Collective motion of driven semiflexible filaments tuned by soft repulsion and stiffness
Jeffrey M. Moore, Tyler N. Thompson, Matthew A. Glaser, Meredith D., Betterton

TL;DR
This study uses simulations to explore how filament stiffness and soft repulsion influence collective motion in active filament systems, revealing that increased stiffness promotes order and different dynamic states.
Contribution
It introduces a simulation framework to analyze how filament flexibility and steric interactions jointly affect active matter behavior, challenging existing Vicsek-based models.
Findings
Increasing filament stiffness enhances collective motion and long-range order.
Tuning filament stiffness controls transitions between isotropic, flocking, and streaming states.
Soft repulsion and stiffness interplay determines the emergent active states.
Abstract
In active matter systems, self-propelled particles can self-organize to undergo collective motion, leading to persistent dynamical behavior out of equilibrium. In cells, cytoskeletal filaments and motor proteins self-organize into complex structures important for cell mechanics, motility, and division. Collective dynamics of cytoskeletal systems can be reconstituted using filament gliding experiments, in which cytoskeletal filaments are propelled by surface-bound motor proteins. These experiments have observed diverse dynamical states, including flocks, polar streams, and single-filament spirals. Recent experiments with microtubules and kinesin motor proteins found that the collective behavior of filaments can be tuned by altering the concentration of the crowding macromolecule methylcellulose in solution. Increasing the methycellulose concentration reduced filament crossing, promoted…
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