This article has been reviewed according to Science X's editorial process and policies. Editors have highlighted the following attributes while ensuring the content's credibility: Some bacteria can sense when they bump into each other and use these interactions to shape how the group organizes and moves. This discovery reveals a new way microbes explore their environments using physical feedback rather than chemical signals.
"Whether in fish schools, bird flocks or human crowds, moving as a group can offer safety and efficiency, but it can also lead to congestion and jamming," says Alexandre Persat, a professor at EPFL. "How individuals balance coordinated movement with the need to break away and explore on their own remains a central question across living systems." Even bacteria, among the simplest collective movers, may hold clues to this challenge. Bacteria often live and move in dense communities, where physical interactions can make neighboring cells line up and move together in coordinated streams.
This creates a major problem: Individuals can get trapped within the group, making it harder for them to disperse and explore new space. This keeps the bacteria from finding new nutrients or escaping crowded, complex environments like soil or host tissues. Persat's Microbial Mechanics Lab, working with the Mechanics of Soft and Biological Matter Laboratory of Sangwoo Kim, also at EPFL, has found that the bacterium Pseudomonas aeruginosa solves this problem with a simple sensory mechanism that allows the bacteria to actively modulate their collective organization through touch.
The study is published in Nature Microbiology. "As they move on surfaces, these bacteria sense when they bump into neighbors," explains Laure Le Blanc, the paper's first author. "In response, they reverse direction within seconds.
This ability allows the population to disrupt that organization in crowds, while staying organized where it needs to be, like at the edge of a growing colony." The researchers combined live microscopy, single-cell tracking and computer simulations to understand how collisions influence group behavior. They compared wild-type bacteria with mutants that do not sense collisions. They also built micro-mazes to test how these different strains navigated confined, obstacle-filled spaces.
By tracking individual bacteria and analyzing the overall group movement, they could see exactly how collisions shaped both individual and group behaviors in real time. The scientists tested a mutant strain of P. aeruginosa. This mutant lacks a gene critical to the bacterium's motility pattern: It always moves forward, even after colliding with other cells and boundaries.
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