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Research Article

IKVAV-linked cell membrane-spanning peptide treatment induces neuronal reactivation following spinal cord injury

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Article: FSO81 | Published online: 27 Oct 2015

References

  • Fitch MT , SilverJ. CNS injury, glial scars, and inflammation: inhibitory extracellular matrices and regeneration failure. Exp. Neurol.209(2), 294–301 (2008).
  • Beattie MS , HermannGE, RogersRC, BresnahanJC. Cell death in models of spinal cord injury. Prog. Brain Res.137, 37–47 (2002).
  • Liu XZ , XuXM, HuRet al. Neuronal and glial apoptosis after traumatic spinal cord injury. J. Neurosci.17(14), 5395–5406 (1997).
  • Eng LF , ReierPJ, HouleJD. Astrocyte activation and fibrous gliosis: glial fibrillary acidic protein immunostaining of astrocytes following intraspinal cord grafting of fetal CNS tissue. Prog. Brain Res.71, 439–455 (1987).
  • Reier PJ , HouleJD. The glial scar: its bearing on axonal elongation and transplantation approaches to CNS repair. Adv. Neurol.47, 87–138 (1988).
  • Reier PJ . The astrocytic scar as an impediment to regeneration in the central nervous system. In: Spinal Cord Reconstruction. CCKao, RPBunge, PJReier ( Eds.). Raven Press, NY, USA, 163–195 (1983).
  • Fawcett JW , AsherRA. The glial scar and central nervous system repair. Brain Res. Bull.49(6), 377–391 (1999).
  • Hu R , ZhouJ, LuoCet al. Glial scar and neuroregeneration: histological, functional, and magnetic resonance imaging analysis in chronic spinal cord injury. J. Neurosurg. Spine13(2), 169–180 (2010).
  • Colognato H , YurchencoPD. Form and function: the laminin family of heterotrimers. Dev. Dyn.218(2), 213–234 (2000).
  • Burgeson RE , ChiquetM, DeutzmannRet al. A new nomenclature for the laminins. Matrix Biol.14(3), 209–211 (1994).
  • Grant DS , TashiroK, Segui-RealB, YamadaY, MartinGR, KleinmanHK. Two different laminin domains mediate the differentiation of human endothelial cells into capillary-like structures in vitro. Cell58(5), 933–943 (1989).
  • Kanemoto T , ReichR, RoyceLet al. Identification of an amino acid sequence from the laminin A chain that stimulates metastasis and collagenase IV production. Proc. Natl Acad. Sci. USA87(6), 2279–2283 (1990).
  • Kibbey MC , GrantDS, KleinmanHK. Role of the SIKVAV site of laminin in promotion of angiogenesis and tumor growth: an in vivo Matrigel model. J. Natl Cancer Inst.84(21), 1633–1638 (1992).
  • Tysseling-Mattiace VM , SahniV, NieceKLet al. Self-assembling nanofibers inhibit glial scar formation and promote axon elongation after spinal cord injury. J. Neurosci.28(14), 3814–3823 (2008).
  • Poon PC , GuptaD, ShoichetMS, TatorCH. Clip compression model is useful for thoracic spinal cord injuries: histologic and functional correlates. Spine32(25), 2853–2859 (1976).
  • Kate Roby LS . The Pill Book Guide to Medication for Your Dog and Cat. Bantam Books, NY, USA (1998).
  • Basso DM , FisherLC, AndersonAJ, JakemanLB, McTigueDM, PopovichPG. Basso Mouse Scale for locomotion detects differences in recovery after spinal cord injury in five common mouse strains. J. Neurotrauma23(5), 635–659 (2006).
  • Joshi M , FehlingsMG. 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 relationships between axonal tracts, residual tissue, and locomotor recovery. J. Neurotrauma19(2), 191–203 (2002).
  • Li Y , OskouianRJ, DayYJ, KernJA, LindenJ. Optimization of a mouse locomotor rating system to evaluate compression-induced spinal cord injury: correlation of locomotor and morphological injury indices. J. Neurosurg. Spine4(2), 165–173 (2006).
  • Gentleman R . Language for data analysis and graphics. Computational Graphical Statistic5, 279–314 (1996).
  • Springer JE . Apoptotic cell death following traumatic injury to the central nervous system. J. Biochem. Mol. Biol.35(1), 94–105 (2002).
  • Leica Microsystems . Light Microscopes. www.leica-microsystems.com/products/light-microscopes/
  • Oyinbo CA . Secondary injury mechanisms in traumatic spinal cord injury: a nugget of this multiply cascade. Acta Neurobiol. Exp.71(2), 281–299 (2011).
  • Profyris C , CheemaSS, ZangD, AzariMF, BoyleK, PetratosS. Degenerative and regenerative mechanisms governing spinal cord injury. Neurobiol. Dis.15(3), 415–436 (2004).
  • Dumont RJ , OkonkwoDO, VermaSet al. Acute spinal cord injury, part I: pathophysiologic mechanisms. Clin. Neuropharmacol.24(5), 254–264 (2001).
  • Carlson GD , GordenC. Current developments in spinal cord injury research. Spine J2(2), 116–128 (2002).
  • Wu J , StoicaBA, FadenAI. Cell cycle activation and spinal cord injury. Neurotherapeutics8(2), 221–228 (2011).
  • Beattie MS , FarooquiAA, BresnahanJC Review of current evidence for apoptosis after spinal cord injury. J. Neurotrauma17(10), 915–925 (2000).
  • Lu J , AshwellKW, WaiteP. Advances in secondary spinal cord injury: role of apoptosis. Spine25(14), 1859–1866 (1976).
  • Basnak’ian AG , BaskovAV, SokolovNN, BorshchenkoIA. [Apoptosis during spinal cord trauma: prospects for pharmacological correction]. Vopr. Med. Khim.46(5), 431–443 (2000).
  • Crowe MJ , BresnahanJC, ShumanSL, MastersJN, BeattieMS. Apoptosis and delayed degeneration after spinal cord injury in rats and monkeys. Nat. Med.3(1), 73–76 (1997).
  • Beattie MS . Inflammation and apoptosis: linked therapeutic targets in spinal cord injury. Trends Mol. Med.10(12), 580–583 (2004).
  • Martin LJ . Neuronal cell death in nervous system development, disease, and injury (review). Int. J. Mol. Med.7(5), 455–478 (2001).
  • Nielson JL , Sears-KraxbergerI, StrongMK, WongJK, WillenbergR, StewardO. Unexpected survival of neurons of origin of the pyramidal tract after spinal cord injury. J. Neurosci.30(34), 11516–11528 (2010).
  • Okada S , NakamuraM, KatohHet al. Conditional ablation of Stat3 or Socs3 discloses a dual role for reactive astrocytes after spinal cord injury. Nat. Med.12(7), 829–834 (2006).
  • Faulkner JR , HerrmannJE, WooMJ, TanseyKE, DoanNB, SofroniewMV. Reactive astrocytes protect tissue and preserve function after spinal cord injury. J. Neurosci.24(9), 2143–2155 (2004).
  • Shibuya S , YamamotoT, ItanoT. Glial and axonal regeneration following spinal cord injury. Cell Adh. Migr.3(1), 99–106 (2009).
  • Windle WF , ChambersWW. Regeneration in the spinal cord of the cat and dog. AMA Arch. Neurol. Psychiatry65(2), 261–262 (1951).
  • Busch SA , SilverJ. The role of extracellular matrix in CNS regeneration. Curr. Opin. Neurobiol.17(1), 120–127 (2007).
  • Fawcett JW . Overcoming inhibition in the damaged spinal cord. J. Neurotrauma23(3–4), 371–383 (2006).
  • Fitch MT , SilverJ. Glial cell extracellular matrix: boundaries for axon growth in development and regeneration. Cell Tissue Res.290(2), 379–384 (1997).
  • Liu BP , CaffertyWB, BudelSO, StrittmatterSM. Extracellular regulators of axonal growth in the adult central nervous system. Philos. Trans. R Soc. Lond. B Biol. Sci.361(1473), 1593–1610 (2006).
  • Mcgraw J , HiebertGW, SteevesJD. Modulating astrogliosis after neurotrauma. J. Neurosci. Res.63(2), 109–115 (2001).
  • Kawaja MD , GageFH. Reactive astrocytes are substrates for the growth of adult CNS axons in the presence of elevated levels of nerve growth factor. Neuron7(6), 1019–1030 (1991).
  • Gorgey AS , DudleyGA. Skeletal muscle atrophy and increased intramuscular fat after incomplete spinal cord injury. Spinal Cord45(4), 304–309 (2007).
  • Mahoney ET , BickelCS, ElderCet al. Changes in skeletal muscle size and glucose tolerance with electrically stimulated resistance training in subjects with chronic spinal cord injury. Arch. Phys. Med. Rehabil.86(7), 1502–1504 (2005).
  • Dudley GA , CastroMJ, RogersS, AppleDFJr. A simple means of increasing muscle size after spinal cord injury: a pilot study. Eur. J. Appl. Physiol. Occup. Physiol.80(4), 394–396 (1999).
  • Cruz CD , CruzF. Spinal cord injury and bladder dysfunction: new ideas about an old problem. ScientificWorldJournal11, 214–234 (2011).
  • Alluin O , Karimi-AbdolrezaeeS, Delivet-MongrainH, LeblondH, FehlingsMG, RossignolS. Kinematic study of locomotor recovery after spinal cord clip compression injury in rats. J. Neurotrauma28(9), 1963–1981 (2011).
  • Mata JE , DyalLA, SlausonMEet al. Tumor imaging using technetium – 99m bound to pH-sensitive peptides. Nanomedicine3(4), 297–305 (2007).