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人体胃部产生的电场的锥形偶极子模型

Conoidal dipole model of electrical field produced by the human stomach.

作者信息

Mintchev M P, Bowes K L

机构信息

Department of Surgery, University of Alberta, Edmonton, Canada.

出版信息

Med Biol Eng Comput. 1995 Mar;33(2):179-84. doi: 10.1007/BF02523038.

Abstract

Spontaneous depolarisation and repolarisation due to ionic exchange are the main properties of smooth muscle cells in the human stomach. This change in the distribution of electrical charge results in the creation of an electric field. The field manifests itself as a potential difference (biovoltage), recorded both in vitro and in vivo and known as gastric electrical activity (GEA). The aim of the paper is to describe a computer model of this electric phenomenon, considering all anatomical and electrophysiological particularities of the stomach, and to simulate real in vivo experiments with a computer. In the proposed model, the depolarised smooth muscle cells are represented as organised electrical dipoles distributed with known density in an annular band that moves distally with increasing velocity. Computer simulations of in vivo experiments using this model not only give the waveform, duration, amplitude and frequency of GEA, but they also represent the phase lag between different channels, the difference in propagation velocity along greater and lesser curvatures, and the electric coupling between different parts of the stomach. The effects of changed electrode configuration, surface area and distance from the stomach are described. Mathematical modelling is done in spherical co-ordinates, and the simulations are performed in a specially designed user-friendly IBM PC environment. Some of the unsolved problems in cutaneous electrogastrography are also discussed.

摘要

由于离子交换引起的自发去极化和复极化是人类胃平滑肌细胞的主要特性。电荷分布的这种变化导致电场的产生。该电场表现为一种电位差(生物电压),可在体外和体内记录到,被称为胃电活动(GEA)。本文的目的是描述这种电现象的计算机模型,考虑到胃的所有解剖学和电生理学特性,并通过计算机模拟真实的体内实验。在所提出的模型中,去极化的平滑肌细胞被表示为有组织的电偶极子,以已知密度分布在一个环形带中,该环形带以不断增加的速度向远端移动。使用该模型对体内实验进行的计算机模拟不仅给出了胃电活动的波形、持续时间、幅度和频率,还呈现了不同通道之间的相位滞后、沿大弯和小弯传播速度的差异以及胃不同部位之间的电耦合。描述了电极配置、表面积和与胃的距离变化的影响。数学建模采用球坐标进行,模拟在专门设计的用户友好型IBM个人计算机环境中进行。还讨论了皮肤胃电图中一些未解决的问题。

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