Zhao Jia, Wang Qi
Department of Mathematics, University of South Carolina, Columbia, 29028, SC, USA.
Department of Mathematics, Interdisciplinary Mathematics Institute and NanoCenter at USC, University of South Carolina, Columbia, SC 29028; School of Mathematical Sciences, Nankai University, Tianjin, China 300071; Beijing Computational Science Research Center, Beijing, China 100193.
Int J Numer Method Biomed Eng. 2016 Dec;32(12). doi: 10.1002/cnm.2774. Epub 2016 Apr 22.
A three-dimensional (3D) hydrodynamic model for cytokinesis of eukaryotic cells is developed, in which we model dynamics of actomyosins in the cell cortex, in particular, along the cytokinetic ring formed in the cortex and in the neighborhood of the cell's division plane explicitly. Specifically, the active force actuated by the actomyosin's activity along the cytokinetic ring is modeled by a surface force whose strength is proportional to the actomyosin concentration while the cell morphology is tracked by a phase field model. The model is then solved in 3D space and time using a finite difference method on graphic processing units. Dynamical morphological patterns of eukaryotic cells during cytokinesis are numerically simulated with the model. These simulated morphological patterns agree quantitatively with experimental observations. Copyright © 2016 John Wiley & Sons, Ltd.
我们构建了一个用于真核细胞胞质分裂的三维(3D)流体动力学模型,其中我们明确模拟了细胞皮层中肌动球蛋白的动力学,特别是沿着皮层中形成的胞质分裂环以及细胞分裂平面附近的动力学。具体而言,沿着胞质分裂环由肌动球蛋白活性驱动的主动力通过一个表面力来建模,该表面力的强度与肌动球蛋白浓度成正比,而细胞形态则通过相场模型进行跟踪。然后,使用图形处理单元上的有限差分法在三维空间和时间中求解该模型。利用该模型对真核细胞在胞质分裂过程中的动态形态模式进行了数值模拟。这些模拟的形态模式与实验观察结果在数量上相符。版权所有© 2016约翰威立父子有限公司。