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Published on: April 8, 2016
Force and Stepwise Movements of Gliding Motility in Human Pathogenic Bacterium Mycoplasma pneumoniae
Masaki Mizutani1, Yuya Sasajima1, Makoto Miyata1,2
1Graduate School of Science, Osaka City University, Osaka, Japan.
Abstract:
Mycoplasma pneumoniae, a human pathogenic bacterium, binds to sialylated oligosaccharides and glides on host cell surfaces via a unique mechanism. Gliding motility is essential for initiating the infectious process. In the present study, we measured the stall force of an M. pneumoniae cell carrying a bead that was manipulated using optical tweezers on two strains. The stall forces of M129 and FH strains were averaged to be 23.7 and 19.7 pN, respectively, much weaker than those of other bacterial surface motilities. The binding activity and gliding speed of the M129 strain on sialylated oligosaccharides were eight and two times higher than those of the FH strain, respectively, showing that binding activity is not linked to gliding force. Gliding speed decreased when cell binding was reduced by addition of free sialylated oligosaccharides, indicating the existence of a drag force during gliding. We detected stepwise movements, likely caused by a single leg under 0.2-0.3 mM free sialylated oligosaccharides. A step size of 14-19 nm showed that 25-35 propulsion steps per second are required to achieve the usual gliding speed. The step size was reduced to less than half with the load applied using optical tweezers, showing that a 2.5 pN force from a cell is exerted on a leg. The work performed in this step was 16-30% of the free energy of the hydrolysis of ATP molecules, suggesting that this step is linked to the elementary process of M. pneumoniae gliding. We discuss a model to explain the gliding mechanism, based on the information currently available.
Insights
Mycoplasma pneumoniae uses a unique gliding motility mechanism essential for infection. Researchers measured its force, revealing a weak but efficient process linked to ATP hydrolysis.
Area of Science:
- Microbiology
- Biophysics
- Cellular Biology
Background:
- Mycoplasma pneumoniae is a human pathogen that utilizes gliding motility for infection.
- This motility involves binding to sialylated oligosaccharides on host cells.
- Understanding the mechanics of gliding is crucial for understanding the infectious process.
Purpose of the Study:
- To measure the stall force and analyze the step-wise movement of Mycoplasma pneumoniae during gliding motility.
- To investigate the relationship between binding activity, gliding speed, and force generation.
- To elucidate the molecular mechanism underlying M. pneumoniae gliding.
Main Methods:
- Optical tweezers were used to manipulate M. pneumoniae cells attached to beads.
- Stall force measurements were performed on two different strains (M129 and FH).
- Gliding speed and step-wise movements were analyzed under varying concentrations of sialylated oligosaccharides.
Main Results:
- Stall forces for M129 and FH strains were measured at 23.7 pN and 19.7 pN, respectively.
- Binding activity and gliding speed were not directly correlated with gliding force.
- Stepwise movements of 14-19 nm were observed, requiring 25-35 steps per second for normal gliding.
- A force of 2.5 pN per leg was estimated, with work performed per step being 16-30% of ATP hydrolysis free energy.
Conclusions:
- Mycoplasma pneumoniae gliding motility is a weak but efficient process.
- The mechanism involves discrete steps likely powered by ATP hydrolysis.
- Binding affinity to sialylated oligosaccharides influences gliding speed through drag forces.
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