Biotic interactions between benthic infauna and aerobic methanotrophs mediate methane fluxes from coastal sediments

Author:

Broman Elias12,Olsson Markus1,Maciute Adele3,Donald Daniel4,Humborg Christoph24,Norkko Alf24,Jilbert Tom45,Bonaglia Stefano3,Nascimento Francisco J A12

Affiliation:

1. Stockholm University Department of Ecology, Environment and Plant Sciences, , Stockholm 10691, Sweden

2. Baltic Sea Centre, Stockholm University , Stockholm 10691, Sweden

3. University of Gothenburg Department of Marine Sciences, , Gothenburg 41390, Sweden

4. University of Helsinki Tvärminne Zoological Station, Faculty of Biological of Environmental Sciences, , Helsinki 10900, Finland

5. University of Helsinki Environmental Geochemistry Group, Department of Geosciences and Geography, Faculty of Science, , Helsinki 00014, Finland

Abstract

Abstract Coastal ecosystems dominate oceanic methane (CH4) emissions. However, there is limited knowledge about how biotic interactions between infauna and aerobic methanotrophs (i.e. CH4 oxidizing bacteria) drive the spatial–temporal dynamics of these emissions. Here, we investigated the role of meio- and macrofauna in mediating CH4 sediment–water fluxes and aerobic methanotrophic activity that can oxidize significant portions of CH4. We show that macrofauna increases CH4 fluxes by enhancing vertical solute transport through bioturbation, but this effect is somewhat offset by high meiofauna abundance. The increase in CH4 flux reduces CH4 pore-water availability, resulting in lower abundance and activity of aerobic methanotrophs, an effect that counterbalances the potential stimulation of these bacteria by higher oxygen flux to the sediment via bioturbation. These findings indicate that a larger than previously thought portion of CH4 emissions from coastal ecosystems is due to faunal activity and multiple complex interactions with methanotrophs.

Funder

BalticWaters foundation

Publisher

Oxford University Press (OUP)

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