Effects of flexibility in coarse-grained models for bovine serum albumin and immunoglobulin G

Author:

Hirschmann Frank1ORCID,Lopez Hender2ORCID,Roosen-Runge Felix3ORCID,Seydel Tilo4ORCID,Schreiber Frank1ORCID,Oettel Martin1ORCID

Affiliation:

1. Institute for Applied Physics, University of Tübingen 1 , Auf der Morgenstelle 10, 72076 Tübingen, Germany

2. School of Physics, Clinical and Optometric Sciences, Technological University Dublin 2 , Grangegorman D07 ADY7, Ireland

3. Department of Biomedical Sciences and Biofilms-Research Center for Biointerfaces (BRCB), Malmö University 3 , 20506 Malmö, Sweden

4. Institut Max von Laue—Paul Langevin 4 , 71 Avenue des Martyrs, 38042 Grenoble, France

Abstract

We construct a coarse-grained, structure-based, low-resolution, 6-bead flexible model of bovine serum albumin (BSA, PDB: 4F5S), which is a popular example of a globular protein in biophysical research. The model is obtained via direct Boltzmann inversion using all-atom simulations of a single molecule, and its particular form is selected from a large pool of 6-bead coarse-grained models using two suitable metrics that quantify the agreement in the distribution of collective coordinates between all-atom and coarse-grained Brownian dynamics simulations of solutions in the dilute limit. For immunoglobulin G (IgG), a similar structure-based 12-bead model has been introduced in the literature [Chaudhri et al., J. Phys. Chem. B 116, 8045 (2012)] and is employed here to compare findings for the compact BSA molecule and the more anisotropic IgG molecule. We define several modified coarse-grained models of BSA and IgG, which differ in their internal constraints and thus account for a variation of flexibility. We study denser solutions of the coarse-grained models with purely repulsive molecules (achievable by suitable salt conditions) and address the effect of packing and flexibility on dynamic and static behavior. Translational and rotational self-diffusivity is enhanced for more elastic models. Finally, we discuss a number of effective sphere sizes for the BSA molecule, which can be defined from its static and dynamic properties. Here, it is found that the effective sphere diameters lie between 4.9 and 6.1 nm, corresponding to a relative spread of about ±10% around a mean of 5.5 nm.

Funder

Deutsche Forschungsgemeinschaft

Agence Nationale de la Recherche

Bundesministerium für Bildung und Forschung

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

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