Site-specific controls predominate over erosion effects on nitrogen turnover: Evidence from 15N tracing in the field

Understanding how nitrogen (N) cycling is affected by soil erosion is essential to optimize N supply for crops and reduce losses in hilly fields. While topography-related impacts on N availability and losses have been studied, the mechanisms linking erosion to N transformation dynamics remain unclear. We conducted a field experiment at two sites to investigate gross N transformation, plant N uptake, and nitrous oxide (N 2 O) emissions from different sources in erosion-affected soils. Two 15 N-labelling approaches were combined: process-based modelling of N transformation following in situ 15 N tracing after fertilization and season-long 15 N balancing, to trace 15 N-enriched fertilizer N in maize biomass, soil and N 2 O emissions. Although differences in gross N transformation rates, N 2 O emissions, crop yields, and total 15 N recovery were more pronounced between sites than between soils, several N measures showed site-specific trends across erosion-affected soils. In Dedelow, gross N mineralization, NH 4 + immobilization, and NH 4 + oxidation were at least twofold higher in eroded compared to non-eroded and deposited soils. This contrasts with the expectation that eroded soils generally exhibit reduced N turnover and the lowest soil fertility. In Friedrichshof, seasonal N 2 O emissions tended to be higher in deposited and eroded soils than non-eroded soils. However, N measures did not follow the same pattern across soils between sites, except for crop yield and soil-derived N supply, both increasing in the order non-eroded < eroded < deposited soils at both sites. Our findings emphasize the importance of temporal and site-specific conditions for managing N supply and losses in erosion-affected soils.

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Publication Details

Journal
Geoderma
Published
2026-09-16
DOI
https://doi.org/10.1016/j.geoderma.2026.118045
Primary Topic
Isotope Analysis in Ecology
Type
article
Field-Weighted Citation Impact
0.00

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article

Site-specific controls predominate over erosion effects on nitrogen turnover: Evidence from 15N tracing in the field

Tobias Rütting, M. Sommer, Reinhard Well, Isabel Zentgraf et al.
Geoderma
Isotope Analysis in Ecology
article

Site-specific controls predominate over erosion effects on nitrogen turnover: Evidence from 15N tracing in the field

Tobias Rütting, M. Sommer, Reinhard Well, Isabel Zentgraf, Valerie Pusch, Mathias Hoffmann, Maire Holz, Caroline Buchen‐Tschiskale, Katja Kramp, Julia Schoof
article en

Abstract

Understanding how nitrogen (N) cycling is affected by soil erosion is essential to optimize N supply for crops and reduce losses in hilly fields. While topography-related impacts on N availability and losses have been studied, the mechanisms linking erosion to N transformation dynamics remain unclear. We conducted a field experiment at two sites to investigate gross N transformation, plant N uptake, and nitrous oxide (N 2 O) emissions from different sources in erosion-affected soils. Two 15 N-labelling approaches were combined: process-based modelling of N transformation following in situ 15 N tracing after fertilization and season-long 15 N balancing, to trace 15 N-enriched fertilizer N in maize biomass, soil and N 2 O emissions. Although differences in gross N transformation rates, N 2 O emissions, crop yields, and total 15 N recovery were more pronounced between sites than between soils, several N measures showed site-specific trends across erosion-affected soils. In Dedelow, gross N mineralization, NH 4 + immobilization, and NH 4 + oxidation were at least twofold higher in eroded compared to non-eroded and deposited soils. This contrasts with the expectation that eroded soils generally exhibit reduced N turnover and the lowest soil fertility. In Friedrichshof, seasonal N 2 O emissions tended to be higher in deposited and eroded soils than non-eroded soils. However, N measures did not follow the same pattern across soils between sites, except for crop yield and soil-derived N supply, both increasing in the order non-eroded < eroded < deposited soils at both sites. Our findings emphasize the importance of temporal and site-specific conditions for managing N supply and losses in erosion-affected soils.

GeodermaVol. 474
Humboldt-Universität zu Berlin (DE), Leibniz Centre for Agricultural Landscape Research (DE), Brandenburg University of Technology Cottbus-Senftenberg (DE), University of Gothenburg (SE)
Deutsche Forschungsgemeinschaft
Openalex Percentile: Top 12%
Isotope Analysis in Ecology
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