Issue 46, 2021

Electrostatic interactions contribute to the control of intramolecular thiol–disulfide isomerization in a protein

Abstract

The roles of structural factors and of electrostatic interactions with the environment on the outcome of thiol–disulfide exchange reactions were investigated in a mutated immunoglobulin domain (I27*) under mechanical stress. An extensive ensemble of molecular dynamics trajectories was generated by means of QM/MM simulations for a total sampling of 5.7 μs. A significant number of thiol–disulfide exchanges were observed, and the Cys32 thiolate preferred to attack Cys55 over Cys24, in agreement with previous experimental and computational studies. The structural features as well as electronic structures of the thiol–disulfide system along the reaction were analyzed, as were the electrostatic interactions with the environment. The previous findings of better accessibility of Cys55 were confirmed. Additionally, the reaction was found to be directed by the electrostatic interactions of the involved sulfur atoms with the molecular environment. The relationships of atomic charges, which stem from the electrostatic interactions, lead to the kinetic preference of the attack on Cys55. Further, QM/MM metadynamics simulations of thiol–disulfide exchange in a small model system with varied artificial external electric potentials revealed changes in reaction kinetics of the same magnitude as in I27*. Therefore, the electrostatic interactions are confirmed to play a role in the regioselectivity of the thiol–disulfide exchange reactions in the protein.

Graphical abstract: Electrostatic interactions contribute to the control of intramolecular thiol–disulfide isomerization in a protein

Supplementary files

Article information

Article type
Paper
Submitted
09 Jul 2021
Accepted
11 Nov 2021
First published
11 Nov 2021
This article is Open Access
Creative Commons BY license

Phys. Chem. Chem. Phys., 2021,23, 26366-26375

Electrostatic interactions contribute to the control of intramolecular thiol–disulfide isomerization in a protein

D. Maag, M. Putzu, C. L. Gómez-Flores, F. Gräter, M. Elstner and T. Kubař, Phys. Chem. Chem. Phys., 2021, 23, 26366 DOI: 10.1039/D1CP03129E

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