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首页> 外文期刊>PLoS Computational Biology >Bistable front dynamics in a contractile medium: Travelling wave fronts and cortical advection define stable zones of RhoA signaling at epithelial adherens junctions
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Bistable front dynamics in a contractile medium: Travelling wave fronts and cortical advection define stable zones of RhoA signaling at epithelial adherens junctions

机译:收缩性介质中的双稳态前沿动力学:行波前沿和皮质对流在上皮粘附连接处定义了RhoA信号的稳定区域

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摘要

Mechanical coherence of cell layers is essential for epithelia to function as tissue barriers and to control active tissue dynamics during morphogenesis. RhoA signaling at adherens junctions plays a key role in this process by coupling cadherin-based cell-cell adhesion together with actomyosin contractility. Here we propose and analyze a mathematical model representing core interactions involved in the spatial localization of junctional RhoA signaling. We demonstrate how the interplay between biochemical signaling through positive feedback, combined with diffusion on the cell membrane and mechanical forces generated in the cortex, can determine the spatial distribution of RhoA signaling at cell-cell junctions. This dynamical mechanism relies on the balance between a propagating bistable signal that is opposed by an advective flow generated by an actomyosin stress gradient. Experimental observations on the behavior of the system when contractility is inhibited are in qualitative agreement with the predictions of the model.
机译:细胞层的机械相干对于上皮在组织发生过程中起组织屏障的作用和控制活跃的组织动力学至关重要。粘附连接处的RhoA信号传导在此过程中起关键作用,通过将基于钙粘着蛋白的细胞粘附与肌动球蛋白收缩结合在一起。在这里,我们提出并分析了一个数学模型,该数学模型表示参与交界RhoA信号空间定位的核心相互作用。我们证明了通过正反馈的生化信号传导,结合在细胞膜上的扩散和皮质中产生的机械力之间的相互作用如何确定RhoA信号传导在细胞-细胞连接处的空间分布。这种动力学机制依赖于传播的双稳态信号之间的平衡,而双稳态信号则受到由肌动球蛋白应力梯度产生的对流的影响。当抑制收缩性时,系统行为的实验观察与模型的预测在质量上吻合。

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