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Haplotype-based pharmacogenetic analysis for longitudinal quantitative traits in the presence of dropout.


ABSTRACT: We propose a variety of methods based on the generalized estimation equations to address the issues encountered in haplotype-based pharmacogenetic analysis, including analysis of longitudinal data with outcome-dependent dropouts, and evaluation of the high-dimensional haplotype and haplotype-drug interaction effects in an overall manner. We use the inverse probability weights to handle the outcome-dependent dropouts under the missing-at-random assumption, and incorporate the weighted L(1) penalty to select important main and interaction effects with high dimensionality. The proposed methods are easy to implement, computationally efficient, and provide an optimal balance between false positives and false negatives in detecting genetic effects.

SUBMITTER: Tzeng JY 

PROVIDER: S-EPMC2845928 | biostudies-literature | 2010 Mar

REPOSITORIES: biostudies-literature

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Haplotype-based pharmacogenetic analysis for longitudinal quantitative traits in the presence of dropout.

Tzeng Jung-Ying JY   Lu Wenbin W   Farmen Mark W MW   Liu Youfang Y   Sullivan Patrick F PF  

Journal of biopharmaceutical statistics 20100301 2


We propose a variety of methods based on the generalized estimation equations to address the issues encountered in haplotype-based pharmacogenetic analysis, including analysis of longitudinal data with outcome-dependent dropouts, and evaluation of the high-dimensional haplotype and haplotype-drug interaction effects in an overall manner. We use the inverse probability weights to handle the outcome-dependent dropouts under the missing-at-random assumption, and incorporate the weighted L(1) penalt  ...[more]

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