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A gradient of nutrient enrichment reveals nonlinear impacts of fertilization on Arctic plant diversity and ecosystem function

Rapid environmental change at high latitudes is predicted to greatly alter the diversity, structure, and function of plant communities, resulting in changes in the pools and fluxes of nutrients. In Arctic tundra, increased nitrogen (N) and phosphorus (P) availability accompanying warming is known to...

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Autores principales: Prager, Case M., Naeem, Shahid, Boelman, Natalie T., Eitel, Jan U. H., Greaves, Heather E., Heskel, Mary A., Magney, Troy S., Menge, Duncan N.L., Vierling, Lee A., Griffin, Kevin L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5383475/
https://www.ncbi.nlm.nih.gov/pubmed/28405308
http://dx.doi.org/10.1002/ece3.2863
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author Prager, Case M.
Naeem, Shahid
Boelman, Natalie T.
Eitel, Jan U. H.
Greaves, Heather E.
Heskel, Mary A.
Magney, Troy S.
Menge, Duncan N.L.
Vierling, Lee A.
Griffin, Kevin L.
author_facet Prager, Case M.
Naeem, Shahid
Boelman, Natalie T.
Eitel, Jan U. H.
Greaves, Heather E.
Heskel, Mary A.
Magney, Troy S.
Menge, Duncan N.L.
Vierling, Lee A.
Griffin, Kevin L.
author_sort Prager, Case M.
collection PubMed
description Rapid environmental change at high latitudes is predicted to greatly alter the diversity, structure, and function of plant communities, resulting in changes in the pools and fluxes of nutrients. In Arctic tundra, increased nitrogen (N) and phosphorus (P) availability accompanying warming is known to impact plant diversity and ecosystem function; however, to date, most studies examining Arctic nutrient enrichment focus on the impact of relatively large (>25x estimated naturally occurring N enrichment) doses of nutrients on plant community composition and net primary productivity. To understand the impacts of Arctic nutrient enrichment, we examined plant community composition and the capacity for ecosystem function (net ecosystem exchange, ecosystem respiration, and gross primary production) across a gradient of experimental N and P addition expected to more closely approximate warming‐induced fertilization. In addition, we compared our measured ecosystem CO (2) flux data to a widely used Arctic ecosystem exchange model to investigate the ability to predict the capacity for CO (2) exchange with nutrient addition. We observed declines in abundance‐weighted plant diversity at low levels of nutrient enrichment, but species richness and the capacity for ecosystem carbon uptake did not change until the highest level of fertilization. When we compared our measured data to the model, we found that the model explained roughly 30%–50% of the variance in the observed data, depending on the flux variable, and the relationship weakened at high levels of enrichment. Our results suggest that while a relatively small amount of nutrient enrichment impacts plant diversity, only relatively large levels of fertilization—over an order of magnitude or more than warming‐induced rates—significantly alter the capacity for tundra CO (2) exchange. Overall, our findings highlight the value of measuring and modeling the impacts of a nutrient enrichment gradient, as warming‐related nutrient availability may impact ecosystems differently than single‐level fertilization experiments.
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spelling pubmed-53834752017-04-12 A gradient of nutrient enrichment reveals nonlinear impacts of fertilization on Arctic plant diversity and ecosystem function Prager, Case M. Naeem, Shahid Boelman, Natalie T. Eitel, Jan U. H. Greaves, Heather E. Heskel, Mary A. Magney, Troy S. Menge, Duncan N.L. Vierling, Lee A. Griffin, Kevin L. Ecol Evol Original Research Rapid environmental change at high latitudes is predicted to greatly alter the diversity, structure, and function of plant communities, resulting in changes in the pools and fluxes of nutrients. In Arctic tundra, increased nitrogen (N) and phosphorus (P) availability accompanying warming is known to impact plant diversity and ecosystem function; however, to date, most studies examining Arctic nutrient enrichment focus on the impact of relatively large (>25x estimated naturally occurring N enrichment) doses of nutrients on plant community composition and net primary productivity. To understand the impacts of Arctic nutrient enrichment, we examined plant community composition and the capacity for ecosystem function (net ecosystem exchange, ecosystem respiration, and gross primary production) across a gradient of experimental N and P addition expected to more closely approximate warming‐induced fertilization. In addition, we compared our measured ecosystem CO (2) flux data to a widely used Arctic ecosystem exchange model to investigate the ability to predict the capacity for CO (2) exchange with nutrient addition. We observed declines in abundance‐weighted plant diversity at low levels of nutrient enrichment, but species richness and the capacity for ecosystem carbon uptake did not change until the highest level of fertilization. When we compared our measured data to the model, we found that the model explained roughly 30%–50% of the variance in the observed data, depending on the flux variable, and the relationship weakened at high levels of enrichment. Our results suggest that while a relatively small amount of nutrient enrichment impacts plant diversity, only relatively large levels of fertilization—over an order of magnitude or more than warming‐induced rates—significantly alter the capacity for tundra CO (2) exchange. Overall, our findings highlight the value of measuring and modeling the impacts of a nutrient enrichment gradient, as warming‐related nutrient availability may impact ecosystems differently than single‐level fertilization experiments. John Wiley and Sons Inc. 2017-03-22 /pmc/articles/PMC5383475/ /pubmed/28405308 http://dx.doi.org/10.1002/ece3.2863 Text en © 2017 The Authors. Ecology and Evolution published by John Wiley & Sons Ltd. This is an open access article under the terms of the Creative Commons Attribution (http://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Research
Prager, Case M.
Naeem, Shahid
Boelman, Natalie T.
Eitel, Jan U. H.
Greaves, Heather E.
Heskel, Mary A.
Magney, Troy S.
Menge, Duncan N.L.
Vierling, Lee A.
Griffin, Kevin L.
A gradient of nutrient enrichment reveals nonlinear impacts of fertilization on Arctic plant diversity and ecosystem function
title A gradient of nutrient enrichment reveals nonlinear impacts of fertilization on Arctic plant diversity and ecosystem function
title_full A gradient of nutrient enrichment reveals nonlinear impacts of fertilization on Arctic plant diversity and ecosystem function
title_fullStr A gradient of nutrient enrichment reveals nonlinear impacts of fertilization on Arctic plant diversity and ecosystem function
title_full_unstemmed A gradient of nutrient enrichment reveals nonlinear impacts of fertilization on Arctic plant diversity and ecosystem function
title_short A gradient of nutrient enrichment reveals nonlinear impacts of fertilization on Arctic plant diversity and ecosystem function
title_sort gradient of nutrient enrichment reveals nonlinear impacts of fertilization on arctic plant diversity and ecosystem function
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5383475/
https://www.ncbi.nlm.nih.gov/pubmed/28405308
http://dx.doi.org/10.1002/ece3.2863
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