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Eco-evolutionary responses of Bromus tectorum to climate change: implications for biological invasions

How plant populations, communities, and ecosystems respond to climate change is a critical focus in ecology today. The responses of introduced species may be especially rapid. Current models that incorporate temperature and precipitation suggest that future Bromus tectorum invasion risk is low for t...

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Autores principales: Zelikova, Tamara J, Hufbauer, Ruth A, Reed, Sasha C, Wertin, Timothy, Fettig, Christa, Belnap, Jayne
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3678490/
https://www.ncbi.nlm.nih.gov/pubmed/23762522
http://dx.doi.org/10.1002/ece3.542
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author Zelikova, Tamara J
Hufbauer, Ruth A
Reed, Sasha C
Wertin, Timothy
Fettig, Christa
Belnap, Jayne
author_facet Zelikova, Tamara J
Hufbauer, Ruth A
Reed, Sasha C
Wertin, Timothy
Fettig, Christa
Belnap, Jayne
author_sort Zelikova, Tamara J
collection PubMed
description How plant populations, communities, and ecosystems respond to climate change is a critical focus in ecology today. The responses of introduced species may be especially rapid. Current models that incorporate temperature and precipitation suggest that future Bromus tectorum invasion risk is low for the Colorado Plateau. With a field warming experiment at two sites in southeastern Utah, we tested this prediction over 4 years, measuring B. tectorum phenology, biomass, and reproduction. In a complimentary greenhouse study, we assessed whether changes in field B. tectorum biomass and reproductive output influence offspring performance. We found that following a wet winter and early spring, the timing of spring growth initiation, flowering, and summer senescence all advanced in warmed plots at both field sites and the shift in phenology was progressively larger with greater warming. Earlier green-up and development was associated with increases in B. tectorum biomass and reproductive output, likely due early spring growth, when soil moisture was not limiting, and a lengthened growing season. Seeds collected from plants grown in warmed plots had higher biomass and germination rates and lower mortality than seeds from ambient plots. However, in the following two dry years, we observed no differences in phenology between warmed and ambient plots. In addition, warming had a generally negative effect on B. tectorum biomass and reproduction in dry years and this negative effect was significant in the plots that received the highest warming treatment. In contrast to models that predict negative responses of B. tectorum to warmer climate on the Colorado Plateau, the effects of warming were more nuanced, relied on background climate, and differed between the two field sites. Our results highlight the importance of considering the interacting effects of temperature, precipitation, and site-specific characteristics such as soil texture, on plant demography and have direct implications for B. tectorum invasion dynamics on the Colorado Plateau.
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spelling pubmed-36784902013-06-12 Eco-evolutionary responses of Bromus tectorum to climate change: implications for biological invasions Zelikova, Tamara J Hufbauer, Ruth A Reed, Sasha C Wertin, Timothy Fettig, Christa Belnap, Jayne Ecol Evol Original Research How plant populations, communities, and ecosystems respond to climate change is a critical focus in ecology today. The responses of introduced species may be especially rapid. Current models that incorporate temperature and precipitation suggest that future Bromus tectorum invasion risk is low for the Colorado Plateau. With a field warming experiment at two sites in southeastern Utah, we tested this prediction over 4 years, measuring B. tectorum phenology, biomass, and reproduction. In a complimentary greenhouse study, we assessed whether changes in field B. tectorum biomass and reproductive output influence offspring performance. We found that following a wet winter and early spring, the timing of spring growth initiation, flowering, and summer senescence all advanced in warmed plots at both field sites and the shift in phenology was progressively larger with greater warming. Earlier green-up and development was associated with increases in B. tectorum biomass and reproductive output, likely due early spring growth, when soil moisture was not limiting, and a lengthened growing season. Seeds collected from plants grown in warmed plots had higher biomass and germination rates and lower mortality than seeds from ambient plots. However, in the following two dry years, we observed no differences in phenology between warmed and ambient plots. In addition, warming had a generally negative effect on B. tectorum biomass and reproduction in dry years and this negative effect was significant in the plots that received the highest warming treatment. In contrast to models that predict negative responses of B. tectorum to warmer climate on the Colorado Plateau, the effects of warming were more nuanced, relied on background climate, and differed between the two field sites. Our results highlight the importance of considering the interacting effects of temperature, precipitation, and site-specific characteristics such as soil texture, on plant demography and have direct implications for B. tectorum invasion dynamics on the Colorado Plateau. Blackwell Publishing Ltd 2013-05 2013-04-12 /pmc/articles/PMC3678490/ /pubmed/23762522 http://dx.doi.org/10.1002/ece3.542 Text en © 2013 Published by John Wiley & Sons Ltd. 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 Original Research
Zelikova, Tamara J
Hufbauer, Ruth A
Reed, Sasha C
Wertin, Timothy
Fettig, Christa
Belnap, Jayne
Eco-evolutionary responses of Bromus tectorum to climate change: implications for biological invasions
title Eco-evolutionary responses of Bromus tectorum to climate change: implications for biological invasions
title_full Eco-evolutionary responses of Bromus tectorum to climate change: implications for biological invasions
title_fullStr Eco-evolutionary responses of Bromus tectorum to climate change: implications for biological invasions
title_full_unstemmed Eco-evolutionary responses of Bromus tectorum to climate change: implications for biological invasions
title_short Eco-evolutionary responses of Bromus tectorum to climate change: implications for biological invasions
title_sort eco-evolutionary responses of bromus tectorum to climate change: implications for biological invasions
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3678490/
https://www.ncbi.nlm.nih.gov/pubmed/23762522
http://dx.doi.org/10.1002/ece3.542
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