Chen Wei, Yang Lijun, Yan Chao, Yao Bangben, Lu Jianfeng, Xu Jianguo, Liu Guodong
Engineering Research Center of Bioprocess, MOE, School of Food & Biological Engineering, Hefei University of Technology, Hefei 230009, China.
Research Center for Biomedical and Health Science, School of Life and Health, Anhui Science & Technology University, Fengyang 233100, China.
ACS Sens. 2020 Aug 28;5(8):2644-2651. doi: 10.1021/acssensors.0c01230. Epub 2020 Jul 23.
Overuse and abuse of morphine (MOP), one of the main components of pericarpium papaveris, have attracted increasing attention in the medical field owing to its pharmacological and toxicological activity. Herein, we proposed a new electrochemical nano-biosensor for MOP detection based on surface-confined building of Au@Pt-centered and multi-G-quadruplex/hemin wire-surrounded electroactive super-nanostructures. The center Au@Pt was flower-shaped and irregularly protruded, allowing substantial loading of multiple G-quadruplex wire/hemin complexes on its surface to accomplish the assembly of electroactive super-nanostructures. Interestingly, as the super-nanostructures were closely confined on the electrode surface, a significantly amplified electrochemical signal was thus obtained in the absence of MOP. In contrast, the introduction of target MOP can induce an intense competitive effect and strongly destroy the assembly process, resulting in the reduction of the electrochemical response that is correlated with the logarithmic concentration of MOP. Under optimal conditions, the electrochemical nano-biosensor is capable of highly sensitive detection of MOP in a dynamic concentration range from 1 ppt to 500 ppb. The limit of detection is achieved as low as 0.69 ppt, and the practical application was confirmed by examining MOP from chafing dish condiments. We expect the electrochemical platform utilizing this unique nanoarchitecture to provide rational guidelines to design high-performance analytical tools.
罂粟壳主要成分之一吗啡(MOP)的过度使用和滥用,因其药理和毒理活性在医学领域引起了越来越多的关注。在此,我们基于以Au@Pt为中心、多G-四链体/血红素线包围的电活性超纳米结构的表面受限构建,提出了一种用于检测MOP的新型电化学纳米生物传感器。中心的Au@Pt呈花状且不规则突出,允许其表面大量负载多个G-四链体线/血红素复合物,以完成电活性超纳米结构的组装。有趣的是,由于超纳米结构紧密限制在电极表面,因此在没有MOP的情况下获得了显著放大的电化学信号。相反,目标MOP的引入会引发强烈的竞争效应并强烈破坏组装过程,导致与MOP对数浓度相关的电化学响应降低。在最佳条件下,该电化学纳米生物传感器能够在1 ppt至500 ppb的动态浓度范围内对MOP进行高灵敏度检测。检测限低至0.69 ppt,通过检测火锅调味料中的MOP证实了其实际应用。我们期望利用这种独特纳米结构的电化学平台为设计高性能分析工具提供合理指导。