Issue 10, 2013

Magnetic nanocomposite of hydroxyapatite ultrathin nanosheets/Fe3O4nanoparticles: microwave-assisted rapid synthesis and application in pH-responsive drug release

Abstract

Synthetic hydroxyapatite (HAP) nanostructured materials have been considered as promising biomaterials due to their excellent biocompatibility. In this study, a magnetic nanocomposite consisting of HAP ultrathin nanosheets (UNs) and Fe3O4 magnetic nanoparticles (MNs) has been prepared using a rapid microwave-assisted route. The Fe3O4 magnetic nanoparticles are hybridized with HAP ultrathin nanosheets, which self-assemble to form a hierarchically nanostructured magnetic nanocomposite (HAPUN/MNs). The as-prepared HAPUN/MNs nanocomposite is characterized and investigated as a drug nanocarrier using hemoglobin (Hb) and docetaxel (Dtxl) as model drugs. The adsorption amount of Hb on the HAPUN/MNs nanocomposite increases with the increasing initial Hb concentration. The release of Hb from the HAPUN/MNs nanocomposite is essentially governed by a diffusion process. The HAPUN/MNs nanocomposite has a good sustained release profile for Dtxl, and shows good pH-responsive drug release properties, which can be explained by the gradual dissolution of HAP in a low pH value environment. The HAPUN/MNs nanocomposite has a high biocompatibility and also a high in vitro anticancer effect after loading Dtxl.

Graphical abstract: Magnetic nanocomposite of hydroxyapatite ultrathin nanosheets/Fe3O4 nanoparticles: microwave-assisted rapid synthesis and application in pH-responsive drug release

Article information

Article type
Paper
Submitted
05 Apr 2013
Accepted
28 May 2013
First published
15 Jul 2013

Biomater. Sci., 2013,1, 1074-1081

Magnetic nanocomposite of hydroxyapatite ultrathin nanosheets/Fe3O4 nanoparticles: microwave-assisted rapid synthesis and application in pH-responsive drug release

F. Chen, C. Li, Y. Zhu, X. Zhao, B. Lu and J. Wu, Biomater. Sci., 2013, 1, 1074 DOI: 10.1039/C3BM60086F

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