Imbia Adel S, Ounkaew Artjima, Zeng Hongbo, Liu Yang, Narain Ravin
Department of Chemical and Materials Engineering, University of Alberta, Edmonton, Alberta T6G 1H9, Canada.
Department of Civil and Environmental Engineering, University of Alberta, Edmonton, Alberta T6G 1H9, Canada.
ACS Appl Bio Mater. 2025 Jan 20;8(1):527-534. doi: 10.1021/acsabm.4c01439. Epub 2025 Jan 7.
Biofilm formation on medical devices has become a worldwide issue arising from its resistance to bactericidal agents and presenting challenges to eradicating biofouling adhesion, especially in biological fluids. Metal-phenolic networks have been demonstrated as a versatile and efficient strategy to prevent biofilm formation by endowing medical devices with prolonged antifouling and antibacterial activities in a one-step surface modification. In this study, we report a simple and environmentally friendly method using coordination chemistry between copper ions (Cu) and dopamine-containing copolymer to fabricate metal-phenolic network-based coatings. The phenolic groups also imparted the adhesion of glycopolymer-containing dopamine residues to inorganic and organic substrates, resulting in dual antifouling and bactericidal surfaces. 2-gluconamidoethyl methacrylamide monomer (GAEMA) was first copolymerized with dopamine methacrylamide (DMA) using a free-radical polymerization process. The resulting copolymer (GAEMA-DMA), denoted as GADMA, was then mixed with copper ions in a one-step process to form the GADMA-Cu coating. The GADMA-Cu coating was hydrophilic and significantly reduced the water contact angle (WCA) and adsorption of bovine serum albumin protein even after incubation in a bovine serum albumin solution for 30 h. Moreover, the coating exhibited strong antibacterial activity against and and was biocompatible with 99% cell viability toward normal human fibroblast (HDFa) cells. Thus, our coating shows great potential for application in medical devices.
医疗器械上的生物膜形成已成为一个全球性问题,因为它对杀菌剂具有抗性,并且在消除生物污垢粘附方面面临挑战,尤其是在生物流体中。金属-酚醛网络已被证明是一种通用且有效的策略,可通过在一步表面改性中赋予医疗器械延长的防污和抗菌活性来防止生物膜形成。在本研究中,我们报告了一种简单且环保的方法,利用铜离子(Cu)与含多巴胺的共聚物之间的配位化学来制备基于金属-酚醛网络的涂层。酚基还赋予了含糖聚合物的多巴胺残基与无机和有机底物的粘附性,从而产生了双重防污和杀菌表面。首先使用自由基聚合过程将2-葡糖酰胺基乙基甲基丙烯酰胺单体(GAEMA)与多巴胺甲基丙烯酰胺(DMA)共聚。然后将所得共聚物(GAEMA-DMA),记为GADMA,与铜离子一步混合形成GADMA-Cu涂层。GADMA-Cu涂层具有亲水性,即使在牛血清白蛋白溶液中孵育30小时后,也能显著降低水接触角(WCA)和牛血清白蛋白蛋白的吸附。此外,该涂层对[具体细菌名称1]和[具体细菌名称2]表现出很强的抗菌活性,并且对正常人成纤维细胞(HDFa)细胞具有99%的细胞活力,具有生物相容性。因此,我们的涂层在医疗器械应用中显示出巨大潜力。