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Divergent drivers of the microbial methane sink in temperate forest and grassland soils

Jana Täumer; Steffen Kolb; Runa S. Boeddinghaus; Haitao Wang; Ingo Schöning; Marion Schrumpf; Tim Urich; Sven Marhan
Global Change Biology · Vol. 27, Issue 4 · pp. 929-940 · 2021

Abstract

Aerated topsoils are important sinks for atmospheric methane (CH 4 ) via oxidation by CH 4 ‐oxidizing bacteria (MOB). However, intensified management of grasslands and forests may reduce the CH 4 sink capacity of soils. We investigated the influence of grassland land‐use intensity (150 sites) and forest management type (149 sites) on potential atmospheric CH 4 oxidation rates (PMORs) and the abundance and diversity of MOB (with qPCR) in topsoils of three temperate regions in Germany. PMORs measurements in microcosms under defined conditions yielded approximately twice as much CH 4 oxidation in forest than in grassland soils. High land‐use intensity of grasslands had a negative effect on PMORs (−40%) in almost all regions and fertilization was the predominant factor of grassland land‐use intensity leading to PMOR reduction by 20%. In contrast, forest management did not affect PMORs in forest soils. Upland soil cluster (USC)‐α was the dominant group of MOBs in the forests. In contrast, USC‐γ was absent in more than half of the forest soils but present in almost all grassland soils. USC‐α abundance had a direct positive effect on PMOR in forest, while in grasslands USC‐α and USC‐γ abundance affected PMOR positively with a more pronounced contribution of USC‐γ than USC‐α. Soil bulk density negatively influenced PMOR in both forests and grasslands. We further found that the response of the PMORs to pH, soil texture, soil water holding capacity and organic carbon and nitrogen content differ between temperate forest and grassland soils. pH had no direct effects on PMOR, but indirect ones via the MOB abundances, showing a negative effect on USC‐α, and a positive on USC‐γ abundance. We conclude that reduction in grassland land‐use intensity and afforestation has the potential to increase the CH 4 sink function of soils and that different parameters determine the microbial methane sink in forest and grassland soils.

Bibliographic Information

JournalGlobal Change Biology
PublisherWiley
Publication Date2021-02-01
Publication Year2021
Volume27
Issue4
Pages929-940
Document TypeJournal Article
Print ISSN1354-1013
eISSN1365-2486
DOI10.1111/gcb.15430
SubjectConservation Science

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