Bayesian co-estimation of selfing rate and locus-specific mutation rates for a partially selfing population

dc.contributor.author

Redelings, Benjamin D

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Kumagai, Seiji

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Wang, Liuyang

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Tatarenkov, Andrey

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Sakai, Ann K

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Weller, Stephen G

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Culley, Theresa M

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Avise, John C

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Uyenoyama, Marcy K

dc.date.accessioned

2017-07-02T18:16:51Z

dc.date.available

2017-07-02T18:16:51Z

dc.date.issued

2017-07-02

dc.description.abstract

We present a Bayesian method for characterizing the mating system of populations reproducing through a mixture of self-fertilization and random outcrossing. Our method uses patterns of genetic variation across the genome as a basis for inference about pure hermaphroditism, androdioecy, and gynodioecy. We extend the standard coalescence model to accommodate these mating systems, accounting explicitly for multilocus identity disequilibrium, inbreeding depression, and variation in fertility among mating types. We incorporate the Ewens Sampling Formula (ESF) under the infinite-alleles model of mutation to obtain a novel expression for the likelihood of mating system parameters. Our Markov chain Monte Carlo (MCMC) algorithm assigns locus-specific mutation rates, drawn from a common mutation rate distribution that is itself estimated from the data using a Dirichlet Process Prior (DPP) model. Among the parameters jointly inferred are the population-wide rate of self-fertilization, locus-specific mutation rates, and the number of generations since the most recent outcrossing event for each sampled individual.

dc.identifier

http://arxiv.org/abs/1501.05701v3

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https://hdl.handle.net/10161/14973

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q-bio.PE

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q-bio.PE

dc.title

Bayesian co-estimation of selfing rate and locus-specific mutation rates for a partially selfing population

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Journal article

duke.contributor.orcid

Uyenoyama, Marcy K|0000-0001-8249-1103

pubs.author-url

http://arxiv.org/abs/1501.05701v3

pubs.organisational-group

Biology

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Duke

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Trinity College of Arts & Sciences

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