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In vitro biological and antimicrobial properties of chitosan-based bioceramic coatings on zirconium

Salim Levent Aktuğ, Salih Durdu, Selin Kalkan, Kültiğin Çavuşoğlu, Metin Usta

2021Scientific Reports22 citationsDOIOpen Access PDF

Abstract

Abstract Ca-based porous and rough bioceramic surfaces were coated onto zirconium by micro-arc oxidation (MAO). Subsequently, the MAO-coated zirconium surfaces were covered with an antimicrobial chitosan layer via the dip coating method to develop an antimicrobial, bioactive, and biocompatible composite biopolymer and bioceramic layer for implant applications. Cubic ZrO 2 , metastable Ca 0.15 Zr 0.85 O 1.85 , and Ca 3 (PO 4 ) 2 were detected on the MAO surface by powder-XRD. The existence of chitosan on the MAO-coated Zr surfaces was verified by FTIR. The micropores and thermal cracks on the bioceramic MAO surface were sealed using a chitosan coating, where the MAO surface was porous and rough. All elements such as Zr, O, Ca, P, and C were homogenously distributed across both surfaces. Moreover, both surfaces indicated hydrophobic properties. However, the contact angle of the MAO surface was lower than that of the chitosan-based MAO surface. In vitro bioactivity on both surfaces was investigated via XRD, SEM, and EDX analyses post-immersion in simulated body fluid (SBF) for 14 days. In vitro bioactivity was significantly enhanced on the chitosan-based MAO surface with respect to the MAO surface. In vitro microbial adhesions on the chitosan-based MAO surfaces were lower than the MAO surfaces for Staphylococcus aureus and Escherichia coli .

Topics & Concepts

ChitosanBioceramicMaterials scienceSimulated body fluidContact angleZirconiumBiopolymerCoatingApatiteNuclear chemistryChemical engineeringComposite materialScanning electron microscopeChemistryPolymerMetallurgyEngineeringBone Tissue Engineering MaterialsPolymer Surface Interaction StudiesOrthopaedic implants and arthroplasty
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