Contrasting effects of ammonium and nitrate addition on soil organic carbon in Zoige Plateau peatland

Peatland soils, typically nitrogen (N)-limited, are important carbon (C) reservoirs and may be significantly affected by N deposition. Nitrate (NO 3 − -N) and ammonium (NH 4 + -N) are the primary forms of N deposition, with substantial spatial variability. However, how these N forms affect soil organic carbon (SOC) in Plateau peatlands remains unclear. To address this gap, this study stimulated various addition rate of NO 3 − -N and NH 4 + -N (ranging from 0 to 400 kg N ha −1 yr −1 ) to soils sampled from Zoige peatland, China, and then investigated SOC changes and the possible mechanisms driving these responses after a 45-day incubation. Compared to soil without N addition, soils with NO 3 − -N addition had lower SOC, while those with NH 4 + -N addition had higher SOC. NO 3 − -N addition increased enzyme activities and the abundance of soil organic matter (SOM)-decomposing microbes (e.g., Rhodoferax and Nocardioides ), leading to greater dissolved organic C leaching and SOC loss. In contrast, NH 4 + -N addition decreased soil pH, which inhibited the growth of SOM-decomposing microbes, thereby protecting SOC degradation. In summary, in N-limited peatland soil, NO 3 − -N deposition may accelerate SOC decomposition and promote C loss, whereas NH 4 + -N deposition may help mitigate SOC decomposition and prevent C loss.

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Publication Details

Journal
International Biodeterioration & Biodegradation
Published
2026-10-06
DOI
https://doi.org/10.1016/j.ibiod.2026.106483
Primary Topic
Peatlands and Wetlands Ecology
Type
article
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article

Contrasting effects of ammonium and nitrate addition on soil organic carbon in Zoige Plateau peatland

Ling Luo, Joseph Patrick Gweyi-Onyango, Hanqing Luo, Erick Oduor Otieno et al.
International Biodeterioration & Biodegradation
Peatlands and Wetlands Ecology
article

Contrasting effects of ammonium and nitrate addition on soil organic carbon in Zoige Plateau peatland

Ling Luo, Joseph Patrick Gweyi-Onyango, Hanqing Luo, Erick Oduor Otieno, Ting Lan, Ji-Dong Gu
article en

Abstract

Peatland soils, typically nitrogen (N)-limited, are important carbon (C) reservoirs and may be significantly affected by N deposition. Nitrate (NO 3 − -N) and ammonium (NH 4 + -N) are the primary forms of N deposition, with substantial spatial variability. However, how these N forms affect soil organic carbon (SOC) in Plateau peatlands remains unclear. To address this gap, this study stimulated various addition rate of NO 3 − -N and NH 4 + -N (ranging from 0 to 400 kg N ha −1 yr −1 ) to soils sampled from Zoige peatland, China, and then investigated SOC changes and the possible mechanisms driving these responses after a 45-day incubation. Compared to soil without N addition, soils with NO 3 − -N addition had lower SOC, while those with NH 4 + -N addition had higher SOC. NO 3 − -N addition increased enzyme activities and the abundance of soil organic matter (SOM)-decomposing microbes (e.g., Rhodoferax and Nocardioides ), leading to greater dissolved organic C leaching and SOC loss. In contrast, NH 4 + -N addition decreased soil pH, which inhibited the growth of SOM-decomposing microbes, thereby protecting SOC degradation. In summary, in N-limited peatland soil, NO 3 − -N deposition may accelerate SOC decomposition and promote C loss, whereas NH 4 + -N deposition may help mitigate SOC decomposition and prevent C loss.

International Biodeterioration & BiodegradationVol. 217
Kenyatta University (KE), Sichuan Agricultural University (CN), Guangdong Technion-Israel Institute of Technology (CN)
Life on land, Zero hunger
Openalex Percentile: Top 15%
Peatlands and Wetlands Ecology
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