Univ. Bordeaux, Bordeaux INP, CNRS, UMR 5255, Site ENSCBP, 33607, Pessac, France; School of Pharmacy, Nanjing Medical University, Nanjing, Jiangsu, 211126, China.
Univ. Bordeaux, Bordeaux INP, CNRS, UMR 5255, Site ENSCBP, 33607, Pessac, France.
Biosens Bioelectron. 2022 Nov 15;216:114640. doi: 10.1016/j.bios.2022.114640. Epub 2022 Aug 18.
Bead-based assays are successfully combined with electrochemiluminescence (ECL) technology for detection of a wide range of biomarkers. Herein, we demonstrate a novel approach to enhance the ECL signal by decorating micrometric beads with [Ru(bpy)]-grafted microgels (diameter ∼100 nm). Rapid and stable light emission was spatially resolved at the level of single functionalized beads. An enhancement of the ECL signal of microgel-labeled beads by 9-fold was observed in comparison to molecularly linked [Ru(bpy)] beads prepared by a sandwich immunoassay or an amide bond. Imaging the ECL signal at the single bead level shows that the size of the ECL-emitting layer is extended using the microgels. The reported method offers a great promise for the optimization of bead-based ECL detection and subsequent development of ECL microscopy.
基于珠粒的分析方法与电化学发光(ECL)技术成功结合,可用于检测广泛的生物标志物。在此,我们展示了一种通过用[Ru(bpy)]接枝微凝胶(直径约 100nm)来修饰微米级珠粒以增强 ECL 信号的新方法。在单个功能化珠粒水平上,快速稳定的发光在空间上得到了分辨。与通过夹心免疫测定或酰胺键制备的分子连接的[Ru(bpy)]珠相比,观察到微凝胶标记珠的 ECL 信号增强了 9 倍。在单个珠粒水平上对 ECL 信号进行成像表明,使用微凝胶扩展了 ECL 发射层的尺寸。该报告的方法为优化基于珠粒的 ECL 检测以及随后开发 ECL 显微镜提供了很大的前景。