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The dynamics of filament assembly define cytoskeletal network morphology

机译:细丝装配的动力学决定了细胞骨架网络的形态

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The actin cytoskeleton is a key component in the machinery of eukaryotic cells, and it self-assembles out of equilibrium into a wide variety of biologically crucial structures. Although the molecular mechanisms involved are well characterized, the physical principles governing the spatial arrangement of actin filaments are not understood. Here we propose that the dynamics of actin network assembly from growing filaments results from a competition between diffusion, bundling and steric hindrance, and is responsible for the range of observed morphologies. Our model and simulations thus predict an abrupt dynamical transition between homogeneous and strongly bundled networks as a function of the actin polymerization rate. This suggests that cells may effect dramatic changes to their internal architecture through minute modifications of their nonequilibrium dynamics. Our results are consistent with available experimental data.
机译:肌动蛋白的细胞骨架是真核细胞机制中的关键组成部分,它会自平衡失衡组装成多种生物学上至关重要的结构。尽管所涉及的分子机制已被很好地表征,但尚不了解控制肌动蛋白丝空间布置的物理原理。在这里,我们提出生长丝的肌动蛋白网络组装的动力学是由扩散,束缚和位阻之间的竞争引起的,并负责观察到的形态范围。因此,我们的模型和模拟预测了均质网络和强捆绑网络之间突然的动态转变,这是肌动蛋白聚合速率的函数。这表明细胞可能通过对其非平衡动力学的微小修改来对其内部结构产生巨大的变化。我们的结果与可用的实验数据一致。

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