论文标题
具有内在曲率的主动半串眼细丝的手性自我分类
Chiral self-sorting of active semiflexible filaments with intrinsic curvature
论文作者
论文摘要
活性物质系统中的多体相互作用会导致粒子集体移动并自组织成具有远距离顺序的动态结构。在细胞中,细胞骨骼丝的自组装对于细胞运动,结构,细胞内转运和分裂至关重要。通过聚合或运动蛋白相互作用在二维底物上(例如细胞皮质)上驱动的半融合细胞骨架丝,可以诱导细丝弯曲和曲率,从而导致有趣的集体行为。例如,已知细菌细胞细胞细胞FTSZ具有固有的曲率,使其自我组织成环和涡旋,并且最近的实验重构了由运动蛋白在表面上驱动的微管驱动的集体运动的集体运动,因此观察到了由于触及式弯曲而导致的归因于运动型的整体对称性破坏了整体的对称性。先前关于驱动细丝系统自组织的工作尚未研究曲率和细丝结构对集体行为的影响。在这项工作中,我们介绍了布朗动力学模拟的结果,具有内在曲率的驱动半串联细丝的结果,并研究了灯丝刚度和曲率半径之间的相互作用如何调整同型病毒系统和杂导性混合物中的自组织行为。我们发现曲率诱导的相位从极性羊群到自我分级的手性簇,通过细丝柔韧性进行了修改。该相变会在长时间尺度上从弹道到扩散变化。
Many-body interactions in systems of active matter can cause particles to move collectively and self-organize into dynamic structures with long-range order. In cells, the self-assembly of cytoskeletal filaments is critical for cellular motility, structure, intracellular transport, and division. Semiflexible cytoskeletal filaments driven by polymerization or motor-protein interactions on a two-dimensional substrate, such as the cell cortex, can induce filament bending and curvature leading to interesting collective behavior. For example, the bacterial cell-division filament FtsZ is known to have intrinsic curvature that causes it to self-organize into rings and vortices, and recent experiments reconstituting the collective motion of microtubules driven by motor proteins on a surface have observed chiral symmetry breaking of the collective behavior due to motor-induced curvature of the filaments. Previous work on the self-organization of driven filament systems have not studied the effects of curvature and filament structure on collective behavior. In this work, we present Brownian dynamics simulation results of driven semiflexible filaments with intrinsic curvature and investigate how the interplay between filament rigidity and radius of curvature can tune the self-organization behavior in homochiral systems and heterochiral mixtures. We find a curvature-induced phase transition from polar flocks to self-sorted chiral clusters, which is modified by filament flexibility. This phase transition changes filament transport from ballistic to diffusive at long timescales.