Data from: Trophic interactions regulate peatland carbon cycling
<p>Peatlands are the most efficient natural ecosystems for long-term storage of atmospheric carbon. Our understanding of peatland carbon cycling is based entirely on bottom-up controls regulated by low nutrient availability. Recent studies have shown that top-down controls through predator-prey dynamics can influence ecosystem function, yet this has not been evaluated in peatlands to date. Here, we used a combination of nutrient enrichment and trophic-level manipulation to test the hypothesis that interactions between nutrient availability (bottom-up) and predation (top-down) influence peatland carbon fluxes. Elevated nutrients stimulated bacterial biomass and organic matter decomposition. In the absence of top-down regulation, carbon dioxide (CO<sub>2</sub>) respiration driven by greater decomposition was offset by elevated algal productivity. Herbivores accelerated CO<sub>2</sub> emissions by removing algal biomass, while predators indirectly reduced CO<sub>2</sub> emissions by muting herbivory in a trophic cascade. This study demonstrates that trophic interactions can mitigate CO<sub>2</sub> emissions associated with elevated nutrient levels in northern peatlands.</p>
ShareScore
32/100
Overall dataset sharing score
Score breakdown
These five areas show where the dataset supports — or may limit — practical reuse.
- Stewardship
- 0
- Harmonization
- 12
- Access
- 12
- Reuse readiness
- 0
- Engagement
- 8