Feng Yanlong, Zhou Wenshuai, Wang Xiaofei, Zhang Jian, Zou Min, Zhang Chengxiao, Qi Honglan
Key Laboratory of Analytical Chemistry for Life Science of Shaanxi Province, School of Chemistry and Chemical Engineering, Shaanxi Normal University, Xi'an 710062, People's Republic of China.
Chem Biomed Imaging. 2023 Sep 28;1(7):648-658. doi: 10.1021/cbmi.3c00042. eCollection 2023 Oct 23.
Electrogenerated chemiluminescence (ECL) imaging is gaining increasing attention in various fields because of its high sensitivity, low background, and good temporal and spatial resolution. However, ECL imaging of microsized objects at the opaque electrode via top-view configuration is challenged with the reactants' diffusion and light propagation. Here, we imaged and numerically simulated ruthenium derivative coating polystyrene microbeads (Ru1-PS@MB) at the glassy carbon electrode (GCE) via top-view configuration by ECL imaging. The ruthenium derivative (bis(2,2'-bipyridine)-4'-methyl-4-carboxybipyridine-ruthenium -succinimidyl ester-bis (hexafluorophosphate), Ru1), a typical ECL reagent, was covalently linked onto the surface of aminated PS@MBs via the amide reaction. "Strong emission in edge and weak emission in center" phenomena for fluorescence (FL) and ECL emissions were obtained from Ru1-PS@MB on GCE. Z-Stack imaging of the microsized Ru1-PS@MB luminescence was performed on GCE in the presence of tri--propylamine (TPA). It is found that the clear luminescence range of Ru1-PS@MB perpendicular to the electrode surface in ECL image is slightly smaller than that in the FL image. The bigger was the diameter of the microbeads (from 5 to 18 μm), the larger was the ECL luminescence range of Ru1-PS@MB perpendicular to the electrode surface (from 5 to 7 μm). Our findings, which are also supported by numerical simulation, provide insights into the ECL imaging of microsized objects at the electrode surface, which will raise promising ECL applications in bioassays and cell imaging at the microscale level.
由于具有高灵敏度、低背景以及良好的时间和空间分辨率,电致化学发光(ECL)成像在各个领域正受到越来越多的关注。然而,通过顶视图配置在不透明电极上对微米级物体进行ECL成像面临着反应物扩散和光传播的挑战。在此,我们通过ECL成像,以顶视图配置对玻碳电极(GCE)上的钌衍生物包覆聚苯乙烯微珠(Ru1-PS@MB)进行成像和数值模拟。钌衍生物(双(2,2'-联吡啶)-4'-甲基-4-羧基联吡啶-钌-琥珀酰亚胺酯-双(六氟磷酸盐),Ru1),一种典型的ECL试剂,通过酰胺反应共价连接到胺化PS@MBs的表面。在GCE上从Ru1-PS@MB获得了荧光(FL)和ECL发射的“边缘强发射和中心弱发射”现象。在三丙胺(TPA)存在的情况下,在GCE上对微米级Ru1-PS@MB发光进行了Z轴堆叠成像。发现在ECL图像中,Ru1-PS@MB垂直于电极表面的清晰发光范围略小于FL图像中的发光范围。微珠直径越大(从5到18μm),Ru1-PS@MB垂直于电极表面的ECL发光范围越大(从5到7μm)。我们的发现也得到了数值模拟的支持,为电极表面微米级物体的ECL成像提供了见解,这将在微观尺度的生物测定和细胞成像中引发有前景的ECL应用。