A Novel Framework for Analysis of the Shared Genetic Background of Correlated Traits

Author:

Svishcheva Gulnara R.ORCID,Tiys Evgeny S.,Elgaeva Elizaveta E.ORCID,Feoktistova Sofia G.,Timmers Paul R. H. J.ORCID,Sharapov Sodbo Zh.ORCID,Axenovich Tatiana I.ORCID,Tsepilov Yakov A.ORCID

Abstract

We propose a novel effective framework for the analysis of the shared genetic background for a set of genetically correlated traits using SNP-level GWAS summary statistics. This framework called SHAHER is based on the construction of a linear combination of traits by maximizing the proportion of its genetic variance explained by the shared genetic factors. SHAHER requires only full GWAS summary statistics and matrices of genetic and phenotypic correlations between traits as inputs. Our framework allows both shared and unshared genetic factors to be effectively analyzed. We tested our framework using simulation studies, compared it with previous developments, and assessed its performance using three real datasets: anthropometric traits, psychiatric conditions and lipid concentrations. SHAHER is versatile and applicable to summary statistics from GWASs with arbitrary sample sizes and sample overlaps, allows for the incorporation of different GWAS models (Cox, linear and logistic), and is computationally fast.

Funder

Russian Foundation for Basic Research

Medical Research Council Human Genetics Unit

Publisher

MDPI AG

Subject

Genetics (clinical),Genetics

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