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A Biophysical Model for Curvature-Guided Cell Migration

机译:曲率引导细胞迁移的生物物理模型

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摘要

The latest experiments have shown that adherent cells can migrate according to cell-scale curvature variations via a process called curvotaxis. Despite identification of key cellular factors, a clear understanding of the mechanism is lacking. We employ a mechanical model featuring a detailed description of the cytoskeleton filament networks, the viscous cytosol, the cell adhesion dynamics, and the nucleus. We simulate cell adhesion and migration on sinusoidal substrates. We show that cell adhesion on three-dimensional curvatures induces a gradient of pressure inside the cell that triggers the internal motion of the nucleus. We propose that the resulting out-of-equilibrium position of the nucleus alters cell migration directionality, leading to cell motility toward concave regions of the substrate, resulting in lower potential energy states. Altogether, we propose a simple mechanism explaining how intracellular mechanics enable the cells to react to substratum curvature, induce a deterministic cell polarization, and break down cells basic persistent random walk, which correlates with latest experimental evidences.
机译:最新实验表明,粘附细胞可以通过称为曲线的过程根据细胞垢曲率变化迁移。尽管识别关键的蜂窝因素,但缺乏对机制的清晰了解。我们使用一种机械模型,其特征在于细胞骨架长丝网络,粘性细胞溶胶,细胞粘附动力学和核的详细描述。我们在正弦底物上模拟细胞粘附和迁移。我们表明,三维曲率上的细胞粘附在细胞内引起压力的压力梯度,触发细胞核的内部运动。我们提出由此产生的核的均衡位置改变细胞迁移方向性,导致朝向基材的凹形区域的细胞运动,导致较低的潜在能量状态。总共提出了一种简单的机制,说明细胞内力学使细胞能够对碱曲率反应,诱导确定性细胞偏振,并分解细胞基本持久随机步行,与最新的实验证据相关。

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