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一种用于迁移性接触抑制细胞增殖的细胞自动机模型。

A cellular automaton model for the proliferation of migrating contact-inhibited cells.

作者信息

Lee Y, Kouvroukoglou S, McIntire L V, Zygourakis K

机构信息

Department of Chemical Engineering, Rice University, Houston, Texas 77251-1892, USA.

出版信息

Biophys J. 1995 Oct;69(4):1284-98. doi: 10.1016/S0006-3495(95)79996-9.

Abstract

A cellular automaton is used to develop a model describing the proliferation dynamics of populations of migrating, contact-inhibited cells. Simulations are carried out on two-dimensional networks of computational sites that are finite-state automata. The discrete model incorporates all the essential features of the cell locomotion and division processes, including the complicated dynamic phenomena occurring when cells collide. In addition, model parameters can be evaluated by using data from long-term tracking and analysis of cell locomotion. Simulation results are analyzed to determine how the competing processes of contact inhibition and cell migration affect the proliferation rates. The relation between cell density and contact inhibition is probed by following the temporal evolution of the population-average speed of locomotion. Our results show that the seeding cell density, the population-average speed of locomotion, and the spatial distribution of the seed cells are crucial parameters in determining the temporal evolution of cell proliferation rates. The model successfully predicts the effect of cell motility on the growth of isolated megacolonies of keratinocytes, and simulation results agree very well with experimental data. Model predictions also agree well with experimentally measured proliferation rates of bovine pulmonary artery endothelial cells (BPAE) cultured in the presence of a growth factor (bFGF) that up-regulates cell motility.

摘要

细胞自动机用于构建一个模型,该模型描述了迁移的、接触抑制细胞群体的增殖动力学。在作为有限状态自动机的二维计算位点网络上进行模拟。离散模型包含了细胞运动和分裂过程的所有基本特征,包括细胞碰撞时出现的复杂动态现象。此外,可以通过使用细胞运动长期跟踪和分析的数据来评估模型参数。对模拟结果进行分析,以确定接触抑制和细胞迁移的竞争过程如何影响增殖速率。通过跟踪群体平均运动速度的时间演变来探究细胞密度与接触抑制之间的关系。我们的结果表明,接种细胞密度、群体平均运动速度和种子细胞的空间分布是决定细胞增殖速率时间演变的关键参数。该模型成功地预测了细胞运动性对角质形成细胞孤立巨集落生长的影响,模拟结果与实验数据非常吻合。模型预测也与在上调细胞运动性的生长因子(bFGF)存在下培养的牛肺动脉内皮细胞(BPAE)的实验测量增殖速率非常吻合。

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