Szczegóły publikacji

Opis bibliograficzny

Electrophoretic deposition of tetracycline hydrochloride loaded halloysite nanotubes chitosan/bioactive glass composite coatings for orthopedic implants / Namir S. Radda'a, Wolfgang H. Goldmann, Rainer Detsch, Judith A. Roether, Luis Cordero-Arias, Sannakaisa Virtanen, Tomasz MOSKALEWICZ, Aldo R. Boccaccini // Surface and Coatings Technology ; ISSN 0257-8972. — 2017 — vol. 327, s. 146–157. — Bibliogr. s. 156–157, Abstr.

Autorzy (8)

  • Radda'a Namir S.
  • Goldmann Wolfgang H.
  • Detsch Rainer
  • Roether Judith A.
  • Cordero-Arias Luis
  • Virtanen Sannakaisa
  • AGHMoskalewicz Tomasz
  • Boccaccini Aldo Roberto

Słowa kluczowe

stainless steelchitosanbioactive glasselectrophoretic depositionantibacterialtetracycline hydrochloridehalloysite nanotubes

Dane bibliometryczne

ID BaDAP109714
Data dodania do BaDAP2017-10-20
Tekst źródłowyURL
DOI10.1016/j.surfcoat.2017.07.048
Rok publikacji2017
Typ publikacjiartykuł w czasopiśmie
Otwarty dostęptak
Czasopismo/seriaSurface & Coatings Technology

Abstract

Electrophoretic deposition (EPD) was used to apply bioactive multifunctional composite coatings with antibacterial substances on stainless steel AISI 316L (SS). Tetracycline hydrochloride (TCN) loaded halloysite nanotubes were co-deposited with chitosan and bioactive glass (BG) particles to produce composite coatings. SEM/EDX, XRD, and FTIR analyses were performed to characterize the composition and microstructure of coatings. The release of tetracycline hydrochloride (TCN) in phosphate buffered saline (PBS) was investigated by UV spectrometry, and measurements indicated the release of around 54% of the drug within 14 days of immersion in PBS. Furthermore, to determine that the bioactivity of coatings had not been adversely influenced, simulated body fluid (SBF) bioactivity tests were performed. The formation of hydroxyl carbonate apatite on the surface of the coatings was confirmed after 3 days. The ability of coatings to prevent bacterial growth was tested using E. coli as gram-negative and S. aureus as gram-positive bacteria. Results showed improved bactericidal effect of TCN-containing coatings compared to non-TCN loaded coatings. The corresponding amount of TCN loaded in EPD coatings supported cell viability and proliferation of MG-63 cells for up to 3 days. Fluorescence images of MG-63 cells showed evidence of cell growth in islands on the coated surface. The surface roughness of the coating loaded with halloysite nanotubes supported cell adhesion and proliferation. Additionally, the wettability value of the coatings confirmed a moderately hydrophilic surface, which is suitable for bone regenerative applications. Improved corrosion resistance compared to the pure stainless steel (SS) substrate was confirmed. The adhesion between coatings and substrates was tested by the tape test, and the result showed sufficient adhesion of the coatings to be handled without detachment. In all, the new coating system has potential for applications in orthopedics. © 2017 Elsevier B.V.

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