Literature DB >> 26282996

Sequence Kernel Association Analysis of Rare Variant Set Based on the Marginal Regression Model for Binary Traits.

Baolin Wu1, James S Pankow2, Weihua Guan1.   

Abstract

Recent sequencing efforts have focused on exploring the influence of rare variants on the complex diseases. Gene level based tests by aggregating information across rare variants within a gene have become attractive to enrich the rare variant association signal. Among them, the sequence kernel association test (SKAT) has proved to be a very powerful method for jointly testing multiple rare variants within a gene. In this article, we explore an alternative SKAT. We propose to use the univariate likelihood ratio statistics from the marginal model for individual variants as input into the kernel association test. We show how to compute its significance P-value efficiently based on the asymptotic chi-square mixture distribution. We demonstrate through extensive numerical studies that the proposed method has competitive performance. Its usefulness is further illustrated with application to associations between rare exonic variants and type 2 diabetes (T2D) in the Atherosclerosis Risk in Communities (ARIC) study. We identified an exome-wide significant rare variant set in the gene ZZZ3 worthy of further investigations.
© 2015 WILEY PERIODICALS, INC.

Entities:  

Keywords:  GWAS; SKAT; score statistic; sequencing data

Mesh:

Year:  2015        PMID: 26282996      PMCID: PMC4544778          DOI: 10.1002/gepi.21913

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


  28 in total

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  7 in total

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2.  On Efficient and Accurate Calculation of Significance P-Values for Sequence Kernel Association Testing of Variant Set.

Authors:  Baolin Wu; Weihua Guan; James S Pankow
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3.  A Powerful Variant-Set Association Test Based on Chi-Square Distribution.

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6.  Germline Variation and Breast Cancer Incidence: A Gene-Based Association Study and Whole-Genome Prediction of Early-Onset Breast Cancer.

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7.  On Sample Size and Power Calculation for Variant Set-Based Association Tests.

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  7 in total

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