Nematode Locomotion in Unconfined and Confined Fluids
arXiv:1306.4423 · doi:10.1063/1.4816718
Abstract
The millimeter-long soil-dwelling nematode {\it C. elegans} propels itself by producing undulations that propagate along its body and turns by assuming highly curved shapes. According to our recent study [PLoS ONE \textbf{7}, e40121 (2012)] all these postures can be accurately described by a piecewise-harmonic-curvature (PHC) model. We combine this curvature-based description with highly accurate hydrodynamic bead models to evaluate the normalized velocity and turning angles for a worm swimming in an unconfined fluid and in a parallel-wall cell. We find that the worm moves twice as fast and navigates more effectively under a strong confinement, due to the large transverse-to-longitudinal resistance-coefficient ratio resulting from the wall-mediated far-field hydrodynamic coupling between body segments. We also note that the optimal swimming gait is similar to the gait observed for nematodes swimming in high-viscosity fluids. Our bead models allow us to determine the effects of confinement and finite thickness of the body of the nematode on its locomotion. These effects are not accounted for by the classical resistive-force and slender-body theories.
15 pages, 18 Figures
References in corpus (7)
- The hydrodynamics of swimming microorganisms
- Diffusion and spatial correlations in suspensions of swimming particles
- Anomalous hydrodynamic interaction in a quasi-two-dimensional suspension
- Undulatory locomotion of finite filaments: lessons from C. elegans
- Hydrodynamic crystals: collective dynamics of regular arrays of spherical particles in a parallel-wall channel
- An analysis of the far-field response to external forcing of a suspension in Stokes flow in a parallel-wall channel
- The short-time self-diffusion coefficient of a sphere in a suspension of rigid rods
Cited by in corpus (8)
- Amoeboid motion in confined geometry
- State diagram of a three-sphere microswimmer in a channel
- Amoeboid swimming in a channel
- Navigation of C. elegans in three-dimensional media: roll maneuvers and planar turns
- Towards an analytical description of active microswimmers in clean and in surfactant-covered drops
- Flow analysis of the low-Reynolds number swimmer C. elegans
- Axisymmetric Stokes flow due to a point-force singularity acting between two coaxially positioned rigid no-slip disks
- Escape dynamics of confined undulating worms