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多信号底物中多细胞迁移的计算建模

Computational modelling of multi-cell migration in a multi-signalling substrate.

作者信息

Mousavi Seyed Jamaleddin, Doblaré Manuel, Doweidar Mohamed Hamdy

机构信息

Group of Structural Mechanics and Materials Modelling (GEMM), Aragón Institute of Engineering Research (I3A), University of Zaragoza, Spain. Mechanical Engineering Department, School of Engineering and Architecture (EINA), University of Zaragoza, Spain. Centro de Investigación Biomédica en Red en Bioingeniería, Biomateriales y Nanomedicina (CIBER-BBN), Spain.

出版信息

Phys Biol. 2014 Apr;11(2):026002. doi: 10.1088/1478-3975/11/2/026002. Epub 2014 Mar 17.

Abstract

Cell migration is a vital process in many biological phenomena ranging from wound healing to tissue regeneration. Over the past few years, it has been proven that in addition to cell-cell and cell-substrate mechanical interactions (mechanotaxis), cells can be driven by thermal, chemical and/or electrical stimuli. A numerical model was recently presented by the authors to analyse single cell migration in a multi-signalling substrate. That work is here extended to include multi-cell migration due to cell-cell interaction in a multi-signalling substrate under different conditions. This model is based on balancing the forces that act on the cell population in the presence of different guiding cues. Several numerical experiments are presented to illustrate the effect of different stimuli on the trajectory and final location of the cell population within a 3D heterogeneous multi-signalling substrate. Our findings indicate that although multi-cell migration is relatively similar to single cell migration in some aspects, the associated behaviour is very different. For instance, cell-cell interaction may delay single cell migration towards effective cues while increasing the magnitude of the average net cell traction force as well as the local velocity. Besides, the random movement of a cell within a cell population is slightly greater than that of single cell migration. Moreover, higher electrical field strength causes the cell slug to flatten near the cathode. On the other hand, as with single cell migration, the existence of electrotaxis dominates mechanotaxis, moving the cells to the cathode or anode pole located at the free surface. The numerical results here obtained are qualitatively consistent with related experimental works.

摘要

细胞迁移是许多生物现象中的一个重要过程,从伤口愈合到组织再生均涉及此过程。在过去几年中,已证实除了细胞 - 细胞和细胞 - 底物的机械相互作用(机械趋化作用)外,细胞还可由热、化学和/或电刺激驱动。作者最近提出了一个数值模型来分析多信号底物中的单细胞迁移。在此,该工作得到扩展,以纳入在不同条件下多信号底物中由于细胞 - 细胞相互作用而产生的多细胞迁移。该模型基于在存在不同引导线索的情况下平衡作用于细胞群体的力。本文给出了几个数值实验,以说明不同刺激对三维异质多信号底物内细胞群体轨迹和最终位置的影响。我们的研究结果表明,尽管多细胞迁移在某些方面与单细胞迁移相对相似,但其相关行为却大不相同。例如,细胞 - 细胞相互作用可能会延迟单细胞向有效线索的迁移,同时增加平均净细胞牵引力的大小以及局部速度。此外,细胞在细胞群体内的随机运动略大于单细胞迁移。而且,较高的电场强度会使细胞团在阴极附近变平。另一方面,与单细胞迁移一样,电趋化作用的存在主导着机械趋化作用,将细胞移向位于自由表面的阴极或阳极极。此处获得的数值结果在定性上与相关实验工作一致。

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