论文标题

具有弹性偶性相互作用的活动颗粒的集体状态

Collective states of active particles with elastic dipolar interactions

论文作者

Bose, Subhaya, Noerr, Patrick S., Gopinathan, Ajay, Gopinath, Arvind, Dasbiswas, Kinjal

论文摘要

许多类型的哺乳动物细胞具有主动的收缩力并机械变形其弹性底物,以实现生物学功能,例如细胞迁移。这些底物变形提供了一种机制,通过该机制可以感知其他细胞,从而导致远距离机械互动相互作用和可能的自我组织。在这里,我们将细胞视为嘈杂的运动颗粒,在弹性底物移动时会施加收缩偶性应激。通过将单个细胞运动性的最小模型与构成底物介导的细胞相互作用的线性弹性模型相结合,我们研究了由细胞运动相互作用和远距离弹性偶极相互作用引起的新兴集体状态。特别是,我们表明颗粒会自我组装成柔性的链条链,它们可以聚集以形成各种规模的紧凑型结构,并具有极性。通过计算关键的结构和动态指标,我们可以区分弱弹性相互作用和低运动和高运动处的集体状态。我们还展示了这些状态如何受到限制的影响,这是细胞居住的复杂机械微环境的重要特征。我们的模型预测通常适用于从生物细胞到具有电或磁偶极矩的合成胶体的偶极相互作用的活动物质。

Many types of mammalian cells exert active contractile forces and mechanically deform their elastic substrate, to accomplish biological functions such as cell migration. These substrate deformations provide a mechanism by which cells can sense other cells, leading to long range mechanical intercell interactions and possible self organization. Here, we treat cells as noisy motile particles that exert contractile dipolar stresses on elastic substrates as they move. By combining this minimal model for the motility of individual cells with a linear elastic model that accounts for substrate mediated cell cell interactions, we examine emergent collective states that result from the interplay of cell motility and long range elastic dipolar interactions. In particular, we show that particles self assemble into flexible, motile chains which can cluster to form diverse larger scale compact structures with polar order. By computing key structural and dynamical metrics, we distinguish between the collective states at weak and strong elastic interactions, as well as at low and high motility. We also show how these states are affected by confinement, an important characteristic of the complex mechanical microenvironment inhabited by cells. Our model predictions are generally applicable to active matter with dipolar interactions ranging from biological cells to synthetic colloids endowed with electric or magnetic dipole moments.

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