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Body Size and Food-web Interactions Mediate Species Range Shifts Under Warming

Overview
Journal Proc Biol Sci
Specialty Biology
Date 2022 Apr 13
PMID 35414233
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Abstract

Species ranges are shifting in response to climate change, but most predictions disregard food-web interactions and, in particular, if and how such interactions change through time. Predator-prey interactions could speed up species range shifts through enemy release or create lags through biotic resistance. Here, we developed a spatially explicit model of interacting species, each with a thermal niche and embedded in a size-structured food-web across a temperature gradient that was then exposed to warming. We also created counterfactual single species models to contrast and highlight the effect of trophic interactions on range shifts. We found that dynamic trophic interactions hampered species range shifts across 450 simulated food-webs with up to 200 species each over 200 years of warming. All species experiencing dynamic trophic interactions shifted more slowly than single-species models would predict. In addition, the trailing edges of larger bodied species ranges shifted especially slowly because of ecological subsidies from small shifting prey. Trophic interactions also reduced the numbers of locally novel species, novel interactions and productive species, thus maintaining historical community compositions for longer. Current forecasts ignoring dynamic food-web interactions and allometry may overestimate species' tendency to track climate change.

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References
1.
Andersen K, Beyer J, Lundberg P . Trophic and individual efficiencies of size-structured communities. Proc Biol Sci. 2008; 276(1654):109-14. PMC: 2614255. DOI: 10.1098/rspb.2008.0951. View

2.
Thomas M, Kremer C, Klausmeier C, Litchman E . A global pattern of thermal adaptation in marine phytoplankton. Science. 2012; 338(6110):1085-8. DOI: 10.1126/science.1224836. View

3.
Hastings A, Abbott K, Cuddington K, Francis T, Gellner G, Lai Y . Transient phenomena in ecology. Science. 2018; 361(6406). DOI: 10.1126/science.aat6412. View

4.
Urban M, Tewksbury J, Sheldon K . On a collision course: competition and dispersal differences create no-analogue communities and cause extinctions during climate change. Proc Biol Sci. 2012; 279(1735):2072-80. PMC: 3311897. DOI: 10.1098/rspb.2011.2367. View

5.
Brose U, Archambault P, Barnes A, Bersier L, Boy T, Canning-Clode J . Predator traits determine food-web architecture across ecosystems. Nat Ecol Evol. 2019; 3(6):919-927. DOI: 10.1038/s41559-019-0899-x. View