English

Computing the motor torque of Escherichia coli

Biological Physics 2018-10-23 v1 Soft Condensed Matter Fluid Dynamics

Abstract

The rotary motor of bacteria is a natural nano-technological marvel that enables cell locomotion by powering the rotation of semi-rigid helical flagellar filaments in fluid environments. It is well known that the motor operates essentially at constant torque in counter-clockwise direction but past work have reported a large range of values of this torque. Focusing on Escherichia coli cells that are swimming and cells that are stuck on a glass surface for which all geometrical and environmental parameters are known (Darnton et al., J. Bacteriology, 2007, 189, 1756-1764), we use two validated numerical methods to compute the value of the motor torque consistent with experiments. Specifically, we use (and compare) a numerical method based on the boundary integral representation of Stokes flow and also develop a hybrid method combining boundary element and slender body theory to model the cell body and flagellar filament, respectively. Using measured rotation speed of the motor, our computations predict a value of the motor torque in the range 440 pNnm to 829 pNnm, depending critically on the distance between the flagellar filaments and the nearby surface.

Keywords

Cite

@article{arxiv.1806.09694,
  title  = {Computing the motor torque of Escherichia coli},
  author = {Debasish Das and Eric Lauga},
  journal= {arXiv preprint arXiv:1806.09694},
  year   = {2018}
}
R2 v1 2026-06-23T02:41:25.151Z