Literature DB >> 12754659

Characterization of microbial activities and U reduction in a shallow aquifer contaminated by uranium mill tailings.

D A Elias1, L R Krumholz, D Wong, P E Long, J M Suflita.   

Abstract

A characterization of the Shiprock, NM, uranium mill tailing site focused on the geochemical and microbiological factors governing in-situ uranium-redox reactions. Groundwater and aqueous extracts of sediment samples contained a wide concentration range of sulfate, nitrate, and U(VI) with median values of 21.2 mM, 16.1 micro M, and 2.7 micro M, respectively. Iron(III) was not detected in groundwater, but a median value of 0.3 mM in sediment extracts was measured. Bacterial diversity down gradient from the disposal pile reflected the predominant geochemistry with relatively high numbers of sulfate- and nitrate-reducing microorganisms, and smaller numbers of acetogenic, methanogenic, nitrate-dependent Fe(II)-oxidizing, Fe(III)-reducing, and sulfide-oxidizing bacteria. In aquifer slurry incubations, nitrate reduction was always preferred and had a negative impact on sulfate-, Fe(III)-, and U-reduction rates. We also found that sulfate-reduction rates decreased sharply in the presence of clay, while Fe(III)-reduction increased with no clear impact on U reduction. In the absence of clay, iron and sulfate reduction correlated with concentrations of Fe(III) and sulfate, respectively. Rates of U(VI) loss did not correlate with the concentration of any electron acceptor. With the exception of Fe(III), electron donor amendment was largely unsuccessful in stimulating electron acceptor loss over a 2-week incubation period, suggesting that endogenous forms of organic matter were sufficient to support microbial activity. Our findings suggest that efforts to accelerate biological U reduction should initially focus on stimulating nitrate removal.

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Year:  2003        PMID: 12754659     DOI: 10.1007/s00248-002-1060-x

Source DB:  PubMed          Journal:  Microb Ecol        ISSN: 0095-3628            Impact factor:   4.552


  18 in total

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6.  A survey of 16S rRNA and amoA genes related to autotrophic ammonia-oxidizing bacteria of the beta-subdivision of the class proteobacteria in contaminated groundwater.

Authors:  I A Ivanova; J R Stephen; Y J Chang; J Brüggemann; P E Long; J P McKinley; G A Kowalchuk; D C White; S J Macnaughton
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8.  In-situ evidence for uranium immobilization and remobilization.

Authors:  John M Senko; Jonathan D Istok; Joseph M Suflita; Lee R Krumholz
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9.  Diversity and characterization of sulfate-reducing bacteria in groundwater at a uranium mill tailings site.

Authors:  Y J Chang; A D Peacock; P E Long; J R Stephen; J P McKinley; S J Macnaughton; A K Hussain; A M Saxton; D C White
Journal:  Appl Environ Microbiol       Date:  2001-07       Impact factor: 4.792

10.  Reduction of hexavalent uranium from organic complexes by sulfate- and iron-reducing bacteria.

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  17 in total

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Authors:  Anne M Spain; Aaron D Peacock; Jonathan D Istok; Mostafa S Elshahed; Fares Z Najar; Bruce A Roe; David C White; Lee R Krumholz
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6.  Suspension array analysis of 16S rRNA from Fe- and SO(4)2- reducing bacteria in uranium-contaminated sediments undergoing bioremediation.

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7.  Horizontal gene transfer of PIB-type ATPases among bacteria isolated from radionuclide- and metal-contaminated subsurface soils.

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8.  Uranium(VI) reduction by Anaeromyxobacter dehalogenans strain 2CP-C.

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9.  Impact of clay minerals on sulfate-reducing activity in aquifers.

Authors:  D Wong; J M Suflita; J P McKinley; L R Krumholz
Journal:  Microb Ecol       Date:  2004-01       Impact factor: 4.552

10.  Establishment and metabolic analysis of a model microbial community for understanding trophic and electron accepting interactions of subsurface anaerobic environments.

Authors:  Lance D Miller; Jennifer J Mosher; Amudhan Venkateswaran; Zamin K Yang; Anthony V Palumbo; Tommy J Phelps; Mircea Podar; Christopher W Schadt; Martin Keller
Journal:  BMC Microbiol       Date:  2010-05-24       Impact factor: 3.605

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