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Assessment of aliphatic poly(ester-carbonate-urea-urethane)s potential as materials for biomedical application
Authors:Joanna Mystkowska  Magdalena Mazurek-Budzyńska  Ewelina Piktel  Katarzyna Niemirowicz  Wojciech Karalus  Piotr Deptu?a  Katarzyna Pogoda  Dawid ?ysik  Jan Ryszard D?browski  Gabriel Rokicki  Robert Bucki
Affiliation:1.Faculty of Mechanical Engineering, Department of Materials and Biomedical Engineering,Bialystok University of Technology,Bialystok,Poland;2.Department of Chemistry, Chair of Polymer Chemistry and Technology,Warsaw University of Technology,Warsaw,Poland;3.Department of Microbiological and Nanobiomedical Engineering,Medical University of Bialystok,Bialystok,Poland;4.Institute of Nuclear Physics,Polish Academy of Sciences,Cracow,Poland
Abstract:Selected mechanical and biological properties of biodegradable elastomeric poly(ester-carbonate-urea-urethane)s (PECUUs) point towards their potential to be applied as scaffolds in tissue engineering. Here we explore their medical applicability taking into account their hemocompatibility and cytotoxicity. The influence of the ester monomer (derivatives of adipic and succinic acids), as well as diisocyanate type (IPDI and HDI) on the investigated PECUUs properties is presented. The presence of aliphatic diisocyanates, cyclic IPDI or linear HDI, governs the adhesion of Candida cells to these polymers offering the possibility to control the biofilm formation on their surface. In comparison to the linear form, cyclic diisocyanates with pentamethylene succinate or adipate fragments had two to three times lower biofilm mass formation on their surface. Reduced hemoglobin release from red blood cells observed during incubation of tested polymers with human erythrocytes suspension indicates their potential biocompatibility with human tissues. PECUUs were also able to support the growth of human keratinocytes HaCaT on their surface when coated with collagen. In effect, IPDI derivatives might possess a high potential for use in biomedical applications.
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