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Dmytro M Hovorun

Publications and source records attributed to Dmytro M Hovorun.

5 recordsLinked to original sources

Bacterial multidrug resistance unrelated to multidrug exporters: cell biology insight.

Multidrug resistance (MDR) revealed in malignant cell lines was firstly attributed to the activity of multidrug exporters pumping drugs out of the cell. However, mutagenised Escherichia coli develop extraordinary numerous mutants resistant to target inhibitor and we have shown that with mutations mapped around the entire genome most of the mutants were multiple-resistant. In case of one such mutant studied MDR was shown as a sum of individual resistances due to mutations resulted in target and ligand sequestration and induced simultaneously in tightly linked, cassette-like genes. An explanation of local mutagenesis efficiency and the nature of sequestration process is proposed. A cassette-like organization of genes responsible for chemoresistance emergence could promote the local intensity of mutagenesis by a cassette facing the intracellular space and flux and contacting unlike other genes mutagen the first. Target and ligand sequestration could result from clogging the intracellular flux due to cytoplasm geometry alteration attributable to disorder-order transition in natively unfolded proteins affected with mutation.

ATP-Binding Cassette Transporters↗

ATR-IR spectroscopy as applied to nucleic acid films.

For the first time the ATR technique was applied to obtain IR absorption spectra of DNA and RNA dry films. There was worked out procedure of the nucleic acid removal from germanium plate, which obviously was a main obstacle to application of ATR-IR spectroscopy to nucleic acids. This technique of IR spectroscopy was applied to confirmation of RNA tropism of aurin tricarboxylic acid observed by molecular biological methods.

Bacteriophage lambda↗

Downstream elements of mammalian pre-mRNA polyadenylation signals: primary, secondary and higher-order structures.

Primary, secondary and higher-order structures of downstream elements of mammalian pre-mRNA polyadenylation signals [poly(A) signals] are re viewed. We have carried out a detailed analysis on our database of 244 human pre-mRNA poly(A) signals in order to characterize elements in their downstream regions. We suggest that the downstream region of the mammalian pre-mRNA poly(A) signal consists of various simple elements located at different distances from each other. Thus, the downstream region is not described by any precise consensus. Searching our database, we found that approximately 80% of pre-mRNAs with the AAUAAA or AUUAAA core upstream elements contain simple downstream elements, consisting of U-rich and/or 2GU/U tracts, the former occurring approximately 2-fold more often than the latter. Approximately one-third of the pre-mRNAs analyzed here contain sequences that may form G-quadruplexes. A substantial number of these sequences are located immediately downstream of the poly(A) signal. A possible role of G-rich sequences in the polyadenylation process is discussed. A model of the secondary structure of the SV40 late pre-mRNA poly(A) signal downstream region is presented.

Animals↗

What nuclease cleaves pre-mRNA in the process of polyadenylation?

A transcript-specific cleavage by a large set of proteins is the first stage of eukaryotic pre-mRNA polyadenylation. The main participant of this reaction-endonuclease-has not been discovered until now. However, mammalian CPSF-30 and yeast Yth 1p proteins are known to be homologues to Drosophila Clipper (CLP) protein, which possesses endoribonucleolytic activity. In the N-terminal region, all three proteins contain five copies of the CCCH zinc finger motif associated with nucleolytic activity in the case of CLP. The literature data on these proteins are reviewed here. These data were shown not to contradict the hypothesis that CPSF-30 and its homologues are the actual nucleases that cleave pre-mRNA in the process of polyadenylation.

Animals↗

Structural transitions in polycytidylic acid: proton buffer capacity data.

The pH-dependences of proton buffer capacity of poly(C) were computed on the basis of the literature data. In these curves there were observed four peaks: two narrow and two wide ones. The first narrow peak reflects the process of cooperative formation of double helices, which is induced by protonation of the N3 atom of nucleotide bases. The first wide peak is assigned to noncooperative process of poly(C) double helices protonation at the N3 nitrogen atom. It is proposed that the second wide peak corresponds to noncooperative protonation of the neutral cytosine bases at the oxygen atom. This reaction causes cooperative dissociation of the poly(C) double helices. The second narrow peak reflects the dissociation process.

Buffers↗