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A new approach to model cross-linked actin networks: Multi-scale continuum formulation and computational analysis

机译:建模交联肌动蛋白网络的新方法:多尺度连续体公式化和计算分析

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The mechanical properties of a cell are defined mainly by the cytoskeleton. One contributor within this three-dimensional structure is the actin cortex which is located underneath the lipid bilayer. It forms a nearly isotropic and densely cross-linked protein network. We present a continuum mechanical formulation for describing the mechanical properties of in vitro model systems based on their micro-structure, i.e. the behavior of a single filament and its spatial arrangement. The network is considered elastic, viscous effects being neglected. Filamentous actin is a biopolymer with a highly nonlinear force-stretch relationship. This can be well described by a worm-like chain model that includes extensibility of the filament, which we call the . β-model. A comparison with experimental data shows good agreement with values for the physically interpretable parameters. To make these properties applicable to three dimensions we used a non-affine micro-sphere network, which accounts for filaments, equally distributed in space. The assembled model results in a strain-energy density which is a function of the deformation gradient, and it is validated with experimental data from rheological experiments of in vitro reconstituted actin networks. The Cauchy stress and elasticity tensors are obtained within the continuum mechanics framework and implemented into a finite element program to solve boundary-value problems.
机译:细胞的机械性能主要由细胞骨架决定。该三维结构内的一个贡献者是肌动蛋白皮质,其位于脂质双层之下。它形成了一个几乎各向同性且紧密交联的蛋白质网络。我们提供了一个连续的机械公式,用于描述基于其微观结构的体外模型系统的机械性能,即单根细丝的行为及其空间排列。该网络被认为是弹性的,粘性效应被忽略。丝状肌动蛋白是具有高度非线性力-拉伸关系的生物聚合物。这可以通过蠕虫状链模型很好地描述,该模型包括细丝的可扩展性,我们称之为。 β模型。与实验数据的比较显示,与可物理解释的参数值具有很好的一致性。为了使这些属性适用于三个维度,我们使用了一个非仿射微球网络,该网络解释了均匀分布在空间中的细丝。组装后的模型产生的应变能密度是变形梯度的函数,并用体外重组肌动蛋白网络的流变学实验数据进行了验证。在连续力学框架内获得柯西应力和弹性张量,并将其实施到有限元程序中以解决边界值问题。

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