Improved Estimation of Protein-Ligand Binding Free Energy by Using the Ligand-Entropy and Mobility of Water Molecules

We previously developed the direct interaction approximation (DIA) method to estimate the protein-ligand binding free energy (DG). The DIA method estimates the DG value based on the direct van der Waals and electrostatic interaction energies between the protein and the ligand. In the current study,...

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Main Authors: Haruki Nakamura, Yoshifumi Fukunishi
Format: Article
Language:English
Published: MDPI AG 2013-04-01
Series:Pharmaceuticals
Subjects:
Online Access:http://www.mdpi.com/1424-8247/6/5/604
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spelling doaj-badadc36e0784eecbed07f84b4178afd2020-11-25T01:22:00ZengMDPI AGPharmaceuticals1424-82472013-04-016560462210.3390/ph6050604Improved Estimation of Protein-Ligand Binding Free Energy by Using the Ligand-Entropy and Mobility of Water MoleculesHaruki NakamuraYoshifumi FukunishiWe previously developed the direct interaction approximation (DIA) method to estimate the protein-ligand binding free energy (DG). The DIA method estimates the DG value based on the direct van der Waals and electrostatic interaction energies between the protein and the ligand. In the current study, the effect of the entropy of the ligand was introduced with protein dynamic properties by molecular dynamics simulations, and the interaction between each residue of the protein and the ligand was also weighted considering the hydration of each residue. The molecular dynamics simulation of the apo target protein gave the hydration effect of each residue, under the assumption that the residues, which strongly bind the water molecules, are important in the protein-ligand binding. These two effects improved the reliability of the DIA method. In fact, the parameters used in the DIA became independent of the target protein. The averaged error of DG estimation was 1.3 kcal/mol and the correlation coefficient between the experimental DG value and the calculated DG value was 0.75.http://www.mdpi.com/1424-8247/6/5/604protein-ligand dockingmolecular dynamics simulationprotein-ligand binding free energy
collection DOAJ
language English
format Article
sources DOAJ
author Haruki Nakamura
Yoshifumi Fukunishi
spellingShingle Haruki Nakamura
Yoshifumi Fukunishi
Improved Estimation of Protein-Ligand Binding Free Energy by Using the Ligand-Entropy and Mobility of Water Molecules
Pharmaceuticals
protein-ligand docking
molecular dynamics simulation
protein-ligand binding free energy
author_facet Haruki Nakamura
Yoshifumi Fukunishi
author_sort Haruki Nakamura
title Improved Estimation of Protein-Ligand Binding Free Energy by Using the Ligand-Entropy and Mobility of Water Molecules
title_short Improved Estimation of Protein-Ligand Binding Free Energy by Using the Ligand-Entropy and Mobility of Water Molecules
title_full Improved Estimation of Protein-Ligand Binding Free Energy by Using the Ligand-Entropy and Mobility of Water Molecules
title_fullStr Improved Estimation of Protein-Ligand Binding Free Energy by Using the Ligand-Entropy and Mobility of Water Molecules
title_full_unstemmed Improved Estimation of Protein-Ligand Binding Free Energy by Using the Ligand-Entropy and Mobility of Water Molecules
title_sort improved estimation of protein-ligand binding free energy by using the ligand-entropy and mobility of water molecules
publisher MDPI AG
series Pharmaceuticals
issn 1424-8247
publishDate 2013-04-01
description We previously developed the direct interaction approximation (DIA) method to estimate the protein-ligand binding free energy (DG). The DIA method estimates the DG value based on the direct van der Waals and electrostatic interaction energies between the protein and the ligand. In the current study, the effect of the entropy of the ligand was introduced with protein dynamic properties by molecular dynamics simulations, and the interaction between each residue of the protein and the ligand was also weighted considering the hydration of each residue. The molecular dynamics simulation of the apo target protein gave the hydration effect of each residue, under the assumption that the residues, which strongly bind the water molecules, are important in the protein-ligand binding. These two effects improved the reliability of the DIA method. In fact, the parameters used in the DIA became independent of the target protein. The averaged error of DG estimation was 1.3 kcal/mol and the correlation coefficient between the experimental DG value and the calculated DG value was 0.75.
topic protein-ligand docking
molecular dynamics simulation
protein-ligand binding free energy
url http://www.mdpi.com/1424-8247/6/5/604
work_keys_str_mv AT harukinakamura improvedestimationofproteinligandbindingfreeenergybyusingtheligandentropyandmobilityofwatermolecules
AT yoshifumifukunishi improvedestimationofproteinligandbindingfreeenergybyusingtheligandentropyandmobilityofwatermolecules
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