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一种基于四面体DNA纳米结构作为信号探针载体平台的电化学适体传感器,用于灵敏检测展青霉素。

An electrochemical aptasensor based on tetrahedral DNA nanostructures as a signal probe carrier platform for sensitive detection of patulin.

作者信息

He Baoshan, Lu Xia

机构信息

School of Food Science and Technology, Henan Key Laboratory of Cereal and Oil Food Safety Inspection and Control, Henan University of Technology, Zhengzhou, 450001, PR China.

School of Food Science and Technology, Henan Key Laboratory of Cereal and Oil Food Safety Inspection and Control, Henan University of Technology, Zhengzhou, 450001, PR China.

出版信息

Anal Chim Acta. 2020 Nov 22;1138:123-131. doi: 10.1016/j.aca.2020.09.025. Epub 2020 Sep 15.

Abstract

In this work, we proposed an electrochemical aptasensor for patulin (PAT) based on tetrahedral DNA nanostructures (TDNs) and thionine (Thi)-labeled FeO nanoparticles (FeONPs)/rGO signal amplification strategy. The rigid structure of TDNs could effectively improve the binding efficiency. FeONPs/rGO with excellent electrical conductivity and large specific surface area was used as a label material, which could load more Thi and accelerate electron transfer. Besides, the unique catalytic properties of FeONPs could achieve active signal amplification. Once PAT existed, PAT aptamer was released from the capture probe, thereby introducing FeONPs/rGO with Thi onto the electrode surface. Therefore, a noticeable increase in Thi current intensity was observed. Under the optimized conditions, the proposed aptasensor showed superior performance with a linear range from 5 × 10 to 5 × 10 μg mL and a detection limit of 30.4 fg mL. The obtained sensor showed reliable specificity, stability and reproducibility, and was successfully applied to the determination of real samples.

摘要

在本工作中,我们基于四面体DNA纳米结构(TDNs)和硫堇(Thi)标记的FeO纳米颗粒(FeONPs)/还原氧化石墨烯(rGO)信号放大策略,提出了一种用于检测展青霉素(PAT)的电化学适体传感器。TDNs的刚性结构可有效提高结合效率。具有优异导电性和大比表面积的FeONPs/rGO用作标记材料,其可负载更多的Thi并加速电子转移。此外,FeONPs独特的催化性能可实现活性信号放大。一旦存在PAT,PAT适体就会从捕获探针上释放出来,从而将带有Thi的FeONPs/rGO引入电极表面。因此,观察到Thi电流强度有明显增加。在优化条件下,所提出的适体传感器表现出优异的性能,线性范围为5×10至5×10μg mL,检测限为30.4 fg mL。所获得的传感器显示出可靠的特异性、稳定性和重现性,并成功应用于实际样品的测定。

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