Literature DB >> 22128060

Inflated type I error rates when using aggregation methods to analyze rare variants in the 1000 Genomes Project exon sequencing data in unrelated individuals: summary results from Group 7 at Genetic Analysis Workshop 17.

Nathan Tintle1, Hugues Aschard, Inchi Hu, Nora Nock, Haitian Wang, Elizabeth Pugh.   

Abstract

As part of Genetic Analysis Workshop 17 (GAW17), our group considered the application of novel and standard approaches to the analysis of genotype-phenotype association in next-generation sequencing data. Our group identified a major issue in the analysis of the GAW17 next-generation sequencing data: type I error and false-positive report probability rates higher than those expected based on empirical type I error levels (as high as 90%). Two main causes emerged: population stratification and long-range correlation (gametic phase disequilibrium) between rare variants. Population stratification was expected because of the diverse sample. Correlation between rare variants was attributable to both random causes (e.g., nearly 10,000 of 25,000 markers were private variants, and the sample size was small [n = 697]) and nonrandom causes (more correlation was observed than was expected by random chance). Principal components analysis was used to control for population structure and helped to minimize type I errors, but this was at the expense of identifying fewer causal variants. A novel multiple regression approach showed promise to handle correlation between markers. Further work is needed, first, to identify best practices for the control of type I errors in the analysis of sequencing data and then to explore and compare the many promising new aggregating approaches for identifying markers associated with disease phenotypes.
© 2011 Wiley Periodicals, Inc.

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Year:  2011        PMID: 22128060      PMCID: PMC3249221          DOI: 10.1002/gepi.20650

Source DB:  PubMed          Journal:  Genet Epidemiol        ISSN: 0741-0395            Impact factor:   2.135


  20 in total

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Review 3.  Statistical analysis of rare sequence variants: an overview of collapsing methods.

Authors:  Carmen Dering; Claudia Hemmelmann; Elizabeth Pugh; Andreas Ziegler
Journal:  Genet Epidemiol       Date:  2011       Impact factor: 2.135

4.  Quality control and quality assurance in genotypic data for genome-wide association studies.

Authors:  Cathy C Laurie; Kimberly F Doheny; Daniel B Mirel; Elizabeth W Pugh; Laura J Bierut; Tushar Bhangale; Frederick Boehm; Neil E Caporaso; Marilyn C Cornelis; Howard J Edenberg; Stacy B Gabriel; Emily L Harris; Frank B Hu; Kevin B Jacobs; Peter Kraft; Maria Teresa Landi; Thomas Lumley; Teri A Manolio; Caitlin McHugh; Ian Painter; Justin Paschall; John P Rice; Kenneth M Rice; Xiuwen Zheng; Bruce S Weir
Journal:  Genet Epidemiol       Date:  2010-09       Impact factor: 2.135

5.  Inclusion of a priori information in genome-wide association analysis.

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6.  Genetic Analysis Workshop 17 mini-exome simulation.

Authors:  Laura Almasy; Thomas D Dyer; Juan Manuel Peralta; Jack W Kent; Jac C Charlesworth; Joanne E Curran; John Blangero
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7.  Evaluating methods for combining rare variant data in pathway-based tests of genetic association.

Authors:  Ashley Petersen; Alexandra Sitarik; Alexander Luedtke; Scott Powers; Airat Bekmetjev; Nathan L Tintle
Journal:  BMC Proc       Date:  2011-11-29

8.  Large-scale risk prediction applied to Genetic Analysis Workshop 17 mini-exome sequence data.

Authors:  Gengxin Li; John Ferguson; Wei Zheng; Joon Sang Lee; Xianghua Zhang; Lun Li; Jia Kang; Xiting Yan; Hongyu Zhao
Journal:  BMC Proc       Date:  2011-11-29

9.  Pathway-based joint effects analysis of rare genetic variants using Genetic Analysis Workshop 17 exon sequence data.

Authors:  Pingzhao Hu; Wei Xu; Lu Cheng; Xiang Xing; Andrew D Paterson
Journal:  BMC Proc       Date:  2011-11-29

10.  Genome-wide association scan meta-analysis identifies three Loci influencing adiposity and fat distribution.

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Journal:  PLoS Genet       Date:  2009-06-26       Impact factor: 5.917

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  17 in total

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Journal:  Genet Epidemiol       Date:  2011       Impact factor: 2.135

Review 2.  The value of extended pedigrees for next-generation analysis of complex disease in the rhesus macaque.

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Journal:  ILAR J       Date:  2013

3.  Marbled inflation from population structure in gene-based association studies with rare variants.

Authors:  Qianying Liu; Dan L Nicolae; Lin S Chen
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4.  Pathway analysis approaches for rare and common variants: insights from Genetic Analysis Workshop 18.

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Journal:  Genet Epidemiol       Date:  2014-09       Impact factor: 2.135

5.  Incorporating biological information into association studies of sequencing data.

Authors:  Gary K Chen; Gary Chen; Peng Wei; Anita L DeStefano
Journal:  Genet Epidemiol       Date:  2011       Impact factor: 2.135

Review 6.  Statistical analysis of rare sequence variants: an overview of collapsing methods.

Authors:  Carmen Dering; Claudia Hemmelmann; Elizabeth Pugh; Andreas Ziegler
Journal:  Genet Epidemiol       Date:  2011       Impact factor: 2.135

7.  Identification of genetic association of multiple rare variants using collapsing methods.

Authors:  Yan V Sun; Yun Ju Sung; Nathan Tintle; Andreas Ziegler
Journal:  Genet Epidemiol       Date:  2011       Impact factor: 2.135

8.  Adjustment for population stratification via principal components in association analysis of rare variants.

Authors:  Yiwei Zhang; Weihua Guan; Wei Pan
Journal:  Genet Epidemiol       Date:  2012-10-12       Impact factor: 2.135

9.  A geometric framework for evaluating rare variant tests of association.

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Journal:  Genet Epidemiol       Date:  2013-03-21       Impact factor: 2.135

10.  Permutation testing in the presence of polygenic variation.

Authors:  Mark Abney
Journal:  Genet Epidemiol       Date:  2015-03-10       Impact factor: 2.135

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