Mining Genetic Epidemiology Data with Bayesian Networks Application toAPOEGene Variation and Plasma Lipid Levels
- 1 February 2005
- journal article
- research article
- Published by Mary Ann Liebert Inc in Journal of Computational Biology
- Vol. 12 (1) , 1-11
- https://doi.org/10.1089/cmb.2005.12.1
Abstract
There is a critical need for data-mining methods that can identify SNPs that predict amongindividual variation in a phenotype of interest and reverse-engineer the biological network of relationships between SNPs, phenotypes, and other factors. This problem is both challenging and important in light of the large number of SNPs in many genes of interest and across the human genome. A potentially fruitful form of exploratory data analysis is the Bayesian or Belief network. A Bayesian or Belief network provides an analytic approach for identifying robust predictors of among-individual variation in a disease endpoints or risk factor levels. We have applied Belief networks to SNP variation in the human APOE gene and plasma apolipoprotein E levels from two samples: 702 African-Americans from Jackson, MS, and 854 non-Hispanic whites from Rochester, MN. Twenty variable sites in the APOE gene were genotyped in both samples. In Jackson, MS, SNPs 4036 and 4075 were identified to influence plasma apoE levels. In Rochester, MN, SNPs 3937 and 4075 were identified to influence plasma apoE levels. All three SNPs had been previously implicated in affecting measures of lipid and lipoprotein metabolism. Like all data-mining methods, Belief networks are meant to complement traditional hypothesis-driven methods of data analysis. These results document the utility of a Belief network approach for mining large scale genotype–phenotype association data.Keywords
This publication has 16 references indexed in Scilit:
- Efficiencies of maximum likelihood methods of phylogenetic inferences when different substitution models are usedMolecular Phylogenetics and Evolution, 2004
- Apolipoprotein E polymorphism in health and diseasePublished by Elsevier ,2004
- Contributions of 18 Additional DNA Sequence Variations in the Gene Encoding Apolipoprotein E to Explaining Variation in Quantitative Measures of Lipid MetabolismAmerican Journal of Human Genetics, 2002
- Bacon, popper, and the human genomeComplexity, 2001
- Apolipoprotein E: Far More Than a Lipid Transport ProteinAnnual Review of Genomics and Human Genetics, 2000
- Using Bayesian Networks to Analyze Expression DataJournal of Computational Biology, 2000
- A 4-Mb High-Density Single Nucleotide Polymorphism-Based Map around Human APOEGenomics, 1998
- No Adjustments Are Needed for Multiple ComparisonsEpidemiology, 1990
- Type III hyperlipoproteinemia associated with apolipoprotein E phenotype E3/3. Structure and genetics of an apolipoprotein E3 variant.Journal of Clinical Investigation, 1989
- Estimating the Dimension of a ModelThe Annals of Statistics, 1978