Identifying latent genetic interactions in genome-wide association studies using multiple traits

Author:

Bass Andrew J.ORCID,Bian Shijia,Wingo Aliza P.,Wingo Thomas S.,Cutler David J.,Epstein Michael P.ORCID

Abstract

AbstractThe "missing" heritability of complex traits may be partly explained by genetic variants interacting with other genes or environments that are difficult to specify, observe, and detect. We propose a new kernel-based method called Latent Interaction Testing (LIT) to screen for genetic interactions that leverages pleiotropy from multiple related traits without requiring the interacting variable to be specified or observed. Using simulated data, we demonstrate that LIT increases power to detect latent genetic interactions compared to univariate methods. We then apply LIT to obesity-related traits in the UK Biobank and detect variants with interactive effects near known obesity-related genes (URL: https://CRAN.R-project.org/package=lit).

Funder

NIH

Publisher

Springer Science and Business Media LLC

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