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生物膜静息电位的一种新方法。

A new approach to the rest potential of biological membranes.

作者信息

Bonciocat Nicolae, Marian Iuliu O

机构信息

Department of Physical Chemistry, Faculty of Chemistry and Chemical Engineering, Babeş-Bolyai University, Arany Janos srt. 11, 3400 Cluj-Napoca, Romania.

出版信息

J Pharm Biomed Anal. 2005 Apr 29;37(5):831-8. doi: 10.1016/j.jpba.2004.09.056. Epub 2004 Dec 23.

Abstract

In a series of recent papers, Bonciocat et al., have shown that the faradaic current density of an electrode redox reactions occurring with combined limitations, of charge transfer and nonstationary linear, semi-infinite diffusion, is the solution of an integral equation of Volterra type. This integral equation has been transformed to describe the transport of ions through the interface between two immiscible electrolytic solutions. According to Goldman, Hodkin, Katz theory, the rest potential of a biological membrane is determined by the maintenance of different concentrations of the ions Na+, K+ and Cl-, in the two aqueous solutions separated by the membrane. Using the integral equations (of Volterra type) for the ionic current densities iNa, iK, iCl, and applying the open circuit condition (i.e., iNa + iK + iCl = 0), the potential differences at the junctions: aqueous solution (I)/membrane, respective membrane/aqueous solution (II), have been obtained. To get the diffusion potential across the membrane, the Planck's theory has been used. The sum of these three contributions gives the expression of the rest potential (and a comparison with the Goldman-Hodkin-Katz formula is made, showing in what conditions they become identical formulae).

摘要

在最近的一系列论文中,邦乔卡特等人表明,在电荷转移和非稳态线性半无限扩散的联合限制下发生的电极氧化还原反应的法拉第电流密度,是一个伏尔泰型积分方程的解。这个积分方程已被变换以描述离子通过两种不混溶电解质溶液之间界面的传输。根据戈德曼、霍奇金、凯茨理论,生物膜的静息电位由膜分隔的两种水溶液中离子Na⁺、K⁺和Cl⁻的不同浓度维持所决定。利用离子电流密度iNa、iK、iCl的(伏尔泰型)积分方程,并应用开路条件(即iNa + iK + iCl = 0),已得到在以下界面处的电位差:水溶液(I)/膜,以及相应的膜/水溶液(II)。为了得到跨膜扩散电位,使用了普朗克理论。这三种贡献的总和给出了静息电位的表达式(并与戈德曼 - 霍奇金 - 凯茨公式进行了比较,表明在何种条件下它们成为相同的公式)。

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