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Microbial biomass – not diversity – drives soil carbon and nitrogen mineralization in Spanish holm oak ecosystems

Publiceringsår

2025

Upphovspersoner

Bruni, Elisa; Yuste, Jorge Curiel; Menichetti, Lorenzo; Flores, Omar; Guasconi, Daniela; Guenet, Bertrand; Hereș, Ana-Maria; Lehtonen, Aleksi; Mäkipää, Raisa; Pallandt, Marleen; Pérez-Izquierdo, Leticia; Richy, Etienne; Santonja, Mathieu; Tupek, Boris; Manzoni, Stefano
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Abstrakt

Soil microbial communities drive essential ecosystem functions, catalyzing biogeochemical cycles and contributing to climate regulation. However, due to the complexity of microbial communities, the magnitude and direction of microbial biomass and diversity contributions to carbon (C) and nutrient cycling remain unclear. For this reason, most models predicting soil organic matter (SOM) dynamics at the ecosystem level do not explicitly describe the role of microorganisms as mediators of SOM decomposition. Incorporating microbial properties, and especially diversity, into ecosystem models remains an open question, requiring careful consideration of the tradeoff between model complexity and performance. This work addresses this knowledge gap by implementing a simple C and nitrogen (N) cycling model to predict heterotrophic respiration and net N mineralization rates in soils sampled under different land-uses and tree health conditions across Spain. To understand the role of microorganisms on ecosystem functioning, we progressively incorporated microbial biomass and diversity (i.e., alpha diversity of taxa and of fungal functional groups), and selected the model that optimized prediction accuracy, while minimizing complexity. We found that microbial biomass had a strong and positive effect on both C and N mineralization rates, with heterotrophic respiration being nearly linearly controlled by biomass. In contrast, microbial diversity had minimal but negative effects on mineralization processes, with land-use differences explaining part of the variability in these effects. Our study confirms microbial biomass as a key driver of C and N mineralization rates, while highlights that microbial diversity based on taxonomic identification inadequately explains microbial effects on these ecosystem functions.
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Organisationer och upphovspersoner

Naturresursinstitutet

Lehtonen Aleksi Orcid -palvelun logo

Mäkipää Raisa Orcid -palvelun logo

Tupek Boris

Publikationstyp

Publikationsform

Artikel

Moderpublikationens typ

Tidning

Artikelstyp

En originalartikel

Målgrupp

Vetenskaplig

Kollegialt utvärderad

Kollegialt utvärderad

UKM:s publikationstyp

A1 Originalartikel i en vetenskaplig tidskrift

Publikationskanalens uppgifter

Journal/Serie

Geoderma

Förläggare

Elsevier

Volym

460

Artikelnummer

117408

Sidor

15 p.

Publikationsforum

56550

Publikationsforumsnivå

2

Öppen tillgång

Öppen tillgänglighet i förläggarens tjänst

Ja

Öppen tillgång till publikationskanalen

Helt öppen publikationskanal

Licens för förläggarens version

CC BY

Parallellsparad

Ja

Övriga uppgifter

Vetenskapsområden

Ekologi, evolutionsbiologi

Nyckelord

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Identifierade tema

[object Object]

Publiceringsland

Nederländerna

Förlagets internationalitet

Internationell

Språk

engelska

Internationell sampublikation

Ja

Sampublikation med ett företag

Nej

DOI

10.1016/j.geoderma.2025.117408

Publikationen ingår i undervisnings- och kulturministeriets datainsamling

Ja