Literature DB >> 20598278

A versatile gene-based test for genome-wide association studies.

Jimmy Z Liu1, Allan F McRae, Dale R Nyholt, Sarah E Medland, Naomi R Wray, Kevin M Brown, Nicholas K Hayward, Grant W Montgomery, Peter M Visscher, Nicholas G Martin, Stuart Macgregor.   

Abstract

We have derived a versatile gene-based test for genome-wide association studies (GWAS). Our approach, called VEGAS (versatile gene-based association study), is applicable to all GWAS designs, including family-based GWAS, meta-analyses of GWAS on the basis of summary data, and DNA-pooling-based GWAS, where existing approaches based on permutation are not possible, as well as singleton data, where they are. The test incorporates information from a full set of markers (or a defined subset) within a gene and accounts for linkage disequilibrium between markers by using simulations from the multivariate normal distribution. We show that for an association study using singletons, our approach produces results equivalent to those obtained via permutation in a fraction of the computation time. We demonstrate proof-of-principle by using the gene-based test to replicate several genes known to be associated on the basis of results from a family-based GWAS for height in 11,536 individuals and a DNA-pooling-based GWAS for melanoma in approximately 1300 cases and controls. Our method has the potential to identify novel associated genes; provide a basis for selecting SNPs for replication; and be directly used in network (pathway) approaches that require per-gene association test statistics. We have implemented the approach in both an easy-to-use web interface, which only requires the uploading of markers with their association p-values, and a separate downloadable application. Copyright 2010 The American Society of Human Genetics. Published by Elsevier Inc. All rights reserved.

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Year:  2010        PMID: 20598278      PMCID: PMC2896770          DOI: 10.1016/j.ajhg.2010.06.009

Source DB:  PubMed          Journal:  Am J Hum Genet        ISSN: 0002-9297            Impact factor:   11.025


  22 in total

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Authors:  Daniel F Gudbjartsson; G Bragi Walters; Gudmar Thorleifsson; Hreinn Stefansson; Bjarni V Halldorsson; Pasha Zusmanovich; Patrick Sulem; Steinunn Thorlacius; Arnaldur Gylfason; Stacy Steinberg; Anna Helgadottir; Andres Ingason; Valgerdur Steinthorsdottir; Elinborg J Olafsdottir; Gudridur H Olafsdottir; Thorvaldur Jonsson; Knut Borch-Johnsen; Torben Hansen; Gitte Andersen; Torben Jorgensen; Oluf Pedersen; Katja K Aben; J Alfred Witjes; Dorine W Swinkels; Martin den Heijer; Barbara Franke; Andre L M Verbeek; Diane M Becker; Lisa R Yanek; Lewis C Becker; Laufey Tryggvadottir; Thorunn Rafnar; Jeffrey Gulcher; Lambertus A Kiemeney; Augustine Kong; Unnur Thorsteinsdottir; Kari Stefansson
Journal:  Nat Genet       Date:  2008-04-06       Impact factor: 38.330

7.  Genome-wide association study of height and body mass index in Australian twin families.

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9.  A new gene-based association test for genome-wide association studies.

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10.  Pathway and network-based analysis of genome-wide association studies in multiple sclerosis.

Authors:  Sergio E Baranzini; Nicholas W Galwey; Joanne Wang; Pouya Khankhanian; Raija Lindberg; Daniel Pelletier; Wen Wu; Bernard M J Uitdehaag; Ludwig Kappos; Chris H Polman; Paul M Matthews; Stephen L Hauser; Rachel A Gibson; Jorge R Oksenberg; Michael R Barnes
Journal:  Hum Mol Genet       Date:  2009-03-13       Impact factor: 6.150

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  503 in total

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Journal:  Drug Alcohol Depend       Date:  2011-06-02       Impact factor: 4.492

2.  Using the gene ontology to scan multilevel gene sets for associations in genome wide association studies.

Authors:  Daniel J Schaid; Jason P Sinnwell; Gregory D Jenkins; Shannon K McDonnell; James N Ingle; Michiaki Kubo; Paul E Goss; Joseph P Costantino; D Lawrence Wickerham; Richard M Weinshilboum
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3.  Permutation-based approaches do not adequately allow for linkage disequilibrium in gene-wide multi-locus association analysis.

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4.  Genetic associations for activated partial thromboplastin time and prothrombin time, their gene expression profiles, and risk of coronary artery disease.

Authors:  Weihong Tang; Christine Schwienbacher; Lorna M Lopez; Yoav Ben-Shlomo; Tiphaine Oudot-Mellakh; Andrew D Johnson; Nilesh J Samani; Saonli Basu; Martin Gögele; Gail Davies; Gordon D O Lowe; David-Alexandre Tregouet; Adrian Tan; James S Pankow; Albert Tenesa; Daniel Levy; Claudia B Volpato; Ann Rumley; Alan J Gow; Cosetta Minelli; John W G Yarnell; David J Porteous; John M Starr; John Gallacher; Eric Boerwinkle; Peter M Visscher; Peter P Pramstaller; Mary Cushman; Valur Emilsson; Andrew S Plump; Nena Matijevic; Pierre-Emmanuel Morange; Ian J Deary; Andrew A Hicks; Aaron R Folsom
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5.  Genome-Wide Gene-Potassium Interaction Analyses on Blood Pressure: The GenSalt Study (Genetic Epidemiology Network of Salt Sensitivity).

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Review 6.  Network analysis of GWAS data.

Authors:  Mark D M Leiserson; Jonathan V Eldridge; Sohini Ramachandran; Benjamin J Raphael
Journal:  Curr Opin Genet Dev       Date:  2013-11-26       Impact factor: 5.578

7.  BAYESIAN LARGE-SCALE MULTIPLE REGRESSION WITH SUMMARY STATISTICS FROM GENOME-WIDE ASSOCIATION STUDIES.

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8.  Genome-Wide Association Study of the Genetic Determinants of Emphysema Distribution.

Authors:  Adel Boueiz; Sharon M Lutz; Michael H Cho; Craig P Hersh; Russell P Bowler; George R Washko; Eitan Halper-Stromberg; Per Bakke; Amund Gulsvik; Nan M Laird; Terri H Beaty; Harvey O Coxson; James D Crapo; Edwin K Silverman; Peter J Castaldi; Dawn L DeMeo
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Journal:  Neurobiol Aging       Date:  2013-12-19       Impact factor: 4.673

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