Type IV pilus assembly in Pseudomonas aeruginosa over a broad range of cyclic di-GMP concentrations
Ruchi Jain1, Anna-Janina Behrens, Volkhard Kaever
1Department of Internal Medicine, Infectious Diseases, Yale University School of Medicine, New Haven, Connecticut, USA.
Abstract:
Pseudomonas aeruginosa is a Gram-negative, opportunistic pathogen that utilizes polar type IV pili (T4P) for twitching motility and adhesion in the environment and during infection. Pilus assembly requires FimX, a GGDEF/EAL domain protein that binds and hydrolyzes cyclic di-GMP (c-di-GMP). Bacteria lacking FimX are deficient in twitching motility and microcolony formation. We carried out an extragenic suppressor screen in PA103ΔfimX bacteria to identify additional regulators of pilus assembly. Multiple suppressor mutations were mapped to PA0171, PA1121 (yfiR), and PA3703 (wspF), three genes previously associated with small-colony-variant phenotypes. Multiple independent techniques confirmed that suppressors assembled functional surface pili, though at both polar and nonpolar sites. Whole-cell c-di-GMP levels were elevated in suppressor strains, in agreement with previous studies that had shown that the disrupted genes encoded negative regulators of diguanylate cyclases. Overexpression of the regulated diguanylate cyclases was sufficient to suppress the ΔfimX pilus assembly defect, as was overexpression of an unrelated diguanylate cyclase from Caulobacter crescentus. Furthermore, under natural conditions of high c-di-GMP, PA103ΔfimX formed robust biofilms that showed T4P staining and were structurally distinct from those formed by nonpiliated bacteria. These results are the first demonstration that P. aeruginosa assembles a surface organelle, type IV pili, over a broad range of c-di-GMP concentrations. Assembly of pili at low c-di-GMP concentrations requires a polarly localized c-di-GMP binding protein and phosphodiesterase, FimX; this requirement for FimX is bypassed at high c-di-GMP concentrations. Thus, P. aeruginosa can assemble the same surface organelle in distinct ways for motility or adhesion under very different environmental conditions.
Insights
Pseudomonas aeruginosa can assemble type IV pili (T4P) for motility and adhesion under varying cyclic di-GMP (c-di-GMP) levels. This process is regulated by FimX at low c-di-GMP, but this requirement is bypassed at high c-di-GMP concentrations.
Area of Science:
- Microbiology
- Molecular Biology
- Bacterial Pathogenesis
Background:
- Pseudomonas aeruginosa uses type IV pili (T4P) for motility and adhesion.
- Pilus assembly is regulated by FimX, a protein that interacts with cyclic di-GMP (c-di-GMP).
- Loss of FimX impairs twitching motility and microcolony formation.
Purpose of the Study:
- Identify additional regulators of T4P assembly in P. aeruginosa.
- Investigate the role of c-di-GMP levels in T4P biogenesis.
- Understand how environmental conditions influence T4P-mediated functions.
Main Methods:
- Extragenic suppressor screen in a P. aeruginosa ΔfimX mutant.
- Genetic mapping of suppressor mutations to PA0171, PA1121 (yfiR), and PA3703 (wspF).
- Analysis of pili assembly, c-di-GMP levels, and biofilm formation.
Main Results:
- Suppressor mutations restored functional T4P assembly at polar and nonpolar sites.
- Suppressed strains exhibited elevated intracellular c-di-GMP levels.
- Overexpression of diguanylate cyclases rescued the ΔfimX pilus assembly defect.
- PA103ΔfimX formed robust biofilms under high c-di-GMP conditions.
Conclusions:
- P. aeruginosa can assemble T4P across a wide range of c-di-GMP concentrations.
- FimX is essential for T4P assembly at low c-di-GMP, but this requirement is bypassed at high c-di-GMP.
- The bacterium employs distinct mechanisms for T4P assembly depending on environmental c-di-GMP levels.
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