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γδ T 细胞活化中的脂质代谢:对卵巢癌免疫治疗的意义

英文原题:Lipid metabolism in γδ T-cell activation: Implications for immunotherapy in ovarian cancer.

PubMed 2026/07/27(内容时间) Transl Oncol Q2 · IF 4.9(JCR 2025)

研究概要

这些方法可能有助于克服脂质驱动的免疫功能障碍,并支持针对OC的下一代免疫疗法的开发。

中文摘要

卵巢癌(OC)仍是全球女性癌症相关死亡的主要原因之一,主要与无症状进展、确诊时分期较晚、治疗耐药以及肿瘤微环境(TME)中显著的免疫抑制有关。这在晚期疾病中尤为突出:转移至网膜后形成富脂质生态位,促进肿瘤生长并削弱抗肿瘤免疫。本综述探讨脂质代谢重编程与γδ T细胞功能这一可干预的免疫代谢轴在OC中的作用,并选取iNKT细胞和CD8⁺ T细胞作为比较模型加以讨论。来自OC患者样本的直接证据显示,网膜TME促进CD36介导的脂质摄取和脂肪酸(FA)氧化;长期脂质暴露会损害γδ T细胞线粒体氧化磷酸化并促进其耗竭,包括上调PD-1和TIGIT。主要γδ T细胞亚群具有不同的代谢易感性:Vδ1 T细胞能够识别CD1呈递的脂质抗原,并依赖FA氧化,倾向于产生促肿瘤的IL-17;Vδ2 T细胞则通过BTN3A识别磷酸抗原,对糖酵解的依赖更强,因此容易受到OC TME中葡萄糖剥夺的影响。A2A受体介导的腺苷信号也会抑制γδ T细胞功能,而脂质诱导的CD39/CD73上调可能进一步放大这一作用。本文还评估了纳米颗粒平台共同递送代谢调节剂、γδ T细胞激动剂和免疫检查点阻断剂的潜力,并指出关键转化障碍,包括增强渗透与滞留效应不稳定、难以实现γδ T细胞特异性靶向,以及抑制FASN或CD36可能引起全身毒性。最后,本文提出若干后续策略:利用单细胞代谢组学绘制亚群特异性易感性图谱;通过CRISPR验证耗竭机制;通过敲除CD36或过表达CPT1A对CAR-γδ T细胞进行代谢工程改造;在患者来源异种移植模型中开展腹腔内纳米颗粒递送;以及开发TME限制性递送系统。这些策略有望克服脂质驱动的免疫功能障碍,并推动下一代OC免疫疗法的发展。

展开英文摘要原文

Ovarian cancer (OC) remains a leading cause of cancer-related mortality among women worldwide, largely due to asymptomatic progression, late-stage diagnosis, therapeutic resistance, and profound immunosuppression within the tumor microenvironment (TME). This is particularly relevant in advanced disease, where metastatic spread to the omentum creates a lipid-rich niche that promotes tumor growth and weakens anti-tumor immunity. This review examines lipid metabolic reprogramming and γδ T-cell function as a targetable immunometabolic axis in OC, with selected discussion of iNKT and CD8+ T-cells as comparative models. Direct evidence from OC patient samples demonstrates that the omental TME drives CD36-mediated lipid uptake and fatty acid (FA) oxidation, while chronic lipid exposure impairs γδ T-cell mitochondrial oxidative phosphorylation and promotes exhaustion, including up-regulation of PD-1 and TIGIT. The major γδ T-cell subsets exhibit distinct metabolic vulnerabilities: Vδ1 T-cells can recognize CD1-presented lipid antigens and rely on FA oxidation, favoring pro-tumoral IL-17 production, whereas Vδ2 T-cells detect phosphoantigens via BTN3A and depend more strongly on glycolysis, rendering them susceptible to glucose deprivation in the OC TME. Concurrent adenosine signaling via A2A receptors, potentially amplified by lipid-induced CD39/CD73 up-regulation, further suppresses γδ T-cell function. We also evaluate nanoparticle-based platforms for co-delivery of metabolic modulators, γδ T-cell agonists, and immune checkpoint blockers, while highlighting key translational barriers, including variable enhanced permeability and retention effects, limited γδ T-cell-specific targeting, and potential systemic toxicity of FASN or CD36 inhibition. Finally, this review proposes future strategies including single-cell metabolomics to map subset-specific vulnerabilities, CRISPR-based validation of exhaustion mechanisms, metabolic engineering of CAR-γδ T-cells through CD36 knockout or CPT1A overexpression, intraperitoneal nanoparticle delivery in patient-derived xenograft models, and TME-restricted delivery systems. Together, these approaches may help overcome lipid-driven immune dysfunction and support the development of next-generation immunotherapies for OC.

论文信息

作者
Stirblyte K、Ghanem Y、Bates M、Gray SG、Saadeh FA、Martin C、O'Toole S、O'Leary JJ
第一作者单位
Department of Histopathology, Trinity College Dublin, Dublin 8, Ireland.Ireland
通讯作者单位
Department of Histopathology, Trinity College Dublin, Dublin 8, Ireland; Trinity St James's Cancer Institute, Dublin 8, Ireland; Department of Obstetrics and Gynaecology, Trinity College Dublin, Dublin, Ireland. Electronic address: bmohamed@tcd.ie.Ireland
文献类型
综述
期刊
Translational oncology2026 Oct
原文标识
PubMed 42520474 · DOI 10.1016/j.tranon.2026.102953