EGU24-3644, updated on 08 Mar 2024
https://doi.org/10.5194/egusphere-egu24-3644
EGU General Assembly 2024
© Author(s) 2024. This work is distributed under
the Creative Commons Attribution 4.0 License.

Universal microbial reworking of dissolved organic matter along soil gradients

Erika Freeman1, Erik Emilson2,3, Thorsten Dittmar4,5, Lucas Braga1, Caroline Emilson2, Tobias Goldhammer6, Christine Martineau7, Gabriel Singer8, and Andrew Tanentzap1,3
Erika Freeman et al.
  • 1Ecosystems and Global Change Group, Department of Plant Sciences, University of Cambridge, Cambridge, CB2 3EA, UK
  • 2Natural Resources Canada, Canadian Forest Service, Great Lakes Forestry Centre, 1219 Queen St. E., Sault Ste, Marie, ON, P6A 2E5, Canada
  • 3Ecosystems and Global Change Group, School of the Environment, Trent University, Peterborough, ON, K9L 0G2, Canada
  • 4Institute for Chemistry and Biology of the Marine Environment, University of Oldenburg, 26129, Oldenburg, Germany
  • 5Helmholtz Institute for Functional Marine Biodiversity, University of Oldenburg, 26129, Oldenburg, Germany
  • 6Department of Ecohydrology and Biogeochemistry, Leibniz-Institute of Freshwater Ecology and Inland Fisheries, Mueggelseedamm, 301, Berlin, Germany
  • 7Natural Resources Canada, Laurentian Forestry Centre, 1055 Du P.E.P.S. Street, P.O. Box 10380, Québec, G1V 4C7, Canada
  • 8Department of Ecology, University of Innsbruck, Technikerstrasse 25, 6020, Innsbruck, Austria

Soils lose a large amount of carbon annually to freshwaters as dissolved organic matter (DOM), which, if degraded, can undermine climate change mitigation. The degradation state of DOM in aquatic ecosystems can reflect the distance from its source, with DOM increasingly dominated by similar compounds as degradation proceeds. However, the processes underlying the degradation of DOM and its generality across environments are poorly understood. Here we found DOM changed similarly along two soil-aquatic gradients irrespective of environmental conditions. We tracked DOM across soil depths and hillslope positions in forest headwater catchments using ultra-high-resolution mass spectrometry and related its composition to soil microbiomes and physical chemistry. Along both gradients, carbohydrate-like and unsaturated hydrocarbon-like compounds increased in mass, suggestive of microbial reworking of plant material. Most of the variation in the abundance of these compounds (>56%) was related to the expression of genes important for breaking down plant-derived carbohydrates. Our results highlight the value of high-resolution molecular data in understanding global carbon cycles, directly implicate microbial processing in shifting DOM towards universal compounds in soils, and suggest that this process is generalizable across ecosystems and spatiotemporal scales. This consistent degradation process could provide insights for estimating the state of DOM in different environments and inform the management of soil-to-stream carbon losses.

How to cite: Freeman, E., Emilson, E., Dittmar, T., Braga, L., Emilson, C., Goldhammer, T., Martineau, C., Singer, G., and Tanentzap, A.: Universal microbial reworking of dissolved organic matter along soil gradients, EGU General Assembly 2024, Vienna, Austria, 14–19 Apr 2024, EGU24-3644, https://doi.org/10.5194/egusphere-egu24-3644, 2024.