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Using bioinformatics and systems genetics to dissect HDL-cholesterol genetics in an MRL/MpJ x SM/J intercross

  • Magalie S. Leduc
  • , Rachael Hageman Blair
  • , Ricardo A. Verdugo
  • , Shirng Wern Tsaih
  • , Kenneth Walsh
  • , Gary A. Churchill
  • , Beverly Paigen
  • Jackson Laboratory
  • Southwest Foundation for Biomedical Research
  • Medical College of Wisconsin

Research output: Contribution to journalArticlepeer-review

11 Scopus citations

Abstract

A higher incidence of coronary artery disease is associated with a lower level of HDL-cholesterol. We searched for genetic loci influencing HDL-cholesterol in F2 mice from a cross between MRL/MpJ and SM/J mice. Quantitative trait loci (QTL) mapping revealed one signifi- cant HDL QTL ( Apoa2 locus), four suggestive QTL on chromosomes 10, 11, 13, and 18 and four additional QTL on chromosomes 1 proximal, 3, 4, and 7 after adjusting HDL for the strong Apoa2 locus. A novel nonsynonymous polymorphism supports Lipg as the QTL gene for the chromosome 18 QTL, and a difference in Abca1 expression in liver tissue supports it as the QTL gene for the chromosome 4 QTL. Using weighted gene co-expression network analysis, we identified a module that after adjustment for Apoa2, correlated with HDL, was genetically determined by a QTL on chromosome 11, and overlapped with the HDL QTL. A combination of bioinformatics tools and systems genetics helped identify several candidate genes for both the chromosome 11 HDL and module QTL based on differential expression between the parental strains, cis regulation of expression, and causality modeling. We conclude that integrating systems genetics to a more- traditional genetics approach improves the power of complex trait gene identification.

Original languageEnglish
Pages (from-to)1163-1175
Number of pages13
JournalJournal of Lipid Research
Volume53
Issue number6
DOIs
StatePublished - Jun 2012

Keywords

  • Gene suppression
  • Genomics
  • High-density lipoprotein cholesterol

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