Quinone-reducing activity of thrombocytes
Trukhan, A.S.; Petrovskiĭ, G.G.; Khmara, N.F.; Maslova, G.T.
Voprosy Meditsinskoi Khimii 24(3): 347-352
1978
ISSN/ISBN: 0042-8809 PMID: 664465 Document Number: 136556
NAD/P/H: quinone-oxidoreductase activity was determined in human thrombocytes using spectrophotometric and polarographic methods. Detergents, vitamins K3 and K1, ADP-induced aggregation of the thrombocytes were shown to affect the thrombocytic guinone-reductase activity. Possible localization of quinone-reductase in thrombocytes and its importance for the state of thrombocytic membrane are discussed.
Document emailed within 1 workday
Related Documents
Beall, H.D.; Murphy, A.M.; Siegel, D.; Hargreaves, R.H.; Butler, J.; Ross, D. 1995: Nicotinamide adenine dinucleotide (phosphate): quinone oxidoreductase (DT-diaphorase) as a target for bioreductive antitumor quinones: quinone cytotoxicity and selectivity in human lung and breast cancer cell lines Molecular Pharmacology 48(3): 499-504Begleiter, A.; Blair, G.W. 1984: Quinone-induced DNA damage and its relationship to antitumor activity in L5178Y lymphoblasts Cancer Research 44(1): 78-82
Twerdok, L.E.; Trush, M.A. 1990: Differences in quinone reductase activity in primary bone marrow stromal cells derived from C57BL/6 and DBA/2 mice Research Communications in Chemical Pathology and Pharmacology 67(3): 375-386
Traver, R.D.; Horikoshi, T.; Danenberg, K.D.; Stadlbauer, T.H.; Danenberg, P.V.; Ross, D.; Gibson, N.W. 1992: NAD(P)H:quinone oxidoreductase gene expression in human colon carcinoma cells: characterization of a mutation which modulates DT-diaphorase activity and mitomycin sensitivity Cancer Research 52(4): 797-802
Liu, H.-Y.; Shi, R.-J.; Zhang, Y.; Shi, Z.-G.; Zhang, Y.-Y.; Yu, L.; Zhang, X.-B.; Tan, T. 2014: NO3-/NO2- inhibits sulfate-reducing activity of the enrichment culture of sulfate-reducing prokaryotes from an off-shore oil reservoir at Bohai Bay, China Ying Yong Sheng Tai Xue Bao 25(8): 2369-2376
Alekseev, N.A.; Aksenov, N.A.; Pustovalova, A.G. 1975: Functional activity of thrombocytes in healthy children Voprosy Okhrany Materinstva i Detstva 20(6): 12-17
Parkhomets', V.P.; Silonov, S.B.; Donchenko, H.V. 2001: Effect of alpha-tocopherol, tocopheryl quinone and other complexes with tocopherol-binding proteins on the activity of enzymes metabolizing arachidonic acid Ukrains'kyi Biokhimichnyi Zhurnal 73(1): 43-47
Burykina, I.A.; Kovaleva, T.N.; Ignatenko, S.I.; Mertsalova, N.N.; Chepurov, A.K. 1981: Functional activity of thrombocytes soon after implantation of an artificial heart Biulleten' Eksperimental'noi Biologii i Meditsiny 92(12): 659-661
Markov, K.M.; Pinelis, V.G.; Kudinov, I.V.; Borin, M.L.; Azizova, O.A. 1989: Na+/H+ metabolic activity in the thrombocytes of spontaneously hypertensive rats Biulleten' Eksperimental'noi Biologii i Meditsiny 107(2): 188-190
Poliakova, A.M.; Lomazova, K.D.; Kravchenko, A.V.; Maleev, V.V. 1989: The action of interferon and reaferon on the functional activity of human thrombocytes Zhurnal Mikrobiologii Epidemiologii i Immunobiologii 11: 52-54
Grigor'ev, G.I. 1974: Functional state of the thrombocytes and hemolytic activity in acute cerebrovascular disorders Klinicheskaia Meditsina 52(3): 96-100
Atakhanov, S.E.; Reswick, L.M.; Devereux, R.B.; Tkhostova, E.B.; Baliakina, E.V.; Popov, E.G.; Gabbasov, Z.A.; Dubov, P.B.; Iurenev, A.P. 1992: Calcium metabolism and functional activity of thrombocytes in patients with hypertensive heart Kardiologiia 32(1): 66-67
Tromm, A.; Hüppe, D.; Straub, H.; Krieg, M.; May, B. 1992: Value of alpha-1-antitrypsin and thrombocytes in the assessment of inflammatory activity in Crohn disease Medizinische Klinik 87(2): 53-57
Timofeeva, L.M. 1970: The concentration of adenylic system components and enzyme activity in the thrombocytes of patients with thrombocythemia Voprosy Meditsinskoi Khimii 16(3): 240-244
Koniaev, B.V.; Avdeeva, N.A.; Grinev, I.A.; Zhukov, R.K. 1971: Functional disorders of thrombocytes and fibrinase activity in patients with myocardial infarct and chronic coronary insufficiency in the stage of exacerbation Kardiologiia 11(2): 29-33
Kudriashov, B.A.; Patorova, V.E.; Liapina, L.A. 1975: Influence of low doses of a heparin-urea complex on the aggregation of thrombocytes and the fibrinolytic activity of blood in intravenous infusion and in in vitro experiments Farmakologiia i Toksikologiia 38(4): 441-444
Tridandapani, S.; Chacko, G.W.; Van Brocklyn, J.R.; Coggeshall, K.M. 1997: Negative signaling in B cells causes reduced Ras activity by reducing Shc-Grb2 interactions Journal of Immunology 158(3): 1125-1132
Reutov, V.P.; Sorokina, E.G.; Kaiushin, L.P. 1994: The nitric oxide cycle in mammals and nitrite reducing activity of heme-containing proteins Voprosy Meditsinskoi Khimii 40(6): 31-35
Sumbaev, V.V.; Rozanov, A.I. 1998: In vitro study of regulation of rat liver xanthine oxidase activity by antioxidant reducing agents Ukrainskii Biokhimicheskii Zhurnal 70(6): 47-52
Ottesen, M.; Svensson, B. 1971: Modification of papain by treatment with glutaraldehyde under reducing and non-reducing conditions Comptes-Rendus des Travaux du Laboratoire Carlsberg 38(11): 171-185