Literature DB >> 28075520

Long-term enhanced winter soil frost alters growing season CO2 fluxes through its impact on vegetation development in a boreal peatland.

Junbin Zhao1, Matthias Peichl1, Mats B Nilsson1.   

Abstract

At high latitudes, winter climate change alters snow cover and, consequently, may cause a sustained change in soil frost dynamics. Altered winter soil conditions could influence the ecosystem exchange of carbon dioxide (CO2 ) and, in turn, provide feedbacks to ongoing climate change. To investigate the mechanisms that modify the peatland CO2 exchange in response to altered winter soil frost, we conducted a snow exclusion experiment to enhance winter soil frost and to evaluate its short-term (1-3 years) and long-term (11 years) effects on CO2 fluxes during subsequent growing seasons in a boreal peatland. In the first 3 years after initiating the treatment, no significant effects were observed on either gross primary production (GPP) or ecosystem respiration (ER). However, after 11 years, the temperature sensitivity of ER was reduced in the treatment plots relative to the control, resulting in an overall lower ER in the former. Furthermore, early growing season GPP was also lower in the treatment plots than in the controls during periods with photosynthetic photon flux density (PPFD) ≥800 μmol m-2  s-1 , corresponding to lower sedge leaf biomass in the treatment plots during the same period. During the peak growing season, a higher GPP was observed in the treatment plots under the low light condition (i.e. PPFD 400 μmol m-2  s-1 ) compared to the control. As Sphagnum moss maximizes photosynthesis at low light levels, this GPP difference between the plots may have been due to greater moss photosynthesis, as indicated by greater moss biomass production, in the treatment plots relative to the controls. Our study highlights the different responses to enhanced winter soil frost among plant functional types which regulate CO2 fluxes, suggesting that winter climate change could considerably alter the growing season CO2 exchange in boreal peatlands through its effect on vegetation development.
© 2017 John Wiley & Sons Ltd.

Entities:  

Keywords:  biomass; carbon dioxide flux; climate change; gross primary production; mire; respiration; snow cover; soil frost

Mesh:

Substances:

Year:  2017        PMID: 28075520     DOI: 10.1111/gcb.13621

Source DB:  PubMed          Journal:  Glob Chang Biol        ISSN: 1354-1013            Impact factor:   10.863


  3 in total

1.  Peatland vegetation composition and phenology drive the seasonal trajectory of maximum gross primary production.

Authors:  Matthias Peichl; Michal Gažovič; Ilse Vermeij; Eefje de Goede; Oliver Sonnentag; Juul Limpens; Mats B Nilsson
Journal:  Sci Rep       Date:  2018-05-22       Impact factor: 4.379

2.  Accelerated vegetation succession but no hydrological change in a boreal fen during 20 years of recent climate change.

Authors:  Tiina H M Kolari; Pasi Korpelainen; Timo Kumpula; Teemu Tahvanainen
Journal:  Ecol Evol       Date:  2021-05-02       Impact factor: 2.912

3.  Measuring CO2 and CH4 with a portable gas analyzer: Closed-loop operation, optimization and assessment.

Authors:  Jeremy Wilkinson; Christoph Bors; Florian Burgis; Andreas Lorke; Pascal Bodmer
Journal:  PLoS One       Date:  2018-04-04       Impact factor: 3.240

  3 in total

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