Water molecules play a key role in many biomolecular systems, particularly when bound at protein-ligand interfaces. However, molecular simulation studies on such systems are hampered by the relatively long time scales over which water exchange between a protein and solvent takes place. Grand canonical Monte Carlo (GCMC) is a simulation technique that avoids this issue by attempting the insertion and deletion of water molecules within a given structure. The approach is constrained by low acceptance probabilities for insertions in congested systems, however. To address this issue, here, we combine GCMC with nonequilibium candidate Monte Carlo (NCMC) to yield a method that we refer to as grand canonical nonequilibrium candidate Monte Carlo (GC...
Water molecules play important roles in all biochemical processes. Therefore, it is of key importanc...
Water molecules play integral roles in the formation of many protein–ligand complexes, and recent co...
Water molecules are commonplace in protein binding pockets, where they can typically form a complex ...
Water molecules play a key role in many biomolecular systems, particularly when bound at protein-lig...
Water molecules play a key role in many biomolecular systems, particularly when bound at protein-lig...
Water molecules play a key role in many biomolecular systems, particularly when bound at protein–lig...
Water plays an important role in mediating protein-ligand interactions. Water rearrangement upon a l...
Water plays an important role in mediating protein-ligand interactions. Water rearrangement upon a l...
The work presented in this thesis focuses on the use of grand canonical Monte Carlo (GCMC) sampling ...
Water often plays a key role in protein structure, molecular recognition, and mediating protein-liga...
Water often plays a key role in protein structure, molecular recognition, and mediating protein–liga...
Water molecules can be found interacting with the surface and within cavities in proteins. However, ...
This thesis studies the ability of computer simulation to determine the location and free energy of ...
The ability of grand canonical Monte Carlo (GCMC) to create and annihilate molecules in a given regi...
Water molecules play important roles in all biochemical processes. Therefore, it is of key importanc...
Water molecules play important roles in all biochemical processes. Therefore, it is of key importanc...
Water molecules play integral roles in the formation of many protein–ligand complexes, and recent co...
Water molecules are commonplace in protein binding pockets, where they can typically form a complex ...
Water molecules play a key role in many biomolecular systems, particularly when bound at protein-lig...
Water molecules play a key role in many biomolecular systems, particularly when bound at protein-lig...
Water molecules play a key role in many biomolecular systems, particularly when bound at protein–lig...
Water plays an important role in mediating protein-ligand interactions. Water rearrangement upon a l...
Water plays an important role in mediating protein-ligand interactions. Water rearrangement upon a l...
The work presented in this thesis focuses on the use of grand canonical Monte Carlo (GCMC) sampling ...
Water often plays a key role in protein structure, molecular recognition, and mediating protein-liga...
Water often plays a key role in protein structure, molecular recognition, and mediating protein–liga...
Water molecules can be found interacting with the surface and within cavities in proteins. However, ...
This thesis studies the ability of computer simulation to determine the location and free energy of ...
The ability of grand canonical Monte Carlo (GCMC) to create and annihilate molecules in a given regi...
Water molecules play important roles in all biochemical processes. Therefore, it is of key importanc...
Water molecules play important roles in all biochemical processes. Therefore, it is of key importanc...
Water molecules play integral roles in the formation of many protein–ligand complexes, and recent co...
Water molecules are commonplace in protein binding pockets, where they can typically form a complex ...