Literature DB >> 25178038

Electrospinning growth factor releasing microspheres into fibrous scaffolds.

Tonya J Whitehead1, Harini G Sundararaghavan2.   

Abstract

This procedure describes a method to fabricate a multifaceted substrate to direct nerve cell growth. This system incorporates mechanical, topographical, adhesive and chemical signals. Mechanical properties are controlled by the type of material used to fabricate the electrospun fibers. In this protocol we use 30% methacrylated Hyaluronic Acid (HA), which has a tensile modulus of ~500 Pa, to produce a soft fibrous scaffold. Electrospinning on to a rotating mandrel produces aligned fibers to create a topographical cue. Adhesion is achieved by coating the scaffold with fibronectin. The primary challenge addressed herein is providing a chemical signal throughout the depth of the scaffold for extended periods. This procedure describes fabricating poly(lactic-co-glycolic acid) (PLGA) microspheres that contain Nerve Growth Factor (NGF) and directly impregnating the scaffold with these microspheres during the electrospinning process. Due to the harsh production environment, including high sheer forces and electrical charges, protein viability is measured after production. The system provides protein release for over 60 days and has been shown to promote primary nerve cell growth.

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Year:  2014        PMID: 25178038      PMCID: PMC4672960          DOI: 10.3791/51517

Source DB:  PubMed          Journal:  J Vis Exp        ISSN: 1940-087X            Impact factor:   1.355


  37 in total

Review 1.  Growth factor delivery systems and repair strategies for damaged peripheral nerves.

Authors:  Srinivas Madduri; Bruno Gander
Journal:  J Control Release       Date:  2011-12-08       Impact factor: 9.776

Review 2.  Electrospinning: applications in drug delivery and tissue engineering.

Authors:  Travis J Sill; Horst A von Recum
Journal:  Biomaterials       Date:  2008-02-20       Impact factor: 12.479

3.  Synthesis of highly porous crosslinked elastin hydrogels and their interaction with fibroblasts in vitro.

Authors:  Nasim Annabi; Suzanne M Mithieux; Elizabeth A Boughton; Andrew J Ruys; Anthony S Weiss; Fariba Dehghani
Journal:  Biomaterials       Date:  2009-06-04       Impact factor: 12.479

4.  Neurite growth in 3D collagen gels with gradients of mechanical properties.

Authors:  Harini G Sundararaghavan; Gary A Monteiro; Bonnie L Firestein; David I Shreiber
Journal:  Biotechnol Bioeng       Date:  2009-02-01       Impact factor: 4.530

Review 5.  Application of nanotubes and nanofibres in nerve repair. A review.

Authors:  Edyta Olakowska; Izabella Woszczycka-Korczyńska; Halina Jędrzejowska-Szypułka; Joanna Lewin-Kowalik
Journal:  Folia Neuropathol       Date:  2010       Impact factor: 2.038

6.  Rat sciatic nerve repair with a poly-lactic-co-glycolic acid scaffold and nerve growth factor releasing microspheres.

Authors:  Ralph de Boer; Andrew M Knight; Andreas Borntraeger; Marie-Noëlle Hébert-Blouin; Robert J Spinner; Martijn J A Malessy; Michael J Yaszemski; Anthony J Windebank
Journal:  Microsurgery       Date:  2011-03-11       Impact factor: 2.425

7.  Electrospun fibrous scaffolds with multiscale and photopatterned porosity.

Authors:  Harini G Sundararaghavan; Robert B Metter; Jason A Burdick
Journal:  Macromol Biosci       Date:  2010-03-10       Impact factor: 4.979

8.  A dual compartment diffusion chamber for studying axonal chemotaxis in 3D collagen.

Authors:  Zac Pujic; Geoffrey J Goodhill
Journal:  J Neurosci Methods       Date:  2013-02-20       Impact factor: 2.390

Review 9.  Designing ideal conduits for peripheral nerve repair.

Authors:  Godard C W de Ruiter; Martijn J A Malessy; Michael J Yaszemski; Anthony J Windebank; Robert J Spinner
Journal:  Neurosurg Focus       Date:  2009-02       Impact factor: 4.047

Review 10.  Neural tissue engineering: strategies for repair and regeneration.

Authors:  Christine E Schmidt; Jennie Baier Leach
Journal:  Annu Rev Biomed Eng       Date:  2003       Impact factor: 9.590

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