Stress-mediated growth determines <i>Escherichia coli</i> division site morphogenesis

P Petr Pelech (Mathematical Institute, Faculty of Mathematics and Physics) P Paula P. Navarro (Department of Fundamental Microbiology) A Andrea Vettiger (Department of Fundamental Microbiology) L Luke H. Chao (Department of Genetics) C Christoph Allolio (Mathematical Institute, Faculty of Mathematics and Physics)

Abstract

In order to proliferate, bacteria must remodel their cell wall at the division site. The division process is driven by the enzymatic activity of peptidoglycan synthases and hydrolases around the constricting Z-ring. We introduce a morphoelastic model that correctly reproduces the shape of the division site during the constriction and septation phases of Escherichia coli . In the model, mechanical stress directs the transformation of the bacterial wall. The two constants associated with growth and remodeling respectively are its only adjustable parameters. Different morphologies, corresponding either to mutant or wild type cells, are recovered as a function of the remodeling parameter. In addition, a plausible range for the cell stiffness and turgor pressure was determined by comparing numerical simulations with bacterial cell plasmolysis data.

Article Details

Volume / Issue Vol. 122, Issue 28
Published July 15, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (5)

P

Petr Pelech

Mathematical Institute, Faculty of Mathematics and Physics

P

Paula P. Navarro

Department of Fundamental Microbiology

A

Andrea Vettiger

Department of Fundamental Microbiology

L

Luke H. Chao

Department of Genetics

C

Christoph Allolio

Mathematical Institute, Faculty of Mathematics and Physics