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Label-Free Protein Detection by ZnO Nanowire Based Bio-Sensors

机译:基于ZnO纳米线的生物传感器进行无标签蛋白质检测

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There is an increasing demand for portable, reliable, and cost effective bioelectronic systems for applications ranging from clinical diagnosis to homeland security. Conventional detection systems involve labeling the probe molecules, large amount of target molecules to enable detection, and elaborate signal transduction methods. Most of them also have to couple with optical detection equipments that are bulky and expensive. One dimensional (1-D) and two dimensional (2-D) structures such as nanowire, nanobelts and films are capable of detecting the molecular interactions in terms of significant change in their electrical properties leading to ultrahigh sensitivity and easy integration. In this paper, we demonstrate ZnO nanowires based bio-sesnors to detect IgG antibodies. Current-Voltage (I-V) and Scanning Electron Microscopy (SEM) characterization were used to monitor the change in the conductivity as well as morphology. By comparing with the reference sample, the specific binding event between anti-IgG and IgG antibodies was detected. The data indicated a conductivity change by more than 12% after the protein hybridization. SEM images confirm the morphological change from reference samples to reacted samples. In addition, same experiment protocols are carried out for ZnO thin film devices. Similar change in I-V characteristics and morphologies are observed. Through this work, we have demonstrated to use ZnO nanowires as building blocks to fabricate bio-sensors which can potentially detect any protein. Conductimetric sensing results in a label-free detection system as it detects the protein hybridization events electrically.
机译:对于从临床诊断到国土安全的各种应用,对便携式,可靠且具有成本效益的生物电子系统的需求不断增长。常规的检测系统包括标记探针分子,大量目标分子以进行检测以及精心设计的信号转导方法。它们中的大多数还必须与笨重且昂贵的光学检测设备相结合。一维(1-D)和二维(2-D)结构(例如纳米线,纳米带和薄膜)能够检测分子相互作用,因为它们的电性能发生了显着变化,从而导致超高灵敏度和易于集成。在本文中,我们演示了基于ZnO纳米线的生物传感器来检测IgG抗体。电流-电压(I-V)和扫描电子显微镜(SEM)表征用于监测电导率和形态的变化。通过与参考样品进行比较,检测了抗IgG和IgG抗体之间的特异性结合事件。数据表明蛋白质杂交后电导率变化超过12%。 SEM图像证实了从参考样品到反应样品的形态变化。此外,对ZnO薄膜器件进行了相同的实验方案。观察到IV特征和形态的类似变化。通过这项工作,我们证明了将ZnO纳米线用作构建生物传感器的基石,该传感器可以检测任何蛋白质。电导感测导致无标记检测系统,因为它可以电检测蛋白质杂交事件。

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