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bioRxiv · 10.1101/2024.09.12.612798

The role of PilU in the surface behaviors of Pseudomonas aeruginosa

Abstract

In Pseudomonas aeruginosa, the dynamic activity of type IV pilus (TFP) is essential for various bacterial behaviors. While PilU is considered a homolog of the TFP disassembling motor PilT, its specific roles remain unclear. Using pilus visualization and single-cell tracking techniques, we characterized TFP dynamics and surface behaviors in wild-type and {Delta}pilU mutants. We found that {Delta}pilU cells displayed increased TFP numbers but reduced cell movement and delayed microcolony formation. Interestingly, beyond affecting the twitching motility, {Delta}pilU cells formed a thick multilayered colony edge on semi-solid surfaces, slowing colony expansion. Cell-cell collision responses changed from touch-turn dominance in wild-type to touch-upright dominance in {Delta}pilU, affecting colony morphology and expansion. These findings expand our understanding of PilUs physiological roles and provide potential targets for developing strategies to control P. aeruginosa biofilm formation and virulence. IMPORTANCEThe dynamic function of TFP can help cells to search appropriate spatial positions and perceive external environments, and is crucial for a variety of cell behaviors including cell movement, pathogenesis, natural transformation and biofilm formation. Beyond the current picture of PilU in generating high retraction forces through a PilT-dependent manner, this study revealed more roles of PilU in cell surface behaviors including single cell behavior like twitching and multicellular behaviors such as microcolony formation and colony expansion. These findings expand our understanding on the physiological roles of PilU in the surface behaviors of P. aeruginosa, and provide us insight in developing TFP-based methods to control the pathogenicity and biofilm formation of P. aeruginosa.

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BibTeXRIS

Zhang, J., Luo, Y., Zong, Y., Lu, S., Shi, Y., Jin, F., Zhao, K.. 2024-09-13. The role of PilU in the surface behaviors of Pseudomonas aeruginosa. https://doi.org/10.1101/2024.09.12.612798

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