• Journal of Innovative Optical Health Sciences
  • Vol. 7, Issue 1, 1330003 (2014)
ZHI-HUI LUO, JIANG-XU CHEN, YI-MEI HUANG, HONG-QIN YANG*, JU-QIANG LIN, HUI LI, and SHU-SEN XIE
Author Affiliations
  • Institute of Laser and Optoelectronics Technology Fujian Provincial Key Laboratory for Photonics Technology Key Laboratory of Optoelectronic Science and Technology for Medicine of Ministry of Education Fujian Normal University, Fuzhou 350007, P. R. China
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    DOI: 10.1142/s1793545813300036 Cite this Article
    ZHI-HUI LUO, JIANG-XU CHEN, YI-MEI HUANG, HONG-QIN YANG, JU-QIANG LIN, HUI LI, SHU-SEN XIE. CHARACTERIZATION OF SIGNAL CONDUCTION ALONG DEMYELINATED AXONS BY ACTIONPOTENTIAL- ENCODED SECOND HARMONIC GENERATION[J]. Journal of Innovative Optical Health Sciences, 2014, 7(1): 1330003 Copy Citation Text show less
    References

    [1] H. Segawa, M. Okuno, H. Kano, P. Leproux, V. Couderc, H. Hamaguchi, "Label-free tetra-modal molecular imaging of living cells with CARS, SHG, THG and TSFG (coherent anti-Stokes Raman scattering, second harmonic generation, third harmonic generation and third-order sum frequency generation)," Opt. Express 20(9), 9551–9557 (2012).

    [2] A. Wunder, J. Klohs, U. Dirnagl, "Non-invasive visualization of CNS inflammation with nuclear and optical imaging," Neuroscience 158(3), 1161–1173 (2009).

    [3] B. A. Wilt, L. D. Burns, E. T. W. Ho, K. K. Ghosh, E. A. Mukamel, M. J. Schnitzer, "Advances in light microscopy for neuroscience," Annu. Rev. Neurosci. 32(435), 1–79 (2009).

    [4] D. A. Dombeck, M. Blanchard-Desce, W. W. Webb, "Optical recording of action potentials with secondharmonic generation microscopy," J. Neurosci. 24 (4), 999–1003 (2004).

    [5] D. A. Dombeck, L. Sacconi, M. Blanchard-Desce, W. W. Webb, "Optical recording of fast neuronal membrane potential transients in acute mammalian brain slices by second-harmonic generation microscopy," J. Neurophysiol. 94(5), 3628–3636 (2005).

    [6] M. Nuriya, J. Jiang, B. Nemet, K. B. Eisenthal, R. Yuste, "Imaging membrane potential in dendritic spines," Proc. Natl. Acad. Sci. 103(3), 786–790 (2006).

    [7] M. Nuriya, M. Yasui, "Membrane potential dynamics of axons in cultured hippocampal neurons probed by second-harmonic-generation imaging," J. Biomed. Opt. 15(2), 020503 (2010).

    [8] B. A. Nemet, V. Nikolenko, R. Yuste, "Second harmonic imaging of membrane potential of neurons with retinal," J. Biomed. Opt. 9(5), 873–881 (2004).

    [9] A. L. Hodgkin, A. F. Huxley, "A quantitative description of membrane current and its application to conduction and excitation in nerve," J. Physiol. 117(4), 500–544 (1952).

    [10] Z. J. Koles, M. Rasminsky, "A computer simulation of conduction in demyelinated nerve fibres," J. Physiol. 227, 351–364 (1972).

    [11] Y. G. Yu, Y. S. Shu, D. A. McCormick, "Cortical action potential backpropagation explains spike threshold variability and rapid-onset kinetics," J. Neurosci. 28(29), 7260–7272 (2008).

    [12] F. N. Quandt, F. A. Davis, "Action potential refractory period in axonal demyelination: A computer simulation," Biol. Cybern. 67(6), 545–552 (1992).

    [13] M. N. Shneider, A. A. Voronin, A. M. Zheltikov, "Action-potential-encoded second-harmonic generation as an ultrafast local probe for nonintrusive membrane diagnostics," Phys. Rev. E 81(3), 031926 (2010).

    [14] M. N. Shneider, A. A. Voronin, A. M. Zheltikov, "Modeling the action-potential-sensitive nonlinearoptical response of myelinated nerve fibers and short-term memory," J. Appl. Phys. 110(9), 094702 (2011).

    [15] H. Q. Yang, X. G. Chen, Y. M. Huang, Z. H. Luo, H. Li, S. S. Xie, "Membrane potential dynamics of nerve fibers fast probed by action-potential-encoded second harmonic generation," Acta Opt. Sin. 32(4), 0417001 (2012).

    [16] H. Q. Yang, Z. H. Luo, X. G. Chen, Y. M. Huang, S. S. Xie, "Simulating the demyelination of a nerve fiber by action potential encoded second harmonic generation," Proc. SPIE 8553, 85530Z-1–9 (2012).

    [17] C. Lebrun, C. Bensa, M. Debouverie, S. Wiertlevski, D. Brassat, J. D. Seze, L. Rumbach, J. Pelletier, P. Labauge, B. Brochet, A. Tourbah, P. Clavelou, "Association between clinical conversion to multiple sclerosis in radiologically isolated syndrome and magnetic resonance imaging, Cerebrospinal Fluid, and Visual Evoked Potential," Arch. Neurol. 66(7), 841–846 (2009).

    [18] C. H. Polman, S. C. Reingold, B. Banwell, M. Clanet, J. A. Cohen, M. Filippi, K. Fujihara, E. Havrdova, M. Hutchinson, L. Kappos, F. D. Lublin, X. Montalban, P. O'Connor, M. Sandberg-Wollheim, A. J. Thompson, E. Waubant, B. Weinshenker, J. S. Wolinsky, "Diagnostic criteria for multiple sclerosis: 2010 revisions to the McDonald criteria," Ann. Neurol. 69(2), 292–302 (2011).

    [19] L. Mayo, F. J. Quintana, H. L. Weiner, "The innate immune system in demyelinating disease," Immunol. Rev. 248(1), 170–187 (2012).

    [20] R. Dutta, B. D. Trapp, "Mechanisms of neuronal dysfunction and degeneration in multiple sclerosis," Prog. Neurobiol. 93(1), 1–12 (2011).

    [21] C. Lucchinetti, W. Bruck, "The pathology of primary progressive multiple sclerosis," Mult. Scler. 10(3), S23–S30 (2004).

    [22] A. Kutzelnigg, C. F. Lucchinetti, C. Stadelmann,W. Brück, H. Rauschka, M. Bergmann, M. Schmidbauer, J. E. Parisi, H. Lassmann, "Cortical demyelination and diffuse white matter injury in multiple sclerosis," Brain 128(11), 2705–2712 (2005).

    [23] S. Bramow, J. M. Frischer, H. Lassmann, N. Koch- Henriksen, C. F. Lucchinetti, P. S. S rensen, H. Laursen, "Demyelination versus remyelination in progressive multiple sclerosis," Brain 133(10), 2983–2998 (2010).

    [24] J. M. Margolis, R. Fowler, B. H. Johnson, C. A. Kassed, K. Kahler, "Disease-modifying drug initiation patterns in commercially insured multiple sclerosis patients: A retrospective cohort study," BioMed Central Neurology. 11(122), 1–10 (2011).

    [25] B. D. Trapp, K. Nave, "Multiple Sclerosis: An immune or neurodegenerative disorder " Annu. Rev. Neurosci. 31, 247–269 (2008).

    [26] J. J. G. Geurts, F. Barkhof, "Grey matter pathology in multiple sclerosis," Lancet Neurol. 7(9), 841–851 (2008).

    [27] D. Debanne, E. Campanac, A. Bialowas, E. Carlier, G. Alcaraz, "Axon physiology," Physiol. Rev. 91(2), 555–602 (2011).

    [28] A. Carpio, I. Peral, "Propagation failure along myelinated nerves," J. Nonlinear Sci. 21(4), 499– 520 (2011).

    [29] J. F. Fohlmeister, E. D. Cohen, E. A. Newman, "Mechanisms and distribution of ion channels in retinal ganglion cells: Using temperature as an independent variable," J. Neurophysiol. 103(3), 1357–1374 (2010).

    [30] C. C. McIntyre, A. G. Richardson, W. M. Grill, "Modeling the excitability of mammalian nerve fibers: Influence of afterpotentials on the recovery cycle," J. Neurophysiol. 87(2), 995–1006 (2002).

    [31] J. E. Smit, T. Hanekom, J. J. Hanekom, "Modelled temperature-dependent excitability behaviour of a single ranvier node for a human peripheral sensory nerve fibre," Biol. Cybern. 100(1), 49–58 (2009).

    [32] B. P. Bean, "The action potential in mammalian central neurons," Nat. Rev. Neurosci. 8, 451–465 (2007).

    [33] S. G. Waxman, "Determinants of conduction velocity in myelinated nerve fibers," Muscle Nerve 3 (2), 141–150 (1980).

    [34] C. H. Fry, R. I. Jabr, "The action potential and nervous conduction," Surgery (Oxford) 28(2), 49–54 (2010).

    [35] D. I. Stephanova, M. Daskalova, A. S. Alexandrov, "Differences in potentials and excitability properties in simulated cases of demyelinating neuropathies Part I," Clin. Neurophysiol. 116(5), 1153–1158 (2005).

    [36] P. A. Felts, T. A. Baker, K. J. Smith, "Conduction in segmentally demyelinated mammalian central axons," J. Neurosci. 17(19), 7267–7277 (1997).

    [37] H. Bostock, P. Grafe, "Activity-dependent excitability changes in normal and demyelinated rat spinal root axons," J. Physiol. 365, 239–257 (1985).

    [38] S. Kuwabara, Y. Nakajima, T. Hattori, S. Toma, K. Mizobuchi, K. Ogawara, "Activity-dependent excitability changes in chronic inflammatory demyelinating polyneuropathy: A microneurographic study," Muscle Nerve 22(7), 899–904 (1999).

    ZHI-HUI LUO, JIANG-XU CHEN, YI-MEI HUANG, HONG-QIN YANG, JU-QIANG LIN, HUI LI, SHU-SEN XIE. CHARACTERIZATION OF SIGNAL CONDUCTION ALONG DEMYELINATED AXONS BY ACTIONPOTENTIAL- ENCODED SECOND HARMONIC GENERATION[J]. Journal of Innovative Optical Health Sciences, 2014, 7(1): 1330003
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