Type IV pilus length determines virulence by regulating a hidden subpopulation of non-contributing filaments
Abstract:
Many clinically important bacterial pathogens, including Pseudomonas , Vibrio , Neisseria , and Acinetobacter species, employ dynamic extracellular appendages called type IV pili (T4P) to facilitate virulence through cyclical extension and retraction of pilus filaments. To dissect how T4P dynamics govern pathogenesis, we engineered a genetic system to precisely tune pilus length across a continuum. We demonstrate that pilus length critically determines four major T4P-dependent virulence traits in Pseudomonas aeruginosa (motility, surface sensing, biofilm formation, and phage infection) and reveal a hidden subpopulation of pili that are unable to interact with environmental substrates or host cells, rendering them non-contributing to any T4P-mediated function. Integrating molecular dynamics simulations, we show that low inner-membrane abundance of the major pilin forces the extension mechanism into transient idle states, restricting both velocity and final length. Molecularly, this finding reveals how two key biophysical parameters, pilin abundance and diffusion, impose a fundamental physical constraint on T4P assembly, and that regulating pilin abundance presents a strong lever over regulating pilus count for controlling the amount of functionally contributing filaments. Contrary to the prevailing view that retraction force generation primarily dictates T4P-mediated behaviors, our results establish extension dynamics as the overlooked bottleneck constraining all retraction-enabled virulence traits, with population heterogeneity in length enabling adaptive bet-hedging.
Insights
Type IV pili (T4P) length critically impacts bacterial virulence. Pilin abundance, not just pilus count, controls functional T4P extension, revealing a key bottleneck in pathogenesis.
Area of Science:
- Microbiology
- Biophysics
- Molecular Biology
Background:
- Type IV pili (T4P) are dynamic appendages crucial for bacterial virulence in pathogens like Pseudomonas.
- T4P extension and retraction cycles facilitate bacterial pathogenesis, but the precise control mechanisms remain unclear.
Purpose of the Study:
- To investigate how T4P length dynamics influence bacterial virulence traits.
- To identify the molecular and biophysical constraints governing T4P assembly and function.
Main Methods:
- Engineered a genetic system for precise control of T4P length.
- Assessed T4P-dependent virulence traits in Pseudomonas aeruginosa.
- Utilized molecular dynamics simulations to analyze pilin dynamics and T4P assembly.
Main Results:
- Pilus length critically determines bacterial motility, surface sensing, biofilm formation, and phage infection.
- Identified a subpopulation of non-functional pili.
- Demonstrated that low major pilin abundance restricts T4P extension velocity and final length due to transient idle states.
Conclusions:
- Pilin abundance and diffusion are fundamental constraints on T4P assembly, impacting functional filament production.
- T4P extension dynamics, rather than retraction, represent a critical bottleneck for virulence.
- Population heterogeneity in pilus length may facilitate adaptive strategies in bacterial pathogens.
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