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An engineered micropattern to reduce bacterial colonization platelet adhesion and fibrin sheath formation for improved biocompatibility of central venous catheters

机译:工程化的微模式可减少细菌定植血小板粘附和纤维蛋白鞘形成从而改善中央静脉导管的生物相容性

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摘要

BackgroundCatheter-related bloodstream infections (CRBSIs) and catheter-related thrombosis (CRT) are common complications of central venous catheters (CVC), which are used to monitor patient health and deliver medications. CVCs are subject to protein adsorption and platelet adhesion as well as colonization by the natural skin flora (i.e. Staphylococcus aureus and Staphylococcus epidermidis). Antimicrobial and antithrombotic drugs can prevent infections and thrombosis-related complications, but have associated resistance and safety risks. Surface topographies have shown promise in limiting platelet and bacterial adhesion, so it was hypothesized that an engineered Sharklet micropattern, inspired by shark-skin, may provide a combined approach as it has wide reaching anti-fouling capabilities. To assess the feasibility for this micropattern to improve CVC-related healthcare outcomes, bacterial colonization and platelet interactions were analyzed in vitro on a material common for vascular access devices.
机译:背景技术与导管相关的血流感染(CRBSI)和与导管相关的血栓形成(CRT)是中心静脉导管(CVC)的常见并发症,用于监测患者的健康状况并提供药物。 CVC受到蛋白质吸附和血小板粘附以及天然皮肤菌群(即金黄色葡萄球菌和表皮葡萄球菌)的定植。抗菌和抗血栓药物可以预防感染和与血栓形成有关的并发症,但具有相关的耐药性和安全风险。表面形貌已显示出在限制血小板和细菌粘附方面的前景,因此可以推测,受鲨鱼皮启发的工程化Sharklet微图案可提供组合方法,因为它具有广泛的防污能力。为了评估该微模式改善CVC相关医疗保健结果的可行性,在血管接入设备常用的材料上进行了体外细菌定植和血小板相互作用的分析。

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