Optimized electro- and wet-spinning techniques for the production of polymeric fibrous scaffolds loaded with bisphosphonate and hydroxyapatite.

Dario Puppi, Anna Maria Piras, Federica Chiellini, Emo Chiellini, Albino Martins, Isabel B Leonor, Nuno Neves, Rui Reis

Journal: Journal of tissue engineering and regenerative medicine 2011;5(4):253-63

PMID: 20661867

Abstract

This research activity was aimed at the development of composite bioactive scaffolds made of biodegradable three-arm branched-star poly(ε-caprolactone) (*PCL), hydroxyapatite nanoparticles (HNPs) and clodronate (CD), a bisphosphonate that has demonstrated efficacy in the treatment of various bone diseases and as an anti-inflammatory drug. During the experimental work, the processing conditions for the fabrication of fibrous meshes, by either electrospinning or wet-spinning, were optimized. Stemming from a previous research activity on electrospinning of *PCL, *PCL/HNPs 3D meshes were developed, evaluating the influence of fabrication parameters on the fibres' morphology. By exploiting the binding affinity of bisphosphonates for hydroxyapatite, a methodology was set up for obtaining a physical linkage between CD and HNPs, with the aim of having a dual bioactive system loaded into *PCL fibrous mats. Fibres loaded with either CD or CD-HNP particles were thus produced and analysed by scanning electron microscopy for their morphology and by energy dispersive X-ray spectroscopy for their elemental composition.

Copyright © 2010 John Wiley & Sons, Ltd.

Address: Laboratory of Bioactive Polymeric Materials for Biomedical and Environmental Applications, Department of Chemistry and Industrial Chemistry, University of Pisa, Italy.

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