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Published on: May 23, 2020
Bacterial Swarming Reduces Proteus mirabilis and Vibrio parahaemolyticus Cell Stiffness and Increases β-Lactam
George K Auer1, Piercen M Oliver2, Manohary Rajendram2
1Department of Biomedical Engineering, University of Wisconsin-Madison, Madison, Wisconsin, USA.
Abstract:
Swarmer cells of the Gram-negative uropathogenic bacteria Proteus mirabilis and Vibrio parahaemolyticus become long (>10 to 100 μm) and multinucleate during their growth and motility on polymer surfaces. We demonstrated that the increasing cell length is accompanied by a large increase in flexibility. Using a microfluidic assay to measure single-cell mechanics, we identified large differences in the swarmer cell stiffness (bending rigidity) of P. mirabilis (5.5 × 10-22 N m2) and V. parahaemolyticus (1.0 × 10-22 N m2) compared to vegetative cells (1.4 × 10-20 N m2 and 2.2 × 10-22 N m2, respectively). The reduction in bending rigidity (∼2-fold to ∼26-fold) was accompanied by a decrease in the average polysaccharide strand length of the peptidoglycan layer of the cell wall from 28 to 30 disaccharides to 19 to 22 disaccharides. Atomic force microscopy revealed a reduction in P. mirabilis peptidoglycan thickness from 1.5 nm (vegetative cells) to 1.0 nm (swarmer cells), and electron cryotomography indicated changes in swarmer cell wall morphology. P. mirabilis and V. parahaemolyticus swarmer cells became increasingly sensitive to osmotic pressure and susceptible to cell wall-modifying antibiotics (compared to vegetative cells)-they were ∼30% more likely to die after 3 h of treatment with MICs of the β-lactams cephalexin and penicillin G. The adaptive cost of "swarming" was offset by the increase in cell susceptibility to physical and chemical changes in their environment, thereby suggesting the development of new chemotherapies for bacteria that leverage swarming for the colonization of hosts and for survival.IMPORTANCEProteus mirabilis and Vibrio parahaemolyticus are bacteria that infect humans. To adapt to environmental changes, these bacteria alter their cell morphology and move collectively to access new sources of nutrients in a process referred to as "swarming." We found that changes in the composition and thickness of the peptidoglycan layer of the cell wall make swarmer cells of P. mirabilis and V. parahaemolyticus more flexible (i.e., reduce cell stiffness) and that they become more sensitive to osmotic pressure and cell wall-targeting antibiotics (e.g., β-lactams). These results highlight the importance of assessing the extracellular environment in determining antibiotic doses and the use of β-lactam antibiotics for treating infections caused by swarmer cells of P. mirabilis and V. parahaemolyticus.
Insights
Swarmer cells of Proteus mirabilis and Vibrio parahaemolyticus bacteria become more flexible due to changes in their cell wall peptidoglycan layer. This increased flexibility makes swarmer cells more susceptible to osmotic pressure and beta-lactam antibiotics.
Area of Science:
- Microbiology
- Cell Biology
- Biophysics
Background:
- Uropathogenic bacteria like Proteus mirabilis and Vibrio parahaemolyticus exhibit swarming behavior, altering cell morphology for motility and nutrient acquisition.
- Swarming involves elongation and multinucleation of bacterial cells, particularly on polymer surfaces, suggesting adaptive changes in cell mechanics.
Purpose of the Study:
- To investigate the mechanical properties of swarmer cells of P. mirabilis and V. parahaemolyticus.
- To determine the relationship between cell wall composition, cell stiffness, and antibiotic susceptibility in swarmer cells.
Main Methods:
- Microfluidic assays were used to measure the single-cell mechanics (bending rigidity) of vegetative and swarmer cells.
- Atomic force microscopy and electron cryotomography were employed to analyze peptidoglycan layer thickness and cell wall morphology.
- Cell susceptibility to osmotic pressure and beta-lactam antibiotics (cephalexin, penicillin G) was assessed.
Main Results:
- Swamer cells of P. mirabilis and V. parahaemolyticus exhibited significantly reduced bending rigidity compared to vegetative cells (approx. 2-fold to 26-fold decrease).
- Reduced cell stiffness correlated with a decrease in peptidoglycan polysaccharide strand length and cell wall thickness.
- Swamer cells showed increased sensitivity to osmotic stress and were more susceptible to cell wall-targeting antibiotics, with ~30% higher mortality after beta-lactam treatment.
Conclusions:
- Changes in peptidoglycan composition and structure during swarming lead to increased cell flexibility in P. mirabilis and V. parahaemolyticus.
- The adaptive trade-off of swarming includes enhanced susceptibility to environmental challenges like osmotic pressure and antibiotics.
- Understanding these adaptations is crucial for developing targeted therapies against swarming bacteria, particularly for beta-lactam antibiotic treatment strategies.
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