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基于金纳米颗粒和滚环扩增的太赫兹超材料生物传感器对其进行高灵敏度检测。 (你提供的原文中“by a THz metamaterial biosensor based on gold nanoparticles and rolling circle amplification.”前面缺少具体检测对象,我根据英文表达习惯进行了补充翻译,若有特殊要求请指出。)

Highly sensitive detection of by a THz metamaterial biosensor based on gold nanoparticles and rolling circle amplification.

作者信息

Yang Ke, Yu Wenjing, Huang Guorong, Zhou Jie, Yang Xiang, Fu Weiling

机构信息

Department of Laboratory Medicine, Southwest Hospital, Third Military Medical University (Army Medical University) Chongqing 400038 China

出版信息

RSC Adv. 2020 Jul 17;10(45):26824-26833. doi: 10.1039/d0ra03116j. eCollection 2020 Jul 15.

Abstract

A highly sensitive method for detecting () is urgently needed to reduce the impact and spread of hospital-acquired infections and food-borne illness. For this purpose, this paper presents a THz metamaterial biosensor based on gold nanoparticles (AuNPs) and rolling circle amplification (RCA). The RCA process amplified the DNA fragments and generated copious yields of long single-strand DNA molecules. These molecules were then conjugated with the AuNPs to form complexes that delivered exceptional increases in the refractive indices of the samples, and resulted in corresponding improvements in the THz response of the metamaterial. Under optimal conditions, the shifts in the metamaterial's resonance frequency displayed a linear relationship with concentrations of synthetic DNA in the range from 10 fM to 10 pM, with a limit of detection of 2.77 fM. We also tested the practical application of this biosensor in measurements of genomic DNA in clinical bacterial strains, where the sensor showed a detection limit of 0.08 pg μL and a linear range from 0.1 to 5 pg μL. It also exhibited reasonable specificity, resisting interference from three other pathogenic bacteria. These findings indicate that the proposed approach offers a cost-effective THz biosensing strategy that can be easily fabricated and conveniently operated to aid the diagnosis of infectious disease and food safety control.

摘要

迫切需要一种高灵敏度的方法来检测(),以减少医院获得性感染和食源性疾病的影响及传播。为此,本文提出了一种基于金纳米颗粒(AuNPs)和滚环扩增(RCA)的太赫兹超材料生物传感器。RCA过程扩增了DNA片段,并产生了大量的长单链DNA分子。然后将这些分子与AuNPs结合形成复合物,这些复合物使样品的折射率显著增加,并导致超材料的太赫兹响应相应改善。在最佳条件下,超材料共振频率的变化与合成DNA浓度在10 fM至10 pM范围内呈线性关系,检测限为2.77 fM。我们还测试了这种生物传感器在临床细菌菌株基因组DNA测量中的实际应用,该传感器的检测限为0.08 pg μL,线性范围为0.1至5 pg μL。它还表现出合理的特异性,能抵抗其他三种病原菌的干扰。这些发现表明,所提出的方法提供了一种经济高效的太赫兹生物传感策略,该策略易于制造且操作方便,有助于传染病诊断和食品安全控制。

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