Department of Chemical and Biomolecular Engineering, Yonsei University, 50 Yonsei-ro, Seodaemun-gu, Seoul 120-749, Republic of Korea.
Biofabrication. 2018 Mar 16;10(3):035002. doi: 10.1088/1758-5090/aab004.
In this study, we developed an enzyme-based miniaturized fluorescence biosensor to detect paraoxon, one of the most well-known neurotoxic organophosphorus compounds. The biosensor was fabricated with poly(ethylene glycol) (PEG) hydrogel microarrays that entrapped acetylcholinesterase (AChE) and quantum dots (QDs) as fluorescence reporters. Metal-enhanced fluorescence (MEF) was utilized to amplify the fluorescence signal, which was achieved by decorating QDs on the surface of silica-coated silver nanoparticles (Ag@Silica). The MEF effects of Ag@Silica were optimized by tuning the thickness of the silica shells, and under the optimized conditions, the fluorescence intensity was shown to be increased 5 fold, compared with the system without MEF. PEG hydrogel microarray entrapping QD-decorated Ag@Silica and AChE was prepared via photopatterning process. The entrapped AChE hydrolyzed paraoxon to produce p-nitrophenol within the hydrogel microstructure, which subsequently quenched the fluorescence of the QDs on the surface of Ag@Silica. The MEF-assisted fluorescence detection resulted in a significant enhancement of paraoxon detection. The detection limit was approximately 1.0 × 10 M and 2.0 × 10 M for sensing with and without MEF, respectively. The successful integration of a hydrogel microarray system with a microfluidic system was demonstrated to be a potential application for the MEF-based micro-total-analysis-system.
在这项研究中,我们开发了一种基于酶的微型荧光生物传感器来检测对氧磷,这是最著名的神经毒有机磷化合物之一。该生物传感器是由聚乙二醇(PEG)水凝胶微阵列制成的,其中包埋了乙酰胆碱酯酶(AChE)和量子点(QDs)作为荧光报告物。金属增强荧光(MEF)被用于放大荧光信号,这是通过在硅涂层的银纳米粒子(Ag@Silica)表面修饰 QDs 来实现的。通过调整硅壳的厚度优化了 Ag@Silica 的 MEF 效应,在优化条件下,与没有 MEF 的系统相比,荧光强度增加了 5 倍。通过光图案化过程制备了包埋有 QD 修饰的 Ag@Silica 和 AChE 的 PEG 水凝胶微阵列。包埋的 AChE 将对氧磷水解生成对硝基苯酚,随后猝灭 Ag@Silica 表面 QDs 的荧光。MEF 辅助荧光检测导致对氧磷检测的显著增强。在有和没有 MEF 的情况下,检测限分别约为 1.0×10 M 和 2.0×10 M。成功地将水凝胶微阵列系统与微流控系统集成在一起,证明了 MEF 基微全分析系统的潜在应用。