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An application of ontology-based filtering method in discovery of saliva biomarkers for gastric cancer

机译:基于本体的过滤方法在胃癌唾液生物标志物发现中的应用

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Saliva contains a large array of proteins and many of them can be very informative for human disease detection. Thus it has gradually emerged as a potential biofluid for the noninvasive detection of biomarkers for specific disease. In this study, we aimed to detect potential markers for gastric cancer in saliva through an integrative mining method. This strategy firstly started with the collection of salivary genes and upregulated genes relating with gastric cancer from public genomic profiles. Subsequently, a list of gene ontology were retrieved through the functional annotation enrichment analysis of the salivary proteins. Based on the ontology filtering and further assessment, a reduced list of 21 entities were harvested. For further exploration, we performed gene set pathway enrichment analysis and established protein-protein interaction network. Meanwhile, a few preferred potential markers which were much more likely discovered in saliva due to gastric cancer were proposed. Our work is an integrative and experimentalist-friendly application of the mining of public genomic profiles.
机译:唾液含有大量蛋白质,其中许多蛋白质对于人类疾病的检测非常有用。因此,它已逐渐成为一种潜在的生物流体,用于非侵入性检测特定疾病的生物标志物。在这项研究中,我们旨在通过综合采矿方法检测唾液中胃癌的潜在标志物。该策略首先从从公共基因组图谱中收集与胃癌有关的唾液基因和上调基因开始。随后,通过唾液蛋白的功能注释富集分析检索了一系列的基因本体。基于本体过滤和进一步评估,减少了21个实体的列表。为了进一步探索,我们进行了基因集途径富集分析并建立了蛋白质-蛋白质相互作用网络。同时,提出了一些优选的潜在标志物,这些标志物可能是由于胃癌而在唾液中发现的。我们的工作是对公共基因组图谱的挖掘的综合性和实验性友好型应用。

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