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  5. Forest tree growth is linked to mycorrhizal fungal composition and function across Europe.

Forest tree growth is linked to mycorrhizal fungal composition and function across Europe.

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Resource type
Journal article
Creator (person)
Anthony, Mark A.
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Crowther, Thomas W.
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van der Linde, Sietse
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Suz, Laura M.
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Bidartondo, Martin I.
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Cox, Filipa
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Schaub, Marcus
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Rautio, Pasi
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Ferretti, Marco
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Vesterdal, Lars
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De Vos, Bruno
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Dettwiler, Mike
Eickenscheidt, Nadine
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Schmitz, Andreas
Meesenburg, Henning
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Andreae, Henning
Jacob, Frank
Dietrich, Hans-Peter
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Waldner, Peter
Gessler, Arthur
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Frey, Beat
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Schramm, Oliver
van den Bulk, Pim
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Hensen, Arjan
Averill, Colin
Date published
January 10, 2022
Abstract
Most trees form symbioses with ectomycorrhizal fungi (EMF) which influence access to growth-limiting soil resources. Mesocosm experiments repeatedly show that EMF species differentially affect plant development, yet whether these effects ripple up to influence the growth of entire forests remains unknown. Here we tested the effects of EMF composition and functional genes relative to variation in well-known drivers of tree growth by combining paired molecular EMF surveys with high-resolution forest inventory data across 15 European countries. We show that EMF composition was linked to a three-fold difference in tree growth rate even when controlling for the primary abiotic drivers of tree growth. Fast tree growth was associated with EMF communities harboring high inorganic but low organic nitrogen acquisition gene proportions and EMF which form contact versus medium-distance fringe exploration types. These findings suggest that EMF composition is a strong bio-indicator of underlying drivers of tree growth and/or that variation of forest EMF communities causes differences in tree growth. While it may be too early to assign causality or directionality, our study is one of the first to link fine-scale variation within a key component of the forest microbiome to ecosystem functioning at a continental scale.
Funder
Funder nameAwards
NERC Environmental Bioinformatics Centre
NE/ K006339/1
Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung
PZ00P3_179900
Bundesministerium für Wirtschaftliche Zusammenarbeit und Entwicklung, Germany
DOB Ecology grant
FP7 People: Marie-Curie Actions
Marie Curie postdoctoral fellowship
Journal title
The ISME Journal
Publisher
Springer Science and Business Media LLC
Place of publication
Berlin/Heidelberg, Germany
ISSN
1751-7362
eISSN
1751-7370
Date accepted
November 17, 2021
Official URL
https://www.nature.com/articles/s41396-021-01159-7
Related URL
https://doi.org/10.1038/s41396-021-01159-7
Rights statement
In Copyright
Licence
https://creativecommons.org/licenses/by/4.0/
DOI
10.1038/s41396-021-01159-7
Keywords
Mycorrhizal fungi
Biogeochemistry
Forest ecology
Fungal ecology
Europe
Microbial ecology
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