Abstract
Cell suspensions of Methylococcus capsulatus mineralized methyl bromide (MeBr), as evidence by its removal from the gas phase, the quantitative recovery of Br- in the spent medium, and the production of 14CO2 from [14C]MeBr. Methyl fluoride fluoride (MeF) inhibited oxidation of methane as well as that of [14C]MeBr. The rate of MeBr consumption by cells varied inversely with the supply of methane, which suggested a competitive relationship between these two substrates. However, MeBr did not support growth of the methanotroph. In soils exposed to high levels (10,000 ppm) of MeBr, methane oxidation was completely inhibited. At this concentration, MeBr removal rates were equivalent in killed and live controls, which indicated a chemical rather than biological removal reaction. At lower concentration (1,000 ppm) of MeBr, methanotrophs were active and MeBr consumption rates were 10-fold higher in live controls than in killed controls. Soils exposed to trace levels (10 ppm) of MeBr demonstrated complete consumption within 5 h of incubation, while controls inhibited with MeF or incubated without O2 had 50% lower removal rates. Aerobic soils oxidized [14C]MeBr to 14CO2, and MeF inhibited oxidation by 72%. Field experiments demonstrated slightly lower MeBr removal rates in chambers containing MeF than in chambers lacking MeF. Collectively, these results show that soil methanotrophic bacteria, as well as other microbes, can degrade MeBr present in the environment.
MeSH Terms
Biodegradation, Environmental
Environmental Pollutants/metabolism
Hydrocarbons, Brominated/metabolism
Methylococcaceae/metabolism
Oxidation-Reduction
Soil Microbiology
Chemicals
Environmental Pollutants
Hydrocarbons, Brominated
methyl bromide
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Oremland R S
U.S. Geological Survey, Menlo Park, California 94025.
Miller L G
Culbertson C W
Connell T L
Jahnke L
References (11)
11 references, click to expand
-
An improved assay for bacterial methane mono-oxygenase: some properties of the enzyme from Methylomonas methanica.
Biochem J. 1975 Nov;151(2):459-62
PMID: 3171
-
Evaluation of methyl fluoride and dimethyl ether as inhibitors of aerobic methane oxidation.
Appl Environ Microbiol. 1992 Sep;58(9):2983-92
PMID: 16348771
-
Biodegradation of Halogenated Hydrocarbon Fumigants by Nitrifying Bacteria.
Appl Environ Microbiol. 1990 Aug;56(8):2568-2571
PMID: 16348264
-
Anaerobic oxidation of acetylene by estuarine sediments and enrichment cultures.
Appl Environ Microbiol. 1981 Feb;41(2):396-403
PMID: 16345714
-
Emission of methyl bromide from biomass burning.
Science. 1994 Mar 4;263(5151):1255-7
PMID: 17817427
-
The soluble methane mono-oxygenase of Methylococcus capsulatus (Bath). Its ability to oxygenate n-alkanes, n-alkenes, ethers, and alicyclic, aromatic and heterocyclic compounds.
Biochem J. 1977 Aug 1;165(2):395-402
PMID: 411486
-
Acetylene as a substrate in the development of primordial bacterial communities.
Orig Life Evol Biosph. 1988;18(4):397-407
PMID: 3237399
-
Agricultural soil fumigation as a source of atmospheric methyl bromide.
Proc Natl Acad Sci U S A. 1993 Sep 15;90(18):8420-3
PMID: 11607425
-
Denitrification in san francisco bay intertidal sediments.
Appl Environ Microbiol. 1984 May;47(5):1106-12
PMID: 16346539
-
Selective inhibition of ammonium oxidation and nitrification-linked n(2)o formation by methyl fluoride and dimethyl ether.
Appl Environ Microbiol. 1993 Aug;59(8):2457-64
PMID: 16349011
-
Hydrogen metabolism by decomposing cyanobacterial aggregates in big soda lake, nevada.
Appl Environ Microbiol. 1983 May;45(5):1519-25
PMID: 16346289