Decadal soil warming decreased vascular plant above and belowground production in a subarctic grassland by inducing nitrogen limitation

Author:

Fang Chao12ORCID,Verbrigghe Niel3,Sigurdsson Bjarni D.4,Ostonen Ivika5ORCID,Leblans Niki I. W.6,Marañón‐Jiménez Sara789,Fuchslueger Lucia10,Sigurðsson Páll4,Meeran Kathiravan11,Portillo‐Estrada Miguel2,Verbruggen Erik2ORCID,Richter Andreas10,Sardans Jordi78,Peñuelas Josep78ORCID,Bahn Michael11,Vicca Sara2,Janssens Ivan A.2

Affiliation:

1. Research Center for Global Changes and Ecosystem Carbon Sequestration & Mitigation, School of Applied Meteorology Nanjing University of Information Science and Technology Nanjing 210044 China

2. PLECO (Plants and Ecosystems), Department of Biology University of Antwerp Universiteitsplein 1 Wilrijk 2610 Belgium

3. Flanders Research Institute for Agriculture, Fisheries and Food Caritasstraat 39 Melle 9090 Belgium

4. Agricultural University of Iceland Hvanneyri Borgarnes IS‐311 Iceland

5. Institute of Ecology and Earth Sciences, University of Tartu Tartu 51003 Estonia

6. Climate Impacts Research Centre Umeå University Umeå 90333 Sweden

7. CREAF, Cerdanyola del Vallès Barcelona 08193 Catalonia Spain

8. CSIC, Global Ecology Unit CREAF‐CSIC‐UAB Bellaterra Barcelona 08193 Catalonia Spain

9. Universitat Autònoma de Barcelona Cerdanyola del Vallès 08193 Spain

10. Centre for Microbiology and Environmental Systems Science University of Vienna Djerassiplatz 1 1030 Vienna Austria

11. Department of Ecology University of Innsbruck 6020 Innsbruck Austria

Abstract

Summary Below and aboveground vegetation dynamics are crucial in understanding how climate warming may affect terrestrial ecosystem carbon cycling. In contrast to aboveground biomass, the response of belowground biomass to long‐term warming has been poorly studied. Here, we characterized the impacts of decadal geothermal warming at two levels (on average +3.3°C and +7.9°C) on below and aboveground plant biomass stocks and production in a subarctic grassland. Soil warming did not change standing root biomass and even decreased fine root production and reduced aboveground biomass and production. Decadal soil warming also did not significantly alter the root–shoot ratio. The linear stepwise regression model suggested that following 10 yr of soil warming, temperature was no longer the direct driver of these responses, but losses of soil N were. Soil N losses, due to warming‐induced decreases in organic matter and water retention capacity, were identified as key driver of the decreased above and belowground production. The reduction in fine root production was accompanied by thinner roots with increased specific root area. These results indicate that after a decade of soil warming, plant productivity in the studied subarctic grassland was affected by soil warming mainly by the reduction in soil N.

Funder

Eesti Teadusagentuur

National Natural Science Foundation of China

Publisher

Wiley

Subject

Plant Science,Physiology

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