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Updated: Dec 11, 2025

Author Spotlight: Studying Bacterial Growth in 3D Hydrogel Matrices
Published on: January 19, 2024
Implications of back-and-forth motion and powerful propulsion for spirochetal invasion
Keigo Abe1, Toshiki Kuribayashi1, Kyosuke Takabe1,2
1Department of Applied Physics, Graduate School of Engineering, Tohoku University, 6-6-05 Aoba, Aoba-ku, Sendai, Miyagi, 980-8579, Japan.
Abstract:
The spirochete Leptospira spp. can move in liquid and on a solid surface using two periplasmic flagella (PFs), and its motility is an essential virulence factor for the pathogenic species. Mammals are infected with the spirochete through the wounded dermis, which implies the importance of behaviors on the boundary with such viscoelastic milieu; however, the leptospiral pathogenicity involving motility remains unclear. We used a glass chamber containing a gel area adjoining the leptospiral suspension to resemble host dermis exposed to contaminated water and analyzed the motility of individual cells at the liquid-gel border. Insertion of one end of the cell body to the gel increased switching of the swimming direction. Moreover, the swimming force of Leptospira was also measured by trapping single cells using an optical tweezer. It was found that they can generate [Formula: see text] 17 pN of force, which is [Formula: see text] 30 times of the swimming force of Escherichia coli. The force-speed relationship suggested the load-dependent force enhancement and showed that the power (the work per unit time) for the propulsion is [Formula: see text] 3.1 × 10-16 W, which is two-order of magnitudes larger than the propulsive power of E. coli. The powerful and efficient propulsion of Leptospira using back-and-forth movements could facilitate their invasion.
Insights
Leptospira uses powerful flagellar propulsion to invade hosts. Its unique motility at the liquid-gel border, resembling skin, enhances directional changes and invasion capabilities.
Area of Science:
- Microbiology
- Biophysics
- Pathogen Motility
Background:
- Leptospira spp. motility is crucial for pathogenesis.
- Understanding motility at host tissue interfaces is key to leptospiral infection.
Purpose of the Study:
- To investigate Leptospira motility at a liquid-gel interface simulating host dermis.
- To quantify the force and power generated by Leptospira during invasion.
Main Methods:
- Utilized a custom glass chamber with a liquid-gel interface to mimic host dermis.
- Analyzed individual cell motility at the liquid-gel border.
- Employed optical tweezers to measure the swimming force of single Leptospira cells.
Main Results:
- Leptospira exhibited increased directional switching when inserting into the gel.
- Generated approximately 17 pN of force, significantly higher than Escherichia coli.
- Propulsive power was approximately 3.1 × 10⁻¹⁶ W, two orders of magnitude greater than E. coli.
Conclusions:
- Leptospira possesses exceptionally powerful and efficient flagellar propulsion.
- This enhanced motility facilitates invasion through viscoelastic host tissues.
- Motility at the host-pathogen interface is a critical virulence factor.
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