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Nonlinear electrical impedance spectroscopy of viruses using very high electric fields created by nanogap electrodes

机译:使用纳米间隙电极产生的极高电场的病毒的非线性电阻抗光谱

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Our living sphere is constantly exposed to a wide range of pathogenic viruses, which can be either known, or of novel origin. Currently, there is no methodology for continuously monitoring the environment for viruses in general, much less a methodology that allows the rapid and sensitive identification of a wide variety of viruses responsible for communicable diseases. Traditional approaches, based on PCR and immunodetection systems, only detect known or specifically targeted viruses. We here describe a simple device that can potentially detect any virus between nanogap electrodes using nonlinear impedance spectroscopy. Three test viruses, differing in shape and size, were used to demonstrate the general applicability of this approach: baculovirus, tobacco mosaic virus (TMV), and influenza virus. We show that each of the virus types responded differently in the nanogap to changes in the electric field strength, and the impedance of the virus solutions differed depending both on virus type and virus concentration. These preliminary results show that the three virus types can be distinguished and their approximate concentrations determined. Although further studies are required, the proposed nonlinear impedance spectroscopy method may achieve a sensitivity comparable to that of more traditional, but less versatile, virus detection systems.
机译:我们的生活领域不断暴露于各种病原性病毒,这些病毒可能是已知的,也可能是新起源的。目前,没有一种方法可以连续地对病毒环境进行总体监控,更不用说可以快速,灵敏地识别引起传染病的多种病毒的方法了。基于PCR和免疫检测系统的传统方法仅检测已知或特定目标的病毒。我们在这里描述了一种简单的设备,该设备可以使用非线性阻抗光谱技术检测纳米间隙电极之间的任何病毒。使用三种形状和大小不同的测试病毒来证明这种方法的一般适用性:杆状病毒,烟草花叶病毒(TMV)和流感病毒。我们显示,每种病毒类型在纳米间隙中对电场强度变化的反应都不同,并且病毒溶液的阻抗取决于病毒类型和病毒浓度而不同。这些初步结果表明,可以区分这三种病毒并确定其近似浓度。尽管还需要进一步的研究,但是提出的非线性阻抗谱方法可以实现与传统的,但通用性较差的病毒检测系统相当的灵敏度。

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