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:Screening and Identification of Key Biomarkers in Lower Grade Glioma via Bioinformatical Analysis.
Screening and Identification of Key Biomarkers in Lower Grade Glioma via Bioinformatical Analysis.
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低级别胶质瘤(LGG)是一种常见的中枢神经系统肿瘤。由于其发病机制复杂,肿瘤治疗后辅助治疗的选择和时机存在争议。本研究探索并确定了低级别胶质瘤的潜在治疗靶点。采用生物信息学方法识别潜在的生物标志物和LGG分子机制。首先,我们从GEO数据库中选择并下载了GSE15824、GSE50161和GSE86574,其中包括40个LGG组织样本和28个正常脑组织样本。GEO和VENN软件识别出206个共差异表达基因(DEGs)。其次,我们应用DAVID在线软件研究DEG的生物学功能和KEGG通路富集,并通过Cytoscape和STRING网站构建蛋白质相互作用可视化网络。然后,使用MCODE插件分析22个核心基因。第三,用UNCLA软件分析22个核心基因,其中18个基因与较差预后相关。第四,使用GEPIA分析所选的18个基因,发现14个基因在LGG和正常脑肿瘤样本之间表达存在显著差异。第五,使用层次基因聚类检查14个重要基因在不同组织学中的表达差异,以及KEGG通路分析。其中5个基因被证明富含于NK 细胞介导的细胞因子(NKCC)和吞噬体通路中。可能受免疫微环境影响的五个关键基因在LGG发展中起关键作用。
Lower-grade glioma (LGG) is a common type of central nervous system tumor. Due to its complicated pathogenesis, the choice and timing of adjuvant therapy after tumor treatment are controversial.
This study explored and identified potential therapeutic targets for lower-grade. The bioinformatics method was employed to identify potential biomarkers and LGG molecular mechanisms. Firstly, we selected and downloaded GSE15824, GSE50161, and GSE86574 from the GEO database, which included 40 LGG tissue and 28 normal brain tissue samples. GEO and VENN software identified of 206 codifference expressed genes (DEGs). Secondly, we applied the DAVID online software to investigate the DEG biological function and KEGG pathway enrichment, as well as to build the protein interaction visualization network through Cytoscape and STRING website. Then, the MCODE plug is used in the analysis of 22 core genes.
Thirdly, the 22 core genes were analyzed with UNCLA software, of which 18 genes were associated with a worse prognosis. Fourthly, GEPIA was used to analyze the 18 selected genes, and 14 genes were found to be a significantly different expression between LGGs and normal brain tumor samples.
Fifthly, hierarchical gene clustering was used to examine the 14 important gene expression differences in different histologies, as well as analysis of the KEGG pathway. Five of these genes were shown to be abundant in the natural killer cell-mediated cytokines (NKCC) and phagosome pathways. The five key genes that may be affected by the immune microenvironment play a crucial role in LGG development.
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