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"Green-reduced" graphene oxide induces in vitro an enhanced biomimetic mineralization of polycaprolactone electrospun meshes.
Marrella, Alessandra; Tedeschi, Giacomo; Giannoni, Paolo; Lagazzo, Alberto; Sbrana, Francesca; Barberis, Fabrizio; Quarto, Rodolfo; Puglisi, Francesca; Scaglione, Silvia.
Afiliação
  • Marrella A; CNR - National Research Council of Italy, IEIIT Institute, Via De Marini 6, 16149 Genoa, Italy; Department of Experimental Medicine, University of Genoa, Largo L.B. Alberti 2, 16132 Genoa, Italy.
  • Tedeschi G; CNR - National Research Council of Italy, IEIIT Institute, Via De Marini 6, 16149 Genoa, Italy; Department of Informatics, Bioengineering, Robotics and Systems Engineering, University of Genova, Via all' Opera Pia 13, 16145 Genoa, Italy.
  • Giannoni P; Department of Experimental Medicine, University of Genoa, Largo L.B. Alberti 2, 16132 Genoa, Italy.
  • Lagazzo A; Department of Civil, Chemical and Environmental Engineering, University of Genoa, via all'Opera Pia 15, 16145 Genoa, Italy.
  • Sbrana F; Schaefer SEE srl, Via De Marini 6, 16149 Genoa, Italy.
  • Barberis F; Department of Civil, Chemical and Environmental Engineering, University of Genoa, via all'Opera Pia 15, 16145 Genoa, Italy.
  • Quarto R; Department of Experimental Medicine, University of Genoa, Largo L.B. Alberti 2, 16132 Genoa, Italy; IRCCS Ospedale Policlinico San Martino, Genoa, Italy.
  • Puglisi F; Department of Experimental Medicine, University of Genoa, Largo L.B. Alberti 2, 16132 Genoa, Italy.
  • Scaglione S; CNR - National Research Council of Italy, IEIIT Institute, Via De Marini 6, 16149 Genoa, Italy. Electronic address: silvia.scaglione@ieiit.cnr.it.
Mater Sci Eng C Mater Biol Appl ; 93: 1044-1053, 2018 Dec 01.
Article em En | MEDLINE | ID: mdl-30274035
A novel green method for graphene oxide (GO) reduction via ascorbic acid has been adopted to realize bio-friendly reduced graphene oxide (RGO)/polycaprolactone (PCL) nanofibrous meshes, as substrates for bone tissue engineering applications. PCL fibrous mats enriched with either RGO or GO (0.25 wt%) were fabricated to recapitulate the fibrillar structure of the bone extracellular matrix (ECM) and the effects of RGO incorporation on the structural proprieties, biomechanics and bioactivity of the nano-composites meshes were evaluated. RGO/PCL fibrous meshes displayed superior mechanical properties (i.e. Young's Modulus and ultimate tensile strength) besides supporting noticeably improved cell adhesion, spreading and proliferation of fibroblasts and osteoblast-like cell lines. Furthermore, RGO-based electrospun substrates enhanced in vitro calcium deposition in the ECM produced by osteoblast-like cells, which was paralleled, in human mesenchymal stem cells grown onto the same substrates, by an increased expression of the osteogenic markers mandatory for mineralization. In this respect, the capability of graphene-based materials to adsorb osteogenic factors cooperates synergically with the rougher surface of RGO/PCL-based materials, evidenced by AFM analysis, to ignite mineralization of the neodeposited matrix and to promote the osteogenic commitment of the cultured cell in the surrounding microenvironment.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Osteoblastos / Osteogênese / Calcificação Fisiológica / Diferenciação Celular / Engenharia Tecidual / Materiais Biomiméticos / Nanofibras / Fibroblastos / Grafite Limite: Animals Idioma: En Ano de publicação: 2018 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Osteoblastos / Osteogênese / Calcificação Fisiológica / Diferenciação Celular / Engenharia Tecidual / Materiais Biomiméticos / Nanofibras / Fibroblastos / Grafite Limite: Animals Idioma: En Ano de publicação: 2018 Tipo de documento: Article