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Original

Comparative study of the formation of oxidative damage marker 8-hydroxy-2′-deoxyguanosine (8-OHdG) adduct from the nucleoside 2′-deoxyguanosine by transition metals and suspensions of particulate matter in relation to metal content and redox reactivity

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Pages 1071-1081 | Published online: 07 Jul 2009

References

  • Pope CA, III, Burnet RT, Thun MJ, Calle EE, Krewski D, Ito K, Thurston GD. Lung cancer, cardiopulmonary mortality, and long-term exposure to fine particulate matter. J Am Med Assoc 2002; 287: 1132–1141
  • Pope CA, III, Hansen ML, Long RW, Nielsen KR, Eatough NL, Wilson WE, Eatough DJ. Ambient particulate air pollution, heart rate variability, and blood markers of inflammation in a panel of elderly subjects. Environ Health Perspect 2004; 112: 339–345
  • Samet JM, Dominici F, Curriero FC, Coursac I, Zeger SL. Fine particulate air pollution and mortality in 20 US cirties. N Engl J Med 2000; 343: 1742–1749
  • Hsiao WLW, Mo ZY, Fang M, Shi XM, Wang F. Cytotoxicity of PM2.5 and PM2.5–10 ambient air pollutants assessed by the MTT and the Comet assays. Mutat Res 2000; 471: 45–55
  • Li XY, Gilmour PS, Donaldson K, MacNee W. In vivo and in vitro proinflammatory effects of particulate air pollution (PM10). Environ Health Perspect 1997; 105(suppl. 5))1279–1283
  • Gilmour PS, Brown DM, Lindsay TG, Beswick PH, MacNee W, Donaldson K. Adverse health effects of PM10 particles: Involvement of iron in generation of hydroxyl radical. Occup Environ Med 1996; 53: 817–822
  • Tao F, Gonzalez-Flecha B, Kobzik L. Reactive oxygen species in pulmonary inflammation by ambient particulates. Free Radic Biol Med 2003; 35: 327–340
  • Prahalad AK, Inmon J, Ghio AJ, Gallagher JE. Enhancement of 2′-deoxyguanosine hydroxylation and DNA damage by coal and oil fly ash in relation to particulate metal content and availability. Chem Res Toxicol 2000; 13: 1011–1019
  • Knaapen AM, Shi T, Borm PJA, Schins RPF. Soluble metals as well as the insoluble particle fraction are involved in cellular DNA damage induced by particulate matter. Mol Cell Biochem 2002; 234/235: 317–326
  • Smith KR, Aust AE. Mobilization of iron from urban particulates leads to generation of reactive oxygen species in vitro and induction of ferritin synthesis in human lung epithelial cells. Chem Res Toxicol 1997; 10: 828–834
  • Ghio AJ, Stonehuerner J, Dailey LA, Carter JD. Metals associated with both the water-soluble and insoluble fractions of an ambient air pollution particle catalyze an oxidative stress. Inhal Toxicol 1999; 11: 37–49
  • Toyokuni S, Sagripanti JL. Association between 8-hydroxy-2-deoxyguanosine formation and DNA strand breaks mediated by copper and iron. Free Radic Biol Med 1996; 20: 859–864
  • Lloyd DR, Carmichael PL, Phillips DH. Comparison of the formation of 8-hydroxy-2′-deoxyguanosine and single- and double-strand breaks in DNA mediated by Fenton reactions. Chem Res Toxicol 1998; 11: 420–427
  • Shi X, Jiang H, Mao Y, Ye J, Saffiotti U. Vanadium(IV)-mediated free radical generation and related 2-deoxyguanosine hydroxylation and DNA damage. Toxicology 1996; 106: 27–38
  • Tsou TC, Chen CL, Liu TY, Yang JL. Induction of 8-hydroxydeoxyguanosine in DNA by chromium (III) plus hydrogen peroxide and its prevention by scavengers. Carcinogenesis 1996; 17: 103–108
  • Prahalad AK, Inmon J, Dailey LA, Madden MC, Ghio AJ, Gallagher JE. Air pollution particles mediated oxidative DNA base damage in a cell free system and in human airway epithelial cells in relation to particulate metal content and bioreactivity. Chem Res Toxicol 2001; 14: 879–887
  • Bolton JL, Trush MA, Penning TM, Dryhurst G, Monks TJ. Role of quinones in toxicology. Chem Res Toxicol 2000; 13: 135–160
  • Bai Y, Suzuki AK, Sagai M. The cytotoxic effects of diesel exhaust particles on human pulmonary artery endothelial cells in vitro: Role of active oxygen species. Free Radic Biol Med 2001; 30: 555–562
  • Squadrito GL, Cueto R, Dellinger B, Pryor WA. Quinoid redox cycling as a mechanism for sustained free radical generation by inhaled airborne particulate matter. Free Radic Biol Med 2001; 31: 1132–1138
  • Hirataka 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
  • Dellinger B, Pryor WA, Cueto R, Squadrito GL, Hedge V, Deutsch WA. Role of free radicals in the toxicity of airborne fine particulate matter. Chem Res Toxicol 2001; 14: 1371–1377
  • Tokiwa H, Sera N, Nakanishi Y, Sagai M. 8-hydroxy-guanosine formed in human lung tissues and the association with diesel exhaust particles. Free Radic Biol Med 1999; 27: 1251–1258
  • Ichinose T, Yajima Y, Nagashima M, Takenoshita S, Nagamachi Y, Sagai M. Lung carcinogenesis and formation of 8-hydroxy-deoxyguanosine in mice by diesel exhaust particles. Carcinogenesis 1997; 18: 185–192
  • Shi T, Knaapen AM, Begerow J, Birmili W, Borm PJ, Schins RP. Temporal variation of hydroxyl radical generation and 8-hydroxy-2′-deoxyguanosine formation by coarse and fine particulate matter. Occup Environ Med 2003; 60: 315–321
  • Karlsson HL, Nilsson L, Möller L. Subway particles are more genotoxic than street particles and induce oxidative stress in cultured human lung cells. Chem Res Toxicol 2005; 18: 19–23
  • Merzenich H, Hartwig A, Ahrens W, Beyersmann D, Schlepegrell R, Scholze M, et al. Biomonitoring on carcinogenic metals and oxidative DNA damage in a cross-sectional study. Cancer Epidemiol Biomarkers Prev 2001; 10: 515–522
  • Sørensen M, Autrup H, Hertel O, Wallin H, Knudsen LE, Loft S. Personal exposure to PM2.5 and biomarkers of DNA damage. Cancer Epidemiol Biomarkers Prev 2003; 12: 191–196
  • Kim JY, Mukherjee S, Ngo LC, Christiani DC. Urinary 8-hydroxy-2′-deoxyguanosine as a biomarker of oxidative DNA damage in workers exposed to fine particulates. Environ Health Perspect 2004; 112: 666–671
  • Davies MJ, Gilbert BC, Hazlewood C, Polack NP. EPR spin-trapping studies of radical damage to DNA. J Chem Soc Perkins Trans II 1995; 13–21
  • Mao Y, Liu KJ, Jiang JJ, Shi X. Generation of reactive oxygen species by Co(II) from H2O2 in the presence of chelators in relation to DNA damage and 2′-deoxyguanosine hydroxylation. J Toxicol Environ Health 1996; 47: 61–75
  • Colwell BA, Morris DL, Jr. Formation of the oxidative damage marker 8-hydroxy-2′-deoxyguanosine from the nucleoside 2′-deoxyguanosine: Parameter studies and evidence of Fe(II) binding. J Inorg Biochem 2003; 94: 100–105
  • Weimann A, Belling D, Poulsen HE. Measurement of 8-oxo-2′-deoxyguanosine and 8-oxo-2′-deoxyadenosine in DNA human urine by high performance liquid chromatography-electrospray tandem mass spectrometry. Free Radic Biol Med 2001; 30: 757–764
  • Oshima H, Ono A, Matsuda A, Sawamura S, Kuwabara M. Reactions between hydroxyl-radical-induced 7,8-dihydro-8-oxo-2′-deoxyguanosine precursor and the spin trap a-phenyl-N-tert-butylnitrone. J Radiat Res 1997; 38: 15–25
  • Donaldson K, MacNee W. Potential mechanisms of adverse pulmonary and cardiovascular effects of particulate air pollution (PM10). Int J Hyg Environ Health 2001; 203: 411–415
  • Stohs SJ, Bagchi D. Oxidative mechanisms in the toxicity of metal ions. Free Radic Biol Med 1995; 18: 321–336
  • Pritchart RJ, Ghio AJ, Lehmann JR, Winsett DW, Tepper JS, Park P, Gilmour MI, Dreher KL, Costa DL. Oxidant generation and lung injury after exposure to particulate air pollutants increase with the concentrations of the associated metals. Inhal Toxicol 1996; 8: 457–477
  • Carmichael AJ. Reation of vanadyl with hydrogen peroxide. An ESR and spin trapping study. Free Radic Res Commun 1990; 10: 37–45
  • Goldstein S, Meyerstein D, Czapski G. The Fenton reagents. Free Radic Biol Med 1993; 15: 435–445
  • Eberhardt MK, Ramirez G, Ayala E. Does the reaction of Cu(I) with H2O2 give OH radicals? A study of aromatic hydroxylation. J Org Chem 1989; 54: 5922–5926
  • Coudray C, Rachidi S, Favier A. Effect of zinc on superoxide-dependent hydroxyl radical production in vitro. Biol Trace Elem Res 1993; 38: 273–287
  • Cheton PL, Archibald FS. Manganese complexes and the generation and scavenging of hydroxyl free radicals. Free Radic Biol Med 1988; 5: 325–333
  • Valavanidis A, Salika A, Theodoropoulou A. Generation of hydroxyl radicals by urban suspended particulate air matter. The role of iron ions. Atmos Environ 2000; 34: 2379–2386
  • Vallius M, Janssen NA, Heinrich J, Hoek G, Rauskanen J, Cyrys J, Van Grieken R, de Hartog JJ, Kreyling WG, Pekkanen J. Sources and elemental composition of ambient PM(2.5) in three European cities. Sci Total Environ 2005; 337: 147–162
  • Zielinska B, Sagebiel J, Arnott WP, Rogers CF, Kelly KE, Wagner DA, Lighty JS, Sarofim AF, Palmer G. Phase and size distribution of polycyclic aromatic hydrocarbons in diesel and gasoline vehicle emissions. Environ Sci Technol 2004; 38: 2557–2567
  • Smith KR, Aust AE. Mobilization of iron from urban particulates leads to generation of reactive oxygen species in vitro and induction of ferritin synthesis in human lung epithelial cells. Chem Res Toxicol 1997; 10: 828–834
  • Rai P, Cole TD, Wemmer DE, Linn SJ. Localization of Fe(2+) at an RTGR sequence within a DNA duplex explains preferential cleavage by Fe(2+) and H2O2. Mol Biol 2001; 312: 1089–1101
  • Lloyd DR, Phillips DH. Oxidative DNA damage mediated by copper(II), iron(II) and nickel(II) Fenton reactions: Evidence for the site-specific mechanisms in the formation of double-strand breaks, 8-hydroxydeoxyguanosine and putative intrastrand cross-links. Mutat Res 1999; 424: 23–36
  • Collins AR, Cadet J, Moller L, Poulsen HE, Vina J. Are we sure we know how to measure 8-oxo-7,8-dihydroguanine in DNA from human cells?. Arch Biochem Biophys 2004; 423: 57–65
  • Loft S, Poulsen HE, Vistisen K, Knudsen LE. Increased urinary excretion of 8-oxo-2′-deoxyguanosine, a biomarker of oxidative DNA damage, in urban bus drivers. Mutat Res 1999; 441: 11–19
  • ESCODD (European Standard Committee on Oxidative DNA Damage). Inter-laboratory validation of procedures for measuring 8-oxo-7, 8- dihydroguanine/8-oxo-7, 8-dihydro-2′-deoxyguanosine in DNA. Free Radic Res 2002; 38: 239–245

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