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Polygenic prediction via Bayesian regression and continuous shrinkage priors

Nature Communications · 2019 · Vol. 10(1) · pp. 1776–1776
Tian GeChia‐Yen ChenYang NiYen‐Chen Anne FengJordan W. Smoller

Abstract

Polygenic risk scores (PRS) have shown promise in predicting human complex traits and diseases. Here, we present PRS-CS, a polygenic prediction method that infers posterior effect sizes of single nucleotide polymorphisms (SNPs) using genome-wide association summary statistics and an external linkage disequilibrium (LD) reference panel. PRS-CS utilizes a high-dimensional Bayesian regression framework, and is distinct from previous work by placing a continuous shrinkage (CS) prior on SNP effect sizes, which is robust to varying genetic architectures, provides substantial computational advantages, and enables multivariate modeling of local LD patterns. Simulation studies using data from the UK Biobank show that PRS-CS outperforms existing methods across a wide range of genetic architectures, especially when the training sample size is large. We apply PRS-CS to predict six common complex diseases and six quantitative traits in the Partners HealthCare Biobank, and further demonstrate the improvement of PRS-CS in prediction accuracy over alternative methods.

Genetic Associations and EpidemiologyGenetic and phenotypic traits in livestockGenetic Mapping and Diversity in Plants and AnimalsBiobankLinkage disequilibriumComputer scienceBayesian probabilityRegressionPrior probabilitySingle-nucleotide polymorphismMultivariate statisticsGenome-wide association studySample size determination

MeSH terms

Arthritis, RheumatoidBayes TheoremBreast NeoplasmsComputer SimulationCoronary Artery DiseaseDepressionDiabetes Mellitus, Type 2FemaleHumansMaleModels, GeneticRisk FactorsInflammatory Bowel DiseasesLinkage DisequilibriumQuantitative Trait, Heritable

Funding

  • Genomic Health
  • Genome Canada
  • Government of Canada
  • Cancer Research UK
  • European Commission
  • National Institutes of Health
  • Horizon 2020 Framework Programme
  • Canadian Institutes of Health Research
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