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首页> 外文期刊>Diabetologia: clinical and experimental diabetes and metabolism >Integration of disease-specific single nucleotide polymorphisms, expression quantitative trait loci and coexpression networks reveal novel candidate genes for type 2 diabetes
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Integration of disease-specific single nucleotide polymorphisms, expression quantitative trait loci and coexpression networks reveal novel candidate genes for type 2 diabetes

机译:疾病特异性单核苷酸多态性,表达定量性状基因座和共表达网络的整合揭示了2型糖尿病的新候选基因。

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Aims/hypothesis While genome-wide association studies (GWASs) have been successful in identifying novel variants associated with various diseases, it has been much more difficult to determine the biological mechanisms underlying these associations. Expression quantitative trait loci (eQTL) provide another dimension to these data by associating single nucleotide polymorphisms (SNPs) with gene expression. We hypothesised that integrating SNPs known to be associated with type 2 diabetes with eQTLs and coexpression networks would enable the discovery of novel candidate genes for type 2 diabetes. Methods We selected 32 SNPs associated with type 2 diabetes in two or more independent GWASs. We used previously described eQTLs mapped from genotype and gene expression data collected from 1,008 morbidly obese patients to find genes with expression associated with these SNPs. We linked these genes to coexpression modules, and ranked the other genes in these modules using an inverse sum score. Results We found 62 genes with expression associated with type 2 diabetes SNPs. We validated our method by linking highly ranked genes in the coexpression modules back to SNPs through a combined eQTL dataset. We showed that the eQTLs highlighted by this method are significantly enriched for association with type 2 diabetes in data from the Wellcome Trust Case Control Consortium (WTCCC, p?=?0.026) and the Gene Environment Association Studies (GENEVA, p?=?0.042), validating our approach. Many of the highly ranked genes are also involved in the regulation or metabolism of insulin, glucose or lipids. Conclusions/interpretation We have devised a novel method, involving the integration of datasets of different modalities, to discover novel candidate genes for type 2 diabetes.
机译:目的/假设尽管全基因组关联研究(GWAS)已成功鉴定出与各种疾病相关的新型变异,但要确定这些关联的生物学机制却要困难得多。通过将单核苷酸多态性(SNP)与基因表达相关联,表达定量性状基因座(eQTL)为这些数据提供了另一个维度。我们假设将已知与2型糖尿病相关的SNP与eQTL和共表达网络相结合,将能够发现2型糖尿病的新候选基因。方法我们在两个或多个独立的GWAS中选择​​了32种与2型糖尿病相关的SNP。我们使用先前描述的eQTL,这些eQTL从从1,008名病态肥胖患者中收集的基因型和基因表达数据进行映射,以找到具有与这些SNP相关的表达的基因。我们将这些基因链接到共表达模块,并使用反和总分对这些模块中的其他基因进行排名。结果我们发现有62个基因表达与2型糖尿病SNP相关。我们通过组合的eQTL数据集将共表达模块中排名靠前的基因与SNP链接起来,从而验证了我们的方法。我们显示,在来自Wellcome Trust病例对照协会(WTCCC,p?=?0.026)和基因环境协会研究(GENEVA,p?=?0.042)的数据中,用这种方法突出显示的eQTL显着丰富了与2型糖尿病的关联。 ),验证我们的方法。许多高度排名的基因也参与胰岛素,葡萄糖或脂质的调节或代谢。结论/解释我们设计了一种新颖的方法,包括整合不同模式的数据集,以发现2型糖尿病的新候选基因。

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