Genetic analysis of the age at menopause by using estimating equations and Bayesian random effects models

Multi‐wave self‐report data on age at menopause in 2182 female twin pairs (1355 monozygotic and 827 dizygotic pairs), were analysed to estimate the genetic, common and unique environmental contribution to variation in age at menopause. Two complementary approaches for analysing correlated time‐to‐on...

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Published inStatistics in medicine Vol. 19; no. 9; pp. 1217 - 1235
Main Authors Do, K-A., Broom, B. M., Kuhnert, P., Duffy, D. L., Todorov, A. A., Treloar, S. A., Martin, N. G.
Format Journal Article
LanguageEnglish
Published Chichester, UK John Wiley & Sons, Ltd 15.05.2000
Wiley
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Online AccessGet full text
ISSN0277-6715
1097-0258
DOI10.1002/(SICI)1097-0258(20000515)19:9<1217::AID-SIM421>3.0.CO;2-Q

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Abstract Multi‐wave self‐report data on age at menopause in 2182 female twin pairs (1355 monozygotic and 827 dizygotic pairs), were analysed to estimate the genetic, common and unique environmental contribution to variation in age at menopause. Two complementary approaches for analysing correlated time‐to‐onset twin data are considered: the generalized estimating equations (GEE) method in which one can estimate zygosity‐specific dependence simultaneously with regression coefficients that describe the average population response to changing covariates; and a subject‐specific Bayesian mixed model in which heterogeneity in regression parameters is explicitly modelled and the different components of variation may be estimated directly. The proportional hazards and Weibull models were utilized, as both produce natural frameworks for estimating relative risks while adjusting for simultaneous effects of other covariates. A simple Markov chain Monte Carlo method for covariate imputation of missing data was used and the actual implementation of the Bayesian model was based on Gibbs sampling using the freeware package BUGS. Copyright © 2000 John Wiley & Sons, Ltd.
AbstractList Multi-wave self-report data on age at menopause in 2182 female twin pairs (1355 monozygotic and 827 dizygotic pairs), were analysed to estimate the genetic, common and unique environmental contribution to variation in age at menopause. Two complementary approaches for analysing correlated time-to-onset twin data are considered: the generalized estimating equations (GEE) method in which one can estimate zygosity-specific dependence simultaneously with regression coefficients that describe the average population response to changing covariates; and a subject-specific Bayesian mixed model in which heterogeneity in regression parameters is explicitly modelled and the different components of variation may be estimated directly. The proportional hazards and Weibull models were utilized, as both produce natural frameworks for estimating relative risks while adjusting for simultaneous effects of other covariates. A simple Markov chain Monte Carlo method for covariate imputation of missing data was used and the actual implementation of the Bayesian model was based on Gibbs sampling using the freeware package BUGS.Multi-wave self-report data on age at menopause in 2182 female twin pairs (1355 monozygotic and 827 dizygotic pairs), were analysed to estimate the genetic, common and unique environmental contribution to variation in age at menopause. Two complementary approaches for analysing correlated time-to-onset twin data are considered: the generalized estimating equations (GEE) method in which one can estimate zygosity-specific dependence simultaneously with regression coefficients that describe the average population response to changing covariates; and a subject-specific Bayesian mixed model in which heterogeneity in regression parameters is explicitly modelled and the different components of variation may be estimated directly. The proportional hazards and Weibull models were utilized, as both produce natural frameworks for estimating relative risks while adjusting for simultaneous effects of other covariates. A simple Markov chain Monte Carlo method for covariate imputation of missing data was used and the actual implementation of the Bayesian model was based on Gibbs sampling using the freeware package BUGS.
Multi‐wave self‐report data on age at menopause in 2182 female twin pairs (1355 monozygotic and 827 dizygotic pairs), were analysed to estimate the genetic, common and unique environmental contribution to variation in age at menopause. Two complementary approaches for analysing correlated time‐to‐onset twin data are considered: the generalized estimating equations (GEE) method in which one can estimate zygosity‐specific dependence simultaneously with regression coefficients that describe the average population response to changing covariates; and a subject‐specific Bayesian mixed model in which heterogeneity in regression parameters is explicitly modelled and the different components of variation may be estimated directly. The proportional hazards and Weibull models were utilized, as both produce natural frameworks for estimating relative risks while adjusting for simultaneous effects of other covariates. A simple Markov chain Monte Carlo method for covariate imputation of missing data was used and the actual implementation of the Bayesian model was based on Gibbs sampling using the freeware package BUGS. Copyright © 2000 John Wiley & Sons, Ltd.
Multi-wave self-report data on age at menopause in 2182 female twin pairs (1355 monozygotic and 827 dizygotic pairs), were analysed to estimate the genetic, common and unique environmental contribution to variation in age at menopause. Two complementary approaches for analysing correlated time-to-onset twin data are considered: the generalized estimating equations (GEE) method in which one can estimate zygosity-specific dependence simultaneously with regression coefficients that describe the average population response to changing covariates; and a subject-specific Bayesian mixed model in which heterogeneity in regression parameters is explicitly modelled and the different components of variation may be estimated directly. The proportional hazards and Weibull models were utilized, as both produce natural frameworks for estimating relative risks while adjusting for simultaneous effects of other covariates. A simple Markov chain Monte Carlo method for covariate imputation of missing data was used and the actual implementation of the Bayesian model was based on Gibbs sampling using the freeware package BUGS.
Author Do, K-A.
Duffy, D. L.
Martin, N. G.
Treloar, S. A.
Broom, B. M.
Todorov, A. A.
Kuhnert, P.
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Issue 9
Keywords Markov chain
Bayes estimation
Human
Monte Carlo method
Statistical model
Menopause
Random effect
Female
Gibbs sampling
Genetic determinism
Age
Language English
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Snippet Multi‐wave self‐report data on age at menopause in 2182 female twin pairs (1355 monozygotic and 827 dizygotic pairs), were analysed to estimate the genetic,...
Multi-wave self-report data on age at menopause in 2182 female twin pairs (1355 monozygotic and 827 dizygotic pairs), were analysed to estimate the genetic,...
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SubjectTerms Adult
Age Factors
Aged
Aged, 80 and over
Alcohol Drinking
Australia
Bayes Theorem
Biological and medical sciences
Body Mass Index
Educational Status
Female
Fundamental and applied biological sciences. Psychology
Hormone metabolism and regulation
Humans
Mammalian female genital system
Markov Chains
Menarche
Menopause - genetics
Menopause - physiology
Middle Aged
Models, Genetic
Monte Carlo Method
Parity
Smoking
Social Class
Surveys and Questionnaires
Vertebrates: reproduction
Title Genetic analysis of the age at menopause by using estimating equations and Bayesian random effects models
URI https://api.istex.fr/ark:/67375/WNG-R351F52F-K/fulltext.pdf
https://onlinelibrary.wiley.com/doi/abs/10.1002%2F%28SICI%291097-0258%2820000515%2919%3A9%3C1217%3A%3AAID-SIM421%3E3.0.CO%3B2-Q
https://www.ncbi.nlm.nih.gov/pubmed/10797518
https://www.proquest.com/docview/71102339
Volume 19
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