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Biomedical subjects

Z A Shabarova

Publications and source records attributed to Z A Shabarova.

At least 19 recordsLinked to original sources

Mechanism of the interaction of EcoRII restriction endonuclease with two recognition sites. Probing of modified DNA duplexes as activators of the enzyme.

The efficiency of cleavage of DNA duplexes with single EcoRII recognition sites by the EcoRII restriction endonuclease decreases with increasing substrate length. DNA duplexes of more than 215 bp are not effectively cleaved by this enzyme. Acceleration of the hydrolysis of long single-site substrates by EcoRII is observed in the presence of 11-14-bp substrates. The stimulation of hydrolysis depends on the length and concentration of the second substrate. To study the mechanism of EcoRII endonuclease stimulation, DNA duplexes with base analogs and modified internucleotide phosphate groups in the EcoRII site have been investigated as activators. These modified duplexes are cleaved by EcoRII enzyme with different efficiencies or are not cleaved at all. It has been discovered that the resistance of some of them can be overcome by incubation with a susceptible canonical substrate. The acceleration of cleavage of long single-site substrates depends on the type of modification of the activator. The modified DNA duplexes can activate EcoRII catalyzed hydrolysis if they can be cleaved by EcoRII themselves or in the presence of the second canonical substrate. It has been demonstrated that EcoRII endonuclease interacts in a cooperative way with two recognition sites in DNA. The cleavage of one of the recognition sites depends on the cleavage of the other. We suggest that the activator is not an allosteric effector but acts as a second substrate.

Base Sequence

A new affinity reagent for the site-specific, covalent attachment of DNA to active-site nucleophiles: application to the EcoRI and RsrI restriction and modification enzymes.

A modified oligodeoxyribonucleotide duplex containing an unnatural internucleotide trisubstituted 3' to 5' pyrophosphate bond in one strand [5'(oligo1)3'-P(OCH3)P-5'(oligo2) 3'] reacts with nucleophiles in aqueous media by acting as a phosphorylating affinity reagent. When interacted with a protein, a portion of the oligonucleotide [--P-5'(oligo2)3'] becomes attached to an amino acid nucleophilic group through a phosphate of the O-methyl-modified pyrophosphate linkage. We demonstrate the affinity labeling of nucleophilic groups at the active sites of the EcoRI and RsrI restriction and modification enzymes with an oligodeoxyribonucleotide duplex containing a modified scissile bond in the EcoRI recognition site. With the EcoRI and RsrI endonucleases in molar excess approximately 1% of the oligonucleotide becomes attached to the protein, and with the companion methyltransferases the yield approaches 40% for the EcoRI enzyme and 30% for the RsrI methyltransferase. Crosslinking proceeds only upon formation of a sequence-specific enzyme-DNA complex, and generates a covalent bond between the 3'-phosphate of the modified pyrophosphate in the substrate and a nucleophilic group at the active site of the enzyme. The reaction results in the elimination of an oligodeoxyribonucleotide remnant that contains the 3'-O-methylphosphate [5'(oligo1)3'-P(OCH3)] derived from the modified phosphate of the pyrophosphate linkage. Hydrolysis properties of the covalent protein-DNA adducts indicate that phosphoamide (P-N) bonds are formed with the EcoRI endonuclease and methyltransferase.

Affinity Labels

The use of oligonucleotide probes containing 2'-deoxy-2'-fluoronucleosides for regiospecific cleavage of RNA by RNase H from Escherichia coli.

Protected 2'-deoxy-2'-fluorouridine and 2'-deoxy-2'-fluorocytidine suitable for incorporation into oligonucleotides via the phosphoramidite approach have been prepared. Five modified and two unmodified oligonucleotides have been synthesized to investigate the regiospecific cleavage of a 5S RNA from Escherichia coli by RNase H. In order to show whether the modified oligonucleotides are able to hybridize with the RNA the physico-chemical properties (melting curves, CD spectra) of analogous DNA/oligodeoxyribonucleotide duplexes have been examined. The modified oligonucleotides are shown to form stable duplexes with a DNA-matrix which exist in an A-like form. Two of the modified probes containing four 2'-deoxy-2'-fluorocytidines or two 2'-deoxy-2'-fluorouridines direct the splitting by RNase H of only one phosphodiester bond of the RNA.

Base Sequence

[Synthesis of oligodeoxyribonucleotides containing 5-fluoro-2'-deoxyribocytidine].

A synthesis of the phosphoroamidite derivative of 5-fluoro-2'-deoxycytidine which allows one to introduce the modified nucleoside residue into the 5'-position of the oligodeoxyribonucleotide by the standard solid phase phosphoroamidite method, has been carried out. Oligonucleotides with 5-fluoro-2'-deoxycytidine residues in various positions of the DNA strand are obtained by the combination of chemical and enzymatic syntheses.

Base Sequence

[Medical workers and AIDS: the attitude to the problem].

A questionnaire was spread among Kiev physicians with the purpose of evaluating their level of information concerning the AIDS problem. An interrelation of level of knowledge and character of relation to the HIV infection was found. It was established that the idea of air-drop ways of HIV transmission is widely spread among the medical personnel with a tendency to stigmatization of the infected, underestimation of the AIDS problem significance. The authors emphasize the requirement of state-backed program on system of professional training of medical personnel in the AIDS problem.

Acquired Immunodeficiency Syndrome

[Chemical reactions in double-helical nucleic acids. XIV. Effectiveness of forming phosphodiester bonds between various nucleotide units].

Efficiency of the template-directed condensation of oligonucleotides depends on the nature of the nucleotide units to be joined. Fourteen out of sixteen dinucleotide combinations in double-stranded DNA were examined. Alterations of the reaction efficiency are identical for cyanogen bromide and 1-ethyl-3-(3'-dimethylaminopropyl)carbodiimide coupling reagents. Dependence of the chemical ligation efficiency on the DNA sequence-specific local conformation is discussed.

Base Sequence

Interaction of ribo- and deoxyriboanalogs of yeast tRNA(Phe) anticodon arm with programmed small ribosomal subunits of Escherichia coli and rabbit liver.

A synthetic ribooligonucleotide, r(CCAGACUGm-AAGAUCUGG), corresponding to the unmodified yeast tRNA(Phe) anticodon arm is shown to bind to poly(U) programmed small ribosomal subunits of both E. coli and rabbit liver with affinity two order less than that of a natural anticodon arm. Its deoxyriboanalogs d(CCAGACTGAAGATCTGG) and d(CCAGA)r(CUGm-AAGA)d(TCTGG), are used to study the influence of sugar-phosphate modification on the interaction of tRNA with programmed small ribosomal subunits. The deoxyribooligonucleotide is shown to adopt a hairpin structure. Nevertheless, as well as oligonucleotide with deoxyriboses in stem region, it is not able to bind to 30S or 40S ribosomal subunits in the presence of ribo-(poly(U] or deoxyribo-(poly (dT) template. The deoxyribooligonucleotide also has no inhibitory effect on tRNA(Phe) binding to 30S ribosomes at 10-fold excess over tRNA. Neomycin does not influence binding of tRNA anticodon arm analogs used. Complete tRNA molecule and natural modifications of anticodon arm are considered to stabilize the arm structure needed for its interaction with a programmed ribosome.

Animals

Chemical ligation of DNA: the first non-enzymatic assembly of a biologically active gene.

An artificial gene comprising 183 base pairs has been assembled by template-directed condensation of 35- to 53-membered oligodeoxyribo nucleotides with cyanogen bromide as a condensing agent. The reaction is complete within several minutes at 0 degrees C in buffer. The resulting mini-gene was cloned and expressed in vivo and in vitro. We have also found that the polymerase inhibition technique (toe-printing) is a good way to ascertain that translation initiation complexes form in the case of single-stranded DNAs as well. Thus, along with the fully chemical assembly of synthetic genes, a rapid and sufficiently reliable method for determining their ribosome-binding properties was developed.

Base Sequence

Probing DNA triple helix structure by chemical ligation.

A series of oligomeric double and triple helical DNAs with irregular sequences of homopurine and homopyrimidine strands were prepared. DNA triplexes were identified by CD spectroscopy and thermal denaturation profiles (biphasic helix-coil transition). Condensation of oligonucleotides on single and double-stranded DNA templates was performed using water-soluble carbodiimide, phosphodiester and pyrophosphate internucleotide bonds being newly formed. Such chemical ligation proved to be a sensitive monitor of changes in the sugar-phosphate backbone resulting from conversion of double to triple helix and of third-strand binding.

Base Sequence

The use of BrCN for assembling modified DNA duplexes and DNA-RNA hybrids; comparison with water-soluble carbodiimide.

Both cyanogen bromide (BrCN) and 1-ethyl-3-(3'-dimethylaminopropyl) carbodiimide may be used as coupling reagents for the template-directed assembly of DNA duplexes containing the sugar-phosphate backbone modification. Both reagents show similar ligation site structure-specific trend. Practical recommendations are given for selection of the condensing reagent depending on the properties of the duplex. Based on 31P NMR spectroscopy data, a scheme is suggested for BrCN activation of the nucleotide phosphomonoester group. Using both condensing reagents, we studied the condensation of oligonucleotides containing ribo-segments (from mononucleotide residue to full sequence) on the DNA template. Efficiency of the chemical ligation of RNA oligomers was shown to be much lower than that of DNA analogues. The coupling yield depends on the position of the RNA segment in the hybrid duplexes and on the position of the phosphate group in the nick.

Base Sequence

Structural and kinetic aspects of chemical reactions in DNA duplexes. Information on DNA local structure obtained from chemical ligation data.

Chemical ligation of oligonucleotides in double-stranded helices has been considered in its structural-kinetic aspect. A study was made of (i) two series of DNA duplexes with various arrangements of reacting groups in the ligation junction induced by mispairing or by alteration of furanose structure (the replacement of dT unit with rU, aU, IU, xU, dxT ones) and of (ii) eight synthetic water-soluble carbodiimides with different substituents at N1 and N3 atoms. We assumed that some information on the local structure of modified sites in the duplex can be obtained from kinetic parameters of oligonucleotide coupling reaction. The ratio of kinetic constants k3/(k2 + k3) for productive and nonproductive decomposition of the activated phosphomonoester derivative apparently reflects the reaction site structure: for a given duplex this parameter is virtually independent of the condensing agent composition. Based on the analysis of the chemical ligation kinetics a suggestion has been made about the conformation of some modified units in the double helix.

Autoradiography

Oligonucleotide cleavage by restriction endonucleases MvaI and EcoRII: a comprehensive study on the influence of structural parameters on the enzyme-substrate interaction.

To elucidate the mechanism of action of the restriction endonucleases--isoschizomers EcoRII and MvaI--a study was made of their interaction with a set of synthetic oligonucleotide duplexes containing a single 5'-d(CCA/TGG)-3' EcoRII (MvaI) recognition site. The substrates had varying length and structure of the nucleotide sequences flanking the recognition site. The structure of the flanking sequence is important for the cleavage by EcoRII and MvaI enzymes; there is a structure which was found to speed up the EcoRII and MvaI action. The cleavage of oligonucleotide duplexes by EcoRII enzyme does not go to completion. EcoRII endonuclease cleaved extended substrates less efficiently than short ones. Extension of the flanking sequences, with the same nucleotide surrounding of the recognition site, substantially altered the whole kinetic pattern of MvaI hydrolysis. This was not observed with EcoRII enzyme. The restriction endonuclease MvaI distinguished between dA and dT residues in the recognition site, which was reflected in the higher rate of hydrolysis of the dA-containing strand of the quasi-palindromic DNA duplex.

Base Sequence

Design and applications of single and double stranded DNA analogs.

Chemical ligation method for assembling modified DNA-duplexes as well as solid support method and postsynthetic modification in aqueous media was used to synthesize a variety of single and double stranded oligonucleotide derivatives. Novel oligodeoxynucleotides with cluster or alternating sugar modifications and probes resistant to cell nuclease degradation were obtained. The use of such probes for effective and regiospecific hybridase RNA-hydrolysis is provided. Effective synthesis of new DNA duplexes containing modified and chemical cleavable internucleotide bonds was developed. A novel type of affinity reagent was suggested for covalent attachment of substrate to active site nucleophiles in the restriction/modification systems.

DNA

[Hybridase cleavage of RNA. III. Use of UV-spectroscopy for studying the kinetic properties of E. coli RNAase properties].

A one-step procedure for estimating the activity of ribonuclease H from E. coli has been developed. This method is based on continuous registration of the increment in the UV adsorption of the substrate in the course of the enzymatic reaction. The heteroduplex Am.dT20 (m = 18-24) was found to be the optimal substrate for the enzyme. A comparative analysis of the rates of the enzymatic reaction as determined by UV spectroscopy and ion-pair HPLC was carried out. The kinetic parameters of the Am hydrolysis in Am.dT20 catalyzed by E. coli RNase have been determined for the first time (Km = 44 +/- 11 nM, Vmax = 0.0363 +/- 0.0053 E). The method sensitivity is 0.01-0.05 E which makes it possible to determine the RNAse H within the concentration range of 0.5-2.5 u./ml.

Chromatography, High Pressure Liquid

[Synthesis of RNA using T7 RNA polymerase and immobilized DNA in a stream type reactor].

The DNA ligase-induced assembly of synthetic oligodeoxyribonucleotides on polymer supports was used to obtain immobilized DNA, containing the T7 RNA polymerase promoter and coding for a 14-membered oligoribonucleotide. The obtained template can carry out RNA synthesis in a flowing-type reactor. Sepharose 4B and Toyopearl HW-55 were used as supports.

Base Sequence