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Biomedical subjects

K Kakuyama

Publications and source records attributed to K Kakuyama.

2 recordsLinked to original sources

Non-random ionic-charge distribution responsible for the structural stability and molecular recognition of proteins.

The 'ionic-charge shuffling method' is presented to generate a complete set of electrostatic mutants for a natural protein where ionic charges on the molecular surface of the template protein are exhaustively interchanged with each other. Total Coulomb interaction energies are evaluated for all of the mutants by numerically solving the finite difference Poisson-Boltzmann equation and their distribution in the ensemble is obtained. This method has been applied to five natural proteins to reveal that they have a significantly lower Coulomb energy than the average over the ensemble of their mutants. It is also shown that these natural proteins have a significantly larger and smaller number of pairs of attractive and repulsive ionic groups, respectively, than those expected for their randomly shuffled ensemble: They have been 'designed' through molecular evolution so that a pair of ionic charges with opposite signs may have a higher tendency to be located close to each other, while a pair with the same sign are away from each other.

Ions↗

Protein stability; optimization of electrostatic contributions by partially neutralizing surface ionic charges.

'Partial Charge-Neutralization Method' is developed to study influence of the relative amount of positive and negative charges in proteins on their structural stability. A given number of either positively or negatively charged groups are neutralized in all of their possible combinations to generate a whole set of distinct species. The Coulomb energy of each species is calculated by numerically solving the Poisson-Boltzmann equation for aqueous solutions. Partial neutralization of lysine residues of tuna cytochrome c in aqueous solution at neutral pH with the Debye-Hückel screening parameter kappa = 1 nm-1 reproduces qualitatively well the destabilization of acetylated cytochrome c observed in physicochemical measurements at pH 7. The stabilization of its molten globule state at pH 2 is also studied with the present method. It is shown that the electrostatic contribution to the structural stability of natural proteins can be optimized by changing the difference in number of their positive and negative charges.

Cytochrome c Group↗