Rhythmicity, Recurrence, and Recovery of Flagellar Beating
arXiv:1406.3725 · doi:10.1103/PhysRevLett.113.238103
Abstract
The eukaryotic flagellum beats with apparently unfailing periodicity, yet responds rapidly to stimuli. Like the human heartbeat, flagellar oscillations are now known to be noisy. Using the alga \textit{C. reinhardtii}, we explore three aspects of nonuniform flagellar beating. We report the existence of rhythmicity, waveform noise peaking at transitions between power and recovery strokes, and fluctuations of interbeat intervals that are correlated and even recurrent, with memory extending to hundreds of beats. These features are altered qualitatively by physiological perturbations. Further, we quantify the recovery of periodic breastroke beating from transient hydrodynamic forcing. These results will help constrain microscopic theories on the origins and regulation of flagellar beating.
5 pages, 4 figures
Cited by in corpus (10)
- Circular swimming motility and disordered hyperuniform state in an algae system
- Odd elastohydrodynamics: non-reciprocal living material in a viscous fluid
- Stochastic force dynamics of the model microswimmer Chlamydomonas reinhardtii: Active forces and energetics
- Methods and measures for investigating microscale motility
- The younger flagellum coordinates the beating in C. reinhardtii
- Thermodynamic precision of a chain of motors: the difference between phase and noise correlation
- Minimal design of a synthetic cilium
- Three-dimensional chiral active Ornstein-Uhlenbeck model for helical motion of microorganisms
- Inferring nonlinear fractional diffusion processes from single trajectories
- Role of activity and dissipation in achieving precise beating in cilia: Insights from the rower model