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Development of a Micro Fluidic Nanoscale Protein Sensor Device for Improving Vascular Surgical Outcomes

机译:微流体纳米级蛋白传感器装置改善血管外科蛋白传感器装置的研制

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The normal physiologic response of vascular surgery is one of acute and intense inflammation and thrombosis. Research to date on improving outcomes after surgery has focused on drugs known to be active with the adrenergic system more specifically statins. Till date there has been no correlation between inflammation post surgery and the effect of perioperative anti-inflammatory drugs on improving surgical outcomes. The goal of this research is to characterize the role perioperative inflammation and thrombosis plays in determining outcomes after surgery. The goal of this particular application is to identify two specific pro-inflammatory protein markers namely C-reactive protein (CRP) and Myloperoxidase (MPO) associated with thrombosis from a wide range of serum samples. This is achieved by integrating the principles of fabrication associated with micro and nanotechnology to develop a sensor device comprising of nano ordered porous alumina membrane embedded in an elastomer (polydimethylsiloxane, PDMS) micro fluidic base. The nano porous membrane is selectively functionalized by a two level masking technique to the binding of CRP and MPO in selected areas. The binding event results in an electrochemical reaction that in turn produces a change in the surface charge. This in turn produces a measurable change to the electrical voltage. This is measured in an in-situ, non-invasive manner from selectively metalized areas of the nano membrane. Energy density analysis yielded unique electrical identifiers for each of the protein markers. Detection sensitivity of the order of 10 ppm was observed.
机译:血管手术的正常生理反应是急性和强烈的炎症和血栓形成之一。迄今为止,手术后改善结果的研究专注于已知用肾上腺素能系统有效的药物更具体地说。迄今为止炎症手术后手术与围手术期抗炎药对改善手术结果的影响没有相关性。该研究的目标是表征在手术后确定结果的角色围手术期炎症和血栓形成。该特定应用的目的是鉴定两种特定的促炎蛋白标志物即与来自各种血清样品的血栓形成相关的C反应蛋白(CRP)和硝基氧化酶(MPO)。这是通过将与微型和纳米技术相关的制造原理的原理来实现这一点,以开发一种传感器装置,该传感器装置包括嵌入在弹性体(聚二甲基硅氧烷,PDMS)微流体基座中的纳米有序多孔氧化铝膜。通过两种水平掩模技术选择性地官能化官能化,以在所选区域中的CRP和MPO的结合结合。结合事件导致电化学反应,又产生表面电荷的变化。这又产生了对电压的可测量变化。这是以原位的非侵入性的方式测量的,从纳米膜的选择性金属化区域测量。能量密度分析为每种蛋白质标记产生独特的电识别转移。观察到10ppm的检测灵敏度。

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