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Improved sensitivity and limit-of-detection of lateral flow devices using spatial constrictions of the flow-path

机译:使用流路的空间收缩提高横向流动装置的灵敏度和探测限制

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摘要

We report on the use of a laser-direct write (LDW) technique that allows the fabrication of lateral flow devices with enhanced sensitivity and limit of detection. This manufacturing technique comprises the dispensing of a liquid photopolymer at specific regions of a nitrocellulose membrane and its subsequent photopolymerisation to create impermeable walls inside the volume of the membrane. These polymerised structures are intentionally designed to create fluidic channels which are constricted over a specific length that spans the test zone within which the sample interacts with pre-deposited reagents. Experiments were conducted to show how these constrictions alter the fluid flow rate and the test zone area within the constricted channel geometries. The slower flow rate and smaller test zone area result in the increased sensitivity and lowered limit of detection for these devices. We have quantified these via the improved performance of a C-Reactive Protein (CRP) sandwich assay on our lateral flow devices with constricted flow paths which demonstrate an improvement in its sensitivity by 62x and in its limit of detection by 30x when compared to a standard lateral flow CRP device.
机译:我们报告使用激光直接写入(LDW)技术,该技术允许制造具有增强的灵敏度和检测极限的横向流动装置。该制造技术包括在硝酸纤维素膜的特定区域处分配液体光聚合物及其随后的光聚合以在膜的体积内产生不透过的壁。这些聚合结构被有意设计成产生流体通道,该流体通道被限制在跨越样品与预沉积的试剂相互作用的特定长度。进行实验以展示这些收缩如何改变收缩通道几何形状内的流体流速和测试区区域。较慢的流速和更小的测试区区域导致对这些设备的灵敏度增加和降低的检测限。我们通过具有收缩流动路径的横向流动装置在我们的横向流动装置上的C-反应蛋白(CRP)夹层测定的改善性能量化了这些,这与标准相比,通过62倍的敏感性提高了其敏感性,并且在其与标准相比,通过30倍的检测极限横向流量CRP装置。

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