Understanding the structural and energetic requisites of ligand binding toward its molecular target is of paramount relevance in drug design. In recent years, atomistic free energy calculations have proven to be a valid tool to complement experiments in characterizing the thermodynamic and kinetic properties of protein/ligand interaction. Here, we investigate, through a recently developed metadynamics-based protocol, the unbinding mechanism of an inhibitor of the pharmacologically relevant target p38 MAP kinase. We provide a thorough description of the ligand unbinding pathway identifying the most stable binding mode and other thermodynamically relevant poses. From our simulations, we estimated the unbinding rate as <i>k</i><sub>off</sub> =...
For many drug targets, it has been shown that the kinetics of drug binding (e.g., on rate and off ra...
Understanding ligand binding kinetics and thermodynamics, which involves investigating the free, tra...
It is widely accepted that drug-target association and dissociation rates directly affect drug effic...
Understanding the structural and energetic requisites of ligand binding toward its molecular target ...
Understanding the governing factors of fast or slow inhibitor binding/unbinding assists in developin...
The ability to predict the mechanisms and the associated rate constants of protein-ligand unbinding ...
The determination of drug residence times, which define the time an inhibitor is in complex with its...
The determination of drug residence times, which define the time an inhibitor is in complex with its...
Abstract: Ligand (un)binding kinetics is being recognized as a determinant of drug specificity and e...
Ligand (un)binding kinetics is being recognized as a determinant of drug specificity and efficacy i...
The residence time of a ligand–protein complex is a crucial aspect in determining biological effect ...
International audienceIn the early stage of a drug discovery process, the selection and optimization...
AbstractAccurate free-energy calculations provide mechanistic insights into molecular recognition an...
Understanding the unbinding kinetics of protein–ligand complexes is considered a significant approac...
For many drug targets, it has been shown that the kinetics of drug binding (e.g., on rate and off ra...
Understanding ligand binding kinetics and thermodynamics, which involves investigating the free, tra...
It is widely accepted that drug-target association and dissociation rates directly affect drug effic...
Understanding the structural and energetic requisites of ligand binding toward its molecular target ...
Understanding the governing factors of fast or slow inhibitor binding/unbinding assists in developin...
The ability to predict the mechanisms and the associated rate constants of protein-ligand unbinding ...
The determination of drug residence times, which define the time an inhibitor is in complex with its...
The determination of drug residence times, which define the time an inhibitor is in complex with its...
Abstract: Ligand (un)binding kinetics is being recognized as a determinant of drug specificity and e...
Ligand (un)binding kinetics is being recognized as a determinant of drug specificity and efficacy i...
The residence time of a ligand–protein complex is a crucial aspect in determining biological effect ...
International audienceIn the early stage of a drug discovery process, the selection and optimization...
AbstractAccurate free-energy calculations provide mechanistic insights into molecular recognition an...
Understanding the unbinding kinetics of protein–ligand complexes is considered a significant approac...
For many drug targets, it has been shown that the kinetics of drug binding (e.g., on rate and off ra...
Understanding ligand binding kinetics and thermodynamics, which involves investigating the free, tra...
It is widely accepted that drug-target association and dissociation rates directly affect drug effic...