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Insight into the antibacterial mechanism of Cu-enriched sol-gel coatings employing proteomics.
Romero-Gavilán, Francisco; García-Arnáez, Iñaki; Cerqueira, Andreia; Scalschi, Loredana; Vicedo, Begonya; Villagrasa, Alejandro; Izquierdo, Raúl; Azkargorta, Mikel; Elortza, Félix; Gurruchaga, Mariló; Goñi, Isabel; Suay, Julio.
Affiliation
  • Romero-Gavilán F; Department of Industrial Systems Engineering and Design, Universitat Jaume I, Av. Vicent Sos Baynat s/n, 12071 Castellón de la Plana, Spain. gavilan@uji.es.
  • García-Arnáez I; Department of Polymers and Advanced Materials: Physics, Chemistry and Technology, Universidad del País Vasco, P. M. de Lardizábal, 3, 20018 San Sebastián, Spain.
  • Cerqueira A; Department of Industrial Systems Engineering and Design, Universitat Jaume I, Av. Vicent Sos Baynat s/n, 12071 Castellón de la Plana, Spain. gavilan@uji.es.
  • Scalschi L; Department of Biology, Biochemistry and Natural Sciences, Universitat Jaume I, Av. Vicent Sos Baynat s/n, 12071 Castellón de la Plana, Spain.
  • Vicedo B; Department of Biology, Biochemistry and Natural Sciences, Universitat Jaume I, Av. Vicent Sos Baynat s/n, 12071 Castellón de la Plana, Spain.
  • Villagrasa A; Department of Industrial Systems Engineering and Design, Universitat Jaume I, Av. Vicent Sos Baynat s/n, 12071 Castellón de la Plana, Spain. gavilan@uji.es.
  • Izquierdo R; Department of Industrial Systems Engineering and Design, Universitat Jaume I, Av. Vicent Sos Baynat s/n, 12071 Castellón de la Plana, Spain. gavilan@uji.es.
  • Azkargorta M; Proteomics Platform, CIC bioGUNE, Basque Research and Technology Alliance (BRTA), CIBERehd, ProteoRed-ISCIII, Bizkaia Science and Technology Park, 48160 Derio, Spain.
  • Elortza F; Proteomics Platform, CIC bioGUNE, Basque Research and Technology Alliance (BRTA), CIBERehd, ProteoRed-ISCIII, Bizkaia Science and Technology Park, 48160 Derio, Spain.
  • Gurruchaga M; Department of Polymers and Advanced Materials: Physics, Chemistry and Technology, Universidad del País Vasco, P. M. de Lardizábal, 3, 20018 San Sebastián, Spain.
  • Goñi I; Department of Polymers and Advanced Materials: Physics, Chemistry and Technology, Universidad del País Vasco, P. M. de Lardizábal, 3, 20018 San Sebastián, Spain.
  • Suay J; Department of Industrial Systems Engineering and Design, Universitat Jaume I, Av. Vicent Sos Baynat s/n, 12071 Castellón de la Plana, Spain. gavilan@uji.es.
Biomater Sci ; 11(3): 1042-1055, 2023 Jan 31.
Article in En | MEDLINE | ID: mdl-36562316
ABSTRACT
Advanced antibacterial biomaterials can help reduce the severe consequences of infections. Using copper compounds is an excellent option to achieve this goal; they offer a combination of regenerative and antimicrobial functions. In this study, new CuCl2-doped sol-gel coatings were developed and physicochemically characterised. Their osteogenic and inflammatory responses were tested in vitro using human osteoblasts and THP-1 macrophages. Their antibacterial effect was evaluated using Escherichia coli and Staphylococcus aureus. The Cu influence on the adsorption of human serum proteins was analysed employing proteomics. The materials released Cu2+ and were not cytotoxic. The osteoblasts in contact with these materials showed an increased ALP, BMP2 and OCN gene expression. THP-1 showed an increase in pro-inflammatory markers related to M1 polarization. Moreover, Cu-doped coatings displayed a potent antibacterial behaviour against E. coli and S. aureus. The copper ions affected the adsorption of proteins related to immunity, coagulation, angiogenesis, fibrinolysis, and osteogenesis. Interestingly, the coatings had increased affinity to proteins with antibacterial functions and proteins linked to the complement system activation that can lead to direct bacterial killing via large pore-forming complexes. These results contribute to our understanding of the antibacterial mechanisms of Cu-biomaterials and their interaction with biological systems.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Staphylococcus aureus / Coated Materials, Biocompatible Limits: Humans Language: En Journal: Biomater Sci Year: 2023 Document type: Article Affiliation country: Spain

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Staphylococcus aureus / Coated Materials, Biocompatible Limits: Humans Language: En Journal: Biomater Sci Year: 2023 Document type: Article Affiliation country: Spain