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Open access Aug 2026

The FleQ-FleN circuit balances flagellar number against fitness in Pseudomonas aeruginosa

ABSTRACT Evolutionary constraints governing flagellar number in bacterial pathogens remain poorly understood. While related Pseudomonas species are hyperflagellated, Pseudomonas aeruginosa maintains strict monoflagellation through the FleQ-FleN regulatory circuit. Here, we demonstrate that FleN dosage is essential for maintaining monoflagellation and fitness. Confirming earlier reports, wild-type P. aeruginosa displayed unipolar monoflagellation, whereas ∆fleN mutants developed multiple flagella, frequently more than four, in unipolar or bipolar arrangements. These hyperflagellated cells showed marked fitness defects, including reduced growth, attenuated virulence in a nematode infection model, and a competitive disadvantage in co-culture. The virulence defect reflected hyperflagellation rather than the loss of motility, since a non-flagellated ∆fliC mutant retained full pathogenicity. Notably, ∆fleN cells rapidly evolved suppressor mutations in fleQ that partially restored growth and motility without always restoring monoflagellation. Five independent suppressor alleles mapped to key FleQ domains, four in the AAA+ ATPase domain, and one in the DNA-binding domain, consistent with reduced FleQ activity that rebalances the circuit. Single-cell holographic tracking showed that suppressor strains swim with heterogeneous dynamics, including subpopulations that reach wild-type (WT) speeds, despite carrying multiple flagella. Quantitative proteomics indicated that the fitness burden extends beyond flagellar components, with protein-abundance changes across metabolism, stress responses, and signaling. Conversely, selection under high-viscosity conditions drove wild-type cells to acquire enhanced spreading through a recurrent fleN mutation, fleNV178G; multiflagellation is therefore accessible. Together, these findings indicate that the FleQ-FleN circuit balances the flagellar number against fitness, holding P. aeruginosa at a single flagellum while retaining the latent capacity to reach multiflagellated states through single mutations. IMPORTANCE Bacterial flagella are extracellular appendages that rotate to propel the cell and enable swimming motility. While some bacteria have multiple flagella, many pathogenic species like Pseudomonas aeruginosa have just one. Surprisingly, mutants of P. aeruginosa with multiple flagella performed worse, that is, they grew more slowly, were less infectious in laboratory animals, and were outcompeted by wild-type bacteria. Even when some mutant bacteria evolved compensatory changes, they still struggled compared to single-flagellum bacteria. This reveals an important evolutionary trade-off: while multiple flagella might seem advantageous for movement, having just one flagellum allows the bacteria to grow faster and cause more severe infections. This plasticity likely explains why P. aeruginosa is so successful both in the environment and as a human pathogen. Bacterial flagella are extracellular appendages that rotate to propel the cell and enable swimming motility. While some bacteria have multiple flagella, many pathogenic species like Pseudomonas aeruginosa have just one. Surprisingly, mutants of P. aeruginosa with multiple flagella performed worse, that is, they grew more slowly, were less infectious in laboratory animals, and were outcompeted by wild-type bacteria. Even when some mutant bacteria evolved compensatory changes, they still struggled compared to single-flagellum bacteria. This reveals an important evolutionary trade-off: while multiple flagella might seem advantageous for movement, having just one flagellum allows the bacteria to grow faster and cause more severe infections. This plasticity likely explains why P. aeruginosa is so successful both in the environment and as a human pathogen.

Analí Migueles-Lozano, Merrill Asp, Sofia T Rocha et al. · 0 citations
Open access Jul 2026

Conformational dynamics of exopolysaccharides underlie biofilm matrix mechanics in Vibrio cholerae

Polysaccharides remain the least understood biomacromolecules, particularly in terms of the relationship between their chemical structure and physical properties. On the other hand, polysaccharides often serve as the main structural components in biofilms: surface-attached aggregates of bacterial cells encased within a mechanically resilient extracellular matrix. The large chemical space explored by bacteria within biofilms provides excellent opportunities to establish the structure-function relationship for polysaccharides. In this paper, we systematically characterize various polymer properties of Vibrio polysaccharide (VPS), the major exopolysaccharide in biofilms formed by Vibrio cholerae, the causative agent of pandemic cholera. Using a combination of shear rheology, dynamic and static light scattering, and small-angle X-ray scattering, we measure the viscosity, molecular weight, persistence length, radius of gyration, and hydrodynamic radius of this chemically unique biopolymer. Combining all-atom and coarse-grained simulations, we show how the conformational flexibility of a single glycosidic linkage within each VPS monomer can lead to dramatic compaction of the entire polymer chain and nonclassical entanglement behavior. Our comprehensive quantification represents a rare endeavor for bacterial biofilms, whose matrix composition and physical properties remain largely nebulous; it also represents a significant step towards a detailed understanding of the molecular origins of biofilm mechanics.

Kee-Myoung Nam, Nathan Fowler, Rajan Kandel et al. · 0 citations