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Spatial moment dynamics for collective cell movement incorporating a neighbour-dependent directional bias

机译:结合邻域相关的方向性偏差的集体细胞运动的空间矩动力学

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摘要

The ability of cells to undergo collective movement plays a fundamental role in tissue repair, development and cancer. Interactions occurring at the level of individual cells may lead to the development of spatial structure which will affect the dynamics of migrating cells at a population level. Models that try to predict population-level behaviour often take a mean-field approach, which assumes that individuals interact with one another in proportion to their average density and ignores the presence of any small-scale spatial structure. In this work, we develop a lattice-free individual-based model (IBM) that uses random walk theory to model the stochastic interactions occurring at the scale of individual migrating cells. We incorporate a mechanism for local directional bias such that an individual's direction of movement is dependent on the degree of cell crowding in its neighbourhood. As an alternative to the mean-field approach, we also employ spatial moment theory to develop a population-level model which accounts for spatial structure and predicts how these individual-level interactions propagate to the scale of the whole population. The IBM is used to derive an equation for dynamics of the second spatial moment (the average density of pairs of cells) which incorporates the neighbour-dependent directional bias, and we solve this numerically for a spatially homogeneous case.
机译:细胞进行集体运动的能力在组织修复,发育和癌症中起着基本作用。在单个细胞水平上发生的相互作用可能导致空间结构的发展,这将影响种群水平上迁移细胞的动力学。试图预测人口水平行为的模型通常采用均值域方法,该方法假定个体彼此按其平均密度成比例地交互,而忽略了任何小规模空间结构的存在。在这项工作中,我们开发了一个基于随机游走理论的无格个人模型(IBM),该模型可以对发生在单个迁移细胞规模上的随机相互作用进行建模。我们结合了局部方向偏向的机制,这样一个人的运动方向就取决于其邻域中细胞的拥挤程度。作为均值场方法的替代方法,我们还采用空间矩理论来开发人口模型,该模型说明空间结构并预测这些个体水平的交互作用如何传播到整个人口规模。 IBM用于导出第二个空间矩(单元对的平均密度)的动力学方程,该方程包含了邻域相关的方向性偏差,对于空间均匀的情况,我们用数值方法求解。

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