Bacteria regulate collective behaviour by mechanosensing cell–cell collisions

Abstract Dense bacterial populations often navigate complex and heterogeneous environments using collective behaviours including group motility. Whether local interactions within a population can regulate collective order is unclear. Here we show using live imaging, single-cell tracking and simulations that Pseudomonas aeruginosa regulates collective order by mechanosensing cell–cell collisions, enabling adaptive surface exploration. Collision-induced reversals suppress collective cell alignment in dense bacterial populations. While a non-reversing mutant remains locked in cohesive near-linear motion regardless of density, wild-type cells adapt to local crowding, transitioning from isotropic motion in crowds to unidirectional exploration at the colony front. With increasing density, collisions generate information that feeds back on single-cell motility to regulate collective order, providing a navigational advantage. This advantage extends to spatially structured environments, such as micromazes, where collision-induced reversals prevent cells from becoming trapped at physical boundaries. These findings reveal that bacterial collective organization is not merely an emergent consequence of physical interactions, but a feedback-regulated state.

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Publication Details

Journal
Nature Microbiology
Published
2026-10-06
DOI
https://doi.org/10.1038/s41564-026-02505-1
Primary Topic
Micro and Nano Robotics
Type
article
Field-Weighted Citation Impact
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article

Bacteria regulate collective behaviour by mechanosensing cell–cell collisions

Laure Le Blanc, Alexandre Persat, Einollah Sarikhani, Zeinab Jahed et al.
Nature Microbiology
Micro and Nano Robotics
article

Bacteria regulate collective behaviour by mechanosensing cell–cell collisions

Laure Le Blanc, Alexandre Persat, Einollah Sarikhani, Zeinab Jahed, Dhivya Pushpa Meganathan, Chia-Ni Tsai, Marco J. Kühn, Anum Tahir, Sangwoo Kim, PersatLab, Nathel Heraud
article en

Abstract

Abstract Dense bacterial populations often navigate complex and heterogeneous environments using collective behaviours including group motility. Whether local interactions within a population can regulate collective order is unclear. Here we show using live imaging, single-cell tracking and simulations that Pseudomonas aeruginosa regulates collective order by mechanosensing cell–cell collisions, enabling adaptive surface exploration. Collision-induced reversals suppress collective cell alignment in dense bacterial populations. While a non-reversing mutant remains locked in cohesive near-linear motion regardless of density, wild-type cells adapt to local crowding, transitioning from isotropic motion in crowds to unidirectional exploration at the colony front. With increasing density, collisions generate information that feeds back on single-cell motility to regulate collective order, providing a navigational advantage. This advantage extends to spatially structured environments, such as micromazes, where collision-induced reversals prevent cells from becoming trapped at physical boundaries. These findings reveal that bacterial collective organization is not merely an emergent consequence of physical interactions, but a feedback-regulated state.

Nature Microbiology
University of California San Diego (US), École Polytechnique Fédérale de Lausanne (CH)
Openalex Percentile: Top 21%
Micro and Nano Robotics
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Bacteria regulate collective behaviour by mechanosensing cell–cell collisions — Laure Le Blanc, Alexandre Persat, et al. · Nature Microbiology (2026) | TGRS Research Map | TGRS