Scinovex
article Open AccessTop 1% cited

Inferring Species Trees Directly from Biallelic Genetic Markers: Bypassing Gene Trees in a Full Coalescent Analysis

Molecular Biology and Evolution · 2012 · Vol. 29(8) · pp. 1917–1932
David BryantRemco BouckaertJoseph FelsensteinNoah A. RosenbergArindam RoyChoudhury

Abstract

The multispecies coalescent provides an elegant theoretical framework for estimating species trees and species demographics from genetic markers. However, practical applications of the multispecies coalescent model are limited by the need to integrate or sample over all gene trees possible for each genetic marker. Here we describe a polynomial-time algorithm that computes the likelihood of a species tree directly from the markers under a finite-sites model of mutation effectively integrating over all possible gene trees. The method applies to independent (unlinked) biallelic markers such as well-spaced single nucleotide polymorphisms, and we have implemented it in SNAPP, a Markov chain Monte Carlo sampler for inferring species trees, divergence dates, and population sizes. We report results from simulation experiments and from an analysis of 1997 amplified fragment length polymorphism loci in 69 individuals sampled from six species of Ourisia (New Zealand native foxglove).

Genetic diversity and population structureGenomics and Phylogenetic StudiesEvolution and Genetic DynamicsCoalescent theoryBiologyGeneticsPopulationEvolutionary biologyMarkov chain Monte CarloTree (set theory)Population geneticsDivergence (linguistics)Gene

MeSH terms

AlgorithmsAllelesComputer SimulationDigitalisGenetic MarkersNew ZealandPhylogenySpecies SpecificityLikelihood FunctionsGenes, PlantDatabases, GeneticAmplified Fragment Length Polymorphism Analysis

Funding

  • National Science Foundation
  • Alexander von Humboldt-Stiftung
  • Allan Wilson Centre
  • National Institutes of Health
Citations
1,038
FWCI
24.61
field-weighted impact
References
60
Percentile
100%
vs. same field & year
Citations per year
Cited by
BEAST 2: A Software Platform for Bayesian Evolutionary Analysis
PLoS Computational Biology · 2014 · 6,896 citations
Fast Coalescent-Based Computation of Local Branch Support from Quartet Frequencies
Molecular Biology and Evolution · 2016 · 942 citations
BEAST 2.5: An advanced software platform for Bayesian evolutionary analysis
PLoS Computational Biology · 2019 · 4,560 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.