Ab initio mol. dynamics (AIMD) and combined Hybrid/AIMD simulations appear as promising candidates for an in situ modeling of enzymic reactions. In order to probe the capabilities of these methods for the characterization of enzymic processes we have chosen the enzyme Human Carbonic Anhydrase II (HCAII) as a test case system. Several models of the active site have been studied in this work including ab initio cluster models of different sizes, ranging from about 30-90 atoms. We have also extended these quantum mech. (QM) models by taking into account the electrostatic effects of the surrounding protein through a hybrid scheme where the external field is described via charges from a classical MD force field. By comparing the structural and e...
Circular Dichroism (CD) spectroscopy is a powerful method for investigating conformational changes i...
AbstractSmall molecule rescue of mutant forms of human carbonic anhydrase II (HCA II) occurs by part...
Molecular dynamics (MD) is a powerful tool to study atomic scale changes in proteins underpinning bi...
Combined ab initio/empirical forcefield molecular dynamics (QM/MM) simulations are considered to be ...
Combined ab initio/empirical forcefield molecular dynamics (QM/MM) simulations are considered to be ...
The role of structure and dynamics of an enzyme has been investigated at three different stages of i...
Computation is increasingly well placed to offer insight into a range of structural and spectroscopi...
The barrier for the proton transfer in human carbonic anhydrase II (HCA II) has been studied by incl...
Carbonic anhydrase (CA) is an important enzyme, which has multiple isoforms each performing differen...
Carbonic anhydrase (CA) is an enzyme that catalyses the reversible hydration of carbon dioxide. Ther...
Molecular dynamics (MD) is a powerful tool to study atomic scale changes in proteins underpinning bi...
We investigate the binding/dissociation process of ligand molecule from carbonicanhydrase (CA) I car...
Circular Dichroism (CD) spectroscopy is a powerful method for investigating conformational changes i...
Circular Dichroism (CD) spectroscopy is a powerful method for investigating conformational changes i...
Activation mechanisms of an inactive form of β-carbonic anhydrase (β-CA), [Zn+2(cys)2(his)(H2O)], an...
Circular Dichroism (CD) spectroscopy is a powerful method for investigating conformational changes i...
AbstractSmall molecule rescue of mutant forms of human carbonic anhydrase II (HCA II) occurs by part...
Molecular dynamics (MD) is a powerful tool to study atomic scale changes in proteins underpinning bi...
Combined ab initio/empirical forcefield molecular dynamics (QM/MM) simulations are considered to be ...
Combined ab initio/empirical forcefield molecular dynamics (QM/MM) simulations are considered to be ...
The role of structure and dynamics of an enzyme has been investigated at three different stages of i...
Computation is increasingly well placed to offer insight into a range of structural and spectroscopi...
The barrier for the proton transfer in human carbonic anhydrase II (HCA II) has been studied by incl...
Carbonic anhydrase (CA) is an important enzyme, which has multiple isoforms each performing differen...
Carbonic anhydrase (CA) is an enzyme that catalyses the reversible hydration of carbon dioxide. Ther...
Molecular dynamics (MD) is a powerful tool to study atomic scale changes in proteins underpinning bi...
We investigate the binding/dissociation process of ligand molecule from carbonicanhydrase (CA) I car...
Circular Dichroism (CD) spectroscopy is a powerful method for investigating conformational changes i...
Circular Dichroism (CD) spectroscopy is a powerful method for investigating conformational changes i...
Activation mechanisms of an inactive form of β-carbonic anhydrase (β-CA), [Zn+2(cys)2(his)(H2O)], an...
Circular Dichroism (CD) spectroscopy is a powerful method for investigating conformational changes i...
AbstractSmall molecule rescue of mutant forms of human carbonic anhydrase II (HCA II) occurs by part...
Molecular dynamics (MD) is a powerful tool to study atomic scale changes in proteins underpinning bi...