PLoS Computational Biology · 2014 · 11 citations · 19 references
EngineeringBiomolecular Structure PredictionProton-coupled Electron TransferMolecular BiologyComputational ChemistryRedox SiteChemistryRedox BiologyMolecular DesignMolecular ComputingElectron Transfer ProteinsReduction PotentialsMolecular SimulationRedox ChemistryCharmming IiiComputational BiochemistryBiophysicsProtein ChemistryMolecular SciencesRedox CoupleBiochemistryProtein ModelingQuantum ChemistryMolecular ModelingNatural SciencesMolecular PropertyMolecular BiophysicsComputational Biophysics
A module for fast determination of reduction potentials, E°, of redox-active proteins has been implemented in the CHARMM INterface and Graphics (CHARMMing) web portal (www.charmming.org). The free energy of reduction, which is proportional to E°, is composed of an intrinsic contribution due to the redox site and an environmental contribution due to the protein and solvent. Here, the intrinsic contribution is selected from a library of pre-calculated density functional theory values for each type of redox site and redox couple, while the environmental contribution is calculated from a crystal structure of the protein using Poisson-Boltzmann continuum electrostatics. An accompanying lesson demonstrates a calculation of E°. In this lesson, an ionizable residue in a [4Fe-4S]-protein that causes a pH-dependent E° is identified, and the E° of a mutant that would test the identification is predicted. This demonstration is valuable to both computational chemistry students and researchers interested in predicting sequence determinants of E° for mutagenesis.
19
Helen M. Berman · Nucleic Acids Research · 2000 · 38.9K citations
Biological Database, Biochemistry, Structural Bioinformatics +12
Principles of bioinorganic chemistry
Choice Reviews Online · 1995 · 1.5K citations
Bioinorganic Chemistry Principles, Bioorganic Chemistry, Biochemistry +10