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Modeling of environmental and genetic interactions with AMBROSIA, an information-theoretic model synthesis method

  • SUNY Buffalo

Research output: Contribution to journalArticlepeer-review

10 Scopus citations

Abstract

To develop a model synthesis method for parsimoniously modeling gene-environmental interactions (GEI) associated with clinical outcomes and phenotypes. The AMBROSIA model synthesis approach utilizes the k-way interaction information (KWII), an information-theoretic metric capable of identifying variable combinations associated with GEI. For model synthesis, AMBROSIA considers relevance of combinations to the phenotype, it precludes entry of combinations with redundant information, and penalizes for unjustifiable complexity; each step is KWII based. The performance and power of AMBROSIA were evaluated with simulations and Genetic Association Workshop 15 (GAW15) data sets of rheumatoid arthritis (RA). AMBROSIA identified parsimonious models in data sets containing multiple interactions with linkage disequilibrium present. For the GAW15 data set containing 9187 single-nucleotide polymorphisms, the parsimonious AMBROSIA model identified nine RA-associated combinations with power > 90%. AMBROSIA was compared with multifactor dimensionality reduction across several diverse models and had satisfactory power. Software source code is available from http://www.cse.buffalo.edu/DBGROUP/bioinformatics/resources. html. AMBROSIA is a promising method for GEI model synthesis.

Original languageEnglish
Pages (from-to)320-327
Number of pages8
JournalHeredity
Volume107
Issue number4
DOIs
StatePublished - Oct 2011

Keywords

  • geneenvironment interactions
  • genegene interactions
  • k-way interaction information

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