4.6 Article

Synthesis and evaluation of poly(propylene fumarate)-grafted graphene oxide as nanofiller for porous scaffolds

Journal

JOURNAL OF MATERIALS CHEMISTRY B
Volume -, Issue -, Pages -

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d3tb01232h

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This study aims to obtain porous scaffolds with improved mechanical properties and biocompatibility by using polymer-modified graphene oxide (GO@PPF) in poly(propylene fumarate)/N-vinyl pyrrolidone(PPF/NVP) networks. The GO@PPF nanofiller was synthesized through a facile and convenient surface esterification reaction, and its successful functionalization was demonstrated. The incorporation of GO@PPF in the polymer matrix leads to denser and more homogenous networks, enhancing the mechanical properties, and the mineralized PPF/NVP/GO@PPF scaffolds showed good biocompatibility with murine pre-osteoblasts in terms of cell viability and proliferation.
In an effort to obtain porous scaffolds with improved mechanical properties and biocompatibility, the current study discusses nanocomposite materials based on poly(propylene fumarate)/N-vinyl pyrrolidone(PPF/NVP) networks reinforced with polymer-modified graphene oxide (GO@PPF). The GO@PPF nanofiller was synthesized through a facile and convenient surface esterification reaction, and the successful functionalization was demonstrated by complementary techniques such as FT-IR, XPS, TGA and TEM. The PPF/NVP/GO@PPF porous scaffolds obtained using NaCl as a porogen were further characterized in terms of morphology, mechanical properties, sol fraction, and in vitro degradability. SEM and nanoCT examinations of NaCl-leached samples revealed networks of interconnected pores, fairly uniform in size and shape. We show that the incorporation of GO@PPF in the polymer matrix leads to a significant enhancement in the mechanical properties, which we attribute to the formation of denser and more homogenous networks, as suggested by a decreased sol fraction for the scaffolds containing a higher amount of GO@PPF. Moreover, the surface of mineralized PPF/NVP/GO@PPG scaffolds is uniformly covered in hydroxyapatite-like crystals having a morphology and Ca/P ratio similar to bone tissue. Furthermore, the preliminary biocompatibility assessment revealed a good interaction between PPF/PVP/GO@PPF scaffolds and murine pre-osteoblasts in terms of cell viability and proliferation.

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