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Published on: December 18, 2014
Unlocking N2O respiratory pathways in Stutzerimonas stutzeri PRE-2: Implications for reducing N2O emissions from
Baoshan Zhang1, Jiaxian Zhou1, Jiapeng Wu1
1Institute of Environmental Research at Greater Bay Area, Key Laboratory for Water Quality and Conservation of the Pearl River Delta, Ministry of Education, Guangzhou University, Guangzhou, 510006, China.
Abstract:
Although nitrogen cycling in nitrogen-enriched estuaries is highly active, the reported nitrous oxide (N2O) emission factor (EF5e) values for N2O emissions in estuarine environments are usually low. Therefore, biological or abiotic mechanisms control the emission of N2O from estuarine ecosystems. In this study, a pure culture of N2O-reducing bacteria was isolated from Pearl River Estuary surface sediment and identified as Stutzerimonas stutzeri PRE-2. This strain displayed a high N2O reduction capability, and the average N2O reduction rate was 17.93 ± 0.43 μmol h-1 under anoxic conditions. This reduction of N2O was coupled with the stoichiometric consumption of acetate or lactate as electron donors, suggesting that microbial N2O reduction involves electron transport. Furthermore, N2O reduction can yield energy that supports microbial growth. Genomic analysis demonstrated that the strain Stutzerimonas stutzeri PRE-2 contains a complete pathway for the reduction of N2O to N2. Typical respiratory chain inhibitors did not significantly inhibit N2O reduction activity, demonstrating that the electron transfer pathway involved in N2O reduction is unique compared to the classic respiratory chain. The integrated evidence suggests that microbial N2O reduction by Stutzerimonas stutzeri PRE-2 involves N2O respiration and may play an important role in reducing N2O emissions in estuarine ecosystems.
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