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Soil type affects partitioning of ruminant urine-<sup>15</sup>N due to variation in nitrification potential, immobilisation and drainage under autumn-winter conditions

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posted on 2025-08-29, 01:25 authored by Keren DingKeren Ding, Jiafa LuoJiafa Luo, Tim Clough, Stewart Ledgard, Stuart LindseyStuart Lindsey, Hongjie Di
<p dir="ltr">There is a need to better understand how soil type affects ruminant urine-N and the <i>in situ</i> losses of nitrous oxide (N<sub>2</sub>O) and dinitrogen (N2) from pasture ecosystems. Similarly, the significance of processes responsible for these losses as N<sub>2</sub>, such as codenitrification and denitrification, remain unclear. A 105 day <i>in situ</i> study quantified N<sub>2</sub> and N<sub>2</sub>O fluxes from two contrasting soil types, well-drained (Allophanic) and poorly-drained (Gley), after synthetic ruminant urine application (800 kg N ha<sup>−1</sup>, 40 atom % <sup>15</sup>N) in late autumn. The well-drained soil promoted nitrification, as evident from inorganic-N dynamics, higher bacterial amoA gene copy numbers and faster pH decline. The N<sub>2</sub>O emission factors from the poorly and well-drained soils were 1.48 ± 0.24 % and 0.22 ± 0.03 %, respectively. Denitrification N<sub>2</sub> fluxes were similar regardless of soil type, totalling 15 % of <sup>15</sup>N applied, and increased markedly after 60 days. While gene copy numbers of nosZI and nosZII varied temporarily, increasing as the poorly drained soil became anaerobic, there was no effect due to urine application, which may have been a consequence of denitrification occurring at depths below that used for microbial soil sampling. Codenitrification made a minor contribution to N<sub>2</sub> fluxes, accounting for ≤0.9 % of N<sub>2</sub> fluxes in the well-drained soil and 12.1 % in the poorly drained soil, confirming that codenitrification increases when soil conditions become anaerobic. In the well-drained soil, the <sup>15</sup>N recovery of urine showed that more urine-N was lost via nitrate leaching, followed by immobilisation in deeper soil depths. This highlights the importance of monitoring soil chemistry and biology in deeper soil layers when studying urine-N turnover and fate in grazed pasture soil. Despite identical historical grazing management these results show that soil type plays a determining role in urine-N transformation and fate, potentially due to differences in microbial activity, soil chemistry and drainage in deeper soil layers.</p>

Funding

AgResearch Strategic Science Investment Fund

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Rights statement

© 2025 The Authors. Published by Elsevier Ltd. This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).

Publication date

2025-03-12

Project number

  • Non revenue

Language

  • English

Does this contain Māori information or data?

  • No

Publisher

Elsevier

Journal title

Soil Biology and Biochemistry

ISSN

0038-0717

Volume/issue number

205

Page numbers

109782

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