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组装各向异性等离子体片-核-卫星,用于同时超灵敏检测 MC-LR 毒素。

Assembling of anisotropic plasmonic sheet-core-satellites for simultaneous ultrasensitive detection of MC-LR toxin.

机构信息

Institute of Solid State Physics, HeFei Institutes of Physical Science, Chinese Academy of Sciences, Hefei, Anhui 230031, P. R. China.

Science Island Branch, Graduate School of University of Science and Technology of China, Hefei, Anhui 230026, P. R. China.

出版信息

Analyst. 2021 Nov 8;146(22):7005-7020. doi: 10.1039/d1an01524a.

Abstract

An anisotropic plasmonic sheet-core-satellite (PSCS) superstructure can be controlled competitive binding between aptamer/MC-LR conjugation and aptamer-ssDNA hybridization. SERS nanotags can be incorporated into anisotropic plasmonic sheet-cores, , pGO/nanorods, or pGO/hollow AgCl : Au nanoplates so as to fabricate an aptasensor for "ON-OFF" detection of MC-LR toxin. Preparing a PSCS superstructure and detection of toxin can be simultaneously completed so as to simplify the detection procedure of MC-LR toxin. Detection sensitivity of MC-LR toxin can be optimized by controlling aspect ratios or hollow interiors of plasmonic core nanoparticles. Herein, a limit of detection (0.635 pM) with a wide linear range from 1 pM to 10 nM can be obtained optimized PSCS of pGO/nanorod/dotnanotags. When the aptasensor was tested in real samples, the PSCS shows excellent recoveries from 96.6% to 104.5% with relative standard deviation (RSD) lower than 2.89% in spiked reservoir samples. It can be predicted that a one-step facile nanofabrication/aptasensing approach would be extensively applied for rapid detection of some other environmental contaminants.

摘要

各向异性等离子体片-核-卫星(PSCS)超结构可以控制适体/MC-LR 缀合物与适体-ssDNA 杂交之间的竞争结合。SERS 纳米标签可以被整合到各向异性等离子体片核中、pGO/纳米棒中或 pGO/空心 AgCl:Au 纳米盘中,以制备用于 MC-LR 毒素的“开-关”检测的适体传感器。可以同时完成 PSCS 超结构的制备和毒素的检测,从而简化 MC-LR 毒素的检测程序。通过控制等离子体核纳米粒子的纵横比或空心内部,可以优化 MC-LR 毒素的检测灵敏度。在此,通过优化的 pGO/纳米棒/点纳米标签的 PSCS,可以获得检测 MC-LR 毒素的检测限(0.635 pM)和从 1 pM 到 10 nM 的宽线性范围。当将该适体传感器用于实际样品时,在储液器样品中添加的 PSCS 显示出从 96.6%到 104.5%的优异回收率,相对标准偏差(RSD)低于 2.89%。可以预测,这种一步简便的纳米制造/适体感应方法将广泛应用于一些其他环境污染物的快速检测。

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