Literature DB >> 28931734

Cross-taxa generalities in the relationship between population abundance and ambient temperatures.

Diana E Bowler1, Peter Haase2,3, Christian Hof4, Ingrid Kröncke5, Léon Baert6, Wouter Dekoninck6, Sami Domisch7,8, Frederik Hendrickx6, Thomas Hickler4,9, Hermann Neumann5, Robert B O'Hara4,10, Anne F Sell11, Moritz Sonnewald12, Stefan Stoll2,13, Michael Türkay12, Roel van Klink14, Oliver Schweiger15, Rikjan Vermeulen16, Katrin Böhning-Gaese4,17.   

Abstract

Identifying patterns in the effects of temperature on species' population abundances could help develop a general framework for predicting the consequences of climate change across different communities and realms. We used long-term population time series data from terrestrial, freshwater, and marine species communities within central Europe to compare the effects of temperature on abundance across a broad range of taxonomic groups. We asked whether there was an average relationship between temperatures in different seasons and annual abundances of species in a community, and whether species attributes (temperature range of distribution, range size, habitat breadth, dispersal ability, body size, and lifespan) explained interspecific variation in the relationship between temperature and abundance. We found that, on average, warmer winter temperatures were associated with greater abundances in terrestrial communities (ground beetles, spiders, and birds) but not always in aquatic communities (freshwater and marine invertebrates and fish). The abundances of species with large geographical ranges, larger body sizes, and longer lifespans tended to be less related to temperature. Our results suggest that climate change may have, in general, positive effects on species' abundances within many terrestrial communities in central Europe while the effects are less predictable in aquatic communities.
© 2017 The Author(s).

Keywords:  climate change; population size; time series; trait-based analysis; weather

Mesh:

Year:  2017        PMID: 28931734      PMCID: PMC5627194          DOI: 10.1098/rspb.2017.0870

Source DB:  PubMed          Journal:  Proc Biol Sci        ISSN: 0962-8452            Impact factor:   5.349


  35 in total

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2.  Cross-taxa generalities in the relationship between population abundance and ambient temperatures.

Authors:  Diana E Bowler; Peter Haase; Christian Hof; Ingrid Kröncke; Léon Baert; Wouter Dekoninck; Sami Domisch; Frederik Hendrickx; Thomas Hickler; Hermann Neumann; Robert B O'Hara; Anne F Sell; Moritz Sonnewald; Stefan Stoll; Michael Türkay; Roel van Klink; Oliver Schweiger; Rikjan Vermeulen; Katrin Böhning-Gaese
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Journal:  Proc Natl Acad Sci U S A       Date:  2022-09-06       Impact factor: 12.779

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