Literature DB >> 12220407

Multiple influences of nitrate on uranium solubility during bioremediation of uranium-contaminated subsurface sediments.

Kevin T Finneran1, Meghan E Housewright, Derek R Lovley.   

Abstract

Microbiological reduction of soluble U(VI) to insoluble U(IV) has been proposed as a remediation strategy for uranium-contaminated groundwater. Nitrate is a common co-contaminant with uranium. Nitrate inhibited U(VI) reduction in acetate-amended aquifer sediments collected from a uranium-contaminated site in New Mexico. Once nitrate was depleted, both U(VI) and Fe(III) were reduced concurrently. When nitrate was added to sediments in which U(VI) had been reduced, U(VI) reappeared in solution. Parallel studies with the dissimilatory Fe(III)-, U(VI)- and nitrate-reducing microorganism, Geobacter metallireducens, demonstrated that nitrate inhibited reduction of Fe(III) and U(VI) in cell suspensions of cells that had been grown with nitrate as the electron acceptor, but not in Fe(III)-grown cells. Suspensions of nitrate-grown G. metallireducens oxidized Fe(II) and U(IV) with nitrate as the electron acceptor. U(IV) oxidation was accelerated when Fe(II) was also added, presumably due to the Fe(III) being formed abiotically oxidizing U(IV). These studies demonstrate that although the presence of nitrate is not likely to be an impediment to the bioremediation of uranium contamination with microbial U(VI) reduction, it is necessary to reduce nitrate before U(VI) can be reduced. These results also suggest that anaerobic oxidation of U(IV) to U(VI) with nitrate serving as the electron acceptor may provide a novel strategy for solubilizing and extracting microbial U(IV) precipitates from the subsurface.

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Year:  2002        PMID: 12220407     DOI: 10.1046/j.1462-2920.2002.00317.x

Source DB:  PubMed          Journal:  Environ Microbiol        ISSN: 1462-2912            Impact factor:   5.491


  50 in total

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Authors:  Kelly P Nevin; Kevin T Finneran; Derek R Lovley
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2.  Change in bacterial community structure during in situ biostimulation of subsurface sediment cocontaminated with uranium and nitrate.

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3.  Microbial functional gene diversity with a shift of subsurface redox conditions during In Situ uranium reduction.

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Journal:  Appl Environ Microbiol       Date:  2012-02-10       Impact factor: 4.792

4.  Bacterial community composition in the water column of a lake formed by a former uranium open pit mine.

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5.  Significant association between sulfate-reducing bacteria and uranium-reducing microbial communities as revealed by a combined massively parallel sequencing-indicator species approach.

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6.  Enhanced growth of Acidovorax sp. strain 2AN during nitrate-dependent Fe(II) oxidation in batch and continuous-flow systems.

Authors:  Anirban Chakraborty; Eric E Roden; Jürgen Schieber; Flynn Picardal
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7.  Inhibition of NO3- and NO2- reduction by microbial Fe(III) reduction: evidence of a reaction between NO2- and cell surface-bound Fe2+.

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8.  Anaerobic nitrate-dependent iron(II) bio-oxidation by a novel lithoautotrophic betaproteobacterium, strain 2002.

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9.  Resistance of solid-phase U(VI) to microbial reduction during in situ bioremediation of uranium-contaminated groundwater.

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Journal:  Appl Environ Microbiol       Date:  2004-12       Impact factor: 4.792

10.  OptStrain: a computational framework for redesign of microbial production systems.

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