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Fungal-bacterial diversity and microbiome complexity predict ecosystem functioning

Nature Communications · 2019 · Vol. 10(1) · pp. 4841–4841
Cameron WaggKlaus SchlaeppiSamiran BanerjeeEiko E. KuramaeMarcel G. A. van der Heijden

Abstract

The soil microbiome is highly diverse and comprises up to one quarter of Earth's diversity. Yet, how such a diverse and functionally complex microbiome influences ecosystem functioning remains unclear. Here we manipulated the soil microbiome in experimental grassland ecosystems and observed that microbiome diversity and microbial network complexity positively influenced multiple ecosystem functions related to nutrient cycling (e.g. multifunctionality). Grassland microcosms with poorly developed microbial networks and reduced microbial richness had the lowest multifunctionality due to fewer taxa present that support the same function (redundancy) and lower diversity of taxa that support different functions (reduced functional uniqueness). Moreover, different microbial taxa explained different ecosystem functions pointing to the significance of functional diversity in microbial communities. These findings indicate the importance of microbial interactions within and among fungal and bacterial communities for enhancing ecosystem performance and demonstrate that the extinction of complex ecological associations belowground can impair ecosystem functioning.

Microbial Community Ecology and PhysiologyMycorrhizal Fungi and Plant InteractionsGut microbiota and healthEcosystemMicrobiomeMicrocosmEcologyBiologyNutrient cycleSpecies richnessGrasslandBioinformatics

MeSH terms

BacteriaEcologyFungiSoil MicrobiologyEcosystemBiodiversityMicrobial ConsortiaMicrobiotaGrassland

Funding

  • National Science Foundation
  • Nederlands Instituut voor Ecologie
  • Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung
  • Koninklijke Nederlandse Akademie van Wetenschappen
  • Agroscope
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