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Bayesian inference of the evolution of a phenotype distribution on a phylogenetic tree

Abstract:
The distribution of a phenotype on a phylogenetic tree is often a quantity of interest. Many phenotypes have imperfect heritability, so that a measurement of the phenotype for an individual can be thought of as a single realisation from the phenotype distribution of that individual. If all individuals in a phylogeny had the same phenotype distribution, measured phenotypes would be randomly distributed on the tree leaves. This is however often not the case, implying that the phenotype distribution evolves over time. Here we propose a new model based on this principle of evolving phenotype distribution on the branches of a phylogeny, which is different from ancestral state reconstruction where the phenotype itself is assumed to evolve. We develop an efficient Bayesian inference method to estimate the parameters of our model and to test the evidence for changes in the phenotype distribution. We use multiple simulated datasets to show that our algorithm has good sensitivity and specificity properties. Since our method identifies branches on the tree on which the phenotype distribution has changed, it is able to break down a tree into components for which this distribution is unique and constant. We present two applications of our method, one investigating the association between HIV genetic variation and human leukocyte antigen, and the other studying host range distribution in a lineage of Salmonella enterica, and we discuss many other potential applications. All the methods described in this paper are implemented in a software package called TreeBreaker which is freely available for download at https://github.com/ansariazim/TreeBreaker.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1534/genetics.116.190496

Authors

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Institution:
University of Oxford
Division:
MSD
Department:
NDM
Sub department:
Human Genetics Wt Centre
Role:
Author


More from this funder
Funding agency for:
Didelot, X
Grant:
HPRU-2012-10080
More from this funder
Funding agency for:
Didelot, X
Grant:
HPRU-2012-10080


Publisher:
Genetics Society of America
Journal:
Genetics More from this journal
Volume:
204
Issue:
1
Pages:
89-98
Publication date:
2016-09-01
Acceptance date:
2016-07-07
DOI:
EISSN:
1943-2631
ISSN:
0016-6731
Pmid:
27412711


Language:
English
Keywords:
Pubs id:
pubs:636398
UUID:
uuid:37bfcd24-4bcd-436a-b7b4-642dc7e6616e
Local pid:
pubs:636398
Source identifiers:
636398
Deposit date:
2016-09-08
ARK identifier:

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