Planktonic and Sediment-Associated Aerobic Methanotrophs in Two Seep Systems along the North American Margin
- 1 July 2008
- journal article
- Published by American Society for Microbiology in Applied and Environmental Microbiology
- Vol. 74 (13) , 3985-3995
- https://doi.org/10.1128/aem.00069-08
Abstract
Methane vents are of significant geochemical and ecological importance. Notable progress has been made toward understanding anaerobic methane oxidation in marine sediments; however, the diversity and distribution of aerobic methanotrophs in the water column are poorly characterized. Both environments play an essential role in regulating methane release from the oceans to the atmosphere. In this study, the diversity of particulate methane monooxygenase (pmoA) and 16S rRNA genes from two methane vent environments along the California continental margin was characterized. The pmoA phylotypes recovered from methane-rich sediments and the overlying water column differed. Sediments harbored the greatest number of unique pmoA phylotypes broadly affiliated with the Methylococcaceae family, whereas planktonic pmoA phylotypes formed three clades that were distinct from the sediment-hosted methanotrophs and distantly related to established methanotrophic clades. Water column-associated phylotypes were highly similar between field sites, suggesting that planktonic methanotroph diversity is controlled primarily by environmental factors rather than geographical proximity. Analysis of 16S rRNA genes from methane-rich waters did not readily recover known methanotrophic lineages, with only a few phylotypes demonstrating distant relatedness to Methylococcus. The development of new pmo primers increased the recovery of monooxygenase genes from the water column and led to the discovery of a highly diverged monooxygenase sequence which is phylogenetically intermediate to Amo and pMMO. This sequence potentiates insight into the amo/pmo superfamily. Together, these findings lend perspective into the diversity and segregation of aerobic methanotrophs within different methane-rich habitats in the marine environment.Keywords
This publication has 66 references indexed in Scilit:
- Methane oxidation at 55°C and pH 2 by a thermoacidophilic bacterium belonging to the Verrucomicrobia phylumProceedings of the National Academy of Sciences, 2008
- Dissolved methane distributions and air‐sea flux in the plume of a massive seep field, Coal Oil Point, CaliforniaGeophysical Research Letters, 2007
- Comparison of Aerobic Methanotrophic Communities in Littoral and Profundal Sediments of Lake Constance by a Molecular ApproachApplied and Environmental Microbiology, 2007
- The Sorcerer II Global Ocean Sampling Expedition: Northwest Atlantic through Eastern Tropical PacificPLoS Biology, 2007
- Comparison of Vertical Distributions of Prokaryotic Assemblages in the Anoxic Cariaco Basin and Black Sea by Use of Fluorescence In Situ HybridizationApplied and Environmental Microbiology, 2006
- Pathways of Carbon Assimilation and Ammonia Oxidation Suggested by Environmental Genomic Analyses of Marine CrenarchaeotaPLoS Biology, 2006
- Global gas flux from mud volcanoes: A significant source of fossil methane in the atmosphere and the oceanGeophysical Research Letters, 2003
- Dissolved hydrocarbon flux from natural marine seeps to the southern California BightJournal of Geophysical Research: Oceans, 2000
- Methane in the northern Atlantic controlled by microbial oxidation and atmospheric historyGeophysical Research Letters, 1999
- Evidence that participate methane monooxygenase and ammonia monooxygenase may be evolutionarily relatedFEMS Microbiology Letters, 1995