Difference between revisions of "Brain hackers/bib/molecular"

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C.F. Blackman, S.G. Benane, D.E. House, and D.J. Elliott. Importance of Alignment Between Local DC Magnetic Field and an Oscillating Magnetic Field in Responses of Brain Tissue In Vitro and In Vivo. Bioelectromagnetics 11 :159-167 (1990)
 
C.F. Blackman, S.G. Benane, D.E. House, and D.J. Elliott. Importance of Alignment Between Local DC Magnetic Field and an Oscillating Magnetic Field in Responses of Brain Tissue In Vitro and In Vivo. Bioelectromagnetics 11 :159-167 (1990)
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Shawn C. Burdette and Stephen J. Lippard. Meeting of the minds: Metalloneurochemistry. PNAS April 1, 2003 vol. 100 no. 7 3605–3610.
 
Shawn C. Burdette and Stephen J. Lippard. Meeting of the minds: Metalloneurochemistry. PNAS April 1, 2003 vol. 100 no. 7 3605–3610.
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Joao J. Cerqueira, Osborne F.X. Almeida, Nuno Sousa. The stressed prefrontal cortex. Left? Right! Brain, Behavior, and Immunity 22 (2008) 630–638
 
Joao J. Cerqueira, Osborne F.X. Almeida, Nuno Sousa. The stressed prefrontal cortex. Left? Right! Brain, Behavior, and Immunity 22 (2008) 630–638
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Cifra M, Fields JZ, Farhadi A (2011). Electromagnetic cellular interactions. Prog Biophys Mol Biol 105: 223–246.
 
Cifra M, Fields JZ, Farhadi A (2011). Electromagnetic cellular interactions. Prog Biophys Mol Biol 105: 223–246.
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Chuang, D-M. et al. (2002) Neuroprotective effects of lithium in cultured cells and animal models of diseases. Bipolar Disord. 4, 129–136
 
Chuang, D-M. et al. (2002) Neuroprotective effects of lithium in cultured cells and animal models of diseases. Bipolar Disord. 4, 129–136
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Chen ACH, Huang YY, Arany PR, Hamblin MR: Role of reactive oxygen species in low level light therapy. In Mechanisms for Low-Light Therapy IV; San Jose Edited by: Hamblin MR, Anders JJ, Waynant RW. The International Society for Optical Engineering, Bellingham, WA; 2009.
 
Chen ACH, Huang YY, Arany PR, Hamblin MR: Role of reactive oxygen species in low level light therapy. In Mechanisms for Low-Light Therapy IV; San Jose Edited by: Hamblin MR, Anders JJ, Waynant RW. The International Society for Optical Engineering, Bellingham, WA; 2009.
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C. A. Colton et al. Nitroxyl anion regulation of the NMDA receptor. Journal of Neurochemistry, 2001, 78, 1126-1134
 
C. A. Colton et al. Nitroxyl anion regulation of the NMDA receptor. Journal of Neurochemistry, 2001, 78, 1126-1134
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Comisso N, Del Giudice E, De Ninno A, Fleischmann M, Giuliani L, Mengoli G, Merlo F, Talpo G 2006 Dynamics of the Ion Cyclotron Resonance Effect on Amino Acids Adsorbed at the Interfaces Bioelectr. 27(1) 16-25
 
Comisso N, Del Giudice E, De Ninno A, Fleischmann M, Giuliani L, Mengoli G, Merlo F, Talpo G 2006 Dynamics of the Ion Cyclotron Resonance Effect on Amino Acids Adsorbed at the Interfaces Bioelectr. 27(1) 16-25
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Derjugina, O.N., Pisachenko, T.M., and Zhadin, M.N.,1996, Combined action of alternating and static magnetic fields on behavior of rats in the “Open-field” test. Biophysics 41: 762–764.
 
Derjugina, O.N., Pisachenko, T.M., and Zhadin, M.N.,1996, Combined action of alternating and static magnetic fields on behavior of rats in the “Open-field” test. Biophysics 41: 762–764.
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Doukas AG, Flotte TJ (1996) Physical characteristics and biological effects of laser-induced stresswaves. Ultrasound Med Biol 22:151–164.
 
Doukas AG, Flotte TJ (1996) Physical characteristics and biological effects of laser-induced stresswaves. Ultrasound Med Biol 22:151–164.
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Durney, C.H., Rushforth C.K., and Anderson A.A., 1988, Resonant AC-DC magnetic fields: Calculated response. Bioelectromagnetics 9: 315–336.
 
Durney, C.H., Rushforth C.K., and Anderson A.A., 1988, Resonant AC-DC magnetic fields: Calculated response. Bioelectromagnetics 9: 315–336.
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Galt, S., Sandblom, A., Hamnerius, Y., Hojevic, P., Saalman, E., and Norden, B. 1993, Experimental search for combined AC and DC magnetic field effects on ion channels. Bioelectromagnetics 14: 315–327.
 
Galt, S., Sandblom, A., Hamnerius, Y., Hojevic, P., Saalman, E., and Norden, B. 1993, Experimental search for combined AC and DC magnetic field effects on ion channels. Bioelectromagnetics 14: 315–327.
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Giuliani L, Grimaldi S, Lisi A, D’Emilia E, Bobkova N, Zhadin M 2008 Action of Combined Magnetic Fields on Aqueous Solutions of Glutamic Acid: The Further Development of Investigations BioMagn. Res. and Tech. 6 1
 
Giuliani L, Grimaldi S, Lisi A, D’Emilia E, Bobkova N, Zhadin M 2008 Action of Combined Magnetic Fields on Aqueous Solutions of Glutamic Acid: The Further Development of Investigations BioMagn. Res. and Tech. 6 1
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Del Giudice E, Fleischmann M, Preparata G, Talpo G 2002 On The Unreasonable Effects of Elf Magnetic Fields Upon a System of Ions Bioelectr. 23 522-30
 
Del Giudice E, Fleischmann M, Preparata G, Talpo G 2002 On The Unreasonable Effects of Elf Magnetic Fields Upon a System of Ions Bioelectr. 23 522-30
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Emilio Del Giudice, Livio Giuliani. Coherence in water and the kT problem in living matter. Eur. J. Oncol. Library, vol. 5.
 
Emilio Del Giudice, Livio Giuliani. Coherence in water and the kT problem in living matter. Eur. J. Oncol. Library, vol. 5.
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Stefan Engstrom and Joseph D. Bowman. Magnetic Resonances of Ions in Biological Systems. Bioelectromagnetics 25:620-630 (2004)
 
Stefan Engstrom and Joseph D. Bowman. Magnetic Resonances of Ions in Biological Systems. Bioelectromagnetics 25:620-630 (2004)
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Foley, L. E. et al. Human cryptochrome exhibits light-dependent magnetosensitivity. Nat. Commun. 2:356 doi: 10.1038/ncomms1364 (2011)
 
Foley, L. E. et al. Human cryptochrome exhibits light-dependent magnetosensitivity. Nat. Commun. 2:356 doi: 10.1038/ncomms1364 (2011)
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Jun Gao et al. Coupling between NMDA Receptor and Acid-Sensing Ion Channel Contributes to Ischemic Neuronal Death. Neuron, Vol. 48, 635–646, November 23, 2005
 
Jun Gao et al. Coupling between NMDA Receptor and Acid-Sensing Ion Channel Contributes to Ischemic Neuronal Death. Neuron, Vol. 48, 635–646, November 23, 2005
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Helene Girouard, Gang Wang, Eduardo F. Gallo, Josef Anrather, Ping Zhou, Virginia M. Pickel, and Costantino Iadecola. NMDA Receptor Activation Increases Free Radical Production through Nitric Oxide and NOX2. The Journal of Neuroscience, February 25, 2009 • 29(8):2545–2552
 
Helene Girouard, Gang Wang, Eduardo F. Gallo, Josef Anrather, Ping Zhou, Virginia M. Pickel, and Costantino Iadecola. NMDA Receptor Activation Increases Free Radical Production through Nitric Oxide and NOX2. The Journal of Neuroscience, February 25, 2009 • 29(8):2545–2552
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Shannon D. Gower-Winter and Cathy W. Levenson. Zinc in the central nervous system: From molecules to behavior. Biofactors. 2012 ; 38(3): 186–193.
 
Shannon D. Gower-Winter and Cathy W. Levenson. Zinc in the central nervous system: From molecules to behavior. Biofactors. 2012 ; 38(3): 186–193.
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Andreas M. Grabrucker et al. Brain-Delivery of Zinc-Ions as Potential Treatment for Neurological Diseases: Mini Review. Drug Deliv Lett. 2011 September ; 1(1): 13–23.
 
Andreas M. Grabrucker et al. Brain-Delivery of Zinc-Ions as Potential Treatment for Neurological Diseases: Mini Review. Drug Deliv Lett. 2011 September ; 1(1): 13–23.
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Halle, B., 1988, On the cyclotron resonance mechanism for magnetic fields on transmembrane ion conductivity. Bioelectromagnetics 14: 381–385.
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Hashimoto, R. et al. (2002) Lithium induces brain-derived neurotrophic factor and activates TrkB in rodent cortical neurons: an essential step for neuroprotection against glutamate excitotoxicity. Neuropharmacology 43, 1173–1179
 
Hashimoto, R. et al. (2002) Lithium induces brain-derived neurotrophic factor and activates TrkB in rodent cortical neurons: an essential step for neuroprotection against glutamate excitotoxicity. Neuropharmacology 43, 1173–1179
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Ryota Hashimoto et al. Lithium protection against glutamate excitotoxicity in rat cerebral cortical neurons: involvement of NMDA receptor inhibition possibly by decreasing NR2B tyrosine phosphorylation. Journal of Neurochemistry, 2002, 80, 589-597.
 
Ryota Hashimoto et al. Lithium protection against glutamate excitotoxicity in rat cerebral cortical neurons: involvement of NMDA receptor inhibition possibly by decreasing NR2B tyrosine phosphorylation. Journal of Neurochemistry, 2002, 80, 589-597.
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Harvey, B.H. et al. (1994) Evidence that lithium induces a glutamatergic: nitric oxide-mediated response in rat brain. Neurochem. Res. 19, 469–474
 
Harvey, B.H. et al. (1994) Evidence that lithium induces a glutamatergic: nitric oxide-mediated response in rat brain. Neurochem. Res. 19, 469–474
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Huang YY, et al., Low-level laser therapy (LLLT) reduces oxidative stress in primary cortical neurons in vitro. J. Biophotonics, 2012.
 
Huang YY, et al., Low-level laser therapy (LLLT) reduces oxidative stress in primary cortical neurons in vitro. J. Biophotonics, 2012.
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Michael R Hamblin and Tatiana N Demidova. Mechanisms of Low Level Light Therapy. Proc. of SPIE Vol. 6140, 614001, (2006).
 
Michael R Hamblin and Tatiana N Demidova. Mechanisms of Low Level Light Therapy. Proc. of SPIE Vol. 6140, 614001, (2006).
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Mark D. McDonnell, Derek Abbott. What Is Stochastic Resonance? Definitions, Misconceptions, Debates, and Its Relevance to Biology. PLoS Computational Biology, May 2009, Volume 5, Issue 5.
 
Mark D. McDonnell, Derek Abbott. What Is Stochastic Resonance? Definitions, Misconceptions, Debates, and Its Relevance to Biology. PLoS Computational Biology, May 2009, Volume 5, Issue 5.
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Fukumoto, T. et al. (2001) Chronic lithium treatment increases the expression of brain-derived neurotrophic factor in the rat brain. Psychopharmacology (Berl) 158, 100–106
 
Fukumoto, T. et al. (2001) Chronic lithium treatment increases the expression of brain-derived neurotrophic factor in the rat brain. Psychopharmacology (Berl) 158, 100–106
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Tiina I. Karu. Mitochondrial Signaling in Mammalian Cells Activated by Red and Near-IR Radiation. Photochemistry and Photobiology, 2008, 84: 1091–1099
 
Tiina I. Karu. Mitochondrial Signaling in Mammalian Cells Activated by Red and Near-IR Radiation. Photochemistry and Photobiology, 2008, 84: 1091–1099
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Karu T. I. (2000). “Mechanism of low-power laser light action on cellular level”. Proc SPIE. 2000;4159:1-17
 
Karu T. I. (2000). “Mechanism of low-power laser light action on cellular level”. Proc SPIE. 2000;4159:1-17
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T. I. Karu et al., “Elementary processes in cells after light absorption do not depend on the degree of polarization: implications for the mechanisms of laser phototherapy,” Photomed. Laser Surg. 26(2), 77–82 (2008)
 
T. I. Karu et al., “Elementary processes in cells after light absorption do not depend on the degree of polarization: implications for the mechanisms of laser phototherapy,” Photomed. Laser Surg. 26(2), 77–82 (2008)
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T. I. Karu, “Primary and secondary mechanisms of action of visible to near-IR radiation on cells,” J. Photochem. Photobiol. B 49(1), 1–17 (1999).
 
T. I. Karu, “Primary and secondary mechanisms of action of visible to near-IR radiation on cells,” J. Photochem. Photobiol. B 49(1), 1–17 (1999).
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Karkanias, N.B. and Papke, R.L. (1999) Subtype-specific effects of lithium on glutamate receptor function. J. Neurophysiol. 81, 1506–1512
 
Karkanias, N.B. and Papke, R.L. (1999) Subtype-specific effects of lithium on glutamate receptor function. J. Neurophysiol. 81, 1506–1512
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G.G. Kinney, P. Patino, Y. Mermet-Bouvier, J.E. Starrett Jr., V.K. Gribkoff, Cognition-enhancing drugs increase stimulated hippocampal theta rhythm amplitude in the urethane-anesthetized rat, J. Pharmacol. Exp. Ther. 291 (1999) 99–106.
 
G.G. Kinney, P. Patino, Y. Mermet-Bouvier, J.E. Starrett Jr., V.K. Gribkoff, Cognition-enhancing drugs increase stimulated hippocampal theta rhythm amplitude in the urethane-anesthetized rat, J. Pharmacol. Exp. Ther. 291 (1999) 99–106.
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W. Klimesch, EEG alpha and theta oscillations reflect cognitive and memory performance: a review and analysis, Brain Res. Brain Res. Rev. 29 (1999) 169–195.
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Lednev, V.V., 1991, Possible mechanism for the influence of weak magnetic fields on biological systems. Bioelectromagnetics 12: 71–75.
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Liboff A R 1985 Geomagnetic Cyclotron Resonance in Membrane Transport J.Biol. Phys. 13 99-102
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Abraham R. Liboff. The Charge-to-Mass ICR Signature in Weak ELF Bioelectromagnetic Effects. In Advances in Electromagnetic Fields in Living Systems, Volume 4, edited by James C. Lin, Springer Science+Business Media, New York, 2005.
 
Abraham R. Liboff. The Charge-to-Mass ICR Signature in Weak ELF Bioelectromagnetic Effects. In Advances in Electromagnetic Fields in Living Systems, Volume 4, edited by James C. Lin, Springer Science+Business Media, New York, 2005.
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Liboff, A.R., 1997, Electric-field ion cyclotron resonance. Bioelectromagnetics 18: 85–87.
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Liboff AR (2009). Electric polarization and the viability of living systems: ion cyclotron resonance-like interactions. Electromagn Biol Med 28:124–134
 
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Miriam Liedvogel and Henrik Mouritsen. Cryptochromes-a potential magnetoreceptor: what do we know and what do we want to know? J. R. Soc. Interface (2010) 7, S147–S162
 
Miriam Liedvogel and Henrik Mouritsen. Cryptochromes-a potential magnetoreceptor: what do we know and what do we want to know? J. R. Soc. Interface (2010) 7, S147–S162
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B. E. MCKAY, M. A. PERSINGER. LITHIUM ION “CYCLOTRON RESONANCE” MAGNETIC FIELDS DECREASE SEIZURE ONSET TIMES IN LITHIUM-PILOCARPINE SEIZED RATS. Intern. J. Neuroscience, 114:1035–1045, 2004
 
B. E. MCKAY, M. A. PERSINGER. LITHIUM ION “CYCLOTRON RESONANCE” MAGNETIC FIELDS DECREASE SEIZURE ONSET TIMES IN LITHIUM-PILOCARPINE SEIZED RATS. Intern. J. Neuroscience, 114:1035–1045, 2004
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David J. Muehsam and Arthur A. Pilla. A Lorentz Model for Weak Magnetic Field Bioeffects: Part I - Thermal Noise Is an Essential Component of AC/DC Effects on Bound Ion Trajectory. Bioelectromagnetics 30:462^475 (2009)
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