| Literature DB >> 31751704 |
Bakhshali Massoumi1, Mojtaba Abbasian1, Rana Jahanban-Esfahlan2, Rahim Mohammad-Rezaei3, Balal Khalilzadeh4, Hadi Samadian5, Aram Rezaei5, Hossein Derakhshankhah6, Mehdi Jaymand7.
Abstract
A novel electrically conductive nanofibrous scaffold based on polyaniline-co-(polydopamine-grafted-poly(d,l-lactide)) [PANI-co-(PDA-g-PLA)] was fabricated using electrospinning technique and its physicochemical as well as biological characteristics toward bone tissue engineering (TE) were investigated extensively. In detail, PANI-co-PDA was synthesized via a one-step chemical oxidization approach. Then, d,l-lactaide monomer was grafted onto PDA segment using a ring opening polymerization (ROP) to afford PANI-co-(PDA-g-PLA) terpolymer. The successful synthesis of PANI-co-(PDA-g-PLA) terpolymer was confirmed using FTIR spectroscopy as well as TGA analysis. Finally, a solution of the synthesized terpolymer was electrospun to fabricate a conductive nanofibrous scaffold. Some physicochemical features such as mechanical, conductivity, electroactivity, hydrophobicity, and morphology as well as biological characteristics including biocompatibility, biodegradability, as well as enhancing the cells adhesion and proliferation were investigated. According to the above-mentioned experimental results, the fabricated electrospun nanofibers can be considered as a potential scaffold for TE application, mainly due to its proper physicochemical and biological properties.Entities:
Keywords: Bio-inspired; Biocompatibility; Conductive scaffold; Electrospinning; Tissue engineering
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Year: 2019 PMID: 31751704 DOI: 10.1016/j.ijbiomac.2019.10.086
Source DB: PubMed Journal: Int J Biol Macromol ISSN: 0141-8130 Impact factor: 6.953