Literature DB >> 22779715

Benefits of spine stabilization with biodegradable scaffolds in spinal cord injured rats.

Nuno A Silva1, Rui A Sousa, Joana S Fraga, Marco Fontes, Hugo Leite-Almeida, Rui Cerqueira, Armando Almeida, Nuno Sousa, Rui L Reis, Antonio J Salgado.   

Abstract

Spine stabilization upon spinal cord injury (SCI) is a standard procedure in clinical practice, but rarely employed in experimental models. Moreover, the application of biodegradable biomaterials for this would come as an advantage as it would eliminate the presence of a nondegradable prosthesis within the vertebral bone. Therefore, in the present work, we propose the use of a new biodegradable device specifically developed for spine stabilization in a rat model of SCI. A 3D scaffold based on a blend of starch with polycaprolactone was implanted, replacing delaminated vertebra, in male Wistar rats with a T8-T9 spinal hemisection. The impact of spinal stabilization on the locomotor behavior was then evaluated for a period of 12 weeks. Locomotor evaluation--assessed by Basso, Beatie, and Bresnahan test; rotarod; and open field analysis--revealed that injured rats subjected to spine stabilization significantly improved their motor performance, including higher coordination and rearing activity when compared with SCI rats without stabilization. Histological analysis further revealed that the presence of the scaffolds not only stabilized the area, but also simultaneously prevented the infiltration of the injury site by connective tissue. Overall, these results reveal that SCI stabilization using a biodegradable scaffold at the vertebral bone level leads to an improvement of the motor deficits and is a relevant element for the successful treatment of SCI.

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Year:  2012        PMID: 22779715      PMCID: PMC3540933          DOI: 10.1089/ten.TEC.2012.0264

Source DB:  PubMed          Journal:  Tissue Eng Part C Methods        ISSN: 1937-3384            Impact factor:   3.056


  31 in total

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Authors:  Christopher D Pritchard; Jonathan R Slotkin; Dou Yu; Haining Dai; Matthew S Lawrence; Roderick T Bronson; Francis M Reynolds; Yang D Teng; Eric J Woodard; Robert S Langer
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Review 6.  Early versus late stabilization of the spine in the polytrauma patient.

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7.  Timing of surgical intervention in spinal trauma: what does the evidence indicate?

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9.  Development and characterization of a novel hybrid tissue engineering-based scaffold for spinal cord injury repair.

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10.  Rigid fixation of the spinal column improves scaffold alignment and prevents scoliosis in the transected rat spinal cord.

Authors:  Gemma E Rooney; Sandeep Vaishya; Syed Ameenuddin; Bradford L Currier; Terry K Schiefer; Andrew Knight; Bingkun Chen; Prasanna K Mishra; Robert J Spinner; Slobodan I Macura; Michael J Yaszemski; Anthony J Windebank
Journal:  Spine (Phila Pa 1976)       Date:  2008-11-15       Impact factor: 3.468

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3.  Peripheral mineralization of a 3D biodegradable tubular construct as a way to enhance guidance stabilization in spinal cord injury regeneration.

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5.  Levetiracetam treatment leads to functional recovery after thoracic or cervical injuries of the spinal cord.

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6.  Thermo-sensitive electroactive hydrogel combined with electrical stimulation for repair of spinal cord injury.

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Review 7.  Stem cells in canine spinal cord injury--promise for regenerative therapy in a large animal model of human disease.

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Review 8.  Advances in Tissue Engineering and Innovative Fabrication Techniques for 3-D-Structures: Translational Applications in Neurodegenerative Diseases.

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  8 in total

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