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Articles

Intracellular Ca2+ levels in rat ventricle cells exposed to extremely low frequency magnetic field

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Pages 14-20 | Published online: 09 May 2011

References

  • Adey W. R.. 1993. Electromagnetics in biology and medicine. In: Matsumoto H.. editors. Modern Radio Sciences. New York: Oxford University Press 227–245.
  • Akdag M. Z., Bilgin M. H., Dasdag S., Tumer C.. Alteration of nitric oxide production in rats exposed to a prolonged, extremely low-frequency magnetic field. Electromagn. Biol. Med.. 2007; 26:99–106.
  • Akdag M. Z., Dasdag S., Erdal N., Buyukbayram H., Gurgul S.. The effect of long-term extremely low-frequency magnetic field on geometric and biomechanical properties of rats' bone. Electromagn. Biol. Med.. 2002; 29:9–18.
  • Akdag M. Z., Dasdag S., Ketani M. A., Sağsöz H.. Effect of extremely low frequency magnetic fields in safety standards on structure of acidophilic and basophilic cells in anterior pituitary gland of rats: An experimental study. J. Int. Dent. Med. Res.. 2009; 2 2: 61–66.
  • Barbier E., Dufy B., Veyret B.. Stimulation of Ca+2 influx in rat pituitary cells under exposure to a 50 Hz magnetic field. Bioelectromagnetics. 1996; 17:303–311.
  • Bellosi A.. Lack of an effect of static magnetic field on calcium efflux from isolated chick brains. Bioelectromagnetics. 1986; 7:381–386.
  • Berg H.. Problems of weak electromagnetic field effects in cell biology. Bioelectrochem. Bioenerg.. 1999; 48:355–360.
  • Berridge M. J., Lipp P., Bootman M. D.. The versality and universality of calcium signaling. Nat. Rev. Cell. Biol.. 2000; 1 1: 11–21.
  • Blackman C. F., Benane S. G., House D. E.. The influence of temperature during electric-and magnetic field-induced alteration of calcium-ion release from in vitro brain tissue. Bioelectromagnetics. 1991; 12:173–182.
  • Blanchard J. P., Blackman C. F.. Clarification and application of an ion parametric resonance model for magnetic field interactions with biological systems. Bioelectromagnetics. 1994; 15:217–238.
  • Cho M. R., Thatte H. S., Silvia M. T., . Transmembrane calcium influx induced by an electric fields. FASEB J.. 1999; 13:677–683.
  • Galvanovskis J., Sandblom J., Bergovist B., . The influence of 50 Hz magnetic fields on cytoplasmic Ca+2 oscillations in human leukemia T-cells. Sci. Total Environ.. 1996; 180:19–33.
  • Graham C., Cook M. R., Sastre A., . Cardiac autonomic mechanisms in power-frequency magnetic fields: A multi-study analysis. Environ. Health Perspect.. 2000; 108:737–742.
  • Guo H.. 2004. The effects of power frequency homogenous magnetic field on apoptosis and proliferation of normal and tumor cells. Ph.D. dissertation. Hebei University of Toxicology Tianjin, China.
  • Hakansson N., Gustavsson P., Sastre A., . Occupational exposure to extremely low-frequency magnetic fields and mortality from cardiovascular disease. Amer. J. Epidemiol.. 2003; 158:534–542.
  • Hojevik P., Sandblom J., Galt S., . Ca+2 ion transport through patch-clamped cells exposed to magnetic fields. Bioelectromagnetics. 1995; 16:33–40.
  • Howard E., David P. C., Patty M., . 50-Hertz magnetic field and calcium transient in Jurkat cells: Results of a research and public information dissemination (RAPID) program study. Environ. Health Perspect.. 2000; 108 2: 135–140.
  • Kelsh M. A., Sahl J. D.. Mortality among a cohort of electric utility workers, 1960–1961. Amer. J. Int. Med.. 1997; 31:534–544.
  • Lindstrom E., Lindstrom P.. Intracellular calciım oscillations in a T-cell line after exposure to extremely–low-frequency magnetic fields with variable frequencies and flux densities. Bioelectromagnetics. 1995; 16:41–47.
  • Lindstrom E., Lindstrom P., Berglund A., . ntracellular calcium osscillations induced in a T-cell line by a weak 50 Hz magnetic field. J. Cell. Physiol.. 1993; 156:395–398.
  • Lyle D. B., Fuchs T. A., Casamento J. P., . Intracellular calcium signaling by Jurkat T-lymphocytes exposed to a 60 Hz magnetic field. Bioelectromagnetics. 1997; 18:439–445.
  • Lyle D. B., Wang X. H., Ayotte R. D., . Calcium uptake by leukemic and normal T-lymhocytes exposed to low frequency magnetic fields. Bioelectromagnetics. 1989; 12:197–202.
  • Madec F., Billaudel B., Charlet de Sauvage R., . Effects of ELF and static magnetic fields on calcium oscillations in islets of Langerhans. Bioelectrochemistry. 2003; 60:73–80.
  • Malmivuo J., Plonsey R.. 1995. Bioelectromagnetism. Oxford: Oxford University Press. Vol. 6, 1–15.
  • Mezei G., Cher D., Kelsh M., . Occupational magnetic field exposure, cardiovascular disease mortality, and potential confounding by smoking. AEP. 2005; 15 8: 622–629.
  • Plipo D., Fournier M., Benquet C., . Increased apotosis, changes in intracellular Ca+2, and functianal alterations in lymphocytes and macrophages after in vitro exposure to static magnetic field. J. Toxicol. Environ. Health Part A. 1998; 54:63–76.
  • Sait M. L., Wood A. W., Sadafi H. A.. A study of heart rate and heart rate variabilty in human subjects exposed to occupational levels of 50 Hz circularly polarised magnetic fields. Med. Eng. Phys.. 1999; 21:361–369.
  • Sastre A., Cook M. R., Graham C.. Nocturnal exposure to intermittent 60-Hz magnetic fields alters human cardiac rhythm. Bioelectromagnetics. 1998; 19:98–106.
  • Savitz D. A., Liao D., Sastre A., . Magnetic field exposure and cardiovascular mortality among electric utility workers. Amer. J. Epidemiol.. 1999; 149 2: 135–142.
  • Sert C., Akdag M. Z., Bashan M., Buyukbayram H., Dasdag S.. ELF magnetic field effects on fatty-acid composition of phospholipid fraction and reproduction of rats' testes. Electromagn. Biol. Med.. 2002; 21:19–29.
  • Sorahan T., Nicols L.. Mortality from cardiovascular disease in relation to magnetic field exposure: Findings from a study of UK electricity generation and transmission workers, 1973–1997. Amer. J. Int. Med.. 2004; 45:93–102.
  • Stil M., Lindström E., Mild K. H., . Inability of 50 Hz magnetics fields to regulate PKC-and Ca+2-dependent gene expression in Jurkat cells. Cell. Biol. Int.. 2002; 26 2: 203–209.
  • Tamer A., Gündüz H., Özyıldırım S.. The cardiac effects of a mobile phone positioned closest to the hearth. Anatolian J. Cardiol.. 2009; 9:380–384.
  • Tsuji H., Venditti F. J., Manders E. S., . Reduced hearth rate variability and mortality risk in an elderly cohort. Circulation. 1994; 90:878–883.
  • Walleczek J., Budinger T. F.. Pulsed magnetic field effects on calcium signalling in lymphocytes: dependence on cell status and field intensity. FEBS Lett.. 1992; 21:351–355.
  • Wey H. E., Conover P. D., Mathias P., . 50-Hertz magnetic field and calcium transient in Jurkat cells: Results of a research and public information dissemiination (RAPID) program study. Environ. Health Perspect.. 2000; 108 2: 135–140.
  • Zhao Y. L., Chen Y. J., Zhang Y.-H., . Effects of magnetic fields on intracellular calcium oscillations. 30th. Ann. Int. IEEE EMBS Conf.. 2009; pp. 20–24. Vancouver, British Columbia, Canada, August

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