Metal cations are essential in many vital processes. In order to capture the role of different cations in all-atom molecular dynamics simulations of biological processes, an accurate parametrization is crucial. Here, we develop force field parameters for the metal cations Li+, Na+, K+, Cs+, Mg2+, Ca2+, Sr2+, and Ba2+ in combination with the TIP3P water model that is frequently used in biomolecular simulations. In progressing toward improved force fields, the approach presented here is an extension of previous efforts and allows us to simultaneously reproduce thermodynamic and kinetic properties of aqueous solutions. We systematically derive the parameters of the 12-6 Lennard-Jones potential which accurately reproduces the experimental solva...
The alkaline earth metals calcium and magnesium are critically involved in many biomolecular process...
A new ReaxFF reactive force field has been developed for water–electrolyte systems including cations...
The cationic dummy atom approach provides a powerful nonbonded description for a range of alkaline-e...
Metal cations are essential in many vital processes. In order to capture the role of different catio...
Presented are parameters for mono-, di-, and trivalent cations compatible with the CHARMM additive f...
[[abstract]]We have presented a strategy for deriving ion-water van der Waals (vdW) parameters that ...
The monovalent ions Na+ and K+ and Cl− are present in any living organism. The fundamental thermodyn...
Magnesium is essential in many vital processes. To correctly describe Mg2+ in physiological processe...
Biomolecular processes involve hydrated ions, and thus molecular simulations of such processes requi...
Biomolecular processes involve hydrated ions, and thus molecular simulations of such processes requi...
The cationic dummy atom approach provides a powerful nonbonded description for a range of alkaline-e...
The cationic dummy atom approach provides a powerful nonbonded description for a range of alkaline-e...
Presented are parameters for mono-, di-, and trivalent cations compatible with the CHARMM additive f...
The poor performance of many existing nonpolarizable ion force fields is typically blamed on either ...
We develop force field parameters for the divalent cations Mg2+, Ca2+, Sr2+, and Ba2+ for molecular ...
The alkaline earth metals calcium and magnesium are critically involved in many biomolecular process...
A new ReaxFF reactive force field has been developed for water–electrolyte systems including cations...
The cationic dummy atom approach provides a powerful nonbonded description for a range of alkaline-e...
Metal cations are essential in many vital processes. In order to capture the role of different catio...
Presented are parameters for mono-, di-, and trivalent cations compatible with the CHARMM additive f...
[[abstract]]We have presented a strategy for deriving ion-water van der Waals (vdW) parameters that ...
The monovalent ions Na+ and K+ and Cl− are present in any living organism. The fundamental thermodyn...
Magnesium is essential in many vital processes. To correctly describe Mg2+ in physiological processe...
Biomolecular processes involve hydrated ions, and thus molecular simulations of such processes requi...
Biomolecular processes involve hydrated ions, and thus molecular simulations of such processes requi...
The cationic dummy atom approach provides a powerful nonbonded description for a range of alkaline-e...
The cationic dummy atom approach provides a powerful nonbonded description for a range of alkaline-e...
Presented are parameters for mono-, di-, and trivalent cations compatible with the CHARMM additive f...
The poor performance of many existing nonpolarizable ion force fields is typically blamed on either ...
We develop force field parameters for the divalent cations Mg2+, Ca2+, Sr2+, and Ba2+ for molecular ...
The alkaline earth metals calcium and magnesium are critically involved in many biomolecular process...
A new ReaxFF reactive force field has been developed for water–electrolyte systems including cations...
The cationic dummy atom approach provides a powerful nonbonded description for a range of alkaline-e...