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Updated: Apr 28, 2026

Establishment of a High-throughput Setup for Screening Small Molecules That Modulate c-di-GMP Signaling in Pseudomonas aeruginosa
Published on: June 30, 2016
c-di-GMP-mediated pause behavior enables Pseudomonas aeruginosa navigation in porous environments
Zihuan Zhang1, Rongjing Zhang1, Junhua Yuan1
1Hefei National Research Center for Physical Sciences at the Microscale and Department of Physics, University of Science and Technology of China, Hefei, Anhui, China.
Abstract:
Bacteria frequently encounter porous environments in nature and clinical settings, yet how single-flagellated pathogens navigate such confined spaces remains unclear. Here, we investigate Pseudomonas aeruginosa motility in soft agar using three-dimensional particle tracking. We discover that P. aeruginosa exhibits a distinct "pause" motility mode characterized by sustained low-speed motion with continuous reorientation in addition to its characteristic run-and-reverse swimming pattern. During pauses, flagellar filaments actively swing between adjacent pore openings while the cell body remains confined, facilitating reorientation and escape. Remarkably, bacteria pre-incubated in agar continue exhibiting pause behavior after transfer to bulk liquid, indicating that porous environments trigger lasting physiological adaptations beyond physical confinement. We demonstrate that this behavioral plasticity is mediated by elevated intracellular cyclic di-GMP levels and requires the PilZ domain effector FlgZ. These findings reveal how bacteria integrate mechanical environmental cues into regulatory circuits controlling locomotion, providing insights into pathogen behavior in clinically relevant porous environments.IMPORTANCEBacterial pathogens must often navigate complex, confined spaces, such as tissues, mucus, and medical materials. However, how single-flagellated bacteria like Pseudomonas aeruginosa adapt their motility strategies to porous environments remains poorly understood. Here, we reveal that P. aeruginosa exhibits a distinct "pause" motility mode when encountering pore confinement, characterized by repeated reorientation events that facilitate escape. Remarkably, this behavior persists even after bacteria are returned to liquid, indicating a physiological memory triggered by the environment. We demonstrate that this adaptive response is regulated by the second messenger c-di-GMP and its effector FlgZ. Our findings uncover a direct link between mechanical environmental sensing and the molecular regulation of bacterial motility, providing new insights into how pathogens adapt to and persist in clinically and environmentally relevant porous habitats.
Insights
Pseudomonas aeruginosa bacteria use a unique "pause" motility to navigate porous environments, adapting their behavior through physiological changes. This adaptation, involving cyclic di-GMP and FlgZ, persists even after leaving confined spaces.
Area of Science:
- Microbiology
- Bacterial Motility
- Cellular Physiology
Background:
- Bacteria navigate complex porous environments in nature and clinical settings.
- Understanding how single-flagellated pathogens like *Pseudomonas aeruginosa* move in confined spaces is crucial.
Purpose of the Study:
- To investigate the motility of *Pseudomonas aeruginosa* in soft agar.
- To understand how bacteria adapt their movement strategies to porous environments.
Main Methods:
- Three-dimensional particle tracking of *Pseudomonas aeruginosa* in soft agar.
- Analysis of bacterial behavior after transfer from porous to liquid environments.
Main Results:
- *P. aeruginosa* exhibits a novel "pause" motility mode with sustained low-speed motion and reorientation in confined spaces.
- This pause behavior facilitates escape from pore constrictions.
- The pause motility and its associated physiological adaptations persist after bacteria leave the porous environment.
- Adaptation is mediated by increased cyclic di-GMP levels and the FlgZ effector.
Conclusions:
- Porous environments induce lasting physiological adaptations in bacterial motility.
- Bacteria integrate mechanical cues from their environment into regulatory circuits for locomotion.
- Findings offer insights into pathogen behavior and persistence in clinically relevant porous habitats.
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