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Microspheres of alginate encapsulated minocycline-loaded nanocrystalline carbonated hydroxyapatite: therapeutic potential and effects on bone regeneration.
Calasans-Maia, Mônica Diuana; Barboza Junior, Carlos Alberto Brazil; Soriano-Souza, Carlos Alberto; Alves, Adriana Terezinha Neves Novellino; Uzeda, Marcelo Jose de Pinheiro; Martinez-Zelaya, Victor R; Mavropoulos, Elena; Rocha Leão, Maria Helena; de Santana, Ronaldo Barcellos; Granjeiro, Jose Mauro; Rossi, Alexandre Malta.
Affiliation
  • Calasans-Maia MD; Clinical Research in Dentistry Laboratory, School of Dentistry, Federal Fluminense University, Niterói, Rio de Janeiro, Brazil.
  • Barboza Junior CAB; Department of Periodontology, School of Dentistry, Federal Fluminense University, Niterói, Rio de Janeiro, Brazil.
  • Soriano-Souza CA; Department of Condensed Matter, Applied Physics and Nanoscience, Brazilian Center for Research in Physics, Rio de Janeiro, Brazil.
  • Alves ATNN; Department of Stomatology. School of Dentistry, Federal Fluminense University, Niterói, Rio de Janeiro, Brazil.
  • Uzeda MJP; Clinical Research in Dentistry Laboratory, School of Dentistry, Federal Fluminense University, Niterói, Rio de Janeiro, Brazil.
  • Martinez-Zelaya VR; Department of Condensed Matter, Applied Physics and Nanoscience, Brazilian Center for Research in Physics, Rio de Janeiro, Brazil.
  • Mavropoulos E; Department of Condensed Matter, Applied Physics and Nanoscience, Brazilian Center for Research in Physics, Rio de Janeiro, Brazil.
  • Rocha Leão MH; Department of Biochemical Engineering, School of Chemistry, Federal University of Rio de Janeiro, Rio de Janeiro, Brazil.
  • de Santana RB; Department of Periodontology, School of Dentistry, Federal Fluminense University, Niterói, Rio de Janeiro, Brazil.
  • Granjeiro JM; Clinical Research in Dentistry Laboratory, School of Dentistry, Federal Fluminense University, Niterói, Rio de Janeiro, Brazil.
  • Rossi AM; Department of Condensed Matter, Applied Physics and Nanoscience, Brazilian Center for Research in Physics, Rio de Janeiro, Brazil.
Int J Nanomedicine ; 14: 4559-4571, 2019.
Article in En | MEDLINE | ID: mdl-31417258
ABSTRACT
Background and

objective:

Tetracycline and its derivatives, combined with calcium phosphates, have been proposed as a delivery system to control inflammatory processes and chronic infections. The objective of this study was to evaluate the microspheres of alginate encapsulated minocycline-loaded nanocrystalline carbonated hydroxyapatite (CHAMINO) as a biomimetic device to carry out target-controlled drug delivery for alveolar bone repair.

Methods:

CHAMINO microspheres were implanted in a rat central incisor socket after 7 and 42 days. New bone was formed in both groups between 7 and 42 days of implantation. However, the bone growth was significantly higher for the CHAMINO microspheres.

Results:

The minocycline (MINO) loading capacity of the nanocrystaline carbonated hydroxyapatite (CHA) nanoparticles was 25.1±2.2 µg MINO/mg CHA for adsorption over 24 hrs. The alginate microspheres containing minocycline-loaded CHA were biologically active and inhibited the Enterococcus faecalis culture growth for up to seven days of the MINO release. An osteoblastic cell viability assay based on the resazurin reduction was conducted after the cells were exposed to the CHAMINO powder and CHAMINO microspheres. Thus, it was found that the alginate extracts encapsulated the minocycline-loaded CHA microspheres and did not affect the osteoblastic cell viability, while the minocycline-doped CHA powder reduced the cell viability by 90%.

Conclusion:

This study concluded that the alginate microspheres encapsulating the minocycline-loaded nanocrystalline carbonated hydroxyapatite exhibited combined antibacterial activity against Enterococcus faecalis with cytocompatibility and osteoconduction properties. The significant improvement in the new bone formation after 42 days of implantation suggests that the CHAMINO microsphere has potential in clinical applications of bone regeneration.
Subject(s)
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Bone Regeneration / Carbonates / Durapatite / Alginates / Nanoparticles / Microspheres / Minocycline Limits: Animals / Humans / Male Language: En Journal: Int J Nanomedicine Year: 2019 Document type: Article Affiliation country: Brazil Publication country: NEW ZEALAND / NOVA ZELÂNDIA / NUEVA ZELANDA / NZ

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Bone Regeneration / Carbonates / Durapatite / Alginates / Nanoparticles / Microspheres / Minocycline Limits: Animals / Humans / Male Language: En Journal: Int J Nanomedicine Year: 2019 Document type: Article Affiliation country: Brazil Publication country: NEW ZEALAND / NOVA ZELÂNDIA / NUEVA ZELANDA / NZ