Integration of Differential Gene-combination Search and Gene Set Enrichment Analysis: A General Approach
Gang Fang, Michael Steinbach, Chad L. Myers, Vipin Kumar

TL;DR
This paper presents a novel framework combining gene combination search with GSEA, enhancing the detection of gene sets with weak individual signals but strong joint discriminative power in gene expression data.
Contribution
It introduces a general approach that reduces and integrates scores from gene combinations into GSEA, improving detection of biologically relevant gene sets.
Findings
Enhanced power of GSEA in identifying relevant gene sets
Discovery of gene sets with weak individual but strong joint signals
Improved consistency across multiple lung cancer datasets
Abstract
Gene Set Enrichment Analysis (GSEA) and its variations aim to discover collections of genes that show moderate but coordinated differences in expression. However, such techniques may be ineffective if many individual genes in a phenotype-related gene set have weak discriminative power. A potential solution is to search for combinations of genes that are highly differentiating even when individual genes are not. Although such techniques have been developed, these approaches have not been used with GSEA to any significant degree because of the large number of potential gene combinations and the heterogeneity of measures that assess the differentiation provided by gene groups of different sizes. To integrate the search for differentiating gene combinations and GSEA, we propose a general framework with two key components: (A) a procedure that reduces the number of scores to be handled by…
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Taxonomy
TopicsGene expression and cancer classification · Bioinformatics and Genomic Networks · Genetic Mapping and Diversity in Plants and Animals
