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A framework for analyzing both linkage and association: an analysis of Genetic Analysis Workshop 16 simulated data

We examine a Bayesian Markov-chain Monte Carlo framework for simultaneous segregation and linkage analysis in the simulated single-nucleotide polymorphism data provided for Genetic Analysis Workshop 16. We conducted linkage only, linkage and association, and association only tests under this framewo...

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Autores principales: Daw, E Warwick, Plunkett, Jevon, Feitosa, Mary, Gao, Xiaoyi, Van Brunt, Andrew, Ma, Duanduan, Czajkowski, Jacek, Province, Michael A, Borecki, Ingrid
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2796002/
https://www.ncbi.nlm.nih.gov/pubmed/20018095
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author Daw, E Warwick
Plunkett, Jevon
Feitosa, Mary
Gao, Xiaoyi
Van Brunt, Andrew
Ma, Duanduan
Czajkowski, Jacek
Province, Michael A
Borecki, Ingrid
author_facet Daw, E Warwick
Plunkett, Jevon
Feitosa, Mary
Gao, Xiaoyi
Van Brunt, Andrew
Ma, Duanduan
Czajkowski, Jacek
Province, Michael A
Borecki, Ingrid
author_sort Daw, E Warwick
collection PubMed
description We examine a Bayesian Markov-chain Monte Carlo framework for simultaneous segregation and linkage analysis in the simulated single-nucleotide polymorphism data provided for Genetic Analysis Workshop 16. We conducted linkage only, linkage and association, and association only tests under this framework. We also compared these results with variance-component linkage analysis and regression analyses. The results indicate that the method shows some promise, but finding genes that have very small (<0.1%) contributions to trait variance may require additional sources of information. All methods examined fared poorly for the smallest in the simulated "polygene" range (h(2 )of 0.0015 to 0.0002).
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spelling pubmed-27960022009-12-18 A framework for analyzing both linkage and association: an analysis of Genetic Analysis Workshop 16 simulated data Daw, E Warwick Plunkett, Jevon Feitosa, Mary Gao, Xiaoyi Van Brunt, Andrew Ma, Duanduan Czajkowski, Jacek Province, Michael A Borecki, Ingrid BMC Proc Proceedings We examine a Bayesian Markov-chain Monte Carlo framework for simultaneous segregation and linkage analysis in the simulated single-nucleotide polymorphism data provided for Genetic Analysis Workshop 16. We conducted linkage only, linkage and association, and association only tests under this framework. We also compared these results with variance-component linkage analysis and regression analyses. The results indicate that the method shows some promise, but finding genes that have very small (<0.1%) contributions to trait variance may require additional sources of information. All methods examined fared poorly for the smallest in the simulated "polygene" range (h(2 )of 0.0015 to 0.0002). BioMed Central 2009-12-15 /pmc/articles/PMC2796002/ /pubmed/20018095 Text en Copyright ©2009 Daw et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Proceedings
Daw, E Warwick
Plunkett, Jevon
Feitosa, Mary
Gao, Xiaoyi
Van Brunt, Andrew
Ma, Duanduan
Czajkowski, Jacek
Province, Michael A
Borecki, Ingrid
A framework for analyzing both linkage and association: an analysis of Genetic Analysis Workshop 16 simulated data
title A framework for analyzing both linkage and association: an analysis of Genetic Analysis Workshop 16 simulated data
title_full A framework for analyzing both linkage and association: an analysis of Genetic Analysis Workshop 16 simulated data
title_fullStr A framework for analyzing both linkage and association: an analysis of Genetic Analysis Workshop 16 simulated data
title_full_unstemmed A framework for analyzing both linkage and association: an analysis of Genetic Analysis Workshop 16 simulated data
title_short A framework for analyzing both linkage and association: an analysis of Genetic Analysis Workshop 16 simulated data
title_sort framework for analyzing both linkage and association: an analysis of genetic analysis workshop 16 simulated data
topic Proceedings
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2796002/
https://www.ncbi.nlm.nih.gov/pubmed/20018095
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