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Coarse Master Equations for Peptide Folding Dynamics
- Source :
- The Journal of Physical Chemistry B. 112:6057-6069
- Publication Year :
- 2008
- Publisher :
- American Chemical Society (ACS), 2008.
-
Abstract
- We construct coarse master equations for peptide folding dynamics from atomistic molecular dynamics simulations. A maximum-likelihood propagator-based method allows us to extract accurate rates for the transitions between the different conformational states of the small helix-forming peptide Ala5. Assigning the conformational states by using transition paths instead of instantaneous molecular coordinates suppresses the effects of fast non-Markovian dynamics. The resulting master equations are validated by comparing their analytical correlation functions with those obtained directly from the molecular dynamics simulations. We find that the master equations properly capture the character and relaxation times of the entire spectrum of conformational relaxation processes. By using the eigenvectors of the transition rate matrix, we are able to systematically coarse-grain the system. We find that a two-state description, with a folded and an unfolded state, roughly captures the slow conformational dynamics. A four-state model, with two folded and two unfolded states, accurately recovers the three slowest relaxation process with time scales between 1.5 and 7 ns. The master equation models not only give access to the slow conformational dynamics but also shed light on the molecular mechanisms of the helix-coil transition.
- Subjects :
- Models, Molecular
Protein Folding
Quantitative Biology::Biomolecules
Time Factors
Chemistry
Temperature
Propagator
Transition rate matrix
Protein Structure, Tertiary
Surfaces, Coatings and Films
Folding (chemistry)
Molecular dynamics
Classical mechanics
Master equation
Materials Chemistry
Computer Simulation
Protein folding
Relaxation (approximation)
Statistical physics
Physical and Theoretical Chemistry
Peptides
Eigenvalues and eigenvectors
Subjects
Details
- ISSN :
- 15205207 and 15206106
- Volume :
- 112
- Database :
- OpenAIRE
- Journal :
- The Journal of Physical Chemistry B
- Accession number :
- edsair.doi.dedup.....42883106a6c66583afafb74037425d9b
- Full Text :
- https://doi.org/10.1021/jp0761665