The TRACE methodology identified over 100 main genetic effects and 1,207 novel gene-by-smoking interactions that collectively accounted for approximately 10% of the variance in all-cause heart failure.
Observational (n=377,874)
The TRACE methodology improves the detection of gene-by-environment interactions and explains approximately 10% of the variance in all-cause heart failure, outperforming traditional GWAS.
Motivation: Genome-Wide Association Studies (GWAS) commonly assume phenotypic and genetic homogeneity that is not present in complex conditions. We designed Transformative Regression Analysis of Combined Effects (TRACE), a GWAS methodology that better accounts for clinical phenotype heterogeneity and identifies gene-by-environment (GxE) interactions. We demonstrated with UK Biobank (UKB) data that TRACE increased the variance explained in All-Cause Heart Failure (AHF) via the discovery of novel single nucleotide polymorphism (SNP) and SNP-by-environment (i. e. GxE) interaction associations. First, we transformed 312 AHF-related ICD10 codes (including AHF) into continuous low-dimensional features (i. e. , latent phenotypes) for a more nuanced disease representation. Then, we ran a standard GWAS on our latent phenotypes to discover main effects and identified GxE interactions with target encoding. Genes near associated SNPs subsequently underwent enrichment analysis to explore potential functional mechanisms underlying associations. Latent phenotypes were regressed against their SNP hits and the estimated latent phenotype values were used to measure the amount of AHF variance explained. Results: Our method identified over 100 main GWAS effects that were consistent with prior studies and hundreds of novel gene-by-smoking interactions, which collectively accounted for approximately 10% of AHF variance. This represents an improvement over traditional GWAS whose results account for a negligible proportion of AHF variance. Enrichment analyses suggested that hundreds of miRNAs mediated the SNP effect on various AHF-related biological pathways. The TRACE framework can be applied to decode the genetics of other complex diseases. Availability: All code is available at https: //github. com/EpistasisLab/latentₚhenotypeₚroject.
Gregg et al. (Fri,) conducted a observational in All-Cause Heart Failure (n=377,874). Gene-by-smoking interactions (identified via TRACE methodology) vs. Traditional GWAS methodology was evaluated on Variance explained in All-Cause Heart Failure (AHF). The TRACE methodology identified over 100 main genetic effects and 1,207 novel gene-by-smoking interactions that collectively accounted for approximately 10% of the variance in all-cause heart failure.
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