Luesken FA, Wu ML, den Camp HJMO, et al. Effect of oxygen on the anaerobic methanotroph 'Candidatus Methylomirabilis oxyfera': kinetic and transcriptional analysis. Environmental Microbiology. 2012;14(4):1024-1034.'Candidatus Methylomirabilis oxyfera' is a denitrifying methanotroph that performs nitrite-dependent anaerobic methane oxidation through a newly discovered intra-aerobic pathway. In this study, we investigated the response of a M. oxyfera enrichment culture to oxygen. Addition of either 2% or 8% oxygen resulted in an instant decrease of methane and nitrite conversion rates. Oxygen exposure also led to a deviation in the nitrite to methane oxidation stoichiometry. Oxygen-uptake and inhibition studies with cell-free extracts display...
The atmospheric concentration of the potent greenhouse gases methane and nitrous oxide (N2O) has inc...
Only three biological pathways are known to produce oxygen: photosynthesis, chlorate respiration and...
The bacteria that grow on methane aerobically (methanotrophs) support populations of non-methanotrop...
‘Candidatus Methylomirabilis oxyfera’ is a denitrifying methanotroph that performs nitrite‐dependent...
Contains fulltext : 93640.pdf (author's version ) (Open Access
“Candidatus Methanoperedens nitroreducens” is an archaeon that couples the anaerobic oxidation of me...
“<i>Candidatus</i> Methanoperedens nitroreducens” is an archaeon that couples the anaerobic oxidatio...
Wu ML, de Vries S, van Alen TA, et al. Physiological role of the respiratory quinol oxidase in the a...
The anaerobic nitrite-reducing methanotroph 'Candidatus Methylomirabilis oxyfera' ('Ca. M. oxyfera')...
Wu ML, Ettwig KF, Jetten MSM, Strous M, Keltjens JT, van Niftrik L. A new intra-aerobic metabolism i...
Ettwig KF, Butler MK, Le Paslier D, et al. Nitrite-driven anaerobic methane oxidation by oxygenic ba...
International audienceOnly three biological pathways are known to produce oxygen: photosynthesis, ch...
International audienceOnly three biological pathways are known to produce oxygen: photosynthesis, ch...
International audienceOnly three biological pathways are known to produce oxygen: photosynthesis, ch...
Only three biological pathways are known to produce oxygen: photosynthesis, chlorate respiration and...
The atmospheric concentration of the potent greenhouse gases methane and nitrous oxide (N2O) has inc...
Only three biological pathways are known to produce oxygen: photosynthesis, chlorate respiration and...
The bacteria that grow on methane aerobically (methanotrophs) support populations of non-methanotrop...
‘Candidatus Methylomirabilis oxyfera’ is a denitrifying methanotroph that performs nitrite‐dependent...
Contains fulltext : 93640.pdf (author's version ) (Open Access
“Candidatus Methanoperedens nitroreducens” is an archaeon that couples the anaerobic oxidation of me...
“<i>Candidatus</i> Methanoperedens nitroreducens” is an archaeon that couples the anaerobic oxidatio...
Wu ML, de Vries S, van Alen TA, et al. Physiological role of the respiratory quinol oxidase in the a...
The anaerobic nitrite-reducing methanotroph 'Candidatus Methylomirabilis oxyfera' ('Ca. M. oxyfera')...
Wu ML, Ettwig KF, Jetten MSM, Strous M, Keltjens JT, van Niftrik L. A new intra-aerobic metabolism i...
Ettwig KF, Butler MK, Le Paslier D, et al. Nitrite-driven anaerobic methane oxidation by oxygenic ba...
International audienceOnly three biological pathways are known to produce oxygen: photosynthesis, ch...
International audienceOnly three biological pathways are known to produce oxygen: photosynthesis, ch...
International audienceOnly three biological pathways are known to produce oxygen: photosynthesis, ch...
Only three biological pathways are known to produce oxygen: photosynthesis, chlorate respiration and...
The atmospheric concentration of the potent greenhouse gases methane and nitrous oxide (N2O) has inc...
Only three biological pathways are known to produce oxygen: photosynthesis, chlorate respiration and...
The bacteria that grow on methane aerobically (methanotrophs) support populations of non-methanotrop...