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ClonalFrameML: Efficient Inference of Recombination in Whole Bacterial Genomes

PLoS Computational Biology · 2015 · Vol. 11(2) · pp. e1004041–e1004041
Xavier DidelotDaniel J. Wilson

Abstract

Recombination is an important evolutionary force in bacteria, but it remains challenging to reconstruct the imports that occurred in the ancestry of a genomic sample. Here we present ClonalFrameML, which uses maximum likelihood inference to simultaneously detect recombination in bacterial genomes and account for it in phylogenetic reconstruction. ClonalFrameML can analyse hundreds of genomes in a matter of hours, and we demonstrate its usefulness on simulated and real datasets. We find evidence for recombination hotspots associated with mobile elements in Clostridium difficile ST6 and a previously undescribed 310kb chromosomal replacement in Staphylococcus aureus ST582. ClonalFrameML is freely available at http://clonalframeml.googlecode.com/.

Genomics and Phylogenetic StudiesBacterial Genetics and BiotechnologyBacteriophages and microbial interactionsRecombinationGenomeInferenceBiologyPhylogenetic treeComputational biologyEvolutionary biologyPhylogeneticsGeneticsGene

MeSH terms

Computer SimulationPhylogenyRecombination, GeneticSoftwareStaphylococcus aureusClostridioides difficileGenome, BacterialSequence Analysis, DNAEvolution, MolecularGenomicsDatabases, Genetic

Funding

  • Wellcome Trust
  • United Kingdom Clinical Research Collaboration
  • National Institute for Health Research Health Protection Research Unit
  • National Institute for Health and Care Research
  • Royal Society
  • Directorate for Biological Sciences
  • Medical Research Council
  • Biotechnology and Biological Sciences Research Council
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