Long-lasting significant functional improvement in chronic severe spinal cord injury following scar resection and polyethylene glycol implantation
about
Drug delivery, cell-based therapies, and tissue engineering approaches for spinal cord injuryBiochemical Monitoring of Spinal Cord Injury by FT-IR Spectroscopy--Effects of Therapeutic Alginate Implant in Rat ModelsPEG-assisted reconstruction of the cervical spinal cord in rats: effects on motor conduction at 1 hBiomaterials for Local, Controlled Drug Delivery to the Injured Spinal Cord.Spinal cord injury - there is not just one way of treating it.From demyelination to remyelination: the road toward therapies for spinal cord injury.Intravenous immune-modifying nanoparticles as a therapy for spinal cord injury in mice.Polyethylene glycol as a promising synthetic material for repair of spinal cord injury.Anatomical mechanism of spontaneous recovery in regions caudal to thoracic spinal cord injury lesions in rats.Foreign Body Response to Intracortical Microelectrodes Is Not Altered with Dip-Coating of Polyethylene Glycol (PEG).Bridging large gaps in the injured spinal cord: mechanical and biochemical tissue adaptation.Houston, GEMINI has landed: Spinal cord fusion achieved.The "Gemini" spinal cord fusion protocol: Reloaded.Biomaterial strategies for limiting the impact of secondary events following spinal cord injury.Non-functionalized soft alginate hydrogel promotes locomotor recovery after spinal cord injury in a rat hemimyelonectomy model.Transplanting the Body: Preliminary Ethical Considerations.Is it time to perform the first human head transplant? Comment on the CSA (cephalosomatic anastomosis) paper by Ren, Canavero, and colleagues.Experimental Strategies to Bridge Large Tissue Gaps in the Injured Spinal Cord after Acute and Chronic Lesion.Is it time to perform the first human head transplant? Comment on the CSA (CephaloSomatic Ansatomisis) paper by Ren, Canavero, and colleagues.Hierarchically aligned fibrin nanofiber hydrogel accelerated axonal regrowth and locomotor function recovery in rat spinal cord injury.Cellular-scale probes enable stable chronic subsecond monitoring of dopamine neurochemicals in a rodent modelLabel-free multiphoton microscopy reveals relevant tissue changes induced by alginate hydrogel implantation in rat spinal cord injuryModified Methacrylate Hydrogels Improve Tissue Repair after Spinal Cord Injury
P2860
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P2860
Long-lasting significant functional improvement in chronic severe spinal cord injury following scar resection and polyethylene glycol implantation
description
2014 nî lūn-bûn
@nan
2014 թուականի Յուլիսին հրատարակուած գիտական յօդուած
@hyw
2014 թվականի հուլիսին հրատարակված գիտական հոդված
@hy
2014年の論文
@ja
2014年論文
@yue
2014年論文
@zh-hant
2014年論文
@zh-hk
2014年論文
@zh-mo
2014年論文
@zh-tw
2014年论文
@wuu
name
Long-lasting significant funct ...... lyethylene glycol implantation
@ast
Long-lasting significant funct ...... lyethylene glycol implantation
@en
Long-lasting significant funct ...... lyethylene glycol implantation
@nl
type
label
Long-lasting significant funct ...... lyethylene glycol implantation
@ast
Long-lasting significant funct ...... lyethylene glycol implantation
@en
Long-lasting significant funct ...... lyethylene glycol implantation
@nl
prefLabel
Long-lasting significant funct ...... lyethylene glycol implantation
@ast
Long-lasting significant funct ...... lyethylene glycol implantation
@en
Long-lasting significant funct ...... lyethylene glycol implantation
@nl
P2093
P3181
P1476
Long-lasting significant funct ...... lyethylene glycol implantation
@en
P2093
Christine Schmitz
Hans Werner Müller
Heinrich Blazyca
Nicole Brazda
Silja Heller
Veronica Estrada
P304
P3181
P356
10.1016/J.NBD.2014.03.018
P407
P577
2014-04-05T00:00:00Z