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:Tumor-derived GCSF Alters Tumor and Systemic Immune System Cell Subset Composition and Signaling.
Tumor-derived GCSF Alters Tumor and Systemic Immune System Cell Subset Composition and Signaling.
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虽然免疫检查点阻断和过继性T细胞疗法等免疫治疗可改善一部分人类恶性肿瘤患者的生存,但许多患者仍无应答。包括树突状细胞(DC)、单核细胞和巨噬细胞(MF)在内的吞噬细胞协调针对肿瘤的固有免疫和适应性免疫应答。然而,肿瘤来源的因子可能通过改变吞噬细胞的信号转导、发育和活性来限制免疫治疗的有效性。利用飞行时间质谱流式细胞技术(Cytometry by Time-of-Flight),我们发现肿瘤来源的GCSF在局部和全身均改变了髓系细胞的分布。我们在荷瘤小鼠中区分出大量由GCSF诱导的免疫细胞亚群和信号转导通路扰动,包括未成熟中性粒细胞/髓源性抑制细胞(Neut/MDSC)亚群及肿瘤驻留的PD-L1 + Neut/MDSCs的显著增加。GCSF表达还与独特的肿瘤相关MF群体、常规DC减少以及以脾脏前体细胞增多且DC分化潜能降低为特征的脾肿大相关。使用来自表达GCSF的肿瘤细胞培养物的培养基,在体外骨髓培养中重现了GCSF依赖的DC发育失调。重要的是,肿瘤来源的GCSF削弱了T细胞过继细胞疗法的效果,并与乳腺癌小鼠肿瘤体积增大和生存期缩短相关。在小鼠自发性结肠癌模型中,用中和性抗GCSF抗体治疗减少了结肠和循环中的Neut/MDSCs,使结肠免疫细胞组成正常化,并减轻了肿瘤负荷。对人类结直肠癌患者基因表达数据的分析显示,生存期与低 GCSF 和 Neut/MDSC 基因表达之间存在显著相关性。我们的数据表明,在 GCSF 过表达相关癌症中,使 GCSF 生物活性正常化可能改善免疫治疗。意义:肿瘤来源的 GCSF 导致全身免疫细胞群体变化。阻断 GCSF 可恢复免疫细胞群体、改善免疫治疗并缩小肿瘤体积,这与人类结直肠癌数据一致。抑制 GCSF 可能与当前免疫疗法协同作用,以治疗分泌 GCSF 的肿瘤。
UNLABELLED: While immunotherapies such as immune checkpoint blockade and adoptive T-cell therapy improve survival for a subset of human malignancies, many patients fail to respond. Phagocytes including dendritic cells (DC), monocytes, and macrophages (MF) orchestrate innate and adaptive immune responses against tumors.
However, tumor-derived factors may limit immunotherapy effectiveness by altering phagocyte signal transduction, development, and activity. Using Cytometry by Time-of-Flight, we found that tumor-derived GCSF altered myeloid cell distribution both locally and systemically.
We distinguished a large number of GCSF-induced immune cell subset and signal transduction pathway perturbations in tumor-bearing mice, including a prominent increase in immature neutrophil/myeloid-derived suppressor cell (Neut/MDSC) subsets and tumor-resident PD-L1 + Neut/MDSCs.
GCSF expression was also linked to distinct tumor-associated MF populations, decreased conventional DCs, and splenomegaly characterized by increased splenic progenitors with diminished DC differentiation potential. GCSF-dependent dysregulation of DC development was recapitulated in bone marrow cultures in vitro , using medium derived from GCSF-expressing tumor cell cultures.
Importantly, tumor-derived GCSF impaired T-cell adoptive cell therapy effectiveness and was associated with increased tumor volume and diminished survival of mice with mammary cancer. Treatment with neutralizing anti-GCSF antibodies reduced colonic and circulatory Neut/MDSCs, normalized colonic immune cell composition and diminished tumor burden in a spontaneous model of mouse colon cancer. Analysis of human colorectal cancer patient gene expression data revealed a significant correlation between survival and low GCSF and Neut/MDSC gene expression.
Our data suggest that normalizing GCSF bioactivity may improve immunotherapy in cancers associated with GCSF overexpression. SIGNIFICANCE: Tumor-derived GCSF leads to systemic immune population changes. GCSF blockade restores immune populations, improves immunotherapy, and reduces tumor size, paralleling human colorectal cancer data. GCSF inhibition may synergize with current immunotherapies to treat GCSF-secreting tumors.
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