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Comparative analysis of gene sets in the gene ontology space under the multiple hypothesis testing framework

机译:多重假设检验框架下基因本体空间中基因集的比较分析

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The gene ontology (GO) resource can be used as a powerful tool to uncover the properties shared among, and specific to, a list of genes produced by high-throughput functional genomics studies, such as microarray studies. In the comparative analysis of several gene lists, researchers maybe interested in knowing which GO terms are enriched in one list of genes but relatively depleted in another. Statistical tests such as Fisher's exact test or Chi-square test can be performed to search for such GO terms. However, because multiple GO terms are tested simultaneously, individual p-values from individual tests do not serve as good indicators for picking GO terms. Furthermore, these multiple tests are highly correlated, usual multiple testing procedures that work under an independence assumption are not applicable. In this paper we introduce a procedure, based on false discovery rate (FDR), to treat this correlated multiple testing problem. This procedure calculates a moderately conserved estimator of q-value for every GO term. We identify the GO terms with q-values that satisfy a desired level as the significant GO terms. This procedure has been implemented into the GoSurfer software. GoSurfer is a windows based graphical data mining tool. It is freely available at http://www.gosurfer.org.
机译:基因本体(GO)资源可以用作揭示由高通量函数基因组学研究(如微阵列研究)产生的基因中共享的属性的强大工具。在对几种基因名单的比较分析中,研究人员可能有兴趣了解哪个GO术语在一个基因列表中富集,而是相对耗尽另一个。可以执行Fisher精确测试或Chi-Square测试等统计测试以搜索此类GO条款。但是,由于同时测试了多种GO术语,因此各个测试中的单个P值不用为挑选GO条款的良好指标。此外,这些多个测试是高度相关的,通常在独立假设下工作的通常多个测试程序不适用。在本文中,我们介绍了一种基于虚假发现率(FDR)的过程,以处理这种相关的多个测试问题。此过程计算每个GO术语的Q值的中度保守估计器。我们使用满足所需级别的Q值来识别GO术语作为重要的GO条款。此过程已实施到Gosurfer软件中。 Gosurfer是一种基于Windows的图形数据挖掘工具。它可以在http://www.gosurfer.org自由提供。

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