Resilience of aerobic methanotrophs in soils; spotlight on the methane sink under agriculture

Author:

Lim Jiyeon1,Wehmeyer Helena2ORCID,Heffner Tanja1,Aeppli Meret3ORCID,Gu Wenyu4,Kim Pil Joo5,Horn Marcus A1ORCID,Ho Adrian2ORCID

Affiliation:

1. Institute for Microbiology, Leibniz Universität Hannover , Herrenhäuser Str. 2, 30419 Hannover, Germany

2. Nestlè Research , Route du Jorat 57, CH 1000 Lausanne 26, Switzerland

3. Environmental Engineering Institute IIE-ENAC, Laboratory SOIL, Ecole Polytechnique Fédérale de Lausanne (EPFL) , Valais Wallis, CH 1950 Sion , Switzerland

4. Environmental Engineering Institute IIE-ENAC, Laboratory MICROBE, Ecole Polytechnique Fédérale de Lausanne (EPFL) , CH 1015 Lausanne , Switzerland

5. Division of Applied Life Science, Gyeongsang National University , Jinju 660-701 , Republic of Korea

Abstract

Abstract Aerobic methanotrophs are a specialized microbial group, catalyzing the oxidation of methane. Disturbance-induced loss of methanotroph diversity/abundance, thus results in the loss of this biological methane sink. Here, we synthesized and conceptualized the resilience of the methanotrophs to sporadic, recurring, and compounded disturbances in soils. The methanotrophs showed remarkable resilience to sporadic disturbances, recovering in activity and population size. However, activity was severely compromised when disturbance persisted or reoccurred at increasing frequency, and was significantly impaired following change in land use. Next, we consolidated the impact of agricultural practices after land conversion on the soil methane sink. The effects of key interventions (tillage, organic matter input, and cover cropping) where much knowledge has been gathered were considered. Pairwise comparisons of these interventions to nontreated agricultural soils indicate that the agriculture-induced impact on the methane sink depends on the cropping system, which can be associated to the physiology of the methanotrophs. The impact of agriculture is more evident in upland soils, where the methanotrophs play a more prominent role than the methanogens in modulating overall methane flux. Although resilient to sporadic disturbances, the methanotrophs are vulnerable to compounded disturbances induced by anthropogenic activities, significantly affecting the methane sink function.

Funder

German Academic Exchange Service

Deutsche Forschungsgemeinschaft

Publisher

Oxford University Press (OUP)

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