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Effect of gentamicin-loaded calcium phosphate coating and polymeric coating on the degradation properties of biodegradable iron-based biomaterials

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dc.title Effect of gentamicin-loaded calcium phosphate coating and polymeric coating on the degradation properties of biodegradable iron-based biomaterials en
dc.contributor.author Petráková, Martina
dc.contributor.author Gorejová, Radka
dc.contributor.author Shepa, Jana
dc.contributor.author Macko, Ján
dc.contributor.author Kupková, Miriam
dc.contributor.author Petruš, Ondrej
dc.contributor.author Baláž, Matej
dc.contributor.author Sopčák, Tibor
dc.contributor.author Mičušík, Matej
dc.contributor.author Kožár, Martin
dc.contributor.author Hajdučková, Vanda
dc.contributor.author Oriňaková, Renáta
dc.relation.ispartof ACS Omega
dc.identifier.issn 2470-1343 Scopus Sources, Sherpa/RoMEO, JCR
dc.date.issued 2024
utb.relation.volume 9
utb.relation.issue 49
dc.citation.spage 48299
dc.citation.epage 48314
dc.type article
dc.language.iso en
dc.publisher American Chemical Society
dc.identifier.doi 10.1021/acsomega.4c06192
dc.relation.uri https://pubs.acs.org/doi/10.1021/acsomega.4c06192
dc.description.abstract In the past decades, iron has been one of the intensively studied biodegradable metals due to its suitable mechanical properties, but it suffers from slow degradation in a physiological environment and low bioactivity. In this work, the beneficial properties of ceramic and polymer coatings were merged to enhance the corrosion properties and biological compatibility of Fe-based biomaterials. A new bilayer coating for Fe-based biomaterials that speeds up degradation while offering controlled, localized drug release to prevent infections was prepared. In addition, bioactive coatings with an incorporated antibiotic (gentamicin, Ge) were produced to introduce antibacterial properties into the prepared biomaterials and thus increase their bioactivity. The calcium phosphate (CaP) coating layer as well as a bioactive coating layer of CaP doped with gentamicin was electrochemically deposited onto an iron substrate. A layer of poly(ethylene glycol) was subsequently applied to the selection of prepared specimens to create a bilayer ceramic/polymer coating. Electrochemical and immersion corrosion tests revealed that the application of a bilayer coating allowed achieving the desired acceleration of degradation, while the application of only a ceramic coating led to a reduction in the corrosion rate. A slight increase in the corrosion rate was observed for samples with bioactive drug-containing coatings compared to samples with drug-free coatings. Higher viability of human fibroblastic cells cultured in the extracts of the tested samples was noted for samples with a bilayer coating compared to a ceramic coating. The addition of gentamicin in the bioactive coatings had no significant effect on the viability value. Antibacterial tests proved the antibacterial activity of samples with a gentamicin-loaded coating layer against Escherichia coli and Staphylococcus aureus strains. A detailed study of the release of gentamicin from the prepared coatings revealed a different mechanism of drug release from the ceramic and the ceramic/polymer coating. Furthermore, it was found that the drug was released more slowly and uniformly from the bilayer coating. It is therefore possible to adjust the amount and duration of drug release from the bioactive coating by the thickness of the upper polymer layer. Incorporation of an antibiotic in a combined ceramic/polymer coating enabled the creation of a high-performance bioactive coating for Fe bone implants with the possibility to release a drug in the vicinity of the implant in a controlled manner to address the needs of the patient. en
utb.faculty University Institute
dc.identifier.uri http://hdl.handle.net/10563/1012274
utb.identifier.obdid 43885889
utb.identifier.scopus 2-s2.0-85210373598
utb.identifier.wok 001364970800001
utb.identifier.pubmed 39676921
utb.source j-scopus
dc.date.accessioned 2025-01-30T10:36:18Z
dc.date.available 2025-01-30T10:36:18Z
dc.description.sponsorship Agentúra na Podporu Výskumu a Vývoja, APVV; Faculty of Natural Sciences UPJŠ in Košice, (vvgs-2023-2518); International Visegrad Fund, IVF, (22310096); European Commission, EC, (09I03-03-V04-00010)
dc.description.sponsorship International Visegrad Fund [APVV-20-0278]; Slovak Research and Development Agency [vvgs-2023-2518]; Internal scientific grant system of the Faculty of Natural Sciences; Visegrad Grants from International Visegrad Fund [22310096]; EU NextGenerationEU through the Recovery and Resilience Plan for Slovakia [09I03-03-V04-00010]
dc.rights Attribution 4.0 International
dc.rights.uri http://creativecommons.org/licenses/by/4.0/
dc.rights.access openAccess
utb.ou Centre of Polymer Systems
utb.contributor.internalauthor Oriňaková, Renáta
utb.fulltext.sponsorship This work was supported by Project APVV-20-0278 of the Slovak Research and Development Agency, by the Internal scientific grant system of the Faculty of Natural Sciences UPJŠin Kosice (vvgs-2023-2518), by the Visegrad Grants from International Visegrad Fund (project no. 22310096) and by the EU NextGenerationEU through the Recovery and Resilience Plan for Slovakia under the project No. 09I03-03-V04-00010.
utb.wos.affiliation [Petrakova, Martina; Gorejova, Radka; Shepa, Jana; Macko, Jan; Orinakova, Renata] PJ Safarik Univ Kosice, Dept Phys Chem, Kosice 04101, Slovakia; [Kupkova, Miriam; Petrus, Ondrej; Sopcak, Tibor] Slovak Acad Sci, Inst Mat Res, Kosice 04001, Slovakia; [Balaz, Matej] Slovak Acad Sci, Inst Geotech, Kosice 04001, Slovakia; [Micusik, Matej] Slovak Acad Sci, Polymer Inst, Bratislava 84541, Slovakia; [Kozar, Martin] Univ Vet Med & Pharm Kosice, Small Anim Clin, Kosice 04001, Slovakia; [Hajduckova, Vanda] Univ Vet Med & Pharm Kosice, Dept Microbiol & Immunol, Kosice 04181, Slovakia; [Orinakova, Renata] Tomas Bata Univ Zlin, Univ Inst, Ctr Polymer Syst, Zlin 76001, Czech Republic
utb.scopus.affiliation Department of Physical Chemistry, P. J. Šafárik University in Košice, Moyzesova 11, Košice, 041 01, Slovakia; Institute of Materials Research, Slovak Academy of Sciences, Watsonova 47, Košice, 040 01, Slovakia; Institute of Geotechnics, Slovak Academy of Sciences, Watsonova 45, Košice, 040 01, Slovakia; Institute of Polymers, Slovak Academy of Sciences, Dúbravská cesta 9, Bratislava, 845 41, Slovakia; Small Animal Clinic, The University of Veterinary Medicine and Pharmacy in Košice, Košice, 040 01, Slovakia; Department of Microbiology and Immunology, University of Veterinary Medicine and Pharmacy in Košice, Komenského 73, Košice, 041 81, Slovakia; Centre of Polymer Systems, University Institute, Tomáš Bata University in Zlín, Třída Tomáše Bati 5678, Zlín, 76001, Czech Republic
utb.fulltext.projects APVV-20-0278
utb.fulltext.projects 22310096
utb.fulltext.projects 09I03-03-V04-00010
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