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Zastosuj identyfikator do podlinkowania lub zacytowania tej pozycji: http://hdl.handle.net/20.500.12128/20353
Tytuł: Antibacterial Optimization of Highly Deformed Titanium Alloys for Spinal Implants
Autor: Kasperkiewicz, Katarzyna
Major, Roman
Sypien, Anna
Kot, Marcin
Dyner, Marcin
Major, Łukasz
Byrski, Adam
Kopernik, Magdalena
Lackner, Juergen M.
Słowa kluczowe: multilayer coatings; antimicrobial materials; biomaterials; Ag nanoparticles; titanium; spinal implants; biofilm; SAOS2; cytotoxicity
Data wydania: 2021
Źródło: "Molecules" (2021), iss. 11, art. no. 3145, s. 1-17
Abstrakt: The goal of the work was to develop materials dedicated to spine surgery that minimized the potential for infection originating from the transfer of bacteria during long surgeries. The bacteria form biofilms, causing implant loosening, pain and finally, a risk of paralysis for patients. Our strategy focused both on improvement of antibacterial properties against bacteria adhesion and on wear and corrosion resistance of tools for spine surgery. Further, a ~35% decrease in implant and tool dimensions was expected by introducing ultrahigh-strength titanium alloys for less-invasive surgeries. The tested materials, in the form of thin, multi-layered coatings, showed nanocrystalline microstructures. Performed direct-cytotoxicity studies (including lactate dehydrogenase activity measurement) showed that there was a low probability of adverse effects on surrounding SAOS-2 (Homo sapiens bone osteosarcoma) cells. The microbiological studies (e.g., ISO 22196 contact tests) showed that implanting Ag nanoparticles into Ti/TixN coatings inhibited the growth of E. coli and S. aureus cells and reduced their adhesion to the material surface. These findings suggest that Ag-nanoparticles present in implant coatings may potentially minimize infection risk and lower inherent stress.
URI: http://hdl.handle.net/20.500.12128/20353
DOI: 10.3390/molecules26113145
ISSN: 1420-3049
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