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dc.contributor.authorJaymand, M
dc.contributor.authorSarvari, R
dc.contributor.authorAbbaszadeh, P
dc.contributor.authorMassoumi, B
dc.contributor.authorEskandani, M
dc.contributor.authorBeygi-Khosrowshahi, Y
dc.date.accessioned2018-08-26T05:37:30Z
dc.date.available2018-08-26T05:37:30Z
dc.date.issued2016
dc.identifier.urihttp://dspace.tbzmed.ac.ir:8080/xmlui/handle/123456789/39876
dc.description.abstractA novel electrically conductive scaffold containing hyperbranched aliphatic polyester (HAP), polythiophene (PTh), and poly(?-caprolactone) (PCL) for regenerative medicine application was succesfully fabricated via electrospinning technique. For this purpose, the HAP (G4; fourth generation) was synthesized via melt polycondensation reaction from tris(methylol)propane and 2,2-bis(methylol)propionic acid (bis-MPA). Afterward, the synthesized HAP was functionalized with 2-thiopheneacetic acid in the presence of N,N-dicyclohexyl carbodiimide, and N-hydroxysuccinimide as coupling agent and catalyst, respectively, to afford a thiophene-functionalized G4 macromonomer. This macromonomer was subsequently used in chemical oxidation copolymerization with thiophene monomer to produce a star-shaped PTh with G4 core (G4-PTh). The solution of the G4-PTh, and PCL was electrospun to produce uniform, conductive, and biocompatible nanofibers. The conductivity, hydrophilicity, and mechanical properties of these nanofibers were investigated. The biocompatibility of the electrospun nanofibers were evaluated by assessing the adhesion and proliferation of mouse osteoblast MC3T3-E1 cell line and in vitro degradability to demonstrate their potential uses as a tissue engineering scaffold. é 2016 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 104A: 2673-2684, 2016.
dc.language.isoEnglish
dc.relation.ispartofJournal of biomedical materials research. Part A
dc.subjectAnimals
dc.subjectBiocompatible Materials
dc.subjectCell Line
dc.subjectCell Survival
dc.subjectElectric Conductivity
dc.subjectMaterials Testing
dc.subjectMice
dc.subjectNanofibers
dc.subjectOsteoblasts
dc.subjectPolyesters
dc.subjectPolymers
dc.subjectThiophenes
dc.subjectTissue Engineering
dc.subjectTissue Scaffolds
dc.titleDevelopment of novel electrically conductive scaffold based on hyperbranched polyester and polythiophene for tissue engineering applications.
dc.typearticle
dc.citation.volume104
dc.citation.issue11
dc.citation.spage2673
dc.citation.epage84
dc.citation.indexPubmed
dc.identifier.DOIhttps://doi.org/10.1002/jbm.a.35811


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