Velocity alignment leads to high persistence in confined cells
arXiv:1405.7088 · doi:10.1103/PhysRevE.89.062705
Abstract
Many cell types display random motility on two-dimensional substrates, but crawl persistently in a single direction when confined in a microchannel or on an adhesive micropattern. Does this imply that the motility mechanism of confined cells is fundamentally different from that of unconfined cells? We argue that both free- and confined- cell migration may be described by a generic model of cells as "velocity aligning" active Brownian particles previously proposed to solve a completely separate problem in collective cell migration. Our model can be mapped to a diffusive escape over a barrier and analytically solved to determine the cell's orientation distribution and repolarization rate. In quasi-one-dimensional confinement, velocity-aligning cells maintain their direction for times that can be exponentially larger than their persistence time in the absence of confinement. Our results suggest an important new connection between single- and collective- cell migration: high persistence in confined cells corresponds with fast alignment of velocity to cell-cell forces.
6 pages, 7 figures
References in corpus (7)
- Phase transition in the collective migration of tissue cells: experiment and model
- Diffusive transport without detailed balance in motile bacteria: Does microbiology need statistical physics?
- Rectification of Swimming Bacteria and Self Driven Particle Systems by Arrays of Asymmetric Barriers
- Pushing off the walls: a mechanism of cell motility in confinement
- Self-propelled particles with fluctuating speed and direction of motion
- Spontaneous Circulation of Confined Active Suspensions
- Run-and-tumble particles with hydrodynamics: sedimentation, trapping and upstream swimming