Institute of Solid Mechanics, Technische Universität Braunschweig, Braunschweig D-38106, Germany.
Institute of Sport and Motion Science, University of Stuttgart, Stuttgart D-70569, Germany.
Acta Biomater. 2020 Jun;109:163-181. doi: 10.1016/j.actbio.2020.04.007. Epub 2020 Apr 12.
The stomach is a central organ in the gastrointestinal tract that performs a variety of functions, in which the spatio-temporal organisation of active smooth muscle contraction in the stomach wall (SW) is highly regulated. In the present study, a three-dimensional model of the gastric smooth muscle contraction is presented, including the mechanical contribution of the mucosal and muscular layer of the SW. Layer-specific and direction-dependent model parameters for the active and passive stress-stretch characteristics of the SW were determined experimentally using porcine smooth muscle strips. The electrical activation of the smooth muscle cells (SMC) due to the pacemaker activity of the interstitial cells of Cajal (ICC) is modelled by using FitzHugh-Nagumo-type equations, which simulate the typical ICC and SMC slow wave behaviour. The calcium dynamic in the SMC depends on the SMC membrane potential via a gaussian function, while the chemo-mechanical coupling in the SMC is modelled via an extended Hai-Murphy model. This cascade is coupled with an additional mechano-electrical feedback-mechanism, taking into account the mechanical response of the ICC and SMC due to stretch of the SW. In this way the relaxation responses of the fundus to accommodate incoming food, as well as the typical peristaltic contraction waves in the antrum for mixing and transport of the chyme, have been well replicated in simulations performed at the whole organ level. STATEMENT OF SIGNIFICANCE: In this article, a novel three-dimensional electro-chemomechanical model of the gastric smooth muscle contraction is presented. The propagating waves of electrical membrane potential in the network ofinterstitial cells of Cajal (ICC) and smooth muscle cells (SMC) lead to a global pattern of change in the calciumdynamics inside the SMC. Taking additionally into account the mechanical response of the ICC and SMC due to stretch of the stomach wall, also referred to as mechanical feedback-mechanism, the result is a complex spatio-temporal regulation of the active contraction and relaxation of the gastric smooth muscle tissue. Being a firstapproach, in future view such a three-dimensional model can give an insight into the complexload transferring system of the stomach wall, as well as into the electro-chemomechanicalcoupling process underlying smooth muscle contraction in health and disease.
胃是胃肠道中的一个中心器官,它具有多种功能,其中胃壁(SW)主动平滑肌收缩的时空组织受到高度调节。在本研究中,提出了一种胃平滑肌收缩的三维模型,包括 SW 的黏膜和肌肉层的力学贡献。使用猪平滑肌条带通过实验确定了 SW 主动和被动应力-应变特性的层特异性和方向依赖性模型参数。平滑肌细胞(SMC)的电激活是由于间质细胞 Cajal(ICC)的起搏活动引起的,这是通过使用 FitzHugh-Nagumo 型方程来模拟典型的 ICC 和 SMC 慢波行为来实现的。SMC 中的钙动力学取决于 SMC 膜电位通过高斯函数,而 SMC 中的化学机械偶联通过扩展的 Hai-Murphy 模型来模拟。该级联与附加的机电反馈机制耦合,考虑到 SW 拉伸引起的 ICC 和 SMC 的机械响应。通过这种方式,胃底对容纳传入食物的松弛反应,以及在整个器官水平上进行模拟时,在胃窦中典型的蠕动收缩波,以混合和输送食糜,都得到了很好的复制。意义声明:在本文中,提出了一种新的胃平滑肌收缩的三维电化学机械模型。ICC 和 SMC 网络中的电膜电位传播波导致 SMC 内钙动力学的全局变化模式。另外,由于 SW 的拉伸,即机械反馈机制,也考虑了 ICC 和 SMC 的机械响应,其结果是胃平滑肌组织的主动收缩和松弛的复杂时空调节。作为一种初步方法,在未来的研究中,这种三维模型可以深入了解胃壁的复杂负载传递系统,以及健康和疾病中平滑肌收缩的电化学机械耦合过程。