College of Ecological Environment and Urban Construction, Fujian University of Technology, Fuzhou, 350108 PR China.
College of Ecological Environment and Urban Construction, Fujian University of Technology, Fuzhou, 350108 PR China.
Biosens Bioelectron. 2017 Jan 15;87:439-446. doi: 10.1016/j.bios.2016.08.022. Epub 2016 Aug 9.
Detection of ultralow concentration of heavy metal ion Hg is important for human health protection and environment monitoring because of the gradual accumulation in environmental and biological fields. Herein, we report a convenient chemiluminescence (CL) biosensing platform for ultrasensitive Hg detection by signal amplification mechanism from positively charged gold nanoparticles ((+)AuNPs). It is based on (+)AuNPs charge effect and aptamer conformation change induced by target to stimulate the generation of CL in the presence of HO and luminol without high salt medium. Notably particularly, the typical problem of the high salt medium from (-) AuNPs system, like influencing aptamers' bind with target and hindering CL reaction can be effectively addressed through the direct introduction of (+)AuNPs. Therefore, the proposed biosensing exhibits a high sensitivity toward target Hg with a detection limit of 16 pM, which is far below the limit (10nM) defined by the U.S. Environmental Protection Agency in drinkable water, and is about 10-fold lower than the previously reported aptamer-based assays for Hg. This sensing platform provides a simple, rapid, and cost-effective approach for label-free sensitive detection of Hg. Moreover, it is universal for the detection of other targets. Undoubtedly, such a direct utilizing of (+)AuNPs' charge effect will provide a new signal amplification way for label-free aptamer-based CL analysis.
由于重金属离子 Hg 在环境和生物领域中的逐渐积累,对其进行超痕量检测对于人类健康保护和环境监测至关重要。在此,我们报道了一种基于正电荷金纳米粒子(+AuNPs)信号放大机制的简便化学发光(CL)生物传感平台,用于超灵敏的 Hg 检测。该平台基于+AuNPs 的电荷效应和适配体构象变化,在无高盐介质的情况下,通过目标物刺激 HO 和鲁米诺产生 CL。值得注意的是,通过直接引入+AuNPs,可以有效解决- AuNPs 体系中高盐介质的典型问题,如影响适配体与目标物的结合和阻碍 CL 反应。因此,该生物传感平台对目标 Hg 表现出高灵敏度,检测限低至 16 pM,远低于美国环保署在饮用水中规定的限值(10nM),比先前报道的基于适配体的 Hg 检测方法低约 10 倍。该传感平台为 Hg 的无标记灵敏检测提供了一种简单、快速、经济有效的方法。此外,它还可普遍用于检测其他目标物。这种直接利用+AuNPs 电荷效应的方法,无疑为无标记适配体 CL 分析提供了一种新的信号放大途径。