Literature DB >> 25966809

Robust and Powerful Affected Sibpair Test for Rare Variant Association.

Keng-Han Lin1,2, Sebastian Zöllner1,2,3.   

Abstract

Advances in DNA sequencing technology facilitate investigating the impact of rare variants on complex diseases. However, using a conventional case-control design, large samples are needed to capture enough rare variants to achieve sufficient power for testing the association between suspected loci and complex diseases. In such large samples, population stratification may easily cause spurious signals. One approach to overcome stratification is to use a family-based design. For rare variants, this strategy is especially appropriate, as power can be increased considerably by analyzing cases with affected relatives. We propose a novel framework for association testing in affected sibpairs by comparing the allele count of rare variants on chromosome regions shared identical by descent to the allele count of rare variants on nonshared chromosome regions, referred to as test for rare variant association with family-based internal control (TRAFIC). This design is generally robust to population stratification as cases and controls are matched within each sibpair. We evaluate the power analytically using general model for effect size of rare variants. For the same number of genotyped people, TRAFIC shows superior power over the conventional case-control study for variants with summed risk allele frequency f < 0.05; this power advantage is even more substantial when considering allelic heterogeneity. For complex models of gene-gene interaction, this power advantage depends on the direction of interaction and overall heritability. In sum, we introduce a new method for analyzing rare variants in affected sibpairs that is robust to population stratification, and provide freely available software.
© 2015 WILEY PERIODICALS, INC.

Entities:  

Keywords:  association test; dichotomous traits; family studies; rare variants; sequencing

Mesh:

Year:  2015        PMID: 25966809      PMCID: PMC4469535          DOI: 10.1002/gepi.21903

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


  32 in total

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8.  Study designs for identification of rare disease variants in complex diseases: the utility of family-based designs.

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Authors:  Matthew R Nelson; Daniel Wegmann; Margaret G Ehm; Darren Kessner; Pamela St Jean; Claudio Verzilli; Judong Shen; Zhengzheng Tang; Silviu-Alin Bacanu; Dana Fraser; Liling Warren; Jennifer Aponte; Matthew Zawistowski; Xiao Liu; Hao Zhang; Yong Zhang; Jun Li; Yun Li; Li Li; Peter Woollard; Simon Topp; Matthew D Hall; Keith Nangle; Jun Wang; Gonçalo Abecasis; Lon R Cardon; Sebastian Zöllner; John C Whittaker; Stephanie L Chissoe; John Novembre; Vincent Mooser
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10.  Differential confounding of rare and common variants in spatially structured populations.

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Journal:  Genet Epidemiol       Date:  2016-12-01       Impact factor: 2.135

2.  Gene-based and pathway-based testing for rare-variant association in affected sib pairs.

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  2 in total

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