显著抗肿瘤反应

英文原题:B7-H3-mediated reversal of CAR-T cell exhaustion induces a notable antitumour response in ovarian cancer models.

PubMed 2025/10/07(内容时间) EBioMedicine Q1 · IF 11.2(JCR 2025)

研究概要

CAR-T 细胞疗法联合 HI-TOPK-032 是治疗表达 MSLN 的实体瘤的一种有前景的新策略。

中文摘要

背景:免疫抑制性肿瘤微环境中的CAR-T细胞功能耗竭,仍是CAR-T治疗实体瘤成功的主要障碍。间皮素(MSLN)已成为卵巢癌等多种实体恶性肿瘤CAR-T治疗的有吸引力靶点。本研究旨在探讨脂质代谢物在卵巢癌抗MSLN CAR-T细胞耗竭中的作用及机制。方法:我们构建了靶向MSLN高表达卵巢癌细胞的抗MSLN CAR-T细胞,作为体内外实验的关键工具。液相色谱-串联质谱(LC-MS/MS)揭示氧脂素12-HETE在CAR-T细胞耗竭中的关键作用。通过基于结构的高通量虚拟筛选(HTVS),我们鉴定出一种靶向B7-H3的抑制剂。结果:我们证明,卵巢癌微环境中依赖GPR31积累的12-HETE,可通过脂质过氧化驱动CAR-T细胞耗竭,损害其抗肿瘤疗效。通过基因或药理方式抑制12-HETE/GPR31轴,可恢复CAR-T细胞细胞毒性和增殖能力,并在小鼠模型中显著缩小肿瘤。沉默B7-H3可解除其对FOXO3的抑制,降低12-LOX表达及12-HETE水平,说明B7-H3位于这一代谢检查点上游。基于结构的筛选鉴定出HI-TOPK-032这一强效B7-H3抑制剂;该药可逆转耗竭标志物(如PD-1、TIM-3),增强细胞因子多功能性,从而与CAR-T治疗协同。HI-TOPK-032联合抗PD-1治疗的肿瘤控制效果优于单药,尤其在B7-H3/12-LOX高表达患者来源异种移植模型中,凸显其精准治疗潜力。解读:CAR-T疗法联合HI-TOPK-032是治疗MSLN表达型实体瘤的一种有前景新策略。经费来源:本研究由国家自然科学基金(项目号82503173)、北京市医院管理中心登峰计划(DFL20221201)、北京市医院管理中心临床医学发展专项资金支持项目(ZYLX202120)、北京市自然科学基金(7162063)、首都医科大学临床医学实验室及妇科肿瘤精准诊疗创新工作室资助。

展开英文摘要原文

BACKGROUND: Functional CAR-T cell exhaustion in the immunosuppressive tumour microenvironment remains the main barrier to the success of CAR-T cell therapy for treating solid tumours. Mesothelin (MSLN) has emerged as an attractive target for CAR-T cell therapy for several solid malignancies, including ovarian cancer. In this study, we aimed to investigate the role and mechanism of lipid metabolites in anti-MSLN CAR-T cell exhaustion in ovarian cancer cells. METHODS: We engineered anti-MSLN CAR-T cells targeting ovarian cancer cells with high MSLN expression as a pivotal tool for in vitro and in vivo experiments. Moreover, liquid chromatography-tandem mass spectrometry (LC-MS/MS) revealed the critical role of oxylipin 12-HETE in the exhaustion of CAR-T cells. By employing structure-based high-throughput virtual screening (HTVS), we identified the inhibitor targeting B7-H3. FINDINGS: We demonstrated that GPR31-dependent 12-HETE accumulation in the ovarian cancer microenvironment drives CAR-T cell exhaustion via lipid peroxidation, impairing their antitumour efficacy. Genetic or pharmacological inhibition of the 12-HETE/GPR31 axis restored CAR-T cell cytotoxicity and proliferation, leading to significant tumour regression in murine models. Silencing B7-H3 relieved repression of FOXO3, leading to reduced 12-LOX expression and lower 12-HETE levels, which places B7-H3 upstream of this metabolic checkpoint. Through structure-based screening, we identified HI-TOPK-032 as a potent B7-H3 inhibitor that synergised with CAR-T cell therapy by reversing exhaustion markers (e.g., PD-1, TIM-3) and enhancing cytokine polyfunctionality. Combined HI-TOPK-032 and anti-PD-1 treatment achieved superior tumour control compared to monotherapies, particularly in B7-H3/12-LOX-high patient-derived xenografts, underscoring its precision therapeutic potential. INTERPRETATION: CAR-T cell therapy combined with HI-TOPK-032 is a promising novel strategy for treating MSLN-expressing solid tumours. FUNDING: This study was funded by the National Natural Science Foundation of China (Grant number: 82503173), Beijing Hospitals Authority's Ascent Plan (Grant number: DFL20221201), Beijing Hospitals Authority Clinical Medicine Development of Special Funding Support (Grant number: ZYLX202120), Beijing Natural Science Foundation (Grant number: 7162063), Capital Medical University Laboratory for Clinical Medicine and Gynecological Tumour Precise Diagnosis and Treatment Innovation Studio.

论文信息

作者
Liu Q、Deng M、Jiang J、Tang F、Chang X、Yang R、Liu P、Zhang Y
第一作者单位
Department of Gynecological Oncology, Beijing Obstetrics and Gynecology Hospital, Capital Medical University, Beijing Maternal and Child Health Care Hospital, Beijing, 100006, China; Laboratory for Clinical Medicine, Capital Medical University, Beijing, 100006, China.China
通讯作者单位
Department of Gynecological Oncology, Beijing Obstetrics and Gynecology Hospital, Capital Medical University, Beijing Maternal and Child Health Care Hospital, Beijing, 100006, China; Laboratory for Clinical Medicine, Capital Medical University, Beijing, 100006, China. Electronic address: jinweimiao@ccmu.edu.cn.China
期刊
EBioMedicine2025 Nov
原文标识
PubMed 41061481 · DOI 10.1016/j.ebiom.2025.105949