Key Laboratory of Interfacial Reaction & Sensing Analysis in Universities of Shandong, School of Chemistry and Chemical Engineering, University of Jinan, Jinan 250022, P. R. China.
Collaborative Innovation Center for Green Chemical Manufacturing and Accurate Detection, University of Jinan, Jinan 250022, P. R. China.
Anal Chem. 2023 Jun 6;95(22):8679-8686. doi: 10.1021/acs.analchem.3c01285. Epub 2023 May 23.
Improving the sensitivity and accuracy of bioimmunoassays has been the focus of research into the development of electrochemiluminescence (ECL) sensing platforms, as this is a critical factor in their application to practical analysis. In this work, an electrochemiluminescence-electrochemistry (ECL-EC) dual-mode biosensing platform based on an "off-on-super on" signals pattern strategy was developed for the ultrasensitive detection of Microcystin-LR (MC-LR). In this system, sulfur quantum dots (SQDs) are a novel class of ECL cathode emitter with almost no potentially toxic effects. The sensing substrate is made from rGO/TiCT composites, whose huge specific surface area greatly reduces the possibility of aggregation-caused quenching of SQDs. The ECL detection system was constructed based on the ECL-resonance energy transfer (ERET) strategy, where methylene blue (MB) with an ECL receptor function was bound to the aptamer of MC-LR by electrostatic adsorption and the center actual distance between the donor and the acceptor was calculated to be 3.84 nm, which was verified to be in accordance with the ERET theory. Meanwhile, the introduction of Ag as an ECL signal-amplifying molecule greatly improved the sensitivity of sensing analysis. Based on the specific binding of MC-LR to the aptamer, the concentration of MC-LR was found to have a positive correlation with the ECL signal. Also, EC detection was realized with the benefit of the excellent electrochemical properties of MB. The dual-mode biosensor greatly improves the confidence of the detection, examination areas of 0.001-100 pg/mL with MC-LR for ECL and EC were obtained, and the detection limits are 0.17 and 0.24 pg/mL, respectively.
提高生物免疫分析的灵敏度和准确性一直是电化学发光(ECL)传感平台发展的研究重点,因为这是将其应用于实际分析的关键因素。在这项工作中,开发了一种基于“关-开-超开”信号模式策略的电化学发光-电化学(ECL-EC)双模生物传感平台,用于超灵敏检测微囊藻毒素-LR(MC-LR)。在该系统中,硫量子点(SQDs)是一类新型的 ECL 阴极发射器,几乎没有潜在的毒性影响。传感基底由 rGO/TiCT 复合材料制成,其巨大的比表面积大大降低了 SQDs 聚集引起的猝灭的可能性。ECL 检测系统是基于 ECL-共振能量转移(ERET)策略构建的,其中具有 ECL 受体功能的亚甲基蓝(MB)通过静电吸附与 MC-LR 的适体结合,计算出供体和受体之间的中心实际距离为 3.84nm,这与 ERET 理论相符。同时,引入 Ag 作为 ECL 信号放大分子,大大提高了传感分析的灵敏度。基于 MC-LR 与适体的特异性结合,发现 MC-LR 的浓度与 ECL 信号呈正相关。此外,得益于 MB 的优异电化学性能,实现了 EC 检测。双模生物传感器大大提高了检测的可信度,对于 ECL 和 EC,MC-LR 的检测范围分别为 0.001-100pg/mL,检测限分别为 0.17 和 0.24pg/mL。