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Global warming and arctic terns: Estimating climate change impacts on the world's longest migration

  • Joanne M. Morten
  • , Pearse J. Buchanan
  • , C. Egevang
  • , Isolde A. Glissenaar
  • , Sara M. Maxwell
  • , Nicole Parr
  • , James A. Screen
  • , Freydís Vigfúsdóttir
  • , Noam S. Vogt-Vincent
  • , Daniel A. Williams
  • , Ned C. Williams
  • , Matthew J. Witt
  • , Lucy A. Hawkes*
  • , William Thurston
  • *Corresponding author for this work

Research output: Contribution to journalArticle (Academic Journal)peer-review

8 Citations (Scopus)

Abstract

Climate change is one of the top three global threats to seabirds, particularly species that visit polar regions. Arctic terns migrate between both polar regions annually and rely on productive marine areas to forage, on sea ice for rest and foraging, and prevailing winds during flight. Here, we report 21st-century trends in environmental variables affecting arctic terns at key locations along their Atlantic/Indian Ocean migratory flyway during the non-breeding seasons, identified through tracking data. End-of-century climate change projections were derived from Earth System Models and multi-model means calculated in two Shared Socioeconomic Pathways: ‘middle-of-the-road’ and ‘fossil-fuelled development’ scenarios. Declines in North Atlantic primary production emerge as a major impact to arctic terns likely to affect their foraging during the 21st century under a ‘fossil-fuelled development’ scenario. Minimal changes are, however, projected at three other key regions visited by arctic terns (Benguela Upwelling, Subantarctic Indian Ocean and the Southern Ocean). Southern Ocean sea ice extent is likely to decline, but the magnitude of change and potential impacts on tern survival are uncertain. Small changes (<1 m s−1) in winds are projected in both scenarios, but with minimal likely impacts on migration routes and duration. However, Southern Ocean westerlies are likely to strengthen and contract closer to the continent, which may require arctic terns to shift routes or flight strategies. Overall, we find minor effects of climate change on the migration of arctic terns, with the exception of poorer foraging in the North Atlantic. However, given that arctic terns travel over huge spatial scales and live for decades, they integrate minor changes in conditions along their migration routes such that the sum effect may be greater than the parts. Meeting carbon emission targets is vital to slow these end-of-century climatic changes and minimise extinction risk for a suite of polar species.

Original languageEnglish
Pages (from-to)5596-5614
Number of pages19
JournalGlobal Change Biology
Volume29
Issue number19
Early online date26 Jul 2023
DOIs
Publication statusE-pub ahead of print - 26 Jul 2023

Bibliographical note

Funding Information:
We thank the Reviewers for their comments that improved the manuscript. We acknowledge the support from the CMIP6 Data Hackathon hosted by the University of Bristol and Met Office Academic Partners (Mitchell et al., 2022 ). This work uses JASMIN, the UK collaborative data analysis facility. The authors acknowledge the World Climate Research Programme, which, through its Working Group on Coupled Modelling, coordinated and promoted CMIP6. We wish to thank Shannon Williams and Aleksandra Zaforemska for their participation during the Hackathon event during the early stages of this project. We are grateful to Sigríður Hanna Sigurðardóttir and Páll ϸórðarson for allowing us access to their land and being wonderful hosts throughout our fieldwork. We thank Solveig Daviðsdóttir, Giulia Bellon, Lee Collins and Jessica Rudd for their assistance during the field seasons. The authors thank the climate modelling groups for producing and making available their model output, the Earth System Grid Federation (ESGF) for archiving the data and providing access, and the multiple funding agencies who support CMIP6 and ESGF. The authors wish to acknowledge the use of the Ferret program ( http://ferret.pmel.noaa.gov/Ferret/ ), netcdf operators (Zender, 2008 ), climate data operators ( https://code.mpimet.mpg.de/projects/cdo/ ), and Python ( www.python.org ) for the analysis and graphics in this study. This includes the use of the packages cartopy (Met Office, 2015 ) and xarray (Hoyer & Hamman, 2017 ).

Funding Information:
J.M.M. and N.C.W. were supported by NERC GW4+ Doctoral Training Partnership studentships from the Natural Environment Research Council (NE/L002434/1). P.J.B. was supported by the ARISE project (NE/P006035/1), part of the Changing Arctic Ocean programme, jointly funded by the UKRI Natural Environmental Research Council (NERC) and the German Federal Ministry of Education and Research (BMBF). I.A.G. was supported by a University of Bristol PGR scholarship. DAW was supported by a STFC studentship from the Science and Technology Facilities Council (ST/V506667/1). Tracking data obtained by authors were funded by a National Geographic grant (WW1‐286R‐18) awarded to L.A.H.

Publisher Copyright:
© 2023 The Authors. Global Change Biology published by John Wiley & Sons Ltd.

UN SDGs

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

  1. SDG 13 - Climate Action
    SDG 13 Climate Action

Keywords

  • arctic tern
  • climate change
  • CMIP6
  • migration
  • net primary productivity
  • sea ice
  • Sterna paradisaea
  • wind

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