Literature DB >> 18729091

Addition of DNA to Cr(VI) and cytochrome b5 containing proteoliposomes leads to generation of DNA strand breaks and Cr(III) complexes.

Griselda R Borthiry1, William E Antholine2, Judith M Myers1, Charles R Myers1,3.   

Abstract

Chromium (Cr) is a cytotoxic metal that can be associated with a variety of types of DNA damage, including Cr-DNA adducts and strand breaks. Prior studies with purified human cytochrome b(5) and NADPH:P450 reductase in reconstituted proteoliposomes (PLs) demonstrated rapid reduction of Cr(VI) (hexavalent chromium, as CrO(4)(2-), and the generation of Cr(V), superoxide (O(2)(*-)), and hydroxyl radical (HO(*)). Studies reported here examined the potential for the species produced by this system to interact with DNA. Strand breaks of purified plasmid DNA increased over time aerobically, but were not observed in the absence of O(2). Cr(V) is formed under both conditions, so the breaks are not mediated directly by Cr(V). The aerobic strand breaks were significantly prevented by catalase and EtOH, but not by the metal chelator diethylenetriaminepentaacetic acid (DTPA), suggesting that they are largely due to HO(*) from Cr-mediated redox cycling. EPR was used to assess the formation of Cr-DNA complexes. Following a 10-min incubation of PLs, CrO(4)(2-), and plasmid DNA, intense EPR signals at g=5.7 and g=5.0 were observed. These signals are attributed to specific Cr(III) complexes with large zero field splitting (ZFS). Without DNA, the signals in the g=5 region were weak. The large ZFS signals were not seen, when Cr(III)Cl(3) was incubated with DNA, suggesting that the Cr(III)-DNA interactions are different when generated by the PLs. After 24 h, a broad signal at g=2 is attributed to Cr(III) complexes with a small ZFS. This g=2 signal was observed without DNA, but it was different from that seen with plasmid. It is concluded that EPR can detect specific Cr(III) complexes that depend on the presence of plasmid DNA and the manner in which the Cr(III) is formed.

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Year:  2008        PMID: 18729091      PMCID: PMC2715337          DOI: 10.1002/cbdv.200890143

Source DB:  PubMed          Journal:  Chem Biodivers        ISSN: 1612-1872            Impact factor:   2.745


  51 in total

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Authors:  X Shi; A Chiu; C T Chen; B Halliwell; V Castranova; V Vallyathan
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2.  DNA polymerase arrest by adducted trivalent chromium.

Authors:  L C Bridgewater; F C Manning; E S Woo; S R Patierno
Journal:  Mol Carcinog       Date:  1994-03       Impact factor: 4.784

3.  Modification of the erythrocyte anion carrier by chromate.

Authors:  B Buttner; D Beyersmann
Journal:  Xenobiotica       Date:  1985 Aug-Sep       Impact factor: 1.908

4.  Detection of dichromate (VI)-induced DNA strand breaks and formation of paramagnetic chromium in multiple mouse organs.

Authors:  S Ueno; T Kashimoto; N Susa; Y Furukawa; M Ishii; K Yokoi; M Yasuno; Y F Sasaki; J Ueda; Y Nishimura; M Sugiyama
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5.  On the hydroxyl radical formation in the reaction between hydrogen peroxide and biologically generated chromium(V) species.

Authors:  X G Shi; N S Dalal
Journal:  Arch Biochem Biophys       Date:  1990-03       Impact factor: 4.013

6.  Reduction of hexavalent chromium by human cytochrome b5: generation of hydroxyl radical and superoxide.

Authors:  Griselda R Borthiry; William E Antholine; B Kalyanaraman; Judith M Myers; Charles R Myers
Journal:  Free Radic Biol Med       Date:  2006-12-15       Impact factor: 7.376

7.  Chromium (IV)-mediated fenton-like reaction causes DNA damage: implication to genotoxicity of chromate.

Authors:  H Luo; Y Lu; X Shi; Y Mao; N S Dalal
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Authors:  X Shi; Z Dong; N S Dalal; P M Gannett
Journal:  Biochim Biophys Acta       Date:  1994-04-12

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Authors:  S A Fitzsimmons; A D Lewis; R J Riley; P Workman
Journal:  Carcinogenesis       Date:  1994-08       Impact factor: 4.944

10.  Reaction of Cr(VI) with ascorbate and hydrogen peroxide generates hydroxyl radicals and causes DNA damage: role of a Cr(IV)-mediated Fenton-like reaction.

Authors:  X Shi; Y Mao; A D Knapton; M Ding; Y Rojanasakul; P M Gannett; N Dalal; K Liu
Journal:  Carcinogenesis       Date:  1994-11       Impact factor: 4.944

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2.  Quinic acid and hypervalent chromium: a spectroscopic and kinetic study.

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