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首页> 外文期刊>Journal of endourology >Micropatterned surfaces for reducing the risk of catheter-associated urinary tract infection: an in vitro study on the effect of sharklet micropatterned surfaces to inhibit bacterial colonization and migration of uropathogenic Escherichia coli.
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Micropatterned surfaces for reducing the risk of catheter-associated urinary tract infection: an in vitro study on the effect of sharklet micropatterned surfaces to inhibit bacterial colonization and migration of uropathogenic Escherichia coli.

机译:微图案表面可减少导管相关性尿路感染的风险:鲨鱼微图案表面抑制细菌定植和尿路致病性大肠杆菌迁移的体外研究。

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摘要

BACKGROUND AND PURPOSE: Catheter-associated urinary tract infection (CAUTI) is the most common device-associated infection and can result in serious medical consequences. We studied the efficacy of a novel microscopic physical surface modification (Sharklet) for preventing bacterial colonization and migration of uropathogenic Escherichia coli on silicone elastomer. MATERIALS AND METHODS: In vitro growth assays evaluated E coli colonization using three variations of micropatterned silicone surfaces vs a smooth silicone control. Enumeration techniques included quantification of colonies on surfaces and analysis of bacterial area coverage and colony size. In vitro migration assays involved placement of micropatterned and smooth silicone rod segments between two agar islands to measure incidence of migration. RESULTS: All three variations of the Sharklet micropattern outperformed the control surfaces in inhibiting E coli colonization. On average, 47% reduction in colony-forming units (CFUs) and bacterial area coverage plus 77% reduction in colony size were achieved with the Sharklet surfaces in tryptic soy broth and artificial urine compared with the control nonpatterned surfaces. The incidence of E coli migration over the rod segments was reduced by more than 80% for the Sharklet transverse patterned rods compared with the unpatterned control rods. CONCLUSION: The Sharklet micropattern is effective at inhibiting colonization and migration of a common uropathogen. This performance is achieved through a physical surface modification without the use of any antimicrobial agents. Because deterrence of bacterial colonization and migration is a critical step to prevent CAUTI, the Sharklet micropattern offers a novel concept in addressing this important problem.
机译:背景与目的:导管相关性尿路感染(CAUTI)是最常见的器械相关性感染,可能导致严重的医疗后果。我们研究了新型微观物理表面修饰(鲨鱼)的功效,以防止细菌定植和尿路致病性大肠杆菌在有机硅弹性体上的迁移。材料与方法:体外生长试验使用微图案化有机硅表面与光滑有机硅对照的三种变化评估了大肠杆菌的定殖。枚举技术包括对表面菌落的定量分析以及细菌区域覆盖率和菌落大小的分析。体外迁移测定涉及在两个琼脂岛之间放置微图案化的光滑硅酮棒段,以测量迁移的发生率。结果:Sharklet微模式的所有三个变体在抑制大肠杆菌定殖方面均优于对照表面。与对照的无图案表面相比,胰蛋白酶大豆肉汤和人造尿液中的Sharklet表面平均可实现47%的集落形成单位(CFU)和细菌区域覆盖率降低以及77%的集落大小降低。 Sharklet横向图案化棒与未图案化的对照棒相比,大肠杆菌在整个棒段上的迁移发生率降低了80%以上。结论:Sharklet微模式可有效抑制常见尿路病原菌的定殖和迁移。通过物理表面改性无需使用任何抗菌剂即可实现此性能。由于阻止细菌定植和迁移是预防CAUTI的关键步骤,因此Sharklet微模式为解决这一重要问题提供了一个新颖的概念。

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