Bacterial adhesion and subsequent colonization play an important role in the failure of biomedical implants and devices. Thus, development of a simple surface modification strategy to combat bacterial adhesion is highly desirable. In this work, "one-pot" fabrication of antifouling coatings based on simultaneous surface adhesion of trihydroxyphenyl and dihydroxyphenyl moieties of tannic acid (TA) derivative and covalent conjugation of hydrophilic poly(2-methyl-2-oxazoline) (PMOXA) was demonstrated. Surface co-depositions of TA/PMOXA hybrids of different TA derivative to PMOXA weight ratios and different molecular weights of PMOXA were conducted. The surface hydrophilicity and deposition universality on various substrates were investigated. The anti-bacterial and anti-platelet adhesion, as well as anti-biofilm formation abilities, of the TA/PMOXA-based coating were also studied. In vitro hemolysis and cytotoxicity, and in vivo biocompatibility of the TA/PMOXAbased coating were further evaluated. All the results indicate that the TA/PMOXA-based coating could be employed as an antifouling additive on biomedical implants and devices.
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Univ Paris Est, CNRS, UPEC, ICMPE UMR7182, F-94320 Thiais, FranceUniv Paris Est, CNRS, UPEC, ICMPE UMR7182, F-94320 Thiais, France
Glaive, Aline-Sarah
Amiel, Catherine
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Univ Paris Est, CNRS, UPEC, ICMPE UMR7182, F-94320 Thiais, FranceUniv Paris Est, CNRS, UPEC, ICMPE UMR7182, F-94320 Thiais, France
Amiel, Catherine
Volet, Gisele
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Univ Paris Est, CNRS, UPEC, ICMPE UMR7182, F-94320 Thiais, France
Univ Devry Val Dessonne, Rue Pere Jarlan, F-91025 Evry, FranceUniv Paris Est, CNRS, UPEC, ICMPE UMR7182, F-94320 Thiais, France