4.7 Article

Enhancement of nitrite reduction and enrichment of Methylomonas via conductive materials in a nitrite-dependent anaerobic methane oxidation system

期刊

ENVIRONMENTAL RESEARCH
卷 193, 期 -, 页码 -

出版社

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.envres.2020.110565

关键词

Nitrite-dependent anaerobic methane oxidation; Methylomonas; Magnetite; Anthraquinone-2,6-disulfonate (AQDS); Microbial interspecies electron transfer

资金

  1. Leshan Normal University Scientific Research Fund [XJR18004]

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Stimulating the nitrite reduction rate in n-damo process can be achieved by introducing conductive nano-magnetite and/or electron shuttle AQDS, while insulated ferrihydrite has a negative effect. Methylomonas spp. were enriched under n-damo conditions with the supplementation of nano-magnetite and/or AQDS, indicating potential survival and growth mechanisms under anaerobic conditions. Further research is needed to verify these hypotheses.
Nitrite-dependent anaerobic methane-oxidizing (n-damo) process has a promising prospect in anaerobic wastewater treatment, utilizing methane as the sole electron source to remove nitrite. However, the metabolic activity of n-damo bacteria is too low for practical application. This study aimed to stimulate n-damo process by introducing conductive nano-magnetite and/or electron shuttle anthraquinone-2,6-disulfonate (AQDS), and also set a comparative treatment of adding insulated ferrihydrite. The results showed that the nitrite reduction rate was enhanced the most significantly in treatment with nano-magnetite, approximately 1.6 times higher than that of the control without any supplement. While ferrihydrite application showed an adverse effect on n-damo process. The well-known aerobic methane oxidizer Methylomonas spp. was found to be enriched under n-damo condition with the supplementation of nano-magnetite and/or AQDS, but abundance of n-damo bacteria did not exhibit significant increase. It was hypothesized that Methylomonas spp. could be survived under anaerobic ndamo condition using oxygen produced by n-damo bacteria for the self-growth, and the nitrite reduction could be promoted through the enhancement of microbial interspecies electron transfer triggered by the introduction of conductive materials. It opens a new direction for the stimulation of n-damo activity, which needs more evidences to verify the hypothetic mechanism.

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