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Winning the fight against biofilms the first six-month study showing no biofilm formation on zwitterionic polyurethanes

机译:赢得对抗生物膜的斗争第一个六个月的研究表明在两性离子聚氨酯上没有生物膜形成

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Biofilms have been a long-standing challenge for healthcare, water transport, and many other industries. They lead to bacterial growth and infections in animals, food products, and humans, cause premature removal of the implanted materials or devices from patients, and facilitate fouling and corrosion of metals. Despite some published and patented methods on minimizing the effects of biofilms for a short period (less than two weeks), there exists no successful means to mitigate or prevent the long-term formation of biofilms. It is even more challenging to integrate critical anti-fouling properties with other needed physical and chemical properties for a range of applications. In this study, we developed a novel approach for combining incompatible, highly polar anti-fouling groups with less polar, mechanically modifying groups into one material. A multifunctional carboxybetaine precursor was designed and introduced into polyurethane. The carboxybetaine precursors undergo rapid, self-catalyzed hydrolysis at the water/material interface and provide critical anti-fouling properties that lead to undetectable bacterial attachment and zero biofilm formation after six months of constant exposure to Pseudomonas aeruginosa and Staphylococcus epidermidis under the static condition in a nutrient-rich medium. This zwitterionic polyurethane is the first material to demonstrate both critical anti-biofilm properties and tunable mechanical properties and directly validates the unproven anti-fouling strategy and hypothesis for biofilm formation prevention. This approach of designing ‘multitasking materials’ will be useful for the development of next generation anti-fouling materials for a variety of applications.
机译:生物膜是医疗保健,水运输和许多其他行业的长期挑战。它们导致动物,食品和人类中的细菌生长和感染,引起患者的植入材料或设备过早,并促进金属的污垢和腐蚀。尽管一些公开和专利的方法可以最小化生物膜的效果短时间(不到两周),但没有成功的方法可以减轻或预防生物膜的长期形成。将关键的防污性能与其他所需的物理和化学性质集成到一系列应用中,更具挑战性更具挑战性。在这项研究中,我们开发了一种新的方法,可以将不相容的高度极性防污组与较少的极性机械修饰的组相结合成一种材料。设计并引入聚氨酯中设计并引入多官能羧基脲前体。羧基丙酮前体在水/材料界面进行快速,自催化水解,并提供关键的防污性能,导致在静态条件下六个月的持续接触六个月的持续暴露于静态条件下六个月后导致未检测的细菌附着和零生物膜形成富含营养的培养基。这种两性离子聚氨酯是第一种致力于临界抗生物膜性能和可调谐机械性能的材料,并直接验证未经证实的防污策略和生物膜形成预防假设。设计“多任务材料”的方法对于各种应用的下一代防污材料的开发将是有用的。

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