Title of article
Computer simulations of protein folding: Classical trajectories by optimization of action Original Research Article
Author/Authors
Jon Kleinberg and Ron Elber، نويسنده ,
Issue Information
دوهفته نامه با شماره پیاپی سال 2005
Pages
7
From page
277
To page
283
Abstract
The vast range of time scales (from nanoseconds to seconds) during protein folding is a challenge for experiments and computations. To make concrete predictions of folding mechanisms, atomically detailed simulations of protein folding using potentials derived from chemical physics principles, are desired. However, due to their computational complexity, straightforward molecular dynamics simulations of protein folding are impossible using todayʹs technology. An alternative algorithm for atomically detailed simulations is discussed that makes it possible to compute approximate atomically detailed long time trajectories (SDEL—the Stochastic Difference Equation in Length). This algorithm is used to compute folding trajectories of a helical peptide, protein A, and the protein cytochrome c. A brief account of the methodology, the results, and comparison to experiments are provided.
Keywords
Secondary structure formation , Boundary value trajectories , molecular dynamics simulations , Hydrophobic collapse , Stochastic difference equation
Journal title
Computer Physics Communications
Serial Year
2005
Journal title
Computer Physics Communications
Record number
1136887
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