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Pathway analysis with next-generation sequencing data

delete2014-07-02
delete7
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OA
AI
J
Jinying Zhao
Y
Yun Zhu
E
Eric Boerwinkle
M
Momiao Xiong *
DOI:10.1038/ejhg.2014.121delete
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摘要

摘要

En 中文
Although pathway analysis methods have been developed and successfully applied to association studies of common variants, the statistical methods for pathway-based association analysis of rare variants have not been well developed. Many investigators observed highly inflated false-positive rates and low power in pathway-based tests of association of rare variants. The inflated false-positive rates and low true-positive rates of the current methods are mainly due to their lack of ability to account for gametic phase disequilibrium. To overcome these serious limitations, we develop a novel statistic that is based on the smoothed functional principal component analysis (SFPCA) for pathway association tests with next-generation sequencing data. The developed statistic has the ability to capture position-level variant information and account for gametic phase disequilibrium. By intensive simulations, we demonstrate that the SFPCA-based statistic for testing pathway association with either rare or common or both rare and common variants has the correct type 1 error rates. Also the power of the SFPCA-based statistic and 22 additional existing statistics are evaluated. We found that the SFPCA-based statistic has a much higher power than other existing statistics in all the scenarios considered. To further evaluate its performance, the SFPCA-based statistic is applied to pathway analysis of exome sequencing data in the early-onset myocardial infarction (EOMI) project. We identify three pathways significantly associated with EOMI after the Bonferroni correction. In addition, our preliminary results show that the SFPCA-based statistic has much smaller P-values to identify pathway association than other existing methods.
Keyword:
SET ENRICHMENT ANALYSIS
THERAPEUTIC ANGIOGENESIS
CARDIOVASCULAR-DISEASE
RARE VARIANTS
GENE
ASSOCIATION
SNPS
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期刊

European Journal of Human Genetics 封面图
European Journal of Human Genetics
IF:
4.6
论文数:
6.5K
被引数:
1.2W

机构

T
tulane university
学者数:
1.3W
论文数: 1.0W
被引数: 9
U
university of texas system
学者数:
18.5W
论文数: 15.6W
被引数: 210
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