Bone marrow stromal cells stimulate neurite outgrowth over neural proteoglycans (CSPG), myelin associated glycoprotein and Nogo-A.
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[1] P. Brundin,et al. Failure of Transdifferentiation of Adult Hematopoietic Stem Cells into Neurons , 2006, Stem cells.
[2] J. Shumsky,et al. Recovery of Function Following Grafting of Human Bone Marrow-Derived Stromal Cells into the Injured Spinal Cord , 2006, Neurorehabilitation and neural repair.
[3] Sarit Sivan,et al. Human Intervertebral Disc Cells Promote Nerve Growth Over Substrata of Human Intervertebral Disc Aggrecan , 2006, Spine.
[4] M. Ratajczak,et al. Migration of Bone Marrow and Cord Blood Mesenchymal Stem Cells In Vitro Is Regulated by Stromal‐Derived Factor‐1‐CXCR4 and Hepatocyte Growth Factor‐c‐met Axes and Involves Matrix Metalloproteinases , 2006, Stem cells.
[5] A. Asawachaicharn,et al. Human mesenchymal stem cell subpopulations express a variety of neuro-regulatory molecules and promote neuronal cell survival and neuritogenesis , 2006, Experimental Neurology.
[6] C. Ide,et al. Marrow stromal cells: implications in health and disease in the nervous system. , 2005, Current molecular medicine.
[7] I. Weissman,et al. Hematopoietic cells maintain hematopoietic fates upon entering the brain , 2005, The Journal of experimental medicine.
[8] S. Roberts,et al. Human Intervertebral Disc Aggrecan Inhibits Endothelial Cell Adhesion and Cell Migration In Vitro , 2005, Spine.
[9] M. Perreault,et al. Adult human hematopoietic stem cells produce neurons efficiently in the regenerating chicken embryo spinal cord. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[10] J. Shumsky,et al. Axon growth and recovery of function supported by human bone marrow stromal cells in the injured spinal cord exhibit donor variations , 2005, Brain Research.
[11] Sherri S Schultz,et al. Adult stem cell application in spinal cord injury. , 2005, Current drug targets.
[12] D. McTigue,et al. Bone marrow transplants provide tissue protection and directional guidance for axons after contusive spinal cord injury in rats , 2004, Experimental Neurology.
[13] I. Bellantuono,et al. A small proportion of mesenchymal stem cells strongly expresses functionally active CXCR4 receptor capable of promoting migration to bone marrow. , 2004, Blood.
[14] A. Blesch,et al. Adult neural progenitor cells provide a permissive guiding substrate for corticospinal axon growth following spinal cord injury , 2004, The European journal of neuroscience.
[15] M. Tuszynski,et al. Induction of bone marrow stromal cells to neurons: Differentiation, transdifferentiation, or artifact? , 2004, Journal of neuroscience research.
[16] Gianluca Gallo,et al. Reevaluation of in vitro differentiation protocols for bone marrow stromal cells: Disruption of actin cytoskeleton induces rapid morphological changes and mimics neuronal phenotype , 2004, Journal of neuroscience research.
[17] M. Filbin,et al. cAMP and Schwann cells promote axonal growth and functional recovery after spinal cord injury , 2004, Nature Medicine.
[18] Barbara Grimpe,et al. A Novel DNA Enzyme Reduces Glycosaminoglycan Chains in the Glial Scar and Allows Microtransplanted Dorsal Root Ganglia Axons to Regenerate beyond Lesions in the Spinal Cord , 2004, The Journal of Neuroscience.
[19] S. Okada,et al. Transplanted Hematopoietic Stem Cells from Bone Marrow Differentiate into Neural Lineage Cells and Promote Functional Recovery after Spinal Cord Injury in Mice , 2004, Journal of neuropathology and experimental neurology.
[20] R. Prinjha,et al. Nogo-A expression in the intact and injured nervous system , 2003, Molecular and Cellular Neuroscience.
[21] G. Raisman,et al. Functional Repair of the Corticospinal Tract by Delayed Transplantation of Olfactory Ensheathing Cells in Adult Rats , 2003, The Journal of Neuroscience.
[22] M. Tuszynski,et al. The chondroitin sulfate proteoglycans neurocan, brevican, phosphacan, and versican are differentially regulated following spinal cord injury , 2003, Experimental Neurology.
[23] R. Béliveau,et al. Hypoxia Promotes Murine Bone‐Marrow‐Derived Stromal Cell Migration and Tube Formation , 2003, Stem cells.
[24] A. Fournier,et al. Rho Kinase Inhibition Enhances Axonal Regeneration in the Injured CNS , 2003, The Journal of Neuroscience.
[25] G. Raisman,et al. Transplantation of Olfactory Ensheathing Cells into Spinal Cord Lesions Restores Breathing and Climbing , 2003, The Journal of Neuroscience.
[26] S. Davies,et al. Changes in distribution, cell associations, and protein expression levels of NG2, neurocan, phosphacan, brevican, versican V2, and tenascin‐C during acute to chronic maturation of spinal cord scar tissue , 2003, Journal of neuroscience research.
[27] K. Black,et al. Generation of Neural Progenitor Cells from Whole Adult Bone Marrow , 2002, Experimental Neurology.
[28] Bruce Caterson,et al. Human intervertebral disc aggrecan inhibits nerve growth in vitro. , 2002, Arthritis and rheumatism.
[29] Zhigang He,et al. Oligodendrocyte-myelin glycoprotein is a Nogo receptor ligand that inhibits neurite outgrowth , 2002, Nature.
[30] S. Strittmatter,et al. Nogo-66 receptor antagonist peptide promotes axonal regeneration , 2002, Nature.
[31] James W. Fawcett,et al. Chondroitinase ABC promotes functional recovery after spinal cord injury , 2002, Nature.
[32] A. Manira,et al. Marrow stromal cells form guiding strands in the injured spinal cord and promote recovery , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[33] J Kohyama,et al. Brain from bone: efficient "meta-differentiation" of marrow stroma-derived mature osteoblasts to neurons with Noggin or a demethylating agent. , 2001, Differentiation; research in biological diversity.
[34] D. Snow,et al. Nervous system–derived chondroitin sulfate proteoglycans regulate growth cone morphology and inhibit neurite outgrowth: A light, epifluorescence, and electron microscopy study , 2001, Microscopy research and technique.
[35] J. Kocsis,et al. Transplantation of Cryopreserved Adult Human Schwann Cells Enhances Axonal Conduction in Demyelinated Spinal Cord , 2001, The Journal of Neuroscience.
[36] M Chopp,et al. Spinal cord injury in rat: treatment with bone marrow stromal cell transplantation , 2000, Neuroreport.
[37] I. Black,et al. Adult rat and human bone marrow stromal cells differentiate into neurons , 2000, Journal of neuroscience research.
[38] W. Janssen,et al. Adult Bone Marrow Stromal Cells Differentiate into Neural Cells in Vitro , 2000, Experimental Neurology.
[39] Martin E. Schwab,et al. Nogo-A is a myelin-associated neurite outgrowth inhibitor and an antigen for monoclonal antibody IN-1 , 2000, Nature.
[40] J. Mcdonald,et al. Transplanted embryonic stem cells survive, differentiate and promote recovery in injured rat spinal cord , 1999, Nature Medicine.
[41] D J Prockop,et al. Marrow stromal cells migrate throughout forebrain and cerebellum, and they differentiate into astrocytes after injection into neonatal mouse brains. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[42] J. Fawcett,et al. The glial scar and central nervous system repair , 1999, Brain Research Bulletin.
[43] G. Miserocchi,et al. The sensitivity of versican from rabbit lung to gelatinase A (MMP‐2) and B (MMP‐9) and its involvement in the development of hydraulic lung edema , 1999, FEBS letters.
[44] M. Schwab,et al. Membrane-type 1 Matrix Metalloprotease (MT1-MMP) Enables Invasive Migration of Glioma Cells in Central Nervous System White Matter , 1999, The Journal of cell biology.
[45] G. Moonen,et al. Effects of macrophage transplantation in the injured adult rat spinal cord: A combined immunocytochemical and biochemical study , 1998, Journal of neuroscience research.
[46] Stacey P. Memberg,et al. Regeneration of adult axons in white matter tracts of the central nervous system , 1997, Nature.
[47] R. Timpl,et al. Membrane-type matrix metalloproteinases 1 and 2 exhibit broad-spectrum proteolytic capacities comparable to many matrix metalloproteinases. , 1997, European journal of biochemistry.
[48] P M Field,et al. Repair of adult rat corticospinal tract by transplants of olfactory ensheathing cells. , 1997, Science.
[49] Sean P. Palecek,et al. Integrin dynamics on the tail region of migrating fibroblasts. , 1996, Journal of cell science.
[50] L. Mckerracher,et al. Identification of myelin-associated glycoprotein as a major myelin-derived inhibitor of neurite growth , 1994, Neuron.
[51] A. Horwitz,et al. Dynamics of beta 1 integrin-mediated adhesive contacts in motile fibroblasts , 1992, The Journal of cell biology.
[52] T. Hardingham,et al. The interglobular domain of cartilage aggrecan is cleaved by PUMP, gelatinases, and cathepsin B. , 1992, The Journal of biological chemistry.
[53] J. Silver,et al. Sulfated proteoglycans in astroglial barriers inhibit neurite outgrowth in vitro , 1990, Experimental Neurology.
[54] J. Foidart,et al. Some properties of marrow derived adherent cells in tissue culture. , 1980, Blood.
[55] E. Bröcker,et al. Release of cell fragments by invading melanoma cells. , 2004, European journal of cell biology.