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A high-throughput method for testing biofouling and cleaning of polymer hydrogel materials used in medical devices

机译:一种高通量方法,用于测试医疗设备中使用的聚合物水凝胶材料的生物污染和清洁

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A miniaturized, high-throughput method is developed to measure biofouling and cleaning processes of transparent silicone- and hydroxyethylmethacrylate-based polymer hydrogel materials used in medical devices. Protein biofouling and cleaning effectiveness were measured in 384-well microtiter plates using 3 mm biopsy punches from hydrogel materials soaked in a simulated protein soil fluid (PSF). Fluorescence detection of labeled protein components enabled highly sensitive quantification of biofouling and cleaning endpoints. The sample volume to soaking volume ratio and surface area to soaking volume ratio are similar to those used for full-sized analysis. The method showed minimal perturbation from sample height variations up to hundreds of micrometers. A calibration curve constructed by testing samples soaked in eight different concentrations (0-1.25 mg mL~(-1)) of fluorescent protein showed a broad dynamic range, but fluorescence quenching occurred above 0.75 mg mL~(-1) protein in highly absorbing hydrogels. The method was found to have 1:1 linear correlation with measurements obtained by 2D fluorescence imaging using biofouled/cleaned miniature punches, and 3D confocal fluorescence profiling using full-sized samples soaked in PSF. A comparison of protein biofouling on two types of hydrogel materials revealed that the slope of protein concentration-response curves for high water materials was 100-fold higher than for low water materials. To demonstrate simultaneous measurement of biofouling by multiple soil components, lipid and protein sorption were also tested and found to be correlated. The characterization and results obtained here show the potential of this method for exploring mechanistic details of biofouling and cleaning processes. The method greatly decreases the time and cost associated with the large number of unique samples required, making it possible to study the roles of the numerous material, solution and soil variables at the biointerface of medical devices.
机译:开发了一种小型化的高通量方法,用于测量医疗器械中使用的基于透明有机硅和甲基丙烯酸羟乙酯的聚合物水凝胶材料的生物污染和清洁过程。使用浸入模拟蛋白质土壤液(PSF)中的水凝胶材料的3毫米活检穿孔器,在384孔微量滴定板中测量蛋白质的生物污染和清洁效果。通过荧光检测标记的蛋白质成分,可以高度灵敏地定量生物污染和清洁终点。样品体积与浸泡体积之比以及表面积与浸泡体积之比与用于全尺寸分析的相似。该方法显示出从样品高度变化到数百微米的最小扰动。通过测试浸泡在八种不同浓度(0-1.25 mg mL〜(-1))荧光蛋白中的样品而构建的校准曲线显示出较宽的动态范围,但在高吸收率下高于0.75 mg mL〜(-1)蛋白时发生了荧光猝灭。水凝胶。发现该方法与通过使用生物污垢/清洁的微型冲头进行的2D荧光成像和使用浸泡在PSF中的全尺寸样品的3D共聚焦荧光图谱获得的测量值具有1:1线性相关性。对两种类型的水凝胶材料的蛋白质生物污损进行比较后发现,高水材料的蛋白质浓度-响应曲线的斜率比低水材料高100倍。为了证明同时测量多种土壤成分对生物污染的影响,还测试了脂质和蛋白质的吸附,发现它们之间存在相关性。此处的表征和结果显示了这种方法在探索生物污垢和清洁过程的机械细节方面的潜力。该方法大大减少了与所需大量独特样品相关的时间和成本,从而有可能研究医疗设备生物界面上众多材料,溶液和土壤变量的作用。

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