Flexible and Biocompatible Antifouling Polyurethane Surfaces Incorporating Tethered Antimicrobial Peptides through Click Reactions

Author:

Berglin Mattias12,Cavanagh Jorunn Pauline34,Caous Josefin Seth1,Thakkar Balmukund Sureshkumar3,Vasquez Jeddah Marie1,Stensen Wenche5,Lyvén Benny1,Svendsen John‐Sigurd35,Svenson Johan1ORCID

Affiliation:

1. Department of Materials and Production RISE Research Institutes of Sweden Gothenburg 413 46 Sweden

2. Department of Chemistry and Molecular Biology Gothenburg University Gothenburg 413 90 Sweden

3. Amicoat A/S Oslo Science Park Oslo 1386 Norway

4. Department of Clinical Medicine UiT The Arctic University of Norway Tromsø 9019 Norway

5. Department of Chemistry UiT The Arctic University of Norway Tromsø 9019 Norway

Abstract

AbstractEfficient, simple antibacterial materials to combat implant‐associated infections are much in demand. Herein, the development of polyurethanes, both cross‐linked thermoset and flexible and versatile thermoplastic, suitable for “click on demand” attachment of antibacterial compounds enabled via incorporation of an alkyne‐containing diol monomer in the polymer backbone, is described. By employing different polyolic polytetrahydrofurans, isocyanates, and chain extenders, a robust and flexible material comparable to commercial thermoplastic polyurethane is prepared. A series of short synthetic antimicrobial peptides are designed, synthesized, and covalently attached in a single coupling step to generate a homogenous coating. The lead material is shown to be biocompatible and does not display any toxicity against either mouse fibroblasts or reconstructed human epidermis according to ISO and OECD guidelines. The repelling performance of the peptide‐coated materials is illustrated against colonization and biofilm formation by Staphylococcus aureus and Staphylococcus epidermidis on coated plastic films and finally, on coated commercial central venous catheters employing LIVE/DEAD staining, confocal laser scanning microscopy, and bacterial counts. This study presents the successful development of a versatile and scalable polyurethane with the potential for use in the medical field to reduce the impact of bacterial biofilms.

Publisher

Wiley

Subject

Materials Chemistry,Polymers and Plastics,Biomaterials,Bioengineering,Biotechnology

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