Related Experiment Video
Updated: Jun 4, 2026

Temperature Response of Soil Organic Matter Decomposition Rates: Construction and Applications of a Temperature Gradient Block
Published on: January 30, 2026
Effect of a temperature gradient on Sphagnum fallax and its associated living microbial communities: a study under
Vincent E J Jassey1, Daniel Gilbert, Philippe Binet
1Laboratoire Chrono-environnement, Université de Franche-Comté, UMR UFC/CNRS 6249 USC INRA, Montbéliard 25211 CEDEX, France. vincent.jassey@univ-fcomte.fr
Abstract:
Microbial communities living in Sphagnum are known to constitute early indicators of ecosystem disturbances, but little is known about their response (including their trophic relationships) to climate change. A microcosm experiment was designed to test the effects of a temperature gradient (15, 20, and 25°C) on microbial communities including different trophic groups (primary producers, decomposers, and unicellular predators) in Sphagnum segments (0-3 cm and 3-6 cm of the capitulum). Relationships between microbial communities and abiotic factors (pH, conductivity, temperature, and polyphenols) were also studied. The density and the biomass of testate amoebae in Sphagnum upper segments increased and their community structure changed in heated treatments. The biomass of testate amoebae was linked to the biomass of bacteria and to the total biomass of other groups added and, thus, suggests that indirect effects on the food web structure occurred. Redundancy analysis revealed that microbial assemblages differed strongly in Sphagnum upper segments along a temperature gradient in relation to abiotic factors. The sensitivity of these assemblages made them interesting indicators of climate change. Phenolic compounds represented an important explicative factor in microbial assemblages and outlined the potential direct and (or) indirect effects of phenolics on microbial communities.
More Related Videos
Related Concept Videos
Factors Influencing Microbial Growth: Temperature
Microbial Mats
Microenvironments
Microbes and Climate Change
Physical Methods for Controlling Microbial Growth: Temperature
The Winogradsky Column

