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Modeling Contact Inhibition of Locomotion of Colliding Cells Migrating on Micropatterned Substrates

机译:建模在微图案化基底上迁移的碰撞细胞运动的接触抑制

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摘要

In cancer metastasis, embryonic development, and wound healing, cells can coordinate their motion, leading to collective motility. To characterize these cell-cell interactions, which include contact inhibition of locomotion (CIL), micropatterned substrates are often used to restrict cell migration to linear, quasi-one-dimensional paths. In these assays, collisions between polarized cells occur frequently with only a few possible outcomes, such as cells reversing direction, sticking to one another, or walking past one another. Using a computational phase field model of collective cell motility that includes the mechanics of cell shape and a minimal chemical model for CIL, we are able to reproduce all cases seen in two-cell collisions. A subtle balance between the internal cell polarization, CIL and cell-cell adhesion governs the collision outcome. We identify the parameters that control transitions between the different cases, including cell-cell adhesion, propulsion strength, and the rates of CIL. These parameters suggest hypotheses for why different cell types have different collision behavior and the effect of interventions that modulate collision outcomes. To reproduce the heterogeneity in cell-cell collision outcomes observed experimentally in neural crest cells, we must either carefully tune our parameters or assume that there is significant cell-to-cell variation in key parameters like cell-cell adhesion.
机译:在癌症转移,胚胎发育和伤口愈合中,细胞可以协调其运动,从而导致集体运动。为了表征这些细胞-细胞相互作用,包括运动(CIL)的接触抑制,通常使用微图案化的底物将细胞迁移限制为线性,准一维路径。在这些检测中,极化细胞之间的碰撞经常发生,只有少数可能的结果,例如细胞反向,相互粘附或彼此走动。使用包括细胞形状力学和CIL最小化学模型在内的集体细胞运动的计算相场模型,我们能够重现两细胞碰撞中的所有情况。内部细胞极化,CIL和细胞间粘附之间的微妙平衡决定了碰撞结果。我们确定控制不同情况之间过渡的参数,包括细胞间粘附,推进强度和CIL发生率。这些参数提出了以下假设:不同的细胞类型为何具有不同的碰撞行为以及调节碰撞结果的干预措施的效果。为了重现神经c细胞实验观察到的细胞-细胞碰撞结果的异质性,我们必须仔细调整参数或假设关键参数(如细胞-细胞粘附)中存在明显的细胞间变化。

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