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Common garden comparisons confirm inherited differences in sensitivity to climate change between forest tree species

The natural distribution, habitat, growth and evolutionary history of tree species are strongly dependent on ecological and genetic processes in ecosystems subject to fluctuating climatic conditions, but there have been few experimental comparisons of sensitivity between species. We compared the res...

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Autores principales: Sáenz-Romero, Cuauhtémoc, Kremer, Antoine, Nagy, László, Újvári-Jármay, Éva, Ducousso, Alexis, Kóczán-Horváth, Anikó, Hansen, Jon Kehlet, Mátyás, Csaba
Formato: Online Artículo Texto
Lenguaje:English
Publicado: PeerJ Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6338101/
https://www.ncbi.nlm.nih.gov/pubmed/30671299
http://dx.doi.org/10.7717/peerj.6213
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author Sáenz-Romero, Cuauhtémoc
Kremer, Antoine
Nagy, László
Újvári-Jármay, Éva
Ducousso, Alexis
Kóczán-Horváth, Anikó
Hansen, Jon Kehlet
Mátyás, Csaba
author_facet Sáenz-Romero, Cuauhtémoc
Kremer, Antoine
Nagy, László
Újvári-Jármay, Éva
Ducousso, Alexis
Kóczán-Horváth, Anikó
Hansen, Jon Kehlet
Mátyás, Csaba
author_sort Sáenz-Romero, Cuauhtémoc
collection PubMed
description The natural distribution, habitat, growth and evolutionary history of tree species are strongly dependent on ecological and genetic processes in ecosystems subject to fluctuating climatic conditions, but there have been few experimental comparisons of sensitivity between species. We compared the responses of two broadleaved tree species (Fagus sylvatica and Quercus petraea) and two conifer tree species (Pinus sylvestris and Picea abies) to climatic transfers by fitting models containing the same climatic variables. We used published data from European provenance test networks to model the responses of individual populations nested within species. A mixed model approach was applied to develop a response function for tree height over climatic transfer distance, taking into account the climatic conditions at both the seed source and the test location. The two broadleaved species had flat climatic response curves, indicating high levels of plasticity in populations, facilitating adaptation to a broader range of environments, and conferring a high potential for resilience in the face of climatic change. By contrast, the two conifer species had response curves with more pronounced slopes, indicating a lower resilience to climate change. This finding may reflect stronger genetic clines in P. sylvestris and P. abies, which constrain their climate responses to narrower climatic ranges. The response functions had maxima that deviated from the expected maximum productivity in the climate of provenance towards cooler/moister climate conditions, which we interpreted as an adaptation lag. Unilateral, linear regression analyses following transfer to warmer and drier sites confirmed a decline in productivity, predictive of the likely impact of ongoing climate change on forest populations. The responses to mimicked climate change evaluated here are of considerable interest for forestry and ecology, supporting projections of expected performance based on “real-time” field data.
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spelling pubmed-63381012019-01-22 Common garden comparisons confirm inherited differences in sensitivity to climate change between forest tree species Sáenz-Romero, Cuauhtémoc Kremer, Antoine Nagy, László Újvári-Jármay, Éva Ducousso, Alexis Kóczán-Horváth, Anikó Hansen, Jon Kehlet Mátyás, Csaba PeerJ Climate Change Biology The natural distribution, habitat, growth and evolutionary history of tree species are strongly dependent on ecological and genetic processes in ecosystems subject to fluctuating climatic conditions, but there have been few experimental comparisons of sensitivity between species. We compared the responses of two broadleaved tree species (Fagus sylvatica and Quercus petraea) and two conifer tree species (Pinus sylvestris and Picea abies) to climatic transfers by fitting models containing the same climatic variables. We used published data from European provenance test networks to model the responses of individual populations nested within species. A mixed model approach was applied to develop a response function for tree height over climatic transfer distance, taking into account the climatic conditions at both the seed source and the test location. The two broadleaved species had flat climatic response curves, indicating high levels of plasticity in populations, facilitating adaptation to a broader range of environments, and conferring a high potential for resilience in the face of climatic change. By contrast, the two conifer species had response curves with more pronounced slopes, indicating a lower resilience to climate change. This finding may reflect stronger genetic clines in P. sylvestris and P. abies, which constrain their climate responses to narrower climatic ranges. The response functions had maxima that deviated from the expected maximum productivity in the climate of provenance towards cooler/moister climate conditions, which we interpreted as an adaptation lag. Unilateral, linear regression analyses following transfer to warmer and drier sites confirmed a decline in productivity, predictive of the likely impact of ongoing climate change on forest populations. The responses to mimicked climate change evaluated here are of considerable interest for forestry and ecology, supporting projections of expected performance based on “real-time” field data. PeerJ Inc. 2019-01-15 /pmc/articles/PMC6338101/ /pubmed/30671299 http://dx.doi.org/10.7717/peerj.6213 Text en ©2019 Sáenz-Romero et al. http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, reproduction and adaptation in any medium and for any purpose provided that it is properly attributed. For attribution, the original author(s), title, publication source (PeerJ) and either DOI or URL of the article must be cited.
spellingShingle Climate Change Biology
Sáenz-Romero, Cuauhtémoc
Kremer, Antoine
Nagy, László
Újvári-Jármay, Éva
Ducousso, Alexis
Kóczán-Horváth, Anikó
Hansen, Jon Kehlet
Mátyás, Csaba
Common garden comparisons confirm inherited differences in sensitivity to climate change between forest tree species
title Common garden comparisons confirm inherited differences in sensitivity to climate change between forest tree species
title_full Common garden comparisons confirm inherited differences in sensitivity to climate change between forest tree species
title_fullStr Common garden comparisons confirm inherited differences in sensitivity to climate change between forest tree species
title_full_unstemmed Common garden comparisons confirm inherited differences in sensitivity to climate change between forest tree species
title_short Common garden comparisons confirm inherited differences in sensitivity to climate change between forest tree species
title_sort common garden comparisons confirm inherited differences in sensitivity to climate change between forest tree species
topic Climate Change Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6338101/
https://www.ncbi.nlm.nih.gov/pubmed/30671299
http://dx.doi.org/10.7717/peerj.6213
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