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- GENE SET ENRICHMENT ANALYSIS MADE SIMPLE
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- Rafael A. Irizarry, Johns Hopkins University, Bloomberg School of Public Health, Department of Biostatistics
- Chi Wang, Johns Hopkins Bloomberg School of Public Health, Department of Biostatistics
- Yun Zhou, Johns Hopkins University School of Medicine, Department of Radiology
- Terence P. Speed, University of California, Berkeley, Department of Statistics and Division of Genetics and Bioinformatics, Walter and Eliza Hall Institute of Medical Research, Melbourne
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- Abstract:
- Among the many applications of microarray technology, one of the most popular is the identification of genes that are differentially expressed in two conditions. A common statistical
approach is to quantify the interest of each gene with a p-value, adjust these p-values for multiple comparisons, chose an appropriate cut-off, and create a list of candidate genes. This
approach has been criticized for ignoring biological knowledge regarding how genes work together. Recently a series of methods, that do incorporate biological knowledge, have been
proposed. However, many of these methods seem overly complicated. Furthermore, the most popular method, Gene Set Enrichment Analysis (GSEA), is based on a statistical test known
for its lack of sensitivity. In this paper we compare the performance of a simple alternative to GSEA.We find that this simple solution clearly outperforms GSEA.We demonstrate this with eight different microarray datasets.
- Subject Area:
- Computational Biology/Bioinformatics
- Suggested Citation:
- Rafael A. Irizarry, Chi Wang, Yun Zhou, and Terence P. Speed,
"GENE SET ENRICHMENT ANALYSIS MADE SIMPLE"
(April 2009).
Johns Hopkins University, Dept. of Biostatistics Working Papers.
Working Paper 185.
http://www.bepress.com/jhubiostat/paper185