Yamamura Hisao, Suzuki Yoshiaki, Imaizumi Yuji
Department of Molecular & Cellular Pharmacology, Graduate School of Pharmaceutical Sciences, Nagoya City University, Nagoya 467-8603, Japan.
Department of Molecular & Cellular Pharmacology, Graduate School of Pharmaceutical Sciences, Nagoya City University, Nagoya 467-8603, Japan.
J Pharmacol Sci. 2015 May;128(1):1-7. doi: 10.1016/j.jphs.2015.04.004. Epub 2015 Apr 15.
Ion channels play pivotal roles in a wide variety of cellular functions; therefore, their physiological characteristics, pharmacological responses, and molecular structures have been extensively investigated. However, the mobility of an ion channel itself in the cell membrane has not been examined in as much detail. A total internal reflection fluorescence (TIRF) microscope allows fluorophores to be imaged in a restricted region within an evanescent field of less than 200 nm from the interface of the coverslip and plasma membrane in living cells. Thus the TIRF microscope is useful for selectively visualizing the plasmalemmal surface and subplasmalemmal zone. In this review, we focused on a single-molecule analysis of the dynamic movement of ion channels in the plasma membrane using TIRF microscopy. We also described two single-molecule imaging techniques under TIRF microscopy: fluorescence resonance energy transfer (FRET) for the identification of molecules that interact with ion channels, and subunit counting for the determination of subunit stoichiometry in a functional channel. TIRF imaging can also be used to analyze spatiotemporal Ca(2+) events in the subplasmalemma. Single-molecule analyses of ion channels and localized Ca(2+) signals based on TIRF imaging provide beneficial pharmacological and physiological information concerning the functions of ion channels.
离子通道在多种细胞功能中发挥着关键作用;因此,它们的生理特性、药理反应和分子结构已得到广泛研究。然而,离子通道本身在细胞膜中的流动性尚未得到如此详细的研究。全内反射荧光(TIRF)显微镜能够在活细胞中距盖玻片与质膜界面小于200nm的倏逝场内的受限区域对荧光团进行成像。因此,TIRF显微镜可用于选择性地观察质膜表面和质膜下区域。在本综述中,我们重点介绍了使用TIRF显微镜对质膜中离子通道动态运动进行的单分子分析。我们还描述了TIRF显微镜下的两种单分子成像技术:用于识别与离子通道相互作用分子的荧光共振能量转移(FRET),以及用于确定功能性通道中亚基化学计量的亚基计数。TIRF成像还可用于分析质膜下的时空Ca(2+) 事件。基于TIRF成像的离子通道和局部Ca(2+) 信号的单分子分析提供了有关离子通道功能的有益药理和生理信息。