Literature DB >> 23475973

Influence of copper resistance determinants on gold transformation by Cupriavidus metallidurans strain CH34.

Nicole Wiesemann1, Juliane Mohr, Cornelia Grosse, Martin Herzberg, Gerd Hause, Frank Reith, Dietrich H Nies.   

Abstract

Cupriavidus metallidurans is associated with gold grains and may be involved in their formation. Gold(III) complexes influence the transcriptome of C. metallidurans (F. Reith et al., Proc. Natl. Acad. Sci. U. S. A. 106:17757-17762, 2009), leading to the upregulation of genes involved in the detoxification of reactive oxygen species and metal ions. In a systematic study, the involvement of these systems in gold transformation was investigated. Treatment of C. metallidurans cells with Au(I) complexes, which occur in this organism's natural environment, led to the upregulation of genes similar to those observed for treatment with Au(III) complexes. The two indigenous plasmids of C. metallidurans, which harbor several transition metal resistance determinants, were not involved in resistance to Au(I/III) complexes nor in their transformation to metallic nanoparticles. Upregulation of a cupA-lacZ fusion by the MerR-type regulator CupR with increasing Au(III) concentrations indicated the presence of gold ions in the cytoplasm. A hypothesis stating that the Gig system detoxifies gold complexes by the uptake and reduction of Au(III) to Au(I) or Au(0) reminiscent to detoxification of Hg(II) was disproven. ZupT and other secondary uptake systems for transition metal cations influenced Au(III) resistance but not the upregulation of the cupA-lacZ fusion. The two copper-exporting P-type ATPases CupA and CopF were also not essential for gold resistance. The copABCD determinant on chromosome 2, which encodes periplasmic proteins involved in copper resistance, was required for full gold resistance in C. metallidurans. In conclusion, biomineralization of gold particles via the reduction of mobile Au(I/III) complexes in C. metallidurans appears to primarily occur in the periplasmic space via copper-handling systems.

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Year:  2013        PMID: 23475973      PMCID: PMC3650554          DOI: 10.1128/JB.01951-12

Source DB:  PubMed          Journal:  J Bacteriol        ISSN: 0021-9193            Impact factor:   3.490


  39 in total

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2.  Bacterial sensing of and resistance to gold salts.

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5.  The transport mechanism of bacterial Cu+-ATPases: distinct efflux rates adapted to different function.

Authors:  Daniel Raimunda; Manuel González-Guerrero; Blaise W Leeber; José M Argüello
Journal:  Biometals       Date:  2011-01-06       Impact factor: 2.949

6.  The terminal quinol oxidase of the hyperthermophilic archaeon Acidianus ambivalens exhibits a novel subunit structure and gene organization.

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7.  Contribution of extracytoplasmic function sigma factors to transition metal homeostasis in Cupriavidus metallidurans strain CH34.

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  17 in total

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5.  Synergistic Toxicity of Copper and Gold Compounds in Cupriavidus metallidurans.

Authors:  Nicole Wiesemann; Lucy Bütof; Martin Herzberg; Gerd Hause; Lutz Berthold; Barbara Etschmann; Joël Brugger; Gema Martinez-Criado; Dirk Dobritzsch; Sacha Baginsky; Frank Reith; Dietrich H Nies
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6.  Identification and Characterization of a Au(III) Reductase from Erwinia sp. IMH.

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7.  Loss of Mobile Genomic Islands in Metal-Resistant, Hydrogen-Oxidizing Cupriavidus metallidurans.

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8.  Survival of Escherichia coli cells on solid copper surfaces is increased by glutathione.

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Review 10.  Forced Biomineralization: A Review.

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