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Petukhov, M.

Publications and source records attributed to Petukhov, M..

2 recordsLinked to original sources

Protein hydration and druggability

A priori assessment of target proteins druggability remains an unsolved problem in the field of drug development. The empirical approaches widely used to solve this problem demonstrate low efficiency. In this work, we investigated the factor of hydration of a representative set of 65 evolutionarily and structurally unrelated human enzymes in a water environment. This factor depends only on the structure of the proteins, and not on the physical and chemical properties of any potential ligands. The results show that, unlike the widely used approaches based on calculations of the accessible surface area (ASA), the content of low-entropy water molecules (LEW) in the active sites of human enzymes is systematically higher than that in other areas of their surface, including inactive cavities. Optimal criteria and a step-by-step procedure for identifying protein ligand binding sites are proposed. The proposed approach, based on the calculation of the LEW content in the first hydration layer of potentially interesting target proteins, makes it possible to evaluate their medicinal suitability even before the development of any ligands. The article also presents the results of a comparative analysis of experimental Raman spectroscopy data and the results of molecular dynamics simulations of water hydrogen bonds using three widely used water models (TIP3P, OPC3, and TIP5P) and standard algorithms for calculating hydrogen bond networks.

biophysics↗

Mechanisms of RecA filament nucleation on ssDNA by the DprA protein

The DprA (a.k.a. Smf) protein has emerged as a RecA mediator during natural chromosomal transformation, but its ubiquity suggests a possible role in DNA metabolism beyond natural transformation. We show that Bacillus subtilis dprA increases the frequency of Escherichia coli Hfr conjugation. RecA{middle dot}ATP binds and cooperatively polymerises in a 50-nucleotide (nt) poly deoxy T (dT)50 ssDNA to form a dynamic filament with SSB competing for binding, but B. subtilis DprA (DprABsu) counters the inhibitory effects of SSB on RecA{middle dot}ATP filaments. RecA bound to (dT)21 is poorly active as dATPase, with DprABsu significantly improving RecA dATP hydrolysis. RecABsu{middle dot}dATP-(dT)20 complexes were readily formed, while DprABsu exerts an allosteric effect on RecABsu-(dT)15 complexes competent for dATP hydrolysis. Combining experimental data with a full-atomic model of the RecA-DprA-ssDNA complexs spatial structure, we proposed a molecular mechanism for DprA-mediated loading of RecA onto short ssDNA stretches. Our results suggest that steric constraints allow for the participation of only one DNA binding site of the DprA dimer in RecA-mediated dATP hydrolysis.

molecular biology↗