𝔖 Bobbio Scriptorium
✦   LIBER   ✦

Performance of the general amber force field in modeling aqueous POPC membrane bilayers

✍ Scribed by Balázs Jójárt; Tamás A. Martinek


Publisher
John Wiley and Sons
Year
2007
Tongue
English
Weight
260 KB
Volume
28
Category
Article
ISSN
0192-8651

No coin nor oath required. For personal study only.

✦ Synopsis


Abstract

The aim of this work was to answer the question of whether the general amber force field (GAFF) is good enough to simulate fully hydrated POPC membrane bilayers. The test system contained 128 POPC and 2985 TIP3P water molecules. The equilibration was carried out in a nonarbitrary manner to reach the stable liquid‐crystalline phase. The simulations were performed by using particle mesh Ewald electrostatics implemented in molecular dynamics packages Amber8 (NPT ensembles) and NAMD2 (NPγT ensembles). The computational results were assessed against the following experimental membrane properties: (i) area per lipid, (ii) area compressibility modulus, (iii) order parameter, (iv) gauche conformations per acyl chain, (v) lateral diffusion coefficients, (vi) electron density profile, and (vii) bound water at the lipid/water interface. The analyses revealed that the tested force field combination approximates the experimental values at an unexpectedly good level when the NPγT ensemble is applied with a surface tension of 60 mN m^−1^ per bilayer. It is concluded that the GAFF/TIP3P combination can be utilized for aqueous membrane bilayer simulations, as it provides acceptable accuracy for biomolecular modeling. © 2007 Wiley Periodicals, Inc. J Comput Chem, 2007


📜 SIMILAR VOLUMES


Assessment of performance of the general
✍ Alexander G. Donchev; Nikolay G. Galkin; Alexey A. Illarionov; Oleg V. Khoruzhii 📂 Article 📅 2008 🏛 John Wiley and Sons 🌐 English ⚖ 101 KB

## Abstract The recently introduced force field (FF) QMPFF3 is thoroughly validated in gas, liquid, and solid phases. For the first time, it is demonstrated that a physically well‐grounded general purpose FF fitted exclusively to a comprehensive set of high level vacuum quantum mechanical data appl