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Pathway Analysis for SNP microarray data

机译:SNP微阵列数据的途径分析

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Pathway Analysis (PA) is a powerful method for data analysis in genomics, most often applied to gene expression analysis, but little used to analyze variants such as Single Nucleotide Polymorphisms (SNPs). PA could allow the interpretation of variants concerning the biological processes in which the affected genes and proteins are involved. Currently, the available PA software tools are not able to automatically perform pathway analysis using SNPs data. PA software tools cannot deal natively with SNPs data, hence several software tools have to be used to put SNPs data in the proper format for the analysis. To overcome these limitations, we present SNP Microarray Pathway Analysis (MPA), a software tool able to discriminate relevant genes from SNP microarrays to use in PA analysis. MPA automatically identifies relevant SNPs using the well known Fisher's test, with which to perform PA. Pathway analysis in MPA is obtained employing the Hypergeometric function. As a result, MPA provides to the user the list of enriched pathways from the identified SNPs. MPA software tool along with the user guide and datasets, are available for download at https://gitlab.com/giuseppeagapito/mpa under the GPL v3.0 license.
机译:Pathway Analysis(PA)是基因组学中一种强大的数据分析方法,通常用于基因表达分析,但很少用于分析诸如单核苷酸多态性(SNP)的变体。 PA可以允许解释涉及受影响的基因和蛋白质的生物学过程的变体。当前,可用的PA软件工具无法使用SNPs数据自动执行路径分析。 PA软件工具无法原生处理SNP数据,因此必须使用几种软件工具以正确的格式放置SNP数据以进行分析。为了克服这些限制,我们提出了SNP微阵列通路分析(MPA),这是一种能够从SNP微阵列中区分相关基因以用于PA分析的软件工具。 MPA使用众所周知的Fisher检验自动识别相关的SNP,从而执行PA。 MPA中的路径分析是使用Hypergeometric功能获得的。结果,MPA向用户提供了来自已识别SNP的丰富途径列表。 MPA软件工具以及用户指南和数据集可在GPL v3.0许可下从https://gitlab.com/giuseppeagapito/mpa下载。

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