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Published on: April 11, 2020
Development of a Cerium-Doped Titanate/Polyphenol Nanostructured Coating for Titanium Implants: Enhancing
Marcel Jakubowski1, Mateusz Hegmit1, Maria Ratajczak2
1Institute of Chemical Technology and Engineering, Poznan University of Technology, ul. Berdychowo 4, 60-965 Poznań, Poland.
Abstract:
Titanium implants are widely used in orthopedics and dentistry; however, their long-term performance is challenged by bacterial colonization, lack of antioxidant activity, and mismatch in mechanical properties with bone tissue. In this study, we developed a hybrid nanostructured coating composed of cerium-doped titanate and a poly(tannic acid) layer, further functionalized with ciprofloxacin to enhance antibacterial properties. The coating was synthesized through sequential hydrothermal, ion-exchange, and polyphenol deposition steps, followed by antibiotic loading. Comprehensive characterization using SEM, AFM, XPS, FT-IR, and nanoindentation confirmed the successful formation of a uniform nanostructured coating with drug adsorption capability. Antioxidant activity studies demonstrated the material's ability to scavenge both free radicals and hydrogen peroxide. The obtained materials also exhibited the ability to neutralize intracellular reactive oxygen species (ROS). The scavenging of free radicals was facilitated by the polyphenolic component of the coating, whereas the decomposition of H2O2 was enabled by the presence of Ce3+ ions. Drug release experiments showed controlled ciprofloxacin release for up to 34 h, ensuring effective antibacterial action during the critical early stage after implantation. In vitro studies with osteoblasts confirmed the biocompatibility of the coatings, while antibacterial tests against Staphylococcus aureus and Pseudomonas aeruginosa revealed almost complete inhibition of bacterial growth. Importantly, the modified surface exhibited a Young's modulus closer to that of human bone, suggesting a potential reduction of the stress shielding effect. Overall, the developed cerium-titanate/polyphenol/antibiotic hybrid nanostructured coating represents a promising strategy to improve the performance and safety of titanium-based implants.

