TreeTime: maximum likelihood phylodynamic analysis
Preprint
- 21 June 2017
- preprint
- Published by Cold Spring Harbor Laboratory in bioRxiv
- p. 153494
- https://doi.org/10.1101/153494
Abstract
Mutations that accumulate in the genome of replicating biological organisms can be used to infer their evolutionary history. In the case of measurably evolving organisms genomes often reveal their detailed spatiotemporal spread. Such phylodynamic analyses are particularly useful to understand the epidemiology of rapidly evolving viral pathogens. The number of genome sequences available for different pathogens, however, has increased dramatically over the last couple of years and traditional methods for phylodynamic analysis scale poorly with growing data sets. Here, we present TreeTime, a Python based framework for phylodynamic analysis using an approximate Maximum Likelihood approach. TreeTime can estimate ancestral states, infer evolution models, reroot trees to maximize temporal signals, estimate molecular clock phylogenies and population size histories. The run time of TreeTime scales linearly with data set size.Keywords
All Related Versions
- Published version: Virus Evolution, 4 (1), vex042.
This publication has 27 references indexed in Scilit:
- Viral PhylodynamicsPLoS Computational Biology, 2013
- Estimating divergence times in large molecular phylogeniesProceedings of the National Academy of Sciences, 2012
- FFPopSim: an efficient forward simulation package for the evolution of large populationsBioinformatics, 2012
- Bayesian Phylogenetics with BEAUti and the BEAST 1.7Molecular Biology and Evolution, 2012
- FastTree 2 – Approximately Maximum-Likelihood Trees for Large AlignmentsPLOS ONE, 2010
- Relaxed Phylogenetics and Dating with ConfidencePLoS Biology, 2006
- A Fast Algorithm for Joint Reconstruction of Ancestral Amino Acid SequencesMolecular Biology and Evolution, 2000
- Estimation of branching dates among primates by molecular clocks of nuclear DNA which slowed down in HominoideaJournal of Human Evolution, 1989
- The coalescentStochastic Processes and their Applications, 1982
- An examination of the constancy of the rate of molecular evolutionJournal of Molecular Evolution, 1974