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Updated: May 7, 2026

Biophysical Characterization of Flagellar Motor Functions
Published on: January 18, 2017
Basic properties of rotary dynamics of the molecular motor Enterococcus hirae V1-ATPase
Yoshihiro Minagawa1, Hiroshi Ueno2, Mayu Hara1
1From the Department of Applied Chemistry, Graduate School of Engineering, The University of Tokyo, Tokyo 113-8656.
Abstract:
V-ATPases are rotary molecular motors that generally function as proton pumps. We recently solved the crystal structures of the V1 moiety of Enterococcus hirae V-ATPase (EhV1) and proposed a model for its rotation mechanism. Here, we characterized the rotary dynamics of EhV1 using single-molecule analysis employing a load-free probe. EhV1 rotated in a counterclockwise direction, exhibiting two distinct rotational states, namely clear and unclear, suggesting unstable interactions between the rotor and stator. The clear state was analyzed in detail to obtain kinetic parameters. The rotation rates obeyed Michaelis-Menten kinetics with a maximal rotation rate (Vmax) of 107 revolutions/s and a Michaelis constant (Km) of 154 μM at 26 °C. At all ATP concentrations tested, EhV1 showed only three pauses separated by 120°/turn, and no substeps were resolved, as was the case with Thermus thermophilus V1-ATPase (TtV1). At 10 μM ATP (<
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