PubMed HealthSearch

Biomedical subjects

T V Venkstern

Publications and source records attributed to T V Venkstern.

At least 19 recordsLinked to original sources

Catalytic activity of the nucleic acid component of the 1,4-alpha-glucan branching enzyme from rabbit muscles.

2.5 S RNA, the nucleic acid component of the 1,4-alpha-D-glucan: 1,4-alpha-D-glucan 6-alpha-(1,4-alpha-glucano)-transferase from rabbit muscles, devoid of any protein, catalyses the branching reaction, as does the holoenzyme. The conclusion is drawn that 2.5 S RNA is a ribozyme. To get an insight into the significance of different parts of the molecule for the catalytic activity of 2.5 S RNA, a large fragment isolated from its partial RNAase A digest was investigated. This fragment which proved to be the middle part of polyribonucleotide chain containing all modified nucleotides exerts some catalytic activity, too.

1,4-alpha-Glucan Branching Enzyme

[Interaction of s4U8 region of tRNA Phe with tRNA-(adenine-1-)-methyltransferase from Thermus thermophilus].

Photoaffinity labelling of tRNA (adenine-1-)-methyltransferase with an E. coli tRNA(Phe) derivative bearing 4-azidophenylmercuro group attached to s4U residue as well as direct photocross-linking of the native tRNA(Phe) with the enzyme via s4U residue has been studied. Both techniques labelling gave similar results, leading to covalent attachment of tRNA(Phe) to the enzyme within a specific complex. The data obtained indicate unambigously that s4U residue contacts with tRNA (adenine-1-)-methyltransferase within the corresponding specific complex.

Cross-Linking Reagents

Primary structure of the nucleic acid from the 1,4-alpha-glucan branching enzyme.

The primary structure of the nucleic acid from the branching enzyme 1,4-alpha-D-glucan: 1,4-alpha-D-glucan 6-alpha-(1,4-alpha-glucano)-transferase (2.5-S RNA) isolated from rabbit muscles has been elucidated. The polyribonucleotide consists of 31 nucleotides; the unique features of the polyribonucleotide are the unusually high content of modified nucleotides (32%) and guanine residues (40%). Apparently 2.5-S RNA belongs to a class of nucleic acids unknown up to now. It is the first time that the structure of a nucleic acid component from a ribonucleoenzyme has been defined. This work is a preprequisite for gaining insight into the intimate activating effect of the poly-ribonucleotide on the enzyme action.

1,4-alpha-Glucan Branching Enzyme

The mechanism of action of tRNA methylases studied with immobilized tRNAs.

Each of the individual tRNAs immobilized on aminohydroxybutyl-cellulose (ABC) through their oxidized 3'-terminal binds affinitively all methylases present in the enzyme extract irrespective of whether this tRNA will be involved in the following step of methylation or not. These data allow to suggest that (a) the formation of a methylase-tRNA complex and the catalytic act of methylation are indeed autonomous processes and (b) the first step of interaction between tRNAs and tRNA methylases is rather unspecific and consists in the recognition of the whole class of tRNA molecules.

Animals

Complementary addressed modification of yeast tRNA Val 1 with alkylating derivative of d(pC-G)-A. The positions of the alkylated nucleotides and the course of the alkylation in the complex.

Yeast tRNA Val 1 alkylation with 2', 3'-O-4-(N-2-chloroethyl-N-methylamino) benzylidene d(pC-G)-A proceeds at 20 degrees - 30 degrees C in the complementary complexes which are formed by d(pC-G)-A greater than RC1 binding to 3 sequences of tRNA Val 1 : psi-C-G58 in the T loop, C-G40 at the 3'-side of the anticodon loop and C-G18 in the D loop. The reaction in the complexes results in A53, I35, and psi 13 alkylation to form beta-/N-methyl-N-(formylphenyl 17 amino/ethyl-tRNA Val 1 with the relative rate constants of the alkylation that are 3 or 2 orders of magnitude higher than that for the alkylation without a complex formation. It is the third nucleotide from the 5'-terminus of the binding site of the modifying agent that is subjected to alkylation in the t RNA Val 1. The course of the alkylation does not depend on the possible base pairing of the 3'-terminal nucleotide of the reagent. The extent of the reagent binding and the relative rate constants of the alkalytion in the complexes indicate the following order of the complex stability: (psi-C-G58) greater than (CO-G40) approximately (C-G18) at 20 degrees and (psi-C-G58) greater than (C-G40) greater than (C-G18) at 30 degrees.

Alkylating Agents

On the mechanism of tRNA methylase-tRNA recognition.

In order to further elucidate the mechanism of tRNA methylase-tRNA intreaction the methylation of some individual tRNAs separately and by pairs was performed. In conditions of tRNA excess the methylation rates of positionally analogous nucleotides in tRNA molecules are not summed up when two substrates are simultaneously present in the reaction mixture. The inhibitory action of yeast tRNASer, possessing m5c in position 29, on the methylation of C29 in other individual tRNAs was shown. Yeast tRNAVal which possesses an A residue in position 27 was shown to inhibit the methylation of G27 in E. coli tRNAMet. The data obtained confirm the suggestion that tRNA methylases recognizes the tertiary structure of tRNAs. They show also that the recognition and the proper catalytic action are two autonomous processes and that the former at least in its first stage is rather unspecific.

Animals

[Estimation of kinetic constants and study of site specificity of Zajdela ascite hepatoma and rat liver tRNA-methylases].

Individual yeast tRNAVal1 was used as a substrate for estimation of kinetic constants and study of site specificity of m5C-and m1A-methylases of Zajdela ascite hepatoma and rat liver. It was demonstrated that the rate of yeast tRNAVal1 methylation by hepatoma tRNA-methylases is 4--5 times higher than that induced by liver tRNA-methylases. The rates of 1-hour methyl groups incorporation into tRNAVal1 were 3.7 and 4.7 times higher in case of m5C-and m1A-methylases and 9.4 and 4.5 times higher in case of m1G-and m7G-methylases of hepatoma than the respective rates obtained for corresponding liver methylases. The main products of methylation were m5C and m1A containing about 90% of total radioactivity incorporated into tRNA. m5C-methylases of liver and hepatoma had similar affinity for S-Ad-Met. The Km value for both enzymes was 2.66 micronmole; the Km values for m1A-methylases of liver and hepatoma with respect to S-Ad-Met were the same and equal to 0,25 micronmole. m5C and m1A methylases of liver and hepatoma had adequate affinity for yeast tRNAVal1; their site specificity was the same, since they methylated in yeast tRNAVal1 cytosine in the tetracytidylic sequence of C49--C52 and adenine in the 59th position from the 5'-end of the molecule.

Amino Acid Sequence

Acceptor activity of hypermethylated E. coli tRNAf-Met.

The acceptor activity of normal E. coli tRNA(Met) (f) was compared with that of a preparation with surplus methyl groups introduced by a crude methylase preparation from rat hepatoma. No changes in charging were detected when the aminoacylation was carried out in a homologous system. The data indicate that neither the surplus methyl groups by themselves, nor the eventual changes in spatial arrangement are essential for charging of E. coli tRNA(Met) (f).

Amino Acyl-tRNA Synthetases