DocumentCode
1111522
Title
Evaluation of a Grid Based Molecular Dynamics Approach for Polypeptide Simulations
Author
Merelli, Ivan ; Morra, Giulia ; Milanesi, Luciano
Author_Institution
Nat. Resource Council, Segrate
Volume
6
Issue
3
fYear
2007
Firstpage
229
Lastpage
234
Abstract
Molecular dynamics is very important for biomedical research because it makes possible simulation of the behavior of a biological macromolecule in silico. However, molecular dynamics is computationally rather expensive: the simulation of some nanoseconds of dynamics for a large macromolecule such as a protein takes very long time, due to the high number of operations that are needed for solving the Newton´s equations in the case of a system of thousands of atoms. In order to obtain biologically significant data, it is desirable to use high-performance computation resources to perform these simulations. Recently, a distributed computing approach based on replacing a single long simulation with many independent short trajectories has been introduced, which in many cases provides valuable results. This study concerns the development of an infrastructure to run molecular dynamics simulations on a grid platform in a distributed way. The implemented software allows the parallel submission of different simulations that are singularly short but together bring important biological information. Moreover, each simulation is divided into a chain of jobs to avoid data loss in case of system failure and to contain the dimension of each data transfer from the grid. The results confirm that the distributed approach on grid computing is particularly suitable for molecular dynamics simulations thanks to the elevated scalability.
Keywords
macromolecules; medical computing; molecular biophysics; molecular dynamics method; Newton equation; biological macromolecule; computer software; grid based molecular dynamics calculation; grid platform; polypeptide simulation; protein; Biological system modeling; Biology computing; Biomedical computing; Computational modeling; Distributed computing; Equations; High performance computing; Molecular biophysics; Nanobioscience; Proteins; Distributed approach; grid platform; molecular dynamics; Algorithms; Computer Simulation; Kinetics; Models, Chemical; Models, Molecular; Peptides; Protein Conformation;
fLanguage
English
Journal_Title
NanoBioscience, IEEE Transactions on
Publisher
ieee
ISSN
1536-1241
Type
jour
DOI
10.1109/TNB.2007.903483
Filename
4298098
Link To Document