AI Article Synopsis

  • Obligate aerobic methanotrophs can oxidize methane and participate in denitrification under low oxygen conditions, but the specifics of this process in aerobic methane oxidation (AME-D) remain underexplored.
  • A methanotrophic consortium was cultivated in a specialized bioreactor, achieving a significant nitrite removal rate of about 50 mg N/L/d.
  • Metagenomics techniques identified Methylomonas as the key player in methane oxidation and partial denitrification, revealing important genes related to nitrogen reduction processes and suggesting a possible connection between methanotrophy and denitrification.

Article Abstract

Obligate aerobic methanotrophs have been proven to oxidize methane and participate in denitrification under hypoxic conditions. However, this phenomenon and its metabolic mechanism have not been investigated in detail in aerobic methane oxidation coupled to denitrification (AME-D) process. In this study, a type of hypoxic AME-D consortium was enriched and operated for a long time in a CH-cycling bioreactor with strict anaerobic control and the nitrite removal rate reached approximately 50 mg N/L/d. Metagenomics combined with DNA stable-isotope probing demonstrated that the genus Methylomonas, which constitutes type I aerobic methanotrophs, was the dominant member and contributed to methane oxidation and partial denitrification. Metagenomic binning recovered a near-complete (98%) draft genome affiliated with the family Methylococcaceae containing essential genes that encode nitrite reductase (nirK), nitric oxide reductase (norBC) and hydroxylamine dehydrogenase (hao). Metabolic reconstruction of the selected Methylococcaceae genomes also revealed a potential link between methanotrophy and partial denitrification.

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Source
http://dx.doi.org/10.1016/j.biortech.2020.124043DOI Listing

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