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Zn-substituted Mg2SiO4 nanoparticles-incorporated PCL-silk fibroin composite scaffold: A multifunctional platform towards bone tissue regeneration

Academic Article
Publication Date:
2021
abstract:
Electrospun porous bone scaffolds are known to imitate the extracellular matrix very well and provide an environment through which the tissue formation is enhanced. Although polymeric scaffolds have a great potential in bone tissue regeneration, their weak bioactivity (bone bonding ability) and mechanical properties have left room for improvement. Therefore, the present study focused on the developing a ternary multifunctional platform composed of polycaprolactone (PCL)/silk fibroin (SF)/Zn-substituted MgSiO nanoparticles for bone tissue regeneration. This study is composed of two connected sections including synthesis and characterization of MgZnSiO, x = 0, 0.5, 1, 1.5, 2 through surfactant-assisted sol-gel technique followed by incorporation of the nanoparticles into PCL/SF hybrid scaffold via electrospinning technique. The weight ratios of polymers and ceramic nanoparticles were optimized to reach desirable textural--porosity, pore size, and fiber diameter--and mechanical properties. Having optimized the ternary scaffold, it was then undergone different physical, chemical, and biological tests in vitro. A precise comparison study between the ternary (PCL/SF/ceramic nanoparticles), binary (PCL/SF), and pure PCL was made to shed light on the effect of each composition on the applicability of ternary scaffold. The overall results confirmed that the MgZnSiO nanoparticles-incorporated PCL/SF scaffold with fluorescence property was the one yielding the highest Young's modulus and desirable textural properties. The ternary scaffold showed improved biological properties making it a promising candidate for further studies towards bone tissue regeneration.
Iris type:
01.01 Articolo in rivista
Keywords:
Polycaprolactone; Silk fibroin; bone scaffolds; Ion substitution
List of contributors:
Bigham, Ashkan; Ambrosio, Luigi; Raucci, MARIA GRAZIA
Authors of the University:
AMBROSIO LUIGI
RAUCCI MARIA GRAZIA
Handle:
https://iris.cnr.it/handle/20.500.14243/433820
Published in:
MATERIALS SCIENCE AND ENGINEERING. C, BIOMIMETIC MATERIALS, SENSORS AND SYSTEMS
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http://www.scopus.com/record/display.url?eid=2-s2.0-85107878590&origin=inward
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