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Biomedical subjects

E A Kubareva

Publications and source records attributed to E A Kubareva.

At least 19 recordsLinked to original sources

DNA-methyltransferase SsoII as a bifunctional protein: features of the interaction with the promoter region of SsoII restriction-modification genes.

DNA duplexes bearing an aldehyde group at the 2'-position of the sugar moiety were used for affinity modification of (cytosine-5)-DNA methyltransferase SsoII. It is shown that lysine residues of M.SsoII N-terminal region are located in proximity to DNA sugar-phosphate backbone of a regulatory sequence of promoter region of SsoII restriction-modification enzyme coding genes. The ability of the two M.SsoII subunits to interact with DNA regulatory sequence has been demonstrated by affinity modification using DNA duplexes with two 2'-aldehyde groups. Changes in nucleotide sequence of one half of the regulatory region prevented cross-linking of the second M.SsoII subunit. The results on sequential affinity modification of M.SsoII by two types of modified DNA ligands (i.e. by 2'-aldehyde-containing and phosphoryldisulfide-containing) have demonstrated the possibility of covalent attachment of the protein to two different DNA recognition sites: regulatory sequence and methylation site.

Catalytic Domain↗

Affinity modification of the restriction endonuclease SsoII by 2'-aldehyde-containing double stranded DNAs.

Properties of 2'-aldehyde-containing double stranded DNAs (dsDNAs) have been studied for the first time as substrate analogs of the restriction endonuclease SsoII. These reactive oligonucleotides were successfully cross-linked to the restriction endonuclease SsoII by reductive amination, and conditions for DNA-protein conjugate trypsinolysis followed by the oligonucleotide-peptide conjugate purification were optimized. Use of MALDI-TOF mass spectrometry revealed that covalent linkage forms between the sugar moiety of the central pyrimidine nucleoside of the SsoII recognition site and Lys173 of the enzyme. The latter is probably involved in initial steps of enzyme-substrate recognition during dsDNA readout.

Aldehydes↗

Analysis of DNA-protein interactions in complexes of transcription factor NF-kappaB with DNA.

We have applied bioinformatic analysis of X-ray 3D structures of complexes of transcription factor NF-kappaB with DNAs. We determined the number of possible Van der Waals contacts and hydrogen bonds between amino acid residues and nucleotides. Conservative contacts in the NF-kappaB dimer-DNA complex composed of p50 and/or p65 NF-kappaB subunit and DNA sequences like 5 -GGGAMWTTCC-3 were revealed. Based on these results, we propose a novel scheme for interactions between NF-kappaB p50 homodimer and the kappaB region of the immunoglobulin light chain gene enhancer (Ig-kappaB). We applied a chemical cross-linking technique to study the proximity of some Lys and Cys residues of NF-kappaB p50 subunit with certain reactive nucleotides into its recognition site. In all cases, the experimentally determined protein-DNA contacts were in good agreement with the predicted ones.

Amino Acid Sequence↗

Determination of methylation site of DNA-methyltransferase NlaX by a hybrid method.

Using a new method based on a combination of bisulfite reaction, the repair enzyme uracil-DNA glycosylase, and synthetic oligodeoxyribonucleotides, the methylation site of DNA-methyltransferase NlaX (M.NlaX) from Neisseria lactamica was established to be the inner cytosine in the double-stranded pentanucleotide recognition sequence 5'-CCNGG-3' (where N = any nucleoside). 5-Methylcytosine (m5C) type modification by M-N1aX was confirmed by the use of oligonucleotide substrates that contain 5-fluoro-2'-deoxycytidine.

Chemistry Techniques, Analytical↗

Determination of a non-methylated deoxycytidine residue in the recognition site of DNA-methyltransferases.

A method for determination of a non-methylated deoxycytidine (dC) residue in the recognition site of 5-cytosine DNA-methyltransferases is suggested. The method is based on treatment of methylated DNA by sodium bisulfite and successive reaction of the thus modified DNA with a repair enzyme, uracil-DNA glycosylase. This method was successfully applied to identify NlaX methyltransferase specificity.

Binding Sites↗

Identification of a base-specific contact between the restriction endonuclease SsoII and its recognition sequence by photocross-linking.

A target sequence-specific DNA binding region of the restriction endonuclease Sso II was identified by photocross-linking with an oligodeoxynucleotide duplex which was substituted with 5-iododeoxy-uridine (5-IdU) at the central position of the Sso II recognition site (CCNGG). For this purpose the Sso II-DNA complex was irradiated with a helium/cadmium laser (325 nm). The cross-linking yield obtained was approximately 50%. In the presence of excess unmodified oligodeoxynucleotide or with oligode-oxynucleotides substituted with 5-IdU elsewhere, no cross-linking was observed, indicating the specificity of the cross-linking reaction. The cross-linked Sso II-oligodeoxynucleotide complex was digested with chymotrypsin, a cross-linked peptide-oligodeoxy-nucleotide complex isolated and the site of cross-linking identified by Edman sequencing to be Trp61. In line with this identification is the finding that the W61A variant cannot be cross-linked with the IdU-substituted oligodeoxynucleotide, shows a decrease in affinity towards DNA and is inactive in cleavage. It is concluded that the region around Trp61 is involved in specific binding of Sso II to its DNA substrate.

Base Pairing↗

[A rapid method for testing the activity of the repair enzyme uracil-DNA-glycosylase].

A rapid and effective method of testing of a repair enzyme, uracil-DNA-glycosylase, was proposed. As a substrate, a deoxyuridine-containing 5'-32P-labeled deoxyoligonucleotide covalently attached to a polystyrene support (Tenta Gel S-NH2) was used. The ammonia cleavage of the apyrimidine site formed in the enzymic reaction followed by the transition of the labeled oligonucleotide fragment from the solid phase into solution allowed the detection of the enzymic activity.

Base Sequence↗

A model of EcoRII restriction endonuclease action: the active complex is most likely formed by one protein subunit and one DNA recognition site.

To elucidate the mechanism of interaction of restriction endonuclease EcoRII with DNA, we studied by native gel electrophoresis the binding of this endonuclease to a set of synthetic DNA-duplexes containing the modified or canonical recognition sequence 5'-d(CCA/TGG)-3'. All binding substrate or substrate analogues tested could be divided into two major groups: (i) duplexes that, at the interaction with endonuclease EcoRII, form two types of stable complexes on native gel in the absence of Mg2+ cofactor; (ii) duplexes that form only one type of complex, observed both in the presence and absence of Mg2+. Unlike the latter, duplexes under the first group can be hydrolyzed by endonuclease. Data obtained suggest that the active complex is most likely formed by one protein subunit and one DNA recognition sequence. A model of EcoRII endonuclease action is presented.

Base Sequence↗

Role of DNA definite structural elements in interaction with repair enzyme uracil-DNA glycosylase.

Interaction of different oligodeoxyribonucleotides (oligos), their analogs and oligonucleopeptide with uracil-DNA glycosylase (UDG) from human placenta was investigated. It is shown that there is no considerable contribution of heterocyclic bases of DNA to UDG-substrate binding but the UDG interaction with some DNA phosphate groups is necessary for enzyme-substrate recognition. However the phosphate group adjacent to single dU from the 3'-end in oligo is not involved into the electrostatic contact with UDG. It is found that UDG has the high affinity to its reaction product. An oligonucleotide containing a single 2'-deoxy-2'-aminouridine is a non-hydrolyzable substrate analog for UDG.

DNA↗

Transition-metal complexes as inhibitors of proteins recognizing double-stranded fragments of nucleic acids.

A 30-membered DNA duplex containing the recognition site of restriction endonuclease SsoII and a 30-membered RNA--DNA hybrid duplex, a substrate of E. coli RNase H, were synthesized. The cleavage of the 30-membered fragments of nucleic acids catalyzed by endonucleases in the presence of Co-phthalocyanine complex [CoPc(COONa)8] containing eight carboxyl groups at the periphery of the ligand was studied. It was shown that the efficiency of enzyme catalysis decreases in the presence of the metal complex for both endonucleases. By addition of a 100-fold excess of Co-phthalocyanine complex with respect to DNA duplex the initial rate of substrate hydrolysis by restriction endonuclease SsoII is observed to decrease twice. An equimolar ratio of the metal complex and hybrid duplex leads to essentially complete inhibition of RNA cleavage by RNase H from E. coli. The inhibition of catalytic activity of enzymes recognizing the double-stranded nucleic acids in the presence of Co-phthalocyanine complex is assumed to be caused by the ability of the latter to interact with DNA, RNA, and DNA--RNA duplexes.

Base Sequence↗

Design of new reagents on the base of DNA duplexes for irreversible inhibition of transcription factor NF-kappa B.

The main purpose of the present work is to search for the optimal design of a DNA duplex containing an active group for crosslinking and irreversible inhibition of the transcription factor NF-kappa B. Modified DNA duplexes with an identical nucleotide sequence but different internucleotide phosphates replaced by the trisubstituted pyrophosphate internucleotide group were synthesized. Crosslinking of the human NF-kappa B p50 subunit with the modified DNA duplexes was carried out. It was shown that only four modified duplexes crosslinked with the NF-kappa B p50 subunit. The specificity of these reactions was confirmed. A position of the phosphate in the NF-kappa B recognition site was found where replacement on the active trisubstituted pyrophosphate group resulted in a 50% yield of crosslinking. The fact that DNA duplexes containing the trisubstituted pyrophosphate group specifically react with the NF-kappa B p50 subunit in the Escherichia coli total lysate supports the idea that such modified DNA can be used as high specific inhibitors for DNA-recognizing proteins.

Animals↗

[Cyclic oligonucleotides. II. Regularities in the formation of polycyclic structures].

Cyclization of a 38-mer oligodeoxyribonucleotide on a cyclic template was studied by the chemical and enzymic ligation methods. Both structures and yields of the reaction products depended on the ligation method and the nucleotide and template sequences. The chemical ligations resulted in the formation of catenanes, whose structures were confirmed by hydrolysis with the MvaI restriction endonuclease. Presence of G/C-rich clusters near the formed internucleotide bond favored the catenane formation.

Nucleotides, Cyclic↗

Cross-linking of SsoII restriction endonuclease to cognate and non-cognate DNAs.

Specific and non-specific interactions of SsoII restriction endonuclease (R.SsoII) were probed by the method of covalent attachment to modified DNA containing an active monosubstituted pyrophosphate internucleotide bond instead of a phosphodiester one. R.SsoII with six N-terminal His residues was shown to be cross-linked to duplexes with this type of modification, either containing or not the recognition sequence. Competition experiments with covalent attachment of R.SsoII to activated DNAs demonstrated the similar affinity of the enzyme to cognate and non-cognate DNAs in the absence of cofactor, Mg2+ ions.

Base Sequence↗

NF-kappaB p50 subunit cross-linking to DNA duplexes, containing a monosubstituted pyrophosphate internucleotide bond.

The new express technique based on the use of BrCN to synthesize DNA duplexes, containing non-substituted or monosubstituted pyrophosphate internucleotide bonds has been proposed. Using this technique, DNA duplexes having modified internucleotide bonds between dT and dC residues in the human NF-kappaB transcription factor recognition sequence in HIV-1 (5'-GGAAAGTCCC-3') have been prepared. We demonstrate that these internucleotide bonds within the recognition site do not prevent the formation of NF-kappaB p50 subunit complex with the corresponding duplexes. The cross-linking of NF-kappaB p50 subunit to the DNA duplex containing a monosubstituted pyrophosphate internucleotide bond has been successfully performed.

Base Composition↗

Chemical cross-linking of MvaI and EcoRII enzymes to DNA duplexes containing monosubstituted pyrophosphate internucleotide bond.

DNA duplexes containing a monosubstituted pyrophosphate internucleotide group, instead of a phosphodiester bond, were used as cross-linking reagent for the affinity modification of the restriction endonucleases EcoRII and MvaI (R.EcoRII and R.MvaI). An active group was introduced into the enzyme's recognition site or between the recognition site and flanking sequence. The substrate properties of such DNA duplexes were determined. Cross-linking specificity was demonstrated by competition experiments with unmodified substrate, as well as by the absence of cross-linking to an active duplex lacking a recognition site. It was shown that the nucleophilicity of the buffer solution and the presence of the enzyme cofactor Mg2+ dramatically affected the cross-linking yield.

Base Sequence↗

Interaction of the MvaI and SsoII methyltransferases with DNAs altered at the central base pair of the recognition sequence.

The interaction of the MvaI and SsoII DNA methyltransferases (MTases; M.MVaI and M.SsoII, respectively) with a set of synthetic DNA duplexes, containing a M.MvaI and M.SsoII recognition site (CCWGG), was investigated. In these DNA duplexes dA or dT of the recognition site was replaced by nucleoside analogs with modified sugar moieties and heterocyclic bases (2'-deoxy-2'-fluorouridine (flU), 1-(beta-D-2'-deoxy-threo-pentofuranosyl)thymine (xT), 1-(beta-D-3'-deoxy-threo-pentofuranosyl)uracil (tU)), or by 1,3-propanediol (Prd). A new approach for monitoring methylation of each strand of DNA duplexes by MTases was developed. It allowed the determination of the influence of the modification in one DNA strand on the methylation of the other. In most cases, for both M.MvaI and M.SsoII, sugar analog-containing duplexes showed inhibition of methylation of only the modified strand. Prd-containing DNA duplexes were not substrates for M.MvaI. M.SsoII did not methylate DNA duplexes in which the dT residue was replaced by Prd.

Amino Acid Sequence↗

Modified substrates as probes for studying uracil-DNA glycosylase.

In order to study the mechanism of action of uracil-DNA glycosylase (UDG) from human placenta, single-stranded (ss) and double-stranded (ds) oligodeoxyribonucleotides (oligos), containing deoxyuridine (dU) and a wide variety of their analogs were used. It was shown that UDG has a twofold preference for ss oligos over ds oligos and a twofold preference for intermolecular duplexes over similar hairpin-like duplexes. The replacement of dU with 1-(beta-D-2'-deoxy-threo-pentofuranosil)uracil (xU) or 1-(beta-D-3'-deoxy-threo-pentofuranosil)uracil (tU), which results in a change in sugar hydroxyl configuration, has no influence on UDG binding to such substrates, but inhibits uracil removal. A oligo containing 2'-deoxy-2'-fluorouridine (flU), with a 3'-endo conformation of modified sugar is recognized by UDG 100-200-fold less efficiently than the natural ones. F or Br atoms or a methyl group were introduced at position 5 of a dU residue in an oligo. It was shown that the nature of a substituent at this position is essential for UDG function.

Base Sequence↗

Use of UV spectroscopy for the study of nucleic acid cleavage by E. coli RNase H and restriction endonucleases.

A one-step spectrophotometric method for monitoring of nucleic acid cleavage by ribonuclease H from E. coli and type II restriction endonucleases has been proposed. It is based on recording of the increase in the UV absorbance at 260 nm during the course of enzymatic reaction. Duplexes stable under the reaction conditions were chosen as substrates for the enzymes being studied. In order to obtain duplex dissociation following their cleavage by the enzyme appreciate temperature conditions were selected. The spectrophotometric method may be applied for rapid testing of the nuclease activity in protein preparations as well as for precise quantitative analysis of nucleic acid degradation by enzymes. This method may be successfully employed in kinetic studies of nucleic acid-protein interactions.

Base Sequence↗