Magnetic poly(ε-caprolactone)/iron-doped hydroxyapatite nanocomposite substrates for advanced bone tissue engineering

Author:

Gloria A.1,Russo T.1,D'Amora U.1,Zeppetelli S.1,D'Alessandro T.2,Sandri M.2,Bañobre-López M.3,Piñeiro-Redondo Y.4,Uhlarz M.5,Tampieri A.2,Rivas J.34,Herrmannsdörfer T.5,Dediu V. A.6,Ambrosio L.1,De Santis R.1

Affiliation:

1. Institute of Composite and Biomedical Materials, National Research Council, Naples 80125, Italy

2. Institute of Science and Technology for Ceramics, National Research Council, Faenza 48018, Ravenna, Italy

3. International Iberian Nanotechnology Laboratory (INL), Braga 4715-330, Portugal

4. Applied Physics Department, University of Santiago de Compostela, Santiago de Compostela 15782, Spain

5. Helmholtz-Zentrum Dresden-Rossendorf e.V. (HZDR), Institut Hochfeld-Magnetlabor Dresden, Dresden 01328, Germany

6. Institute for Nanostructured Materials, National Research Council, Bologna 40129, Italy

Abstract

In biomedicine, magnetic nanoparticles provide some attractive possibilities because they possess peculiar physical properties that permit their use in a wide range of applications. The concept of magnetic guidance basically spans from drug delivery and hyperthermia treatment of tumours, to tissue engineering, such as magneto-mechanical stimulation/activation of cell constructs and mechanosensitive ion channels, magnetic cell-seeding procedures, and controlled cell proliferation and differentiation. Accordingly, the aim of this study was to develop fully biodegradable and magnetic nanocomposite substrates for bone tissue engineering by embedding iron-doped hydroxyapatite (FeHA) nanoparticles in a poly(ε-caprolactone) (PCL) matrix. X-ray diffraction analyses enabled the demonstration that the phase composition and crystallinity of the magnetic FeHA were not affected by the process used to develop the nanocomposite substrates. The mechanical characterization performed through small punch tests has evidenced that inclusion of 10 per cent by weight of FeHA would represent an effective reinforcement. The inclusion of nanoparticles also improves the hydrophilicity of the substrates as evidenced by the lower values of water contact angle in comparison with those of neat PCL. The results from magnetic measurements confirmed the superparamagnetic character of the nanocomposite substrates, indicated by a very low coercive field, a saturation magnetization strictly proportional to the FeHA content and a strong history dependence in temperature sweeps. Regarding the biological performances, confocal laser scanning microscopy and AlamarBlue assay have provided qualitative and quantitative information on human mesenchymal stem cell adhesion and viability/proliferation, respectively, whereas the obtained ALP/DNA values have shown the ability of the nanocomposite substrates to support osteogenic differentiation.

Publisher

The Royal Society

Subject

Biomedical Engineering,Biochemistry,Biomaterials,Bioengineering,Biophysics,Biotechnology

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