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Testing the predictability of morphological evolution in contrasting thermal environments

  • Natalie Pilakouta* (Corresponding Author)
  • , Joseph L. Humble
  • , Iain D.C. Hill
  • , Jessica Arthur
  • , Ana P.B. Costa
  • , Bethany A. Smith
  • , Bjarni K. Kristjansson
  • , Skuli Skulason
  • , Shaun S. Killen
  • , Jan Lindstrom
  • , Neil B. Metcalfe
  • , Kevin J. Parsons* (Corresponding Author)
  • *Corresponding author for this work
  • University of Glasgow
  • University of Nottingham
  • University of Miami
  • Hólar University College
  • Icelandic Institute of Natural History

Research output: Contribution to journalArticlepeer-review

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Abstract

Gaining the ability to predict population responses to climate change is a pressing concern. Using a "natural experiment,"we show that testing for divergent evolution in wild populations from contrasting thermal environments provides a powerful approach, and likely an enhanced predictive power for responses to climate change. Specifically, we used a unique study system in Iceland, where freshwater populations of threespine sticklebacks (Gasterosteus aculeatus) are found in waters warmed by geothermal activity, adjacent to populations in ambient-temperature water. We focused on morphological traits across six pairs from warm and cold habitats. We found that fish from warm habitats tended to have a deeper mid-body, a subterminally orientated jaw, steeper craniofacial profile, and deeper caudal region relative to fish from cold habitats. Our common garden experiment showed that most of these differences were heritable. Population age did not appear to influence the magnitude or type of thermal divergence, but similar types of divergence between thermal habitats were more prevalent across allopatric than sympatric population pairs. These findings suggest that morphological divergence in response to thermal habitat, despite being relatively complex and multivariate, are predictable to a degree. Our data also suggest that the potential for migration of individuals between different thermal habitats may enhance nonparallel evolution and reduce our ability to predict responses to climate change.

Original languageEnglish
Pages (from-to)239-253
Number of pages15
JournalEvolution
Volume77
Issue number1
Early online date9 Dec 2022
DOIs
Publication statusPublished - Jan 2023

Bibliographical note

Acknowledgments: We would like to thank members of the technical staff at Holar University, Tiffany Armstrong, Anna Persson, and Kári Heidar Árnason, for their help with fieldwork in Iceland, as well as Peter Koene for his help with photographing specimens. We are also grateful to animal technicians at Glasgow, including Alastair Kirk, Ross Phillips, and the late Graham Law for their help with animal husbandry and aquarium maintenance. F. James Rohlf provided a useful discussion on the methods. Finally, we thank Miriam Zelditch and two anonymous reviewers for their helpful input.

Funding statement: The study was funded by a Natural Environment Research Council Grant (NE/N016734/1) awarded to K.J.P., N.B.M., S.S.K., and J.L. S.S.K. was supported by a NERC Advanced Fellowship (NE/J019100/1) and a European Research Council Starting Grant (640004).

Publisher Copyright:
© 2022 The Author(s). Published by Oxford University Press on behalf of The Society for the Study of Evolution (SSE).

Data Availability Statement

All data that support the findings of this study have been uploaded on the Dryad Digital Repository and are available at: https://doi.org/10.5061/dryad.bnzs7h4fb

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 13 - Climate Action
    SDG 13 Climate Action

Keywords

  • climate change
  • contemporary evolution
  • Gasterosteus aculeatus
  • geometric morphometrics
  • parallel evolution
  • sympatric divergence

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