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基于膜片钳荧光测定法的通道计数以确定超极化激活环核苷酸门控通道(HCN通道)的电导

Patch-clamp fluorometry-based channel counting to determine HCN channel conductance.

作者信息

Liu Chang, Xie Changan, Grant Khade, Su Zhuocheng, Gao Weihua, Liu Qinglian, Zhou Lei

机构信息

Department of Physiology and Biophysics, School of Medicine, Virginia Commonwealth University, Richmond, VA 23298 School of Medicine, Nankai University, Tianjin 300071, China.

Department of Physiology and Biophysics, School of Medicine, Virginia Commonwealth University, Richmond, VA 23298.

出版信息

J Gen Physiol. 2016 Jul;148(1):65-76. doi: 10.1085/jgp.201511559.

Abstract

Counting ion channels on cell membranes is of fundamental importance for the study of channel biophysics. Channel counting has thus far been tackled by classical approaches, such as radioactive labeling of ion channels with blockers, gating current measurements, and nonstationary noise analysis. Here, we develop a counting method based on patch-clamp fluorometry (PCF), which enables simultaneous electrical and optical recordings, and apply it to EGFP-tagged, hyperpolarization-activated and cyclic nucleotide-regulated (HCN) channels. We use a well-characterized and homologous cyclic nucleotide-gated (CNG) channel to establish the relationship between macroscopic fluorescence intensity and the total number of channels. Subsequently, based on our estimate of the total number of HCN channels, we determine the single-channel conductance of HCN1 and HCN2 to be 0.46 and 1.71 pS, respectively. Such a small conductance would present a technical challenge for traditional electrophysiology. This PCF-based technique provides an alternative method for counting particles on cell membranes, which could be applied to biophysical studies of other membrane proteins.

摘要

对细胞膜上的离子通道进行计数对于通道生物物理学的研究至关重要。迄今为止,通道计数一直通过经典方法来解决,例如用阻滞剂对离子通道进行放射性标记、门控电流测量和非平稳噪声分析。在此,我们开发了一种基于膜片钳荧光测定法(PCF)的计数方法,该方法能够同时进行电学和光学记录,并将其应用于绿色荧光蛋白(EGFP)标记的超极化激活且受环核苷酸调节(HCN)的通道。我们使用一种特性明确且同源的环核苷酸门控(CNG)通道来建立宏观荧光强度与通道总数之间的关系。随后,基于我们对HCN通道总数的估计,我们确定HCN1和HCN2的单通道电导分别为0.46和1.71皮西门子。如此小的电导对于传统电生理学来说将是一个技术挑战。这种基于PCF的技术为细胞膜上的粒子计数提供了一种替代方法,可应用于其他膜蛋白的生物物理学研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/be6e/4924933/e42ccbe7a80d/JGP_201511559_Fig1.jpg

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