An oscillating extracellular voltage gradient reduces the density and influences the orientation of astrocytes in injured mammalian spinal cord
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[1] K. R. Robinson,et al. The distribution of free calcium in transected spinal axons and its modulation by applied electrical fields , 1990, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[2] M. H. Irwin,et al. Astrocyte Growth, Reactivity, and the Target of the Antiproliferative Antibody, TAPA , 1996, The Journal of Neuroscience.
[3] M. Fehlings,et al. The effect of direct-current field on recovery from experimental spinal cord injury. , 1988, Journal of neurosurgery.
[4] W. F. Windle. Regeneration of axons in the vertebrate central nervous system. , 1956, Physiological reviews.
[5] R B Borgens,et al. An imposed oscillating electrical field improves the recovery of function in neurologically complete paraplegic dogs. , 1999, Journal of neurotrauma.
[6] J. Silver,et al. Robust Regeneration of Adult Sensory Axons in Degenerating White Matter of the Adult Rat Spinal Cord , 1999, The Journal of Neuroscience.
[7] A. Blight,et al. Functional recovery after spinal cord hemisection in guinea pigs: The effects of applied electric fields , 1990, The Journal of comparative neurology.
[8] Sonia L. Carlson,et al. Acute Inflammatory Response in Spinal Cord Following Impact Injury , 1998, Experimental Neurology.
[9] R B Borgens,et al. Enhanced spinal cord regeneration in lamprey by applied electric fields. , 1981, Science.
[10] J. Macdougall,et al. The treatment of experimental lesions of the spinal cord of dogs with trypsin. , 1960, Journal of neurosurgery.
[11] E. Geisert,et al. A novel approach to identify proteins associated with the inhibition of neurite growth , 1998, Journal of Neuroscience Methods.
[12] J. Turek,et al. The macrophage in acute neural injury: changes in cell numbers over time and levels of cytokine production in mammalian central and peripheral nervous systems. , 2000, The Journal of experimental biology.
[13] A. Blight. Delayed demyelination and macrophage invasion: a candidate for secondary cell damage in spinal cord injury. , 1985, Central nervous system trauma : journal of the American Paralysis Association.
[14] R. Lasek,et al. Astrocytes block axonal regeneration in mammals by activating the physiological stop pathway. , 1987, Science.
[15] J. Cook,et al. Effects of applied electric fields on clinical cases of complete paraplegia in dogs. , 1993, Restorative neurology and neuroscience.
[16] J. Silver,et al. Inhibition of neurite outgrowth on astroglial scars in vitro , 1990, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[17] R. Nuccitelli,et al. Electrical controls of development. , 1977, Annual review of biophysics and bioengineering.
[18] C. McCaig,et al. The direction of growth of differentiating neurones and myoblasts from frog embryos in an applied electric field. , 1981, The Journal of physiology.
[19] M. Bernstein,et al. Effect of glial-ependymal scar and teflon arrest on the regenerative capacity of goldfish spinal cord. , 1967, Experimental neurology.
[20] M. Hatten,et al. Astroglia in CNS injury , 1991, Glia.
[21] Reier Pj,et al. The glial scar: its bearing on axonal elongation and transplantation approaches to CNS repair. , 1988 .
[22] C. McCaig. Dynamic aspects of amphibian neurite growth and the effects of an applied electric field. , 1986, The Journal of physiology.
[23] A. Blight,et al. Transected dorsal column axons within the guinea pig spinal cord regenerate in the presence of an applied electric field , 1986, The Journal of comparative neurology.
[24] R. Coggeshall,et al. Methods for determining numbers of cells and synapses: A case for more uniform standards of review , 1996, The Journal of comparative neurology.
[25] C. Bajaj,et al. Two- and three-dimensional computer graphic evaluation of the subacute spinal cord injury , 1998, Journal of the Neurological Sciences.
[26] S. Whittemore,et al. Induction of Eph B3 after Spinal Cord Injury , 1999, Experimental Neurology.
[27] R. Borgens,et al. The Responses of Mammalian Spinal Axons to an Applied DC Voltage Gradient , 1997, Experimental Neurology.
[28] D. Stocum,et al. Developmental aspects of spinal cord and limb regeneration , 1995, Development, growth & differentiation.
[29] R. Borgens. What is the role of naturally produced electric current in vertebrate regeneration and healing. , 1982, International review of cytology.
[30] M. Bernstein,et al. Ultrastructure of normal regeneration and loss of regenerative capacity following teflon blockage in goldfish spinal cord. , 1969, Experimental neurology.
[31] M. Schwab,et al. Rat CNS white matter, but not gray matter, is nonpermissive for neuronal cell adhesion and fiber outgrowth , 1989, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[32] M. Egar,et al. Axonal guidance during embryogenesis and regeneration in the spinal cord of the newt: The blueprint hypothesis of neuronal pathway patterning , 1979, The Journal of comparative neurology.
[33] S. Waxman,et al. Fine structure of regenerated ependyma and spinal cord in Sternarchus albifrons , 1983, The Anatomical record.
[34] A. Blight. Macrophages and inflammatory damage in spinal cord injury. , 1992, Journal of neurotrauma.
[35] R. Borgens,et al. Electrically mediated regeneration and guidance of adult mammalian spinal axons into polymeric channels , 1999, Neuroscience.
[36] M. Poo,et al. Orientation of neurite growth by extracellular electric fields , 1982, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[37] J. D. Feldman,et al. Directional protrusive pseudopodial activity and motility in macrophages induced by extracellular electric fields. , 1982, Cell motility.
[38] A. Blight,et al. Cutaneus trunci muscle reflex of the guinea pig , 1990, The Journal of comparative neurology.
[39] J. Kapfhammer,et al. Inhibitors of neurite growth. , 1993, Annual review of neuroscience.
[40] M. Levin,et al. Applied AC and DC magnetic fields cause alterations in the mitotic cycle of early sea urchin embryos. , 1995, Bioelectromagnetics.
[41] Riyi Shi,et al. Mammalian Cortical Astrocytes Align Themselves in a Physiological Voltage Gradient , 1994, Experimental Neurology.
[42] R. Borgens,et al. The effect of an applied electric field on macrophage accumulation within the subacute spinal injury. , 1999, Restorative Neurology and Neuroscience.
[43] R B Borgens,et al. Behavioral recovery induced by applied electric fields after spinal cord hemisection in guinea pig. , 1987, Science.
[44] C. McCaig. Spinal neurite reabsorption and regrowth in vitro depend on the polarity of an applied electric field. , 1987, Development.
[45] T. Yoshimine,et al. Cellular Dynamics of Macrophages and Microglial Cells in Reaction to Stab Wounds in Rat Cerebral Cortex , 1998, Acta Neurochirurgica.
[46] L. Jaffe,et al. Neurites grow faster towards the cathode than the anode in a steady field. , 1979, The Journal of experimental zoology.
[47] C. Clemente,et al. REGENERATION IN THE VERTEBRATE CENTRAL NERVOUS SYSTEM. , 1964, International review of neurobiology.