Impacts of co-solvent flushing on microbial populations capable of degrading trichloroethylene.With increased application of co-solvent flushing technologies for removal of nonaqueous phase liquids from groundwater aquifers, concern over the effects of the solvent on native microorganisms and their ability to degrade residual contaminant contaminant /con·tam·i·nant/ (kon-tam´in-int) something that causes contamination. contaminant something that causes contamination. has also arisen. This study assessed the impact of ethanol flushing on the numbers and activity potentials of trichloroethylene trichloroethylene /tri·chlo·ro·eth·y·lene/ (-eth´i-len) a clear, mobile liquid used as an industrial solvent; formerly used as an inhalant anesthetic. tri·chlo·ro·eth·yl·ene n. (TCE TCE trichloroethylene. TCE Environment A volatile chlorinated hydrocarbon that boils at 88ºC and is highly soluble–1000 ppm in water, with various industrial uses Toxicity Peripheral neuropathy, carcinogenic. )-degrading microbial microbial pertaining to or emanating from a microbe. microbial digestion the breakdown of organic material, especially feedstuffs, by microbial organisms. populations present in aquifer soils taken immediately after and 2 years after ethanol flushing of a former dry cleaners site. Polymerase chain reaction polymerase chain reaction (pŏl`ĭmərās') (PCR), laboratory process in which a particular DNA segment from a mixture of DNA chains is rapidly replicated, producing a large, readily analyzed sample of a piece of DNA; the process is analysis revealed soluble methane monooxygenase Methane monooxygenase, or MMO, is an enzyme capable of oxidizing the C-H bond in methane as well as other alkanes. Methane monooxygenase belongs to the class of oxidoreductase enzymes (EC 1.14.13.25). genes in methanotrophic enrichments, and 16S rRNA analysis identified Methylocystis parvus with 98% similarity, further indicating the presence of a type II methanotroph. Dissimilatory sulfite sulfite /sul·fite/ (sul´fit) any salt of sulfurous acid. sul·fite n. A salt or ester of sulfurous acid. reductase reductase /re·duc·tase/ (-tas) a term used in the names of some of the oxidoreductases, usually specifically those catalyzing reactions important solely for reduction of a metabolite. genes in sulfate-reducing enrichments prepared were also observed. Ethanol flushing was simulated in columns packed with uncontaminated soils from the dry cleaners site that were dosed with TCE at concentrations observed in the field; after flushing, the columns were subjected to a continuous flow of 500 pore volumes of groundwater per week. Total acridine orange acridine orange n. A basic fluorescent dye used as a metachromatic stain for nucleic acids and in screening cervical smears for abnormal cells. direct cell counts of the flushed and nonflushed soils decreased over the 15-week testing period, but after 5 weeks, the flushed soils maintained higher cell counts than the nonflushed soils. Inhibition of methanogenesis Methanogenesis (bacteria) The microbial formation of methane, which is confined to anaerobic habitats where occurs the production of hydrogen, carbon dioxide, formic acid, methanol, methylamines, or acetate—the major substrates used by methanogenic by sulfate sulfate, chemical compound containing the sulfate (SO4) radical. Sulfates are salts or esters of sulfuric acid, H2SO4, formed by replacing one or both of the hydrogens with a metal (e.g., sodium) or a radical (e.g., ammonium or ethyl). reduction was observed in all column soils, as was increasing removal of total methane by soils incubated under methanotrophic conditions. These results showed that impacts of ethanol were not as severe as anticipated and imply that ethanol may mitigate the toxicity of TCE to the microorganisms. Key words: co-solvent flushing, methanotrophs, particulate methane monooxygenase, perchloroethylene per·chlor·o·eth·yl·ene n. Abbr. PCE A colorless, nonflammable organic solvent, Cl2C:CCl2, used in dry-cleaning solutions and as an industrial solvent. , 16S rDNA, soluble methane monooxygenase, trichloroethylene. doi:10.1289/ehp.6937 available via http://dx.doi.org/ [Online 8 December 2004] ********** Co-solvent flushing, also known as in situ In place. When something is "in situ," it is in its original location. flushing, is a technology that has recently been considered for removal of light and dense nonaqueous phase liquids (LNAPLs and DNAPLs, respectively) from groundwater aquifers. Originally developed by the petroleum industry for enhanced oil recovery Enhanced Oil Recovery (EOR) is a generic term for techniques for increasing the amount of oil that can be extracted from an oil field. Using EOR, 30-60 %, or more, of the reservoir's original oil can be extracted [1] compared with 20-40% [2] (Lake 1989), this method involves a) injection of co-solvent such as alcohol or surfactant Surfactant Definition Surfactant is a complex naturally occurring substance made of six lipids (fats) and four proteins that is produced in the lungs. It can also be manufactured synthetically. into the source zone area of an NAPL NAPL Non-Aqueous Phase Liquid NAPL National Association for Printing Leadership NAPL National Association of Printers and Lithographers NAPL National Air Photo Library (Canada) NAPL North American Polo League plume; b) partitioning of the contaminant into the co-solvent groundwater phase; and c) its recovery and ex situ separation from the co-solvent-groundwater mixture, which is subsequently recycled into the aquifer for capture of additional contaminant [U.S. Environmental Protection Agency Environmental Protection Agency (EPA), independent agency of the U.S. government, with headquarters in Washington, D.C. It was established in 1970 to reduce and control air and water pollution, noise pollution, and radiation and to ensure the safe handling and (U.S. EPA EPA eicosapentaenoic acid. EPA abbr. eicosapentaenoic acid EPA, n.pr See acid, eicosapentaenoic. EPA, n. ) 2002]. This method promises to be superior to other technologies used for contaminant removal from aquifers because it is simple in concept, effective, and does not require removing contaminated contaminated, v 1. made radioactive by the addition of small quantities of radioactive material. 2. made contaminated by adding infective or radiographic materials. 3. an infective surface or object. soils (Falta et al. 1998; Rao et al. 1997). Various bench and field studies have reported successful removal of LNAPLs and DNAPLs using this method (Brandes and Farley 1993; Imhoff et al. 1995; Jawitz et al. 2000; McCray and Brusseau 1998; Rao et al. 1997), and to date 16 Superfund sites reportedly have been successfully treated by this method (U.S. EPA 2002). Jawitz et al. (2000) recently reported an in situ flushing pilot study using ethanol as a co-solvent to remove perchlotoethylene (PCE PCE pseudocholinesterase; see cholinesterase. erythromycin Apo-Erythro (CA), Apo-Erythro-EC, Diomycin (CA), E-Base, E-Mycin, Erybid (CA), Erymax (UK), Ery-Tab, Erythromid (CA), PCE (CA), Rommix (UK), Tiloryth (UK) ) DNAPLs from a shallow, unconfined aquifer at a former dry cleaners site in Jacksonville, Florida “Jacksonville” redirects here. For other uses, see Jacksonville (disambiguation). Jacksonville is the largest city in the state of Florida and the county seat of Duval County. , USA. Flushing of 34 kL of a 95% ethanol/5% water mixture over a 3-day period (an equivalent of two pore volumes) resulted in 65% removal of the 68 L of PCE originally present, and these authors concluded that continued alcohol flushing would have resulted in greater NAPL removal effectiveness. The presence of high concentrations of ethanol in an aquifer may result in significant changes in numbers in numbered parts; as, a book published in numbers. See also: Number and activities of microorganisms after the bulk of the contaminant has been removed. High concentrations of ethanol and certain detergents are toxic to many microorganisms. Studies have shown that such stress tends to lower the diversity in microbial communities, which are subsequently less capable of dealing with further environmental fluctuations (Atlas and Bartha 1987). Although previous work has reported positive effects of low concentrations of ethanol as an electron donor in teductive dehalogenation processes (Gibson and Sewell 1992), no study has directly observed changes in microbial populations at a site after ethanol flushing, particularly in terms of their potential to degrade residual contaminant over time. The broad objective of this study was to assess the effects of ethanol flushing over time on numbers and activity of potential PCE- and trichloroethylene (TCE)-degrading microbial populations present in soil from the former Sages Dry Cleaners site (henceforth referred to as the Sages site). Materials and Methods Specific objectives of this study were the following: a) to obtain samples from the Sages site after ethanol flushing treatment; b) to assess the shifts in methanogenic, sulfate-reducing, and methanotrophic bacteria, all known to transform TCE, before and after ethanol flushing using gene probe analysis on the soil samples; c) to verify the presence of potential TCE-degrading bacteria by enriching for these microorganisms from the soil samples and identifying them using polymerase chain reaction (PCR PCR polymerase chain reaction. PCR abbr. polymerase chain reaction Polymerase chain reaction (PCR) ) analysis; and d) to simulate ethanol flushing in column studies to enable determination of the impacts of ethanol and TCE on bacterial counts and activity potentials. Figure 1 provides an overview of the methods performed in this study. Each method is described in more detail below. [FIGURE 1 OMITTED] Soil samples. All samples were collected by Levine-Fricke-Recon, Inc. (Tallahassee, FL) from multilevel mul·ti·lev·el adj. Having several levels: a multilevel parking garage. Adj. 1. multilevel - of a building having more than one level sampling locations at the Sages site, where ethanol flushing treatment was performed in August 1998. The locations of the seven recovery wells that surrounded the three injection wells were selected to be just outside the perimeter of the initial estimated horizontal extent of the PCE source zone as described by Jawitz et al. (2000), and all samples were removed at various distances from the recovery well zone. Immediately after ethanol flushing, soil samples were removed from three monitoring well (MW) sites, designated as MW-8, MW-9, and MW-11, located approximately 51, 26, and 97 feet, respectively, from the closest recovery well. Samples were also removed 2 years after flushing from seven locations, designated as C-31, C-32, C-33, C-34, C-35, C-36, and C-37. C-36 was located closest to the recovery well area at approximately 17 feet, and C-34 was farthest from the recovery well area at approximately 109 feet. Detailed descriptions of the Sages site contaminant plume and placement of injection, recovery, and monitoring wells can be found in Jawitz et al. (2000), and Ramakrishnan (2002), Sillan (1999). All samples were taken approximately 8-9 m below ground surface. Soil samples were collected in sterile glass jars, immediately sealed, and placed on ice. Upon arrival in the laboratory in Gainesville, Florida, soil samples were manualIy homogenized ho·mog·e·nize v. ho·mog·e·nized, ho·mog·e·niz·ing, ho·mog·e·niz·es v.tr. 1. To make homogeneous. 2. a. To reduce to particles and disperse throughout a fluid. b. using a sterile spatula spatula /spat·u·la/ (spach´u-lah) [L.] 1. a wide, flat, blunt, usually flexible instrument of little thickness, used for spreading material on a smooth surface. 2. a spatulate structure. . An aliquot aliquot (al-ee-kwoh) adj. a definite fractional share, usually applied when dividing and distributing a dead person's estate or trust assets. (See: share) of each sample for immediate use was stored at 4[degrees]C, and the remainder of the soil samples was stored at -80[degrees]C. Soil samples had a particle size distribution The particle size distribution[1] ("PSD") of a powder, or granular material, or particles dispersed in fluid, is a list of values or a mathematical function that defines the relative amounts of particles present, sorted according to size. of fine to very fine sand, an average moisture content of 19.7%, and an average organic carbon content of 1.7% (Sillan 1999). The average pH of the soils used in this study ranged from 4.2 to 7.2; sulfate concentrations in these soils, measured by the University of Florida University of Florida is the third-largest university in the United States, with 50,912 students (as of Fall 2006) and has the eighth-largest budget (nearly $1.9 billion per year). UF is home to 16 colleges and more than 150 research centers and institutes. Extension Soils Testing Laboratory in Gainesville, Florida, ranged from 1.4 to 2.9 mg/L. Enrichments of specific TCE degraders from Sages site soil. Because increased concentrations of methane and TCE and decreased concentrations of sulfate were observed at the Sages site subsequent to ethanol flushing, there was strong indication of the presence of methanogenic and sulfate-reducing bacteria and even possibly methane-oxidizing bacteria, given the reported aerobic preflushing conditions (Mravik et al. 2003). Methanogens and sulfate reducers are capable of anaerobic anaerobic /an·aer·o·bic/ (an?ah-ro´bik) 1. lacking molecular oxygen. 2. growing, living, or occurring in the absence of molecular oxygen; pertaining to an anaerobe. reductive re·duc·tive adj. 1. Of or relating to reduction. 2. Relating to, being an instance of, or exhibiting reductionism. 3. Relating to or being an instance of reductivism. dehalogenation of PCE and TCE (e.g., Bagley and Gossett 1990; DiStefano et al. 1992; Freedman and Gossett 1989) and that MTs are capable of oxidizing TCE (e.g., Dispirito et al. 1992; Henry and Grbic-Galic 1990). Therefore, enrichments of sulfate-reducing and methanotrophic bacteria were attempted as a means of verifying their presence at the site. Because of the difficulty experienced in enriching for methanogenic bacteria, only activity assays were performed for these bacteria, as described below. Enrichments and culturing of sulfate-reducing bacteria. Five grams (wet weight) of soil was added to a 120-mL serum vial containing 45 mL basal carbonate yeast extract trypticase (BCYT BCYT British Columbia Yukon Territory ) medium prepared anaerobically, and the headspace head·space n. The volume left at the top of an almost filled jar, tin, or other container before sealing. Noun 1. headspace - the volume left at the top of a filled container (bottle or jar or tin) before sealing was flushed with [N.sub.2]:C[O.sub.2] (70:30 v/v). This mixture was amended with acetate or lactate Lactate A salt or ester of lactic acid (CH3CHOHCOOH). In lactates, the acidic hydrogen of the carboxyl group has been replaced by a metal or an organic radical. Lactates are optically active, with a chiral center at carbon 2. (20 mM), ferrous sulfate ferrous sulfate or iron (II) sulfate, chemical compound, FeSO4. It is known as the monohydrate, FeSO4·H2O; the tetrahydrate, FeSO4·4H2O; the pentahydrate, FeSO4 (2 mM), and sodium cysteine cysteine (sĭs`tēn), organic compound, one of the 20 amino acids commonly found in animal proteins. Only the l-stereoisomer participates in the biosynthesis of mammalian protein. (0.5 g/L) (Widdel and Bak 1992). On formation of sulfide (as indicated by black precipitate), transfers were made on a regular basis to fresh BCYT medium with sodium sulfate sodium sulfate, chemical compound, Na2SO4. It is a white, orthorhombic crystalline compound at ordinary temperatures; above 100°C; it assumes a monoclinic structure, and above about 250°C; it assumes a hexagonal structure. (20 mM) instead of ferrous sulfate. Enrichments and culturing of methanotrophic bacteria. Ten grams (wet weight) of soil was mixed with 50 mL nitrate mineral salts medium (NMS See NetWare Management System. ) (Whittenbury et al. 1970) in a 250-mL Erlenmeyer flask. The flasks were sealed with a rubber stopper threaded with glass wool-filled tubing to allow removal of headspace air, using a vacuum pump and subsequent filling with 99.99% methane (Strate Welding, Jacksonville, FL), as previously described (Lindner et al. 2000). All enrichments were prepared in triplicate using 20% methane (v/v) in the headspace and incubated at 30[degrees]C with shaking at 250 rpm. Transfers of 10-14% inoculum inoculum /in·oc·u·lum/ (-ok´u-lum) pl. inoc´ula material used in inoculation. in·oc·u·lum n. pl. (v/v) to fresh liquid NMS medium were prepared weekly along with streaking on solid plates of carbon-free Bacto agar (Difco, Detroit, MI) and NMS that were stored in an airtight desiccator des·ic·cate v. des·ic·cat·ed, des·ic·cat·ing, des·ic·cates v.tr. 1. To dry out thoroughly. 2. To preserve (foods) by removing the moisture. See Synonyms at dry. 3. filled with methane:air (30% v/v) at 30[degrees]C. Cultures were periodically streaked on nutrient agar plates to assess growth characteristics of heterotrophic heterotrophic /het·ero·tro·phic/ (-tro´fik) not self-sustaining; said of microorganisms requiring a reduced form of carbon for energy and synthesis. bacteria. A qualitative assay was performed using naphthalene naphthalene (năf`thəlēn'), colorless, crystalline, solid aromatic hydrocarbon with a pungent odor. It melts at 80°C;, boils at 218°C;, and sublimes upon heating. and tetrazotized ortho-dianisidine to detect activity of soluble methane monooxygenase (sMMO) in the enriched methanotrophic-mixed cultures, as previously described (Bowman et al. 1993; Lindner et al. 2000). Ethanol-flushing simulation in columns. Laboratory-scale vertical upward flow soil columns were constructed using custom-made glass columns 5 cm long and 2.5 cm inner diameter (Kontes, Vineland, NJ) and 50 g (wet weight) of soil samples taken from an uncontaminated portion of the Sages site (2 years post-flushing). Three sets of columns were constructed and run over three time periods (1 week, 5 weeks, and 15 weeks) before being sacrificed for subsequent testing. Each set contained controls with TCE only (no ethanol) and duplicate columns containing TCE and flushed with ethanol. An additional control with ethanol treatment only was included in the 15-week column studies. Because of the relatively small amount of soil available for these studies, samples taken from C-34, C-35, and C-37 were homogeneously mixed and subsequently treated with two different final concentrations of TCE to assess the effect of TCE concentration on population counts and activities. TCE was added to soil in a glass beaker beaker /beak·er/ (bek´er) a glass cup, usually with a lip for pouring, used by chemists and pharmacists. beaker a round laboratory vessel of various materials, usually with parallel sides and often with a pouring spout. that was immediately covered and placed on ice to avoid TCE volatilization volatilization /vol·a·til·iza·tion/ (vol?ah-til-i-za´shun) conversion into vapor or gas without chemical change. vol·a·til·i·za·tion n. See evaporation. . This soil-TCE mixture was packed into columns using a wet packing method with intermittent vibration to exclude air bubbles. No pools of free DNAPL DNAPL Dense, Non-Aqueous Phase Liquid were obvious within the TCE-treated columns. The 1- and 5-week columns were treated with 40,000 mg TCE/kg soil (99.99%; Fisher Scientific, Pittsburgh, PA) to mimic the highest average concentrations observed at the source zone of the Sages site before ethanol flushing (Jawitz et al. 2000; Levine-Fricke-Recon, Inc. 1998). The 15-week columns were treated with 4,000 mg TCE/kg soil, which were concentrations reported at the Sages site by Sillan (1999). After the columns were packed and TCE added, 10 pore volumes of groundwater taken from the Sages site were pumped at a flow rate of 0.2 mL/min using a Gilson peristaltic pump (Gilson, Inc., Middleton, WI). Two pore volumes of 70% ethanol were then pumped through the columns. After the ethanol flushing, 500 pore volumes of Sages site groundwater were pumped through the columns each week at a flow rate of 0.2 mL/min until each set of columns was sacrificed for genetic and activity analyses. Microbial DNA DNA: see nucleic acid. DNA or deoxyribonucleic acid One of two types of nucleic acid (the other is RNA); a complex organic compound found in all living cells and many viruses. It is the chemical substance of genes. isolation. Several methods to isolate DNA from the Sages site soil were attempted, as described in detail by Ramakrishnan (2002), including a commercial soil extraction kit marketed by Mo Bio Laboratories, Inc. (Solana Beach, CA) (used according to the manufacturer's instructions) and modifications of previously reported methods (Berthelet et al. 1996; Cullen and Hirsch 1998; Duarte et al. 1998; Holben 1994; Miller et al. 1999; Ogram et al. 1987, 1997; Zhou et al. 1996). DNA from enriched methanotrophic cultures was extracted using Mo Bio Laboratories DNA isolation kit. One and one-half milliliters of culture was centrifuged in Eppendorftubes at 14,000 rpm for 2 min. Supernatant supernatant /su·per·na·tant/ (-na´tant) the liquid lying above a layer of precipitated insoluble material. supernatant the liquid lying above a layer of precipitated insoluble material. was discarded, and the pellet was added to the bead tube with buffer solution provided with the Mo Bio Laboratories kit. DNA from the cell pellet was isolated according to manufacturer's instructions. Molecular analysis of soil and enriched culture DNA. Polymerase chain reaction methods. 6S rRNA genes from bacterial and archaeal groups present in the soils were amplified by PCR, using specific primers. Universal bacterial primers used were 27F (AGAGTTTGATCCMTGGCTCAG) and 1492R (TACGGYTACCTTGTTACGAC TT) (Lane 1991). The reaction mixture contained 10 [micro]L Hotstart mastermix (Qiagen, Valencia, CA), 1 [micro]L (1 pmol)of each primer, and 8 [micro]L soil DNA diluted at 1:10, 1:100, and 1:1,000. PCR was conducted using a PerkinElmer model 2400 DNA Thermal Cycler (PerkinElmer, Inc., Norwalk, CT) for 30 cycles with cycling parameters of 95[degrees]C for 15 min, followed by 94[degrees]C for 30 sec for denaturation denaturation, term used to describe the loss of native, higher-order structure of protein molecules in solution. Most globular proteins exhibit complicated three-dimensional folding described as secondary, tertiary, and quarternary structures. of DNA, 58[degrees]C for 30 sec for annealing annealing (ənēl`ĭng), process in which glass, metals, and other materials are treated to render them less brittle and more workable. , and 72[degrees]C for 30 sec for DNA chain extension, followed by a 7-min chain extension step. Similarly, PCR was conducted with the universal archaeal primers 23F (TCYGGTTGATCCTGCC) (Burggraf et al. 1991) and 1492 R (Lane 1991) with cycling conditions similar to above. Reaction products were electrophoresed through a 0.7% agarose agarose more highly purified form of agar with similar uses to agar and widely used in the separation of nucleic acid fragments. gel. PCR of DNA isolated from methanotrophic enrichment cultures were performed with primers specific to 16S rRNA genes of type I and type II MTs. Primers used to amplify the 16S rRNA gene of type I MTs (labeled MT-I) were Meth T1dF 5'-CCTTCGGGMGCYGACGACT-3' and Meth T1bR 5'-GATTCYMTGSATGT CAAGG-3' (Wise et al. 1999). To amplify the 16S rRNA gene of type 1I MTs (labeled MT-II), universal bacterial primer 27 F (Lane 1991) and Meth T2R T2R Trouble to Resolve T2R Trusted Transaction Roaming Platform 5'-CATCTCTGRC SAYCATACCGG-3' (Wise et al. 1999) were used. PCR primers used for sMMO were mmoX f882 (5'-GGCTCCAAGTTCAAG GTCGAGC-3') and mmoX r1403 (5'-TGGCACTCGTAGCGCTCCG GCTCG-3') (McDonald et al. 1995). Primers used for methanol dehydrogenase dehydrogenase /de·hy·dro·gen·ase/ (de-hi´dro-jen-as?) an enzyme that catalyzes the transfer of hydrogen or electrons from a donor, oxidizing it, to an acceptor, reducing it. de·hy·dro·gen·ase n. (MDH MDH Minnesota Department of Health MDH Mälardalens Högskola (Swedish) MDH Malate Dehydrogenase MDH Manila Doctors' Hospital MDH Carbondale, IL, USA - Southern Illinois Airport (Airport Code) ) were mxa f1003 (5'-GCGGCAC CAACTGGGGCTGGT-3') and mxa r1561 (5'-GGGCAGCATGAAGGGCT CCC-3') (McDonald and Murrell 1997). PCR was performed for 30 cycles in the PerkinElmer DNA model 2400 DNA Thermal Cycler previously described, with conditions of each reaction cycle held at 95[degrees]C for 15 min followed by 94[degrees]C for 30 sec (denaturation), 58[degrees]C for 30 sec (for type II primers), or 54[degrees]C for 30 sec (for type I primers) (annealing), and 72[degrees]C for 30 sec, with a final extension step at 72[degrees]C for 7 min (chain extension). Chromosomal DNA from Methylosinus trichosporium OB3b and Methylomicrobium album BG8 were used as positive controls for type II and type I PCR, respectively. PCR products were electrophoresed through a 0.7% agarose gel. PCR analysis of sulfate reducers from soil enrichments was also performed. A 1.9-kb dissimilatory sulfite reductase (DSR (1) (Data Set Ready) An RS-232 signal sent from the modem to the computer or terminal indicating that it is able to accept data. Contrast with DTR. (2) (Dynamic Source R ) gene was amplified from cultures exhibiting sulfate-reducing activity using DSR1F (AC[C/G] CACTGGAACGACG) and DSR4R (GTG (chat) gtg - Got to go. The user is about to stop chatting. TACGACTTACCGCA) (Wagner et al. 1998) primers. PCR conditions were similar to those used for MTs mentioned previously, with the exception of an annealing temperature of 59[degrees]C for 30 sec and extension for 90 sec at 72[degrees]C. Molecular cloning. PCR products of approximately 1.5 kb were cloned using 5-min TA cloning kit (Invitrogen, San Diego, CA). The PCR product was ligated into the plasmid according to the manufacturer's instructions. Two microliters of ligated plasmids were transformed to competent Escherichia coli Escherichia coli (ĕsh'ərĭk`ēə kō`lī), common bacterium that normally inhabits the intestinal tracts of humans and animals, but can cause infection in other parts of the body, especially the urinary tract. cells (TOP10F') provided with the cloning kit, followed by a heat shock at 42[degrees]C for 30 sec. E. coli E. coli: see Escherichia coli. E. coli in full Escherichia coli Species of bacterium that inhabits the stomach and intestines. E. coli can be transmitted by water, milk, food, or flies and other insects. cells were incubated at 37[degrees]C for 1 hr at 225 rpm with additional 250 [micro]L SOC medium (2% tryptone, 0.5% yeast extract, 10 mM NaCl, 2.5 mM KCl, 10 mM Mg[Cl.sub.2], 10 mM MgS[O.sub.4], and 20 mM glucose). Transformed E. coli cells were plated onto Luria-Bertani (LB) plates with 50 [micro]g/mL kanamycin kanamycin /kan·a·my·cin/ (kan?ah-mi´sin) an aminoglycoside antibiotic derived from Streptomyces kanamyceticus, effective against aerobic gram-negative bacilli and some gram-positive bacteria, including mycobacteria; used as the and 40 [micro]g/mL each X-gal (5-bromo-4-chloro-3-indolyl-[beta]-D-galactoside or [beta]-galactosidase) and IPTG IPTG Isopropyl-Beta-d-Thiogalactopyranoside (isopropyhhio[beta]-D-galactoside) for screening of transformed cells. The plates were incubated overnight at 37[degrees]C. White colonies were randomly selected and inoculated into 5 mL LB-kanamycin broth (50 [micro]g/mL) and incubated at 37[degrees]C overnight with shaking at 225 rpm. Plasmid DNA isolation. Twenty clones from most probable number clonings were randomly selected for screening. Plasmid DNA from cultures was isolated using a standard alkaline lysis procedure (Sambrook et al. 1989). EcoRI (Promega, Madison, WI) was used to digest plasmids to confirm whether the plasmids harbored PCR products, isolated plasmids were digested overnight with 11 [micro]L EcoRI, 1 [micro]L 10X buffer, 6 [micro]L deionized de·i·on·ize tr.v. de·i·on·ized, de·i·on·iz·ing, de·i·on·iz·es To remove ions from (a solution) using an ion-exchange process. de·i sterile water, and 2 [micro]L plasmid DNA at 37[degrees]C. Digested products were electrophoresed through a 0.7% agarose gel. Inserts were digested with HhaI (Promega), electrophoresed as above, and grouped according to restriction fragment length polymorphism restriction fragment length polymorphism n. Abbr. RFLP Intraspecies variations in the length of DNA fragments generated by the action of restriction enzymes and caused by mutations that alter the sites at which these enzymes act, changing . Representatives of unique groups were selected for sequencing. The plasmid DNA was purified and inserts were sequenced by the Interdisciplinary Consortium for Biotechnology Research core sequencing facility at the University of Florida. Acridine orange direct counting. Soil samples (1 g wet weight) taken from various locations in the columns were preserved with 2.5% particle-free (0.2-[micro]m pore-size filtered) glutaraldehyde glutaraldehyde /glu·ta·ral·de·hyde/ (gloo?tah-ral´de-hid) a disinfectant used in aqueous solution for sterilization of non-heat–resistant equipment; also used as a tissue fixative for light and electron microscopy. . Samples were sonicated for 30 sec and kept on ice to avoid heating and damaging cells. The soil samples were then diluted 10-fold, and 100 [micro]L of this suspension was poured into a 25-mm microfiltration system, equipped with a 0.2-[micro]m polycarbonate A category of plastic materials used to make a myriad of products, including CDs and CD-ROMs. filter (Isopore membrane filters; Millipore, Bedford, MA), and connected to a vacuum. To achieve random distribution of cells on the filter, the sample volume was increased to 2 mL with particle-free water (Turley 1993), and approximately 3 drops of acridine orange solution (1 mg/mL) were added to the sample. The filter unit was covered with aluminum foil to avoid photodegradation of acridine orange and was swirled for 3 min for random distribution and proper staining of cells. Samples were then filtered under a vacuum (Bio-Rad vacuum pump; Bio-Rad, Hercules, CA), with care taken not to allow drying of filter membranes. The damp filter membrane was placed on a clean glass slide with a fine smear of nonfluorescent immersion oil. A drop of immersion oil was placed on top of the filter membrane, and a cover slip was pressed firmly on the oil, with the oil forming a seal at the edge. Mounted slides were viewed under a 100x oil immersion objective In light microscopy, an oil immersion objective is a specially designed objective lens used to increase the resolution of the microscope. This is achieved by immersing both the lens and the specimen in a transparent oil of high refractive index, thereby increasing the numerical of a Nikon Optiphot epifluorescent microscope (Nikon, Garden City, NY) fitted with filters for excitation of cells stained with acridine orange. Background counts were carried out with particle-free water, acridine orange, and glutaraldehyde solution and were subtracted from sample cell counts. Microbial activity measurements. Methanogenic activity. To compare the activity of methanogens in the columns, microcosms were constructed with 5 g nontreated starting soil and soil from the 1-, 5-, and 15-week column samples. Acetate (20 mM) or [H.sub.2]/C[O.sub.2] (80:20%) (carbon/energy source) and sodium cysteine (pH 10.0) (reductant reductant /re·duc·tant/ (re-duk´tant) the electron donor in an oxidation-reduction (redox) reaction. re·duc·tant n. A reducing agent. ) were added to the soils in 60-mL vials that were incubated for 6 weeks at 28[degrees]C at 150 rpm. Methane production was monitored by regular sampling and gas chromatography gas chromatography (GC) Type of chromatography with a gas mixture as the mobile phase. In a packed column, the packing or solid support (held in a tube) serves as the stationary phase (vapour-phase chromatography, or VPC) or is coated with a liquid stationary phase using a Hewlett-Packard model 5890 gas chromatograph (Hewlett-Packard, Denver, CO) equipped with a flame ionization detector A flame ionization detector (FID) is a type of detector used in gas chromatography. Principle The Flame Ionization Detector (FID) is one of the many methods by which to analyze materials coming off of gas chromatography column. and a 1/8 inch SS 45/60 Carboxen 1000 column. The temperatures of injector/detector and column were maintained at 110[degrees]C and 160[degrees]C, respectively. A standard gas (Scott Specialty Gases, Plumsteadville, PA) containing a mixture of 1% each of methane, carbon dioxide carbon dioxide, chemical compound, CO2, a colorless, odorless, tasteless gas that is about one and one-half times as dense as air under ordinary conditions of temperature and pressure. , carbon monoxide carbon monoxide, chemical compound, CO, a colorless, odorless, tasteless, extremely poisonous gas that is less dense than air under ordinary conditions. It is very slightly soluble in water and burns in air with a characteristic blue flame, producing carbon dioxide; , oxygen, hydrogen, and the remainder nitrogen was used for standard curve calibration. Using gas-tight syringes (Hamilton, Reno, NV), 300 [micro]L headspace gas was injected into the gas chromatograph. Sulfate-reducing activity. Sulfate-reducing microcosms were constructed using 5 g each of both Sages soil material (starting material) and column soil samples, using the same protocol described previously for enriching for these microorganisms. Vials were maintained at 28[degrees]C for 4 weeks. Dissolved sulfide concentrations were measured with a Shimadzu spectrophotometer spectrophotometer, instrument for measuring and comparing the intensities of common spectral lines in the spectra of two different sources of light. See photometry; spectroscope; spectrum. (Shimadzu Biotech USA, Columbia, MD) at 480 nm, using the method described by Cord-Ruwisch (1985). Methanotrophic activity. Depletion of methane by 5 g of soil from the 1-, 5-, and 15-week columns was monitored in sealed microcosms constructed using the same protocol described previously for enriching for these microorganisms. Headspace sampling was performed regularly, followed by gas chromatographic chro·mat·o·graph n. An instrument that produces a chromatogram. tr.v. chro·mat·o·graphed, chro·mat·o·graph·ing, chro·mat·o·graphs To separate and analyze by chromatography. analyses using a Hewlett-Packard model 5890 gas chromatograph equipped with a thermal conductivity detector The thermal conductivity detector (TCD) is a bulk property detector commonly used in gas-liquid chromatography. [1]This detector senses changes in the thermal conductivity of the column effluent and compares it to a reference flow of carrier gas. , J&D Molesieve PLOT porous column (internal diameter, 20 m x 0.53 mm; Agilent/J&W Scientific, Palo Alto, CA), and a split/splitless injector. The temperatures of oven, injector, and detector were maintained at 25, 120, and 200[degrees]C, respectively. Head pressure was maintained at 5 psi. A certified grade 50/50 (methane/nitrogen) gas standard (Scott Specialty Gases, Inc.) was used for standard curve calibration. Initial rates of methane depletion were calculated using Excel 2000 software (Microsoft Corp., Redmond, WA) by determining the slopes of the resulting concentration-time plots using either linear or third-order polynomial polynomial, mathematical expression which is a finite sum, each term being a constant times a product of one or more variables raised to powers. With only one variable the general form of a polynomial is a0xn+a fits, depending on the curvature of the methane depletion response. Standard errors of the initial slopes were determined using Simstat software (version 1.2.4e; Provalis Research, Ottawa, Ontario, Canada). Results and Discussion DNA isolation from Sages site soil samples. As mentioned previously, various methods were employed to isolate amplifiable DNA from the Sages site soil samples to track changes in the microbial populations at the site with time. Regardless of the samples or methods used, however, extraction of microbial DNA from soil was problematic, as a deep brown substance co-purified with the DNA. Inability to isolate amplifiable DNA was attributed to co-purification of unknown PCR inhibitors with the DNA. Amplifiable soil DNA was isolated only from samples MW-11 (taken immediately after flushing) and C-31 and C-35 (both taken 2 years after flushing). Results of PCR analysis showed the presence of bacterial and archaea archaea: see Archaebacteria. archaea A group of prokaryotes whose members differ from bacteria, the most prominent prokaryotes, in certain physical, physiological, and genetic features. The archaea may be aquatic or terrestrial microorganisms. genes in sample MW-11, only archaea genes in sample C-31, and only bacterial genes in sample C-33. No sample tested positive for the presence of the DSR gene or the type I or type II MT genes. Enrichments of sulfate-reducing and methanotrophic bacteria and screening for specific genes. Given this difficulty in DNA isolation from the soil samples, enrichments of sulfate reducers and MTs were attempted from the Sages site soil as a means of verifying their presence and thus the potential for TCE transformation activity at the site. Positive results in these experiments would justify simulating ethanol flushing in the laboratory as an alternative means of tracking population changes in the soil over time. Of the three Sages soil samples taken immediately after flushing, only cultures inoculated with MW-11 showed turbidity turbidity /tur·bid·i·ty/ (ter-bid´i-te) cloudiness; disturbance of solids (sediment) in a solution, so that it is not clear.tur´bid Turbidity The cloudiness or lack of transparency of a solution. on repeated transfers and incubation at conditions conducive for methanotrophic growth, whereas five of the seven samples removed 2 years after flushing (C-31, C-33, C-35, C-36, and C-37) showed positive growth under these conditions. DNA isolated from each mixed methanotrophic-heterotrophic culture was subjected to PCR with primers specific to only type I and type II MTs (MT-I, MT-II), MDH and sMMO. Table 1 shows the results of these experiments, with presence or absence of the specific genes indicated by + and -, respectively. With the exception of the mixed culture derived from soil sample C-36, all other cultures showed the presence of not only universal bacterial genes but also genes specific for type II MTs, MDH, and sMMO. Interestingly, the location of soil sample C-36 is the closest to the ethanol-impacted area and would have naturally been exposed to the highest concentrations of ethanol and PCE. A standard colorimetric col·or·im·e·ter n. 1. Any of various instruments used to determine or specify colors, as by comparison with spectroscopic or visual standards. 2. naphthalene oxidation assay was performed to detect activity of sMMO in these methanotrophic-heterotrophic mixed cultures (Brusseau et al. 1990; Lindner et al. 2000). As shown in Table 1, the mixed cultures enriched from samples C-31, C-33, C-35, C-37, and MW-11 formed a purple color, whereas C-36 showed no color upon addition of tetrazotized ortho-dianisidine, known to complex with naphthol naphthol (năf`thôl), C10H7OH, either of two crystalline monohydric alcohols. The naphthols are position isomers, differing in the location of the hydroxyl group, -OH, on the carbon skeleton of naphthalene; . These results are consistent with the results obtained from the PCR analysis confirming the presence of type II MT genes. Furthermore, the intensity of color formed was highest in C-37 when compared with the other samples. The mixed cultures derived from soil samples were further screened by molecular cloning and 16S rRNA sequence analysis. The BLAST results of this analysis showing matches of the most similar GenBank sequences (GenBank 2002) are shown in Table 2. As shown, a type II MT sharing 98% 16S rRNA gene sequence similarity with Methylocystis parvus was identified in these mixed cultures. Of the three soil samples taken immediately after flushing, only MW-11 yielded positive results for sulfate-reducing activities in the enrichments, as evidenced by a formation of a black precipitate of sulfide. Of those samples taken 2 years after flushing, only C-31 and C-37 yielded enrichment cultures of sulfate-reducing bacteria. As shown in Table 1, PCR analysis of these mixed cultures indicated the presence of DSR genes of all three of these samples. As observed in the methanotrophic enrichment experiments, the sample derived from C-36, closest to the ethanol-impacted area, yielded no indication of sulfate-reducing bacteria even 2 years after flushing. Column studies. With the positive identification of methanotrophic and sulfate-reducing bacteria in some of the soil samples, column studies were performed with Sages site soil to simulate ethanol flushing and assess effects on microbial populations present over time. As described in "Materials and Methods," columns were packed with soil derived from uncontaminated portions of the site, including sample C-37 that tested positively for both sulfate reducers and MTs. Total microbial counts in soil columns. Figure 2 shows that microbial counts in the soil column determined by acridine orange direct counting (AODC AODC Australian Oceanographic Data Centre AODC Action Officer Development Course AODC Age of Data - Clock AODC Alcohol & Other Drugs Council AODC Allowance Override Designator Code ) methods did not significantly change 1 week after flushing with ethanol compared with counts in soils before flushing (8.63 x 107 [+ or -] 2.22 x [10.sup.7] cells/g soil and 6.87 x [10.sup.7] [+ or -] 8.9l x [10.sup.6] cells/g soil, respectively). In addition, counts in columns with 40,000 mg TCE/kg soil only and no ethanol introduced (l.17 x [10.sup.8] [+ or -] 2.49 x [10.sup.7]) were not significantly different from the ethanol-flushed column counts 1 week after flushing. However, soil removed from both flushed and nonflushed columns after 5 weeks possessed lower total counts than observed in the corresponding 1-week flushed columns. Surprisingly, these results imply that neither ethanol nor TCE immediately impacted the total microbial counts in the columns, but that these counts decreased in a 5-week period, with a greater decrease observed in the TCE-only columns. The 15-week columns pretreated with a significantly lower TCE concentration also showed higher total microbial counts in the flushed columns compared with the nonflushed columns but the lowest counts in comparison with the 1- and 5-week column cell numbers. [FIGURE 2 OMITTED] Although these results should be cautiously interpreted given the difficulties accompanying the AODC method (potential for human error, interference of humic acids, nonuniform distribution of microorganisms in the upflow columns), they do suggest that ethanol does not have the toxicity effects on the microorganisms as would be anticipated. in fact, higher counts observed in the flushed columns may indicate that it has a buffering effect on TCE toxicity to microorganisms. Activity measurements in column samples. Methanogenic and sulfate-reducing activity. in all microcosms incubated under methanogenie conditions, no methane formation was observed. On termination of the 5-week microcosms, a strong odor of hydrogen sulfide hydrogen sulfide, chemical compound, H2S, a colorless, extremely poisonous gas that has a very disagreeable odor, much like that of rotten eggs. It is slightly soluble in water and is soluble in carbon disulfide. was noticed. As confirmation, dissolved sulfide was subsequently measured after 6 weeks in the microcosms established with soil from the 15-week columns. Despite no external sulfate added to these vials, hydrogen sulfide formation was observed, ranging from 6.75 [+ or -] 1.02 mM in the microcosms with soils treated with TCE and ethanol to 9.93 [+ or -] 2.36 mM with soils treated with ethanol only. The TCE-treated, nonflushed soils produced 8.25 [+ or -] 1.02 mM hydrogen sulfide, slightly lower than the ethanol-only treated columns. Continuous introduction of dissolved oxygen in the groundwater may have inhibited methanogenesis in the columns; however, channeling of the groundwater flow in the columns was observed, resulting in isolated regions that we suspected contained little or no oxygen. It was therefore anticipated that methanogenesis would have been detected in the activity assays. Methanogenesis may also have been inhibited because of native sulfate concentrations (1.4-2.9 mg/L) that facilitated sulfate reduction as a primary process. Sulfate reducers compete with methanogens for carbon and energy sources, and because sulfate concentrations were relatively high in these soils, sulfate reduction was likely active in suppressing methanogenesis. Reduction in concentrations of PCE and accumulation of TCE and cis-dichloroethylene were observed at the Sages site after the ethanol treatment (Mravik et al. 2003; U.S. EPA 2000). This implies that reductive dehalogenation of PCE was taking place in the field. In fact, methane concentrations were reportedly increased at the Sages site in the flushing zone approximately 4 months after flushing and only after sulfate concentrations were depleted de·plete tr.v. de·plet·ed, de·plet·ing, de·pletes To decrease the fullness of; use up or empty out. [Latin d (Mravik et al. 2003). The microcosms using soils from the ethanol-only column produced 20-40% more sulfide compared with microcosms using soils from the columns treated with TCE only and with TCE and ethanol. In the sulfide-reducing microcosms, where 20 mM sulfate was added to the microcosms, the starting material (with no treatment of TCE or ethanol) exhibited higher amounts of sulfide production (15.55 [+ or -] 0.35 mM) than the treated column samples after 15 weeks of groundwater flushing (Figure 3), implying an inhibitive effect of both ethanol and TCE. All microcosms with treated soils exhibited similar hydrogen sulfide production. The presence of residual ethanol after flushing did not affect sulfate-reducing activity (comparing all three 15-week column results). Ethanol may be used as an energy source by some sulfate reducers (Nagpal et al. 2000), but studies with postflushing samples from the Sages site have shown higher rates of PCE dechlorination with whey whey liquid residue from milk after the removal of cheese curds in the manufacture of cheese. An excellent protein supplement but difficult to handle in the liquid form, except to pigs maintained close to the cheese factory. Dried whey is easy to handle but processing costs are high. as electron donor rather than with ethanol (Helton 2000). [FIGURE 3 OMITTED] Methanotrophic activity. Microcosms were established with soils from the 1- and 5-week columns and incubated under a 20% initial headspace concentration of methane to assess methane depletion activities over time. An initial lag period of 1-2 days was observed in all 1- and 5-week microcosms. Table 3 shows the resulting initial rates of methane depletion and percentage of total methane removed during the 11-day testing period, after which no noticeable change in methane concentrations was observed. Rates of methane depletion were significantly higher (2.17% headspace methane removed per day) with the soils in the 5-week columns treated with TCE only compared with the 1-week column soils (0.83% headspace methane removed/day). The 5-week soils dosed with only TCE also removed a greater total percentage of methane during the experiments than the 1-week soils (45 and 17%, respectively). Little difference was observed in the methane depletion activities in the microcosms constructed with soils removed from the 1- and 5-week TCE- and ethanol-treated columns, as shown in Table 3. However, in comparison with the TCE-only soils, both "TCE + ethanol" soils (1-week and 5-week) showed much higher initial methane depletion rates. These soils treated with TCE and ethanol in the 1-week columns displayed a higher percentage removal of methane (37%) compared with the corresponding soils treated with TCE only (17%). The total methane removed by the 5-week soils treated with TCE with or without ethanol was not significantly different from the total amount of methane removed by the 1-week soils, however. The higher methane depletion activities observed in soils 1 and 5 weeks after ethanol flushing compared with non-ethanol-treated soils indicate that ethanol has a mitigating effect on TCE toxicity to methanotrophic bacteria. The toxicity of products of TCE metabolism by MTs, including TCE epoxide epoxide /epox·ide/ (e-pok´sid) an organic compound containing a reactive group resulting from the union of an oxygen atom with two other atoms, usually carbon, that are themselves joined together. , has been previously reported (Alvarez-Cohen and McCarty 1991; Oldenhuis et al. 1991; Oldenhuis and Janssen 1993), and the fact that no methanotrophic enrichments were successful at the sampling location closest to the ethanol flushing may be attributed to the higher concentrations of PCE and TCE present and not of ethanol. The 15-week column soils showed little difference in methane depletion rates and total methane removed regardless of the treatment subjected to the soils, and no lag period was observed in any of the microcosms. In each of these microcosms, 84-88% of methane was removed, which was significantly higher than observed in the 1- and 5-week microcosms. Although it is tempting to compare these values to those of the 1- and 5-week column soils, caution should be taken in doing so because of the large difference in initial TCE dose used (40,000 mg TCE/kg soil in the 1- and 5-week columns; 4,000 mg TCE/kg soil in the 15-week columns). What can be concluded from these results, however, is that even 15 weeks after ethanol flushing, methanotrophic activity potential is present in the soils, as well as the potential for removal of residual TCE, given appropriate conditions at a treatment site. Conclusions Because the DNA isolation was problematic, it was not possible to test samples directly at the site as originally planned. However, the study was successful in enriching for sulfate-reducing bacteria and type 11 methanotrophic bacteria. Additionally, the column studies showed that no methanogenesis occurred, possibly because of the predominance of the sulfate-reducing activity, in agreement with observations taken during the pilot-scale flushing event. The goal of this work was to determine if the introduction of the ethanol during flushing impacted the activities (and indirectly, their ability to transform residual contaminant) of the microorganisms present in the Sages site soil. Total counts of bacteria decreased in all flushed and nonflushed samples with time; however, flushed samples contained higher total counts of bacteria compared with those in nonflushed samples. Sulfide formation was observed not only in sulfate-reducing microcosms with soils from the 15-week laboratory columns and initially dosed with 4,000 mg TCE/kg soil, but also in methanogenic microcosms in as little as 1 week. Methanotrophic activity potentials increased from 1 to 5 weeks, and little difference in methane depletion was observed with the 15-week soils regardless of treatment. However, higher rates of methane depletion were observed in those microcosms with the 1- and 5-week column soils subjected to ethanol flushing. These results indicate that ethanol flushing did not have as severe an impact on the populations as was initially anticipated and did not impair the activities of the sulfate-reducing and methanotrophic microorganisms over time. Furthermore, increased activity observed in the presence of ethanol indicates the mitigating effects of ethanol to TCE toxicity. This article is based on a presentation at the conference "Bioremediation bi·o·re·me·di·a·tion n. The use of biological agents, such as bacteria or plants, to remove or neutralize contaminants, as in polluted soil or water. and Biodegradation: Current Advances in Reducing Toxicity, Exposure and Environmental Consequences" (http://www-apps. niehs.nih.gov/sbrp/biorenaediation.html) held 9-12 June 2002 in Pacific Grove, California Pacific Grove is a coastal town in Monterey County, California, USA, with a total population of 15,522 as of the 2000 census. Pacific Grove is known for its Victorian homes, Asilomar State Beach, its artistic legacy and the annual migration of the Monarch butterflies. , and sponsored by the National Institute of Environmental Health Sciences The National Institute of Environmental Health Sciences (NIEHS) is one of 27 Institutes and Centers of the National Institutes of Health (NIH),which is a component of the Department of Health and Human Services (DHHS). The Director of the NIEHS is Dr. David A. Schwartz. (NIEHS) Superfund Basic Research Program The Superfund Basic Research Program (SBRP) was created within the National Institute of Environmental Health Sciences in 1986 under the Superfund Amendments and Reauthorization Act (SARA). . The overall focus of this conference was on exploring the research interfaces of toxicity reduction, exposure assessment, and evaluation of environmental consequences in the context of using state-of-the-art approaches to bioremediation and biodegradation. The Superfund Basic Research Program has a legacy of supporting research conferences designed to integrate the broad spectrum of disciplines related to hazardous substances. Address correspondence to A.S. Lindner, Department of Environmental Engineering Sciences, University of Florida, Center Dr., A.P. Black Hall, P.O. Box 116450, Gainesville, FL 32611 USA. Telephone: (352) 846-3033. Fax: (352) 392-3076. E-mail: alind@eng.ufl.edu We thank M. James and S. Roberts, directors of the University of Florida Superfund Basic Research Program, for their support and encouragement of this work. We acknowledge P. Nkedi-Kizza of the Department of Soil and Water Sciences at the University of Florida for his kind generosity and guidance during the column experiments. This work was funded by the U.S. Environmental Protection Agency and the NIEHS Superfund Basic Research Program. The authors declare they have no competing financial interests. Received 23 December 2003; accepted 7 April 2004. REFERENCES Alvarez-Cohen L, McCarty PL. 1991. Effects of toxicity, aeration aeration /aer·a·tion/ (ar-a´shun) 1. the exchange of carbon dioxide for oxygen by the blood in the lungs. 2. the charging of a liquid with air or gas. aer·a·tion n. , and reductant supply on trichloroethylene transformation by a mixed methanotrophic culture. Appl Environ Microbiot 57:228-235. Atlas RM, Bartha R 1987. Microbial Ecology: Fundamentals and Applications. 2nd ed. Menlo Park, CA:Benjamin/Cummings Publishing Co., Inc. Bagley DM, Gossett JM. 1990 Tetrachloroethene transformation to trichloroethene and cis-dichloroethene by sulfate-reducing enrichment cultures. Appl Environ Microbiol 56:2511-2516. Berthelet M, Whyte LG, Greer CS. 1996. Rapid, direct extraction of DNA from soils for PCR analysis using polyvinylpolypyrrolidone spin columns. FEMS FEMS Federation of European Microbiological Societies FEMS Federation of European Materials Societies FEMS Fabrication Engineering Management System FEMS Facility Equipment Maintenance System (PMEL/TMDE) Microbiol Lett 138:17-22. Bowman JP, Jimenez L, Rosario l, Hazen TC, Sayler GS. 1993. Characterization of the methanotrophic bacterial community present in a trichloroethylene-contaminated subsurface groundwater site. Appl Environ Microbiol 59:2380-2387. Brandes D, Farley KJ. 1993. Importance of phase behavior on the removal of residual DNAPLs from porous media by alcohol flooding. Water Environ Res 65(7):869-878. Brusseau GA, Tsien HC, Hanson RS, Wackett LP. 1990. Optimization of trichloroethylene oxidation by methanotrophs and the use of a colorimetric assay to detect soluble methane monooxygenase activity. Biodegradation 1:19-29. Burggraf S, Steter, KO, Rouvier P, Woese CR. 1991. Methanosyrus kandlerr: an archaeal methanogen methanogen /meth·a·no·gen/ (meth´ah-nah-jen?) an anaerobic microorganism that grows in the presence of carbon dioxide and produces methane gas. unrelated to all other known methanogens. Syst Appl Microbiol 14:346-351. Cord-Ruwisch R. 1985. A quick method for the determination of dissolved and precipitated sulfides in cultures of sulfatereducing bacteria. J Microbiol Methods 4:33-36. Cullen DW, Hirsch PR. 1998. Simple and rapid method for direct extraction of microbial DNA from soil for PCR. Soil Biol Biochem 30:983-993. DiSpirito AA, Gulledge J, Shiemke AK, Murrell JC, Lidstrom ME, Krema CL. 1992. Trichloroethylene oxidation by the membrane-associated methane monooxygenase in type I, type I and type X methanotrophs. Biodegradation 2:151-164. DiStefano TD, Gossett JM, Zinder SH. 1992. Hydrogen as an electron donor for dechlorination of tetrachloroethene by an anaerobic mixed culture. Appl Environ Microbiol 58: 3622-3629. Duarte GF, Rosado AS, Seldin L, Keijzer-Wolters AC, van Elsas JD. 1998, Extraction of ribosomal RNA ribosomal RNA n. See rRNA. ribosomal RNA (rī´bōsō´m and genomic DNA from soil for studying the diversity of the indigenous bacterial community. J Microbiol Methods 32:21-29. Falta RW, Lee CM, Brame SE, Roder E, Wright CW, Coates JT. 1998. Field study of LNAPL LNAPL Light Non-Aqueous Phase Liquid remediation by in-situ cosolvent flooding. In: Nonaqueous Phase Liquids (Wickramanayake GC, Hinchee RE, eds). Columbus, OH: Battelle Press. Freedman DL, Gossett JM. 1989. Biological reductive dechlorination of tetrachloroethylene tetrachloroethylene /tet·ra·chlo·ro·eth·y·lene/ (tet?rah-klor?o-eth´i-len) a moderately toxic chlorinated hydrocarbon used as a dry-cleaning solvent and for other industrial uses. and trichloroethylene to ethylene under methogenic conditions. Appl Environ Microbiol 55:416-420. GenBank. 2002. GenBank. Bethesda, MD:National Center for Biotechnology Information The National Center for Biotechnology Information (NCBI) is part of the United States National Library of Medicine (NLM), a branch of the National Institutes of Health. The NCBI is located in Bethesda, Maryland and was founded in 1988. , National Library of Medicine. Available: http://www.ncbi.nlm.nih.gov/Genbank/index. html [accessed 15 October 2002). Gibson SA, Sewell GW. 1992. Stimulation of reductive dechlorination of tetrachloroethene in anaerobic aquifer microcosms by addition of short-chain organic acids or alcohols. Appl Environ Microbiol 58:1392-1393. Helton RR. 2000. Assessment of the Microbial Communities Derived from Two Tetrachloroethene (PCE)-Contaminated Aquifers [Master's Thesis]. Lansing, Ml:Michigan State University Michigan State University, at East Lansing; land-grant and state supported; coeducational; chartered 1855. It opened in 1857 as Michigan Agricultural College, the first state agricultural college. . Henry SM, Grbic-Galic D. 1990. Effect of mineral media on trichloroethylene oxidation by aquifer methanotrophs. Microb Ecol 20:151-169. Holben WE. 1994. Isolation and purification of bacterial DNA from soil. In: Methods of Soil Analysis, Part 2. Microbiological and Biochemical Properties ]Weaver RW, Angle S, Bottomley P, Bezdicek D, Smith S, Tabatabai A, Wollum A, eds). Madison, WI:Soil Science of America, Inc. Imhoff PT, Gleyzer SN, McBride JF, Vancho, LA, Okuda I, Miller CT. 1995. Co-solvent enhanced remediation of residual dense nonaqueous phase liquids: experimental investigation. Environ Sci Technol 29(8):1966-1976. Jawitz JW, Sillan RK, Annable MD, Rao PSC (Public Service Commission) Same as PUC. , Warner K. 2000. In-situ alcohol flushing of a DNAPL source zone at a dry cleaner site. Environ Sci Technol 34(17):3722-3729. Lake LW. 1989. Enhanced Oil Recovery. Englewood Cliffs, NJ: Prentice Hall. Lane DJ. 1991.16S/23S rRNA sequencing. In: Nucleic Acid nucleic acid, any of a group of organic substances found in the chromosomes of living cells and viruses that play a central role in the storage and replication of hereditary information and in the expression of this information through protein synthesis. Techniques in Bacterial Systematics systematics: see classification. (Stackebrandt E, Goodfellow M, eds). New York New York, state, United States New York, Middle Atlantic state of the United States. It is bordered by Vermont, Massachusetts, Connecticut, and the Atlantic Ocean (E), New Jersey and Pennsylvania (S), Lakes Erie and Ontario and the Canadian province of :John Wiley & Sons, Inc., 115-175. Levine-Fricke-Recon, Inc. 1998. Pilot Test Work Plan Former Sages Dry Cleaner. Internal report prepared for Florida Department of Environmental Protection The Florida Department of Environmental Protection (FDEP) is the agency in Florida's government charged with most functions relating to environmental quality in the state. [1] History By the mid-1960s, when the U.S. , Tallahassee, FL, 9 February 1998. Lindner AS, Adriaens P, Semrau JD. 2000. Transformation of ortho-substituted biphenyls by Methylosinus trichosporium 0B3b: substituent substituent /sub·stit·u·ent/ (-stich´u-ent) 1. a substitute; especially an atom, radical, or group substituted for another in a compound. 2. of or pertaining to such an atom, radical, or group. effects on oxidation kinetics and product formation. Arch Microbiol 174:35-41. McCray JE, Brusseau, ML. 1998. Cyclodextrin-enhanced in situ flushing of multiple component immiscible immiscible /im·mis·ci·ble/ (i-mis´i-b'l) not susceptible to being mixed. im·mis·ci·ble adj. Incapable of being mixed or blended, as oil and water. organic liquid contamination at the field scale: mass removal effectiveness. Environ Sci Technol 32:1285-1293. McDonald IR, Kenna EM, Murrell JC. 1995. Detection of methanotrophic bacteria in environmental samples with the PCR. Appl Environ Microbiol 61:116-121. McDonald IR, Murrell JC. 1997. The methanol dehydrogenase structure gene mxaF and its use as a functional gene probe for methanotrophs and methylotrophs. Appl Environ Microbiol 63:3218-3224. Miller DN, Bryant JE, Madsen EL, Ghiorse WC. 1999. Evaluation and optimization of DNA extraction and purification procedures for soil and sediment samples. Appl Environ Microbiol 65:4715-4724. Mravik SC, Sewell GW, Sillan RK, Wood AL. 2003. Field evaluation of the solvent extraction Solvent extraction A technique, also called liquid extraction, for separating the components of a liquid solution. This technique depends upon the selective dissolving of one or more constituents of the solution into a suitable immiscible liquid solvent. residual biotreatment (SERB Serb n. 1. A native or inhabitant of Serbia. 2. A person of Serbian descent. [Serbian Srb. ) technology. Environ Sci Technol 37(21):5040-049. Nagpel S, Chuichulcherm S, Livingston A, Peeva L. 2000. Ethanol utilization by sulfate-reducing bacteria: an experimental and modeling study. Biotechnol Bioeng 70: 533-543. Ogram, A. 1997. Purification of nucleic acids Nucleic acids The cellular molecules DNA and RNA that act as coded instructions for the production of proteins and are copied for transmission of inherited traits. from environmental matrices. In: Techniques in Environmental Microbiology (Burlage RS, ed). Oxford, UK:Oxford Press. Ogram A, Sayler GS, Barkay T. 1987. The extraction and purification of microbial DNA from sediments. J Microbiol Methods 7:57-66. Oldenhuis R, Janssen DB. 1993. Degradation of trichloroethylerie by methanotrophic bacteria. In: Microbial Growth on [C.sub.1] Compounds (Murrell JC, Kelly DP, eds). Andover, UK:lntercept Press, Ltd. Oldenhuis R, Oedzes JY, Van der Waarde JJ, Janssen DB. 1991. Kinetics of chlorinated chlorinated /chlo·ri·nat·ed/ (klor´i-nat?ed) treated or charged with chlorine. chlorinated charged with chlorine. chlorinated acids some, e.g. hydrocarbon degradation by Methylosinus trichosporium 0B3b and toxicity of trichloroethylene. Appl Environ Microbiol 55:2819-2826. Ramakrishnan V. 2002. Community Changes and Revival of Indigenous Microorganisms after Co-solvent Flushing (Master's Thesis). Gainesville, FL:University of Florida. Rao PSC, Annable MD, Sillan RK, Dai D, Hatfield K, Graham WD, et al. 1997. Field-scale evaluation of in-situ co-solvent flushing for enhanced aquifer remediation. Water Resour Res 33:2673-2686. Sambrook J, Fritsch EF, Maniatis T. 1989. Molecular Cloning: A Laboratory Manual. 2nd ed. Cold Spring Harbor, NY:Cold Spring Harbor Laboratory The Cold Spring Harbor Laboratory Press.Sillan RK. 1999. Field-Scale Evaluation of In Situ Co-solvent Flushing for Enhanced Aquifer Remediation [PhD Dissertation]. Gainesville, FL:University of Florida. Turley CM. 1993. Direct estimates of bacterial numbers in seawater seawater Water that makes up the oceans and seas. Seawater is a complex mixture of 96.5% water, 2.5% salts, and small amounts of other substances. Much of the world's magnesium is recovered from seawater, as are large quantities of bromine. samples without incurring cell loss due to sample storage. In: Handbook of Methods in Aquatic Microbial Ecology (Kemp PF, Sherr B, Cole JJ, eds). Boca Raton, FL:Lewis Publishers, 143-147. U.S. EPA (U.S. Environmental Protection Agency). 2000. Groundwater Currents, Issue No. 36, EPA 542-N-00-004. Washington, DC:U.S. Environmental Protection Agency. U.S. EPA. 2002. Cleanup Tools. Office of Emergency and Remedial Response. Available: http://www.epa.gov/superfund [accessed 16 July 2003]. Wagner M, Roger A J, Flax JL, Brusseau GA, Stahl DA. 1998. Phylogeny of dissimilatory sulfite reductases supports an early origin of sulfate respiration. J Bacteriol 180: 2975-2982. Whittenbury R, Phillips KC, Wilkinson JF. 1970. Enrichment, isolation, and some properties of methane-utilizing bacteria. J Gen Microbiol 61:205-218. Widdel F, Bak F. 1992. Gram-negative mesophilic sulfate-reducing bacteria. In: The Prokaryotes (Balows A, Truper HG, Dworkin M, Harder W, Schleifer K-H, eds). New York:Springer-Verlag, 3352-3378. Wise MG, McArthur JV, Shimkets LJ. 1999. Methanotroph diversity in landfill soil: isolation of novel Type I and Type II methanotrophs whose presence was suggested by culture-independent 16S ribosomal DNA analysis. Appl Environ Microbiol 65:4887-4897. Zhou J, Bruns MA, Tiedje JM. 1996. DNA recovery from soils of diverse composition. Appl Environ Microbiol 62:316-322. Vijayalakshmi Ramakrishnan, (1) Andrew V. Ogram, (1) and Angela S. Lindner (2) (1) Department of Soil and Water Sciences, and (2) Department of Environmental Engineering Sciences, University of Florida, Gainesville, Florida, US
Table 1. PCR analysis and sMMO assay results of mixed
methanotrophic-heterotrophic enrichments.
Sample Bacteria Archaea DSR MT-I
MW-11 + - + -
C-31A + - + -
C-33A + - - -
C-35A + - - -
C-36A - - - -
C-37A + - + -
Sample MT-II MDH sMMO sMMO assay
MW-11 + + + +
C-31A + + + +
C-33A + + + +
C-35A + + + +
C-36A - - - -
C-37A + + + +
Presence or absence of genes or positive or negative
assay results denoted by + or -, respectively.
Table 2. BLAST results of 16S rDNA
sequence analysis mixed methanotrophic cultures.
GenBank
Most similar accession
GenBank sequence (a) Identity (%) number (a)
M. parvus 98 AF150805
Acinetobacter 99 AF159045
calcoaceticus
Acaligenes sp. 98 AF150805
Hypomicrobium facilis 99 Y14311
(a) From GenBank (2002).
Table 3. Initial methane depletion rates and total percentage of
methane depleted observed in the methanotrophic microcosms
using 1-, 5-, and 15-week soil samples.
TCE alone
Activity measure 1 week 5 weeks 15 weeks
Methane depletion 0.83 2.17 4.03
rate (% [CH.sub.4]/day) (0.19) (0.40) (2.61)
Percentage of total 17 45 84
methane removed
TCE + ethanol
Activity measure 1 week 5 weeks 15 weeks
Methane depletion 14.61 14.14 4.37
rate (% [CH.sub.4]/day) (4.27) (9.68) (0.56)
Percentage of total 37 43 87
methane removed
Ethanol alone
Activity measure 15 weeks
Methane depletion 5.09
rate (% [CH.sub.4]/day) (0.33)
Percentage of total 88
methane removed
Numbers in parentheses denote the standard error on the slopes of the
lines used to calculate the initial methane depletion rates.
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