Is microbial community composition in boreal forest soils determined by pH, C-to-N ratio, the trees, or all three?
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- 11 October 2006
- journal article
- Published by Springer Nature in Oecologia
- Vol. 150 (4) , 590-601
- https://doi.org/10.1007/s00442-006-0562-5
Abstract
In Fennoscandian boreal forests, soil pH and N supply generally increase downhill as a result of water transport of base cations and N, respectively. Simultaneously, forest productivity increases, the understory changes from ericaceous dwarf shrubs to tall herbs; in the soil, fungi decrease whereas bacteria increase. The composition of the soil microbial community is mainly thought to be controlled by the pH and C-to-N ratio of the substrate. However, the latter also determines the N supply to plants, the plant community composition, and should also affect plant allocation of C below ground to roots and a major functional group of microbes, mycorrhizal fungi. We used phospholipid fatty acids (PLFAs) to analyze the potential importance of mycorrhizal fungi by comparing the microbial community composition in a tree-girdling experiment, where tree belowground C allocation was terminated, and in a long-term (34 years) N loading experiment, with the shifts across a natural pH and N supply gradient. Both tree girdling and N loading caused a decline of ca. 45% of the fungal biomarker PLFA 18:2ω6,9, suggesting a common mechanism, i.e., that N loading caused a decrease in the C supply to ectomycorrhizal fungi just as tree girdling did. The total abundance of bacterial PLFAs did not respond to tree girdling or to N loading, in which cases the pH (of the mor layer) did not change appreciably, but bacterial PLFAs increased considerably when pH increased across the natural gradient. Fungal biomass was high only in acid soil (pH < 4.1) with a high C-to-N ratio (>38). According to a principal component analysis, the soil C-to-N ratio was as good as predictor of microbial community structure as pH. Our study thus indicated the soil C-to-N ratio, and the response of trees to this ratio, as important factors that together with soil pH influence soil microbial community composition.Keywords
This publication has 41 references indexed in Scilit:
- Contrasting patterns of soil N-cycling in model ecosystems of Fennoscandian boreal forestsOecologia, 2005
- The influence of external nitrogen on carbon allocation to Glomus intraradices in monoxenic arbuscular mycorrhizaNew Phytologist, 2005
- Growth and biomass of mycorrhizal mycelia in coniferous forests along short natural nutrient gradientsNew Phytologist, 2004
- Contrasting effects of nitrogen availability on plant carbon supply to mycorrhizal fungi and saprotrophs – a hypothesis based on field observations in boreal forestNew Phytologist, 2003
- Soil nitrogen form and plant nitrogen uptake along a boreal forest productivity gradientOecologia, 2001
- Responses of a Nitrogen‐Saturated Forest to a Sharp Decrease in Nitrogen InputJournal of Environmental Quality, 1999
- Novel calibration with correction for drift and non-linear response for continuous flow isotope ratio mass spectrometry applied to the determination of δ15N, total nitrogen, δ13C and total carbon in biological material†The Analyst, 1999
- Interactive effects of pH and substrate quality on the fungal-to-bacterial ratio and qCO2 of microbial communities in forest soilsSoil Biology and Biochemistry, 1998
- Microbial biomass measured as total lipid phosphate in soils of different organic contentJournal of Microbiological Methods, 1991
- A RAPID METHOD OF TOTAL LIPID EXTRACTION AND PURIFICATIONCanadian Journal of Biochemistry and Physiology, 1959