RNF43 p.G659fs 通过 PI3K/AKT/mTOR 信号通路和 HLA-E 上调导致 MSI-high 结直肠癌中 NK 细胞功能障碍
RNF43 p.G659fs leads to natural killer cell dysfunction in MSI-high colorectal cancer through PI3K/AKT/mTOR signaling and HLA-E up-regulation.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Metformin increases natural killer cell functions in head and neck squamous cell carcinoma through CXCL1 inhibition.
Metformin increases natural killer cell functions in head and neck squamous cell carcinoma through CXCL1 inhibition.
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我们的数据揭示了二甲双胍介导的免疫抗肿瘤功能的新作用,即通过 NK 细胞介导的细胞毒性和下调 HNSCC 中 CXCL1 来实现。这些发现将为 HNSCC 未来的免疫调节治疗提供依据。
二甲双胍在体外可减缓肿瘤生长和进展,并且在我们的一项1期临床试验(NCT02325401)中,与放化疗联合使用可使头颈部鳞状细胞癌(HNSCC)患者获得较高的总生存期。二甲双胍还被推测可激活抗肿瘤免疫反应。在此,我们研究二甲双胍对自然杀伤(NK)细胞和自然杀伤T细胞的免疫学效应,包括两项在HNSCC患者中接受二甲双胍治疗的1期开放标签研究(NCT02325401、NCT02083692)的结果。
外周血在二甲双胍治疗前后采集,或取自新诊断的HNSCC患者。采用流式细胞术评估外周免疫细胞表型,通过ELISA和/或IsoLight检测细胞因子表达,并使用基于流式的NK细胞毒性试验(NKCA)测定NK细胞介导的细胞毒性。采用免疫荧光分析二甲双胍治疗前后患者肿瘤免疫浸润情况。NK细胞分别用溶媒或二甲双胍处理,并通过RNA测序(RNA-seq)进行分析。随后,用RNA-seq确定的重要通路抑制剂处理NK细胞,并通过NKCA、ELISA和western blot分析进行检测。
在接受二甲双胍治疗的患者中观察到外周NK细胞活化群体增加。术前接受二甲双胍治疗的HNSCC患者中,NK细胞肿瘤浸润增强。二甲双胍在离体条件下增加了抗肿瘤细胞因子,包括穿孔素的显著增加。二甲双胍增强了HNSCC NK细胞细胞毒性,并抑制CXCL1通路,同时刺激HNSCC NK细胞内的STAT1通路。外源性CXCL1阻止了二甲双胍增强的NK细胞介导的细胞毒性。二甲双胍介导的NK细胞细胞毒性被发现不依赖于AMP活化蛋白激酶,但依赖于mechanistic target of rapamycin和pSTAT1两者。
Metformin slows tumor growth and progression in vitro, and in combination with chemoradiotherapy, resulted in high overall survival in patients with head and neck cancer squamous cell carcinoma (HNSCC) in our phase 1 clinical trial (NCT02325401). Metformin is also postulated to activate an antitumor immune response. Here, we investigate immunologic effects of metformin on natural killer (NK) and natural killer T cells, including results from two phase I open-label studies in patients with HNSCC treated with metformin (NCT02325401, NCT02083692).
Peripheral blood was collected before and after metformin treatment or from newly diagnosed patients with HNSCC. Peripheral immune cell phenotypes were evaluated using flow cytometry, cytokine expression by ELISA and/or IsoLight, and NK cell-mediated cytotoxicity was determined with a flow-based NK cell cytotoxicity assay (NKCA). Patient tumor immune infiltration before and after metformin treatment was analyzed with immunofluorescence. NK cells were treated with either vehicle or metformin and analyzed by RNA sequencing (RNA-seq). NK cells were then treated with inhibitors of significant pathways determined by RNA-seq and analyzed by NKCA, ELISA, and western blot analyses.
Increased peripheral NK cell activated populations were observed in patients treated with metformin. NK cell tumor infiltration was enhanced in patients with HNSCC treated with metformin preoperatively. Metformin increased antitumorigenic cytokines ex vivo, including significant increases in perforin. Metformin increased HNSCC NK cell cytotoxicity and inhibited the CXCL1 pathway while stimulating the STAT1 pathway within HNSCC NK cells. Exogenous CXCL1 prevented metformin-enhanced NK cell-mediated cytotoxicity. Metformin-mediated NK cell cytotoxicity was found to be AMP-activated protein kinase independent, but dependent on both mechanistic target of rapamycin and pSTAT1.
Our data identifies a new role for metformin-mediated immune antitumorigenic function through NK cell-mediated cytotoxicity and downregulation of CXCL1 in HNSCC. These findings will inform future immunomodulating therapies in HNSCC.
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