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生物硝化抑制剂研究进展及其农业减排潜力

乐虹雯 李浩楠 张鹏伟 李雅颖

植物营养与肥料学报2026,Vol.32Issue(4):709-731,23.
植物营养与肥料学报2026,Vol.32Issue(4):709-731,23.DOI:10.11674/zwyf.2025288

生物硝化抑制剂研究进展及其农业减排潜力

Biological nitrification inhibitors:research advances and potential for agricultural nitrogen emission reduction

乐虹雯 1李浩楠 2张鹏伟 3李雅颖3

作者信息

  • 1. 福州大学环境与安全工程学院,福建 福州 350108||中国科学院城市环境研究所/区域与城市生态安全全国重点实验室,福建 厦门 361021||浙江省石油化工环境污染控制重点实验室,浙江 宁波 315800
  • 2. 武汉工程大学环境生态与生物工程学院,湖北 武汉 430205
  • 3. 中国科学院城市环境研究所/区域与城市生态安全全国重点实验室,福建 厦门 361021||浙江省石油化工环境污染控制重点实验室,浙江 宁波 315800
  • 折叠

摘要

Abstract

Biological nitrification inhibitors(BNIs)are natural bioactive substances released by plants through root exudation,tissue extraction,or litter decomposition.They selectively inhibit ammonia-oxidizing microorganisms and the activity of their key enzymes,thereby slowing the conversion of ammonium nitrogen(NH4+-N)to nitrate nitrogen(NO3--N).This process effectively reduces nitrogen leaching and N2O emissions,thus enhancing nitrogen fertilizer use efficiency.Based on a bibliometric analysis of the literature,this study reveals that research interest in BNIs has increased rapidly since 2020,with research themes progressively shifting from fundamental mechanisms toward applied strategies.By synthesizing domestic and international studies published between 2000 and 2025,this review systematically summarizes the types and sources of BNIs and highlights that various crops,including Brachiaria,sorghum,wheat,rice,maize,and sugarcane,are capable of releasing active BNI compounds.Different BNIs exhibit substantial variability in inhibitory strength,environmental stability,and soil adaptability,and generally display pronounced pH dependency.Hydrophilic BNIs,such as methyl p-hydroxyphenyl propionate and 1,9-decanediol,are regulated by rhizosphere pH,nitrogen form,and plasma membrane H+-ATPase activity and are released across membranes via transporter-mediated pathways,whereas hydrophobic BNIs,such as sorgoleone,rely primarily on vesicle trafficking and exocytosis.In addition,external environmental factors,including soil moisture,soil bulk density,and oxygen availability,significantly influence BNI release.BNIs mainly inhibit nitrification by suppressing the activities of ammonia monooxygenase and hydroxylamine oxidoreductase,thereby blocking the first step of the nitrification process.Some BNIs may also interfere with electron transport chains or scavenge nitric oxide intermediates.Moreover,increasing attention has been paid to the regulatory effects of BNIs on nitrite oxidoreductase and key denitrification genes,such as nirK and nosZ,revealing their potential for coordinated regulation across multiple steps of the nitrification-denitrification pathway.Advanced analytical techniques,including chromatography,mass spectrometry,and nuclear magnetic resonance spectroscopy,have been widely applied for the structural identification of BNIs,facilitating accurate and efficient detection.Overall,BNIs demonstrate strong potential for the coordinated mitigation of NO3-leaching,NH3 volatilization,and N2O emissions in agricultural systems,contributing to both enhanced nitrogen use efficiency and environmental protection.However,their field stability and regional adaptability remain insufficiently understood.This review further summarizes current application methods and technologies of BNIs,focusing on three major aspects:breeding and improvement of BNI-producing crops,the establishment of crop rotation and intercropping systems involving BNI-producing species,and the development of green nitrogen fertilization technologies based on BNIs.Potential approaches to improve field application efficiency and environmental adaptability are discussed.In view of the existing challenges in agricultural application,this study analyzes key bottlenecks,including the variability of BNI effectiveness across different soil conditions,the lack of commercial products and large-scale field applications,and the absence of standardized application rates.The importance of establishing robust regulatory and policy frameworks to promote the industrialization and large-scale adoption of BNIs is emphasized.Future research should prioritize high-throughput BNI screening,elucidation of molecular regulatory mechanisms,multi-omics-based functional analyses,and synergistic integration with crop breeding,thereby facilitating stable application across diverse environments and the implementation of supporting policy systems.

关键词

生物硝化抑制剂/作用方式/释放机制/根系分泌物/氨氧化微生物/氮循环/分析技术/生态农业

Key words

biological nitrification inhibitors(BNIs)/mode of action/release mechanisms/root exudates/ammonia-oxidizing microorganisms/nitrogen cycle/analytical techniques/ecological agriculture

引用本文复制引用

乐虹雯,李浩楠,张鹏伟,李雅颖..生物硝化抑制剂研究进展及其农业减排潜力[J].植物营养与肥料学报,2026,32(4):709-731,23.

基金项目

国家自然科学基金项目(42277105,42477135). (42277105,42477135)

植物营养与肥料学报

1008-505X

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