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dc.contributor.authorHatamzadeh, M
dc.contributor.authorNajafi-Moghadam, P
dc.contributor.authorBeygi-Khosrowshahi, Y
dc.contributor.authorMassoumi, B
dc.contributor.authorJaymand, M
dc.date.accessioned2018-08-26T08:53:34Z
dc.date.available2018-08-26T08:53:34Z
dc.date.issued2016
dc.identifier.urihttp://dspace.tbzmed.ac.ir:8080/xmlui/handle/123456789/53977
dc.description.abstractThe purpose of this study was to design and develop electrically conductive nanofibrous scaffolds based on poly(ethylene glycol)s-modified polyaniline [PEGs-b-(PANI)4] and poly(?-caprolactone) (PCL) for tissue engineering applications. For this purpose, two AB4 miktoarm star-shaped conductive PEG2000-b-(PANI)4 and PEG6000-b-(PANI)4 were synthesized through a multistep process started from diepoxylated PEGs, and subsequently hydrolyzed to PEGs ends-caped tetraol [PEGs(OH)4]. Afterward, phenylamine-functionalized PEGs AB4 macromonomers (PhAPEGsM) were synthesized by functionalization of PEGs(OH)4 with p-anthranilic acid. The macromonomers obtained were subsequently used in chemical oxidation copolymerization with aniline monomer to produce AB4 miktoarm H-shaped conductive polymers. The solutions of the synthesized polymers and PCL were electrospun to produce uniform, conductive, and biocompatible nanofibers. Some physicochemical properties of these nanofibers such as morphologies, electrical conductivities, hydrophilicities, and mechanical properties were investigated. The biocompatibilities of the fabricated nanofibers were confirmed by assessing the adhesion, viability and proliferation of mouse fibroblast L929 cells using SEM and MTT assay, respectively. As the results, of the conductivities, biocompatibilities, hydrophilicities, and mechanical properties assessments it is demonstrated that these nanofibers are potentially suitable as scaffolds for use in tissue engineering that requires electroactivity. © The Royal Society of Chemistry.
dc.language.isoEnglish
dc.relation.ispartofRSC Advances
dc.subjectBiocompatibility
dc.subjectBiomechanics
dc.subjectCell culture
dc.subjectEthylene glycol
dc.subjectHydrophilicity
dc.subjectMechanical properties
dc.subjectMonomers
dc.subjectNanofibers
dc.subjectPolyaniline
dc.subjectPolyethylene glycols
dc.subjectPolymers
dc.subjectPolyols
dc.subjectScaffolds (biology)
dc.subjectTissue
dc.subjectConductive Polymer
dc.subjectElectrical conductivity
dc.subjectElectrically conductive
dc.subjectNanofibrous scaffolds
dc.subjectPhysicochemical property
dc.subjectPoly (epsiloncaprolactone)
dc.subjectSynthesized polymers
dc.subjectTissue engineering applications
dc.subjectTissue engineering
dc.titleElectrically conductive nanofibrous scaffolds based on poly(ethylene glycol)s-modified polyaniline and poly(?-caprolactone) for tissue engineering applications
dc.typeArticle
dc.citation.volume6
dc.citation.issue107
dc.citation.spage105371
dc.citation.epage105386
dc.citation.indexScopus
dc.identifier.DOIhttps://doi.org/10.1039/c6ra22280c


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