The distortion–push mechanism for the γ subunit rotation in F <sub>1</sub> -ATPase

M Masahiro Motohashi (Department of Physics, Faculty of Science and Engineering, Chuo University) M Mao Oide (Theoretical Molecular Science Laboratory, RIKEN Pioneering Research Institute) C Chigusa Kobayashi (Computational Biophysics Research Team, RIKEN Center for Computational Science) J Jaewoon Jung (Theoretical Molecular Science Laboratory, RIKEN Cluster for Pioneering Research, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan) E Eiro Muneyuki (Department of Physics, Faculty of Science and Engineering, Chuo University) Y Yuji Sugita (Theoretical Molecular Science Laboratory, RIKEN Cluster for Pioneering Research, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan)

Abstract

F 1 -ATPase comprises the stator ring consisting of α 3 β 3 subunits and the rotor γ subunit. The γ subunit rotation mechanism has been extensively investigated by biochemical analyses, structural studies, single-molecule measurements, and computational studies. Recent cryoelectron microscopy (cryo-EM) structures of F 1 -ATPase from the thermophilic bacterium Bacillus PS3 (TF 1 ) provide us with further possibilities for a better understanding of the γ-rotation mechanisms. Using cryo-EM structures having the γ-rotation angles close to the binding dwell and catalytic dwell states, we investigate the relationships between the γ subunit rotation, conformational changes of the stator α 3 β 3 subunits, and the nucleotide-binding and release. We performed targeted molecular dynamics (MD) simulations with external forces on the α 3 β 3 subunits and observed 80° substep rotations of the γ subunit. Then, we optimized the most probable transition pathway through the mean-force string method simulations with 64 images. Finally, using umbrella sampling, we calculated the potential of mean forces along the minimum free energy pathway during the 80° substep rotation. Our MD simulations suggest that 80° substep rotation is divided into the first rotation, resting, and the second rotation. Notably, the first rotation is driven by the distortion of the stator α 3 β 3 subunits, and the second rotation is induced mainly by direct β/γ subunit interactions. This model, which we call the distortion–push mechanism, is consistent with the residue-level experimental analysis on F 1 -ATPase and the atomic structures determined by X-ray crystallography and cryo-EM.

Article Details

Volume / Issue Vol. 122, Issue 33
Published August 19, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (6)

M

Masahiro Motohashi

Department of Physics, Faculty of Science and Engineering, Chuo University

M

Mao Oide

Theoretical Molecular Science Laboratory, RIKEN Pioneering Research Institute

C

Chigusa Kobayashi

Computational Biophysics Research Team, RIKEN Center for Computational Science

J

Jaewoon Jung

Theoretical Molecular Science Laboratory, RIKEN Cluster for Pioneering Research, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan

E

Eiro Muneyuki

Department of Physics, Faculty of Science and Engineering, Chuo University

Y

Yuji Sugita

Theoretical Molecular Science Laboratory, RIKEN Cluster for Pioneering Research, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan