Crossref
journal-article
Springer Science and Business Media LLC
Spinal Cord (297)
References
114
Referenced
506
-
Acarin L et al. Neuronal, astroglial and microglial cytokine expression after an excitotoxic lesion in the immature rat brain. Eur J Neurosci 2000; 12: 3505–3520.
(
10.1046/j.1460-9568.2000.00226.x
) / Eur J Neurosci by L Acarin (2000) -
Bartholdi D, Schwab ME . Expression of pro-inflammatory cytokine and chemokine mRNA upon experimental spinal cord injury in mouse: an in situ hybridization study. Eur J Neurosci 1997; 9: 1422–1438.
(
10.1111/j.1460-9568.1997.tb01497.x
) / Eur J Neurosci by D Bartholdi (1997) -
Bethea JR et al. Traumatic spinal cord injury induces nuclear factor-kappaB activation. J Neurosci 1998; 18: 3251–3260.
(
10.1523/JNEUROSCI.18-09-03251.1998
) / J Neurosci by JR Bethea (1998) -
Bethea JR et al. Systemically administrated interleukin-10 reduces tumor necrosis factor-α production and significantly improves functional recovery following traumatic spinal cord injury in rats. J Neurotrauma 1999; 16: 851–863.
(
10.1089/neu.1999.16.851
) / J Neurotrauma by JR Bethea (1999) -
Hayashi M et al. Sequential mRNA expression for immediate early genes, cytokines, and neurotrophins in spinal cord injury. J Neurotrauma 2000; 17: 203–218.
(
10.1089/neu.2000.17.203
) / J Neurotrauma by M Hayashi (2000) -
Klusman I, Schwab ME . Effects of pro-inflammatory cytokines in experimental spinal cord injury. Brain Res 1997; 762: 173–184.
(
10.1016/S0006-8993(97)00381-8
) / Brain Res by I Klusman (1997) -
Popovich PG et al. Cellular inflammatory response after spinal cord injury in Sprague–Dawley and Lewis rats. J Comp Neurol 1997; 377: 443–464.
(
10.1002/(SICI)1096-9861(19970120)377:3<443::AID-CNE10>3.0.CO;2-S
) / J Comp Neurol by PG Popovich (1997) -
Schwab ME, Bartholdi D . Degeneration and regeneration of axons in the lesioned spinal cord. Physiol Rev 1996; 76: 319–370.
(
10.1152/physrev.1996.76.2.319
) / Physiol Rev by ME Schwab (1996) -
Schnell L et al. Acute inflammatory responses to mechanical lesions in the CNS: differences between brain and spinal cord. Eur J Neurosci 1999a; 11: 3648–3658.
(
10.1046/j.1460-9568.1999.00792.x
) / Eur J Neurosci by L Schnell (1999) -
Schnell L et al. Cytokine-induced acute inflammation in the brain and spinal cord. J Neuropathol Exp Neurol 1999b; 55: 245–254.
(
10.1097/00005072-199903000-00004
) / J Neuropathol Exp Neurol by L Schnell (1999) -
Grimpe B, Silver J . The extracellular matrix in axon regeneration. Prog Brain Res 2002; 137: 333–349.
(
10.1016/S0079-6123(02)37025-0
) / Prog Brain Res by B Grimpe (2002) -
Jones LL, Tuszynski MH . Spinal cord injury expression of keratan sulfate proteoglycans by macrophages, reactive microglia, and oligodendrocyte progenitors. J Neurosci 2002; 22: 4611–4624.
(
10.1523/JNEUROSCI.22-11-04611.2002
) / J Neurosci by LL Jones (2002) -
Zhang Y et al. Tenascin-C expression and axonal sprouting following injury to the spinal dorsal columns in the adult rat. J Neurosci Res 1997; 49: 433–450.
(
10.1002/(SICI)1097-4547(19970815)49:4<433::AID-JNR5>3.0.CO;2-9
) / J Neurosci Res by Y Zhang (1997) -
Popovich PG . Immunonological regulation of neuronal degeneration and regeneration in the injured spinal cord. Prog Brain Res 2000; 128: 43–58.
(
10.1016/S0079-6123(00)28006-0
) / Prog Brain Res by PG Popovich (2000) - Beattie MS, Bresnahan JC . Cell death, repair, and recovery of function after spinal cord injury in rats. In: Kalb RG, Strittmatter SM (eds). Neurobiology of Spinal Cord Injury. Humana Press Inc.: Totowa, NJ 2000. / Neurobiology of Spinal Cord Injury by MS Beattie (2000)
-
Liu XZ et al. Neuronal and glial apoptosis after traumatic spinal cord injury. J Neuosci 1997; 17: 5395–5306.
(
10.1523/JNEUROSCI.17-14-05395.1997
) / The Journal of Neuroscience by Xiao Z. Liu (1997) - Marmarou A et al. Traumatic brain tissue acidosis: experimental and clinical studies. Acta Neurochir Suppl 1993; 57: 160–164. / Acta Neurochir Suppl by A Marmarou (1993)
-
Segal JL et al. Circulating levels of IL-2R, ICAM-1, and IL-6 in spinal cord injuries. Arch Phys Med Rehabil 1997; 78: 44–47.
(
10.1016/S0003-9993(97)90008-3
) / Arch Phys Med Rehabil by JL Segal (1997) -
Beattie MS et al. Cell death and plasticity after experimental spinal cord injury. Prog Brain Res 2000; 128: 9–21.
(
10.1016/S0079-6123(00)28003-5
) / Prog Brain Res by MS Beattie (2000) -
Basso DM et al. Graded histological and locomotor outcomes after spinal cord contusion using the NYU weight-drop device versus transsection. Exp Neurol 1996; 139: 244–256.
(
10.1006/exnr.1996.0098
) / Exp Neurol by DM Basso (1996) -
Basso DM et al. MASCIS evaluation of open field locomotor scores: effects of experience and teamwork reliability. J Neurotrauma 1996; 13: 343–359.
(
10.1089/neu.1996.13.343
) / J Neurotrauma by DM Basso (1996) -
Constantini S, Young W . The effects of methylprednisolone and the ganglioside GM1 on acute spinal cord injury in rats. J Neurosurg 1994; 80: 97–111.
(
10.3171/jns.1994.80.1.0097
) / J Neurosurg by S Constantini (1994) -
Gruner JA . A monitored contusion model of spinal cord injury in the rat. J Neurotrauma 1992; 9: 123–128.
(
10.1089/neu.1992.9.123
) / J Neurotrauma by JA Gruner (1992) -
Behrmann DL et al. Spinal cord injury produced by consistent mechanical displacement of the cord in rats: behavioral and histologic analysis. J Neurotrauma 1992; 9: 197–217.
(
10.1089/neu.1992.9.197
) / J Neurotrauma by DL Behrmann (1992) -
Bresnahan JC . A behavioral and anatomical analysis of spinal cord injury produced by a feedback-controlled impaction device. Exp Neurol 1987; 95: 548–570.
(
10.1016/0014-4886(87)90299-8
) / Exp Neurol by JC Bresnahan (1987) -
Casha S et al. Oligodendroglial apoptosis occurs along degenerating axons and is associated with Fas and p75 expression following spinal cord injury in the rat. Neuroscience 2001; 103: 203–218.
(
10.1016/S0306-4522(00)00538-8
) / Neuroscience by S Casha (2001) -
Abraham KE et al. The role of kainic acid/AMPA and metabotropic glutamate receptors in the regulation of opiod mRNA expression and the onset of pain-related behaviour following excitotoxic spinal cord injury. Neuroscience 2001; 104: 836–874.
(
10.1016/S0306-4522(01)00134-8
) / Neuroscience by KE Abraham (2001) -
Plunkett J et al. Effects of interleukin-10 on pain behavior and gene expression following excititoxic spinal cord injury in the rat. Exp Neural 2001; 168: 144–154.
(
10.1006/exnr.2000.7604
) / Exp Neural by J Plunkett (2001) -
Beattie MS et al. ProNGF induces p75-mediated death of oligodendrocytes following spinal cord injury. Neuron 2002; 36: 375–386.
(
10.1016/S0896-6273(02)01005-X
) / Neuron by MS Beattie (2002) -
Joshi M, Fehlings M . Development and characterization of a novel, graded model of clip compressive spinal cord injury in the mouse: Part 1. Clip design, behavioral outcome, and histopathology. J Neurotrauma 2002; 19: 175–190.
(
10.1089/08977150252806947
) / J Neurotrauma by M Joshi (2002) -
Joshi M, Fehlings M . Development and characterization of a novel, graded model of clip compressive spinal cord injury in the mouse: Part 2. Quantitative neuroanatomical assessment and analysis of the relationship between axonal tracts, residual tissue, and locomotor recovery. J Neurotrauma 2002; 19: 191–203.
(
10.1089/08977150252806956
) / J Neurotrauma by M Joshi (2002) -
Stokes BT, Jakeman LB . Experimental modeling of human spinal cord injury: a model that crosses the species barrier and mimics the spectrum of human cytopathology. Spinal Cord 2002; 40: 101–109.
(
10.1038/sj.sc.3101254
) / Spinal Cord by BT Stokes (2002) -
Beal MF . Energetics in the pathogenesis of neuro-degenerative diseases. Trends Neurosci 2000; 23: 298–304.
(
10.1016/S0166-2236(00)01584-8
) / Trends Neurosci by MF Beal (2000) -
Beattie MS et al. Cell death in models of spinal cord injury. Prog Brain Res 2002; 137: 37–47.
(
10.1016/S0079-6123(02)37006-7
) / Prog Brain Res by MS Beattie (2002) -
Davies SJ, Silver J . Adult axon regeneration in adult CNS white matter. Trends Neurosci 1998; 21: 515.
(
10.1016/S0166-2236(98)01335-6
) / Trends Neurosci by SJ Davies (1998) -
Hausmann ON et al. Spinal cord injury induces expression of RGS7 in microglia/macrophages in rats. Eur J Neurosci 2002; 15: 602–612.
(
10.1046/j.1460-9568.2002.01916.x
) / Eur J Neurosci by ON Hausmann (2002) -
Noble LJ et al. Disruption and time course of protein extravasation in the rat spinal cord after contusive injury. Brain Res 1989; 482: 57–66.
(
10.1016/0006-8993(89)90542-8
) / Brain Res by LJ Noble (1989) -
Pan W, Kastin AJ . Increase in TNFalpha transport after SCI is specific for time, region, and type of lesion. Exp Neurol 2001; 170: 357–363.
(
10.1006/exnr.2001.7702
) / Exp Neurol by W Pan (2001) -
Mautes AE et al. Vascular events after spinal cord injury: contribution to secondary pathogenesis. Phys Ther 2000; 80: 673–687.
(
10.1093/ptj/80.7.673
) / Phys Ther by AE Mautes (2000) -
Tator CH, Koyanagi I . Vascular mechanisms in the pathophysiology of human spinal cord injury. J Neurosurg 1997; 86: 483–492.
(
10.3171/jns.1997.86.3.0483
) / J Neurosurg by CH Tator (1997) -
Saikumar P et al. Mechanisms of cell death in hypoxia/reoxygenation injury. Oncogene 1998; 17: 3341–3349.
(
10.1038/sj.onc.1202579
) / Oncogene by P Saikumar (1998) -
Mills CD et al. Changes in metabotropic glutamate receptor expression following spinal cord injury. Exp Neurol 2001; 170: 244–257.
(
10.1006/exnr.2001.7721
) / Exp Neurol by CD Mills (2001) -
Ha BK et al. Kainate-induced excitotoxicity is dependent upon extracellular potassium concentrations that regulate the activity of AMPA/KA type receptors. J Neurochem 2002; 83: 934–945.
(
10.1046/j.1471-4159.2002.01203.x
) / J Neurochem by BK Ha (2002) -
Mills CD et al. Involvement of metabotropic glutamate receptors in excitatory amino acid and GABA release following spinal cord injury in rat. J Neurochem 2001; 79: 835–848.
(
10.1046/j.1471-4159.2001.00630.x
) / J Neurochem by CD Mills (2001) - Chu GK et al. Calcium and neuronal death in spinal neurons. In: Kalb RG, Strittmatter SM (eds). Neurobiology of Spinal Cord Injury. Humana Press Inc.: Totowa, NJ 2000. / Neurobiology of Spinal Cord Injury by GK Chu (2000)
-
Regan RF, Choi DW . Glutamate neurotoxicity in spinal cord cell culture. Neuroscience 1991; 43: 585–591.
(
10.1016/0306-4522(91)90317-H
) / Neuroscience by RF Regan (1991) -
Vera-Portocarrero LP et al. Rapid changes in expression of glutamate transporters after spinal cord injury. Brain Res 2002; 927: 104–110.
(
10.1016/S0006-8993(01)03329-7
) / Brain Res by LP Vera-Portocarrero (2002) -
Regan RF . The vulnerability of spinal cord neurons to excitotoxic injury: comparison with cortical neurons. Neurosci Lett 1996; 213: 9–12.
(
10.1016/0304-3940(96)12823-8
) / Neurosci Lett by RF Regan (1996) -
Choi DW . Glutamate receptors and the induction of excitotoxic neuronal cell death. Curr Opin Neurobiol 1996; 6: 667–672.
(
10.1016/S0959-4388(96)80101-2
) / Curr Opin Neurobiol by DW Choi (1996) -
Jansco G et al. Neurotoxin induced nerve cell degeneration: possible involvement of calcium. Brain Res 1984; 295: 211–216.
(
10.1016/0006-8993(84)90969-7
) / Brain Res by G Jansco (1984) -
Aizenman E et al. Oxygen free radicals regulate NMDA receptor function via a redox modulatory site. Neuron 1990; 5: 841–846.
(
10.1016/0896-6273(90)90343-E
) / Neuron by E Aizenman (1990) -
Schmidley JW . Free radicals in the central nervous system ischemia. Stroke 1990; 21: 1086–1090.
(
10.1161/01.STR.21.7.1086
) / Stroke by JW Schmidley (1990) - Dalkara T et al. Constitutive nitric oxide synthase and ischemic/excitotoxic brain injury. In: Ruffolo RR et al (eds). Inflammatory Cells and Mediators in CNS Diseases. New Academic Publishers: Amsterdam 1999. / Inflammatory Cells and Mediators in CNS Diseases by T Dalkara (1999)
-
Lipton SA et al. A redox-based mechanism for the neuroprotective and neurodestructive effects of nitric oxide and related nitroso-compounds. Nature 1993; 364: 626–631.
(
10.1038/364626a0
) / Nature by SA Lipton (1993) -
Nakahara S et al. Changes in nitric oxide and expression of nitric oxide synthase in spinal cord after traumatic injury in rats. J Neurotrauma 2002; 11: 1467–1474.
(
10.1089/089771502320914697
) / J Neurotrauma by S Nakahara (2002) -
Bao F, Liu D . Peroxynitrite generated in the rat spinal cord induces neuron death and neurological deficits. Neuroscience 2002; 115: 839–849.
(
10.1016/S0306-4522(02)00506-7
) / Neuroscience by F Bao (2002) -
Dawson VL et al. Mechanisms of nitric oxide-mediated neurotoxicity in primary cortical cultures. J Neurosci 1993; 13: 2651–2661.
(
10.1523/JNEUROSCI.13-06-02651.1993
) / J Neurosci by VL Dawson (1993) -
Brewer GJ, Wallimann T . Protective effects of the energy precursor creatine against toxicity of glutamate and beta-amyloid in rat hippocampal neurons. J Neurochem 2000; 74: 1968–1978.
(
10.1046/j.1471-4159.2000.0741968.x
) / J Neurochem by GJ Brewer (2000) -
Hausmann ON et al. Protective effects of oral creatine supplementation prior to spinal cord injury in rats. Spinal Cord 2002; 40: 449–456.
(
10.1038/sj.sc.3101330
) / Spinal Cord by ON Hausmann (2002) -
Taoka Y, Okajima K . Role of leucocytes in spinal cord injury in rats. J Neurotrauma 2000; 17: 219–229.
(
10.1089/neu.2000.17.219
) / J Neurotrauma by Y Taoka (2000) -
Carlson SL et al. Acute inflammatory response in spinal cord following impact injury. Exp Neurol 1998; 151: 77–88.
(
10.1006/exnr.1998.6785
) / Exp Neurol by SL Carlson (1998) -
Chatzipanteli K et al. Post-traumatic hypothermia reduces polymorphnuclear leucocyte accumulation following spinal cord injury in rats. J Neurotrauma 2000; 17: 321–332.
(
10.1089/neu.2000.17.321
) / J Neurotrauma by K Chatzipanteli (2000) -
Taoka Y, Okajima K: Spinal cord injury in the rat. Prog Neurobiol 1998; 56: 341–358.
(
10.1016/S0301-0082(98)00049-5
) / Prog Neurobiol by Y Taoka (1998) -
Watanabe T et al. Differential activation of microglia after experimental spinal cord injury. J Neurotrauma 1999; 16: 255–265.
(
10.1089/neu.1999.16.255
) / J Neurotrauma by T Watanabe (1999) -
Streit WJ et al. Functional plasticity of microglia: a review. Glia 1988; 1: 301–307.
(
10.1002/glia.440010502
) / Glia by WJ Streit (1988) -
Shuman SL et al. Apoptosis of microglia and oligo-dendrocytes after spinal cord injury in rats. J Neurosci Res 1997; 50: 798–808.
(
10.1002/(SICI)1097-4547(19971201)50:5<798::AID-JNR16>3.0.CO;2-Y
) / J Neurosci Res by SL Shuman (1997) -
Schwartz M . Autoimmune involvement in CNS trauma is beneficial if well controlled. Prog Brain Res 2000; 128: 259–263.
(
10.1016/S0079-6123(00)28023-0
) / Prog Brain Res by M Schwartz (2000) -
Rapalino O et al. Implantation of stimulated homologous macrophages results in partial recovery of paraplegic rats. Nat Med 1998; 4: 814–821.
(
10.1038/nm0798-814
) / Nat Med by O Rapalino (1998) -
Hauben E et al. Autoimmune T cells as potential neuroprotective therapy for spinal cord injury. Lancet 2000; 354: 286–287.
(
10.1016/S0140-6736(99)05140-5
) / Lancet by E Hauben (2000) -
Nevo U et al. Diffusion anisotrophy MRI for quantitative assessment of recovery in injured rat spinal cord. Magn Reson Med 2001; 45: 1–9.
(
10.1002/1522-2594(200101)45:1<1::AID-MRM1001>3.0.CO;2-I
) / Magn Reson Med by U Nevo (2001) -
Stichel CC, Müller HW . The CNS lesion scar: new vistas on an old regeneration barrier. Cell Tissue Res 1998; 249: 1–9.
(
10.1007/s004410051151
) / Cell Tissue Res by CC Stichel (1998) -
Fawcett JW . Spinal cord repair: from experimental models to human application. Spinal Cord 1998; 36: 811–817.
(
10.1038/sj.sc.3100769
) / Spinal Cord by JW Fawcett (1998) -
Fawcett JW, Asher RA . The glial scar and central nervous system repair. Brain Res Bull 1999; 49: 377–391.
(
10.1016/S0361-9230(99)00072-6
) / Brain Res Bull by JW Fawcett (1999) -
Fitch MT, Silver J . Glial cell extracellular matrix: boundaries for axon growth in the development and regeneration. Cell Tissue Res 1997a; 290: 379–384.
(
10.1007/s004410050944
) / Cell Tissue Res by MT Fitch (1997) -
Goss JR . Astrocytes are the major source nerve growth factor upregulation following traumatic brain injury in the rat. Exp Neurol 1998; 149: 301–309.
(
10.1006/exnr.1997.6712
) / Exp Neurol by JR Goss (1998) -
Liesi P et al. Laminin is induced in astrocytes of the adult brain by injury. EMBO J 1984; 3: 683–686.
(
10.1002/j.1460-2075.1984.tb01867.x
) / EMBO J by P Liesi (1984) -
Davies SJ et al. Regeneration of adult axons in white matter tracts of the central nervous system. Nature 1997; 390: 680–683.
(
10.1038/37776
) / Nature by SJ Davies (1997) -
Davies SJ et al. Robust regeneration of adult sensory axons in degenerating white matter of the adult rat spinal cord. J Neurosci 1999; 19: 5810–5822.
(
10.1523/JNEUROSCI.19-14-05810.1999
) / J Neurosci by SJ Davies (1999) -
McGraw J et al. Modulating astrogliosis after neurotrauma. J Neurosci Res 2001; 63: 109–115.
(
10.1002/1097-4547(20010115)63:2<109::AID-JNR1002>3.0.CO;2-J
) / J Neurosci Res by J McGraw (2001) -
Emery E et al. Apoptosis after traumatic human spinal cord injury. J Neurosurg 1998; 89: 911–920.
(
10.3171/jns.1998.89.6.0911
) / J Neurosurg by E Emery (1998) - Majno G et al. Apoptosis, oncosis, and necrosis. An overview of cell death. Am J Pathol 1995; 146: 3–15. / Am J Pathol by G Majno (1995)
-
Crowe MJ et al. Apoptosis and delayed degeneration after spinal cord injury in rats and monkeys. Nat Med 1997; 3: 73–76.
(
10.1038/nm0197-73
) / Nat Med by MJ Crowe (1997) -
Springer JE et al. Activation of the caspase-3 apoptotic cascade in traumatic spinal cord injury. Nat Med 1999; 5: 943–946.
(
10.1038/11387
) / Nat Med by JE Springer (1999) -
Baker SJ, Reddy EP . Modulation of life and death by the TNF receptor superfamily. Oncogene 1998; 17: 3261–3270.
(
10.1038/sj.onc.1202568
) / Oncogene by SJ Baker (1998) -
Li GL et al. Changes of Fas and Fas ligand immuno-reactivity after compression trauma to rat spinal cord. Acta Neuropathol 2000; 100: 75–81.
(
10.1007/s004010051195
) / Acta Neuropathol by GL Li (2000) -
Zurita M et al. Presence and significance of CD-95 (Fas/APO1) expression after spinal cord injury. J Neurosurg (Spine) 2001; 94: 257–264.
(
10.3171/spi.2001.94.2.0257
) / J Neurosurg (Spine) by M Zurita (2001) -
Lee YB et al. Role of tumor necrosis factor-α in neuronal and glial apoptosis after spinal cord injury. Exp Neurol 2000; 166: 190–195.
(
10.1006/exnr.2000.7494
) / Exp Neurol by YB Lee (2000) -
Wada S . Apoptosis following spinal cord injury in rats and preventative effects of N-methyl-D-aspartate receptor agonist. J Neurosurg (Spine 1) 1999; 91: 98–104.
(
10.3171/spi.1999.91.1.0098
) / J Neurosurg (Spine 1) by S Wada (1999) -
Rabchevsky AG et al. Basic fibroblast growth factor (bFGF) enhances tissue sparing and functional recovery following moderate spinal cord injury. J Neurotrauma 1999; 16: 817–830.
(
10.1089/neu.1999.16.817
) / J Neurotrauma by AG Rabchevsky (1999) -
Zurita M et al. Effects of dexamethasone on apoptosis-related cell death after spinal cord injury. J Neurosurg (Spine) 2002; 96: 83–89.
(
10.3171/spi.2002.96.1.0083
) / J Neurosurg (Spine) by M Zurita (2002) -
Wrathall JR et al. Myelin gene expression after experimental contusive spinal cord injury. J Neurosci 1998; 18: 8780–8793.
(
10.1523/JNEUROSCI.18-21-08780.1998
) / J Neurosci by JR Wrathall (1998) - Purves D et al. Intracellular signal transduction. In: Purves D et al (eds). Neuroscience. 2nd ed. Sinauer Associates: Sunderland, MA 2001. / Neuroscience by D Purves (2001)
-
O'Farrell AM et al. IL-10 inhibits macrophage activation and proliferation by distinct signalling mechanisms: evidence for Stat3-dependent and -independent pathways. EMBO J 1998; 17: 1006–1013.
(
10.1093/emboj/17.4.1006
) / EMBO J by AM O'Farrell (1998) -
Dietrich WD et al. Postischemic hypothermia and IL-10 treatment provide long-lasting neuroprotection of CA1 hippocampus following transient global ischemia in rats. Exp Neurol 1999; 158: 444–450.
(
10.1006/exnr.1999.7115
) / Exp Neurol by WD Dietrich (1999) -
Knoblauch SM et al. lnterleukin-10 improves outcome and alters proinflammatory cytokine expression after experimental traumatic brain injury. Exp Neurol 1998; 153: 143–151.
(
10.1006/exnr.1998.6877
) / Exp Neurol by SM Knoblauch (1998) -
Bruce AJ et al. Alterated neuronal and microglial responses to excitotoxic and ischemic brain injury in mice lacking TNF receptors. Nat Med 1996; 2: 788–794.
(
10.1038/nm0796-788
) / Nat Med by AJ Bruce (1996) -
Holmin S et al. Intracerebral administration of interleukin-1b and induction of inflammation, apoptosis, and vasogenic edema. J Neurosurg 2000, 92: 108–120.
(
10.3171/jns.2000.92.1.0108
) / J Neurosurg by S Holmin (2000) -
Streit WJ et al. Comparative evaluation of cytokine profiles and reactive gliosis supports a critical role for interleukin-6 in neuron–glia signaling during regeneration. J Neurosci Res 2000; 61: 10–20.
(
10.1002/1097-4547(20000701)61:1<10::AID-JNR2>3.0.CO;2-E
) / J Neurosci Res by WJ Streit (2000) -
Lacroix S et al. Delivery of hyper-interleukin-6 to the injured signal cord increases neutrophil and macrophage infiltration and inhibits axonal growth. J Comp Neurol 2002; 454: 213–228.
(
10.1002/cne.10407
) / J Comp Neurol by S Lacroix (2002) -
Pan JZ et al. Cytokine activity contributes to induction of inflammatory cytokine mRNAs in spinal cord following contusion. J Neurosci Res 2002; 68: 315–322.
(
10.1002/jnr.10215
) / J Neurosci Res by JZ Pan (2002) -
Wang CX et al. Increase of interleukin-1B mRNA and protein in the spinal cord following experimental traumatic injury in the rat. Brain Res 1997; 759: 190–196.
(
10.1016/S0006-8993(97)00254-0
) / Brain Res by CX Wang (1997) -
Anthony DC et al. Age-related effects of interleukin 1B on polymorphnuclear neutrophil-dependent increases in blood–brain barrier permeability in rats. Brain 1997; 120: 435–444.
(
10.1093/brain/120.3.435
) / Brain by DC Anthony (1997) -
Benzing T et al. Upregulation of RGS7 may contribute to tumor necrosis factor induced changes in central nervous function. Nat Med 1999; 5: 913–918.
(
10.1038/11354
) / Nat Med by T Benzing (1999) -
Bradburry EJ et al. Chondroitinase ABC promotes functional recovery after spinal cord injury. Nature 2002; 416: 636–640.
(
10.1038/416636a
) / Nature by EJ Bradburry (2002) -
Birkedal-Hansen H et al. Matrix metalloproteases: a review. Crit Rev Oral Biol Med 1993; 4: 197–250.
(
10.1177/10454411930040020401
) / Crit Rev Oral Biol Med by H Birkedal-Hansen (1993) -
Noble LJ et al. Matrix metalloproteases limit functional recovery after spinal cord injury by modulation of early vascular events. J Neurosci 2002; 22: 7526–7535.
(
10.1523/JNEUROSCI.22-17-07526.2002
) / J Neurosci by LJ Noble (2002) - Xu J et al. Glucocorticoid receptor-mediated suppression of activator protein-1 activation and metalloproteinase expression after spinal cord injury. J Neurosci 2001; 2: 502–511. / J Neurosci by J Xu (2001)
-
Guang C et al. Beneficial effects of modest hypothermia on locomotor function and histopathological damage following contusion-induced spinal cord injury in rats. J Neurosurg (Spine1) 2000; 93: 85–93.
(
10.3171/spi.2000.93.1.0085
) / J Neurosurg (Spine1) by C Guang (2000) - Stevens JD, Tetzlaff W . Strategies for spinal cord repair. In: Kalb RG, Strittmatter SM (eds). Neurobiology of Spinal Cord Injury. Humana Press Inc.: Totowa, NJ 2000. / Neurobiology of Spinal Cord Injury by JD Stevens (2000)
-
Behrmann DL et al. Modeling spinal cord injury in the rat: neuroprotection and enhanced recovery with methylprednisolone and YM-14673. Exp Neurol 1994; 126: 61–75.
(
10.1006/exnr.1994.1042
) / Exp Neurol by DL Behrmann (1994) -
Fitch MT, Silver J . Activated macrophages and the blood–brain barrier: inflammation after CNS injury leads to increase in putative molecules. Exp Neurol 1997b; 148: 587–603.
(
10.1006/exnr.1997.6701
) / Exp Neurol by MT Fitch (1997) -
Krautstrunk M et al. Increased expression of the putative axon growth-repulsive extracellular matrix molecule, keratan sulphate proteoglycan, following traumatic injury of the adult rat spinal cord. Acta Neuropathol 2002; 104: 592–600.
(
10.1007/s00401-002-0589-6
) / Acta Neuropathol by M Krautstrunk (2002) -
Schwartz M . Protective autoimmunity as a T-cell response to central nervous system trauma: prospects for therapeutic vaccines. Prog Neurobiol 2001; 65: 489–496.
(
10.1016/S0301-0082(01)00009-0
) / Prog Neurobiol by M Schwartz (2001) -
Yakolev AG et al. Activation of CPP32-like caspases contributes to neuronal apoptosis and neurological dysfunction after traumatic brain injury. J Neurosci 1997; 17: 7415–7424.
(
10.1523/JNEUROSCI.17-19-07415.1997
) / J Neurosci by AG Yakolev (1997)
Dates
Type | When |
---|---|
Created | 22 years, 2 months ago (June 18, 2003, 12:36 p.m.) |
Deposited | 2 years, 3 months ago (May 16, 2023, 8:44 p.m.) |
Indexed | 1 week ago (Aug. 29, 2025, 6:38 a.m.) |
Issued | 22 years, 2 months ago (June 25, 2003) |
Published | 22 years, 2 months ago (June 25, 2003) |
Published Online | 22 years, 2 months ago (June 25, 2003) |
Published Print | 22 years, 2 months ago (July 1, 2003) |
@article{Hausmann_2003, title={Post-traumatic inflammation following spinal cord injury}, volume={41}, ISSN={1476-5624}, url={http://dx.doi.org/10.1038/sj.sc.3101483}, DOI={10.1038/sj.sc.3101483}, number={7}, journal={Spinal Cord}, publisher={Springer Science and Business Media LLC}, author={Hausmann, O N}, year={2003}, month=jun, pages={369–378} }