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首页> 外文期刊>Biosensors & Bioelectronics: The International Journal for the Professional Involved with Research, Technology and Applications of Biosensers and Related Devices >Enhancing the performance of paper-based electrochemical impedance spectroscopy nanobiosensors: An experimental approach
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Enhancing the performance of paper-based electrochemical impedance spectroscopy nanobiosensors: An experimental approach

机译:提高纸型电化学阻抗光谱纳米型纳米极具传感器的性能:实验方法

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摘要

Accurate, rapid, and low-cost molecular diagnostics is essential in managing outbreaks of infectious diseases, such as the pandemic of coronavirus disease 2019 (COVID-19). Accordingly, microfluidic paper-based analytical devices (mu PADs) have emerged as promising diagnostic tools. Among the extensive efforts to improve the performance and usability of diagnostic tools, biosensing mechanisms based on electrochemical impedance spectroscopy (EIS) have shown great promise because of their label-free operation and high sensitivity. However, the method to improve EIS biosensing on mu PADs is less explored. Here, we present an experimental approach to enhancing the performance of paper-based EIS biosensors featuring zinc oxide nanowires (ZnO NWs) directly grown on working electrodes (WEs). Through a comparison of different EIS settings and an examination of ZnO-NW effects on EIS measurements, we show that ZnO-NW-enhanced WEs function reliably with Faradaic processes utilizing iron-based electron mediators. We calibrate paper-based EIS biosensors with different morphologies of ZnO-NWs and achieve a low limit of detection (0.4 pg ml(-1)) in detecting p24 antigen as a marker for human immunodeficiency virus (HIV). Through microscopic imaging and electrochemical characterization, we reveal that the morphological and the electrochemical surface areas of ZnO-NW-enhanced WEs indicate the sensitivities and sensing ranges of the EIS nanobiosensors. Finally, we report that the EIS nanobiosensors are capable of differentiating the concentrations (blank, 10 ng ml(-1), 100 ng ml(-1), and 1 mu g ml(-1)) of IgG antibody (CR3022) to SARS-CoV-2 in human serum samples, demonstrating the efficacy of these devices for COVID-19 diagnosis. This work provides a methodology for the rational design of high-performance EIS mu PADs and has the potential to facilitate diagnosis in pandemics.
机译:准确、快速、低成本的分子诊断对于控制传染病的暴发至关重要,例如2019年冠状病毒病(COVID-19)的大流行。因此,微流控纸基分析设备(mu-PAD)已成为一种很有前途的诊断工具。在提高诊断工具性能和可用性的广泛努力中,基于电化学阻抗谱(EIS)的生物传感机制因其无标签操作和高灵敏度而显示出巨大的前景。然而,改善mu焊盘上EIS生物传感的方法探索较少。在这里,我们提出了一种实验方法,以提高直接生长在工作电极(we)上的氧化锌纳米线(ZnO NWs)纸质EIS生物传感器的性能。通过比较不同的EIS设置和检查ZnO NW对EIS测量的影响,我们表明,ZnO NW增强WEs与利用铁基电子介质的法拉第过程可靠地起作用。我们校准了具有不同形貌ZnO NWs的纸基EIS生物传感器,并在检测p24抗原作为人类免疫缺陷病毒(HIV)标记物时实现了低检测限(0.4 pg ml(-1))。通过显微成像和电化学表征,我们发现ZnO NW增强WEs的形态和电化学表面积表明了EIS纳米生物传感器的灵敏度和传感范围。最后,我们2019冠状病毒疾病的EIS纳米生物传感器能够区分浓度(空白,10 ng mL(- 1),100 ng mL(- 1),和1μg mL(-1))的IgG抗体(CR3022)到人血清样品中的SARS COV-2,证明这些设备的COVID-19诊断的功效。这项工作为高性能EIS mu-PAD的合理设计提供了一种方法,并有可能促进流行病的诊断。

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