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Toward a realistic model of multilayered bacterial colonies

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posted on 2025-01-23, 13:07 authored by Mateeb KhanMateeb Khan, Jan CammannJan Cammann, Anupam Sengupta, Emiliano Renzi, Marco MazzaMarco Mazza
Bacteria are prolific at colonizing diverse surfaces under a widerange of environmental conditions, and exhibit fascinating examples of self-organization across scales. Though it has recently attracted considerable interest, the role of mechanical forces in the collective behavior of bacterial colonies is not yet fully understood. Here, we construct a model of growing rod-like bacteria, such as Escherichia coli based purely on mechanical forces. We perform overdamped molecular dynamics simulations of the colony starting from a few cells in contact with a surface. As the colony grows, microdomains of strongly aligned cells grow and proliferate. Our model captures both the initial growth of a bacterial colony and also shows characteristic signs of capturing the experimentally observed transition to multilayered colonies over longer timescales. We compare our results with experiments on E. coli cells and analyze the statistics of microdomains.

Funding

UK Engineering and Physical Sciences Research Council (EPSRC) [grant EP/S515140/1]

Maths Research Associates 2021 Loughborough

Engineering and Physical Sciences Research Council

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Institute for Advanced Studies, University of Luxembourg AUDACITY [grant: IAS-20/CAMEOS]

Luxembourg National Research Fund’s ATTRACT Investigator Grant [grant no. A17/MS/11572821/MBRACE]

Luxembourg National Research Fund CORE Grant [grant: C19/MS/13719464/TOPOFLUME/Sengupta]

History

School

  • Science

Department

  • Mathematical Sciences

Published in

Condensed Matter Physics

Volume

27

Issue

1

Pages

1 - 8

Publisher

Institute for Condensed Matter Physics

Version

  • VoR (Version of Record)

Rights holder

© M.T. Khan, J. Cammann, A. Sengupta, E. Renzi, M.G. Mazza

Publisher statement

This work is licensed under a Creative Commons Attribution 4.0 International License.

Publication date

2024-03-28

Copyright date

2024

Notes

This article was published in Condensed Matter Physics Vol. 27 No. 1 (2024): Special issue “Computer Simulations of Soft Matter”

ISSN

1607-324X

eISSN

2224-9079

Language

  • en

Depositor

Dr Marco Mazza. Deposit date: 21 June 2024

Article number

13802

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