CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:STS2 deficiency revives CD8(+)T cells from exhaustion and augments checkpoint blockade efficacy in cancer immunotherapy.
STS2 deficiency revives CD8(+)T cells from exhaustion and augments checkpoint blockade efficacy in cancer immunotherapy.
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我们的发现确立了 STS2 作为 T 细胞耗竭的多方面调节因子,并突出了其作为增强抗肿瘤免疫和改善癌症免疫治疗结局的治疗靶点的潜力。
T细胞耗竭是有效抗肿瘤免疫的主要障碍,并限制了癌症免疫疗法的疗效。本研究探讨了T细胞信号抑制因子2(STS2,也称为UBASH3A)在肿瘤微环境中调控CD8+ T细胞耗竭中的作用。
我们利用小鼠模型中的STS2基因消融来评估肿瘤控制及对抗程序性细胞死亡蛋白1(PD-1)检查点阻断疗法的反应。通过流式细胞术、质谱流式细胞术和单细胞转录组学对CD8+TIL(肿瘤浸润淋巴细胞)(TILs)进行了表征。机制研究包括共免疫沉淀、蛋白质降解实验和内吞作用测量,以阐明STS2与PD-1之间的相互作用。
STS2表达随T细胞耗竭而逐渐增加。STS2的基因缺失增强了肿瘤控制并改善了对anti-PD-1治疗的应答。STS2缺陷的CD8+ TIL维持了更为功能性的状态,表现出增强的效应活性、增殖和抗肿瘤效能,同时抵抗终末耗竭。在机制上,我们发现STS2与PD-1发生物理相互作用,并在蛋白质水平上调控其表达、内吞和降解。
T-cell exhaustion is a major barrier to effective antitumor immunity and limits the efficacy of cancer immunotherapies. This study investigates the role of suppressor of T-cell signaling 2 (STS2, also known as UBASH3A) in regulating CD8 + T-cell exhaustion within the tumor microenvironment.
We used genetic ablation of STS2 in mouse models to assess tumor control and responses to anti-programmed cell death protein 1 (PD-1) checkpoint blockade therapy. CD8 + tumor-infiltrating lymphocytes (TILs) were characterized through flow cytometry, mass cytometry, and single-cell transcriptomics. Mechanistic studies included co-immunoprecipitation, protein degradation assays, and endocytosis measurements to elucidate the interplay between STS2 and PD-1.
STS2 expression progressively increased with T-cell exhaustion. Genetic deletion of STS2 enhanced tumor control and improved responses to anti-PD-1 therapy. STS2-deficient CD8 + TILs maintained a more functional state, exhibiting enhanced effector activity, proliferation, and antitumor efficacy while resisting terminal exhaustion. Mechanistically, we discovered that STS2 physically interacts with PD-1 and modulates its expression, endocytosis, and degradation at the protein level.
Our findings establish STS2 as a multifaceted regulator of T-cell exhaustion and highlight its potential as a therapeutic target for enhancing antitumor immunity and improving cancer immunotherapy outcomes.
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