Bacterial motility depends on a critical flagellum length and energy-optimized assembly

M Manuel Halte (Institute of Biology–Department of Molecular Microbiology) P Philipp F. Popp (Institute of Biology–Department of Molecular Microbiology) D David Hathcock (IBM Thomas J. Watson Research Center) J John Severn (Department of Applied Mathematics and Theoretical Physics) S Svenja Fischer (Institute of Biology–Department of Molecular Microbiology) C Christian Goosmann (Max Planck Institute for Infection Biology) A Adrien Ducret (Molecular Microbiology and Structural Biochemistry) E Emmanuelle Charpentier (Max Planck Unit for the Science of Pathogens) Y Yuhai Tu (International Business Machines T. J. Watson Research Center) E Eric Lauga (Department of Applied Mathematics and Theoretical Physics) M Marc Erhardt (Institute of Biology, Humboldt-Universität zu Berlin) T Thibaud T. Renault (Institute of Biology–Department of Molecular Microbiology)

Abstract

The flagellum is the most complex macromolecular structure known in bacteria and is composed of around two dozen distinct proteins. The main building block of the long, external flagellar filament, flagellin, is secreted through the flagellar type-III secretion system at a remarkable rate of several tens of thousands of amino acids per second, significantly surpassing the rates achieved by other pore-based protein secretion systems. The evolutionary implications and potential benefits of this high secretion rate for flagellum assembly and function, however, have remained elusive. In this study, we provide both experimental and theoretical evidence that the flagellar secretion rate has been evolutionarily optimized to facilitate rapid and efficient construction of a functional flagellum. By synchronizing flagellar assembly, we found that a minimal filament length of 2.5 μm was required for swimming motility. Biophysical modeling revealed that this minimal filament length threshold resulted from an elasto-hydrodynamic instability of the whole swimming cell, dependent on the filament length. Furthermore, we developed a stepwise filament labeling method combined with electron microscopy visualization to validate predicted flagellin secretion rates of up to 10,000 amino acids per second. A biophysical model of flagellum growth demonstrates that the observed high flagellin secretion rate efficiently balances filament elongation and energy consumption, thereby enabling motility in the shortest amount of time. Taken together, these insights underscore the evolutionary pressures that have shaped the development and optimization of the flagellum and type-III secretion system, illuminating the intricate interplay and cost-benefit tradeoff between functionality and efficiency in assembly of large macromolecular structures.

Article Details

Volume / Issue Vol. 122, Issue 11
Published March 18, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

M

Manuel Halte

Institute of Biology–Department of Molecular Microbiology

P

Philipp F. Popp

Institute of Biology–Department of Molecular Microbiology

D

David Hathcock

IBM Thomas J. Watson Research Center

J

John Severn

Department of Applied Mathematics and Theoretical Physics

S

Svenja Fischer

Institute of Biology–Department of Molecular Microbiology

C

Christian Goosmann

Max Planck Institute for Infection Biology

A

Adrien Ducret

Molecular Microbiology and Structural Biochemistry

E

Emmanuelle Charpentier

Max Planck Unit for the Science of Pathogens

Y

Yuhai Tu

International Business Machines T. J. Watson Research Center

E

Eric Lauga

Department of Applied Mathematics and Theoretical Physics

M

Marc Erhardt

Institute of Biology, Humboldt-Universität zu Berlin

T

Thibaud T. Renault

Institute of Biology–Department of Molecular Microbiology