Two isozymes of particulate methane monooxygenase with different methane oxidation kinetics are found in Methylocystis sp. strain SC2
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- 22 July 2008
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 105 (29), 10203-10208
- https://doi.org/10.1073/pnas.0702643105
Abstract
Methane-oxidizing bacteria (methanotrophs) attenuate methane emission from major sources, such as wetlands, rice paddies, and landfills, and constitute the only biological sink for atmospheric methane in upland soils. Their key enzyme is particulate methane monooxygenase (pMMO), which converts methane to methanol. It has long been believed that methane at the trace atmospheric mixing ratio of 1.75 parts per million by volume (ppmv) is not oxidized by the methanotrophs cultured to date, but rather only by some uncultured methanotrophs, and that type I and type II methanotrophs contain a single type of pMMO. Here, we show that the type II methanotroph Methylocystis sp. strain SC2 possesses two pMMO isozymes with different methane oxidation kinetics. The pmoCAB1 genes encoding the known type of pMMO (pMMO1) are expressed and pMMO1 oxidizes methane only at mixing ratios >600 ppmv. The pmoCAB2 genes encoding pMMO2, in contrast, are constitutively expressed, and pMMO2 oxidizes methane at lower mixing ratios, even at the trace level of atmospheric methane. Wild-type strain SC2 and mutants expressing pmoCAB2 but defective in pmoCAB1 consumed atmospheric methane for >3 months. Growth occurred at 10-100 ppmv methane. Most type II but no type I methanotrophs possess the pmoCAB2 genes. The apparent K(m) of pMMO2 (0.11 muM) in strain SC2 corresponds well with the K(m(app)) values for methane oxidation measured in soils that consume atmospheric methane, thereby explaining why these soils are dominated by type II methanotrophs, and some by Methylocystis spp., in particular. These findings change our concept of methanotroph ecology.Keywords
This publication has 33 references indexed in Scilit:
- Methane monooxygenase gene expression mediated by methanobactin in the presence of mineral copper sourcesProceedings of the National Academy of Sciences, 2007
- Structural and Mechanistic Insights into Methane Oxidation by Particulate Methane MonooxygenaseAccounts of Chemical Research, 2007
- The active methanotrophic community in hydromorphic soils changes in response to changing methane concentrationEnvironmental Microbiology, 2005
- Crystal structure of a membrane-bound metalloenzyme that catalyses the biological oxidation of methaneNature, 2005
- Comparative Analysis of the Conventional and Novel pmo (Particulate Methane Monooxygenase) Operons from Methylocystis Strain SC2Applied and Environmental Microbiology, 2004
- Isolation of a Methylocystis strain containing a novel pmoA-like geneFEMS Microbiology Ecology, 2002
- A new method to study simultaneous methane oxidation and methane production in soilsGlobal Biogeochemical Cycles, 1998
- Methane and Carbon Dioxide Dynamics in a Northern Hardwood EcosystemSoil Science Society of America Journal, 1995
- Kinetics of CH4 oxidation in oxic soils exposed to ambient air or high CH4 mixing ratiosFEMS Microbiology Ecology, 1992
- Biogeochemical aspects of atmospheric methaneGlobal Biogeochemical Cycles, 1988