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Isoflavonoid-Antibiotic Thin Films Fabricated by MAPLE with Improved Resistance to Microbial Colonization.
Grumezescu, Valentina; Negut, Irina; Cristescu, Rodica; Grumezescu, Alexandru Mihai; Holban, Alina Maria; Iordache, Florin; Chifiriuc, Mariana Carmen; Narayan, Roger J; Chrisey, Douglas B.
  • Grumezescu V; Lasers Department, National Institute for Lasers, Plasma and Radiation Physics, 077125 Magurele, Romania.
  • Negut I; Lasers Department, National Institute for Lasers, Plasma and Radiation Physics, 077125 Magurele, Romania.
  • Cristescu R; Lasers Department, National Institute for Lasers, Plasma and Radiation Physics, 077125 Magurele, Romania.
  • Grumezescu AM; Department of Science and Engineering of Oxide Materials and Nanomaterials, Faculty of Applied Chemistry and Materials Science, Politehnica University of Bucharest, 011061 Bucharest, Romania.
  • Holban AM; Research Institute of the University of Bucharest-ICUB, University of Bucharest, 050657 Bucharest, Romania.
  • Iordache F; Research Institute of the University of Bucharest-ICUB, University of Bucharest, 050657 Bucharest, Romania.
  • Chifiriuc MC; Department of Microbiology and Immunology, Faculty of Biology, University of Bucharest, 077206 Bucharest, Romania.
  • Narayan RJ; Department of Biochemistry, Faculty of Veterinary Medicine, University of Agronomic Science and Veterinary Medicine, 59 Marasti Boulevard, 011464 Bucharest, Romania.
  • Chrisey DB; Research Institute of the University of Bucharest-ICUB, University of Bucharest, 050657 Bucharest, Romania.
Molecules ; 26(12)2021 Jun 14.
Article in English | MEDLINE | ID: covidwho-1282538
ABSTRACT
Staphylococcus aureus (Gram-positive) and Pseudomonas aeruginosa (Gram-negative) bacteria represent major infectious threats in the hospital environment due to their wide distribution, opportunistic behavior, and increasing antibiotic resistance. This study reports on the deposition of polyvinylpyrrolidone/antibiotic/isoflavonoid thin films by the matrix-assisted pulsed laser evaporation (MAPLE) method as anti-adhesion barrier coatings, on biomedical surfaces for improved resistance to microbial colonization. The thin films were characterized by Fourier transform infrared spectroscopy, infrared microscopy, and scanning electron microscopy. In vitro biological assay tests were performed to evaluate the influence of the thin films on the development of biofilms formed by Gram-positive and Gram-negative bacterial strains. In vitro biocompatibility tests were assessed on human endothelial cells examined for up to five days of incubation, via qualitative and quantitative methods. The results of this study revealed that the laser-fabricated coatings are biocompatible and resistant to microbial colonization and biofilm formation, making them successful candidates for biomedical devices and contact surfaces that would otherwise be amenable to contact transmission.
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Full text: Available Collection: International databases Database: MEDLINE Main subject: Pseudomonas aeruginosa / Staphylococcus aureus / Flavonoids / Drug Resistance, Microbial / Biofilms / Coated Materials, Biocompatible / Anti-Bacterial Agents Type of study: Experimental Studies / Qualitative research Language: English Journal subject: Biology Year: 2021 Document Type: Article Affiliation country: Molecules26123634

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Full text: Available Collection: International databases Database: MEDLINE Main subject: Pseudomonas aeruginosa / Staphylococcus aureus / Flavonoids / Drug Resistance, Microbial / Biofilms / Coated Materials, Biocompatible / Anti-Bacterial Agents Type of study: Experimental Studies / Qualitative research Language: English Journal subject: Biology Year: 2021 Document Type: Article Affiliation country: Molecules26123634