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  <rdf:Description rdf:about="https://doi.org/10.1111/geb.13371">
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    <dct:references>https://onlinelibrary.wiley.com/doi/pdf/10.1111/geb.13371</dct:references>
    <dct:references>https://doi.org/10.1111/geb.13371</dct:references>
    <dcat:downloadURL rdf:resource="https://onlinelibrary.wiley.com/doi/pdf/10.1111/geb.13371"/>
    <dct:isPartOf>Global Ecology and Biogeography</dct:isPartOf>
    <dct:license>Open Access</dct:license>
    <dct:created>2021-08-18</dct:created>
    <dct:available>2021-11-03</dct:available>
    <dc:description>AbstractAim&lt;p&gt;Quantify direct and indirect relationships between soil microbial community properties (potential basal respiration, microbial biomass) and abiotic factors (soil, climate) in three major land&#65506;&#65408;&#65424;cover types.&lt;/p&gt;Location&lt;p&gt;Europe.&lt;/p&gt;Time period&lt;p&gt;2018.&lt;/p&gt;Major taxa studied&lt;p&gt;Microbial community (fungi and bacteria).&lt;/p&gt;Methods&lt;p&gt;We collected 881 soil samples from across Europe in the framework of the Land Use/Land Cover Area Frame Survey (LUCAS). We measured potential soil basal respiration at 20&#65474;&#65440;&#65474;&#65466;C and microbial biomass (substrate&#65506;&#65408;&#65424;induced respiration) using an O2&#65506;&#65408;&#65424;microcompensation apparatus. Soil and climate data were obtained from the same LUCAS survey and online databases. Structural equation models (SEMs) were used to quantify relationships between variables, and equations extracted from SEMs were used to create predictive maps. Fatty acid methyl esters were measured in a subset of samples to distinguish fungal from bacterial biomass.&lt;/p&gt;Results&lt;p&gt;Soil microbial properties in croplands were more heavily affected by climate variables than those in forests. Potential soil basal respiration and microbial biomass were correlated in forests but decoupled in grasslands and croplands, where microbial biomass depended on soil carbon. Forests had a higher ratio of fungi to bacteria than grasslands or croplands.&lt;/p&gt;Main conclusions&lt;p&gt;Soil microbial communities in grasslands and croplands are likely carbon&#65506;&#65408;&#65424;limited in comparison with those in forests, and forests have a higher dominance of fungi indicating differences in microbial community composition. Notably, the often already&#65506;&#65408;&#65424;degraded soils of croplands could be more vulnerable to climate change than more natural soils. The provided maps show potentially vulnerable areas that should be explicitly accounted for in future management plans to protect soil carbon and slow the increasing vulnerability of European soils to climate change.&lt;/p&gt;</dc:description>
    <dc:subject>2. Zero hunger</dc:subject>
    <dc:subject>570</dc:subject>
    <dc:subject>Land cover</dc:subject>
    <dc:subject>Take urgent action to combat climate change and its impacts</dc:subject>
    <dc:subject>Soil microbial biomass</dc:subject>
    <dc:subject>soil microbial respiration</dc:subject>
    <dc:subject>500 Naturwissenschaften und Mathematik::570 Biowissenschaften; Biologie::570 Biowissenschaften; Biologie</dc:subject>
    <dc:subject>04 agricultural and veterinary sciences</dc:subject>
    <dc:subject>structural equation modelling</dc:subject>
    <dc:subject>15. Life on land</dc:subject>
    <dc:subject>Soil carbon</dc:subject>
    <dc:subject>croplands</dc:subject>
    <dc:subject>soil microbial biomass</dc:subject>
    <dc:subject>Europe</dc:subject>
    <dc:subject>climate change</dc:subject>
    <dc:subject>land cover</dc:subject>
    <dc:subject>Structural equation modelling</dc:subject>
    <dc:subject>13. Climate action</dc:subject>
    <dc:subject>Climate change</dc:subject>
    <dc:subject>0401 agriculture, forestry, and fisheries</dc:subject>
    <dc:subject>http://metadata.un.org/sdg/13</dc:subject>
    <dc:subject>Croplands</dc:subject>
    <dc:subject>soil carbon</dc:subject>
    <dc:subject>Soil microbial respiration</dc:subject>
    <dc:creator rdf:resource="https://orcid.org/0000-0002-3038-0580"/>
    <dc:creator rdf:resource="https://orcid.org/0000-0002-0371-6720"/>
    <dc:creator rdf:resource="https://orcid.org/0000-0003-2334-5119"/>
    <dc:creator rdf:resource="https://orcid.org/0000-0001-5701-0515"/>
    <dc:creator rdf:resource="https://orcid.org/0000-0002-8552-6137"/>
    <dc:creator rdf:resource="https://orcid.org/0000-0002-3748-6644"/>
    <dc:creator rdf:resource="https://orcid.org/0000-0003-3541-7853"/>
    <dc:creator>Linnea C. Smith, Alberto Orgiazzi, Nico Eisenhauer, Simone Cesarz, Alfred Lochner, Arwyn Jones, Felipe Bastida, Guillaume Patoine, Thomas Reitz, Fran&#231;ois Buscot, Matthias C. Rillig, Anna Heintz&#8208;Buschart, Anika Lehmann, Carlos A. Guerra, </dc:creator>
    <dc:date>2021-08-18</dc:date>
    <dc:type>journalpaper</dc:type>
    <dct:abstract>AbstractAim&lt;p&gt;Quantify direct and indirect relationships between soil microbial community properties (potential basal respiration, microbial biomass) and abiotic factors (soil, climate) in three major land&#65506;&#65408;&#65424;cover types.&lt;/p&gt;Location&lt;p&gt;Europe.&lt;/p&gt;Time period&lt;p&gt;2018.&lt;/p&gt;Major taxa studied&lt;p&gt;Microbial community (fungi and bacteria).&lt;/p&gt;Methods&lt;p&gt;We collected 881 soil samples from across Europe in the framework of the Land Use/Land Cover Area Frame Survey (LUCAS). We measured potential soil basal respiration at 20&#65474;&#65440;&#65474;&#65466;C and microbial biomass (substrate&#65506;&#65408;&#65424;induced respiration) using an O2&#65506;&#65408;&#65424;microcompensation apparatus. Soil and climate data were obtained from the same LUCAS survey and online databases. Structural equation models (SEMs) were used to quantify relationships between variables, and equations extracted from SEMs were used to create predictive maps. Fatty acid methyl esters were measured in a subset of samples to distinguish fungal from bacterial biomass.&lt;/p&gt;Results&lt;p&gt;Soil microbial properties in croplands were more heavily affected by climate variables than those in forests. Potential soil basal respiration and microbial biomass were correlated in forests but decoupled in grasslands and croplands, where microbial biomass depended on soil carbon. Forests had a higher ratio of fungi to bacteria than grasslands or croplands.&lt;/p&gt;Main conclusions&lt;p&gt;Soil microbial communities in grasslands and croplands are likely carbon&#65506;&#65408;&#65424;limited in comparison with those in forests, and forests have a higher dominance of fungi indicating differences in microbial community composition. Notably, the often already&#65506;&#65408;&#65424;degraded soils of croplands could be more vulnerable to climate change than more natural soils. The provided maps show potentially vulnerable areas that should be explicitly accounted for in future management plans to protect soil carbon and slow the increasing vulnerability of European soils to climate change.&lt;/p&gt;</dct:abstract>
    <dc:title>Large-scale drivers of relationships between soil microbial properties and organic carbon across Europe</dc:title>
    <dc:identifier>10.1111/geb.13371</dc:identifier>
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