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Selection on ancestral genetic variation fuels repeated ecotype formation in bottlenose dolphins

  • Marie Louis
  • , Marco Galimberti
  • , Frederick Archer
  • , Simon Berrow
  • , Andrew Brownlow
  • , Ramon Fallon
  • , Milaja Nykänen
  • , Joanne O'Brien
  • , Kelly M. Roberston
  • , Patricia E. Rosel
  • , Benoit Simon-Bouhet
  • , Daniel Wegmann
  • , Michael C. Fontaine
  • , Andrew D. Foote
  • , Oscar E. Gaggiotti
    • University of St Andrews
    • Université de La Rochelle
    • University of Groningen
    • University of Copenhagen
    • University of Fribourg
    • Swiss Institute of Bioinformatics
    • National Oceanic and Atmospheric Administration
    • University of California at San Diego
    • Irish Whale and Dolphin Group
    • University of Glasgow
    • University College Cork
    • Université de Montpellier
    • Centre de Recherche en Écologie et Évolution de la Santé (CREES)
    • Bangor University
    • Norwegian University of Science and Technology

    Research output: Contribution to journalArticlepeer-review

    41 Citations (Scopus)

    Abstract

    Studying repeated adaptation can provide insights into the mechanisms allowing species to adapt to novel environments. Here, we investigate repeated evolution driven by habitat specialization in the common bottlenose dolphin. Parapatric pelagic and coastal ecotypes of common bottlenose dolphins have repeatedly formed across the oceans. Analyzing whole genomes of 57 individuals, we find that ecotype evolution involved a complex reticulated evolutionary history. We find parallel linked selection acted upon ancient alleles in geographically distant coastal populations, which were present as standing genetic variation in the pelagic populations. Candidate loci evolving under parallel linked selection were found in ancient tracts, suggesting recurrent bouts of selection through time. Therefore, despite the constraints of small effective population size and long generation time on the efficacy of selection, repeated adaptation in long-lived social species can be driven by a combination of ecological opportunities and selection acting on ancestral standing genetic variation.

    Original languageEnglish
    Article numbereabg1245
    JournalScience Advances
    Volume7
    Issue number44
    DOIs
    Publication statusPublished - Oct 2021

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