Sharifimajd Babak, Thore Carl-Johan, Stålhand Jonas
Division of Solid Mechanics, Department of Management and Engineering, The Institute of Technology, Linköping University, 581 83, Linköping, Sweden.
Biomech Model Mechanobiol. 2016 Jun;15(3):497-510. doi: 10.1007/s10237-015-0703-z. Epub 2015 Jul 11.
Contractions of uterine smooth muscle cells consist of a chain of physiological processes. These contractions provide the required force to expel the fetus from the uterus. The inclusion of these physiological processes is, therefore, imperative when studying uterine contractions. In this study, an electro-chemo-mechanical model to replicate the excitation, activation, and contraction of uterine smooth muscle cells is developed. The presented modeling strategy enables efficient integration of knowledge about physiological processes at the cellular level to the organ level. The model is implemented in a three-dimensional finite element setting to simulate uterus contraction during labor in response to electrical discharges generated by pacemaker cells and propagated within the myometrium via gap junctions. Important clinical factors, such as uterine electrical activity and intrauterine pressure, are predicted using this simulation. The predictions are in agreement with clinically measured data reported in the literature. A parameter study is also carried out to investigate the impact of physiologically related parameters on the uterine contractility.
子宫平滑肌细胞的收缩由一系列生理过程组成。这些收缩提供了将胎儿从子宫中排出所需的力量。因此,在研究子宫收缩时,纳入这些生理过程至关重要。在本研究中,开发了一种电 - 化学 - 力学模型来复制子宫平滑肌细胞的兴奋、激活和收缩。所提出的建模策略能够将细胞水平的生理过程知识有效地整合到器官水平。该模型在三维有限元环境中实现,以模拟分娩期间子宫对起搏器细胞产生并通过缝隙连接在子宫肌层内传播的放电的收缩。使用该模拟预测了重要的临床因素,如子宫电活动和宫内压力。这些预测与文献中报道的临床测量数据一致。还进行了参数研究,以研究生理相关参数对子宫收缩力的影响。