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L I Krishtalik

Publications and source records attributed to L I Krishtalik.

5 recordsLinked to original sources

Medium reorganization energy and enzymatic reaction activation energy.

Reorganization and activation energies for charge transfer reactions occurring inside a dielectric sphere have been calculated by solving the problem of polar medium reorganization within and outside a dielectric sphere placed in another infinite dielectric. The dielectric sphere is assumed to simulate a protein globule, i.e. an enzyme molecule. It has been shown that for some reaction types the activation energy tends to decrease as the globule radius increases and that for each of the reaction types considered there is an optimal globule radius an increase of which does not bring about any tangible activation energy reduction. The calculated optimal radii for different processes are in good agreement with the increasing molecular sizes in the series: ribonuclease less than or equal to lysozyme less than serine proteinases approximately equal to cysteine proteinases less than NAD-dependent dehydrogenases. The calculated radii are usually about 1.5 to 1.7 times (and molecular masses about 4-5 times) smaller than the experimental ones. The reasons for this discrepancy are discussed and it has been suggested that the approximate nature of the treatment of a protein globule as a structureless dielectric is the main reason. It is shown that charge transfer at an acute angle to the globule surface is the optimum process. For endoergonic reaction stages it is the net charge transfer towards the periphery and for exoergonic ones that in the reverse direction which are advantageous. These conclusions are consistent with the data about the structure of the above-mentioned enzymes.

Alcohol Dehydrogenase

The negative cooperativity in cytochrome c oxidase redox reactions: the electrostatic effect.

The electrostatic interaction of two hemes is calculated on the basis of the data on the cytochrome c oxidase structure. The interaction energy corresponds to the positive shift by approximately greater than 100 mV of the redox potential of one of the hemes when the other is oxidized. This effect seems to be the most likely reason of the negative cooperativity in the redox behavior of cytochrome c oxidase.

Allosteric Regulation

[Electrical fields in membrane proteins].

The electric fields created by dipoles of the peptide bonds of alpha-helices of membrane proteins are considered. It has been shown that the electric field of the alpha-helix compensates for the loss of the Born hydration energy and promotes dissociation of the carboxyl groups located at the depth of up to 5 A from the water surface. The presence of the carboxylate anion facilitates penetration of the hydronium ion into the membrane and lowers the potential barrier by 0.1-0.2 eV (depending on the membrane thickness). A three-layer model of the reaction centre of photosynthetic bacteria is proposed. An estimate of the dielectric constant of different parts of the reaction centre is obtained by means of comparison of photoinduced electrogenetic transmembrane potential displacement with structural data. Estimates of the electric potentials at the electron transfer chain cofactors induced by the alpha-helical segments of the reaction centre protein are given. It is shown that the asymmetry in the location of alpha-helices affects significantly the redox potentials of the electron carriers and lead to a kinetic advantage of the A-chain of electron transfer over the B-chain.

Electricity

[Energy of ion pairs in proteins].

The energy of ions interaction in an ionic pair and the energy of ions transfer from water into protein at different ions disposition relative to the protein/water boundary has been considered. Ultimately, the ions transfer from aqueous phase into protein, i. e. in the medium with a low dielectric constant is energetically unfavorable and hence it cannot stabilize the protein structure by itself. For stabilization of ionic pairs in protein the action of some additional factors is necessary, in particular the action of the intraglobular electric field.

Electricity

[Globule size and the activation energy of an enzymatic process].

The charge transfer reactions demand the polar medium reorganization the main part in the process energy being contributed by solvent reorganization. Protein globule excludes a part of the solvent from the interaction with the charge being transfered. Thus a strong decrease of the reorganization energy and hence of the activation energy is achieved (the gain of some kcal/mole). The effect rises at first rapidly with the globule radius but it becomes practically constant after some optimal radius is reached. The estimation of the optimal radius gives values of the order of magnitude of the enzymes molecule sizes.

Calorimetry