Microbial resistance and resilience to drought under organic and conventional farming
The impacts of climate change, such as drought, can affect soil microbial communities. These communities are crucial for soil functioning and crop production. Organic and conventional cropping systems promote distinct soil microbiomes and soil organic carbon contents, which might maintain different...
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17.04.2024
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Abstract | The impacts of climate change, such as drought, can affect soil microbial communities. These communities are crucial for soil functioning and crop production. Organic and conventional cropping systems promote distinct soil microbiomes and soil organic carbon contents, which might maintain different capacities to mitigate drought effects on cropping systems. A field-scale drought simulation was performed in long-term organically and conventionally managed cropping systems differing in fertilization and pesticide application. The soil microbiome was assessed during and after drought in bulk soil, rhizosphere, and roots of wheat. We found that drought shifted microbial community structures, affecting fungi more strongly than prokaryotes. Microbial communities associated with crops (i.e. rhizosphere and root) were more strongly influenced by drought compared to bulk soil communities. A drought legacy effect was observed in the bulk soil after harvesting and rewetting. The resistance and resilience of the soil microbiome to severe drought did not significantly differ across the organic and conventional cropping systems, although few individual genera (e.g. Streptomyces, Rhizophagus, Actinomadura, and Aneurinibacillus) showed system-specific drought responses. All cropping systems showed relative increases in potential plant growth-promoting genera under drought. This agricultural field study indicated that fungal communities might be less resistant to drought than prokaryotic communities in cropping systems and these effects get more pronounced in closer association with plants. Organic fertilization or the reduction in pesticide application might not have the ability to buffer severe drought stress and additional farming practices might have to be incorporated to improve drought tolerance in cropping systems. |
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AbstractList | The impacts of climate change, such as drought, can affect soil microbial communities. These communities are crucial for soil functioning and crop production. Organic and conventional cropping systems promote distinct soil microbiomes and soil organic carbon contents, which might maintain different capacities to mitigate drought effects on cropping systems. A field-scale drought simulation was performed in long-term organically and conventionally managed cropping systems differing in fertilization and pesticide application. The soil microbiome was assessed during and after drought in bulk soil, rhizosphere, and roots of wheat. We found that drought shifted microbial community structures, affecting fungi more strongly than prokaryotes. Microbial communities associated with crops (i.e. rhizosphere and root) were more strongly influenced by drought compared to bulk soil communities. A drought legacy effect was observed in the bulk soil after harvesting and rewetting. The resistance and resilience of the soil microbiome to severe drought did not significantly differ across the organic and conventional cropping systems, although few individual genera (e.g. Streptomyces, Rhizophagus, Actinomadura, and Aneurinibacillus) showed system-specific drought responses. All cropping systems showed relative increases in potential plant growth-promoting genera under drought. This agricultural field study indicated that fungal communities might be less resistant to drought than prokaryotic communities in cropping systems and these effects get more pronounced in closer association with plants. Organic fertilization or the reduction in pesticide application might not have the ability to buffer severe drought stress and additional farming practices might have to be incorporated to improve drought tolerance in cropping systems. |
Author | Kost, Elena Hartmann, Martin Six, Johan Mayer, Jochen Krause, Hans-Martin Conz, Rafaela Feola Mäder, Paul Kundel, Dominika |
Author_xml | – sequence: 1 givenname: Elena orcidid: 0009-0008-7276-6714 surname: Kost fullname: Kost, Elena email: elena.kost@usys.ethz.ch organization: Institute of Agricultural Sciences, Department of Environmental Systems Science – sequence: 2 givenname: Dominika orcidid: 0000-0002-7311-0513 surname: Kundel fullname: Kundel, Dominika organization: Departement of Soil Sciences, Research Institute of Organic Agriculture – sequence: 3 givenname: Rafaela Feola orcidid: 0000-0002-9793-5501 surname: Conz fullname: Conz, Rafaela Feola organization: Institute of Agricultural Sciences, Department of Environmental Systems Science – sequence: 4 givenname: Paul orcidid: 0000-0001-5399-1176 surname: Mäder fullname: Mäder, Paul organization: Departement of Soil Sciences, Research Institute of Organic Agriculture – sequence: 5 givenname: Hans-Martin orcidid: 0000-0003-0355-8969 surname: Krause fullname: Krause, Hans-Martin organization: Departement of Soil Sciences, Research Institute of Organic Agriculture – sequence: 6 givenname: Johan orcidid: 0000-0001-9336-4185 surname: Six fullname: Six, Johan organization: Institute of Agricultural Sciences, Department of Environmental Systems Science – sequence: 7 givenname: Jochen surname: Mayer fullname: Mayer, Jochen organization: Nutrient Flows, Institute for Sustainability Sciences – sequence: 8 givenname: Martin orcidid: 0000-0001-8069-5284 surname: Hartmann fullname: Hartmann, Martin organization: Institute of Agricultural Sciences, Department of Environmental Systems Science |
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Cites_doi | 10.1038/nmicrobiol.2016.242 |
ContentType | Paper |
Copyright | 2024, Posted by Cold Spring Harbor Laboratory |
Copyright_xml | – notice: 2024, Posted by Cold Spring Harbor Laboratory |
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DOI | 10.1101/2024.04.17.589021 |
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Edition | 1.1 |
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Keywords | conventional DNA metabarcoding wheat microbial resistance and resilience Drought organic soil microbiome |
Language | English |
License | This pre-print is available under a Creative Commons License (Attribution-NonCommercial-NoDerivs 4.0 International), CC BY-NC-ND 4.0, as described at http://creativecommons.org/licenses/by-nc-nd/4.0 |
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Notes | Competing Interest Statement: The authors have declared no competing interest. |
ORCID | 0000-0002-9793-5501 0000-0002-7311-0513 0009-0008-7276-6714 0000-0001-8069-5284 0000-0001-5399-1176 0000-0003-0355-8969 0000-0001-9336-4185 |
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Title | Microbial resistance and resilience to drought under organic and conventional farming |
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