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以DNA为模板的银纳米簇作为由葡萄糖驱动的自供电生物传感器的双模式灵敏探针。

DNA-Templated Silver Nanoclusters as Dual-Mode Sensitive Probes for Self-Powered Biosensor Fueled by Glucose.

作者信息

Gupta Akhilesh Kumar, Krasnoslobodtsev Alexey V

机构信息

Department of Physics, University of Nebraska at Omaha, Omaha, NE 68182, USA.

出版信息

Nanomaterials (Basel). 2023 Apr 7;13(8):1299. doi: 10.3390/nano13081299.

Abstract

Nanomaterials have been extensively explored in developing sensors due to their unique properties, contributing to the development of reliable sensor designs with improved sensitivity and specificity. Herein, we propose the construction of a fluorescent/electrochemical dual-mode self-powered biosensor for advanced biosensing using DNA-templated silver nanoclusters (AgNCs@DNA). AgNC@DNA, due to its small size, exhibits advantageous characteristics as an optical probe. We investigated the sensing efficacy of AgNCs@DNA as a fluorescent probe for glucose detection. Fluorescence emitted by AgNCs@DNA served as the readout signal as a response to more HO being generated by glucose oxidase for increasing glucose levels. The second readout signal of this dual-mode biosensor was utilized via the electrochemical route, where AgNCs served as charge mediators between the glucose oxidase (GOx) enzyme and carbon working electrode during the oxidation process of glucose catalyzed by GOx. The developed biosensor features low-level limits of detection (LODs), ~23 μM for optical and ~29 μM for electrochemical readout, which are much lower than the typical glucose concentrations found in body fluids, including blood, urine, tears, and sweat. The low LODs, simultaneous utilization of different readout strategies, and self-powered design demonstrated in this study open new prospects for developing next-generation biosensor devices.

摘要

由于其独特的性质,纳米材料在传感器开发中得到了广泛的探索,有助于开发出具有更高灵敏度和特异性的可靠传感器设计。在此,我们提出构建一种用于先进生物传感的荧光/电化学双模式自供电生物传感器,该传感器使用DNA模板化的银纳米簇(AgNCs@DNA)。由于其尺寸小,AgNC@DNA作为光学探针表现出有利的特性。我们研究了AgNCs@DNA作为葡萄糖检测荧光探针的传感效果。AgNCs@DNA发出的荧光作为读出信号,以响应葡萄糖氧化酶产生更多的H₂O₂来增加葡萄糖水平。这种双模式生物传感器的第二个读出信号是通过电化学途径利用的,在葡萄糖氧化酶(GOx)催化葡萄糖的氧化过程中,AgNCs作为GOx酶和碳工作电极之间的电荷介质。所开发的生物传感器具有低检测限(LOD),光学检测限约为23 μM,电化学读出检测限约为29 μM,远低于在包括血液、尿液、眼泪和汗液在内的体液中发现的典型葡萄糖浓度。本研究中展示的低检测限、不同读出策略的同时使用以及自供电设计为开发下一代生物传感器设备开辟了新的前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/57f5/10145323/78510dd59169/nanomaterials-13-01299-g001.jpg

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