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用于微处理器控制功能刺激的阶段性结肠收缩的三维静态参数建模。

Three-dimensional static parametric modelling of phasic colonic contractions for the purpose of microprocessor-controlled functional stimulation.

作者信息

Rashev P Z, Mintchev M P, Bowes K L

机构信息

Department of Electrical and Computer Engineering, University of Calgary, Canada.

出版信息

J Med Eng Technol. 2001 May-Jun;25(3):85-96. doi: 10.1080/03091900110051659.

Abstract

The study aimed at creating an integrated electromechanical model of invoked phasic contractions in canine colon during direct high frequency voltage stimulation. The model utilized data obtained from two large anaesthetized dogs that underwent laparotomy and serosal implantation of two circumferential electrode pairs into a distal segment of the left colon. The strength distribution of the stimulating electric field was analysed over a cylindrical mesh-surface grid modelling the interrogated colonic segment. Recordings of the stimulating current were utilized to model smooth muscle depolarization using linearized macroscopic tissue conductivity. The invoked contractile stress was related to the stimulating electric field strength using an exponential sigmoid function. Artificially produced occlusion of the lumen was derived for a pair of 5mm electrodes positioned on a cylindrical mesh-surface of 2 cm diameter and 15 cm length. The model simulated contractions invoked by stimuli of different amplitude (up to 12 V) with 98.6% accuracy of approximation. Macroscopic tissue conductivity was modelled as a combination of two first-order exponential terms involving a 3ms time constant. Real-time simulation of the current drawn by the smooth muscle during 10 V/50Hz bipolar voltage stimulation was performed. The integrated electromechanical model facilitates the quantification of microprocessor-controlled phasic colonic contractions.

摘要

该研究旨在建立一个在直接高频电压刺激下犬结肠诱发相性收缩的集成机电模型。该模型利用了从两只接受剖腹手术并在左结肠远端段浆膜植入两对环形电极的大型麻醉犬身上获得的数据。在模拟被研究结肠段的圆柱形网格表面上分析了刺激电场的强度分布。利用刺激电流记录,通过线性化宏观组织电导率对平滑肌去极化进行建模。使用指数S形函数将诱发的收缩应力与刺激电场强度相关联。对于位于直径2 cm、长度15 cm的圆柱形网格表面上的一对5 mm电极,得出了人为产生的管腔阻塞情况。该模型以98.6%的近似精度模拟了不同幅度(高达12 V)刺激诱发的收缩。宏观组织电导率被建模为涉及3 ms时间常数的两个一阶指数项的组合。进行了10 V/50Hz双极电压刺激期间平滑肌所吸取电流的实时模拟。该集成机电模型有助于对微处理器控制的结肠相性收缩进行量化。

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