Literature DB >> 24975802

More powerful genetic association testing via a new statistical framework for integrative genomics.

Sihai D Zhao1, T Tony Cai, Hongzhe Li.   

Abstract

Integrative genomics offers a promising approach to more powerful genetic association studies. The hope is that combining outcome and genotype data with other types of genomic information can lead to more powerful SNP detection. We present a new association test based on a statistical model that explicitly assumes that genetic variations affect the outcome through perturbing gene expression levels. It is shown analytically that the proposed approach can have more power to detect SNPs that are associated with the outcome through transcriptional regulation, compared to tests using the outcome and genotype data alone, and simulations show that our method is relatively robust to misspecification. We also provide a strategy for applying our approach to high-dimensional genomic data. We use this strategy to identify a potentially new association between a SNP and a yeast cell's response to the natural product tomatidine, which standard association analysis did not detect.
© 2014, The International Biometric Society.

Entities:  

Keywords:  Genetic association testing; Genome-wide association studies; Integrative genomics; Mediation analysis; Missing heritability

Mesh:

Year:  2014        PMID: 24975802      PMCID: PMC4425276          DOI: 10.1111/biom.12206

Source DB:  PubMed          Journal:  Biometrics        ISSN: 0006-341X            Impact factor:   2.571


  24 in total

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5.  Genetic dissection of transcriptional regulation in budding yeast.

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Journal:  Nature       Date:  2008-03-16       Impact factor: 49.962

7.  Variations in DNA elucidate molecular networks that cause disease.

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Journal:  Nature       Date:  2008-03-16       Impact factor: 49.962

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10.  Genome-wide association scans for secondary traits using case-control samples.

Authors:  Genevieve M Monsees; Rulla M Tamimi; Peter Kraft
Journal:  Genet Epidemiol       Date:  2009-12       Impact factor: 2.135

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  15 in total

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Authors:  Bin Gao; Xu Liu; Hongzhe Li; Yuehua Cui
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3.  Sparse Principal Component based High-Dimensional Mediation Analysis.

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5.  A general framework for integrative analysis of incomplete multiomics data.

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6.  Nonlinear Joint Latent Variable Models and Integrative Tumor Subtype Discovery.

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7.  A U-statistics for integrative analysis of multilayer omics data.

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8.  Genotype-based gene signature of glioma risk.

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Review 10.  Statistical methods for mediation analysis in the era of high-throughput genomics: Current successes and future challenges.

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