The mycorrhizal tragedy of the commons
- PMID: 33749095
- DOI: 10.1111/ele.13737
The mycorrhizal tragedy of the commons
Abstract
Trees receive growth-limiting nitrogen from their ectomycorrhizal symbionts, but supplying the fungi with carbon can also cause nitrogen immobilization, which hampers tree growth. We present results from field and greenhouse experiments combined with mathematical modelling, showing that these are not conflicting outcomes. Mycorrhizal networks connect multiple trees, and we modulated C provision by strangling subsets of Pinus sylvestris trees, assuming that carbon supply to fungi was reduced proportionally to the strangled fraction. We conclude that trees gain additional nitrogen at the expense of their neighbours by supplying more carbon to the fungi. But this additional carbon supply aggravates nitrogen limitation via immobilization of the shared fungal biomass. We illustrate the evolutionary underpinnings of this situation by drawing on the analogous tragedy of the commons, where the shared mycorrhizal network is the commons, and explain how rising atmospheric CO2 may lead to greater nitrogen immobilization in the future.
Keywords: Carbon; forest; immobilization; mycorrhiza; nitrogen; trade.
© 2021 The Authors. Ecology Letters published by John Wiley & Sons Ltd.
References
REFERENCES
-
- Ågren, G.I., Hyvönen, R. & Baskaran, P. (2019). Ectomycorrhiza, friend or foe? Ecosystems, 22, 1561-1572.
-
- Alberton, O., Kuyper, T.W. & Gorissen, A. (2005). Taking mycocentrism seriously: mycorrhizal fungal and plant responses to elevated CO2. New Phytol., 167, 859-868.
-
- Alberton, O., Kuyper, T.W. & Gorissen, A. (2007). Competition for nitrogen between Pinus sylvestris and ectomycorrhizal fungi generates potential for negative feedback under elevated CO2. Plant Soil, 296, 159-172.
-
- Alberton, O. & Kuyper, T.W. (2009). Ectomycorrhizal fungi associated with Pinus sylvestris seedlings respond differently to increased carbon and nitrogen availability: implications for ecosystem responses to global change. Glob. Change Biol., 15, 166-175.
-
- Beiler, K.J., Durall, D.M., Simard, S.W., Maxwell, S.A. & Kretzer, A.M. (2010). Architecture of the wood-wide web: Rhizopogon spp. genets link multiple Douglas-fir cohorts. New Phytol., 185, 543-553.
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