Multi-PGS enhances polygenic prediction by combining 937 polygenic scores

Author:

Albiñana ClaraORCID,Zhu Zhihong,Schork Andrew J.,Ingason Andrés,Aschard HuguesORCID,Brikell Isabell,Bulik Cynthia M.ORCID,Petersen Liselotte V.,Agerbo Esben,Grove JakobORCID,Nordentoft Merete,Hougaard David M.ORCID,Werge ThomasORCID,Børglum Anders D.ORCID,Mortensen Preben BoORCID,McGrath John J.ORCID,Neale Benjamin M.ORCID,Privé FlorianORCID,Vilhjálmsson Bjarni J.ORCID

Abstract

AbstractThe predictive performance of polygenic scores (PGS) is largely dependent on the number of samples available to train the PGS. Increasing the sample size for a specific phenotype is expensive and takes time, but this sample size can be effectively increased by using genetically correlated phenotypes. We propose a framework to generate multi-PGS from thousands of publicly available genome-wide association studies (GWAS) with no need to individually select the most relevant ones. In this study, the multi-PGS framework increases prediction accuracy over single PGS for all included psychiatric disorders and other available outcomes, with prediction R2 increases of up to 9-fold for attention-deficit/hyperactivity disorder compared to a single PGS. We also generate multi-PGS for phenotypes without an existing GWAS and for case-case predictions. We benchmark the multi-PGS framework against other methods and highlight its potential application to new emerging biobanks.

Funder

Danmarks Grundforskningsfond

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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