P(3HB) Based Magnetic Nanocomposites: Smart Materials for Bone Tissue Engineering

Author:

Akaraonye Everest1,Filip Jan2,Safarikova Mirka3,Salih Vehid45,Keshavarz Tajalli1,Knowles Jonathan C.46,Roy Ipsita1ORCID

Affiliation:

1. Applied Biotechnology Research Group, Department of Life Sciences, Faculty of Life Sciences, University of Westminster, London W1W 6UW, UK

2. Regional Centre of Advanced Technologies and Materials, Palacký University, Šlechtitelů 27, 78371 Olomouc, Czech Republic

3. Biology Centre, AS CR ISB, Department of Nanobiotechnology, Na Sadkach 7, 370 05 Ceske Budejovice, Czech Republic

4. Department of Biomaterials and Tissue Engineering, Eastman Dental Institute, University College London, London, WC1X 8LD, UK

5. Plymouth University Peninsula Schools of Medicine and Dentistry, Portland Square, Drake Circus, Plymouth, Devon PL4 8AA, UK

6. WCU Research Centre of Nanobiomedical Science, Dankook University, San No. 29, Anseo-dong, Dongnam-gu, Cheonan-si, Chungnam, Republic of Korea

Abstract

The objective of this work was to investigate the potential application of Poly(3-hydroxybutyrate)/magnetic nanoparticles, P(3HB)/MNP, and Poly(3-hydroxybutyrate)/ferrofluid (P(3HB)/FF) nanocomposites as a smart material for bone tissue repair. The composite films, produced using conventional solvent casting technique, exhibited a good uniform dispersion of magnetic nanoparticles and ferrofluid and their aggregates within the P(3HB) matrix. The result of the static test performed on the samples showed that there was a 277% and 327% increase in Young’s modulus of the composite due to the incorporation of MNP and ferrofluid, respectively. The storage modulus of the P(3HB)MNP and P(3HB)/FF was found to have increased to 186% and 103%, respectively, when compared to neat P(3HB). The introduction of MNP and ferrofluid positively increased the crystallinity of the composite scaffolds which has been suggested to be useful in bone regeneration. The total amount of protein absorbed by the P(3HB)/MNP and P(3HB)/FF composite scaffolds also increased by 91% and 83%, respectively, with respect to neat P(3HB). Cell attachment and proliferation were found to be optimal on the P(HB)/MNP and P(3HB)/FF composites compared to the tissue culture plate (TCP) and neat P(3HB), indicating a highly compatible surface for the adhesion and proliferation of the MG-63 cells. Overall, this work confirmed the potential of using P(3HB)/MNP and P(3HB)/FF composite scaffolds in bone tissue engineering.

Funder

Ministry of Education, Youth and Sports of the Czech Republic

Publisher

Hindawi Limited

Subject

General Materials Science

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