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Radiation-Induced Oxidative Injury and Protection with Melatonin

Extremely low frequency magnetic fields cause oxidative DNA damage in rats

, PhD, DVM, , , &
Pages 789-795 | Received 06 Mar 2008, Accepted 09 Jul 2008, Published online: 03 Jul 2009

References

  • Ahlbom A, Day N, Feychting M, Roman E, Skinner J, Dockerty J, Linet M, McBride M, Michaelis J, Olsen J H, Tynes T, Verkasalo P K. A pooled analysis of magnetic fields and childhood leukemia. British Journal of Cancer 2000; 83: 692–698
  • Amara S, Abdelmelek H, Garrel C, Guiraud P, Douki T, Ravanat J L, Favier A, Sakly M, Rhouma K. Zinc supplementation ameliorates static magnetic field-induced oxidative stress in rat tissues. Environmental Toxicology and Pharmacology 2007a; 23: 193–197
  • Amara S, Douki T, Ravanat J L, Garrel C, Guiraud P, Favier A, Sakly M, Rhouma K, Abdelmelek H. Influence of a static magnetic field (250 mT) on the antioxidant response and DNA integrity in THP1 cells. Physics in Medicine and Biology 2007b; 52: 889–898
  • Chater S, Abdelmelek H, Douki T, Garrel C, Favier A, Sakly M, Ben Rhouma K. Exposure to static magnetic field of pregnant rats induces hepatic GSH elevation but not oxidative DNA damage in liver and kidney. Archives of Medical Research 2006; 8: 941–946
  • D'Ambrosio G, Massa R, Di Berardino D, Lioi M B, Scaglione A, Scarfi M R. Chromosomal aberrations in bovine lymphocytes exposed to 50 Hz electric current. Bioelectromagnetics 1988; 7: 239–245
  • Delaney M O, Wiederholt C J, Greenberg M M. Fapy-dA induces nucleotide misincorporation tranlesionally by a DNA polymerase. Angewandte Chemie International Edition 2002; 41: 771–775
  • Dizdaroglu M. Oxidative damage to DNA in mammalian chromatin. Mutation Research 1992; 275: 331–342
  • Dizdaroglu M. Mechanisms of free radical damage to DNA. DNA and free radicals: Techniques, mechanisms and applications, O I Aruoma, B Halliwell. OIC International, Saint Lucia 1998; 1–24
  • Dizdaroglu M, Jaruga P, Birincioglu M, Rodriquez H. Free radical-induced damage to DNA: Mechanisms and measurement. Free Radical Biology and Medicine 2002; 32: 1102–1115
  • Egler R A, Fernandes E, Rothermund K, Sereika S, de Souza-Pinto N, Jaruga P, Dizdaroglu M, Prochownik E V. Regulation of reactive oxygen species, DNA damage, and c-Myc function by peroxiredoxin 1. Oncogene 2005; 24: 8038–8050
  • Evans M D, Dizdaroglu M, Cooke M S. Oxidative DNA damage and disease: Induction, repair and significance. Mutation Research 2004; 567: 1–61
  • Ferreira A R, Knakievicz T, Pasquali M A, Gelain D P, Dal-Pizzol F, Fernández C E, de Salles A A, Ferreira H B, Moreira J C. Ultra high frequency-electromagnetic field irradiation during pregnancy leads to an increase in erythrocytes micronuclei incidence in rat offspring. Life Sciences 2006; 80: 43–50
  • Frahm J, Lantow M, Lupke M, Weiss D G, Simkó M. Alteration in cellular functions in mouse macrophages after exposure to 50 Hz magnetic fields. Journal of Cellular Biochemistry 2006; 99: 168–177
  • Greenland S, Sheppard A R, Kaune W T, Poole C, Kelsh M A. A pooled analysis of magnetic fields, wire codes, and childhood leukemia. Childhood Leukemia-EMF Study Group. Epidemiology 2000; 11: 624–634
  • Grissom C B. Magnetic field effects in biology: A survey of possible mechanisms with emphasis on radical-pair recombination. Chemical Reviews 1995; 95: 3–24
  • Halliwell B. Effect of diet on cancer development: Is oxidative DNA damage a biomarker. Free Radical Biology and Medicine 2002; 10: 968–974
  • International Agency for Research on Cancer (IARC). Monographs on the evaluation of carcinogenic risks to humans. Non-ionizing radiation. Part 1: Static and extremely low-frequency (ELF) electric and magnetic fields. 1st ed. IARC, Lyon 2002
  • International Commission on Non Ionizing Radiation Protection (ICNIRP). Guidelines for limiting exposure to time-varying electric, magnetic, and electromagnetic fields (up to 300 GHz). Health Physics 1998; 74: 494–522
  • Ivancsits S, Diem E, Jahn O, Rudiger H W. Intermittent extremely low frequency electromagnetic fields cause DNA damage in a dose-dependent way. International Archives of Occupational and Environmental Health 2003; 76: 431–436
  • Jajte J, Zmyslony M, Palus J, Dziubaltowska E, Rajkowska E. Protective effect of melatonin against in vitro iron ions and 7mT 50Hz magnetic field-induced DNA damage in rat lymphocytes. Mutation Research 2001; 483: 57–64
  • Jaruga P, Theruvathu J, Dizdaroglu M, Brooks P J. Complete release of (5′S)- 8,5′-cyclo-2′-deoxyadenosine from dinucleotides, oligodeoxynucleotides and DNA, and direct comparison of its levels in cellular DNA with other oxidatively induced DNA lesions. Nucleic Acids Research 2004; 32: e87
  • Juutilainen J, Kumlin T, Naarala J. Do extremely low frequency magnetic fields enhance the effects of environmental carcinogens? A meta-analysis of experimental studies. International Journal of Radiation Biology 2006; 82: 1–12
  • Kalam M A, Haraguchi K, Chandani S, Loechler E L, Moriya M, Greenberg M M, Basu A K. Genetic effects of oxidative DNA damages: Comparative mutagenesis of the imidazole ring-opened formamidopyrimidines (Fapy lesions) and 8-oxo-purines in simian kidney cells. Nucleic Acids Research 2006; 34: 2305–2315
  • Khalil A M, Quassem W. Cytogenetic effects of pulsing electromagnetic field on human lymphocytes in vitro: Chromosome aberrations, sister-chromatid exchanges. Mutation Research 1991; 247: 141–146
  • Lacy-Hulbert A, Metcalfe J C, Hesketh R. Biological responses to electromagnetic fields. The Journal of the Fedaration of American Societies for Experimental Biology 1998; 12: 395–420
  • Lai H, Singh N P. Acute exposure to a 60Hz magnetic field increases DNA strand breaks in rat brain cells. Bioelectromagnetics 1997; 18: 156–165
  • Lai H, Singh N P. Magnetic field-induced DNA strand breaks in brain cells of the rat. Environmental Health Perspectives 2004; 112: 687–694
  • Lopucki M, Schmerold I, Dadak A, Wiktor H, Niedermüller H, Kankofer M. Low dose magnetic fields do not cause oxidative DNA damage in human placental cotyledons in vitro. Virchows Archiv 2005; 446: 634–639
  • Lupke M, Rollwitz J, Simkó M. Cell activating capacity of 50 Hz magnetic fields to release reactive oxygen intermediates in human umbilical cord blood-derived monocytes and in mono mac 6 cells. Free Radical Research 2004; 38: 985–993
  • National Institute of Environmental Health Sciences (NIEHS). Working group report: Assessment of health effects from exposure to power-line frequency electric and magnetic fields. US National Institutes of Health. NIH Publication No. 98–3981, C J Portier, M S Wolfe. NIEHS, Research Triangle Park 1998
  • Nordenson I, Mild K H, Andersson G, Sandstrom M. Chromosomal aberrations in human amniotic cells after intermittent exposure to fifty hertz magnetic fields. Bioelectromagnetics 1994; 15: 293–301
  • Phillips J L, Campbell-Beachler M, Ishida-Jones T, Haggnen W. Exposure of PC 12 cells to a G sinusoidal magnetic field at 60 Hz: Effect on the activity of the DNA repair enzyme poly(ADP-ribose) polymerase. Paper presented at the Annual Rewiew of Research on Biological Effects of Electric and Magnetic Fields from the Generation, Delivery and Use of Electricity, Palm Springs, CA, November, 12–16, 1995
  • Reddy P, Jaruga P, O'Connor T, Rodriquez H, Dizdaroglu M. Overexpression and rapid purification of Escherichia coli formamidopyrimidine-DNA glycosylase. Protein Expression and Purification 2004; 34: 126–133
  • Senturkler S, Dizdaroglu M. The effect of experimental conditions on the levels of oxidatively modified bases in DNA as measured by gas chromatography-mass spectrometry: How many modified bases are involved? Prepurification or not? . Free Radical Biology & Medicine 1999; 27: 370–380
  • Simkó M, Richard D, Kriehuber R, Weiss D G. Micronucleus induction in SHE cells following exposure to 50 Hz magnetic fields, benzo(a)pyrene and TPA in vitro. Mutation Research 2001; 495: 43–50
  • Simkó M. Induction of cell activation processes by low frequency electromagnetic fields. Scientific World Journal 2004; 4: 4–22
  • Simkó M, Mattsson M O. Extremely low frequency electromagnetic fields as effectors of cellular responses in vitro: Possible ımmune cell activation. Journal of Cellular Biochemistry 2004; 93: 83–92
  • Singh N P, Lai H. 60 Hz magnetic field exposure induces DNA crosslinks in rat brain cells. Mutation Research 1998; 400: 313–320
  • Sirmatel O, Sert C, Sirmatel F, Selek S, Yokus B. Total antioxidant capacity, total oxidant status and oxidative stress index in the men exposed to 1.5 T static magnetic field. General Physiology and Biophysics 2007; 2: 86–90
  • Wertheimer N, Leeper E. Electrical wiring configurations and childhood cancer. American Journal of Epidemiology 1979; 109: 273–284
  • Wiederholt C J, Greenberg M M. Fapy.dG instructs Klenow exo- to misincorporate deoxyadenosine. Journal of the American Chemical Society 2002; 124: 7278–7679
  • Wolf F I, Torsello A, Tedesco B, Fasanella S, Boninsegna A, D'Ascenzo M, Grassi C, Azzena G B, Cittadini A. 50-Hz extremely low frequency electromagnetic fields enhance cell proliferation and DNA damage: Possible involvement of a redox mechanism. Biochimica et Biophysica Acta 2005; 1743: 120–129
  • Yokus B, Cakir D U, Akdag M Z, Sert C, Mete N. Oxidative DNA damage in rats exposed to extremely low frequency electro magnetic fields. Free Radical Research 2005; 39: 317–323

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