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Long-distance gene flow and adaptation of forest trees to rapid climate change

Forest trees are the dominant species in many parts of the world and predicting how they might respond to climate change is a vital global concern. Trees are capable of long-distance gene flow, which can promote adaptive evolution in novel environments by increasing genetic variation for fitness. It...

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Autores principales: Kremer, Antoine, Ronce, Ophélie, Robledo-Arnuncio, Juan J, Guillaume, Frédéric, Bohrer, Gil, Nathan, Ran, Bridle, Jon R, Gomulkiewicz, Richard, Klein, Etienne K, Ritland, Kermit, Kuparinen, Anna, Gerber, Sophie, Schueler, Silvio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3490371/
https://www.ncbi.nlm.nih.gov/pubmed/22372546
http://dx.doi.org/10.1111/j.1461-0248.2012.01746.x
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author Kremer, Antoine
Ronce, Ophélie
Robledo-Arnuncio, Juan J
Guillaume, Frédéric
Bohrer, Gil
Nathan, Ran
Bridle, Jon R
Gomulkiewicz, Richard
Klein, Etienne K
Ritland, Kermit
Kuparinen, Anna
Gerber, Sophie
Schueler, Silvio
author_facet Kremer, Antoine
Ronce, Ophélie
Robledo-Arnuncio, Juan J
Guillaume, Frédéric
Bohrer, Gil
Nathan, Ran
Bridle, Jon R
Gomulkiewicz, Richard
Klein, Etienne K
Ritland, Kermit
Kuparinen, Anna
Gerber, Sophie
Schueler, Silvio
author_sort Kremer, Antoine
collection PubMed
description Forest trees are the dominant species in many parts of the world and predicting how they might respond to climate change is a vital global concern. Trees are capable of long-distance gene flow, which can promote adaptive evolution in novel environments by increasing genetic variation for fitness. It is unclear, however, if this can compensate for maladaptive effects of gene flow and for the long-generation times of trees. We critically review data on the extent of long-distance gene flow and summarise theory that allows us to predict evolutionary responses of trees to climate change. Estimates of long-distance gene flow based both on direct observations and on genetic methods provide evidence that genes can move over spatial scales larger than habitat shifts predicted under climate change within one generation. Both theoretical and empirical data suggest that the positive effects of gene flow on adaptation may dominate in many instances. The balance of positive to negative consequences of gene flow may, however, differ for leading edge, core and rear sections of forest distributions. We propose future experimental and theoretical research that would better integrate dispersal biology with evolutionary quantitative genetics and improve predictions of tree responses to climate change.
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spelling pubmed-34903712012-11-08 Long-distance gene flow and adaptation of forest trees to rapid climate change Kremer, Antoine Ronce, Ophélie Robledo-Arnuncio, Juan J Guillaume, Frédéric Bohrer, Gil Nathan, Ran Bridle, Jon R Gomulkiewicz, Richard Klein, Etienne K Ritland, Kermit Kuparinen, Anna Gerber, Sophie Schueler, Silvio Ecol Lett Review and Syntheses Forest trees are the dominant species in many parts of the world and predicting how they might respond to climate change is a vital global concern. Trees are capable of long-distance gene flow, which can promote adaptive evolution in novel environments by increasing genetic variation for fitness. It is unclear, however, if this can compensate for maladaptive effects of gene flow and for the long-generation times of trees. We critically review data on the extent of long-distance gene flow and summarise theory that allows us to predict evolutionary responses of trees to climate change. Estimates of long-distance gene flow based both on direct observations and on genetic methods provide evidence that genes can move over spatial scales larger than habitat shifts predicted under climate change within one generation. Both theoretical and empirical data suggest that the positive effects of gene flow on adaptation may dominate in many instances. The balance of positive to negative consequences of gene flow may, however, differ for leading edge, core and rear sections of forest distributions. We propose future experimental and theoretical research that would better integrate dispersal biology with evolutionary quantitative genetics and improve predictions of tree responses to climate change. Blackwell Publishing Ltd 2012-04 /pmc/articles/PMC3490371/ /pubmed/22372546 http://dx.doi.org/10.1111/j.1461-0248.2012.01746.x Text en © 2012 Blackwell Publishing Ltd/CNRS http://creativecommons.org/licenses/by/2.5/ Re-use of this article is permitted in accordance with the Creative Commons Deed, Attribution 2.5, which does not permit commercial exploitation.
spellingShingle Review and Syntheses
Kremer, Antoine
Ronce, Ophélie
Robledo-Arnuncio, Juan J
Guillaume, Frédéric
Bohrer, Gil
Nathan, Ran
Bridle, Jon R
Gomulkiewicz, Richard
Klein, Etienne K
Ritland, Kermit
Kuparinen, Anna
Gerber, Sophie
Schueler, Silvio
Long-distance gene flow and adaptation of forest trees to rapid climate change
title Long-distance gene flow and adaptation of forest trees to rapid climate change
title_full Long-distance gene flow and adaptation of forest trees to rapid climate change
title_fullStr Long-distance gene flow and adaptation of forest trees to rapid climate change
title_full_unstemmed Long-distance gene flow and adaptation of forest trees to rapid climate change
title_short Long-distance gene flow and adaptation of forest trees to rapid climate change
title_sort long-distance gene flow and adaptation of forest trees to rapid climate change
topic Review and Syntheses
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3490371/
https://www.ncbi.nlm.nih.gov/pubmed/22372546
http://dx.doi.org/10.1111/j.1461-0248.2012.01746.x
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