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      Improved scoring of functional groups from gene expression data by decorrelating GO graph structure.

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          Abstract

          The result of a typical microarray experiment is a long list of genes with corresponding expression measurements. This list is only the starting point for a meaningful biological interpretation. Modern methods identify relevant biological processes or functions from gene expression data by scoring the statistical significance of predefined functional gene groups, e.g. based on Gene Ontology (GO). We develop methods that increase the explanatory power of this approach by integrating knowledge about relationships between the GO terms into the calculation of the statistical significance.

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          Author and article information

          Journal
          Bioinformatics
          Bioinformatics (Oxford, England)
          Oxford University Press (OUP)
          1367-4803
          1367-4803
          Jul 01 2006
          : 22
          : 13
          Affiliations
          [1 ] Max-Planck-Institute for Informatics Stuhlsatzenhausweg 85, D-66123 Saarbrücken, Germany. alexa@mpi-sb.mpg.de
          Article
          btl140
          10.1093/bioinformatics/btl140
          16606683
          2031b61e-ac69-42b5-8d7c-ff0f231e23a9
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