Stand competition determines how different tree species will cope with a warming climate

Plant-plant interactions influence how forests cope with climate and contribute to modulate species response to future climate scenarios. We analysed the functional relationships between growth, climate and competition for Pinus sylvestris, Quercus pyrenaica and Quercus faginea to investigate how stand competition modifies forest sensitivity to climate and simulated how annual growth rates of these species with different drought tolerance would change throughout the 21st century. Dendroecological data from stands subjected to thinning were modelled using a novel multiplicative nonlinear approach to overcome biases related to the general assumption of a linear relationship between covariates and to better mimic the biological relationships involved. Growth always decreased exponentially with increasing competition, which explained more growth variability than climate in Q. faginea and P. sylvestris. The effect of precipitation was asymptotic in all cases, while the relationship between growth and temperature reached an optimum after which growth declined with warmer temperatures. Our growth projections indicate that the less drought-tolerant P. sylvestris would be more negatively affected by climate change than the studied sub-Mediterranean oaks. Q. faginea and P. sylvestris mean growth would decrease under all the climate change scenarios assessed. However, P. sylvestris growth would decline regardless of the competition level, whereas this decrease would be offset by reduced competition in Q. faginea. Conversely, Q. pyrenaica growth would remain similar to current rates, except for the warmest scenario. Our models shed light on the nature of the species-specific interaction between climate and competition and yield important implications for management. Assuming that individual growth is directly related to tree performance, trees under low competition would better withstand the warmer conditions predicted under climate change scenarios but in a variable manner depending on the species. Thinning following an exponential rule may be desirable to ensure long-term conservation of high-density Mediterranean woodlands, particularly in drought-limited sites. © 2015 Fernández-de-Uña et al.

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Main Authors: Fernández-de-Uña, L., Cañellas, I., Gea-Izquierdo, G.
Format: journal article biblioteca
Language:eng
Published: 2015
Online Access:http://hdl.handle.net/20.500.12792/1397
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spelling dig-inia-es-20.500.12792-13972020-12-15T09:47:55Z Stand competition determines how different tree species will cope with a warming climate Fernández-de-Uña, L. Cañellas, I. Gea-Izquierdo, G. Plant-plant interactions influence how forests cope with climate and contribute to modulate species response to future climate scenarios. We analysed the functional relationships between growth, climate and competition for Pinus sylvestris, Quercus pyrenaica and Quercus faginea to investigate how stand competition modifies forest sensitivity to climate and simulated how annual growth rates of these species with different drought tolerance would change throughout the 21st century. Dendroecological data from stands subjected to thinning were modelled using a novel multiplicative nonlinear approach to overcome biases related to the general assumption of a linear relationship between covariates and to better mimic the biological relationships involved. Growth always decreased exponentially with increasing competition, which explained more growth variability than climate in Q. faginea and P. sylvestris. The effect of precipitation was asymptotic in all cases, while the relationship between growth and temperature reached an optimum after which growth declined with warmer temperatures. Our growth projections indicate that the less drought-tolerant P. sylvestris would be more negatively affected by climate change than the studied sub-Mediterranean oaks. Q. faginea and P. sylvestris mean growth would decrease under all the climate change scenarios assessed. However, P. sylvestris growth would decline regardless of the competition level, whereas this decrease would be offset by reduced competition in Q. faginea. Conversely, Q. pyrenaica growth would remain similar to current rates, except for the warmest scenario. Our models shed light on the nature of the species-specific interaction between climate and competition and yield important implications for management. Assuming that individual growth is directly related to tree performance, trees under low competition would better withstand the warmer conditions predicted under climate change scenarios but in a variable manner depending on the species. Thinning following an exponential rule may be desirable to ensure long-term conservation of high-density Mediterranean woodlands, particularly in drought-limited sites. © 2015 Fernández-de-Uña et al. 2020-10-22T11:54:30Z 2020-10-22T11:54:30Z 2015 journal article http://hdl.handle.net/20.500.12792/1397 10.1371/journal.pone.0122255 eng Attribution-NonCommercial-ShareAlike 4.0 International http://creativecommons.org/licenses/by-nc-sa/4.0/ open access
institution INIA ES
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country España
countrycode ES
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libraryname Biblioteca del INIA España
language eng
description Plant-plant interactions influence how forests cope with climate and contribute to modulate species response to future climate scenarios. We analysed the functional relationships between growth, climate and competition for Pinus sylvestris, Quercus pyrenaica and Quercus faginea to investigate how stand competition modifies forest sensitivity to climate and simulated how annual growth rates of these species with different drought tolerance would change throughout the 21st century. Dendroecological data from stands subjected to thinning were modelled using a novel multiplicative nonlinear approach to overcome biases related to the general assumption of a linear relationship between covariates and to better mimic the biological relationships involved. Growth always decreased exponentially with increasing competition, which explained more growth variability than climate in Q. faginea and P. sylvestris. The effect of precipitation was asymptotic in all cases, while the relationship between growth and temperature reached an optimum after which growth declined with warmer temperatures. Our growth projections indicate that the less drought-tolerant P. sylvestris would be more negatively affected by climate change than the studied sub-Mediterranean oaks. Q. faginea and P. sylvestris mean growth would decrease under all the climate change scenarios assessed. However, P. sylvestris growth would decline regardless of the competition level, whereas this decrease would be offset by reduced competition in Q. faginea. Conversely, Q. pyrenaica growth would remain similar to current rates, except for the warmest scenario. Our models shed light on the nature of the species-specific interaction between climate and competition and yield important implications for management. Assuming that individual growth is directly related to tree performance, trees under low competition would better withstand the warmer conditions predicted under climate change scenarios but in a variable manner depending on the species. Thinning following an exponential rule may be desirable to ensure long-term conservation of high-density Mediterranean woodlands, particularly in drought-limited sites. © 2015 Fernández-de-Uña et al.
format journal article
author Fernández-de-Uña, L.
Cañellas, I.
Gea-Izquierdo, G.
spellingShingle Fernández-de-Uña, L.
Cañellas, I.
Gea-Izquierdo, G.
Stand competition determines how different tree species will cope with a warming climate
author_facet Fernández-de-Uña, L.
Cañellas, I.
Gea-Izquierdo, G.
author_sort Fernández-de-Uña, L.
title Stand competition determines how different tree species will cope with a warming climate
title_short Stand competition determines how different tree species will cope with a warming climate
title_full Stand competition determines how different tree species will cope with a warming climate
title_fullStr Stand competition determines how different tree species will cope with a warming climate
title_full_unstemmed Stand competition determines how different tree species will cope with a warming climate
title_sort stand competition determines how different tree species will cope with a warming climate
publishDate 2015
url http://hdl.handle.net/20.500.12792/1397
work_keys_str_mv AT fernandezdeunal standcompetitiondetermineshowdifferenttreespecieswillcopewithawarmingclimate
AT canellasi standcompetitiondetermineshowdifferenttreespecieswillcopewithawarmingclimate
AT geaizquierdog standcompetitiondetermineshowdifferenttreespecieswillcopewithawarmingclimate
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