Herbarium specimens reveal that mycorrhizal type does not mediate declining temperate tree nitrogen status over a century of environmental change

Author:

Michaud Talia J.1ORCID,Cline Lauren C.2ORCID,Hobbie Erik A.3ORCID,Gutknecht Jessica L. M.4ORCID,Kennedy Peter G.1ORCID

Affiliation:

1. Department of Plant and Microbial Biology University of Minnesota St Paul MN 55108 USA

2. Bayer Crop Sciences St Louis MO 63141 USA

3. Earth Systems Research Center University of New Hampshire Durham NH 03824 USA

4. Department of Soil, Water, and Climate University of Minnesota St Paul MN 55108 USA

Abstract

Summary Rising atmospheric carbon dioxide concentrations (CO2) and atmospheric nitrogen (N) deposition have contrasting effects on ectomycorrhizal (EM) and arbuscular mycorrhizal (AM) symbioses, potentially mediating forest responses to environmental change. In this study, we evaluated the cumulative effects of historical environmental change on N concentrations and δ15N values in AM plants, EM plants, EM fungi, and saprotrophic fungi using herbarium specimens collected in Minnesota, USA from 1871 to 2016. To better understand mycorrhizal mediation of foliar δ15N, we also analyzed a subset of previously published foliar δ15N values from across the United States to parse the effects of N deposition and CO2 rise. Over the last century in Minnesota, N concentrations declined among all groups except saprotrophic fungi. δ15N also declined among all groups of plants and fungi; however, foliar δ15N declined less in EM plants than in AM plants. In the analysis of previously published foliar δ15N values, this slope difference between EM and AM plants was better explained by nitrogen deposition than by CO2 rise. Mycorrhizal type did not explain trajectories of plant N concentrations. Instead, plants and EM fungi exhibited similar declines in N concentrations, consistent with declining forest N status despite moderate levels of N deposition.

Funder

National Science Foundation

Publisher

Wiley

Subject

Plant Science,Physiology

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