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Tree diversity effects on soil microbial biomass and respiration are context dependent across forest diversity experiments

  • Simone Cesarz
  • , Dylan Craven
  • , Harald Auge
  • , Helge Bruelheide
  • , Bastien Castagneyrol
  • , Jessica Gutknecht
  • , Andrew Hector
  • , Hervé Jactel
  • , J. Koricheva
  • , C. Messier
  • , B. Muys
  • , Michael J. O'Brien
  • , A. Paquette
  • , Q. Ponette
  • , Catherine Potvin
  • , P. Reich
  • , M. Scherer-Lorenzen
  • , Andy Smith
  • , K. Verheyen
  • , Nico Eisenhauer
  • German Centre for Integrative Biodiversity Research (iDiv) Halle-Jena-Leipzig
  • Universidad Mayor, Santiago, Chile
  • INRAE (The French National Institute for Agriculture, Food and Environment)
  • Université du Québec à Montréal
  • Royal Holloway University of London
  • Universite du Quebec en Outaouais
  • Division Forest, Nature & Landscape KU Leuven,
  • Área de Biodiversidad y Conservación, Universidad Rey Juan Carlos
  • Université Catholique de Louvain
  • McGill University, Montreal, Canada
  • University of Minnesota, USA
  • University of Freiburg
  • Department of Experimental Clinical and Health Psychology, Ghent University, Ghent, Belgium

Allbwn ymchwil: Cyfraniad at gyfnodolynErthygladolygiad gan gymheiriaid

81 Wedi eu Llwytho i Lawr (Pure)

Crynodeb

Soil microorganisms are essential for the functioning of terrestrial ecosystems. Although soil microbial communities and functions are linked to tree species composition and diversity, there has been no comprehensive study of how general or context-dependent these relationships are. Here, we examine tree diversity–soil microbial biomass and respiration relationships across environmental gradients using a global network of tree diversity experiments.
Soil samples collected from eleven tree diversity experiments were used to measure microbial respiration, biomass, and respiratory quotient using the substrate-induced respiration method. All samples were measured using the same analytical device, method, and procedure to reduce measurement bias. We used linear mixed-effects models and principal component analysis (PCA) to examine the effects of tree diversity (taxonomic and phylogenetic), environmental conditions, and interactions on soil microbial properties. Abiotic drivers, mainly soil water content, but also soil carbon and soil pH, significantly increased soil microbial biomass and respiration. High soil water content reduced the importance of other abiotic drivers. Tree diversity had no effect on the soil microbial properties, but interactions with phylogenetic diversity indicated that diversity effects are context-dependent and stronger in drier soils. Similar results were found for soil carbon and soil pH. Our results point to the importance of abiotic variables, and especially soil water content, for maintaining high levels of soil microbial functions and modulating the effects of other environmental drivers. Planting tree species with diverse water-use strategies and structurally complex canopies and high leaf area may be crucial for maintaining high soil microbial biomass and respiration. Since higher phylogenetic distance alleviated unfavorable soil water conditions, reforestation efforts accounting for traits improving soil water content or choosing more phylogenetically distant species may assist in increasing soil microbial functions.
Iaith wreiddiolSaesneg
Tudalennau (o-i)872-885
CyfnodolynGlobal Ecology and Biogeography
Cyfrol31
Rhif cyhoeddi5
Dyddiad ar-lein cynnar21 Chwef 2022
Dynodwyr Gwrthrych Digidol (DOIs)
StatwsCyhoeddwyd - Mai 2022

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