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Mechanics and Dynamics of Actin-Driven Thin Membrane Protrusions

机译:肌动蛋白驱动的薄膜突起的力学和动力学

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摘要

Motile cells explore their surrounding milieu by extending thin dynamic protrusions, or filopodia. The growth of filopodia is driven by actin filament bundles that polymerize underneath the cell membrane. We compute the mechanical and dynamical features of the protrusion growth process by explicitly incorporating the flexible plasma membrane. We find that a critical number of filaments are needed to generate net filopodial growth. Without external influences, the filopodium can extend indefinitely up to the buckling length of the F-actin bundle. Dynamical calculations show that the protrusion speed is enhanced by the thermal fluctuations of the membrane; a filament bundle encased in a flexible membrane grows much faster. The protrusion speed depends directly on the number and spatial arrangement of the filaments in the bundle and whether the filaments are tethered to the membrane. Filopodia also attract each other through distortions of the membrane. Spatially close filopodia will merge to form a larger one. Force-velocity relationships mimicking micromanipulation experiments testing our predictions are computed.
机译:运动细胞通过延伸薄的动态突起或丝状伪足探索周围的环境。丝状伪足的生长是由在细胞膜下聚合的肌动蛋白丝束驱动的。我们通过明确纳入柔性质膜来计算突起生长过程的机械和动力学特征。我们发现需要一定数量的细丝才能产生净丝虫生长。在没有外部影响的情况下,fi可以无限期地延伸到F-肌动蛋白束的屈曲长度。动力学计算表明,膜的热波动会提高突出速度。包裹在柔性膜中的细丝束增长得更快。突出速度直接取决于束中细丝的数量和空间布置以及细丝是否束缚到膜上。丝足也通过膜的变形相互吸引。空间上接近的丝状伪足将合并形成较大的丝状伪足。计算了模拟我们测试预测的微操纵实验的力-速度关系。

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