Large-sized rare tree species contribute disproportionately to functional diversity in resource acquisition in African tropical forest.

aboveground carbon storage abundance functional redundancy functional specialization functional traits rareness tree size

Journal

Ecology and evolution
ISSN: 2045-7758
Titre abrégé: Ecol Evol
Pays: England
ID NLM: 101566408

Informations de publication

Date de publication:
Apr 2019
Historique:
received: 06 07 2018
revised: 29 10 2018
accepted: 05 11 2018
entrez: 30 4 2019
pubmed: 30 4 2019
medline: 30 4 2019
Statut: epublish

Résumé

Increasing evidence is available for a positive effect of biodiversity on ecosystem productivity and standing biomass, also in highly diverse systems as tropical forests. Biodiversity conservation could therefore be a critical aspect of climate mitigation policies. There is, however, limited understanding of the role of individual species for this relationship, which could aid in focusing conservation efforts and forest management planning. This study characterizes the functional specialization and redundancy for 95% of all tree species (basal area weighted percentage) in a diverse tropical forest in the central Congo Basin and relates this to species' abundance, contribution to aboveground carbon, and maximum size. Functional characterization is based on a set of traits related to resource acquisition (wood density, specific leaf area, leaf carbon, nitrogen and phosphorus content, and leaf stable carbon isotope composition). We show that within both mixed and monodominant tropical forest ecosystems, the highest functional specialization and lowest functional redundancy are solely found in rare tree species and significantly more in rare species holding large-sized individuals. Rare species cover the entire range of low and high functional redundancy, contributing both unique and redundant functions. Loss of species supporting functional redundancy could be buffered by other species in the community, including more abundant species. This is not the case for species supporting high functional specialization and low functional redundancy, which would need specific conservation attention. In terms of tropical forest management planning, we argue that specific conservation of large-sized trees is imperative for long-term maintenance of ecosystem functioning.

Identifiants

pubmed: 31031910
doi: 10.1002/ece3.4836
pii: ECE34836
pmc: PMC6476792
doi:

Types de publication

Journal Article

Langues

eng

Pagination

4349-4361

Déclaration de conflit d'intérêts

None declared.

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Auteurs

Elizabeth Kearsley (E)

Department of Environment Ghent University Gent Belgium.

Koen Hufkens (K)

INRA UMR ISPA Villenave d'Ornon France.

Hans Verbeeck (H)

Department of Environment Ghent University Gent Belgium.

Marijn Bauters (M)

Department of Environment Ghent University Gent Belgium.
Department of Green Chemistry and Technology Ghent University Gent Belgium.

Hans Beeckman (H)

Service of Wood Biology Royal Museum for Central Africa Tervuren Belgium.

Pascal Boeckx (P)

Department of Green Chemistry and Technology Ghent University Gent Belgium.

Dries Huygens (D)

Department of Green Chemistry and Technology Ghent University Gent Belgium.
Institute of Agricultural Engineering and Soil Science Universidad Austral de Chile Valdivia Chile.

Classifications MeSH