Neural tissue engineering: a self-organizing collagen guidance conduit
about
Building stable anisotropic tissues using cellular collagen gelsHyperbaric oxygenation in peripheral nerve repair and regeneration.The effect of the alignment of electrospun fibrous scaffolds on Schwann cell maturation.Stiffness-controlled three-dimensional extracellular matrices for high-resolution imaging of cell behavior.Evidence of innervation following extracellular matrix scaffold-mediated remodelling of muscular tissuesMechanotransduction: a major regulator of homeostasis and development.Experimental therapies for repair of the central nervous system: stem cells and tissue engineering.Carriers in cell-based therapies for neurological disorders.Virus-based scaffolds for tissue engineering applications.Polyethylene glycol as a promising synthetic material for repair of spinal cord injury.Could clinical photochemical internalisation be optimised to avoid neuronal toxicity?Optimising contraction and alignment of cellular collagen hydrogels to achieve reliable and consistent engineered anisotropic tissue.Classic Studies on the Potential of Stem Cell Neuroregeneration.Evaluation of a thin and mechanically stable collagen cell carrier.Peripheral neural cell sensitivity to mTHPC-mediated photodynamic therapy in a 3D in vitro modelAlignment of astrocytes increases neuronal growth in three-dimensional collagen gels and is maintained following plastic compression to form a spinal cord repair conduit.The behavior of neural stem cells on biodegradable synthetic polymers.Human dental pulp stem cells can differentiate into Schwann cells and promote and guide neurite outgrowth in an aligned tissue-engineered collagen construct in vitroBeyond the skeleton: Cnidarian biomaterials as bioactive extracellular microenvironments for tissue engineering.A Physicochemically Optimized and Neuroconductive Biphasic Nerve Guidance Conduit for Peripheral Nerve Repair.Three-dimensional Tissue Engineered Aligned Astrocyte Networks to Recapitulate Developmental Mechanisms and Facilitate Nervous System Regeneration.Regeneration of sciatic nerve crush injury by a hydroxyapatite nanoparticle-containing collagen type I hydrogel.Cell patterning with a heptagon acoustic tweezer--application in neurite guidance.Electroactive electrospun polyaniline/poly[(L-lactide)-co-(ε-caprolactone)] fibers for control of neural cell function.Development of a 3D Collagen Model for the In Vitro Evaluation of Magnetic-assisted OsteogenesisPolymers for Fabricating Nerve Conduits
P2860
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P2860
Neural tissue engineering: a self-organizing collagen guidance conduit
description
2005 nî lūn-bûn
@nan
2005 թուականին հրատարակուած գիտական յօդուած
@hyw
2005 թվականին հրատարակված գիտական հոդված
@hy
2005年の論文
@ja
2005年論文
@yue
2005年論文
@zh-hant
2005年論文
@zh-hk
2005年論文
@zh-mo
2005年論文
@zh-tw
2005年论文
@wuu
name
Neural tissue engineering: a self-organizing collagen guidance conduit
@ast
Neural tissue engineering: a self-organizing collagen guidance conduit
@en
Neural tissue engineering: a self-organizing collagen guidance conduit
@nl
type
label
Neural tissue engineering: a self-organizing collagen guidance conduit
@ast
Neural tissue engineering: a self-organizing collagen guidance conduit
@en
Neural tissue engineering: a self-organizing collagen guidance conduit
@nl
prefLabel
Neural tissue engineering: a self-organizing collagen guidance conduit
@ast
Neural tissue engineering: a self-organizing collagen guidance conduit
@en
Neural tissue engineering: a self-organizing collagen guidance conduit
@nl
P2093
P356
P1433
P1476
Neural tissue engineering: a self-organizing collagen guidance conduit
@en
P2093
Robert A Brown
Stephen C J Bunting
Susan M Hall
P304
P356
10.1089/TEN.2005.11.1611
P407
P577
2005-09-01T00:00:00Z