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Enhancing Protein Capture Using a Combination of Nanoyeast Single-Chain Fragment Affinity Reagents and Alternating Current Electrohydrodynamic Forces

机译:结合纳米酵母单链片段亲和试剂和交流电流体动力增强蛋白质捕获。

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New high-performance detection technologies and more robust protein capture agents can be combined to both rapidly and specifically capture and detect protein biomarkers associated with disease in complex biological samples. Here we demonstrate the use of recently developed recombinant affinity reagents, namely nanoyeast-scFv, in combination with alternating current electrohydrodynamic (ac-EHD)-induced shear forces, to enhance capture performance during protein biomarker analysis. The use of ac-EHD significantly improves fluid transport across the capture domain, resulting in enhanced sensor-target interaction and simultaneous displacement of nonspecific molecules from the electrode surface. We demonstrate this simple proof-of-concept approach for the capture and detection of Entamoeba histolytica antigens from disinfected stool, within a span of 5 min using an ac-EHD microfluidic device. Under an ac-EHD field, antigens were captured on a nanoyeast-scFv immobilized device and subsequently detected using a quantum dot conjugated antibody. This immunosensor specifically detected antigen in disinfected stool with low background noise at concentrations down to 58.8 fM with an interassay reproducibility (%RSD of n = 3) < 17.2%, and in buffer down to 5.88 fM with an interassay reproducibility (% RSD, n = 3) of 8.4%. Furthermore, antigen detection using this immunosensor was 10 times more sensitive than previously obtained with the same nanoyeast-scFv reagents in a microfluidic device employing surface-enhanced Raman scattering (SERS) detection in buffer and at least 200 times more sensitive than methods using screen printed gold electrodes in disinfected stool. We predict this rapid and sensitive approach using these stable affinity reagents may offer a new methodology to detect protein disease biomarkers from biological matrices.
机译:新的高性能检测技术和更强大的蛋白质捕获剂可以结合在一起,以快速,特异性地捕获和检测与复杂生物样品中的疾病相关的蛋白质生物标记。在这里,我们证明了使用最近开发的重组亲和试剂,即nanoyeast-scFv,与交流电流体动力学(ac-EHD)诱导的剪切力相结合,可以增强蛋白质生物标志物分析过程中的捕获性能。 ac-EHD的使用显着改善了跨捕获域的流体传输,从而增强了传感器与目标的相互作用,并同时从电极表面置换了非特异性分子。我们展示了这种简单的概念验证方法,可使用ac-EHD微流控设备在5分钟的时间内从消毒的粪便中捕获和检测溶组织性变形杆菌。在ac-EHD场下,抗原被固定在nanoyeast-scFv固定装置上,随后使用量子点偶联抗体进行检测。该免疫传感器可在低背景噪音的无菌粪便中特异性检测抗原,浓度低至58.8 fM,批间可重复性(n = 3的%RSD)<17.2%,缓冲液低至5.88 fM,批间可重复性(%RSD,n = 3)的8.4%。此外,使用该免疫传感器进行抗原检测的灵敏度比以前在相同的纳米酵母-scFv试剂中在缓冲液中采用表面增强拉曼散射(SERS)检测的微流体设备中的灵敏度高10倍,比使用丝网印刷的方法灵敏度高至少200倍消毒粪便中的金电极。我们预测使用这些稳定的亲和试剂的这种快速而灵敏的方法可能会提供一种从生物基质中检测蛋白质疾病生物标志物的新方法。

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