Sustained delivery of thermostabilized chABC enhances axonal sprouting and functional recovery after spinal cord injury
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[1] M. Descamps,et al. Thermostabilization mechanism of bovine serum albumin by trehalose. , 2009, The journal of physical chemistry. B.
[2] Stacie A. Chvatal,et al. Spatial distribution and acute anti-inflammatory effects of Methylprednisolone after sustained local delivery to the contused spinal cord. , 2008, Biomaterials.
[3] W. Young,et al. Single, high-dose intraspinal injection of chondroitinase reduces glycosaminoglycans in injured spinal cord and promotes corticospinal axonal regrowth after hemisection but not contusion. , 2008, Journal of neurotrauma.
[4] D. Howland,et al. Effect of body temperature on chondroitinase ABC's ability to cleave chondroitin sulfate glycosaminoglycans , 2007, Journal of neuroscience research.
[5] J. Fawcett,et al. Promoting plasticity in the spinal cord with chondroitinase improves functional recovery after peripheral nerve repair. , 2007, Brain : a journal of neurology.
[6] S. Strittmatter,et al. Functional Axonal Regeneration through Astrocytic Scar Genetically Modified to Digest Chondroitin Sulfate Proteoglycans , 2007, The Journal of Neuroscience.
[7] Ming-Chao Huang,et al. Chondroitinase ABC promotes axonal re-growth and behavior recovery in spinal cord injury. , 2006, Biochemical and biophysical research communications.
[8] S. McMahon,et al. Chondroitinase ABC Promotes Sprouting of Intact and Injured Spinal Systems after Spinal Cord Injury , 2006, The Journal of Neuroscience.
[9] Jerry Silver,et al. Combining an Autologous Peripheral Nervous System “Bridge” and Matrix Modification by Chondroitinase Allows Robust, Functional Regeneration beyond a Hemisection Lesion of the Adult Rat Spinal Cord , 2006, The Journal of Neuroscience.
[10] Nicoletta Berardi,et al. Structural and functional recovery from early monocular deprivation in adult rats. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[11] J. Silver,et al. Chondroitinase ABC Digestion of the Perineuronal Net Promotes Functional Collateral Sprouting in the Cuneate Nucleus after Cervical Spinal Cord Injury , 2006, The Journal of Neuroscience.
[12] M. Schwartz,et al. A sulfated disaccharide derived from chondroitin sulfate proteoglycan protects against inflammation‐associated neurodegeneration , 2006, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[13] R. Spreafico,et al. One hundred years of Golgi’s “perineuronal net”: history of a denied structure , 1998, The Italian Journal of Neurological Sciences.
[14] Young-tae Kim,et al. In situ gelling hydrogels for conformal repair of spinal cord defects, and local delivery of BDNF after spinal cord injury. , 2006, Biomaterials.
[15] Denis Gris,et al. Autonomic dysreflexia after spinal cord injury: central mechanisms and strategies for prevention. , 2006, Progress in brain research.
[16] Ravi V. Bellamkonda,et al. CS-4,6 is differentially upregulated in glial scar and is a potent inhibitor of neurite extension , 2005, Molecular and Cellular Neuroscience.
[17] A. Blight,et al. Chondroitinase ABCI improves locomotion and bladder function following contusion injury of the rat spinal cord. , 2005, Journal of neurotrauma.
[18] V. Litvak,et al. A disaccharide derived from chondroitin sulphate proteoglycan promotes central nervous system repair in rats and mice † , 2004, The European journal of neuroscience.
[19] Y. Chan,et al. Chondroitinase ABC enhances axonal regrowth through Schwann cell‐seeded guidance channels after spinal cord injury , 2004, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[20] M. Tuszynski,et al. The chondroitin sulfate proteoglycans neurocan, brevican, phosphacan, and versican are differentially regulated following spinal cord injury , 2003, Experimental Neurology.
[21] R. Bhat,et al. Why Is Trehalose an Exceptional Protein Stabilizer? , 2003, Journal of Biological Chemistry.
[22] Xiaojun Yu,et al. Tissue-engineered scaffolds are effective alternatives to autografts for bridging peripheral nerve gaps. , 2003, Tissue engineering.
[23] R. Bellamkonda,et al. Sustained release of plasmid DNA using lipid microtubules and agarose hydrogel. , 2003, Journal of controlled release : official journal of the Controlled Release Society.
[24] L. Maffei,et al. Reactivation of Ocular Dominance Plasticity in the Adult Visual Cortex , 2002, Science.
[25] S. N. Timasheff,et al. Protein-solvent preferential interactions, protein hydration, and the modulation of biochemical reactions by solvent components , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[26] James W. Fawcett,et al. Chondroitinase ABC promotes functional recovery after spinal cord injury , 2002, Nature.
[27] R. Bellamkonda,et al. Lipid-based microtubular drug delivery vehicles. , 2001, Journal of controlled release : official journal of the Controlled Release Society.
[28] W B Veldhuis,et al. Automated quantitative gait analysis during overground locomotion in the rat: its application to spinal cord contusion and transection injuries. , 2001, Journal of neurotrauma.
[29] C. Woolf,et al. Neuronal plasticity: increasing the gain in pain. , 2000, Science.
[30] J. Fawcett,et al. The glial scar and central nervous system repair , 1999, Brain Research Bulletin.
[31] S. Magazù,et al. Anomalous cryoprotective effectiveness of trehalose: Raman scattering evidences , 1999 .
[32] T. Arendt,et al. Cortical areas abundant in extracellular matrix chondroitin sulphate proteoglycans are less affected by cytoskeletal changes in Alzheimer's disease , 1999, Neuroscience.
[33] N. Greenfield. Applications of circular dichroism in protein and peptide analysis , 1999 .
[34] M. Schwab,et al. Degeneration and regeneration of axons in the lesioned spinal cord. , 1996, Physiological reviews.
[35] T. Lin,et al. Contribution of the surface free energy perturbation to protein-solvent interactions. , 1994, Biochemistry.
[36] J R Wolff,et al. Perineuronal nets provide a polyanionic, glia‐associated form of microenvironment around certain neurons in many parts of the rat brain , 1993, Glia.
[37] J. Silver,et al. Reduction of neurite outgrowth in a model of glial scarring following CNS injury is correlated with the expression of inhibitory molecules on reactive astrocytes , 1991, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[38] J. Baker,et al. An unsulphated region of the rat chondrosarcoma chondroitin sulphate chain and its binding to monoclonal antibody 3B3. , 1991, The Biochemical journal.
[39] R. Wevers,et al. Dimethylmethylene blue-based spectrophotometry of glycosaminoglycans in untreated urine: a rapid screening procedure for mucopolysaccharidoses. , 1989, Clinical chemistry.
[40] C. Angell,et al. Phase relations and vitrification in saccharide-water solutions and the trehalose anomaly , 1989 .
[41] J. Melrose,et al. The quantitative discrimination of corneal type I, but not skeletal type II, keratan sulfate in glycosaminoglycan mixtures by using a combination of dimethylmethylene blue and endo-beta-D-galactosidase digestion. , 1988, Analytical biochemistry.
[42] R. Dubner,et al. A new and sensitive method for measuring thermal nociception in cutaneous hyperalgesia , 1987, Pain.
[43] J. Crowe,et al. Effects of carbohydrates on membrane stability at low water activities. , 1984, Biochimica et biophysica acta.