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PNAS Plus: Computational modeling of three-dimensional ECM-rigidity sensing to guide directed cell migration

机译:PNAS Plus:三维ECM刚度感应的计算模型可指导定向细胞迁移

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摘要

Filopodia have a key role in sensing both chemical and mechanical cues in surrounding extracellular matrix (ECM). However, quantitative understanding is still missing in the filopodial mechanosensing of local ECM stiffness, resulting from dynamic interactions between filopodia and the surrounding 3D ECM fibers. Here we present a method for characterizing the stiffness of ECM that is sensed by filopodia based on the theory of elasticity and discrete ECM fiber. We have applied this method to a filopodial mechanosensing model for predicting directed cell migration toward stiffer ECM. This model provides us with a distribution of force and displacement as well as their time rate of changes near the tip of a filopodium when it is bound to the surrounding ECM fibers. Aggregating these effects in each local region of 3D ECM, we express the local ECM stiffness sensed by the cell and explain polarity in the cellular durotaxis mechanism.
机译:丝足虫在感知周围细胞外基质(ECM)中的化学和机械线索方面起着关键作用。然而,由于丝足动物和周围的3D ECM纤维之间的动态相互作用而导致的局部ECM刚度的腓肠肌机械感测仍然缺乏定量的理解。在这里,我们提出了一种基于弹性理论和离散ECM纤维的,由丝状伪足感测到的ECM刚度的表征方法。我们已将此方法应用于前肢机械传感模型,以预测定向细胞向更强ECM的迁移。当与周围的ECM纤维结合时,该模型为我们提供了力和位移的分布,以及它们在副脚尖附近的变化时间。在3D ECM的每个局部区域中汇总这些影响,我们表达了细胞感知的局部ECM刚度,并解释了细胞durotaxis机制中的极性。

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