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Updated: Jun 24, 2026

Chemiluminescence-based Assays for Detection of Nitric Oxide and its Derivatives from Autoxidation and Nitrosated Compounds
Published on: February 16, 2022
Novel nitric oxide dismutase drives effective NO degradation in oxygenic denitrification
Xiaofei Qian1, Qingyan Wang2, Feiyu Chen3
1College of Environment, Zhejiang University of Technology, Hangzhou 310014, China.
Abstract:
Nitrogenous wastewater is a major environmental problem. Denitrification refers to the sequential reduction of nitrate (NO3-) and nitrite (NO2-) to nitric oxide (NO) and nitrous oxide (N2O) to form N2. Oxygenic denitrification could transform NO into N2 and O2 via NO dismutase (Nod), an unusual O2-forming process to reduce N2O emission during nitrogen removal. After confirming the presence of the nod gene in three samples including anaerobically-activated sludge, farmland soil, and paddy soil, the targeted enrichment experiment was conducted. The abundance of key denitrification genes rose by 4.6-13 fold, including NO2- reductase (nir), N2O reductase (nos), NO reductase (nor), and nod. Principal coordinate and α-diversity analyses revealed the progressive enrichment of oxygenic denitrifiers by eliminating irrelevant microorganisms. Focusing on paddy soil with optimal O2-generating capacity, novel nod genes were identified. Specifically, recombinant-engineered bacteria containing the nod genes were constructed to assess their NO dismutation activity. Results demonstrated that these recombinant strains exhibited excellent NO degradation efficiency at 72.6-85.4%, indicating superior dismutation performance. Apparent enzymatic activity assays using the crude Nod enzyme extract from the representative recombinant strain SD52149 showed Michaelis-Menten-type saturation behavior. These findings provide critical insights into the application of oxygenic denitrification for reducing N2O emissions in nitrogenous wastewater treatment and enhancing microbial remediation strategies.
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