Studies of an Off-Lattice Model for Protein Folding: Sequence Dependence and Improved Sampling at Finite Temperature
Anders Irbäck, Frank Potthast
Abstract
We study the thermodynamic behavior of a simple off-lattice model for protein folding. The model is two-dimensional and has two different ``amino acids''. Using numerical simulations of all chains containing eight or ten monomers, we examine the sequence dependence at a fixed temperature. It is shown that only a few of the chains exist in unique folded state at this temperature, and the energy level spectra of chains with different types of behavior are compared. Furthermore, we use this model as a testbed for two improved Monte Carlo algorithms. Both algorithms are based on letting some parameter of the model become a dynamical variable; one of the algorithms uses a fluctuating temperature and the other a fluctuating monomer sequence. We find that by these algorithms one gains large factors in efficiency in comparison with conventional methods.
Create a lesson
Related papers
A Computational Study of Thirteen-atom Ar-Kr Cluster Heat Capacities
Don D. Frantz
A Variational Approach to the Structure and Thermodynamics of Linear Polyelectrolytes with Coulomb and Screened Coulomb Interactions
B. Jönsson, C. Peterson, B. Söderberg
Applications of the Optimized Effective Potential Method of Density Functional Theory to Atomic and Molecular Systems
T. Grabo, E. K. U. Gross
Relation between a Screened Polyelectrolyte and a Field Theory
Bo Soderberg
ΔI=4 and ΔI=8 bifurcations in rotational bands of diatomic molecules
Dennis Bonatsos, C. Daskaloyannis, G. A. Lalazissis et al.
A Dynamical Theory of Electron Transfer: Crossover from Weak to Strong Electronic Coupling
Juergen T. Stockburger, C. H. Mak