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Updated: Sep 15, 2025

Visualization of Twitching Motility and Characterization of the Role of the PilG in Xylella fastidiosa
Published on: April 8, 2016
Twitching motility suppressors reveal a role for FimX in type IV pilus extension dynamics
Nathan Roberge1, Nathan Yuen1, Hanjeong Harvey1
1Department of Biochemistry and Biomedical Sciences, and the Michael G. DeGroote Institute for Infectious Disease Research, McMaster University, Hamilton, ON, Canada, L8S4K1.
Abstract:
In Pseudomonas aeruginosa, retractable protein filaments called type IV pili (T4P) facilitate surface adherence, sensing, and directional movement known as twitching motility. T4P are necessary for the bacteria to engage in surface-associated behaviors, including establishing acute infections. Pilus extension is driven by the hexameric ATPase, PilB, at the base of the T4P nanomachine in coordination with various protein regulatory effectors. The cyclic-di-GMP binding protein, FimX, works with PilB to mediate normal extension processes, though how this effector controls pilus assembly remains unclear. To explore the role of FimX in T4P function, we leveraged the significant ΔfimX twitching motility deficit to screen for mutants capable of overcoming this phenotype. We identified suppressor mutations that increase twitching in ΔfimX background, mapping primarily to cyclic-AMP homeostatic machinery or to PilB, the FimX target. Distinct suppressor mutations in PilB increased ATP hydrolysis in vitro and this activity was subject to modulation by FimX. Using microscopy to monitor the extension dynamics of fluorescently labelled T4P, we showed that ΔfimX mutants produce slow-to-extend, short pili, a phenotype that is rescued by mutations enhancing PilB ATP hydrolysis and/or re-introduction of FimX. Together, these data implicate FimX as a regulator of PilB enzymatic function, potentially enabling P. aeruginosa to fine-tune pilus extension dynamics in response to environmental cues.
Insights
FimX regulates Pseudomonas aeruginosa type IV pili (T4P) extension by modulating PilB ATPase activity. Suppressor mutations enhancing PilB activity restore T4P assembly and twitching motility in FimX mutants.
Area of Science:
- Microbiology
- Molecular Biology
- Bacterial Motility
Background:
- Type IV pili (T4P) are crucial for *Pseudomonas aeruginosa* surface adherence, sensing, and twitching motility, essential for acute infections.
- Pilus extension is powered by the PilB ATPase, with regulatory effectors like FimX coordinating assembly, though FimX's precise role is unclear.
Purpose of the Study:
- To elucidate the function of FimX in regulating type IV pili (T4P) assembly and function in *Pseudomonas aeruginosa*.
- To identify genetic suppressors that restore twitching motility in the absence of FimX.
Main Methods:
- Genetic screening to identify suppressor mutations in a *fimX* deletion mutant exhibiting a twitching motility defect.
- In vitro biochemical assays to measure PilB ATPase activity.
- Fluorescence microscopy to visualize and quantify T4P extension dynamics in live bacteria.
Main Results:
- Suppressor mutations were identified in cyclic-AMP homeostatic machinery and the PilB ATPase.
- Specific PilB mutations enhanced ATP hydrolysis activity in vitro, which was modulated by FimX.
- Microscopy revealed that *fimX* mutants produce short, slow-extending pili, a phenotype rescued by mutations boosting PilB activity or by FimX reintroduction.
Conclusions:
- FimX acts as a regulator of PilB enzymatic function, controlling type IV pili (T4P) extension dynamics.
- This regulation allows *Pseudomonas aeruginosa* to fine-tune pilus assembly in response to environmental signals, impacting bacterial pathogenesis.
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