Anaerobic methane oxidation drives simultaneous nitrite and nitrous oxide removal

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作者
Tan, Xin [1 ,2 ]
Nie, Wen-Bo [3 ]
Lu, Yang [4 ]
Wang, Xiao-Wei [1 ]
Dang, Cheng-Cheng [1 ]
Wang, Xuan [1 ]
Liu, Lu-Yao [1 ]
Ren, Nan-Qi [1 ]
Ni, Bing-Jie [2 ]
Xie, Guo-Jun [1 ]
机构
[1] State Key Laboratory of Urban Water Resource and Environment, School of Environment, Harbin Institute of Technology, Harbin,150090, China
[2] Water Research Centre, School of Civil and Environmental Engineering, The University of New South Wales, Sydney,2052, Australia
[3] Key Laboratory of the Three Gorges Region's Eco-Environment, Ministry of Education, College of Environment and Ecology, Chongqing University, Chongqing,400044, China
[4] Water Innovation and Smart Environment Laboratory, School of Civil and Environmental Engineering, Faculty of Engineering, Queensland University of Technology, Brisbane,4001, Australia
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10.1016/j.biortech.2025.132247
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摘要
Denitrifying anaerobic methane oxidation (DAMO) processes have been proven effective for nitrogen removal while contributing to the sustainable operation of wastewater treatment plants. However, it remains unclear whether DAMO-centric technologies can simultaneously remove nitrous oxide (N2O). Here, we demonstrated high removal performance of nitrite and N2O with methane as the electron donor over a prolonged period. The DAMO bacteria Candidatus Methylomirabilis always dominated the community during the synchronous removal of nitrite and N2O, meanwhile microorganisms with complete denitrification pathways thrived. Metabolic profiles revealed that their synergy effects were responsible for anaerobic methane oxidation driven simultaneous removal of nitrite and N2O, where the electrons for nitrite and N2O reduction originated from methane or its metabolic intermediates. This enables them to remove N2O efficiently and flexibly. This finding suggests that DAMO-centric technologies harbor great potential for N2O removal, contributing to strengthen greenhouse gases reduction under the increasingly severe climate change. © 2025 Elsevier Ltd
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