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中枢神经系统中钾动力学模型。

Model of potassium dynamics in the central nervous system.

作者信息

Odette L L, Newman E A

机构信息

Applied Expert Systems, Inc., Cambridge, Massachusetts 02142.

出版信息

Glia. 1988;1(3):198-210. doi: 10.1002/glia.440010305.

Abstract

A one-dimensional numerical model of potassium dynamics in the central nervous system is developed. The model incorporates the following physiological processes in computing spatial and temporal changes in extracellular K+ concentration, [K+]o: 1) the release of K+ from K+ sources into extracellular space, 2) diffusion of K+ through extracellular space, 3) active uptake of K+ into cells and blood vessels, 4) passive uptake of K+ into a cellular distribution space, and 5) the transfer of K+ by K+ spatial buffer current flow in glial cells. The following tissue parameters can be specified along the single spatial dimension of the model: 1) the volume fraction and tortuosity of extracellular and glial cell spaces, 2) the volume fraction of the cellular distribution space, 3) rate constants of active uptake and passive uptake processes, and 4) glial cell membrane conductance. The model computes variations in [K+]o and current flow through glial cells for three tissue geometries: 1) planar geometry (the retina and the surface of the brain), 2) cylindrical geometry (tissue surrounding a blood vessel), and 3) spherical geometry (tissue surrounding a point source of K+). For simple sources of K+, the performance of the model matches that predicted from analytical equations. Simulations of previous ion dynamics experiments indicate that the model can accurately predict ion diffusion and K+ current flow in the brain. Simulations of electroretinogram generation and K+ siphoning onto blood vessels suggest that unanticipated K+ dynamics mechanisms may be operating in the central nervous system.

摘要

建立了一个中枢神经系统钾动力学的一维数值模型。该模型在计算细胞外钾离子浓度[K+]o的空间和时间变化时纳入了以下生理过程:1)钾离子从钾源释放到细胞外空间;2)钾离子在细胞外空间的扩散;3)钾离子被细胞和血管主动摄取;4)钾离子被动摄取到细胞分布空间;5)钾离子通过胶质细胞中的钾离子空间缓冲电流流动进行转移。可以沿着模型的单一空间维度指定以下组织参数:1)细胞外和胶质细胞空间的体积分数和曲折度;2)细胞分布空间的体积分数;3)主动摄取和被动摄取过程的速率常数;4)胶质细胞膜电导。该模型计算了三种组织几何形状下[K+]o的变化以及通过胶质细胞的电流:1)平面几何形状(视网膜和脑表面);2)圆柱几何形状(血管周围组织);3)球形几何形状(钾离子点源周围组织)。对于简单的钾离子源,该模型的性能与解析方程预测的性能相匹配。先前离子动力学实验的模拟表明,该模型可以准确预测大脑中的离子扩散和钾离子电流流动。视网膜电图生成和钾离子向血管虹吸的模拟表明,中枢神经系统中可能存在未预料到的钾离子动力学机制。

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