Universitas HKBP Nommensen, Faculty of Agriculture, Agroecotechnology Department, , Jl. Sutomo No. 4A, Medan 20234, Indonesia
2
Universitas Padjadjaran, Department of Soil Sciences and Land Resources Management, Faculty of Agriculture, Jl. Raya Bandung—Sumedang km 21, Jatinangor 65363, Indonesia
3
Justus Liebig University, Institute for Applied Microbiology, Heinrich-Buff-Ring 26-32 35392 Gießen, Germany
Zaznaczeni autorzy mieli równy wkład w przygotowanie tego artykułu
Data nadesłania: 19-11-2025
Data ostatniej rewizji: 21-04-2026
Data akceptacji: 08-10-2026
Data publikacji online: 08-10-2026
Data publikacji: 08-10-2026
Autor do korespondencji
Ferisman Tindaon
Agroecotechnology Department, Faculty of Agriculture,,, University of HKBP Nommensen, Jl. Sutomo No. 4A, 20234, Medan, Indonesia
The industrial synthesis of nitrogenous fertilizers through the Haber-Bosch process has fundamentally transformed the global nitrogen cycle, resulting in a range of environmental challenges, including increased greenhouse gas emissions and aquatic eutrophication. To address these issues and improve Nitrogen Use Efficiency (NUE), agrochemical inhibitors are increasingly utilized to regulate specific microbial and enzymatic processes. Although these compounds effectively target urease (UI), nitrification (NI), and denitrification (DI) pathways, their capacity to suppress biological functions necessitates careful consideration of ecological safety. This review systematically examines literature from 2010 to 2025, sourced from Web of Science, Scopus, and Google Scholar, with bibliometric mapping supported by VOSviewer and Harzing’s Publish or Perish. The search strategy prioritized field-scale studies and meta-analyses that provide quantitative data on soil microbial communities and aquatic toxicity, ensuring analytical rigor. The review synthesizes evidence from microbial metagenomics and high-throughput ecotoxicity testing to assess the broader impacts of inhibitors on soil health. By integrating findings from laboratory and long-term field studies, the analysis identifies latent risks such as "pollution swapping," in which the inhibition of one nitrogen-loss pathway may inadvertently accelerate another. Additionally, shifts in non-target microbial taxa and the potential for bioaccumulation are highlighted as significant ecological concerns. The synthesis of these findings demonstrates that exclusive reliance on short-term agronomic efficacy is insufficient for comprehensive environmental assessment. A multi-tiered evaluation framework is essential to reconcile immediate productivity gains with the long-term sustainability of soil ecosystem services and microbial resilience.
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