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Biology subjects

Niederberger, J.

Publications and source records attributed to Niederberger, J..

2 recordsLinked to original sources

Vertical stratification drives additive prokaryotic diversity in beech forest floors, while site conditions shape boundary layers

The forest floor is a key interface regulating carbon and nutrient processing and transfer to the mineral soil, yet it is threatened by climate-change-driven reductions in organic layer mass. How its prokaryotic microbiome is structured across the fine-scale vertical gradient from fresh litter to mineral topsoil remains poorly resolved. We characterised prokaryotic communities across eight sequential layers spanning fresh litter, organic layers at different stages of decomposition, and mineral topsoil in three temperate beech forests using 16S rRNA gene amplicon sequencing. The decomposition stage was the dominant driver of community assembly, resulting in a strongly vertically stratified prokaryotic microbiome. While alpha diversity peaked within the fragmented litter layers, the overall high diversity of the forest floor was primarily an additive effect of vertical stratification. Site-specific effects were pronounced in the litter layer and the mineral topsoil, but diminished in the intermediate organic layers, where high local heterogeneity masked between-site differences. Redundancy analysis further showed that the environmental drivers of community structure shifted with depth, from litter quality in the upper horizons to mineral-associated properties in the mineral topsoil. At the same time, predicted 16S rRNA gene copy numbers indicate that the humified layers harbour the highest abundance of oligotrophic life strategists in the profile. By resolving the fine-scale vertical structure of the forest floor prokaryotic microbiome, our results provide a baseline for predicting how climate-change induced loss of organic layer mass threatens layer-specific communities, particularly the oligotrophic taxa in the humified layers, with consequences for the carbon turnover, tree nutrition, and nutrient cycling functions they mediate.

microbiology↗

Spatio-temporal plasticity of root exudation in three temperate tree species: effects of season, site and soil characteristics

Root exudation provides a constant carbon input to the rhizosphere and is therefore a very important factor in shaping this hotspot of biological activity. Nonetheless, root exudation data and its spatio-temporal plasticity is scarce. This study provides insights into compound-specific root exudation in three temperate tree species in two seasons (late spring and late summer) and two soil compartments (forest floor and the top mineral soil), including the effect of soil chemistry. At four sites with differing mean annual temperature and soil phosphorus level, root exudates were sampled using an in-situ cuvette-based system and analysed by gas chromatography-mass spectrometry. We found seasonally and spatially varying site- and species-specific exudation patterns. While the seasonal pattern was similar among species and sites, with higher exudation rates in late spring, soil compartment-specific exudation depended on species and site. Acer pseudoplatanus tended to exude more into the mineral soil at warmer sites, while Picea abies exuded more in the mineral soil at all sites. Exudation by Fagus sylvatica was independent from the soil compartment. Significant correlation between exchangeable soil cations and specific compounds exuded by F. sylvatica and P. abies were found. Exudation of specific compounds in F. sylvatica increased with the concentration of exchangeable Mg, Al and Fe, whereas exudation rates in P. abies decreased with most base cations concentration, while sugar exudation increased with the exchangeable non-base cations Al and Fe. These results demonstrate that root exudation is dynamically adjusted to the species-specific nutritional needs governed by site, season and soil characteristics.

plant biology↗