Literature DB >> 30854735

Warming impacts on boreal fen CO2 exchange under wet and dry conditions.

Anna M Laine1, Päivi Mäkiranta2, Raija Laiho2, Lauri Mehtätalo3, Timo Penttilä2, Aino Korrensalo1, Kari Minkkinen4, Hannu Fritze2, Eeva-Stiina Tuittila1.   

Abstract

Northern peatlands form a major soil carbon (C) stock. With climate change, peatland C mineralization is expected to increase, which in turn would accelerate climate change. A particularity of peatlands is the importance of soil aeration, which regulates peatland functioning and likely modulates the responses to warming climate. Our aim is to assess the impacts of warming on a southern boreal and a sub-arctic sedge fen carbon dioxide (CO2 ) exchange under two plausible water table regimes: wet and moderately dry. We focused this study on minerotrophic treeless sedge fens, as they are common peatland types at boreal and (sub)arctic areas, which are expected to face the highest rates of climate warming. In addition, fens are expected to respond to environmental changes faster than the nutrient poor bogs. Our study confirmed that CO2 exchange is more strongly affected by drying than warming. Experimental water level draw-down (WLD) significantly increased gross photosynthesis and ecosystem respiration. Warming alone had insignificant impacts on the CO2 exchange components, but when combined with WLD it further increased ecosystem respiration. In the southern fen, CO2 uptake decreased due to WLD, which was amplified by warming, while at northern fen it remained stable. As a conclusion, our results suggest that a very small difference in the WLD may be decisive, whether the C sink of a fen decreases, or whether the system is able to adapt within its regime and maintain its functions. Moreover, the water table has a role in determining how much the increased temperature impacts the CO2 exchange.
© 2019 John Wiley & Sons Ltd.

Entities:  

Keywords:  OTC; carbon dioxide; ecosystem respiration; gross photosynthesis; peatland; warming; water level drawdown

Mesh:

Substances:

Year:  2019        PMID: 30854735     DOI: 10.1111/gcb.14617

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


  4 in total

1.  Warming and elevated CO2 promote rapid incorporation and degradation of plant-derived organic matter in an ombrotrophic peatland.

Authors:  Nicholas O E Ofiti; Emily F Solly; Paul J Hanson; Avni Malhotra; Guido L B Wiesenberg; Michael W I Schmidt
Journal:  Glob Chang Biol       Date:  2021-11-08       Impact factor: 13.211

2.  Experimental warming reduces ecosystem resistance and resilience to severe flooding in a wetland.

Authors:  Baoyu Sun; Ming Jiang; Guangxuan Han; Liwen Zhang; Jian Zhou; Chenyu Bian; Ying Du; Liming Yan; Jianyang Xia
Journal:  Sci Adv       Date:  2022-01-26       Impact factor: 14.136

3.  Global CO2 fertilization of Sphagnum peat mosses via suppression of photorespiration during the twentieth century.

Authors:  Henrik Serk; Mats B Nilsson; Elisabet Bohlin; Ina Ehlers; Thomas Wieloch; Carolina Olid; Samantha Grover; Karsten Kalbitz; Juul Limpens; Tim Moore; Wiebke Münchberger; Julie Talbot; Xianwei Wang; Klaus-Holger Knorr; Verónica Pancotto; Jürgen Schleucher
Journal:  Sci Rep       Date:  2021-12-31       Impact factor: 4.379

4.  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

  4 in total

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