Katalog Plus
Bibliothek der Frankfurt UAS
Bald neuer Katalog: sichern Sie sich schon vorab Ihre persönlichen Merklisten im Nutzerkonto: Anleitung.
Dieses Ergebnis aus BASE kann Gästen nicht angezeigt werden.  Login für vollen Zugriff.

Microorganisms in subarctic soils are depleted of ribosomes under short-, medium-, and long-term warming

Title: Microorganisms in subarctic soils are depleted of ribosomes under short-, medium-, and long-term warming
Authors: Söllinger, Andrea; Ahlers, Laureen Sarah; Dahl, Mathilde Borg; Sigurðsson, Páll; Le Noir de Carlan, Coline; Bhattarai, Biplabi; Gall, Christoph; Martin, Victoria S.; Rottensteiner, Cornelia; Motleleng, Liabo; Breines, Eva Marie; Verbruggen, Erik; Ostonen, Ivika; Sigurdsson, Bjarni D.; Richter, Andreas; Tveit, Alexander Tøsdal
Publisher Information: Oxford University Press
Publication Year: 2024
Collection: University of Tromsø: Munin Open Research Archive
Description: Physiological responses of soil microorganisms to global warming are important for soil ecosystem function and the terrestrial carbon cycle. Here, we investigate the effects of weeks, years, and decades of soil warming across seasons and time on the microbial protein biosynthesis machineries (i.e. ribosomes), the most abundant cellular macromolecular complexes, using RNA:DNA and RNA:MBC (microbial biomass carbon) ratios as proxies for cellular ribosome contents. We compared warmed soils and non-warmed controls of 15 replicated subarctic grassland and forest soil temperature gradients subject to natural geothermal warming. RNA:DNA ratios tended to be lower in the warmed soils during summer and autumn, independent of warming duration (6 weeks, 8–14 years, and > 50 years), warming intensity (+3°C, +6°C, and +9°C), and ecosystem type. With increasing temperatures, RNA:MBC ratios were also decreasing. Additionally, seasonal RNA:DNA ratios of the consecutively sampled forest showed the same temperature-driven pattern. This suggests that subarctic soil microorganisms are depleted of ribosomes under warm conditions and the lack of consistent relationships with other physicochemical parameters besides temperature further suggests temperature as key driver. Furthermore, in incubation experiments, we measured significantly higher CO2 emission rates per unit of RNA from short- and long-term warmed soils compared to non-warmed controls. In conclusion, ribosome reduction may represent a widespread microbial physiological response to warming that offers a selective advantage at higher temperatures, as energy and matter can be reallocated from ribosome synthesis to other processes including substrate uptake and turnover. This way, ribosome reduction could have a substantial effect on soil carbon dynamics.
Document Type: article in journal/newspaper
Language: English
Relation: The ISME Journal; info:eu-repo/grantAgreement/EC/H2020/813114/Norway/A glimpse into the Arctic future: equipping a unique natural experiment for next-generation ecosystem research/FutureArctic/; FRIDAID 2274724; https://hdl.handle.net/10037/34473
DOI: 10.1093/ismejo/wrae081
Availability: https://hdl.handle.net/10037/34473; https://doi.org/10.1093/ismejo/wrae081
Rights: Attribution 4.0 International (CC BY 4.0) ; openAccess ; Copyright 2024 The Author(s) ; https://creativecommons.org/licenses/by/4.0
Accession Number: edsbas.A68989F2
Database: BASE