Back to Search
Start Over
Nonbonded Force Field Parameters from Minimal Basis Iterative Stockholder Partitioning of the Molecular Electron Density Improve CB7 Host-Guest Affinity Predictions
- Source :
- JOURNAL OF CHEMICAL INFORMATION AND MODELING
- Publication Year :
- 2022
-
Abstract
- Binding affinity prediction by means of computer simulation has been increasingly incorporated in drug discovery projects. Its wide application, however, is limited by the prediction accuracy of the free energy calculations. The main error sources are force fields used to describe molecular interactions and incomplete sampling of the configurational space. Organic host-guest systems have been used to address force field quality because they share similar interactions found in ligands and receptors, and their rigidity facilitates configurational sampling. Here, we test the binding free energy prediction accuracy for 14 guests with an aromatic or adamantane core and the CB7 host using molecular electron density derived nonbonded force field parameters. We developed a computational workflow written in Python to derive atomic charges and Lennard-Jones parameters with the Minimal Basis Iterative Stockholder method using the polarized electron density of several configurations of each guest in the bound and unbound states. The resulting nonbonded force field parameters improve binding affinity prediction, especially for guests with an adamantane core in which repulsive exchange and dispersion interactions to the host dominate.
- Subjects :
- BLIND PREDICTION
General Chemical Engineering
COMPONENTS
ATOMIC CHARGES
AM1-BCC MODEL
Adamantane
Electrons
FREE-ENERGY
General Chemistry
Library and Information Sciences
Ligands
Computer Science Applications
Physics and Astronomy
QUALITY
Thermodynamics
COMPLEXES
Computer Simulation
EFFICIENT GENERATION
ADAPTED PERTURBATION-THEORY
BASIS-SETS
Subjects
Details
- ISSN :
- 1549960X and 15499596
- Volume :
- 62
- Issue :
- 17
- Database :
- OpenAIRE
- Journal :
- Journal of chemical information and modeling
- Accession number :
- edsair.doi.dedup.....f3de13ad43571bab6b44350a70613438