Modeling Linkage Disequilibrium Increases Accuracy of Polygenic Risk Scores

Author:

Vilhjalmsson BjarniORCID,Yang JianORCID,Finucane Hilary Kiyo,Gusev Alexander,Lindstrom Sara,Ripke StephanORCID,Genovese Giulio,Loh Po-Ru,Bhatia Gaurav,Do Ron,Hayeck Tristian,Won Hong-Hee,Genomics Consortium Schizophrenia Working Group of the,Variants in Breast Cancer (DRIVE) study the Discovery, Biology, and Risk of,Kathiresan Sekar,Pato Michele,Pato Carlos,Tamimi Rulla,Stahl Eli,Zaitlen Noah,Pasaniuc Bogdan,Schierup Mikkel,De Jager Phillip,Patsopoulos Nikolaos,McCarroll Steven A,Daly Mark,Purcell Shaun,Chasman Daniel,Neale Benjamin,Goddard Mike,Visscher Peter M,Kraft Peter,Patterson Nick J,Price Alkes L

Abstract

Polygenic risk scores have shown great promise in predicting complex disease risk, and will become more accurate as training sample sizes increase. The standard approach for calculating risk scores involves LD-pruning markers and applying a P-value threshold to association statistics, but this discards information and may reduce predictive accuracy. We introduce a new method, LDpred, which infers the posterior mean causal effect size of each marker using a prior on effect sizes and LD information from an external reference panel. Theory and simulations show that LDpred outperforms the pruning/thresholding approach, particularly at large sample sizes. Accordingly, prediction R2 increased from 20.1% to 25.3% in a large schizophrenia data set and from 9.8% to 12.0% in a large multiple sclerosis data set. A similar relative improvement in accuracy was observed for three additional large disease data sets and when predicting in non-European schizophrenia samples. The advantage of LDpred over existing methods will grow as sample sizes increase.

Publisher

Cold Spring Harbor Laboratory

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