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Methane production and oxidation potentials along a fen‐bog gradient from southern boreal to subarctic peatlands in Finland

Hui Zhang; Eeva‐Stiina Tuittila; Aino Korrensalo; Anna M. Laine; Salli Uljas; Nina Welti; Johanna Kerttula; Marja Maljanen; David Elliott; Timo Vesala; Annalea Lohila
Global Change Biology · Vol. 27, Issue 18 · pp. 4449-4464 · 2021

Abstract

Methane (CH 4 ) emissions from northern peatlands are projected to increase due to climate change, primarily because of projected increases in soil temperature. Yet, the rates and temperature responses of the two CH 4 emission‐related microbial processes (CH 4 production by methanogens and oxidation by methanotrophs) are poorly known. Further, peatland sites within a fen‐bog gradient are known to differ in the variables that regulate these two mechanisms, yet the interaction between peatland type and temperature lacks quantitative understanding. Here, we investigated potential CH 4 production and oxidation rates for 14 peatlands in Finland located between c. 60 and 70°N latitude, representing bogs, poor fens, and rich fens. Potentials were measured at three different temperatures (5, 17.5, and 30℃) using the laboratory incubation method. We linked CH 4 production and oxidation patterns to their methanogen and methanotroph abundance, peat properties, and plant functional types. We found that the rich fen‐bog gradient‐related nutrient availability and methanogen abundance increased the temperature response of CH 4 production, with rich fens exhibiting the greatest production potentials. Oxidation potential showed a steeper temperature response than production, which was explained by aerenchymous plant cover, peat water holding capacity, peat nitrogen, and sulfate content. The steeper temperature response of oxidation suggests that, at higher temperatures, CH 4 oxidation might balance increased CH 4 production. Predicting net CH 4 fluxes as an outcome of the two mechanisms is complicated due to their different controls and temperature responses. The lack of correlation between field CH 4 fluxes and production/oxidation potentials, and the positive correlation with aerenchymous plants points toward the essential role of CH 4 transport for emissions. The scenario of drying peatlands under climate change, which is likely to promote Sphagnum establishment over brown mosses in many places, will potentially reduce the predicted warming‐related increase in CH 4 emissions by shifting rich fens to Sphagnum ‐dominated systems.

Bibliographic Information

JournalGlobal Change Biology
PublisherWiley
Publication Date2021-09-01
Publication Year2021
Volume27
Issue18
Pages4449-4464
Document TypeJournal Article
Print ISSN1354-1013
eISSN1365-2486
DOI10.1111/gcb.15740
SubjectConservation Science

Access Information

NARA Access Coverage1997-01-01~Current
Journal Homepagehttps://onlinelibrary.wiley.com/loi/13652486
Publisher PageOpen Publisher Page
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