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PLEIO: a method to map and interpret pleiotropic loci with GWAS summary statistics

Cited 19 time in Web of Science Cited 20 time in Scopus
Authors

Lee, Cue Hyunkyu; Shi, Huwenbo; Pasaniuc, Bogdan; Eskin, Eleazar; Han, Buhm

Issue Date
2021-01-07
Publisher
University of Chicago Press
Citation
American Journal of Human Genetics, Vol.108 No.1, pp.36-48
Abstract
Identifying and interpreting pleiotropic loci is essential to understanding the shared etiology among diseases and complex traits. A common approach to mapping pleiotropic loci is to meta-analyze GWAS summary statistics across multiple traits. However, this strategy does not account for the complex genetic architectures of traits, such as genetic correlations and heritabilities. Furthermore, the interpretation is challenging because phenotypes often have different characteristics and units. We propose PLEIO (Pleiotropic Locus Exploration and Interpretation using Optimal test), a summary-statistic-based framework to map and interpret pleiotropic loci in a joint analysis of multiple diseases and complex traits. Our method maximizes power by systematically accounting for genetic correlations and heritabilities of the traits in the association test. Any set of related phenotypes, binary or quantitative traits with different units, can be combined seamlessly. In addition, our framework offers interpretation and visualization tools to help downstream analyses. Using our method, we combined 18 traits related to cardiovascular disease and identified 13 pleiotropic loci, which showed four different patterns of associations.
ISSN
0002-9297
URI
https://hdl.handle.net/10371/191484
DOI
https://doi.org/10.1016/j.ajhg.2020.11.017
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  • College of Medicine
  • Department of Medicine
Research Area Bioinformatics, Genomics, Statistical Genetics

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