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Biomedical subjects

V V Borisov

Publications and source records attributed to V V Borisov.

At least 19 recordsLinked to original sources

Main results and experience obtained on Mir space station and experiment program for Russian segment of ISS.

This article presents main scientific and practical results obtained in course of scientific and applied research and experiments on Mir space station. Based on Mir experience, processes of research program formation for the Russian Segment of the ISS are briefly described. The major trends of activities planned in the frames of these programs as well as preliminary results of increment research programs implementation in the ISS' first missions are also presented.

Aerospace Medicine↗

[Changes in the cardiac valvular apparatus in patients with end-stage chronic renal failure on long-term programmed hemodialysis].

AIM: To examine the specific features of development of cardiac valvular diseases, biochemical changes in the blood composition, and changes in the density of bone tissue in patients with chronic renal failure (CRF) treated with programmed hemodialysis. MATERIALS AND METHODS: 118 patients with CRF (Group 1 patients (n = 69) aged 18-40 years and Group 2 patients (n = 49) aged 55-73 years) were examined. RESULTS: Mitral valvular prolapse or disease mainly developed in Group 1 patients having profound phophorous and calcium metabolic changes and significantly elevated concentrations of blood parathyroid hormone; developed aortic valvular disease and calcium salt-impregnated cardiac tissues were observed in Group 2 patients. CONCLUSION: The revealed regularities occur in chronic renal failure regulated by programmed hemodialysis and they are risk factors for chronic heart failure in elderly patients in particular.

Adolescent↗

[Sequence analysis of hexon gene from adenovirus KR95 inducing hydropericardium syndrome in chickens].

The nucleotide sequence of a part of the HindIII-D fragment (3300 b.p.) of adenovirus KR95 DNA has been determined. Analysis of the nucleotide sequence disclosed a continuous ORF for hexon gene (2814 b.p.) coding the 937 residue protein, part of ORF for the C-terminal region of pVI polypeptide, including 114 residues and the beginning of ORF coding 25 N-terminal residues for viral endoproteinase. Comparison of predicted KR95 hexon sequence and 8 mammalian and avian adenovirus hexon sequences revealed the highest homology between KR95 strain and avian adenoviruses FAV10 and FAV1 (91.1 and 80.1%, respectively). The results were used for creating a test system on the basis of the polymerase chain reaction. The system was used in analysis of fowl samples obtained from 12 poultry farms in Russia. The sequences of hexon gene amplified fragments in the isolated strains and similar fragments of other mammalian and avian adenoviruses have been compared.

Adenoviridae↗

In vitro effects of folic acid on gamma-glutamyltransferase and glutathione reductase activities in malignant lung and thymus tumors.

In vitro effects of folic acid (10(-5), 10(-4), and 10(-3)M) on activities of gamma-glutamyltransferase and glutathione reductase, the enzymes involved in glutathione metabolism, were studied in tissue samples obtained after surgical treatment of the lungs and thymus. Folic acid did not change gamma-glutamyltransferase activity in lung cancer tissue, but in thymoma tissue this substance in a concentration of 10(-3)M inhibited it by 16%. Folic acid had no effects on glutathione reductase activity in benign tumors and normal lung and thymus tissues, but increased this activity in thymoma and lung cancer tissues. Activation of glutathione reductase was probably related to binding of folic acid in the allosteric center of the enzyme, which probably induced conformational changes in the catalytic center, acceleration of electron transport from NADPH(2) to oxidized glutathione via flavin adenine nucleotide, and intense production of reduced glutathione.

Dose-Response Relationship, Drug↗

Crystal structure of the closed form of chicken cytosolic aspartate aminotransferase at 1.9 A resolution.

The crystal structure of chicken cytosolic aspartate aminotransferase (cAATase; EC 2.6.1.1) has been solved and refined at 1.9 A resolution. Orthorhombic crystals, space group P2(1)2(1)2(1), a = 56.4 A, b = 126.0 A and c = 142.3 A, were grown from polyethylene glycol solutions in the presence of maleate, a dicarboxylic inhibitor that forms a Michaelis-like complex. The pyridoxal form of the enzyme was used for crystallization. Diffraction data were collected using synchrotron radiation. The structure of the new orthorhombic crystal form was solved by molecular replacement using the partially refined 2.8 A resolution structure of the high-salt crystal form as a search model. The final value of the crystallographic R-factor after rigid body and restrained least-squares refinement is 0.175 with very good model geometry. The two 2-fold-related subunits of cAATase have distinct environments in the crystal lattice. Domain movement is strictly hindered by the lattice contacts in one subunit, while the second one possesses conformational freedom. Despite their different environments, both subunits were found in the closed conformation with one maleate molecule tightly bound in each active site. The present study allows a detailed comparison of the highly refined structures of the aspartate aminotransferase isozymes, and thus provide better insight into the role of conserved and variable residues in substrate recognition and catalysis.

Animals↗

[Cystalgia].

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Adult↗

Three-dimensional structure of catalase from Penicillium vitale at 2.0 A resolution.

The three-dimensional structure analysis of crystalline fungal catalase from Penicillium vitale has been extended to 2.0 A resolution. The crystals belong to space group P3(1)21, with the unit cell parameters of a = b = 144.4 A and c = 133.8 A. The asymmetric unit contains half a tetrameric molecule of 222 symmetry. Each subunit is a single polypeptide chain of approximately 670 amino acid residues and binds one heme group. The amino acid sequence has been tentatively determined by computer graphics model building (using the FRODO system) and comparison with the known sequence of beef liver catalase. The atomic model has been refined by the Hendrickson & Konnert (1981) restrained least-squares program against 68,000 reflections between 5 A and 2 A resolution. The final R-factor is 0.31 after 24 refinement cycles. The secondary and tertiary structure of the catalase has been analyzed.

Amino Acid Sequence↗

Comparison of beef liver and Penicillium vitale catalases.

The structures of Penicillium vitale and beef liver catalase have been determined to atomic resolution. Both catalases are tetrameric proteins with deeply buried heme groups. The amino acid sequence of beef liver catalase is known and contains (at least) 506 amino acid residues. Although the sequence of P. vitale catalase has not yet been determined chemically, 670 residues have been built into the 2 A resolution electron density map and have been given tentative assignments. A large portion of each catalase molecule (91% of residues in beef liver catalase and 68% of residues in P. vitale catalase) shows structural homology. The root-mean-square deviation between 458 equivalenced C alpha atoms is 1.17 A. The dissimilar parts include a small fragment of the N-terminal arm and an additional "flavodoxin-like" domain at the carboxy end of the polypeptide chain of P. vitale catalase. In contrast, beef liver catalase contains one bound NADP molecule per subunit in a position equivalent to the chain region, leading to the flavodoxin-like domain, of P. vitale catalase. The position and orientation of the buried heme group in the two catalases, relative to the mutually perpendicular molecular dyad axes, are identical within experimental error. A mostly hydrophobic channel leads to the buried heme group. The surface opening to the channel differs due to the different disposition of the amino-terminal arm and the presence of the additional flavodoxin-like domain in P. vitale catalase. Possible functional implications of these comparisons are discussed.

Amino Acid Sequence↗

Electron density map of chicken heart cytosol aspartate transaminase at 3.5 A resolution.

Aspartate transaminase (EC 2.6.1.1., Asp-transaminase) has been studied extensively, and much is now known about its physico-chemical, catalytic and other properties. X-ray studies that can provide a structural foundation for the events that occur during the transamination reaction are under way on three species of Asp-transaminase: the cytosolic enzyme from pig and chicken hearts, and the mitochondrial chicken heart enzyme. We describe here the interpretation of an electron density map of Asp-transaminase from chicken heart cytosol at 3.5 A.

Animals↗