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基于聚乙二醇的水凝胶涂层:生物医学应用的设计工具。

PEG-Based Hydrogel Coatings: Design Tools for Biomedical Applications.

机构信息

Department of Chemistry, The University of Texas at Austin, Austin, TX, 78712, USA.

Department of Biomedical Engineering, The University of Texas at Austin, Austin, TX, 78712, USA.

出版信息

Ann Biomed Eng. 2024 Jul;52(7):1804-1815. doi: 10.1007/s10439-023-03154-9. Epub 2023 Feb 11.

Abstract

Device failure due to undesired biological responses remains a substantial roadblock in the development and translation of new devices into clinical care. Polyethylene glycol (PEG)-based hydrogel coatings can be used to confer antifouling properties to medical devices-enabling minimization of biological responses such as bacterial infection, thrombosis, and foreign body reactions. Application of hydrogel coatings to diverse substrates requires careful consideration of multiple material factors. Herein, we report a systematic investigation of two coating methods: (1) traditional photoinitiated hydrogel coatings; (2) diffusion-mediated, redox-initiated hydrogel coatings. The effects of method, substrate, and compositional variables on the resulting hydrogel coating thickness are presented. To expand the redox-based method to include high molecular weight macromers, a mechanistic investigation of the role of cure rate and macromer viscosity was necessary to balance solution infiltration and gelation. Overall, these structure-property relationships provide users with a toolbox for hydrogel coating design for a broad range of medical devices.

摘要

由于不理想的生物反应导致的器械故障仍然是新器械开发和转化为临床应用的一个重大障碍。聚乙二醇(PEG)基水凝胶涂层可用于赋予医疗器械抗污特性——最大限度地减少生物反应,如细菌感染、血栓形成和异物反应。水凝胶涂层在不同基质上的应用需要仔细考虑多种材料因素。在此,我们报告了两种涂层方法的系统研究:(1)传统的光引发水凝胶涂层;(2)扩散介导的、氧化还原引发的水凝胶涂层。方法、基底和组成变量对所得水凝胶涂层厚度的影响。为了将基于氧化还原的方法扩展到高分子量的大分子单体,有必要对固化速率和大分子单体粘度的作用进行机理研究,以平衡溶液渗透和凝胶化。总的来说,这些结构-性能关系为用户提供了一个水凝胶涂层设计工具包,适用于广泛的医疗器械。

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