Published July 12, 2023 | Version v1

Depth-dependent effects of Ericoid Mycorrhizal shrubs on soil carbon and nitrogen pools are accentuated under Arbuscular Mycorrhizal Trees

Authors/Creators

  • 1. Connecticut Agricultural Experiment Station

Description

Plant mycorrhizal associations influence the accumulation and persistence of soil organic matter and could therefore shape ecosystem biogeochemical responses to global changes that are altering forest composition. For instance, arbuscular mycorrhizal (AM) tree dominance is increasing in temperate forests, and ericoid mycorrhizal (ErM) shrubs can respond positively to canopy disturbances. Yet how shifts in the co-occurrence of trees and shrubs with different mycorrhizal associations will affect soil organic matter pools remains largely unknown. We examine the effects of ErM shrubs on soil carbon and nitrogen stocks and indicators of microbial activity at different depths across gradients of AM versus ectomycorrhizal (EcM) tree dominance in three temperate forest sites. We find that ErM shrubs strongly modulate tree mycorrhizal dominance effects. In surface soils, ErM shrubs increase particulate organic matter accumulation and weaken the positive relationship between soil organic matter stocks and indicators of microbial activity. These effects are strongest under AM trees that lack fungal symbionts that can degrade organic matter. In subsurface soil organic matter pools, by contrast, tree mycorrhizal dominance effects are stronger than those of ErM shrubs. Ectomycorrhizal tree dominance has a negative influence on particulate and mineral-associated soil organic matter pools, and these effects are stronger for nitrogen than for carbon stocks. Our findings suggest that increasing co-occurrence of ErM shrubs and AM trees will enhance particulate organic matter accumulation in surface soils by suppressing microbial activity while having little influence on mineral-associated organic matter in subsurface soils. Our study highlights the importance of considering interactions between co-occurring plant mycorrhizal types, as well as their depth-dependent effects, for projecting changes in soil carbon and nitrogen stocks in response to compositional shifts in temperate forests driven by disturbances and global change.

Notes

This dataset is comprised of two tabs in a single excel file. See the "README.md" file for information pertaining to the variables measured and analyzed. The "Data by soil layer" tab includes all data collected or analyzed at the resolution of the three separate soil depths (i.e. the organic, surface mineral, and subsurface mineral soil layers). The "Data by subplot" tab includes all data collected or analyzed at the resolution of the subplot, including the cumulative carbon and nitrogen stocks that are the sum of the three individual soil layers. 

All equivalent soil mass (esm1) stocks were calculated using the the SimpleESM R script (Ferchaud et al. 2023) available at https://github.com/fabienferchaud/SimpleESM and described in the following reference: 

Fabien Ferchaud, Florent Chlebowski, Bruno Mary. SimpleESM: R script to calculate soil organic carbon and nitrogen stocks at Equivalent Soil Mass. Institut National de Recherche pour l'Agrgriculture, l'Alimentation et l'Environnement (INRAE). 2023. ffhal-04013158f. https://hal.science/hal-04013158/document

Funding provided by: Lewis B. Cullman Fellowship program*
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Funding provided by: Botany in Action*
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Funding provided by: Kohlberg-Donohoe Fellowship*
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Funding provided by: Institute for Biospheric Studies, Yale University
Crossref Funder Registry ID: http://dx.doi.org/10.13039/100011492
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