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首页> 外文期刊>Science Advances >Filamentous active matter: Band formation, bending, buckling, and defects
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Filamentous active matter: Band formation, bending, buckling, and defects

机译:丝状活性物质:带形成,弯曲,屈曲和缺陷

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摘要

Motor proteins drive persistent motion and self-organization of cytoskeletal filaments. However, state-of-the-art microscopy techniques and continuum modeling approaches focus on large length and time scales. Here, we perform component-based computer simulations of polar filaments and molecular motors linking microscopic interactions and activity to self-organization and dynamics from the filament level up to the mesoscopic domain level. Dynamic filament cross-linking and sliding and excluded-volume interactions promote formation of bundles at small densities and of active polar nematics at high densities. A buckling-type instability sets the size of polar domains and the density of topological defects. We predict a universal scaling of the active diffusion coefficient and the domain size with activity, and its dependence on parameters like motor concentration and filament persistence length. Our results provide a microscopic understanding of cytoplasmic streaming in cells and help to develop design strategies for novel engineered active materials.
机译:电机蛋白驱动持续运动和细胞骨骼细丝的自我组织。然而,最先进的显微镜技术和连续体建模方法侧重于大长度和时间尺度。在这里,我们执行基于组分的极丝和分子电机的计算机模拟,将微观相互作用和活动与自组织和动力学联系起来,从灯丝水平到介相域水位。动态长丝交联和滑动和排除的相互作用促进小密度和高密度的活性极性线性的捆绑形成。屈曲型不稳定性设定极性域的大小和拓扑缺陷的密度。我们预测有源扩散系数的通用缩放和具有活动的域尺寸,其对电动机浓度和灯丝持久长度等参数的依赖性。我们的结果提供了对细胞中细胞质流媒体的微观了解,并有助于开发新型工程活性材料的设计策略。

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