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Gene set analysis of genome-wide association studies: Methodological issues and perspectives

机译:全基因组关联研究的基因组分析:方法学问题和观点

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Recent studies have demonstrated that gene set analysis, which tests disease association with genetic variants in a group of functionally related genes, is a promising approach for analyzing and interpreting genome-wide association studies (GWAS) data. These approaches aim to increase power by combining association signals from multiple genes in the same gene set. In addition, gene set analysis can also shed more light on the biological processes underlying complex diseases. However, current approaches for gene set analysis are still in an early stage of development in that analysis results are often prone to sources of bias, including gene set size and gene length, linkage disequilibrium patterns and the presence of overlapping genes. In this paper, we provide an in-depth review of the gene set analysis procedures, along with parameter choices and the particular methodology challenges at each stage. In addition to providing a survey of recently developed tools, we also classify the analysis methods into larger categories and discuss their strengths and limitations. In the last section, we outline several important areas for improving the analytical strategies in gene set analysis.
机译:最近的研究表明,测试一组功能相关基因中的遗传变异与疾病关联的基因集分析是一种用于分析和解释全基因组关联研究(GWAS)数据的有前途的方法。这些方法旨在通过组合来自同一基因集中多个基因的关联信号来增强功能。此外,基因组分析还可以使人们更了解复杂疾病的生物学过程。但是,当前的基因组分析方法仍处于开发的早期阶段,因为分析结果通常容易产生偏差,包括基因组大小和基因长度,连锁不平衡模式以及重叠基因的存在。在本文中,我们提供了对基因组分析程序的深入综述,以及每个阶段的参数选择和特定的方法挑战。除了提供对最近开发的工具的调查之外,我们还将分析方法分为较大的类别,并讨论其优势和局限性。在上一部分中,我们概述了一些重要的领域,这些领域可改善基因组分析中的分析策略。

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