Plant phenology and species‐specific traits control plant CH4 emissions in a northern boreal fen

Author:

Ge Mengyu1ORCID,Korrensalo Aino23ORCID,Laiho Raija3ORCID,Lohila Annalea4,Makiranta Päivi3ORCID,Pihlatie Mari15ORCID,Tuittila Eeva‐Stiina2ORCID,Kohl Lukas156ORCID,Putkinen Anuliina15ORCID,Koskinen Markku15ORCID

Affiliation:

1. Department of Agricultural Sciences University of Helsinki PO Box 56 Helsinki 00014 Finland

2. School of Forest Sciences University of Eastern Finland PO Box 111 Joensuu 80101 Finland

3. Natural Resources Institute Finland PO Box 2 Helsinki 00791 Finland

4. Finnish Meteorological Institute PO Box 503 Helsinki 00560 Finland

5. Institute for Atmospheric and Earth System Research (INAR)/Forest Sciences University of Helsinki PO Box 4 Helsinki 00560 Finland

6. Department of Environmental and Biological Sciences University of Eastern Finland PO Box 1627 Kuopio 70211 Finland

Abstract

Summary Aerenchymatic transport is an important mechanism through which plants affect methane (CH4) emissions from peatlands. Controlling environmental factors and the effects of plant phenology remain, however, uncertain. We identified factors controlling seasonal CH4 flux rate and investigated transport efficiency (flux rate per unit of rhizospheric porewater CH4 concentration). We measured CH4 fluxes through individual shoots of Carex rostrata, Menyanthes trifoliata, Betula nana and Salix lapponum throughout growing seasons in 2020 and 2021 and Equisetum fluviatile and Comarum palustre in high summer 2021 along with water‐table level, peat temperature and porewater CH4 concentration. CH4 flux rate of C. rostrata was related to plant phenology and peat temperature. Flux rates of M. trifoliata and shrubs B. nana and S. lapponum were insensitive to the investigated environmental variables. In high summer, flux rate and efficiency were highest for C. rostrata (6.86 mg m−2 h−1 and 0.36 mg m−2 h−1 (μmol l−1)−1, respectively). Menyanthes trifoliata showed a high flux rate, but limited efficiency. Low flux rates and efficiency were detected for the remaining species. Knowledge of the species‐specific CH4 flux rate and their different responses to plant phenology and environmental factors can significantly improve the estimation of ecosystem‐scale CH4 dynamics in boreal peatlands.

Funder

Academy of Finland

China Scholarship Council

H2020 European Research Council

H2020 Marie Skłodowska-Curie Actions

Publisher

Wiley

Subject

Plant Science,Physiology

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