State Key Lab of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing, China.
Anal Chem. 2012 Oct 16;84(20):8656-62. doi: 10.1021/ac301787x. Epub 2012 Oct 2.
We present a highly sensitive metal enhanced fluorescence (MEF) method based on a novel silver nanostructure fabricated with Cy5-functionalized silver nanoparticles (AgNPs) and AgNO(3). The analytical performance has been demonstrated by microarray detection of streptavidin (SA) and human IgE. The fluorescence intensity can be enhanced substantially with the combined use of AgNPs and fluorescence enhanced solution (FES). Aptamers have been used for the preparation of Tag-C, which demonstrate IgE detection from 0.5 ng/mL to 16 ng/mL, and the limit of detection is determined to be 0.25 ng/mL. SEM images show nanogaps exist in the aggregated silver nanoparticles and the nanogaps allow for the trap of fluorophores in the nanostructures that emit brighter light upon excitation. The silver nanostructures formed by Tags and FES proved to be an excellent platform for MEF of fluorophores whose excitation and emission occurred between 436 nm and 1000 nm. Finite-difference time-domain (FDTD) simulation has been carried out to confirm the enhanced electromagnetic field inside silver nanostructures, leading to strong overlap/resonance coupling and eventual fluorescence enhancement.
我们提出了一种基于新型银纳米结构的高灵敏度金属增强荧光(MEF)方法,该结构由 Cy5 功能化的银纳米粒子(AgNPs)和 AgNO(3)制备而成。通过微阵列检测链霉亲和素(SA)和人 IgE 验证了该分析性能。荧光强度可以通过 AgNPs 和荧光增强溶液(FES)的联合使用得到显著增强。适体已用于制备 Tag-C,其可以检测 0.5 ng/mL 至 16 ng/mL 的 IgE,检测限为 0.25 ng/mL。SEM 图像显示在聚集的银纳米粒子中存在纳米间隙,纳米间隙允许荧光团在纳米结构中被捕获,从而在激发时发出更亮的光。证明由 Tags 和 FES 形成的银纳米结构是 MEF 荧光团的绝佳平台,其激发和发射发生在 436nm 至 1000nm 之间。已经进行了时域有限差分(FDTD)模拟,以确认银纳米结构内部的增强电磁场,从而导致强的重叠/共振耦合并最终实现荧光增强。