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Peptide Functionalized Gold Nanorods for the Sensitive Detection of a Cardiac Biomarker Using Plasmonic Paper Devices

机译:肽功能化金纳米棒,用于使用等离子纸设备灵敏地检测心脏生物标志物

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The sensitivity of localized surface plasmon resonance (LSPR) of metal nanostructures to adsorbates lends itself to a powerful class of label-free biosensors. Optical properties of plasmonic nanostructures are dependent on the geometrical features and the local dielectric environment. The exponential decay of the sensitivity from the surface of the plasmonic nanotransducer calls for the careful consideration in its design with particular attention to the size of the recognition and analyte layers. In this study, we demonstrate that short peptides as biorecognition elements (BRE) compared to larger antibodies as target capture agents offer several advantages. Using a bioplasmonic paper device (BPD), we demonstrate the selective and sensitive detection of the cardiac biomarker troponin I (cTnI). The smaller sized peptide provides higher sensitivity and a lower detection limit using a BPD. Furthermore, the excellent shelf-life and thermal stability of peptide-based LSPR sensors, which precludes the need for special storage conditions, makes it ideal for use in resource-limited settings.
机译:金属纳米结构的局部表面等离子体共振(LSPR)对吸附物的敏感性使其自身成为一类功能强大的无标记生物传感器。等离子体纳米结构的光学性质取决于几何特征和局部介电环境。等离子体纳米换能器表面灵敏度的指数衰减要求在设计时仔细考虑,尤其要注意识别层和分析物层的大小。在这项研究中,我们证明与作为目标捕获剂的较大抗体相比,作为生物识别元件(BRE)的短肽具有多个优势。使用生物等离子体纸设备(BPD),我们演示了对心脏生物标志物肌钙蛋白I(cTnI)的选择性和灵敏检测。较小尺寸的肽使用BPD可提供更高的灵敏度和更低的检测限。此外,基于肽的LSPR传感器具有出色的保质期和热稳定性,因此无需特殊的存储条件,使其非常适合在资源有限的环境中使用。

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