单细胞追踪揭示黑色素瘤 TIL 治疗过程中肿瘤反应性 T 细胞的可塑性
Single-cell tracking reveals tumor-reactive T cell plasticity during melanoma TIL therapy.
TIL(肿瘤浸润淋巴细胞)过继细胞治疗可在转移性黑色素瘤中诱导持久缓解,然而在体外扩增过程中及回输后,调控肿瘤反应性T细胞命运的克隆和转录动态仍知之甚少。
英文原题:Dimethyl fumarate reprograms cervical cancer cells to enhance antitumor immunity by activating mtDNA-cGAS-STING pathway.
Dimethyl fumarate reprograms cervical cancer cells to enhance antitumor immunity by activating mtDNA-cGAS-STING pathway.
该研究阐明,DMF 重编程 CC 细胞以激活 mtDNA-cGAS-STING 通路,进而形成富含趋化因子的微环境,招募 CD8⁺ T 细胞。
背景:宫颈癌(CC)仍是全球女性面临的重大健康挑战,尤其是晚期疾病,可选的有效治疗有限。包括PD-1/PD-L1阻断和过继T细胞疗法在内的现有免疫疗法,应答率和应答持久性均有限。富马酸二甲酯(DMF)是FDA批准用于自身免疫性疾病的药物,在多种癌症中显示出直接抗肿瘤活性,但其对抗肿瘤免疫的影响及其在CC中的作用尚不明确。本研究旨在考察DMF在CC模型中的治疗潜力并阐明其作用机制。方法:研究者使用CC细胞系和小鼠模型进行DMF处理,并通过RNA测序和生物信息学方法分析处理后宫颈癌细胞的转录组。采用qPCR、免疫荧光、免疫印迹和ELISA评估线粒体DNA(mtDNA)释放及cGAS-STING通路激活,通过流式细胞术分析CD8+ T细胞募集,并在同系移植或患者来源异种移植(PDX)模型中测试DMF联合抗PD-1或TIL治疗。结果:DMF处理诱导肿瘤细胞线粒体功能障碍,使mtDNA释放至细胞质。细胞质mtDNA继而激活cGAS-STING-TBK1通路和I型干扰素应答,促进CCL5和CXCL10分泌,从而增强CD8 T细胞浸润。此外,在小鼠CC模型中,DMF与PD-1阻断具有协同作用,并可在患者来源异种移植模型中增强过继转移T细胞对CC的治疗效能。结论:本研究阐明DMF可重编程CC细胞并激活mtDNA-cGAS-STING通路,形成富含趋化因子的微环境,从而募集CD8+ T细胞。DMF与PD-1阻断或TIL疗法的协同效应,凸显其作为免疫刺激辅助药物的潜力。这些发现提示DMF有望成为改善CC临床结局的新型免疫治疗策略。
BACKGROUND: Cervical cancer (CC) remains a significant global health challenge for women, especially in advanced stages where effective treatments are limited. Current immunotherapies, including PD-1/PD-L1 blockades and adoptive T cell therapies, show limited response rates and durability. Dimethyl fumarate (DMF), an FDA-approved drug for autoimmune diseases, has demonstrated direct antitumor activity in several cancers. However, its influence on anti-tumor immunity and its function in CC remain poorly understood. This study aims to investigate the therapeutic potential of DMF in CC models and elucidate its underlying mechanisms of action. METHODS: CC cell lines and mouse models were treated with DMF. Transcriptomics profiling of cervical cancer cells following DMF treatment were analyzed by RNA-seq and bioinformatic methods. Mitochondrial DNA (mtDNA) release, and cGAS-STING activation were assessed via qPCR, immunofluorescence, immunoblotting and ELISA. CD8 + T cell recruitment was analyzed by flow cytometry. Combinatorial therapies (DMF + anti-PD-1/TILs) were tested in syngeneic or patient-derived xenografts (PDX) models. RESULTS: DMF treatment induces mitochondrial dysfunction in tumor cells, resulting in the release of mtDNA into the cytosol. The cytosolic mtDNA in turn activates the cGAS-STING-TBK1 pathway and type I interferon response, leading to the secretion of CCL5 and CXCL10, thereby enhancing CD8 T cell infiltration. Additionally, DMF exhibits synergistic effect with PD-1 blockade in murine CC model, and can enhance the therapeutic efficacy of adoptively transferred T cells toward CC in patient-derived xenografts model. CONCLUSION: This work elucidated that DMF reprograms CC cells to activate the mtDNA-cGAS-STING pathway, fostering a chemokine-rich microenvironment that recruits CD8 + T cells. The synergistic effect of DMF and PD-1 blockade or TIL therapy underscores its potential as an immunostimulatory adjuvant. These findings suggest that DMF holds promise as a novel immunotherapeutic strategy for improving clinical outcomes in CC.
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