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Behaviors and Energy Source of Mycoplasma gallisepticum Gliding
Masaki Mizutani1, Makoto Miyata2,3
1Graduate School of Science, Osaka City University, Osaka, Japan.
Abstract:
Mycoplasma gallisepticum, an avian-pathogenic bacterium, glides on host tissue surfaces by using a common motility system with Mycoplasma pneumoniae In the present study, we observed and analyzed the gliding behaviors of M. gallisepticum in detail by using optical microscopes. M. gallisepticum glided at a speed of 0.27 ± 0.09 μm/s with directional changes relative to the cell axis of 0.6 degree ± 44.6 degrees/5 s without the rolling of the cell body. To examine the effects of viscosity on gliding, we analyzed the gliding behaviors under viscous environments. The gliding speed was constant in various concentrations of methylcellulose but was affected by Ficoll. To investigate the relationship between binding and gliding, we analyzed the inhibitory effects of sialyllactose on binding and gliding. The binding and gliding speed sigmoidally decreased with sialyllactose concentration, indicating the cooperative binding of the cell. To determine the direct energy source of gliding, we used a membrane-permeabilized ghost model. We permeabilized M. gallisepticum cells with Triton X-100 or Triton X-100 containing ATP and analyzed the gliding of permeabilized cells. The cells permeabilized with Triton X-100 did not show gliding; in contrast, the cells permeabilized with Triton X-100 containing ATP showed gliding at a speed of 0.014 ± 0.007 μm/s. These results indicate that the direct energy source for the gliding motility of M. gallisepticum is ATP.IMPORTANCE Mycoplasmas, the smallest bacteria, are parasitic and occasionally commensal. Mycoplasma gallisepticum is related to human-pathogenic mycoplasmas-Mycoplasma pneumoniae and Mycoplasma genitalium-which cause so-called "walking pneumonia" and nongonococcal urethritis, respectively. These mycoplasmas trap sialylated oligosaccharides, which are common targets among influenza viruses, on host trachea or urinary tract surfaces and glide to enlarge the infected areas. Interestingly, this gliding motility is not related to other bacterial motilities or eukaryotic motilities. Here, we quantitatively analyze cell behaviors in gliding and clarify the direct energy source. The results provide clues for elucidating this unique motility mechanism.
Insights
Mycoplasma gallisepticum uses ATP for gliding motility, a unique mechanism distinct from other bacteria. This study quantifies gliding behavior and identifies ATP as the direct energy source for this bacterial movement.
Area of Science:
- Microbiology
- Bacterial Motility
- Molecular Biology
Background:
- Mycoplasma gallisepticum, an avian pathogen, shares gliding motility with human-pathogenic Mycoplasma pneumoniae.
- This unique gliding mechanism is crucial for mycoplasmas to adhere to and colonize host tissues, trapping sialylated oligosaccharides.
- Understanding this motility is vital due to its distinct nature compared to other bacterial and eukaryotic motilities.
Purpose of the Study:
- To quantitatively analyze the gliding behaviors of Mycoplasma gallisepticum.
- To investigate the influence of environmental factors like viscosity on gliding motility.
- To determine the direct energy source powering Mycoplasma gallisepticum gliding.
Main Methods:
- Optical microscopy was used to observe and analyze the gliding speed and movement patterns of M. gallisepticum.
- Gliding behaviors were assessed in varying viscosity conditions using methylcellulose and Ficoll.
- The role of sialyllactose in binding and gliding was evaluated to understand receptor interactions.
- A membrane-permeabilized ghost model with and without ATP was employed to identify the direct energy source.
Main Results:
- M. gallisepticum exhibited gliding motility at 0.27 ± 0.09 μm/s without cell body rolling.
- Gliding speed was unaffected by methylcellulose but influenced by Ficoll, suggesting viscosity-dependent effects.
- Sialyllactose inhibited both binding and gliding in a cooperative, dose-dependent manner.
- Permeabilized cells only glided when supplied with ATP, confirming it as the direct energy source (0.014 ± 0.007 μm/s).
Conclusions:
- ATP is the direct energy source for Mycoplasma gallisepticum gliding motility.
- The study provides quantitative data on M. gallisepticum gliding behavior and its dependence on ATP.
- Findings offer insights into the unique molecular mechanisms underlying this distinct bacterial motility system.
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