Fast Atomic Charge Calculation for Implementation into a Polarizable Force Field and Application to an Ion Channel Protein

Author:

Witter Raiker12,Möllhoff Margit3,Koch Frank-Thomas4,Sternberg Ulrich1

Affiliation:

1. Technomedicum, Tallinn University of Technology, Ehitajate Tee 5, 19086 Tallinn, Estonia

2. Institute of Nanotechnology, Karlsruhe Institute of Technology (KIT), P.O. Box 3640, 76021 Karlsruhe, Germany

3. Los Alamos National Laboratory, P.O. Box 1663, Los Alamos, NM 87545, USA

4. Max Planck Institute of Biogeochemistry, Hans-Knöll-Strasse 10, 07745 Jena, Germany

Abstract

Polarization of atoms plays a substantial role in molecular interactions. Class I and II force fields mostly calculate with fixed atomic charges which can cause inadequate descriptions for highly charged molecules, for example, ion channels or metalloproteins. Changes in charge distributions can be included into molecular mechanics calculations by various methods. Here, we present a very fast computational quantum mechanical method, the Bond Polarization Theory (BPT). Atomic charges are obtained via a charge calculation method that depend on the 3D structure of the system in a similar way as atomic charges ofab initiocalculations. Different methods of population analysis and charge calculation methods and their dependence on the basis set were investigated. A refined parameterization yielded excellent correlation ofR=0.9967. The method was implemented in the force field COSMOS-NMR and applied to the histidine-tryptophan-complex of the transmembrane domain of the M2 protein channel of influenza A virus. Our calculations show that moderate changes of side chain torsion angleχ1and small variations ofχ2of Trp-41 are necessary to switch from the inactivated into the activated state; and a rough two-side jump model of His-37 is supported for proton gating in accordance with a flipping mechanism.

Funder

European Social Fund

Publisher

Hindawi Limited

Subject

General Chemistry

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