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Article

Role of Fungi in N2O Emissions from Nitrogen-Fertilized Lawn Soil

1
School of Landscape Architecture, Liaoning Agricultural Vocational and Technical College, Yingkou 115009, China
2
College of Agriculture and Horticulture, Liaoning Agricultural Vocational and Technical College, Yingkou 115009, China
3
College of Life and Science, Shenyang Normal University, Shenyang 110034, China
4
Institute of Applied Ecology, Chinese Academy of Sciences, Shenyang 110016, China
5
Weifang Institute of Modern Agriculture and Ecological Environment, Weifang 261041, China
6
Key Laboratory of Stable Isotope Techniques and Applications, Shenyang 110016, China
*
Authors to whom correspondence should be addressed.
These authors contributed equally to this work.
Nitrogen 2025, 6(4), 90; https://doi.org/10.3390/nitrogen6040090
Submission received: 16 August 2025 / Revised: 21 September 2025 / Accepted: 26 September 2025 / Published: 1 October 2025

Abstract

Urban lawns are a predominant form of vegetation in sports grounds and greenbelts. Nitrogen (N) fertilization is widely used to sustain lawn productivity. However, it also promotes nitrous oxide (N2O) emissions, a potent greenhouse gas. The microbial mechanisms underlying N2O emissions from fertilized lawn soils remain poorly understood. In this study, we conducted a controlled incubation experiment with four N application rates [0 (N0), 100 (N100), 200 (N200), and 300 kg·ha−1·yr−1 (N300)] to investigate N2O emissions and associated microbial processes in urban lawn soil. Biological inhibitors combined with high-throughput sequencing were used to quantify the inhibitor-sensitive fraction of fungi and bacteria contributing to N2O emissions. Our results showed that N fertilizer significantly increased N2O emissions, with the highest emission observed under N200. The fungi inhibitor-sensitive fraction accounted for ~45% of total N2O emissions, significantly higher than that of bacteria (~31%). Dominant fungal phyla included Ascomycota, Basidiomycota, and Zygomycota, with N fertilization significantly increasing the relative abundance of Ascomycota and decreasing that of Basidiomycota. Redundancy analysis revealed strong positive correlations between Ascomycota abundance and N2O emissions across N treatments. At the genus level, Pyrenochaetopsis, Myrothecium, and Humicola were positively associated with N2O production and identified as key functional taxa. These findings demonstrate that moderate N fertilization can disproportionately stimulate fungal-driven N2O emissions in urban lawns. The results provide a scientific basis for optimizing N fertilization strategies in green spaces, with implications for N policy and sustainable landscape management.
Keywords: lawn soil; N fertilizer; N2O emission; biological inhibitors; fungi lawn soil; N fertilizer; N2O emission; biological inhibitors; fungi

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MDPI and ACS Style

Xun, Z.; Zhao, M.; Zhao, X.; Wang, M.; Liu, Y.; Han, X.; Zhang, Y.; Wu, Y.; Quan, Z. Role of Fungi in N2O Emissions from Nitrogen-Fertilized Lawn Soil. Nitrogen 2025, 6, 90. https://doi.org/10.3390/nitrogen6040090

AMA Style

Xun Z, Zhao M, Zhao X, Wang M, Liu Y, Han X, Zhang Y, Wu Y, Quan Z. Role of Fungi in N2O Emissions from Nitrogen-Fertilized Lawn Soil. Nitrogen. 2025; 6(4):90. https://doi.org/10.3390/nitrogen6040090

Chicago/Turabian Style

Xun, Zhifeng, Mingzhu Zhao, Xueya Zhao, Mi Wang, Yujing Liu, Xueying Han, Yiming Zhang, Yanhua Wu, and Zhi Quan. 2025. "Role of Fungi in N2O Emissions from Nitrogen-Fertilized Lawn Soil" Nitrogen 6, no. 4: 90. https://doi.org/10.3390/nitrogen6040090

APA Style

Xun, Z., Zhao, M., Zhao, X., Wang, M., Liu, Y., Han, X., Zhang, Y., Wu, Y., & Quan, Z. (2025). Role of Fungi in N2O Emissions from Nitrogen-Fertilized Lawn Soil. Nitrogen, 6(4), 90. https://doi.org/10.3390/nitrogen6040090

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