Heterogeneity and multi-scale dynamics in the molecular bearing of the bacterial flagellum

M Martin Rieu D Daping Xu G Gunasekaran Subramaniam A Ashley L. Nord A Alexis Courbet H Hafez El Sayyed R Richard M. Berry

Abstract

Abstract The bacterial flagellum is a protein-based rotary machine that drives bacterial motility. It comprises the bacterial flagellar motor (BFM), consisting of a stator which is anchored to the cell wall and a rotor in the cytoplasmic membrane, linked via the flagellar rod to the extracellular hook and filament. We observe passive rotational diffusion of six individual Escherichia coli flagella lacking torque-generating units via polarization microscopy of single gold nanorods attached to the hook, sampled at 250 kHz. Transitions across energy barriers of the 26-fold symmetric LP-ring/rod flagellar bearing exhibit highly non-Poissonian kinetics spanning four orders of magnitude in time scale. At sub-millisecond timescales we observe anomalous ultra-slow diffusion typically associated with disordered systems, despite the ordered crystalline atomic structure of the bearing revealed by cryo-Electron Microscopy. Over longer periods, we observe dynamic shifts in the preferred angular positions, indicating that the bearing’s energy landscape evolves over time.

Article Details

Volume / Issue Vol. 17, Issue 1
Published June 12, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (7)

M

Martin Rieu

D

Daping Xu

G

Gunasekaran Subramaniam

A

Ashley L. Nord

A

Alexis Courbet

H

Hafez El Sayyed

R

Richard M. Berry