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Pathway-based approaches for analysis of genomewide association studies

机译:基于通路的方法对全基因组关联研究进行分析

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摘要

Published genomewide association (GWA) studies typically analyze and report single-nucleotide polymorphisms (SNPs) and their neighboring genes with the strongest evidence of association (the "most-significant SNPs/genes" approach), while paying little attention to the rest. Borrowing ideas from microarray data analysis, we demonstrate that pathway-based approaches, which jointly consider multiple contributing factors in the same pathway, might complement the most-significant SNPs/genes approach and provide additional insights into interpretation of GWA data on complex diseases.
机译:已发表的全基因组关联(GWA)研究通常分析并报告具有最强关联证据(“最重要的SNP /基因”方法)的单核苷酸多态性(SNP)及其邻近基因,而很少关注其余部分。从微阵列数据分析中借用的想法表明,基于途径的方法(共同考虑同一途径中的多个促成因素)可能会补充最重要的SNP /基因方法,并为解释复杂疾病的GWA数据提供更多见解。

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