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Progress in Mathematical Modeling of Gastrointestinal Slow Wave Abnormalities

机译:胃肠道慢波异常的数学建模研究进展

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摘要

Gastrointestinal (GI) motility is regulated in part by electrophysiological events called slow waves, which are generated by the interstitial cells of Cajal (ICC). Slow waves propagate by a process of “entrainment,” which occurs over a decreasing gradient of intrinsic frequencies in the antegrade direction across much of the GI tract. Abnormal initiation and conduction of slow waves have been demonstrated in, and linked to, a number of GI motility disorders. A range of mathematical models have been developed to study abnormal slow waves and applied to propose novel methods for non-invasive detection and therapy. This review provides a general outline of GI slow wave abnormalities and their recent classification using multi-electrode (high-resolution) mapping methods, with a particular emphasis on the spatial patterns of these abnormal activities. The recently-developed mathematical models are introduced in order of their biophysical scale from cellular to whole-organ levels. The modeling techniques, main findings from the simulations, and potential future directions arising from notable studies are discussed.
机译:胃肠道(GI)的运动部分受称为慢波的电生理事件的调节,该慢波是由Cajal(ICC)的间质细胞产生的。慢波通过“夹带”过程传播,这种夹带是在整个胃肠道的顺时针方向上固有频率递减的梯度上发生的。慢波的异常启动和传导已在许多胃肠动力障碍中得到证实,并与之相关。已经开发了一系列数学模型来研究异常慢波,并将其应用于提出非侵入性检测和治疗的新方法。这篇综述概述了胃肠道慢波异常及其使用多电极(高分辨率)绘图方法的最新分类,特别强调了这些异常活动的空间格局。按照从细胞到整个器官水平的生物物理规模顺序,介绍了最近开发的数学模型。讨论了建模技术,仿真的主要发现以及著名研究的潜在未来方向。

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