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Updated: Sep 26, 2025

Light-driven Molecular Motors on Surfaces for Single Molecular Imaging
Published on: March 13, 2019
Simulating a chemically fueled molecular motor with nonequilibrium molecular dynamics.
Alex Albaugh1, Todd R Gingrich2
1Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, IL, 60208, USA.
This study introduces a novel simulation method for molecular motors operating under nonequilibrium conditions. The developed chemostat scheme enables observation of molecular motor cycles and identification of interactions that tune motor function.
Area of Science:
- Computational chemistry and molecular dynamics
- Chemical physics and nonequilibrium thermodynamics
Background:
- Traditional molecular dynamics simulations often assume equilibrium conditions, limiting their applicability to systems driven by chemical reactions.
- Molecular motors and catalysts function dynamically, driven by thermodynamic forces that create nonequilibrium steady states.
- Simulations require specialized methods, such as chemostats, to maintain chemical concentrations in these nonequilibrium states.
Purpose of the Study:
- To develop a dynamic simulation scheme with chemostats for preserving chemical concentrations in nonequilibrium steady states.
- To observe the operational cycles of a particle-based classical model of a catenane-like molecular motor.
- To investigate how inter-particle interactions influence the rates and function of molecular motors.
Main Methods:
- Development of a novel dynamic simulation scheme incorporating chemostats to maintain chemical nonequilibrium.
- Particle-based classical modeling of a catenane-like molecular motor.
- Coarse-graining microscopic dynamics to construct detailed-balance-breaking Markov models and extract reaction rates.
Main Results:
- Successfully simulated the cycles of a molecular motor under nonequilibrium conditions.
- Identified specific inter-particle interactions that effectively tune the motor's operational rates.
- Demonstrated the ability to extract Markov model rates from microscopic simulation data.
Conclusions:
- The developed chemostat scheme is effective for simulating molecular motors driven by chemical thermodynamics.
- Inter-particle interactions play a crucial role in determining the functionality and efficiency of molecular motors.
- This computational approach provides a valuable tool for studying directional bias, current generation, and coupling in molecular ratchets.
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