Predicting ecosystem functions from biodiversity and mutualistic networks: an extension of trait-based concepts to plant-animal interactions
Research linking biodiversity and ecosystem functioning (BEF) has been mostly centred on the influence of species richness on ecosystem functions in small-scale experiments with single trophic levels. In natural ecosystems, many ecosystem functions are mediated by interactions between plants and ani...
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Published in | Ecography (Copenhagen) Vol. 38; no. 4; pp. 380 - 392 |
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Main Authors | , , |
Format | Journal Article |
Language | English |
Published |
Oxford, UK
Blackwell Publishing Ltd
01.04.2015
Nordic Society Oikos John Wiley & Sons, Inc |
Subjects | |
Online Access | Get full text |
ISSN | 0906-7590 1600-0587 |
DOI | 10.1111/ecog.00983 |
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Abstract | Research linking biodiversity and ecosystem functioning (BEF) has been mostly centred on the influence of species richness on ecosystem functions in small-scale experiments with single trophic levels. In natural ecosystems, many ecosystem functions are mediated by interactions between plants and animals, such as pollination and seed dispersal by animals, for which BEF relationships are little understood. Largely disconnected from BEF research, network ecology has examined the structural diversity of complex ecological networks of interacting species. Here, we provide an overview of the most important concepts in BEF and ecological network research and exemplify their applicability to natural ecosystems with examples from pollination and seed-dispersal studies. In a synthesis, we connect the structural approaches of network analysis with the trait-based approaches of BEF research and propose a conceptual trait-based model for understanding BEF relationships of plant–animal interactions in natural ecosystems. The model describes the sequential processes that determine the BEF relationship, i.e. the responses of species to environmental filters, the matching of species in ecological networks and the functionality of species in terms of their quantitative and qualitative contributions to plant demography and ecosystem functioning. We illustrate this conceptual integration with examples from mutualistic interactions and highlight its value for predicting the consequences of biodiversity loss for multispecies interactions and ecosystem functions. We foresee that a better integration between BEF and network research will improve our mechanistic understanding of how biodiversity relates to the functioning of natural ecosystems. Our conceptual model is a step towards this integration between structural and functional biodiversity research. |
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AbstractList | Research linking biodiversity and ecosystem functioning (BEF) has been mostly centred on the influence of species richness on ecosystem functions in small-scale experiments with single trophic levels. In natural ecosystems, many ecosystem functions are mediated by interactions between plants and animals, such as pollination and seed dispersal by animals, for which BEF relationships are little understood. Largely disconnected from BEF research, network ecology has examined the structural diversity of complex ecological networks of interacting species. Here, we provide an overview of the most important concepts in BEF and ecological network research and exemplify their applicability to natural ecosystems with examples from pollination and seed-dispersal studies. In a synthesis, we connect the structural approaches of network analysis with the trait-based approaches of BEF research and propose a conceptual trait-based model for understanding BEF relationships of plant-animal interactions in natural ecosystems. The model describes the sequential processes that determine the BEF relationship, i.e. the responses of species to environmental filters, the matching of species in ecological networks and the functionality of species in terms of their quantitative and qualitative contributions to plant demography and ecosystem functioning. We illustrate this conceptual integration with examples from mutualistic interactions and highlight its value for predicting the consequences of biodiversity loss for multispecies interactions and ecosystem functions. We foresee that a better integration between BEF and network research will improve our mechanistic understanding of how biodiversity relates to the functioning of natural ecosystems. Our conceptual model is a step towards this integration between structural and functional biodiversity research. |
Author | Schleuning, Matthias Fründ, Jochen García, Daniel |
Author_xml | – sequence: 1 givenname: Matthias surname: Schleuning fullname: Schleuning, Matthias email: matthias.schleuning@senckenberg.de organization: Biodiversity and Climate Research Centre (BiK-F) and Senckenberg Gesellschaft für Naturforschung, Senckenberganlage 25, Frankfurt (Main), DE-60325, Germany – sequence: 2 givenname: Jochen surname: Fründ fullname: Fründ, Jochen organization: Dept of Integrative Biology, Univ. of Guelph, ON N1G2W1, Canada – sequence: 3 givenname: Daniel surname: García fullname: García, Daniel organization: Depto Biología de Organismos y Sistemas and Unidad Mixta de Investigación en Biodiversidad (CSIC-UO-PA), Univ. of Oviedo, Valentín Andrés Álvarez s/n, Oviedo (Asturias), ES-33071, Spain |
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Copyright | 2015 Nordic Society Oikos 2014 The Authors Ecography © 2015 Nordic Society Oikos |
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Banaše 2010; 11 2007; 104 2014b; 23 2013; 3 2012; 121 2015; 38 2013; 27 2010; 13 2010; 19 2013; 24 2010; 468 1989; 80 2002; 99 2010; 143 2010; 188 2009; 276 2003; 270 2011; 12 2008; 6 1985; 66 2013; 8 2008; 141 2007; 38 1996; 77 2009; 12 2001; 294 1989; 34 2013; 14 2010; 119 2002; 83 2003; 6 2013; 94 2010; 277 2014b; 17 2005; 75 2014a; 23 2007; 5 1982 1999; 96 2013; 110 2012; 27 2014; 95 2008; 275 2004; 139 2012; 22 2011; 167 2007; 445 2012; 81 2004; 85 2009; 24 2004; 226 1987; 50 2002; 5 2006; 9 1987; 129 2010; 365 2013; 101 2008; 14 2000; 70 2006; 6 2006; 4 2011; 37 2013; 340 2007; 10 2014a; 37 2010; 85 2009; 78 2012; 151 2012; 93 2013; 36 2007; 116 2005; 8 2011; 92 2004; 271 1981; 13 2008; 89 2009; 7 2014 2012; 279 2003; 100 2009; 103 1966 e_1_2_7_3_1 e_1_2_7_19_1 e_1_2_7_60_1 e_1_2_7_83_1 e_1_2_7_15_1 e_1_2_7_41_1 e_1_2_7_64_1 e_1_2_7_87_1 e_1_2_7_11_1 e_1_2_7_45_1 e_1_2_7_68_1 e_1_2_7_26_1 e_1_2_7_49_1 Bascompte J. 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SubjectTerms | animals Biodiversity demography Ecosystems Plant reproduction pollination prediction Review & synthesis seed dispersal species diversity trophic relationships |
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Title | Predicting ecosystem functions from biodiversity and mutualistic networks: an extension of trait-based concepts to plant-animal interactions |
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