Laboratory for Membrane Physiology and Technology, Department of Physiology, Faculty of Medicine, University of Freiburg, Hermann-Herder-Str. 7, 79104 Freiburg, Germany.
Lab Chip. 2022 Jul 26;22(15):2902-2910. doi: 10.1039/d2lc00357k.
Optical techniques, such as fluorescence microscopy, are of great value in characterizing the structural dynamics of membranes and membrane proteins. A particular challenge is to combine high-resolution optical measurements with high-resolution voltage clamp electrical recordings providing direct information on single ion channel gating and/or membrane capacitance. Here, we report on a novel chip-based array device which facilitates optical access with water or oil-immersion objectives of high numerical aperture to horizontal free-standing lipid membranes while controlling membrane voltage and recording currents using individual micropatterned Ag/AgCl-electrodes. Wide-field and confocal imaging, as well as time-resolved single photon counting on free-standing membranes spanning sub-nanoliter cavities are demonstrated while electrical signals, including single channel activity, are simultaneously acquired. This optically addressable microelectrode cavity array will allow combined electrical-optical studies of membranes and membrane proteins to be performed as a routine experiment.
光学技术,如荧光显微镜,在描述膜和膜蛋白的结构动力学方面具有重要价值。一个特别的挑战是将高分辨率的光学测量与高分辨率的电压钳电记录相结合,从而提供关于单离子通道门控和/或膜电容的直接信息。在这里,我们报告了一种新型的基于芯片的阵列装置,该装置可以通过水或油浸物镜实现光学访问,具有高数值孔径,适用于水平自由-standing 脂质膜,同时使用单个微图案化的 Ag/AgCl 电极控制膜电压并记录电流。在同时获取电信号(包括单通道活动)的情况下,演示了对跨越亚纳升级腔的自由-standing 膜的宽场和共焦成像以及时间分辨单光子计数。这种可光学寻址的微电极腔阵列将允许作为常规实验进行膜和膜蛋白的电-光联合研究。