Metatranscriptomics captures dynamic shifts in mycorrhizal coordination in boreal forests

Author:

Law Simon R.1ORCID,Serrano Alonso R.1ORCID,Daguerre Yohann1ORCID,Sundh John2ORCID,Schneider Andreas N.3ORCID,Stangl Zsofia R.14,Castro David1ORCID,Grabherr Manfred5ORCID,Näsholm Torgny4,Street Nathaniel R.3ORCID,Hurry Vaughan1ORCID

Affiliation:

1. Umeå Plant Science Centre, Department of Forest Genetics and Plant Physiology, Swedish University of Agricultural Sciences, 901 83, Umeå, Sweden

2. Department of Biochemistry and Biophysics, National Bioinformatics Infrastructure Sweden, Science for Life Laboratory, Stockholm University, SE-171 21 Solna, Sweden

3. Umeå Plant Science Centre, Department of Plant Physiology, Umeå University, 901 87, Umeå, Sweden

4. Department of Forest Ecology and Management, Swedish University of Agricultural Sciences, 901 83, Umeå, Sweden

5. Department of Medical Biochemistry and Microbiology, National Bioinformatics Infrastructure Sweden, Science for Life Laboratory, Uppsala University, SE-751 23 Uppsala, Sweden

Abstract

Carbon storage and cycling in boreal forests—the largest terrestrial carbon store—is moderated by complex interactions between trees and soil microorganisms. However, existing methods limit our ability to predict how changes in environmental conditions will alter these associations and the essential ecosystem services they provide. To address this, we developed a metatranscriptomic approach to analyze the impact of nutrient enrichment on Norway spruce fine roots and the community structure, function, and tree–microbe coordination of over 350 root-associated fungal species. In response to altered nutrient status, host trees redefined their relationship with the fungal community by reducing sugar efflux carriers and enhancing defense processes. This resulted in a profound restructuring of the fungal community and a collapse in functional coordination between the tree and the dominant Basidiomycete species, and an increase in functional coordination with versatile Ascomycete species. As such, there was a functional shift in community dominance from Basidiomycetes species, with important roles in enzymatically cycling recalcitrant carbon, to Ascomycete species that have melanized cell walls that are highly resistant to degradation. These changes were accompanied by prominent shifts in transcriptional coordination between over 60 predicted fungal effectors, with more than 5,000 Norway spruce transcripts, providing mechanistic insight into the complex molecular dialogue coordinating host trees and their fungal partners. The host–microbe dynamics captured by this study functionally inform how these complex and sensitive biological relationships may mediate the carbon storage potential of boreal soils under changing nutrient conditions.

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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