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一种用于从生物介质中直接检测活病毒的光流控纳米等离子体生物传感器。

An optofluidic nanoplasmonic biosensor for direct detection of live viruses from biological media.

机构信息

Photonics Center.

出版信息

Nano Lett. 2010 Dec 8;10(12):4962-9. doi: 10.1021/nl103025u. Epub 2010 Nov 5.

DOI:10.1021/nl103025u
PMID:21053965
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3123676/
Abstract

Fast and sensitive virus detection techniques, which can be rapidly deployed at multiple sites, are essential to prevent and control future epidemics and bioterrorism threats. In this Letter, we demonstrate a label-free optofluidic nanoplasmonic sensor that can directly detect intact viruses from biological media at clinically relevant concentrations with little to no sample preparation. Our sensing platform is based on an extraordinary light transmission effect in plasmonic nanoholes and utilizes group-specific antibodies for highly divergent strains of rapidly evolving viruses. So far, the questions remain for the possible limitations of this technique for virus detection, as the penetration depths of the surface plasmon polaritons are comparable to the dimensions of the pathogens. Here, we demonstrate detection and recognition of small enveloped RNA viruses (vesicular stomatitis virus and pseudotyped Ebola) as well as large enveloped DNA viruses (vaccinia virus) within a dynamic range spanning 3 orders of magnitude. Our platform, by enabling high signal to noise measurements without any mechanical or optical isolation, opens up opportunities for detection of a broad range of pathogens in typical biology laboratory settings.

摘要

快速灵敏的病毒检测技术对于预防和控制未来的传染病和生物恐怖主义威胁至关重要,这些技术能够在多个地点迅速部署。在这封信件中,我们展示了一种无标记的光流体纳米等离子体传感器,它可以直接从临床相关浓度的生物介质中检测完整的病毒,几乎不需要样品制备。我们的传感平台基于等离子纳米孔中的非凡光传输效应,并利用针对快速进化的高度分化病毒株的特异性抗体。到目前为止,人们仍然对该技术用于病毒检测的可能局限性存在疑问,因为表面等离子体激元的穿透深度与病原体的尺寸相当。在这里,我们展示了对小包膜 RNA 病毒(水疱性口炎病毒和假型埃博拉病毒)以及大包膜 DNA 病毒(牛痘病毒)的检测和识别,检测范围跨越 3 个数量级。我们的平台通过在无需任何机械或光学隔离的情况下实现高信噪比测量,为在典型的生物学实验室环境中检测广泛的病原体开辟了机会。

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2
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Viruses. 2010 Mar;2(3):748-781. doi: 10.3390/v2030748. Epub 2010 Mar 23.
3
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4
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5
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