合胞平滑肌的电生理学。

Journal of Experimental Neuroscience Pub Date : 2019-01-17 eCollection Date: 2019-01-01 DOI:10.1177/1179069518821917
Rohit Manchanda, Shailesh Appukuttan, Mithun Padmakumar
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引用次数: 10

摘要

与其他可兴奋组织一样,两类电信号对平滑肌的功能至关重要:一是连接电位,它产生于神经传递,代表组织兴奋的开始(或在某些情况下抑制);二是尖峰电位或动作电位,代表兴奋的完成并导致收缩活动。与骨骼肌和神经元的情况不同,平滑肌中的连接电位和尖峰与组织的电特性以及它们在其中的时空传播有关。这主要是由于对平滑肌进行精确电记录的实验困难,以及这类肌肉的两个固有特征,即细胞的合胞组织和它们接受的分布式神经支配,这使得它们的生物物理分析存在问题。在这篇综述中,我们概述了关于合胞平滑肌连接电位和尖刺的假设和知识的发展,展示了我们的概念如何频繁地发生根本性的变化,以及最近的发展如何有望解开一些仍然存在的谜题。我们特别关注计算模型和信号分析方法。我们以输精管和膀胱这两个具有明显功能特征的器官的平滑肌为例,同时也谈到了其他器官平滑肌的电功能特征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Electrophysiology of Syncytial Smooth Muscle.

As in other excitable tissues, two classes of electrical signals are of fundamental importance to the functioning of smooth muscles: junction potentials, which arise from neurotransmission and represent the initiation of excitation (or in some instances inhibition) of the tissue, and spikes or action potentials, which represent the accomplishment of excitation and lead on to contractile activity. Unlike the case in skeletal muscle and in neurons, junction potentials and spikes in smooth muscle have been poorly understood in relation to the electrical properties of the tissue and in terms of their spatiotemporal spread within it. This owes principally to the experimental difficulties involved in making precise electrical recordings from smooth muscles and also to two inherent features of this class of muscle, ie, the syncytial organization of its cells and the distributed innervation they receive, which renders their biophysical analysis problematic. In this review, we outline the development of hypotheses and knowledge on junction potentials and spikes in syncytial smooth muscle, showing how our concepts have frequently undergone radical changes and how recent developments hold promise in unraveling some of the many puzzles that remain. We focus especially on computational models and signal analysis approaches. We take as illustrative examples the smooth muscles of two organs with distinct functional characteristics, the vas deferens and urinary bladder, while also touching on features of electrical functioning in the smooth muscles of other organs.

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