Motor properties from persistence: A linear molecular walker lacking spatial and temporal asymmetry
Publication date
2015-05-01
Editors
Advisors
Supervisors
Document Type
Article
Metadata
Show full item recordCollections
License
cc_by
Abstract
The stepping direction of linear molecular motors is usually defined by a spatial asymmetry of the motor, its track, or both. Here we present a model for a molecular walker that undergoes biased directional motion along a symmetric track in the presence of a temporally symmetric chemical cycle. Instead of using asymmetry, directionality is achieved by persistence. At small load force the walker can take on average thousands of steps in a given direction until it stochastically reverses direction. We discuss a specific experimental implementation of a synthetic motor based on this design and find, using Langevin and Monte Carlo simulations, that a realistic walker can work against load forces on the order of picoNewtons with an efficiency of ∼18%, comparable to that of kinesin. In principle, the walker can be turned into a permanent motor by externally monitoring the walker's momentary direction of motion, and using feedback to adjust the direction of a load force. We calculate the thermodynamic cost of using feedback to enhance motor performance in terms of the Shannon entropy, and find that it reduces the efficiency of a realistic motor only marginally. We discuss the implications for natural protein motor performance in the context of the strong performance of this design based only on a thermal ratchet.
Keywords
artificial protein motor, Brownian ratchet, feedback control, kinesin, Langevin dynamics, molecular motor, General Physics and Astronomy
Citation
Zuckermann, M J, Angstmann, C N, Schmitt, R, Blab, G A, Bromley, E H C, Forde, N R, Linke, H & Curmi, P M G 2015, 'Motor properties from persistence : A linear molecular walker lacking spatial and temporal asymmetry', New Journal of Physics, vol. 17, 055017. https://doi.org/10.1088/1367-2630/17/5/055017