๐”– Bobbio Scriptorium
โœฆ   LIBER   โœฆ

Refinement of the primary hydration shell model for molecular dynamics simulations of large proteins

โœ Scribed by Mehdi Bagheri Hamaneh; Matthias Buck


Publisher
John Wiley and Sons
Year
2009
Tongue
English
Weight
720 KB
Volume
30
Category
Article
ISSN
0192-8651

No coin nor oath required. For personal study only.

โœฆ Synopsis


Abstract

A realistic representation of water molecules is important in molecular dynamics simulation of proteins. However, the standard method of solvating biomolecules, that is, immersing them in a box of water with periodic boundary conditions, is computationally expensive. The primary hydration shell (PHS) method, developed more than a decade ago and implemented in CHARMM, uses only a thin shell of water around the system of interest, and so greatly reduces the computational cost of simulations. Applying the PHS method, especially to larger proteins, revealed that further optimization and a partial reworking was required and here we present several improvements to its performance. The model is applied to systems with different sizes, and both water and protein behaviors are compared with those observed in standard simulations with periodic boundary conditions and, in some cases, with experimental data. The advantages of the modified PHS method over its original implementation are clearly apparent when it is applied to simulating the 82 kDa protein Malate Synthase G. ยฉ 2009 Wiley Periodicals, Inc. J Comput Chem 2009


๐Ÿ“œ SIMILAR VOLUMES


Comparison between self-guided Langevin
โœ Mark A. Olson; Sidhartha Chaudhury; Michael S. Lee ๐Ÿ“‚ Article ๐Ÿ“… 2011 ๐Ÿ› John Wiley and Sons ๐ŸŒ English โš– 687 KB

## Abstract This article presents a comparative analysis of two replicaโ€exchange simulation methods for the structure refinement of protein loop conformations, starting from lowโ€resolution predictions. The methods are selfโ€guided Langevin dynamics (SGLD) and molecular dynamics (MD) with a Nosรฉโ€“Hoov