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首页> 外文期刊>BioMed research international >A Meta-Analysis Strategy for Gene Prioritization Using Gene Expression, SNP Genotype, and eQTL Data
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A Meta-Analysis Strategy for Gene Prioritization Using Gene Expression, SNP Genotype, and eQTL Data

机译:使用基因表达,SNP基因型和EQTL数据的基因优先级的荟萃分析策略

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摘要

In order to understand disease pathogenesis, improve medical diagnosis, or discover effective drug targets, it is important to identify significant genes deeply involved in human disease. For this purpose, many earlier approaches attempted to prioritize candidate genes using gene expression profiles or SNP genotype data, but they often suffer from producing many false-positive results. To address this issue, in this paper, we propose a meta-analysis strategy for gene prioritization that employs three different genetic resources—gene expression data, single nucleotide polymorphism (SNP) genotype data, and expression quantitative trait loci (eQTL) data—in an integrative manner. For integration, we utilized an improved technique for the order of preference by similarity to ideal solution (TOPSIS) to combine scores from distinct resources. This method was evaluated on two publicly available datasets regarding prostate cancer and lung cancer to identify disease-related genes. Consequently, our proposed strategy for gene prioritization showed its superiority to conventional methods in discovering significant disease-related genes with several types of genetic resources, while making good use of potential complementarities among available resources.
机译:为了了解疾病发病机制,改善医学诊断或发现有效的药物靶标,重要的是识别人类疾病中深入的重要基因。为此目的,使用基因表达谱或SNP基因型数据试图优先考虑候选基因的许多方法,但它们通常会产生许多假阳性结果。为了解决这个问题,在本文中,我们提出了一种用于基因优先级的Meta分析策略,其采用三种不同的遗传资源 - 基因表达数据,单核苷酸多态性(SNP)基因型数据和表达定量特性基因座(EQTL)数据一种综合的方式。对于集成,我们利用了一种改进的技术,以便通过相似性与理想解决方案(Topsis)的优先顺序,以将分数与不同资源相结合。在两种关于前列腺癌和肺癌的公共可用数据集上评估该方法,以鉴定疾病相关基因。因此,我们提出的基因优先渗透策略表明其对常规方法的优势,在发现具有几种类型的遗传资源的显着疾病相关基因,同时良好地利用可用资源之间的潜在互补性。

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