Surface modification of polyurethane films by plasma and ultraviolet light to improve haemocompatibility for artificial heart valves

血栓形成 表面改性 生物相容性 材料科学 聚氨酯 热塑性聚氨酯 嫁接 表面粗糙度 X射线光电子能谱 生物材料 接触角 聚合物 表面能 化学工程 生物医学工程 高分子化学 复合材料 纳米技术 弹性体 外科 冶金 工程类 医学 血栓形成
作者
Patrícia Alves,Renato M. S. Cardoso,Tiago R. Correia,B.P. Antunes,Ilídio J. Correia,Paula Ferreira
出处
期刊:Colloids and Surfaces B: Biointerfaces [Elsevier]
卷期号:113: 25-32 被引量:91
标识
DOI:10.1016/j.colsurfb.2013.08.039
摘要

Prosthetic cardiac valves implantation is a common procedure used to treat heart valve diseases. Although there are different prostheses already available in the market (either mechanical or bioprosthetic), their use presents several problems, specifically concerning thrombogenicity and structural failure. Recently, some progresses have been achieved in developing heart valves based on synthetic materials with special emphasis in polymers. Among them, polyurethanes are one of the most commonly used for the production of these devices. Herein, Elastollan®1180A50, a thermoplastic polyurethane (TPU), was used to formulate films whose surfaces were modified by grafting 2-hydroxyethylmethacrylate (HEMA) either by ultra-violet (UV) or by plasma treatment. All films were analyzed before and after grafting. X-ray photoelectron spectroscopy (XPS) measurements were used to evaluate TPU surfaces functionalization. HEMA grafting was confirmed by the increase of the hydroxyl (OH) groups’ concentration at the surface of the films. Atomic force microscopy (AFM) analysis was done to evaluate the surface topography of the biomaterials. Results showed that the roughness of the surface decreased when HEMA was grafted, especially for plasma treated samples. After grafting the films’ hydrophilicity was improved, as well as the polar component of the surface energy, by 15–30%. Hydrophobic recovery studies using milli Q water or PBS were also performed to characterize the stability of the modified surface, showing that the films maintained their surface properties along time. Furthermore, blood-contact tests were performed to evaluate haemolytic and thrombogenic potential. The results obtained for HEMA grafted surfaces, using plasma treatment, confirmed biomaterials biocompatibility and low thrombogenicity. Finally, the cytotoxicity and antibacterial activity of the materials was assessed through in vitro assays for both modified films. The obtained results showed enhanced bactericidal activity, especially for the films modified with plasma.

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