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Slippery Liquid-Infused Porous Surfaces that Prevent Microbial Surface Fouling and Kill Non-Adherent Pathogens in Surrounding Media: A Controlled Release Approach

机译:滑液注入的多孔表面可防止微生物表面结垢并杀死周围介质中的非粘附性病原体:控释方法

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摘要

Many types of slippery liquid-infused porous surfaces (or ‘SLIPS’) can resist adhesion and colonization by microorganisms. These ‘slippery’ materials thus offer new approaches to prevent fouling on a range of commercial and industrial surfaces, including biomedical devices. However, while SLIPS can prevent fouling on surfaces to which they are applied, they can currently do little to prevent the proliferation of non-adherent (planktonic) organisms, stop them from colonizing other surfaces, or prevent them from engaging in other behaviors that could lead to infection and associated burdens. Here, we report an approach to the design of multi-functional SLIPS that addresses these issues and expands the potential utility of slippery surfaces in antimicrobial contexts. Our approach is based on the incorporation and controlled release of small-molecule antimicrobial agents from the porous matrices used to host infused slippery oil phases. We demonstrate that SLIPS fabricated using nanoporous polymer multilayers can prevent short- and longer-term colonization and biofilm formation by four common fungal and bacterial pathogens (Candida albicans, Pseudomonas aeruginosa, Escherichia coli, and Staphylococcus aureus), and that the polymer and oil phases comprising these materials can be exploited to load and sustain the release of triclosan, a model hydrophobic and broad-spectrum antimicrobial agent, into surrounding media. This approach both improves the inherent anti-fouling properties of these materials and endows them with the ability to efficiently kill planktonic pathogens. Finally, we show that this approach can be used to fabricate dual-action SLIPS on complex surfaces, including the luminal surfaces of flexible catheter tubes. This strategy has the potential to be general; we anticipate that the materials, strategies, and concepts reported here will enable new approaches to the design of slippery surfaces with improved anti-fouling properties and open the door to new applications of slippery liquid-infused materials that host or promote the release of a variety of other active agents.
机译:许多类型的光滑液体注入多孔表面(或“ SLIPS”)可以抵抗微生物的粘附和定植。因此,这些“易滑”材料提供了防止在包括生物医学设备在内的一系列商业和工业表面上结垢的新方法。但是,虽然SLIPS可以防止在其所应用的表面上结垢,但目前它们几乎无法阻止非粘附性(浮游生物)生物的繁殖,阻止它们在其他表面上定殖或阻止它们从事其他可能造成污染的行为。导致感染和相关负担。在这里,我们报告了一种设计多功能SLIPS的方法,该方法解决了这些问题并扩展了在抗菌环境中打滑表面的潜在用途。我们的方法是基于小分子抗菌剂从多孔基质中引入并控制释放的,该多孔基质用于容纳注入的滑油相。我们证明使用纳米多孔聚合物多层膜制造的SLIPS可以防止四种常见的真菌和细菌病原体(白色念珠菌,铜绿假单胞菌,大肠埃希氏菌和金黄色葡萄球菌)的短期和长期定植和生物膜形成,以及聚合物和油相可以利用包含这些材料的物质来负载和维持三氯生(一种模型疏水和广谱抗菌剂)向周围介质的释放和维持。这种方法既提高了这些材料固有的防污性能,又使它们具有有效杀死浮游病原体的能力。最后,我们证明了该方法可用于在复杂的表面(包括柔性导管的管腔表面)上制造双作用SLIPS。这种策略具有普遍性。我们期望这里报告的材料,策略和概念将为设计具有改善的防污性能的光滑表面提供新的方法,并为包含或促进各种物质释放的光滑液体注入材料的新应用打开大门其他活性剂。

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