质膜与胞外液间期离子和水性质的研究方法。

The Journal of Physiological Sciences Pub Date : 2017-07-01 Epub Date: 2017-02-17 DOI:10.1007/s12576-017-0530-3
Hiroshi Hibino, Madoka Takai, Hidenori Noguchi, Seishiro Sawamura, Yasufumi Takahashi, Hideki Sakai, Hitoshi Shiku
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引用次数: 0

摘要

在体内,细胞浸泡在含有多种生物活性物质(包括离子和水)的细胞外溶液中。对胃和小肠上皮细胞的经典电生理分析表明,在其顶端质膜上方几百微米的距离内,存在一层细胞外层,其离子浓度梯度在体相中是检测不到的。这种含有停滞溶质的“未搅拌层”也可能存在于有机体中大量的细胞外溶液和其他细胞的膜之间,并可能表现出不同的性质。另一方面,一项使用细菌平面膜的早期研究表明,从转运体释放的H+沿膜表面水平方向的迁移速度远快于向细胞外空间垂直扩散的速度。这一结果表明,在膜表面和未搅拌层之间存在一个具有独特离子动力学的“纳米界面”。先进的技术表明,人造膜上的纳米界面可能包含高度有序的水分子组装。一般来说,氢键参与有序水结构的形成,并能介导H+在相邻分子之间的快速转移。这种描述可能与细菌膜上的现象相符。最近的一项研究表明,纳米界面中的水分子调节了K+通道的门控。在这里,包含未搅拌层和纳米界面的区域被定义为质膜和大块细胞外溶液(iMES)之间的界面。本文简要介绍了离子和水的物理化学性质及其生理意义。我们还描述了目前使用或将适用于间期研究的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An approach to the research on ion and water properties in the interphase between the plasma membrane and bulk extracellular solution.

In vivo, cells are immersed in an extracellular solution that contains a variety of bioactive substances including ions and water. Classical electrophysiological analyses of epithelial cells in the stomach and small intestine have revealed that within a distance of several hundred micrometers above their apical plasma membrane, lies an extracellular layer that shows ion concentration gradients undetectable in the bulk phase. This "unstirred layer", which contains stagnant solutes, may also exist between the bulk extracellular solution and membranes of other cells in an organism and may show different properties. On the other hand, an earlier study using a bacterial planar membrane indicated that H+ released from a transporter migrates in the horizontal direction along the membrane surface much faster than it diffuses vertically toward the extracellular space. This result implies that between the membrane surface and unstirred layer, there is a "nanointerface" that has unique ionic dynamics. Advanced technologies have revealed that the nanointerface on artificial membranes possibly harbors a highly ordered assembly of water molecules. In general, hydrogen bonds are involved in formation of the ordered water structure and can mediate rapid transfer of H+ between neighboring molecules. This description may match the phenomenon on the bacterial membrane. A recent study has suggested that water molecules in the nanointerface regulate the gating of K+ channels. Here, the region comprising the unstirred layer and nanointerface is defined as the interphase between the plasma membrane and bulk extracellular solution (iMES). This article briefly describes the physicochemical properties of ions and water in the iMES and their physiological significance. We also describe the methodologies that are currently used or will be applicable to the interphase research.

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