Collective dynamics of active filament complexes
arXiv:1503.08107 · doi:10.1103/PhysRevE.93.052406
Abstract
Networks of biofilaments are essential for the formation of cellular structures that support various biological functions. For the most part, previous studies have investigated the collective dynamics of rod-like biofilaments; however, the shapes of the actual subcellular components are often more elaborate. In this study, we considered an active object composed of two active filaments, which represents the progression from rod-like biofilaments to complex-shaped biofilaments. Specifically, we numerically assessed the collective behaviors of these active objects in two dimensions and observed several types of dynamics depending on the density and the angle of the two filaments as shape parameters of the object. Among the observed collective dynamics, a moving density band that we named a `moving smectic' is introduced here for the first time. By analyzing the trajectories of individual objects and the interactions among them, this study demonstrated how interactions among active biofilaments with complex shapes could produce collective dynamics in a non-trivial manner.
12 pages, 11 figures
References in corpus (8)
- Novel type of phase transition in a system of self-driven particles
- Modeling semiflexible polymer networks
- Minimal model for active nematics: quasi-long-range order and giant fluctuations
- Pattern formation of microtubules and motors: inelastic interaction of polar rods
- Rheology of Active Filament Solutions
- Hydrodynamics of isotropic and liquid crystalline active polymer solutions
- Active crystals and their stability
- Live Soap: Order, Fluctuations and Instabilities in Active Smectics