We have developed a method to estimate accurate interaction energies between a full protein and a bound ligand. It is based oil the recently proposed PMISP (polarizable multipole interaction with supermolecular pairs) method (Soderhjelm, P.; Ryde, U. J. Phys. Chem. A 2009, 113. 617), which treats electrostatic interaction by multipoles up to quadrupoles, induction by anisotropic polarizabilities, and nonclassical interactions by explicit quantum mechanical (QM) calculations, using a fragmentation approach. For a whole protein, electrostatics and induction are treated the same way, but for the nonclassical interactions, a Lennard-Jones term from a standard molecular mechanics (MM) force field (e.g., Amber) is used outside a certain distance ...
Protein–protein interactions are very important in the function of a cell. Computational studies of ...
The ability to accurately predict binding free energies from computer simulations is an invaluable r...
The ability to accurately predict binding free energies from computer simulations is an invaluable r...
A new method to accurately estimate the interaction energy between a large molecule and a smaller li...
It is still impossible to make an accurate, purely theoretical prediction of the free energy of a li...
We present quantum chemical estimates of ligand-binding affinities performed, for the first time, at...
First-principles quantum mechanical calculations with methods such as density functional theory (DFT...
In this paper, we review our efforts to use quantum mechanical (QM) methods to improve free-energy e...
<div><p>The calculation of protein–ligand binding free energy (Δ<i>G</i>) is of great importance for...
We present a molecular simulation protocol to compute free energies of binding, which combines a QM/...
We have recently significantly expanded the applicability of our Molecules-in-Molecules (MIM) fragme...
Noncovalent intermolecular interactions, widely found in molecular clusters and bio-molecules, play ...
The ability to accurately predict binding free energies from computer simulations is an invaluable r...
The most general way to improve the accuracy of binding-affinity calculations for protein-ligand sys...
Protein–protein interactions are very important in the function of a cell. Computational studies of ...
Protein–protein interactions are very important in the function of a cell. Computational studies of ...
The ability to accurately predict binding free energies from computer simulations is an invaluable r...
The ability to accurately predict binding free energies from computer simulations is an invaluable r...
A new method to accurately estimate the interaction energy between a large molecule and a smaller li...
It is still impossible to make an accurate, purely theoretical prediction of the free energy of a li...
We present quantum chemical estimates of ligand-binding affinities performed, for the first time, at...
First-principles quantum mechanical calculations with methods such as density functional theory (DFT...
In this paper, we review our efforts to use quantum mechanical (QM) methods to improve free-energy e...
<div><p>The calculation of protein–ligand binding free energy (Δ<i>G</i>) is of great importance for...
We present a molecular simulation protocol to compute free energies of binding, which combines a QM/...
We have recently significantly expanded the applicability of our Molecules-in-Molecules (MIM) fragme...
Noncovalent intermolecular interactions, widely found in molecular clusters and bio-molecules, play ...
The ability to accurately predict binding free energies from computer simulations is an invaluable r...
The most general way to improve the accuracy of binding-affinity calculations for protein-ligand sys...
Protein–protein interactions are very important in the function of a cell. Computational studies of ...
Protein–protein interactions are very important in the function of a cell. Computational studies of ...
The ability to accurately predict binding free energies from computer simulations is an invaluable r...
The ability to accurately predict binding free energies from computer simulations is an invaluable r...