Cargando…

Vegetation type, not the legacy of warming, modifies the response of microbial functional genes and greenhouse gas fluxes to drought in Oro-Arctic and alpine regions

Climate warming and summer droughts alter soil microbial activity, affecting greenhouse gas (GHG) emissions in Arctic and alpine regions. However, the long-term effects of warming, and implications for future microbial resilience, are poorly understood. Using one alpine and three Arctic soils subjec...

Descripción completa

Detalles Bibliográficos
Autores principales: Fry, Ellen L, Ashworth, Deborah, Allen, Kimberley A J, Chardon, Nathalie Isabelle, Rixen, Christian, Björkman, Mats P, Björk, Robert G, Stålhandske, Thomas, Molau, Mathias, Locke-King, Brady, Cantillon, Isabelle, McDonald, Catriona, Liu, Hongwei, De Vries, Franciska T, Ostle, Nick J, Singh, Brajesh K, Bardgett, Richard D
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10673709/
https://www.ncbi.nlm.nih.gov/pubmed/37951295
http://dx.doi.org/10.1093/femsec/fiad145
_version_ 1785140679303757824
author Fry, Ellen L
Ashworth, Deborah
Allen, Kimberley A J
Chardon, Nathalie Isabelle
Rixen, Christian
Björkman, Mats P
Björk, Robert G
Stålhandske, Thomas
Molau, Mathias
Locke-King, Brady
Cantillon, Isabelle
McDonald, Catriona
Liu, Hongwei
De Vries, Franciska T
Ostle, Nick J
Singh, Brajesh K
Bardgett, Richard D
author_facet Fry, Ellen L
Ashworth, Deborah
Allen, Kimberley A J
Chardon, Nathalie Isabelle
Rixen, Christian
Björkman, Mats P
Björk, Robert G
Stålhandske, Thomas
Molau, Mathias
Locke-King, Brady
Cantillon, Isabelle
McDonald, Catriona
Liu, Hongwei
De Vries, Franciska T
Ostle, Nick J
Singh, Brajesh K
Bardgett, Richard D
author_sort Fry, Ellen L
collection PubMed
description Climate warming and summer droughts alter soil microbial activity, affecting greenhouse gas (GHG) emissions in Arctic and alpine regions. However, the long-term effects of warming, and implications for future microbial resilience, are poorly understood. Using one alpine and three Arctic soils subjected to in situ long-term experimental warming, we simulated drought in laboratory incubations to test how microbial functional-gene abundance affects fluxes in three GHGs: carbon dioxide, methane, and nitrous oxide. We found that responses of functional gene abundances to drought and warming are strongly associated with vegetation type and soil carbon. Our sites ranged from a wet, forb dominated, soil carbon-rich systems to a drier, soil carbon-poor alpine site. Resilience of functional gene abundances, and in turn methane and carbon dioxide fluxes, was lower in the wetter, carbon-rich systems. However, we did not detect an effect of drought or warming on nitrous oxide fluxes. All gene–GHG relationships were modified by vegetation type, with stronger effects being observed in wetter, forb-rich soils. These results suggest that impacts of warming and drought on GHG emissions are linked to a complex set of microbial gene abundances and may be habitat-specific.
format Online
Article
Text
id pubmed-10673709
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Oxford University Press
record_format MEDLINE/PubMed
spelling pubmed-106737092023-11-10 Vegetation type, not the legacy of warming, modifies the response of microbial functional genes and greenhouse gas fluxes to drought in Oro-Arctic and alpine regions Fry, Ellen L Ashworth, Deborah Allen, Kimberley A J Chardon, Nathalie Isabelle Rixen, Christian Björkman, Mats P Björk, Robert G Stålhandske, Thomas Molau, Mathias Locke-King, Brady Cantillon, Isabelle McDonald, Catriona Liu, Hongwei De Vries, Franciska T Ostle, Nick J Singh, Brajesh K Bardgett, Richard D FEMS Microbiol Ecol Research Article Climate warming and summer droughts alter soil microbial activity, affecting greenhouse gas (GHG) emissions in Arctic and alpine regions. However, the long-term effects of warming, and implications for future microbial resilience, are poorly understood. Using one alpine and three Arctic soils subjected to in situ long-term experimental warming, we simulated drought in laboratory incubations to test how microbial functional-gene abundance affects fluxes in three GHGs: carbon dioxide, methane, and nitrous oxide. We found that responses of functional gene abundances to drought and warming are strongly associated with vegetation type and soil carbon. Our sites ranged from a wet, forb dominated, soil carbon-rich systems to a drier, soil carbon-poor alpine site. Resilience of functional gene abundances, and in turn methane and carbon dioxide fluxes, was lower in the wetter, carbon-rich systems. However, we did not detect an effect of drought or warming on nitrous oxide fluxes. All gene–GHG relationships were modified by vegetation type, with stronger effects being observed in wetter, forb-rich soils. These results suggest that impacts of warming and drought on GHG emissions are linked to a complex set of microbial gene abundances and may be habitat-specific. Oxford University Press 2023-11-10 /pmc/articles/PMC10673709/ /pubmed/37951295 http://dx.doi.org/10.1093/femsec/fiad145 Text en © The Author(s) 2023. Published by Oxford University Press on behalf of FEMS. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Fry, Ellen L
Ashworth, Deborah
Allen, Kimberley A J
Chardon, Nathalie Isabelle
Rixen, Christian
Björkman, Mats P
Björk, Robert G
Stålhandske, Thomas
Molau, Mathias
Locke-King, Brady
Cantillon, Isabelle
McDonald, Catriona
Liu, Hongwei
De Vries, Franciska T
Ostle, Nick J
Singh, Brajesh K
Bardgett, Richard D
Vegetation type, not the legacy of warming, modifies the response of microbial functional genes and greenhouse gas fluxes to drought in Oro-Arctic and alpine regions
title Vegetation type, not the legacy of warming, modifies the response of microbial functional genes and greenhouse gas fluxes to drought in Oro-Arctic and alpine regions
title_full Vegetation type, not the legacy of warming, modifies the response of microbial functional genes and greenhouse gas fluxes to drought in Oro-Arctic and alpine regions
title_fullStr Vegetation type, not the legacy of warming, modifies the response of microbial functional genes and greenhouse gas fluxes to drought in Oro-Arctic and alpine regions
title_full_unstemmed Vegetation type, not the legacy of warming, modifies the response of microbial functional genes and greenhouse gas fluxes to drought in Oro-Arctic and alpine regions
title_short Vegetation type, not the legacy of warming, modifies the response of microbial functional genes and greenhouse gas fluxes to drought in Oro-Arctic and alpine regions
title_sort vegetation type, not the legacy of warming, modifies the response of microbial functional genes and greenhouse gas fluxes to drought in oro-arctic and alpine regions
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10673709/
https://www.ncbi.nlm.nih.gov/pubmed/37951295
http://dx.doi.org/10.1093/femsec/fiad145
work_keys_str_mv AT fryellenl vegetationtypenotthelegacyofwarmingmodifiestheresponseofmicrobialfunctionalgenesandgreenhousegasfluxestodroughtinoroarcticandalpineregions
AT ashworthdeborah vegetationtypenotthelegacyofwarmingmodifiestheresponseofmicrobialfunctionalgenesandgreenhousegasfluxestodroughtinoroarcticandalpineregions
AT allenkimberleyaj vegetationtypenotthelegacyofwarmingmodifiestheresponseofmicrobialfunctionalgenesandgreenhousegasfluxestodroughtinoroarcticandalpineregions
AT chardonnathalieisabelle vegetationtypenotthelegacyofwarmingmodifiestheresponseofmicrobialfunctionalgenesandgreenhousegasfluxestodroughtinoroarcticandalpineregions
AT rixenchristian vegetationtypenotthelegacyofwarmingmodifiestheresponseofmicrobialfunctionalgenesandgreenhousegasfluxestodroughtinoroarcticandalpineregions
AT bjorkmanmatsp vegetationtypenotthelegacyofwarmingmodifiestheresponseofmicrobialfunctionalgenesandgreenhousegasfluxestodroughtinoroarcticandalpineregions
AT bjorkrobertg vegetationtypenotthelegacyofwarmingmodifiestheresponseofmicrobialfunctionalgenesandgreenhousegasfluxestodroughtinoroarcticandalpineregions
AT stalhandskethomas vegetationtypenotthelegacyofwarmingmodifiestheresponseofmicrobialfunctionalgenesandgreenhousegasfluxestodroughtinoroarcticandalpineregions
AT molaumathias vegetationtypenotthelegacyofwarmingmodifiestheresponseofmicrobialfunctionalgenesandgreenhousegasfluxestodroughtinoroarcticandalpineregions
AT lockekingbrady vegetationtypenotthelegacyofwarmingmodifiestheresponseofmicrobialfunctionalgenesandgreenhousegasfluxestodroughtinoroarcticandalpineregions
AT cantillonisabelle vegetationtypenotthelegacyofwarmingmodifiestheresponseofmicrobialfunctionalgenesandgreenhousegasfluxestodroughtinoroarcticandalpineregions
AT mcdonaldcatriona vegetationtypenotthelegacyofwarmingmodifiestheresponseofmicrobialfunctionalgenesandgreenhousegasfluxestodroughtinoroarcticandalpineregions
AT liuhongwei vegetationtypenotthelegacyofwarmingmodifiestheresponseofmicrobialfunctionalgenesandgreenhousegasfluxestodroughtinoroarcticandalpineregions
AT devriesfranciskat vegetationtypenotthelegacyofwarmingmodifiestheresponseofmicrobialfunctionalgenesandgreenhousegasfluxestodroughtinoroarcticandalpineregions
AT ostlenickj vegetationtypenotthelegacyofwarmingmodifiestheresponseofmicrobialfunctionalgenesandgreenhousegasfluxestodroughtinoroarcticandalpineregions
AT singhbrajeshk vegetationtypenotthelegacyofwarmingmodifiestheresponseofmicrobialfunctionalgenesandgreenhousegasfluxestodroughtinoroarcticandalpineregions
AT bardgettrichardd vegetationtypenotthelegacyofwarmingmodifiestheresponseofmicrobialfunctionalgenesandgreenhousegasfluxestodroughtinoroarcticandalpineregions