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F1 rotary motor of ATP synthase is driven by the torsionally-asymmetric drive shaft

Abstract:
F1F0 ATP synthase (ATPase) either facilitates the synthesis of ATP in a process driven by the proton moving force (pmf), or uses the energy from ATP hydrolysis to pump protons against the concentration gradient across the membrane. ATPase is composed of two rotary motors, F0 and F1, which compete for control of their shared γ -shaft. We present a self-consistent physical model of F1 motor as a simplified two-state Brownian ratchet using the asymmetry of torsional elastic energy of the coiled-coil γ -shaft. This stochastic model unifies the physical concepts of linear and rotary motors and explains the stepped unidirectional rotary motion. Substituting the model parameters, all independently known from recent experiments, our model quantitatively reproduces the ATPase operation, e.g. the ‘no-load’ angular velocity is ca. 400 rad/s anticlockwise at 4 mM ATP. Increasing the pmf torque exerted by F0 can slow, stop and overcome the torque generated by F1, switching from ATP hydrolysis to synthesis at a very low value of ‘stall torque’. We discuss the motor efficiency, which is very low if calculated from the useful mechanical work it produces - but is quite high when the ‘useful outcome’ is measured in the number of H+ pushed against the chemical gradient.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1038/srep28180

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Institution:
University of Oxford
Division:
MPLS
Department:
Physics
Sub department:
Condensed Matter Physics
Role:
Author


Publisher:
Nature Publishing Group
Journal:
Scientific Reports More from this journal
Volume:
6
Issue:
1
Article number:
28180
Publication date:
2016-06-20
Acceptance date:
2016-05-31
DOI:
EISSN:
2045-2322


Language:
English
Pubs id:
pubs:635427
UUID:
uuid:2993433f-9e44-40af-afe2-88e1883d6379
Local pid:
pubs:635427
Source identifiers:
635427
Deposit date:
2016-07-26
ARK identifier:

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