Statistical resolution of missing longitudinal data in clinical pharmacogenomics

被引:1
|
作者
Wang, Zhong [1 ]
Li, Hongying [2 ]
Wang, Jianxin [1 ]
Li, Jiahan [3 ]
Wu, Rongling [1 ,4 ]
机构
[1] Beijing Forestry Univ, Ctr Computat Biol, Beijing, Peoples R China
[2] Univ Calif San Diego, Moores Canc Ctr, San Diego, CA 92093 USA
[3] Univ Notre Dame, Dept Appl & Computat Math & Stat, Notre Dame, IN 46556 USA
[4] Penn State Univ, Ctr Stat Genet, Hershey, PA 17033 USA
关键词
Non-ignorable dropout; Haplotype; Pattern-mixture model; Selection model; Drug response; Functional mapping; MIXTURE-MODELS; DROP-OUT; SURVIVAL; LIKELIHOOD;
D O I
10.1016/j.addr.2013.03.003
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Clinical pharmacogenomics, integrating genomic information with clinical practices to facilitate the prediction of drug response, has recently emerged as a vital area of public health. In clinical trials, phenotypic data on drug response are often longitudinal, with some patients dropping out early due to physiological or other unpredictable reasons. The genetic analysis of such missing longitudinal data presents a significant challenge in clinical pharmacogenomics. We develop a statistical algorithm for detecting haplotypes that control longitudinal responses subject to non-ignorable dropout. The model was derived by incorporating the selection model into a dynamic model - functional mapping, aimed to discover genetic variants that contribute to phenotypic variation in longitudinal traits. The selection models is a statistical approach for analyzing missing longitudinal data by assuming that dropout depends on the outcome of drug response. The model derived can jointly characterize the genetic control of longitudinal responses and dropout events. Simulation studies were performed to investigate the statistical properties of the model and validate its practical usefulness. The model will find its implications for clinical pharmacogenomics toward personalized medicine. (c) 2013 Elsevier B.V. All rights reserved.
引用
收藏
页码:980 / 986
页数:7
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