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Relative time constraints improve molecular dating

View ORCID ProfileGergely J. Szöllősi, View ORCID ProfileSebastian Höhna, View ORCID ProfileTom A. Williams, View ORCID ProfileDominik Schrempf, Vincent Daubin, View ORCID ProfileBastien Boussau
doi: https://doi.org/10.1101/2020.10.17.343889
Gergely J. Szöllősi
1MTA-ELTE “Lendület”’ Evolutionary Genomics Research Group, Pázmány P. stny. 1A, H-1117 Budapest, Hungary; Department of Biological Physics, Eötvös University,Pázmány P. stny. 1A, H-1117 Budapest, Hungary; Institute of Evolution, Centre for Ecological Research, Konkoly-Thege M. út 29-33. H-1121 Budapest, Hungary
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  • For correspondence: ssolo@elte.hu bastien.boussau@univ-lyon1.fr
Sebastian Höhna
2GeoBio-Center LMU, Ludwig-Maximilians-Universität München, Richard-Wagner Straße 10, 80333 Munich, Germany; Department of Earth and Environmental Sciences, Paleontology & Geobiology, Ludwig-Maximilians-Universität München, Richard-Wagner Straße 10, 80333 Munich, Germany
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Tom A. Williams
3School of Biological Sciences, University of Bristol, 24 Tyndall Ave, Bristol, BS8 1TH, United Kingdom
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Dominik Schrempf
4Dept. Biological Physics, Eötvös University, Pázmány P. stny. 1A., H-1117 Budapest, Hungary
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Vincent Daubin
5Université de Lyon, Université Lyon 1, CNRS, Laboratoire de Biométrie et Biologie Evolutive UMR 5558, F-69622 Villeurbanne, France
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Bastien Boussau
5Université de Lyon, Université Lyon 1, CNRS, Laboratoire de Biométrie et Biologie Evolutive UMR 5558, F-69622 Villeurbanne, France
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  • For correspondence: ssolo@elte.hu bastien.boussau@univ-lyon1.fr
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ABSTRACT

Dating the tree of life is central to understanding the evolution of life on Earth. Molecular clocks calibrated with fossils represent the state of the art for inferring the ages of major groups. Yet, other information on the timing of species diversification can be used to date the tree of life. For example, horizontal gene transfer events and ancient coevolutionary relationships such as (endo)symbioses can imply temporal relationships between two nodes in a phylogeny (Davín et al. 2018). These alternative sources of temporal constraints can be particularly helpful when the geological record is sparse, e.g. for microorganisms, which represent the vast majority of extant and extinct biodiversity.

Here, we present a new method to combine fossil calibrations and relative age constraints to estimate chronograms. We provide an implementation of relative age constraints in RevBayes (Höhna et al. 2016) that can be combined in a modular manner with the wide range of molecular dating methods available in the software.

We use both realistic simulations and empirical datasets of 40 Cyanobacteria and 62 Archaea to evaluate our method. We show that the combination of relative age constraints with fossil calibrations significantly improves the estimation of node ages.

Competing Interest Statement

The authors have declared no competing interest.

Footnotes

  • Cite as: Szollosi, G.J., Hoehna, S., Williams, T.A., Schrempf, D., Daubin, V. and Boussau, B. (2021) Relative time constraints improve molecular dating. bioRxiv, 2020.10.17.343889, ver. 8 recommended and peer-reviewed by Peer Community in Evolutionary Biology. https://doi.org/10.1101/2020.10.17.343889

  • Version 8 of this preprint has been peer-reviewed and recommended by Peer Community In Evolutionary Biology (https://doi.org/10.24072/pci.evolbiol.100127); this version improves on version 7 with a correction of the link to the supplementary material that was not correct, and a change of format to ensure that text is not transformed into a jpeg next to the title.

  • https://doi.org/10.5061/dryad.s4mw6m958

  • https://github.com/Boussau/DatingWithConsAndCal

  • https://revbayes.github.io/tutorials/relative_time_constraints/

Copyright 
The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY-NC 4.0 International license.
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Posted May 14, 2021.
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Relative time constraints improve molecular dating
Gergely J. Szöllősi, Sebastian Höhna, Tom A. Williams, Dominik Schrempf, Vincent Daubin, Bastien Boussau
bioRxiv 2020.10.17.343889; doi: https://doi.org/10.1101/2020.10.17.343889
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Relative time constraints improve molecular dating
Gergely J. Szöllősi, Sebastian Höhna, Tom A. Williams, Dominik Schrempf, Vincent Daubin, Bastien Boussau
bioRxiv 2020.10.17.343889; doi: https://doi.org/10.1101/2020.10.17.343889

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