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Vegetation, topography, and soil depth drive microbial community structure in two Swedish grasslands
Stockholm University, Faculty of Science, Department of Physical Geography. Stockholm University, Faculty of Science, The Bolin Centre for Climate Research (together with KTH & SMHI).ORCID iD: 0000-0003-3739-0877
Swedish University of Agricultural Sciences , Uppsala , Sweden.
Swedish University of Agricultural Sciences , Uppsala , Sweden.
Stockholm University, Faculty of Science, Department of Physical Geography. Stockholm University, Faculty of Science, The Bolin Centre for Climate Research (together with KTH & SMHI).ORCID iD: 0000-0003-2656-2645
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Number of Authors: 82023 (English)In: FEMS Microbiology Ecology, ISSN 0168-6496, E-ISSN 1574-6941, Vol. 99, no 8Article in journal (Refereed) Published
Abstract [en]

Soil microbial diversity and community composition are shaped by various factors linked to land management, topographic position,and vegetation. To study the effects of these drivers, we characterized fungal and bacterial communities from bulk soil at four soildepths ranging from the surface to below the rooting zone of two Swedish grasslands with differing land-use histories, each includingboth an upper and a lower catenary position. We hypothesized that differences in plant species richness and plant functional groupcomposition between the four study sites would drive the variation in soil microbial community composition and correlate withmicrobial diversity, and that microbial biomass and diversity would decrease with soil depth following a decline in resource availability.While vegetation was identified as the main driver of microbial community composition, the explained variation was significantlyhigher for bacteria than for fungi, and the communities differed more between grasslands than between catenary positions. Microbialbiomass derived from DNA abundance decreased with depth, but diversity remained relatively stable, indicating diverse microbialcommunities even below the rooting zone. Finally, plant-microbial diversity correlations were significant only for specific plant andfungal functional groups, emphasizing the importance of functional interactions over general species richness

Place, publisher, year, edition, pages
2023. Vol. 99, no 8
Keywords [en]
16S, grassland, ITS, mycorrhizal fungi, plant community, saprotrophic fungi
National Category
Natural Sciences Ecology
Identifiers
URN: urn:nbn:se:su:diva-220664DOI: 10.1093/femsec/fiad080PubMedID: 37475696Scopus ID: 2-s2.0-85165778006OAI: oai:DiVA.org:su-220664DiVA, id: diva2:1794063
Funder
Swedish Research Council Formas, 2016-01107Swedish Research Council Formas, 2020-01110Available from: 2023-09-04 Created: 2023-09-04 Last updated: 2024-01-18Bibliographically approved
In thesis
1. The hidden half of the meadow: Interactions between drought, soil carbon, roots and soil microbial communities
Open this publication in new window or tab >>The hidden half of the meadow: Interactions between drought, soil carbon, roots and soil microbial communities
2024 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

Soil is a hidden ecosystem which harbours plant roots and countless microorganisms, vital for sustaining life aboveground. These belowground communities provide essential ecosystem services like soil stabilisation and organic matter decomposition. Soil is also one of the largest terrestrial carbon repositories, and land management strategies aimed at increasing organic matter inputs from plants, such as compost additions, can promote further soil carbon accumulation. Because organic carbon is important for soil water retention, this management may also help to increase resilience against more frequent and intense droughts. Although roots and microbial communities are largely acknowledged to play a key role in regulating the carbon cycle, there are still many open questions regarding the link between above- and belowground processes and ecosystem functions. Observing climate- and management-driven changes in the soil habitat is fundamental for understanding how ecosystems respond to environmental change.

The aim of this thesis is to explore the relationship between soil properties, plant communities, and soil microbial communities in response to environmental changes. The research builds on a meta-analysis of drought effects on grasslands, and a multifactorial field experiment which combined three years of precipitation reduction and a compost treatment in two Swedish grasslands. We analysed the response of roots and soil microbial communities to drought and compost amendments, and identified environmental factors behind their large spatial variability. Finally, we tested the effects of compost additions on soil carbon storage and its interactions with drought.

The results of the meta-analysis indicate that, on a global scale, grassland roots and shoots have diverging responses to drought duration and intensity, with long-term climate mediating that difference. At the local scale assessed in the field experiment, we observed that the spatial patterns of soil microbial communities were driven by soil properties and vegetation. Growing season drought affected roots only at trait level, but did not significantly affect microbial communities. Positive effects of compost on aboveground plant productivity and fungal growth were detectable after three years. Compost amendments also increased the percentage of total soil carbon, but no net increase in soil carbon stocks was detected. Spatial variability in roots and microbial communities was larger than the treatment effects, and was important in shaping microbial community composition and determining grassland responses to drought.

Taken together, these findings suggest that roots and microbial communities are likely to be tolerant to drought a within the timescale of this experiment, but we did not observe an increase soil carbon sequestration or drought resilience when adding compost. This thesis highlights the importance of considering soil processes as complementary to aboveground observations when studying carbon dynamics, predicting ecosystem responses to environmental change, and developing sustainable land management practices.

Place, publisher, year, edition, pages
Stockholm: Department of Physical Geography, Stockholm University, 2024. p. 37
Series
Dissertations in Physical Geography, ISSN 2003-2358 ; 36
Keywords
soil, soil carbon, soil ecology, roots, root traits, microbial communities, grasslands, climate change, drought, land management, compost
National Category
Physical Geography Ecology
Research subject
Physical Geography
Identifiers
urn:nbn:se:su:diva-225198 (URN)978-91-8014-643-2 (ISBN)978-91-8014-644-9 (ISBN)
Public defence
2024-03-08, De Geersalen, Geovetenskapens hus, Svante Arrhenius väg 14 and via Zoom: https://stockholmuniversity.zoom.us/j/69708971662, Stockholm, 13:00 (English)
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Available from: 2024-02-14 Created: 2024-01-18 Last updated: 2024-02-06Bibliographically approved

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Guasconi, DanielaCousins, SaraHugelius, GustafManzoni, StefanoRoth, Nina

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