Reduction of forest soil biota impacts tree performance but not greenhouse gas fluxes
Georgopoulos, K., Bezemer, T. M., Christiansen, J. R., Larsen, K. S., Moerman, G., Vermeulen, R., Anslan, S., Tedersoo, L., & Gomes, S. I. (2025). Reduction of forest soil biota impacts tree performance but not greenhouse gas fluxes. Soil Biology and Biochemistry, 200, Article 109643. https://doi.org/10.1016/j.soilbio.2024.109643
Julkaistu sarjassa
Soil Biology and BiochemistryTekijät
Päivämäärä
2025Tekijänoikeudet
© 2024 the Authors
Soil communities are essential to ecosystem functioning, yet the impact of reducing soil biota on root-associated communities, tree performance, and greenhouse gas (GHG) fluxes remains unclear. This study examines how different size fractions of soil biota from young and mature forests influence Alnus glutinosa performance, root-associated community composition, and GHG fluxes. We conducted a mesocosm experiment using soil community fractions (wet sieving through 250, 20, 11, and 3 μm) from young and mature forest developmental stages as inocula. The results indicate that the root-associated community composition was shaped by forest developmental stage but not by the size of the community fractions. Inoculation with the largest size fraction from mature forests negatively affected tree growth, likely due to increased competition between the plants and soil biota. In addition, GHG fluxes were not significantly impacted by either size fraction or forest developmental stage despite the different community composition supplied. Overall, our research indicates that A. glutinosa strongly selects the composition of the root-associated community, despite differences in the initial inoculum, and this composition varies depending on the stage of ecosystem development, impacting the performance of the trees but not GHG fluxes.
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Julkaisija
ElsevierISSN Hae Julkaisufoorumista
0038-0717Asiasanat
Julkaisu tutkimustietojärjestelmässä
https://converis.jyu.fi/converis/portal/detail/Publication/243811518
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Lisätietoja rahoituksesta
This work is part of the Silva Nova project funded by the Novo Nordisk Foundation, Hellerup, Denmark (NNF20OC59948).Lisenssi
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