Microbial response to warming and cellulose addition in a maritime Antarctic soil

Author:

Pradel Paulina1,Bravo León A.12,Merino Carolina234,Trefault Nicole5,Rodríguez Rodrigo6,Knicker Heike7,Jara Claudia6,Larama Giovanni89,Matus Francisco23ORCID

Affiliation:

1. Laboratorio de Fisiología y Biología Molecular Vegetal, Departamento de Ciencias Agronómicas y Recursos Naturales, Facultad de Ciencias Agropecuarias y Forestales Universidad de La Fronetera Temuco Chile

2. Network for Extreme Environmental Research (NEXER) Universidad de La Frontera Temuco Chile

3. Laboratory of Conservation and Dynamics of Volcanic Soils, Department of Chemical Sciences and Natural Resources Universidad de La Frontera Temuco Chile

4. Center of Plant Soil Interaction and Natural Resources Biotechnology Scientific and Technological Bioresource Nucleus (BIOREN) Universidad de La Frontera Temuco Chile

5. GEMA Center for Genomics, Ecology and Environment Universidad Mayor Chile

6. PhD Program of Natural Resources Sciences Universidad de La Frontera Chile

7. Instituto de Recursos Naturales y Agrobiología de Sevilla (IRNAS‐CSIC) Sevilla Spain

8. Agriaquaculture Nutritional Genomic Center, CGNA Temuco Chile

9. Centro de Modelación y Computación Científica Universidad de La Frontera Chile

Abstract

AbstractMaritime Antarctic King George Island (South Shetland Islands) has experienced rapid warming in recent decades, but the impacts on soil organic matter (SOM) decomposition remain ambiguous. Most vegetation cover is dominated by bryophytes (mosses), whereas a few vascular plants, such as Deschampsia antarctica and Colobanthus quitensis grow interspersed. Therefore, SOM is mainly enriched with carbohydrates and C‐alkyl, provided by mosses, which lack lignin as a precursor for aromatic compounds and humus formation. However, there is no clear answer to how substrate and temperature increase changes in Antarctic microbial respiration. We determined in what way SOM mineralization changes with temperature and substrate addition by characterizing the temperature sensitivity (Q10) of soil respiration in an open‐top chamber warming experiment. We hypothesized that: (a) cold‐tolerant microorganisms are well adapted to growing in maritime Antarctic soils (~ 0°C), so would not respond to low and moderate temperature increases because they undergo various metabolic mechanism adjustments until they experience increasing temperatures toward optimum growth (e.g., by enzyme production); and (b) cellulose, as a complex carbonaceous substrate of vegetated areas in Maritime Antarctic soils, activates microorganisms, increasing the Q10 of soil organic carbon (SOC) mineralization. Soils (5–10 cm) were sampled after four consecutive years of experimental warming for SOC composition, microbial community structure, and C mineralization at 4, 12, and 20°C with and without cellulose addition. Functional group chemoheterotrophs, represented mainly by Proteobacteria, decomposed more refractory SOC (aromatic compounds), as indicated by nuclear magnetic resonance (NMR) spectroscopy, in ambient plots than in warming plots where plants were growing. The C‐CO2 efflux from the incubation experiment remained stable below 12°C but sharply increased at 20°C. Q10 varied between 0.4 and 4 and was reduced at 20°C, whereas cellulose addition increased Q10. In conclusion, as confirmed during field studies in a climate scenario, cold‐tolerant microorganisms in maritime Antarctic soils were slightly affected by increasing temperature (e.g., 4–12°C), with reduced temperature sensitivity, as summarized in a conceptual model.

Publisher

Wiley

Subject

Earth-Surface Processes

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