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Antifouling Electrospun Nanofiber Mats Functionalized with Polymer Zwitterions

机译:聚合物两性离子功能化的防污静电纺纳米纤维毡

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摘要

In this study, we exploit the excellent fouling resistance of polymer zwitterions and present electrospun nanofiber mats surface-functionalized with poly(2-methacryloyloxyethyl phosphorylcholine) (polyMPC). This zwitterionic polymer coating maximizes the accessibility of the zwitterion to effectively limit biofouling on nanofiber membranes. Two facile, scalable methods yielded a coating on a cellulose nanofiber platform: (i) a two-step sequential deposition featuring dopamine polymerization followed by the physioadsorption of polyMPC; and (ii) a one-step codeposition of polydopamine (PDA) with polyMPC. While the sequential and codeposited nanofiber mat assemblies have an equivalent average fiber diameter, hydrophilic contact angle, surface chemistry, and stability, the topography of nanofibers prepared by codeposition were smoother. Protein and microbial antifouling performance of the zwitterion modified nanofiber mats along with two controls, cellulose (unmodified) and PDA coated nanofiber mats were evaluated by dynamic protein fouling and prolonged bacteria exposure experiments. Following 21 days of exposure to bovine serum albumin, the sequential nanofiber mats significantly resisted protein fouling, as indicated by their 95% flux recovery ratio in a water flux experiment, 300% improvement over the cellulose nanofiber mats. When challenged with two model microbes Escherichia coli and Staphylococcus aureus for 24 hr, both zwitterion modifications demonstrated superior fouling resistance by statistically reducing microbial attachment over the two controls. This study demonstrates that by decorating the surfaces of chemically and mechanically robust cellulose nanofiber mats with polyMPC, we can generate high performance, free-standing nanofiber mats that hold potential in applications where antifouling materials are imperative, such as tissue engineering scaffolds and water purification technologies.
机译:在这项研究中,我们利用聚合物两性离子的优异的耐污垢性,并提出了用聚(2-甲基丙烯酰氧基乙基磷酰胆碱)(polyMPC)表面功能化的电纺纳米纤维毡。该两性离子聚合物涂层使两性离子的可及性最大化,从而有效地限制了纳米纤维膜上的生物污染。两种简便,可扩展的方法可在纤维素纳米纤维平台上形成涂层:(i)两步顺序沉积,其特征是多巴胺聚合,然后物理吸附polyMPC; (ii)聚多巴胺(PDA)与polyMPC的一步共沉积。虽然顺序和共沉积的纳米纤维垫组件具有相等的平均纤维直径,亲水接触角,表面化学性质和稳定性,但通过共沉积制备的纳米纤维的形貌更平滑。两性离子改性的纳米纤维垫以及两个对照纤维素(未改性)和PDA涂覆的纳米纤维垫的蛋白质和微生物防污性能通过动态蛋白质污染和延长的细菌暴露实验进行了评估。暴露于牛血清白蛋白21天后,连续的纳米纤维垫可显着抵抗蛋白质结垢,如水通量实验中95%的通量回收率所示,比纤维素纳米纤维垫高300%。当用两种模式微生物大肠杆菌和金黄色葡萄球菌攻击24小时时,两性离子修饰均通过统计学上减少了两个控件的微生物附着而显示出优异的抗污垢性。这项研究表明,通过用polyMPC装饰化学和机械坚固的纤维素纳米纤维垫的表面,我们可以生成高性能的独立式纳米纤维垫,这些材料在防污材料至关重要的应用中具有潜力,例如组织工程支架和水净化技术。

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