14
Views
4
CrossRef citations to date
0
Altmetric
Original Article

A Cytologist's View of Resonance Mechanisms for Biologic Effects of ELF Magnetic Fields

Pages 67-78 | Published online: 07 Jul 2009

References

  • Presman A. S. Electromagnetic Fields and Life. Plenum Press, New York 1970
  • ELF and VLF Electromagnetic Field Effect, M. A. Persinger. Plenum Press, London 1974
  • Sheppard A. R., Eisenbud M. Biological Effects of Electric and Magnetic Fields of Extremely Low Frequency. New York University Press, New York 1977
  • Plekhanov G. F. Main Lows of Low Frequency Electromagnetobiology. Tomsk University Press, Tomsk 1990, (in Russian)
  • Temuryants No., Vladimirsky B. M., Tishkin O. G. Extremely Low Frequency Electromagnetic Signals in the Biological World. Naukova Dumka, Kiev 1992, (in Russian)
  • Kuznetsov A. N. Biophysics of Low Frequency Electromagnetic Effects. MFTI, Moscow 1994, (in Russian)
  • Liboff A. R. Geomagnetic cyclotron resonance in living cells. J. Biol. Phys. 1985; 13: 99–102
  • McLeod B. R., Liboff A. R., Smith S. D. Electromagnetic gating in ion channels. J. Theor. Biol. 1992; 158: 15–31
  • Liboff A. R. The electromagnetic field as a biological variable. On the Nature of Electromagnetic Field Interactions with Biological Systems, A. H. Frey. R.G. Landes, Austin 1994; 73–82
  • Lednev V. V. Possible mechanism for the influence of weak magnetic field on biological systems. Bioelectromagnetics 1991; 12: 71–75
  • Lednev V. V. Interference with vibrational energy of ions bound in calcium-binding proteins as the basis for the interaction of weak magnetic fields with biological systems. On the Nature of Electromagnetic Field Interactions with Biological Systems, A. H. Frey. R.G. Landes, Austin 1994; 59–72
  • Lednev V. V. Bio-effects of weak combined static and alternating magnetic fields. Biofizika 1996; 41: 224–232, (in Russian)
  • Blanchard J. P., Blackman C. F. Clarification and application of an ion parametric resonance model for magnetic field interactions with biological systems. Bioelectromagnetics 1996; 15: 217–238
  • Blanchard J. P., Blackman C. F. A model of magnetic field effects on biological systems with confirming data from a cell culture preparation. On the Nature of Electromagnetic Field Interactions with Biological Systems, A. H. Frey. R.G. Landes, Austin 1994; 73–82
  • Smith S. D., McLeod B. R., Liboff A. R. Effects of CR-tuned 60 Hz magnetic fields on sprouting and early growth of Raphanus sativus. Bioelectrochem. Bioenerg. 1993; 32: 67–76
  • McLeod B. R., Smith S. D., Cooksey K. E., Liboff A. R. Ion cyclotron resonance frequencies enhance Ca2+-dependent motility in diatoms. J. Bioelectricity 1987; 6: 1–12
  • Lednev V. V., Skrebnitskaya L. K., Iliasova E. N., Rozhdesvenskaya Z. E., Klimov A. A., Belova N. A., Tiras H. P. Magnetic parametric resonance in biosystems: experimental testing of the theory predictions using regenerated planaria Dugesia tigrina as a test-system. Biofizika 1996; 41: 817–825, (in Russian)
  • Tiras H. P., Skrebnitskaya L. K., Iliasova E. N., Klimov A. A., Lednev V. V. The influence of weak combined magnetic field on the rate of regeneration of planaria Dugesia tigrina as a test-system. Biofizika 1996; 41: 826–831, (in Russian)
  • Lednev V. V., Skrebnitskaya L. K., Iliasova E. N., Rozhdesvenskaya Z. E., Klimov A. A., Tiras H. P. Weak combined magnetic field tuned to the parametric resonance of nuclear spines of hydrogen atoms increases neoblast proliferative activity in regenerating planaria Dugesia trigina. Doklady Akad. Nauk 1996; 348: 830–833, (in Russian)
  • Deryugina O. N., Pisachenko T. M., Zhadin M. N. The combined action of alternating and static magnetic fields on rat behavior in “the open field”. Biofizika 1996; 41: 762–764, (in Russian)
  • Hendee S. P., Faour F. A., Christensen D. A., Patric B., Durney C. H., Blumenthal D. K. The effects of weak extremely low frequency magnetic field on calcium/calmodulin interactions. Biophys. J. 1996; 70: 2915–2923
  • Trillo M. A., Ubeda A., Blanchard J. P., House D. E., Blackman C. F. Magnetic fields as resonant conditions for the hydrogen ion affect neurite outgrowth in PC-12 cells: a test of the ion parametric resonance model. Bioelectromagnetics 1996; 17: 10–20
  • McLeod B. R., Smith S. D., Liboff A. R. Calcium and potassium cyclotron resonance curves and harmonics in diatoms (A. coffaeformis). J. Bioelectricity 1987; 6: 153–168
  • Smith S. D., McLeod B. R., Liboff A. R. Effects of resonant magnetic fields on chick femoral development in vitro. J. Bioelectricity 1991; 10: 81–99
  • Blackman C. F., Benane S. G., Blanchard J. P., House D. E. (1997) PC-12 cell response to parallel AC and DC magnetic fields tuned for calcium ions. Second World Congress for Electricity and Magnetism in Biology and Medicine Abtract Book, BolognaItlay, June, 8–131997, 151
  • Delgado J. M.R. Biological effects of extremely low frequency electromagnetic fields. Biomagnetism: Application and Theory. New York 1989; 443–455
  • Agadjanyan N. A., Vlasova I. G. Influence of low frequency magnetic fields on nerve cell rhythm and their resistance to hypoxia. Biofizika 1994; 3(7)681–689, (in Russian)
  • Uzdensky A. B., Kutko O. Y. Effect of weak extremely low frequency magnetic field on isolated crayfish stretch receptor neuron: nonlinear dependencies on field amplitude and frequency. Electro- Magnetobiol. 1997; 26: 267–279
  • Akimova I. M., Novikova T. A. Subcellular mechanisms of weak extremely low frequency electromagnetic fields on brain cortex. Bull. Exp. Biol. Med. 1988; 55: 738–741, (in Russian)
  • Pavlova R. I., Muzalevskaya N. I., Sokolovsky V. V. Some biochemical aspects of weak low frequency magnetic fields effects. Responses of Biological Systems to Magnetic Fields. Nauka, Moscow 1978; 49–58
  • Muzalevskaya N. I. Weak extremely low frequency magnetic field and the state of adaptation reserve in experimental animals. Problems in Space Biology Vol. 43, Effect of Solar Radiation on Biosphere, M. N. Gnevyshev, I. A. OI. Nauka, Moscow 1982; 82–98
  • Bell G., Marino A., Chesson A. L., Struve F. Electrical states in the rabbit brain can be altered by light and electromagnetic fields. Brain Res. 1992; 570: 307–315
  • Sidyakin V. G. The influence of fluctuation of solar activity on biological systems. Biofizika 1992; 37: 647–652, (in Russian)
  • Lebedeva N. N. Responses of human central nervous system to electromagnetic field with different biotropic parameters. Dissertation, Moscow 1992, (in Russian)
  • Bell G., Marino A., Chesson A. L. Alterations in brain electrical activity caused by magnetic fields: detecting the detection process. Electroencephalogr. Clin. Neurophysiol. 1992; 83: 389–397
  • Friedman H., Becker R. O., Bachman C. H. Effect of magnetic field on reaction time performance. Nature 1967; 213: 949
  • Kuznetsov A. N., Kshutashvili T. N., Kolokolov A. S., Lazarev A. V. Quasi-resonance dependencies of arhythmogenic effect of magnetic field on myocard contractile activity. Izvestiya AN SSSR. Ser. Biol. 1990; N2: 178–183, (in Russian)
  • Aristarkhov V. M., Tischenkov V. B., Piruzyan L. A. Biological effects of weak low frequency pulsed electromagnetic field. Izvestiya AN SSSR. Ser. Biol. 1978; N1: 178–193, (in Russian)
  • Juntilainen J., Saali K. Teratogenic effect of low frequency magnetic field on chick embryos. Acta Univ. Ouluen 1986; 179A: 97–100
  • Goodman R., Henderson A. S. Exposure of salivary gland to low-frequency electromagnetic fields alters polypeptide synthesis. Proc. Natl. Acad. Sci. USA 1988; 85: 3928–3932
  • Plekhanov G. F. Destabilization of non-equilibrium processes as a base of the common mechanism of biological effects of magnetic fields. Responses of Biological Systems to Magnetic Fields. Nauka, Moscow 1978; 59–98, (in Russian)
  • Makeev V. B., Temuryants N. A. Problems in Space Biology. Effect of Solar Radiation on the Biosphere, M. N. Gnevyshev, I. A. OI. Nauka, Moscow 1982; Vol. 43: 116, (in Russian)
  • Temuryants N. A. Biological effects of electromagnetic field. Priroda 1994; N9: 14–20, (in Russian)
  • Poglazov B. F. Organization of biological systems. Biokhimiya 1996; 61: 1941–1947, (in Russian)
  • Boyer P. D. The unusual enzymology of ATP synthase. Biochemistry 1987; 26: 8503–8507
  • Skulachev V. P. Energetics of Biological Membranes. Nauka, Moscow 1989, (in Russian)
  • Noji H., Yasuda R., Yoshida M., Kinosita K. Direct observation of the rotation of F1-ATPase. Nature 1997; 386: 299–302
  • Bernstein B. E., Michels P. A.M., Hol W. G.J. Synergistic effects of substrate-induced conformational changes in phosphoglycerate kinase activation. Nature 1997; 385: 275–278
  • Luben R. A. Membrane signal transduction as a site of electromagnetic field actions in bone and other tissues. On the Nature of Electromagnetic Field Interactions with Biological Systems, A. H. Frey. R.G. Landes, Austin 1994; 83–98
  • Liburdy R. P. Cellular interactions with electromagnetic fields: experimental evidence for field effects on signal transduction and cell proliferation. On the Nature of Electromagnetic Field Interactions with Biological Systems, A. H. Frey. R.G. Landes, Austin 1994; 99–125
  • Novikov V. V., Zhadin M. N. Combined action of weak steady and alternating low frequency magnetic fields on ionic currents in water solutions of amino acids. Biofizika 1994; 39: 45–49, in Russian
  • Novikov V. V., Lisitsin A. C. Synthesis of oligopeptides from polar amino acids in water environment under combined action of weak electric and magnetic fields. Biofizika 1996; 41: 1003–1007, in Russian
  • Novikov V. V., Shvetsov Y. P., Fesenko E. E., Novikova E. I. Molecular mechanisms of biological effect of weak magnetic fields. I. The resistance of chromatin of rat Erlich's ascite carcinoma and brain cells to Dnase-1 under the combined action of weak steady and alternating low frequency magnetic fields tuned to cyclotron resonance of ions of polar amino acids. Biofizika 1997; 4: 733–737, (in Russian)
  • Kavaliers M., Prato F. S. Opioid systems and the biological effects of magnetic fields. On the Nature of Electromagnetic Field Interactions with Biological Systems, A. H. Frey. R.G. Landes, Austin 1994; 181–194
  • Riznichenko G. Y., Plyusnina T. Y. Non-linear organization of subcellular structures is necessary for the response to weak electromagnetic impacts. Biofizika 1996; 41: 428–432, (in Russian)
  • Moon F. Chaotic Oscillations. Mir, Moscow 1990
  • Wiesenfeld K., Moss F. Stochastic resonance and the benefits of noise: from ice ages to crayfish and squids. Nature 1995; 373: 33–36
  • Kruglikov I. L., Dertinger H. Stochastic resonance as a possible mechanism of amplification of weak electric signals in living cells. Bioelectromagnetics 1994; 15: 539–547

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.