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Updated: Jan 13, 2026

An Analog Macroscopic Technique for Studying Molecular Hydrodynamic Processes in Dense Gases and Liquids
Published on: December 4, 2017
Static and dynamic rough energy landscapes can lead to identical diffusivity
Dmitrii E Makarov1,2, Peter Sollich3,4
1Department of Chemistry, University of Texas at Austin, Austin, TX 78712.
Molecules in crowded environments experience forces fluctuating in time and space. A new model shows that spatial landscape roughness, not temporal dynamics, often dictates molecular movement, simplifying analysis of protein dynamics.
Area of Science:
- Statistical mechanics
- Biophysics
- Computational modeling
Background:
- Molecules in biological cells face forces fluctuating in time and space.
- Existing models like Lifson-Jackson-Zwanzig capture spatial fluctuations but lack temporal dynamics.
- A unified view of time- and space-fluctuating environments is needed.
Purpose of the Study:
- Introduce a discrete-state model for landscapes fluctuating in both time and space.
- Incorporate reciprocal interactions between diffusing particles and the landscape.
- Reevaluate experimental protein dynamics studies with the new model.
Main Methods:
- Developed a discrete-state model for time- and space-fluctuating landscapes.
- Included particle-landscape reciprocal interactions influencing landscape dynamics.
- Applied the model to analyze existing experimental data on protein dynamics.
Main Results:
- Observable molecular dynamics are often independent of temporal fluctuation timescales.
- Static energy landscape models (diffusion in a rough potential) capture key dynamics.
- The new model allows for more accurate bounds on energetic roughness scales.
Conclusions:
- Temporal landscape dynamics may not significantly alter observable molecular motion in dense environments.
- Simplified models assuming static landscapes can effectively describe many dynamic features.
- The study provides improved methods for analyzing protein dynamics and landscape roughness.
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