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Fedorych, O.

Publications and source records attributed to Fedorych, O..

2 recordsLinked to original sources

Cooperativity and Conformational Rearrangements in Protein-Protein and Protein-Ligand Interactions

Streptavidin-biotin, avidin-biotin interactions are classical models for protein-ligand binding, yet the energetic changes accompanying biotin binding remain poorly resolved. Using fluorescent dyes as energy sensors, we show that biotin binding produces two distinct regimes occurring in parallel as concentration of biotin increases cooperativity and conformational rearrangements, wherein cooperativity is observed via exchange broadening of fluorescence linewidth and conformational rearrangements exclusively observed in emission energy. Where the first biotin binding creates the highest contribution to the emission energy. Further analysis of tetramer-tetramer only interactions revealed extremely long ranged intermolecular interactions extending to hundreds of nm. The intermolecular interactions become negligible only at concentrations of approximately 10 nM for both streptavidin and avidin. Affinity values estimated for these diluted samples were below 1 nM.

biophysics↗

Formation of DNA duplexes in the presence of urea as a chaotropic agent.

Hybridization of fluorescent molecular probes, such as molecular beacons or linear molecular probes, with their molecular targets can be confirmed through fluorescence spectra. In this study, we investigate the interaction between fluorescent probes, specifically linear molecular probes, and their targets in the presence of chaotropic agents. Our findings show that double-stranded structures containing mismatched nucleotides (e.g., single-nucleotide polymorphisms) occupy lower energy levels (red shifted) compared to those without mismatched nucleotides. Molecular duplexes formed in buffers without chaotropic agents do not exhibit significant differences, independently on whether they contain mismatched nucleotides or are formed with perfectly matching targets. This effect appears in the presence of a naturally occurring chaotropic agent, urea, and was confirmed in the concentration range of 1 mM to 4 mM. These findings suggest that urea and similar agents may play a significant role in the formation of mismatched nucleotide structures.

molecular biology↗