Hydrothermal fabrication of magnetic mesoporous carbonated hydroxyapatite microspheres: biocompatibility, osteoinductivity, drug delivery property and bactericidal property.

J Mater Chem B

The Education Ministry Key Lab of Resource Chemistry and Shanghai Key Laboratory of Rare Earth Functional Materials, Shanghai Normal University, Shanghai 200234, PR China.

Published: May 2014

AI Article Synopsis

  • Implant-associated infections in orthopedic surgery can be serious, highlighting the need for ideal bone filling materials that combine biocompatibility, anti-infection properties, and osteoinductivity.
  • Magnetic mesoporous carbonated hydroxyapatite microspheres (MHMs) are developed through a two-step process, resulting in a porous structure that allows for high drug loading efficiency (73-82%) and sustained release of gentamicin to prevent bacterial biofilm formation.
  • In vitro tests show that MHMs enhance the adhesion and proliferation of human bone marrow stromal cells, promote osteogenic differentiation, and exhibit excellent biocompatibility and bactericidal properties, making them promising for treating complex bone defects.

Article Abstract

Implant-associated infection is a serious problem in orthopaedic surgery. Ideal bone filling materials should not only possess excellent biocompatibility, but also have good anti-infection property and osteoinductivity. Herein, magnetic mesoporous carbonated hydroxyapatite microspheres (MHMs) have been fabricated according to the following stages: (i) preparation of CaCO/FeO microspheres; and (ii) hydrothermal transformation of magnetic calcium carbonate microspheres into MHMs. MHMs possess well-defined 3D nanostructures constructed by nanoplates as building blocks. The mesopores and macropores exist in and among the nanoplates, respectively. The porous structure makes the MHMs possess a great drug loading efficiency of 73-82%. Gentamicin-loaded MHMs display a sustained drug release property, and the controlled release of gentamicin can prevent biofilm formation against S. epidermidis. Moreover, the MHMs possess a magnetic property with a saturation magnetization strength of 3.98 emu g because FeO nanoparticles are dispersed in the microspheres. The in vitro cell tests indicate that the magnetic nanoparticles in the MHMs not only promote the cell adhesion and proliferation of human bone marrow stromal cells (hBMSCs), but also stimulate the osteogenic differentiation. MHMs exhibit excellent biocompatibility, osteoinductivity, drug delivery property and bactericidal property, so they have great application potential for the treatment of complicated bone defects.

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http://dx.doi.org/10.1039/c3tb21829eDOI Listing

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Hydrothermal fabrication of magnetic mesoporous carbonated hydroxyapatite microspheres: biocompatibility, osteoinductivity, drug delivery property and bactericidal property.

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Article Synopsis
  • Implant-associated infections in orthopedic surgery can be serious, highlighting the need for ideal bone filling materials that combine biocompatibility, anti-infection properties, and osteoinductivity.
  • Magnetic mesoporous carbonated hydroxyapatite microspheres (MHMs) are developed through a two-step process, resulting in a porous structure that allows for high drug loading efficiency (73-82%) and sustained release of gentamicin to prevent bacterial biofilm formation.
  • In vitro tests show that MHMs enhance the adhesion and proliferation of human bone marrow stromal cells, promote osteogenic differentiation, and exhibit excellent biocompatibility and bactericidal properties, making them promising for treating complex bone defects.
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