Maintained Exposure to Spring Water but Not Double Distilled Water in Darkness and Thixotropic Conditions to Weak (~1 µT) Temporally Patterned Magnetic Fields Shift Photon Spectroscopic Wavelengths: Effects of Different Shielding Materials
Spring water but not double-distilled water was exposed, in darkness, to a temporally patterned weak magnetic field that has been shown to affect planarian behavior and slow the rate of cancer cell proliferation. Exposure to the magnetic field caused a reliable shift in the peak (longer) wave-length of ~10 nm for fluorescence emissions and a ~20% increase (~100 counts) in fluorescence intensity. Spectral analyses verified a shift of 5 and 10 nm, equivalent to ~1.5 × 10-20 J “periodicity” across the measured wavelengths, which could reflect a change in the an intrinsic energy as predicted by Del Giudice and Preparata and could correspond to two lengths of O-H bonds. Wrapping the water sample containers during exposure with copper foil, aluminum foil, or plastic altered these fluorescent profiles. The most conspicuous effect was the elimination of a ~280 nm peak in the UV-VIS emission spectra only for samples wrapped with copper foil but not aluminum or plastic. These results suggest that weak magnetic fields produce alterations in the water-ionic complexes sufficient to be reliably measured by spectrophotometry. Because the effect was most pronounced when the spring water was exposed in darkness and was not disturbed the role of thixotropic phenomena and Del Giudice entrapment of magnetic fields within coherent domains of Pollack virtual exclusion zones (EZ) may have set the conditions for subsequent release of the energy as photons.
References
[1]
DeMeo, J. (2011) Water as a Resonant Medium for Unusual External Environmental Factors. Water, 3, 1-47.
[2]
Pollack, G.H., Figueroa, Z. and Zhao, Q. (2009) Molecules, Water and Radiant Energy: New Clues to the Origin of Life. International Journal of Molecular Sciences, 10, 1419-1429. http://dx.doi.org/10.3390/ijms10041419
[3]
Toledo, E.J., Ramalo, Z.M. and Magriotis, J. (2008) Influence of Magnetic Field on Physical-Chemical Properties of the Liquid Water: Insights from Experimental and Theoretical Models. Journal of Molecular Structure, 888, 409-415.
http://dx.doi.org/10.1016/j.molstruc.2008.01.010
[4]
Gang, N., St-Pierre, L.S. and Persinger, M.A. (2012) Water Dynamics Following Treatment by One Hour of 0.16 Tesla Static Magnetic Fields Depends on Exposure Volume. Water, 3, 122-131.
[5]
Fahidy, T.Z. (1999) The Effects of Magnetic Fields on Electrochemical Processes. In: Conway, B.E., Bockris, J.O.M. and White, R.E., Eds., Modern Aspects of Electrochemistry, Plenum Press.
[6]
Pilla, A.A., Muehsam, D.J., Markov, M.S. and Sisken, F.F. (1999) EMF Signals and Ion/Ligand Binding Kinetics: Prediction of Bioeffective Waveforms Parameters. Bioelectrochemistry and Bioenergetics, 48, 27-34.
http://dx.doi.org/10.1016/S0302-4598(98)00148-2
[7]
Blank, M. and Soo, L. (1998) Frequency Dependence of Cytochrome Oxidase Activity in Magnetic Fields. Bioelectro-chemistry and Bioenergetics, 46, 139-143. http://dx.doi.org/10.1016/S0302-4598(98)00126-3
[8]
Mullins, J.M., Litovitz, T.A., Penafiel, M., Desta, A. and Krause, D. (1998) Intermittent Noise Affects EMF-Induced ODC Activity. Bioelectrochemistry and Bioenergetics, 44, 237-242. http://dx.doi.org/10.1016/S0302-4598(97)00073-1
[9]
Cifra, M., Fields, J.Z. and Farhadi, A. (2011) Electromagnetic Cellular Interactions. Progress in Biophysics and Molecular Biology, 105, 223-246. http://dx.doi.org/10.1016/j.pbiomolbio.2010.07.003
[10]
Dotta, B.T., Buckner, C.A., Cameron, D., Lafrenie, R.M. and Persinger, M.A. (2011) Biophoton Emissions from Cell Cultures: Biochemical Evidence for the Plasma Membrane as the Primary Source. General Physiology and Biophysics, 30, 301-309.
[11]
Dotta, B.T. and Persinger, M.A. (2012) Doubling of Local Photon Emissions When Two Simultaneous, Spatially-Separated, Chemiluminescent Reactions Share the Same Magnetic Field Configurations. Journal of Biophysical Chemistry, 3, 72-80. http://dx.doi.org/10.4236/jbpc.2012.31009
[12]
House, C.R. (1974) Water Transport in Cells and Tissues. Edward Arnold, London.
[13]
Del Giudice, E. and Preparata, G. (1994) Coherent Dynamics in Water as a Possible Explanation of Biological Membranes Formation. Journal of Biological Physics, 20, 105-116. http://dx.doi.org/10.1007/BF00700426
[14]
Roy, R., Tiller, W.A. and Hoover, M.R. (2005) The Structure of Liquid Water: Novel Insights from Materials Research. Materials Research Innovation, 9-4, 1433-075x.
[15]
Martin, L.J., Koren, S.A. and Persinger, M.A. (2004) Thermal Analgesic Effects from Weak, Complex Magnetic Fields and Pharmacological Interactions. Pharmacology, Biochemistry and Behavior, 78, 1219-1224.
http://dx.doi.org/10.1016/j.pbb.2004.03.016
[16]
Thomas, A.W., Kavaliers, M., Prato, F.S. and Ossenkopp, K.P. (1997) Antinociceptive Effects of Pulsed Magnetic Fields in the Land Snail. Neuroscience Letters, 222, 107-110. http://dx.doi.org/10.1016/S0304-3940(97)13359-6
[17]
Buckner, C. (2001) Effects Electromagnetic Fields on Biological Processes Are Spatial and Temporal-Dependent. Ph.D. Dissertation, Laurentian University, Sudbury.
[18]
Murugan, N.J., Karbowski, R.M., Lafrenie, R.M. and Persinger, M.A. (2013) Temporally-Patterned Magnetic Fields Induce Complete Fragmentation in Planaria. PLOS ONE, 8, e61714.
[19]
Prato, F.S., Kavaliers, M., Thomas, A.W. and Ossenkopp, K-P. (1998) Modulatory Actions of Light on the Behavioural Responses to Magnetic Fields by Land Snails Probably Occur at the Magnetic Field Detection Stage. Proceedings from the Royal Society of London, 265, 367-373. http://dx.doi.org/10.1098/rspb.1998.0304
[20]
Pollack, G.H. (2003) The Role of Aqueous Interfaces in the Cell. Advances in Colloid and Interface Science, 103, 173- 196. http://dx.doi.org/10.1016/S0001-8686(02)00095-7
[21]
Dotta, B.T., Vares, D.E.A., Buckner, C.A., Lafrenie, R.M. and Persinger, M.A. (2014) Magnetic Configurations Corresponding to Electric Field Patterns That Evoke Long-Term Potentiation Shift Power Spectra of Light Emissions from Microtubules from Non-Neural Cells. Open Journal of Biophysics, 4, 112-118.
http://dx.doi.org/10.4236/ojbiphy.2014.44013
[22]
Dotta, B.T., Lafrenie, R.M., Karbowski, L.M. and Persinger, M.A. (2014) Photon Emission from Melanoma Cells during Brief Stimulation by Patterned Magnetic Fields: Is the Source Coupled to Rotational Diffusion within the Membrane? General Physiology and Biophysics, 33, 63-73. http://dx.doi.org/10.4149/gpb_2013066
[23]
Persinger, M.A. (2014) Quantitative Convergence between Physical-Chemical Constants of the Proton and the Properties of Water: Implications for Sequestered Magnetic Fields and a Universal Quantity. International Letters of Chemistry, Physics and Astronomy, 2, 1-10.
[24]
Murugan, N.J., Karbowski, L.M. and Persinger, M.A. (2014) Serial pH Increments (~20 to 40 Milliseconds) in Water during Exposures to Weak, Physiologically Patterned Magnetic Fields: Implications for Consciousness. Water, 6, 45-60.
[25]
Verdel, N. and Bukovec, P. (2014) Possible Further Evidence for the Thixotropic Phenomena of Water. Entropy, 16, 2146-2160. http://dx.doi.org/10.3390/e16042146
[26]
Decoursey, T.E. (2003) Voltage-Gated Proton Channels and Other Proton Transfer Pathways. Physiology Reviews, 83, 475-579.
[27]
Sedlak, M. (2013) Large Scale Supramolecular Structure in Solutions of Low Molar Mass Compounds and Mixtures of Liquids: II. Kinetics of the Formation and Long Time Stability. Journal of Physical Chemistry B, 110, 4339-4345.
http://dx.doi.org/10.1021/jp056934x
[28]
Chai, B., Yook, H. and Pollack, G.H. (2009) Effect of Radiant Energy on Near-Surface Water. Journal of Physical Chemistry, 113, 13953-13958. http://dx.doi.org/10.1021/jp908163w
[29]
Persinger, M. (2014) Convergence of Numbers of Synapses and Quantum Foci within Human Brain Space: Quantitative Implications of the Photon as a Source of Cognition. International Letters of Chemistry, Physics and Astronomy, 11, 59-66.
[30]
Persinger, M.A., Koren, S.A. and Lafreniere, G.F. (2008) A Neuroquantologic Approach to How Human Thought Might Affect the Universe. Neuroquantology, 6, 262-271. http://dx.doi.org/10.14704/nq.2008.6.3.182
[31]
Persinger, M.A. and Koren, S.A. (2013) Dimensional Analyses of Geometric Products and the Boundary Conditions of the Universe: Implications for a Quantitative Value for Latency to Display Entanglement. The Open Astronomy Journal, 6, 10-13. http://dx.doi.org/10.2174/1874381101306010010
[32]
Persinger, M.A. (2014) Discrepancies between Predicted and Observed Intergalactic Magnetic Field Strengths from the Universe’s Total Energy: Is It Contained within Submatter Spatial Geometry? International Letters of Chemistry, Physics and Astronomy, 11, 18-23.
[33]
Persinger, M.A. (2010) 10-20 Joules as a Neuromolecular Quantum in Medicinal Chemistry: An Alternative Approach to Myriad Molecular Pathways? Chemical Medicinal Chemistry, 17, 3094-3098.
[34]
Lewis, W.C. (1921) A System of Physical Chemistry: Volume III Quantum Theory. Longmans, Green and Company, Bombay, p.115-117.
[35]
Voeikov, V.L. and Del Giudice, E. (2009) Water Respiration—The Basis of the Living State. Water, 1, 52-75.