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Original

Involvement of oxidative stress in hydroquinone-induced cytotoxicity in catalase-deficient Escherichia coli mutants

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Pages 1035-1041 | Published online: 07 Jul 2009

References

  • Snyder R. Benzene and leukemia. Crit Rev Toxicol 2002; 32: 155–210
  • Hakura A, Tsutsui Y, Mochida H, Sugihara Y, Mikami T, Sagami F. Mutagenicity of dihydroxybenzenes and dihydroxynaphthalenes for Ames Salmonella tester strains. Mutat Res 1996; 371: 293–299
  • Sze CC, Shi CY, Ong CN. Cytotoxicity and DNA strand breaks induced by benzene and its metabolites in Chinese hamster ovary cells. J Appl Toxicol 1996; 16: 259–264
  • Kawanishi S, Hiraku Y, Inoue S. DNA damage induced by Salmonella test-negative carcinogens through the formation of oxygen and nitrogen-derived reactive species (review). Int J Mol Med 1999; 3: 169–174
  • Martinez A, Urios A, Blanco M. Mutagenicity of 80 chemicals in Escherichia coli tester strains IC203, deficient in OxyR, and its oxyR(+) parent WP2 uvrA/pKM101: Detection of 31 oxidative mutagens. Mutat Res 2000; 467: 41–53
  • Winn LM. Homologous recombination initiated by benzene metabolites: A potential role of oxidative stress. Toxicol Sci 2003; 72: 143–149
  • Andreoli C, Rossi S, Leopardi P, Crebelli R. DNA damage by hydroquinone in human white blood cells: Analysis by alkaline single-cell gel electrophoresis. Mutat. Res. 1999; 438: 37–45
  • Hirakawa K, Oikawa S, Hiraku Y, Hirosawa I, Kawanishi S. Catechol and hydroquinone have different redox properties responsible for their differential DNA-damaging ability. Chem Res Toxicol 2002; 15: 76–82
  • Sun Y. Free radicals, antioxidant enzymes, and carcinogenesis. Free Radic Biol Med 1990; 8: 583–599
  • Scott MD, Lubin BH, Zuo L, Kuypers FA. Erythrocyte defense against hydrogen peroxide: Preeminent importance of catalase. J Lab Clin Med 1991; 118: 7–16
  • Feinstein RN, Howard JB, Braun JT, Seaholm JE. Acatalasemic and hypocatalasemic mouse mutants. Genetics 1966; 53: 923–933
  • Wang DH, Tsutsui K, Sano K, Masuoka N, Kira S. cDNA cloning and expression of mutant catalase from the hypocatalasemic mouse: comparison with the acatalasemic mutant. Biochim Biophys Acta 2001; 1522: 217–220
  • Shaffer JB, Preston KE. Molecular analysis of an acatalasemic mouse mutant. Biochem Biophys Res Commun 1990; 173: 1043–1050
  • Mulvey MR, Sorby PA, Triggs-Raine BL, Loewen PC. Cloning and physical characterization of katE and katF required for catalase HPII expression in Escherichia coli. Gene 1988; 73: 337–345
  • Masuoka N, Wakimoto M, Ubuka T, Nakano T. Spectrophotometric determination of hydrogen peroxide: Catalase activity and rates of hydrogen peroxide removal by erythrocytes. Clin Chim Acta 1996; 254: 101–112
  • Gornall AG, Bardawill CJ, David MM. Determination of serum proteins by means of the biuret reaction. J Biol Chem 1949; 177: 751–766
  • Wang DH, Masuoka N, Kira S. Animal model for oxidative stress research—Catalase mutant mice. Environ Health Prev Med 2003; 8: 37–40
  • Boveris A, Chance B. The mitochondrial generation of hydrogen peroxide. General properties and effect of hyperbaric oxygen. Biochem J 1973; 134: 707–716
  • Beckman JS, Siedow JN. Bactericidal agents generated by the peroxidase-catalyzed oxidation of para-hydroquinones. J Biol Chem 1985; 260: 14604–14609
  • Urios A, Lopez-Gresa MP, Gonzalez MC, Primo J, Martinez A, Herrera G, Escudero JC, O'Connor JE, Blanco M. Nitric oxide promotes strong cytotoxicity of phenolic compounds against Escherichia coli: The influence of antioxidant defenses. Free Radic Biol Med 2003; 35: 1373–1381
  • Kawanishi S, Hiraku Y, Murata M, Oikawa S. The role of metals in site-specific DNA damage with reference to carcinogenesis. Free Radic Biol Med 2002; 32: 822–832
  • Li Y, Kuppusamy P, Zweier JL, Trush MA. ESR evidence for the generation of reactive oxygen species from the copper-mediated oxidation of the benzene metabolite, hydroquinone: Role in DNA damage. Chem Biol Interact 1995; 94: 101–120
  • Cohen G, Hochstein P. Glutathione peroxidase: The primary agent for the elimination of hydrogen peroxide in erythrocytes. Biochemistry 1963; 172: 1420–1428
  • Smith J, Shrift A. Phylogenic distribution of glutathione peroxidase. Comp Biochem Physiol 1979; 63B: 39–44
  • Engelich G, White M, Hartshorn KL. Role of the respiratory burst in co-operative reduction in neutrophil survival by influenza A virus and Escherichia coli. J Med Microbiol 2002; 51: 484–490
  • Kohen R, Shalhoub R. Prevention and induction of oxidative damage in E. coli cells by cationized proteins. Free Radic Biol Med 1994; 16: 571–580
  • Camhi SL, Lee P, Choi AMK. The oxidative stress response. New Horiz 1995; 3: 170–182
  • Halliwell B, Gutteridge JM. Oxygen toxicity, oxygen radicals, transition metals and disease. Biochem J 1984; 219: 1–14
  • Mehlhorn RJ. Ascorbate- and dehydroascorbic acid-mediated reduction of free radicals in the human erythrocyte. J Biol Chem 1991; 266: 2724–2731
  • Grey CE, Adlercreutz P. Ability of antioxidants to prevent oxidative mutations in Salmonella typhimurium TA102. Mutat Res 2003; 527: 27–36
  • Meister A, Anderson ME. Glutathione. Annu Rev Biochem 1983; 52: 711–760
  • Greenberg JT, Demple B. Glutathione in Escherichia coli is dispensable for resistance to H2O2 and gamma radiation. J Bacteriol 1986; 168: 1026–1029

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