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Genetic epidemiology. 2017 Dec;41(8):790-800. doi: 10.1002/gepi.22080 Q31.72024

Phenotype validation in electronic health records based genetic association studies

基于电子健康记录的遗传关联研究中的表型验证 翻译改进

Lu Wang  1, Scott M Damrauer  2  3, Hong Zhang  4, Alan X Zhang  5, Rui Xiao  1, Jason H Moore  1  6, Jinbo Chen  1

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作者单位

  • 1 Department of Biostatistics, Epidemiology and Informatics, Perelman School of Medicine, University of Pennsylvania, Philadelphia, Pennsylvania, United States of America.
  • 2 Division of Vascular Surgery and Endovascular Therapy, Hospital of the University of Pennsylvania, Philadelphia, Pennsylvania, United States of America.
  • 3 Department of Surgery, Corporal Michael Crescenz VA Medical Center, Philadelphia, Pennsylvania, United States of America.
  • 4 Institute of Biostatistics, Fudan University, Shanghai, P.R. China.
  • 5 Sidwell Friends School, Washington, DC, United States of America.
  • 6 Institute for Biomedical Informatics, Perelman School of Medicine, University of Pennsylvania, Philadelphia, Pennsylvania, United States of America.
  • DOI: 10.1002/gepi.22080 PMID: 29023970

    摘要 Ai翻译

    The linkage between electronic health records (EHRs) and genotype data makes it plausible to study the genetic susceptibility of a wide range of disease phenotypes. Despite that EHR-derived phenotype data are subjected to misclassification, it has been shown useful for discovering susceptible genes, particularly in the setting of phenome-wide association studies (PheWAS). It is essential to characterize discovered associations using gold standard phenotype data by chart review. In this work, we propose a genotype stratified case-control sampling strategy to select subjects for phenotype validation. We develop a closed-form maximum-likelihood estimator for the odds ratio parameters and a score statistic for testing genetic association using the combined validated and error-prone EHR-derived phenotype data, and assess the extent of power improvement provided by this approach. Compared with case-control sampling based only on EHR-derived phenotype data, our genotype stratified strategy maintains nominal type I error rates, and result in higher power for detecting associations. It also corrects the bias in the odds ratio parameter estimates, and reduces the corresponding variance especially when the minor allele frequency is small.

    Keywords: EHR; PheWAS; internal validation; outcome misclassification; sampling strategy.

    Keywords:electronic health records; genetic association studies

    Copyright © Genetic epidemiology. 中文内容为AI机器翻译,仅供参考!

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    期刊名:Genetic epidemiology

    缩写:GENET EPIDEMIOL

    ISSN:0741-0395

    e-ISSN:1098-2272

    IF/分区:1.7/Q3

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