Simulating Chalcogen Bonding Using Molecular Mechanics: A Pseudoatom Approach to Model Ebselen.

05 May 2021, Version 2
This content is a preprint and has not undergone peer review at the time of posting.

Abstract

The organoselenium compound ebselen has recently been investigated as a treatment for COVID-19, however
efforts to model ebselen in silico have been hampered by the lack of a efficient and accurate method to assess
its binding to biological macromolecules. We present here a Generalized Amber Force Field modification which
incorporates classical parameters for the selenium atom in ebselen, as well as a positively charged pseudoatom to
simulate the sigma?-hole, a quantum mechanical phenomenon that dominates the chemistry of ebselen. Our approach
is justified using an energy decomposition analysis of a number DFT optimised structures, which shows that the
?sigma-hole interaction is primarily electrostatic in origin. Finally, our model is verified by conducting MD simulations
on a number of simple complexes, as well the clinically relevant SOD1, which is known to bind to ebselen.

Keywords

AMBER
ebselen
GAFF
DFT
SAPT
chalcogen bonding
sigma hole type interactions

Supplementary materials

Title
Description
Actions
Title
ebs param si
Description
Actions
Title
ebs-param-rev2
Description
Actions

Comments

Comments are not moderated before they are posted, but they can be removed by the site moderators if they are found to be in contravention of our Commenting Policy [opens in a new tab] - please read this policy before you post. Comments should be used for scholarly discussion of the content in question. You can find more information about how to use the commenting feature here [opens in a new tab] .
This site is protected by reCAPTCHA and the Google Privacy Policy [opens in a new tab] and Terms of Service [opens in a new tab] apply.