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首页> 外文期刊>Journal of Translational Medicine >Establishment of a novel glycolysis-related prognostic gene signature for ovarian cancer and its relationships with immune infiltration of the tumor microenvironment
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Establishment of a novel glycolysis-related prognostic gene signature for ovarian cancer and its relationships with immune infiltration of the tumor microenvironment

机译:建立卵巢癌的新型糖酵解相关预后基因签名及其与肿瘤微环境免疫浸润的关系

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Glycolysis affects tumor growth, invasion, chemotherapy resistance, and the tumor microenvironment. In this study, we aimed to construct a glycolysis-related prognostic model for ovarian cancer and analyze its relationship with the tumor microenvironment’s immune cell infiltration. We obtained six glycolysis-related gene sets for gene set enrichment analysis (GSEA). Ovarian cancer data from The Cancer Genome Atlas (TCGA) database and two Gene Expression Omnibus (GEO) datasets were divided into two groups after removing batch effects. We compared the tumor environments' immune components in high-risk and low-risk groups and analyzed the correlation between glycolysis- and immune-related genes. Then, we generated and validated a predictive model for the prognosis of ovarian cancer using the glycolysis-related genes. Overall, 27/329 glycolytic genes were associated with survival in ovarian cancer, 8 of which showed predictive value. The tumor cell components in the tumor microenvironment did not differ between the high-risk and low-risk groups; however, the immune score differed significantly between groups. In total, 13/24 immune cell types differed between groups, including 10?T cell types and three other immune cell types. Eight glycolysis-related prognostic genes were related to the expression of multiple immune-related genes at varying degrees, suggesting a relationship between glycolysis and immune response. We identified eight glycolysis-related prognostic genes that effectively predicted survival in ovarian cancer. To a certain extent, the newly identified gene signature was related to the tumor microenvironment, especially immune cell infiltration and immune-related gene expression. These findings provide potential biomarkers and therapeutic targets for ovarian cancer.
机译:糖酵解会影响肿瘤生长,侵袭,化学疗法和肿瘤微环境。在这项研究中,我们旨在构建卵巢癌的糖酵解相关的预后模型,并与肿瘤微环境的免疫细胞浸润分析其关系。我们获得了六种糖酵解相关基因集基因设定富集分析(GSEA)。从患有批量效应后,卵巢癌数据库(TCGA)数据库(TCGA)数据库和两个基因表达综合组(Geo)数据集分为两组。我们将肿瘤环境的免疫组分与高风险和低风险群体进行比较,并分析了糖酵解和免疫相关基因之间的相关性。然后,我们使用糖酵解相关基因生成并验证了卵巢癌预后的预测模型。总体而言,27/329甘油基因与卵巢癌中的存活相关,其中8个显示出预测值。肿瘤微环境中的肿瘤细胞成分在高风险和低风险群体之间没有差异;然而,在组之间的免疫分数显着差异。总共13/24种免疫细胞类型不同,包括10μl细胞类型和其他三种免疫细胞类型。八个糖酵解相关的预后基因与不同程度的多种免疫相关基因的表达有关,表明糖酵解和免疫应答之间的关系。我们确定了八种糖酵解相关的预后基因,可有效地预测卵巢癌的存活。在一定程度上,新鉴定的基因签名与肿瘤微环境有关,特别是免疫细胞浸润和免疫相关基因表达有关。这些发现提供了潜在的生物标志物和卵巢癌治疗靶标。

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