Jiangsu Key Laboratory of New Drug Research and Clinical Pharmacy, School of Pharmacy, Xuzhou Medical University, 221004 Xuzhou, China.
Jiangsu Key Laboratory of New Drug Research and Clinical Pharmacy, School of Pharmacy, Xuzhou Medical University, 221004 Xuzhou, China.
Biosens Bioelectron. 2016 Dec 15;86:185-193. doi: 10.1016/j.bios.2016.06.055. Epub 2016 Jun 19.
In this work, a novel and sensitive sandwich-type electrochemical aptasensor has been developed for thrombin detection based on platinum nanoparticles (Pt NPs) decorated carbon nanocages (CNCs) as signal tags. The morphological and compositional of the Pt NPs/CNCs were examined using transmission electron microscopy, X-ray diffraction, and Raman spectroscopy. The results showed that the Pt NPs with about 3-5nm in diameter were well dispersed on the surface of CNCs. The thiolated aptamer was firstly immobilized on the gold electrode to capture the thrombin molecules, and then aptamer functionalized Pt NPs/CNCs nanocomposites were used to fabricate a sandwich sensing platform. Then, the high-content Pt NPs on carbon nanocages acting as hydrogen peroxide-mimicking enzyme catalyzed the reduction of H2O2, resulting in significant electrochemical signal amplification. Differential pulse voltammetry is employed to detect thrombin with different concentrations. Under optimized conditions, the approach provided a good linear response range from 0.05 pM to 20nM with a low detection limit of 10fM. This Pt NPs/CNCs-based aptasensor shows good precision, acceptable stability and reproducibility, which provided a promising strategy for electrochemical aptamer-based detection of other biomolecules.
在这项工作中,基于铂纳米粒子 (Pt NPs) 修饰的碳纳米笼 (CNCs) 作为信号标记物,开发了一种用于凝血酶检测的新型灵敏三明治型电化学适体传感器。使用透射电子显微镜、X 射线衍射和拉曼光谱对 Pt NPs/CNCs 的形态和组成进行了检查。结果表明,直径约为 3-5nm 的 Pt NPs 均匀分散在 CNCs 表面。巯基化适体首先固定在金电极上以捕获凝血酶分子,然后使用适体功能化的 Pt NPs/CNCs 纳米复合材料来构建三明治传感平台。然后,作为过氧化物酶模拟物的高含量 Pt NPs 上的碳纳米笼催化 H2O2 的还原,导致电化学信号显著放大。采用差分脉冲伏安法检测不同浓度的凝血酶。在优化条件下,该方法提供了从 0.05 pM 到 20nM 的良好线性响应范围,检测限低至 10fM。基于 Pt NPs/CNCs 的适体传感器具有良好的精度、可接受的稳定性和重现性,为基于电化学适体的其他生物分子检测提供了一种有前途的策略。