4.7 Article

Nitrogen input promotes denitrifying methanotrophs' abundance and contribution to methane emission reduction in coastal wetland and paddy soil

Journal

ENVIRONMENTAL POLLUTION
Volume 302, Issue -, Pages -

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.envpol.2022.119090

Keywords

Denitrifying methanotrophs; Nitrogen input; Coastal wetland; Paddy soil; Methane sink

Funding

  1. National Natural Science Foundation of China [41773074, 42107132, 21836003]
  2. China Postdoctoral Science Foundation [2021M692776]
  3. Shanghai Tongji Gao Tingyao Environmental Science and Technology Development Foundation

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This study investigated the influence of nitrogen input on the abundance and activity of denitrifying methanotrophs. The results showed that nitrogen input increased the abundance of these microorganisms and enhanced their contribution to methane emission reduction.
Denitrifying anaerobic methane oxidation (DAMO) microorganisms, using nitrate/nitrite to oxidize methane, have been proved to be an important microbial methane sink in natural habitats. Increasing nitrogen deposit around the globe brings increased availability of substrates for these microorganisms. However, how elevated nitrogen level affects denitrifying methanotrophs has not been elucidated. In this study, sediment/soil samples from coastal wetland with continuous nitrogen input and paddy field with periodic nitrogen input were collected to investigate the influence of nitrogen input on the abundance and activity of denitrifying methanotrophs. The results indicated that nitrogen input significantly promoted DAMO microorganisms' abundance and contribution to methane emission reduction. In the coastal wetland, the contribution rate of DAMO process to methane removal increased from 12.1% to 33.5% along with continuously elevated nitrogen level in the 3-year tracking study. In the paddy field, the DAMO process accounted for 71.9% of total methane removal when nitrogen fertilizer was applied during the growing season, exceeding the aerobic methane oxidation process. This work would help us better understand the microbial methane cycle and reduce uncertainties in the estimations of the global methane emission.

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