Literature DB >> 19764954

Estimating haplotype effects for survival data.

Thomas H Scheike1, Torben Martinussen, Jeremy D Silver.   

Abstract

Genetic association studies often investigate the effect of haplotypes on an outcome of interest. Haplotypes are not observed directly, and this complicates the inclusion of such effects in survival models. We describe a new estimating equations approach for Cox's regression model to assess haplotype effects for survival data. These estimating equations are simple to implement and avoid the use of the EM algorithm, which may be slow in the context of the semiparametric Cox model with incomplete covariate information. These estimating equations also lead to easily computable, direct estimators of standard errors, and thus overcome some of the difficulty in obtaining variance estimators based on the EM algorithm in this setting. We also develop an easily implemented goodness-of-fit procedure for Cox's regression model including haplotype effects. Finally, we apply the procedures presented in this article to investigate possible haplotype effects of the PAF-receptor on cardiovascular events in patients with coronary artery disease, and compare our results to those based on the EM algorithm.
© 2009, The International Biometric Society.

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Year:  2010        PMID: 19764954     DOI: 10.1111/j.1541-0420.2009.01329.x

Source DB:  PubMed          Journal:  Biometrics        ISSN: 0006-341X            Impact factor:   2.571


  5 in total

1.  The additive risk model for estimation of effect of haplotype match in BMT studies.

Authors:  Thomas H Scheike; Torben Martinussen; Mei-Jie Zhang
Journal:  Scand Stat Theory Appl       Date:  2011-09       Impact factor: 1.396

2.  Non-iterative, regression-based estimation of haplotype associations with censored survival outcomes.

Authors:  Benjamin French; Thomas Lumley; Thomas P Cappola; Nandita Mitra
Journal:  Stat Appl Genet Mol Biol       Date:  2012-02-15

3.  Competing risks with missing covariates: effect of haplotypematch on hematopoietic cell transplant patients.

Authors:  Thomas H Scheike; Martin J Maiers; Vanderson Rocha; Mei-Jie Zhang
Journal:  Lifetime Data Anal       Date:  2012-09-12       Impact factor: 1.588

4.  Diagnostic Measures for the Cox Regression Model with Missing Covariates.

Authors:  Hongtu Zhu; Joseph G Ibrahim; Ming-Hui Chen
Journal:  Biometrika       Date:  2015-11-04       Impact factor: 3.028

5.  A non-parametric approach for detecting gene-gene interactions associated with age-at-onset outcomes.

Authors:  Ming Li; Joseph C Gardiner; Naomi Breslau; James C Anthony; Qing Lu
Journal:  BMC Genet       Date:  2014-07-01       Impact factor: 2.797

  5 in total

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