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Climate Change Impairs Nitrogen Cycling in European Beech Forests.

Identifieur interne : 001232 ( Main/Exploration ); précédent : 001231; suivant : 001233

Climate Change Impairs Nitrogen Cycling in European Beech Forests.

Auteurs : Michael Dannenmann [Allemagne] ; Carolin Bimüller [Allemagne] ; Silvia Gschwendtner [Allemagne] ; Martin Leberecht [Allemagne] ; Javier Tejedor [Allemagne] ; Silvija Bilela [Allemagne] ; Rainer Gasche [Allemagne] ; Marc Hanewinkel [Allemagne, Suisse] ; Andri Baltensweiler [Suisse] ; Ingrid Kögel-Knabner [Allemagne] ; Andrea Polle [Allemagne] ; Michael Schloter [Allemagne] ; Judy Simon [Allemagne] ; Heinz Rennenberg [Allemagne, Arabie saoudite]

Source :

RBID : pubmed:27410969

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English descriptors

Abstract

European beech forests growing on marginal calcareous soils have been proposed to be vulnerable to decreased soil water availability. This could result in a large-scale loss of ecological services and economical value in a changing climate. In order to evaluate the potential consequences of this drought-sensitivity, we investigated potential species range shifts for European beech forests on calcareous soil in the 21st century by statistical species range distribution modelling for present day and projected future climate conditions. We found a dramatic decline by 78% until 2080. Still the physiological or biogeochemical mechanisms underlying the drought sensitivity of European beech are largely unknown. Drought sensitivity of beech is commonly attributed to plant physiological constraints. Furthermore, it has also been proposed that reduced soil water availability could promote nitrogen (N) limitation of European beech due to impaired microbial N cycling in soil, but this hypothesis has not yet been tested. Hence we investigated the influence of simulated climate change (increased temperatures, reduced soil water availability) on soil gross microbial N turnover and plant N uptake in the beech-soil interface of a typical mountainous beech forest stocking on calcareous soil in SW Germany. For this purpose, triple 15N isotope labelling of intact beech seedling-soil-microbe systems was combined with a space-for-time climate change experiment. We found that nitrate was the dominant N source for beech natural regeneration. Reduced soil water content caused a persistent decline of ammonia oxidizing bacteria and therefore, a massive attenuation of gross nitrification rates and nitrate availability in the soil. Consequently, nitrate and total N uptake of beech seedlings were strongly reduced so that impaired growth of beech seedlings was observed already after one year of exposure to simulated climatic change. We conclude that the N cycle in this ecosystem and here specifically nitrification is vulnerable to reduced water availability, which can directly lead to nutritional limitations of beech seedlings. This tight link between reduced water availability, drought stress for nitrifiers, decreased gross nitrification rates and nitrate availability and finally nitrate uptake by beech seedlings could represent the Achilles' heel for beech under climate change stresses.

DOI: 10.1371/journal.pone.0158823
PubMed: 27410969
PubMed Central: PMC4943676


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<nlm:affiliation>King Saud University, PO Box 2454, Riyadh 11451, Saudi Arabia.</nlm:affiliation>
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<nlm:affiliation>Research Unit Forest Resources and Management, Swiss Federal Research Institute WSL, Zuercherstrasse 111, CH-8903 Birmensdorf, Switzerland.</nlm:affiliation>
<country xml:lang="fr">Suisse</country>
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<name sortKey="Baltensweiler, Andri" sort="Baltensweiler, Andri" uniqKey="Baltensweiler A" first="Andri" last="Baltensweiler">Andri Baltensweiler</name>
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<author>
<name sortKey="Kogel Knabner, Ingrid" sort="Kogel Knabner, Ingrid" uniqKey="Kogel Knabner I" first="Ingrid" last="Kögel-Knabner">Ingrid Kögel-Knabner</name>
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<nlm:affiliation>Lehrstuhl für Bodenkunde, Department für Ökologie und Ökosystemmanagement, Wissenschaftszentrum Weihenstephan. Technische Universität München, 85350 Freising-Weihenstephan, Germany.</nlm:affiliation>
<country xml:lang="fr">Allemagne</country>
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<region type="district" nuts="2">District de Haute-Bavière</region>
</placeName>
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<affiliation wicri:level="4">
<nlm:affiliation>IAS-Institute for Advanced Study, Technische Universität München, Lichtenbergstraße 2a, D-85748 Garching, Germany.</nlm:affiliation>
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<name sortKey="Polle, Andrea" sort="Polle, Andrea" uniqKey="Polle A" first="Andrea" last="Polle">Andrea Polle</name>
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<wicri:regionArea>Forest Botany and Tree Physiology, Büsgen-Institute, Georg-August Universität Göttingen, Büsgenweg 2, 37077 Göttingen</wicri:regionArea>
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</placeName>
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<name sortKey="Schloter, Michael" sort="Schloter, Michael" uniqKey="Schloter M" first="Michael" last="Schloter">Michael Schloter</name>
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<nlm:affiliation>Environmental Genomics, Helmholtz Zentrum München, German Research Center for Environmental Health, Ingolstädter Landstr. 1, 85764 Neuherberg, Germany.</nlm:affiliation>
<country xml:lang="fr">Allemagne</country>
<wicri:regionArea>Environmental Genomics, Helmholtz Zentrum München, German Research Center for Environmental Health, Ingolstädter Landstr. 1, 85764 Neuherberg</wicri:regionArea>
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<wicri:noRegion>85764 Neuherberg</wicri:noRegion>
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<author>
<name sortKey="Simon, Judy" sort="Simon, Judy" uniqKey="Simon J" first="Judy" last="Simon">Judy Simon</name>
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<wicri:regionArea>Institute of Forest Sciences, Chair of Tree Physiology, University of Freiburg; Georges-Koehler-Allee 53/54, 79110 Freiburg</wicri:regionArea>
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<region type="land" nuts="1">Bade-Wurtemberg</region>
<region type="district" nuts="2">District de Fribourg-en-Brisgau</region>
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<author>
<name sortKey="Rennenberg, Heinz" sort="Rennenberg, Heinz" uniqKey="Rennenberg H" first="Heinz" last="Rennenberg">Heinz Rennenberg</name>
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<nlm:affiliation>Institute of Forest Sciences, Chair of Tree Physiology, University of Freiburg; Georges-Koehler-Allee 53/54, 79110 Freiburg, Germany.</nlm:affiliation>
<country xml:lang="fr">Allemagne</country>
<wicri:regionArea>Institute of Forest Sciences, Chair of Tree Physiology, University of Freiburg; Georges-Koehler-Allee 53/54, 79110 Freiburg</wicri:regionArea>
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<region type="land" nuts="1">Bade-Wurtemberg</region>
<region type="district" nuts="2">District de Fribourg-en-Brisgau</region>
<settlement type="city">Fribourg-en-Brisgau</settlement>
</placeName>
</affiliation>
<affiliation wicri:level="1">
<nlm:affiliation>King Saud University, PO Box 2454, Riyadh 11451, Saudi Arabia.</nlm:affiliation>
<country xml:lang="fr">Arabie saoudite</country>
<wicri:regionArea>King Saud University, PO Box 2454, Riyadh 11451</wicri:regionArea>
<wicri:noRegion>Riyadh 11451</wicri:noRegion>
</affiliation>
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<series>
<title level="j">PloS one</title>
<idno type="eISSN">1932-6203</idno>
<imprint>
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<term>Ammonia (metabolism)</term>
<term>Climate (MeSH)</term>
<term>Climate Change (MeSH)</term>
<term>Computer Simulation (MeSH)</term>
<term>Droughts (MeSH)</term>
<term>Europe (MeSH)</term>
<term>Fagus (metabolism)</term>
<term>Forests (MeSH)</term>
<term>Hot Temperature (MeSH)</term>
<term>Mycorrhizae (growth & development)</term>
<term>Nitrogen (metabolism)</term>
<term>Nitrogen Cycle (physiology)</term>
<term>Oxidation-Reduction (MeSH)</term>
<term>Oxidoreductases (genetics)</term>
<term>Soil (chemistry)</term>
<term>Trees (metabolism)</term>
</keywords>
<keywords scheme="KwdFr" xml:lang="fr">
<term>Ammoniac (métabolisme)</term>
<term>Arbres (métabolisme)</term>
<term>Azote (métabolisme)</term>
<term>Changement climatique (MeSH)</term>
<term>Climat (MeSH)</term>
<term>Cycle de l'azote (physiologie)</term>
<term>Europe (MeSH)</term>
<term>Fagus (métabolisme)</term>
<term>Forêts (MeSH)</term>
<term>Mycorhizes (croissance et développement)</term>
<term>Oxidoreductases (génétique)</term>
<term>Oxydoréduction (MeSH)</term>
<term>Simulation numérique (MeSH)</term>
<term>Sol (composition chimique)</term>
<term>Sécheresses (MeSH)</term>
<term>Température élevée (MeSH)</term>
</keywords>
<keywords scheme="MESH" type="chemical" qualifier="chemistry" xml:lang="en">
<term>Soil</term>
</keywords>
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<term>Oxidoreductases</term>
</keywords>
<keywords scheme="MESH" type="chemical" qualifier="metabolism" xml:lang="en">
<term>Ammonia</term>
<term>Nitrogen</term>
</keywords>
<keywords scheme="MESH" qualifier="composition chimique" xml:lang="fr">
<term>Sol</term>
</keywords>
<keywords scheme="MESH" qualifier="croissance et développement" xml:lang="fr">
<term>Mycorhizes</term>
</keywords>
<keywords scheme="MESH" qualifier="growth & development" xml:lang="en">
<term>Mycorrhizae</term>
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<term>Oxidoreductases</term>
</keywords>
<keywords scheme="MESH" qualifier="metabolism" xml:lang="en">
<term>Fagus</term>
<term>Trees</term>
</keywords>
<keywords scheme="MESH" qualifier="métabolisme" xml:lang="fr">
<term>Ammoniac</term>
<term>Arbres</term>
<term>Azote</term>
<term>Fagus</term>
</keywords>
<keywords scheme="MESH" qualifier="physiologie" xml:lang="fr">
<term>Cycle de l'azote</term>
</keywords>
<keywords scheme="MESH" qualifier="physiology" xml:lang="en">
<term>Nitrogen Cycle</term>
</keywords>
<keywords scheme="MESH" xml:lang="en">
<term>Climate</term>
<term>Climate Change</term>
<term>Computer Simulation</term>
<term>Droughts</term>
<term>Europe</term>
<term>Forests</term>
<term>Hot Temperature</term>
<term>Oxidation-Reduction</term>
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<term>Changement climatique</term>
<term>Climat</term>
<term>Europe</term>
<term>Forêts</term>
<term>Oxydoréduction</term>
<term>Simulation numérique</term>
<term>Sécheresses</term>
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<div type="abstract" xml:lang="en">European beech forests growing on marginal calcareous soils have been proposed to be vulnerable to decreased soil water availability. This could result in a large-scale loss of ecological services and economical value in a changing climate. In order to evaluate the potential consequences of this drought-sensitivity, we investigated potential species range shifts for European beech forests on calcareous soil in the 21st century by statistical species range distribution modelling for present day and projected future climate conditions. We found a dramatic decline by 78% until 2080. Still the physiological or biogeochemical mechanisms underlying the drought sensitivity of European beech are largely unknown. Drought sensitivity of beech is commonly attributed to plant physiological constraints. Furthermore, it has also been proposed that reduced soil water availability could promote nitrogen (N) limitation of European beech due to impaired microbial N cycling in soil, but this hypothesis has not yet been tested. Hence we investigated the influence of simulated climate change (increased temperatures, reduced soil water availability) on soil gross microbial N turnover and plant N uptake in the beech-soil interface of a typical mountainous beech forest stocking on calcareous soil in SW Germany. For this purpose, triple 15N isotope labelling of intact beech seedling-soil-microbe systems was combined with a space-for-time climate change experiment. We found that nitrate was the dominant N source for beech natural regeneration. Reduced soil water content caused a persistent decline of ammonia oxidizing bacteria and therefore, a massive attenuation of gross nitrification rates and nitrate availability in the soil. Consequently, nitrate and total N uptake of beech seedlings were strongly reduced so that impaired growth of beech seedlings was observed already after one year of exposure to simulated climatic change. We conclude that the N cycle in this ecosystem and here specifically nitrification is vulnerable to reduced water availability, which can directly lead to nutritional limitations of beech seedlings. This tight link between reduced water availability, drought stress for nitrifiers, decreased gross nitrification rates and nitrate availability and finally nitrate uptake by beech seedlings could represent the Achilles' heel for beech under climate change stresses. </div>
</front>
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<DateCompleted>
<Year>2017</Year>
<Month>08</Month>
<Day>08</Day>
</DateCompleted>
<DateRevised>
<Year>2019</Year>
<Month>01</Month>
<Day>11</Day>
</DateRevised>
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<ISSN IssnType="Electronic">1932-6203</ISSN>
<JournalIssue CitedMedium="Internet">
<Volume>11</Volume>
<Issue>7</Issue>
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</PubDate>
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<Title>PloS one</Title>
<ISOAbbreviation>PLoS One</ISOAbbreviation>
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<ArticleTitle>Climate Change Impairs Nitrogen Cycling in European Beech Forests.</ArticleTitle>
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<ELocationID EIdType="doi" ValidYN="Y">10.1371/journal.pone.0158823</ELocationID>
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<AbstractText>European beech forests growing on marginal calcareous soils have been proposed to be vulnerable to decreased soil water availability. This could result in a large-scale loss of ecological services and economical value in a changing climate. In order to evaluate the potential consequences of this drought-sensitivity, we investigated potential species range shifts for European beech forests on calcareous soil in the 21st century by statistical species range distribution modelling for present day and projected future climate conditions. We found a dramatic decline by 78% until 2080. Still the physiological or biogeochemical mechanisms underlying the drought sensitivity of European beech are largely unknown. Drought sensitivity of beech is commonly attributed to plant physiological constraints. Furthermore, it has also been proposed that reduced soil water availability could promote nitrogen (N) limitation of European beech due to impaired microbial N cycling in soil, but this hypothesis has not yet been tested. Hence we investigated the influence of simulated climate change (increased temperatures, reduced soil water availability) on soil gross microbial N turnover and plant N uptake in the beech-soil interface of a typical mountainous beech forest stocking on calcareous soil in SW Germany. For this purpose, triple 15N isotope labelling of intact beech seedling-soil-microbe systems was combined with a space-for-time climate change experiment. We found that nitrate was the dominant N source for beech natural regeneration. Reduced soil water content caused a persistent decline of ammonia oxidizing bacteria and therefore, a massive attenuation of gross nitrification rates and nitrate availability in the soil. Consequently, nitrate and total N uptake of beech seedlings were strongly reduced so that impaired growth of beech seedlings was observed already after one year of exposure to simulated climatic change. We conclude that the N cycle in this ecosystem and here specifically nitrification is vulnerable to reduced water availability, which can directly lead to nutritional limitations of beech seedlings. This tight link between reduced water availability, drought stress for nitrifiers, decreased gross nitrification rates and nitrate availability and finally nitrate uptake by beech seedlings could represent the Achilles' heel for beech under climate change stresses. </AbstractText>
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<LastName>Dannenmann</LastName>
<ForeName>Michael</ForeName>
<Initials>M</Initials>
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<Affiliation>Institute of Meteorology and Climate Research, Atmospheric Environmental Research (IMK-IFU), Karlsruhe Institute of Technology (KIT), Kreuzeckbahnstrasse 19, 82467 Garmisch-Partenkirchen, Germany.</Affiliation>
</AffiliationInfo>
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<Affiliation>Institute of Forest Sciences, Chair of Tree Physiology, University of Freiburg; Georges-Koehler-Allee 53/54, 79110 Freiburg, Germany.</Affiliation>
</AffiliationInfo>
</Author>
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<LastName>Bimüller</LastName>
<ForeName>Carolin</ForeName>
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<Affiliation>Lehrstuhl für Bodenkunde, Department für Ökologie und Ökosystemmanagement, Wissenschaftszentrum Weihenstephan. Technische Universität München, 85350 Freising-Weihenstephan, Germany.</Affiliation>
</AffiliationInfo>
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<LastName>Gschwendtner</LastName>
<ForeName>Silvia</ForeName>
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</AffiliationInfo>
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<ForeName>Javier</ForeName>
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</AffiliationInfo>
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<LastName>Bilela</LastName>
<ForeName>Silvija</ForeName>
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<LastName>Gasche</LastName>
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<AffiliationInfo>
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</AffiliationInfo>
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<LastName>Simon</LastName>
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<LastName>Rennenberg</LastName>
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</AffiliationInfo>
<AffiliationInfo>
<Affiliation>King Saud University, PO Box 2454, Riyadh 11451, Saudi Arabia.</Affiliation>
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