Open Access
2023 Speeding up Inference of Homologous Recombination in Bacteria
Felipe J Medina-Aguayo, Xavier Didelot, Richard G Everitt
Author Affiliations +
Bayesian Anal. Advance Publication 1-31 (2023). DOI: 10.1214/23-BA1388

Abstract

Bacteria reproduce clonally but most species recombine frequently, so that the ancestral process is best captured using an ancestral recombination graph. This graph model is often too complex to be used in an inferential setup, but it can be approximated for example by the ClonalOrigin model. Inference in the ClonalOrigin model is performed via a Reversible-Jump Markov Chain Monte Carlo algorithm, which attempts to jointly explore: the recombination rate, the number of recombination events, the departure and arrival points on the clonal genealogy for each recombination event, and the range of genomic sites affected by each recombination event. However, the Reversible-Jump algorithm often performs poorly due to the complexity of the target distribution since it needs to explore spaces of different dimensions. Recent developments in Bayesian computation methodology have provided ways to improve existing methods and code, but are not well-known outside the statistics community. We show how exploiting one of these new computational methods can lead to faster inference under the ClonalOrigin model.

Funding Statement

Felipe J. Medina-Aguayo and Richard G. Everitt were supported by the UK Biotechnology and Biological Sciences Re-search Council grant BB/N00874X/1. Felipe J. Medina-Aguayo got support from ONRG-RGCOMM grant, and partial funding from CONACYT CB-2016-01-284451 grant.

Acknowledgments

FJM-A and RGE were supported by the UK Biotechnology and Biological Sciences Research Council grant BB/N00874X/1. FJM-A also acknowledges support from an ONRG-RGCOMM grant, and partial funding from CONACYT CB-2016-01-284451 grant.

Citation

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Felipe J Medina-Aguayo. Xavier Didelot. Richard G Everitt. "Speeding up Inference of Homologous Recombination in Bacteria." Bayesian Anal. Advance Publication 1 - 31, 2023. https://doi.org/10.1214/23-BA1388

Information

Published: 2023
First available in Project Euclid: 1 June 2023

Digital Object Identifier: 10.1214/23-BA1388

Subjects:
Primary: 62-08 , 92D15

Keywords: ClonalOrigin , Genetics , recombination , reversible-jump MCMC

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