Nanofluidics Drives Point-of-care Technology for on the Spot Protein Marker Analysis with Rapid Actionable Results

Lauréanne Putallaz, P. Bogaard, P. Laub, F. Rebeaud
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引用次数: 7

Abstract

Protein sensing in a nanofluidic environment dramatically shortens immunoassay time-to-result through the combined action of efficient mass transfer and short diffusion distances. Here, we report on a fully automated point-of-care in vitro diagnostic platform based on disposable capsule containing nanofluidic sensors in which fluorescent immunoassays are performed. Performances of the system were established with three model assays for ferritin, immunoglobulin E (IgE) and pancreatic stone protein (PSP). The described system has the typical high capture efficiency of nano-confined spaces combined with forced-flow, which induce a constant maximal concentration gradient on the sensor. Remarkably, analytes are detected in zeptomole quantities from a drop of blood. Dose-response curves show that high precision and accuracy are achieved in the clinically relevant assay ranges. Moreover, accuracy of the system is excellent agreement with laboratory reference method, as illustrated in a method comparison with total IgE as a model. While several academic proof-of-concepts have already described the possibility to exploit the properties of fluids at the nanoscale to develop immunoassay, the transition of these models to a product fulfilling requirements for use at the point-of-care in terms of operability, affordability, reliability and analytic performances remains a challenging endeavor. This study demonstrates that nanofluidic-based immunoassays can efficiently quantify protein biomarkers in the femto- and picomolar range within ultra-short assay time, high precision and accuracy on a closed, small, easyto- operate platform.
纳米流体驱动点护理技术的现场蛋白质标记分析与快速可操作的结果
在纳米流体环境中,蛋白质传感通过高效的传质和短的扩散距离的共同作用,大大缩短了免疫分析的时间。在这里,我们报告了一个全自动的点护理体外诊断平台,该平台基于含有纳米流体传感器的一次性胶囊,在其中进行荧光免疫测定。通过铁蛋白、免疫球蛋白E (IgE)和胰石蛋白(PSP)三种模型测定来建立系统的性能。所描述的系统具有典型的高捕获效率的纳米密闭空间与强制流动相结合,这使得传感器上的最大浓度梯度恒定。值得注意的是,从一滴血中可以检测到齐托莫里的分析物。剂量-反应曲线表明,在临床相关的测定范围内,该方法具有较高的精密度和准确性。此外,该系统的准确性与实验室参考方法非常一致,如与总IgE作为模型的方法比较所示。虽然一些学术概念验证已经描述了利用纳米级流体特性开发免疫测定的可能性,但从可操作性、可负担性、可靠性和分析性能等方面来看,将这些模型转变为满足护理点使用要求的产品仍然是一项具有挑战性的工作。本研究表明,基于纳米流体的免疫分析方法可以在超短的分析时间内,在一个封闭、小型、易于操作的平台上,有效地定量毫微和皮摩尔范围内的蛋白质生物标志物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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