Revisão Revisado por pares

Metabolic Hyperpolarization of Liver by Ethanol: The Importance of Mg 2+ and H + in Determining Impermeant Intracellular Anionic Charge and Energy of Metabolic Reactions

1994; Wiley; Volume: 18; Issue: 5 Linguagem: Inglês

10.1111/j.1530-0277.1994.tb00081.x

ISSN

1530-0277

Autores

Richard L. Veech, Denise Gates, Calvin Crutchfield, William L. Gitomer, Yoshihiro Kashiwaya, Michael King, Robert Wondergern,

Tópico(s)

Renal function and acid-base balance

Resumo

Alcoholism: Clinical and Experimental ResearchVolume 18, Issue 5 p. 1040-1056 Metabolic Hyperpolarization of Liver by Ethanol: The Importance of Mg2+ and H+ in Determining Impermeant Intracellular Anionic Charge and Energy of Metabolic Reactions Richard L. Veech, Corresponding Author Richard L. Veech Laboratory of Metabolism and Molecular Biology, National Institute on Alcohol Abuse and Alcoholism, Rockville, Maryland; and the Department of Physiology, Quillen College of Medicine, East Tennessee State University, Johnson City, Tennessee.Reprint requests: Richard L. Veech, Ph.D., Laboratory of Metabolism and Molecular Biology, National Institute on Alcohol Abuse and Alcoholism, 12501 Washington Avenue, Rockville MD, 20852-1823.Search for more papers by this authorDenise N. Gates, Denise N. Gates Laboratory of Metabolism and Molecular Biology, National Institute on Alcohol Abuse and Alcoholism, Rockville, Maryland; and the Department of Physiology, Quillen College of Medicine, East Tennessee State University, Johnson City, Tennessee.Search for more papers by this authorCalvin Crutchfield, Calvin Crutchfield Laboratory of Metabolism and Molecular Biology, National Institute on Alcohol Abuse and Alcoholism, Rockville, Maryland; and the Department of Physiology, Quillen College of Medicine, East Tennessee State University, Johnson City, Tennessee.Search for more papers by this authorWilliam L. Gitomer, William L. Gitomer Laboratory of Metabolism and Molecular Biology, National Institute on Alcohol Abuse and Alcoholism, Rockville, Maryland; and the Department of Physiology, Quillen College of Medicine, East Tennessee State University, Johnson City, Tennessee.Search for more papers by this authorYoshihiro Kashiwaya, Yoshihiro Kashiwaya Laboratory of Metabolism and Molecular Biology, National Institute on Alcohol Abuse and Alcoholism, Rockville, Maryland; and the Department of Physiology, Quillen College of Medicine, East Tennessee State University, Johnson City, Tennessee.Search for more papers by this authorM. Todd King, M. Todd King Laboratory of Metabolism and Molecular Biology, National Institute on Alcohol Abuse and Alcoholism, Rockville, Maryland; and the Department of Physiology, Quillen College of Medicine, East Tennessee State University, Johnson City, Tennessee.Search for more papers by this authorRobert Wondergern, Robert Wondergern Laboratory of Metabolism and Molecular Biology, National Institute on Alcohol Abuse and Alcoholism, Rockville, Maryland; and the Department of Physiology, Quillen College of Medicine, East Tennessee State University, Johnson City, Tennessee.Search for more papers by this author Richard L. Veech, Corresponding Author Richard L. Veech Laboratory of Metabolism and Molecular Biology, National Institute on Alcohol Abuse and Alcoholism, Rockville, Maryland; and the Department of Physiology, Quillen College of Medicine, East Tennessee State University, Johnson City, Tennessee.Reprint requests: Richard L. Veech, Ph.D., Laboratory of Metabolism and Molecular Biology, National Institute on Alcohol Abuse and Alcoholism, 12501 Washington Avenue, Rockville MD, 20852-1823.Search for more papers by this authorDenise N. Gates, Denise N. Gates Laboratory of Metabolism and Molecular Biology, National Institute on Alcohol Abuse and Alcoholism, Rockville, Maryland; and the Department of Physiology, Quillen College of Medicine, East Tennessee State University, Johnson City, Tennessee.Search for more papers by this authorCalvin Crutchfield, Calvin Crutchfield Laboratory of Metabolism and Molecular Biology, National Institute on Alcohol Abuse and Alcoholism, Rockville, Maryland; and the Department of Physiology, Quillen College of Medicine, East Tennessee State University, Johnson City, Tennessee.Search for more papers by this authorWilliam L. Gitomer, William L. Gitomer Laboratory of Metabolism and Molecular Biology, National Institute on Alcohol Abuse and Alcoholism, Rockville, Maryland; and the Department of Physiology, Quillen College of Medicine, East Tennessee State University, Johnson City, Tennessee.Search for more papers by this authorYoshihiro Kashiwaya, Yoshihiro Kashiwaya Laboratory of Metabolism and Molecular Biology, National Institute on Alcohol Abuse and Alcoholism, Rockville, Maryland; and the Department of Physiology, Quillen College of Medicine, East Tennessee State University, Johnson City, Tennessee.Search for more papers by this authorM. Todd King, M. Todd King Laboratory of Metabolism and Molecular Biology, National Institute on Alcohol Abuse and Alcoholism, Rockville, Maryland; and the Department of Physiology, Quillen College of Medicine, East Tennessee State University, Johnson City, Tennessee.Search for more papers by this authorRobert Wondergern, Robert Wondergern Laboratory of Metabolism and Molecular Biology, National Institute on Alcohol Abuse and Alcoholism, Rockville, Maryland; and the Department of Physiology, Quillen College of Medicine, East Tennessee State University, Johnson City, Tennessee.Search for more papers by this author First published: October 1994 https://doi.org/10.1111/j.1530-0277.1994.tb00081.xCitations: 17 This study was supported in part by the National Institute on Alcohol Abuse and Alcoholism, Grant AA-08867. AboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Share a linkShare onEmailFacebookTwitterLinkedInRedditWechat REFERENCES 1 Jones JE, Shane SR, Jacobs WH, Flink EB: Magnesium balance studies in chronic alcoholism. Ann NY Acad Sci pp 934–946, 1968. 2 Knochel JP: Cardiovascular effects of alcohol. Ann Intern Med 98: 849–854, 1983. 3 Altura BM, Altura BT: Peripheral and cerebrovascular actions of ethanol, acetaldehyde and acetate: relationship to divalent cations. Alcohol Clin Exp Res 11: 99–111, 1987. 4 Friedman HS: Alcohol, arrhythmia, and sudden death. Alcohol, Health & Res World 16: 87–92, 1992. 5 Knochel JP, Bilbrey GL, Fuller TJ, Carter NW: The muscle cell in chronic alcoholism: The possible role of phosphate depletion in alcoholic myopathy. Ann NY Acad Sci 252: 274–286, 1975. 6 Urbano-Marquez A, Estruch R, Navarro-Lopez F, Grau JM, Mont L, Rubin E: The effects of alcoholism on skeletal and cardiac muscle. New Engl J Med 320: 409–415, 1989. 7 Anderson R, Cohen M, Haller R, Elms J, Carter NW, Knochel JP: Skeletal muscle phosphorus and magnesium deficiency in alcoholic myopathy. Miner Electrolyte Metab 4: 106–112, 1980. 8 Ferguson ER, Blachley JD, Knochel JP: Skeletal muscle ionic composition and sodium transport activity in chronic alcoholism. Trans Am Assoc Physicians 94: 61–72, 1981. 9 Ferguson ER, Blachley JD, Carter NW, Knochel JP: Derangements of muscle composition, ion transport, and oxygen consumption in chronically alcoholic dogs. Am J Physiol 246: F700–F709, 1984. 10 Israel-Jacard Y, Kalant H: Effect of ethanol on electrolyte transport and electrogenesis in animal tissues. J Cell Comp Physiol 65: 127–132, 1965. 11 Leaf A: On the mechanism of fluid exchange of tissues in vitro. Biochem J 62: 241–248, 1956. 12 Masuda T, Dobson GP, Veech RL: The Gibbs-Donnan nearequilibrium system of heart. J Biol Chem 265: 20321–20334, 1990. 13 Tanford C: Equilibrium state of ATP-driven ion pumps in relation to physiological ion concentration gradients. J Gen Physiol 77: 223–229, 1981. 14 Smith RM, Alberty RA: The apparent stability constants of ionic complexes of various adenosine phosphates with divalent cations. J Am Chem Soc 78: 2376–2380, 1956. 15 Walser M: Magnesium metabolism. Ergebn Physiol 59: 189–341, 1967. 16 Wondergem R, Castillo LV: Effect of temperature on transmembrane potential of mouse liver cells. Am J Physiol 251: C603–C613, 1986. 17 You G, Smith CP, Kanai Y, Lee W-S, Stelzner M, Hediger MA: Cloning and characterization of the vasopressin-regulated urea transporter. Nature 365: 844–847, 1993. 18 Lieber CS, Davidson CS: Some metabolic effects of ethyl alcohol. Am J Med 33: 319, 1962. 19 Veech RL: Biochemical genetics in relation to alcoholism: Metabolism of alcohol-enzymes, pathways and metabolites. Alcohol Clin Exp Res 5: 448–450, 1981. 20 Crow KE, Cornell NW, Veech RL: The rate of ethanol metabolism in isolated rat hepatocytes. Alcohol Clin Exp Res 1: 43–47, 1977. 21 Warburg O: Uber den Stoffwechsel der Tumoren. Berlin , Springer Verlag, 1926. 22 Stubbs M, Bhujwalla ZM, Tozer GM, Rodriques LM, Maxwell RJ, Morgan R, Howe FA, Griffiths JR: An assessment of the 31P MRS as a method of measurement pH of rat tumors. NMR Biomed 5: 351–359, 1992. 23 Friedman N: Regulation of gluconeogenesis: Role of ion fluxes and transmembrane potential changes, in F Lundquist, N Tygstrup, (eds): Regulation of Hepatic Metabolism. Copenhagen , Munksgaard, 1974, pp 32–47. 24 Wondergem R, Harder DR: Membrane potential measurements during rat liver regeneration. J Cell Physiol 102: 193–197, 1980. 25 Binggeli R, Cameron IL: Cellular potentials of normal and cancerous fibroblasts and hepatocytes. Cancer Res 40: 1830–1835, 1980. 26 Christensen E, Craig J, Harris R, Higgins J, Edmonson H, Veech R: Effect of chronic alcohol and oxygen tension on the development of hepatic necrosis in rat, in RG Thurman, JR Williamson, H Drott, B Chance, (eds): Alcohol and Acetaldehyde Metabolizing Systems, vol 3. New York , Academic Press, 1977, pp 87–98. 27 Brown G: The H+/e− forces and stoichiometries of the mitochondrial respiratory chain, in JJ Lemasters, CR Hackenbrock, RG Thurman, HV Westerhoff, (eds): Integration of Mitochondrial Function. New York , Plenum Press, 1988, pp 197–203. 28 Reynafarge B, Lehninger AL: The K+/site and H+/site stoichiometry of mitochondrial electron transport. J Biol Chem 253: 6331–6334, 1978. 29 Guynn RW, Veech RL: The equilibrium constants of the adenosine triphosphate hydrolysis and the adenosine triphosphate-citrate lyase reactions. J Biol Chem 248: 6966–6972, 1973. 30 Veloso D, Guynn RW, Oskarsson M, Veech RL: The concentrations of free and bound magnesium in rat tissues. J Biol Chem 248: 4811–4819, 1973. 31 King MT, Gamble JL, Veech RL: Bicarbonate measurements in rat liver, brain, heart and skeletal muscle. Anal Biochem 95: 183–187, 1979. 32 Moon RB, Richards JH: Determination of intracellular pH by 31P magnetic resonance. J Biol Chem 248: 7227–7278, 1973. 33 Dobson GP, Veech RL, Passonneau JV, Kobayashi K, Inubushi T, Wehrli S, Nioka S, Chance B: 31P NMR and enzymatic analysis of cytosolic phosphocreatine, ATP, Pi and intracellular pH in the isolated working perfused heart. NMR Biomed 5: 20–28, 1992. 33a Robert A. Alberty: Pure Appl Chem 66: 1641–1666, 1994. 34 Lawson JWR, Veech RL: Effects of pH and free Mg2+ on the Keq of the creatine kinase reaction and other phosphate hydrolyses and phosphate transfer reactions. J Biol Chem 254: 6528–6537, 1979. 35 Debye VP, Huckel E: Originalmittei, ungen zur theorie der electrolyte. Physikalische Z 24: 185–206, 1923. 36 Van't Hoff JH: L'Equilibre ghiminque dans les systemes gazeuz ou dis a l'etal dilue. Arch Neerl 20: 239–302, 1885. 37 London RE: Methods for measurement of intracellular magnesium: NMR and fluorescence. Annu Rev Physiol 53: 241–258, 1991. 38 Clark WM: Oxidation Reduction Potentials of Organic Systems. Baltimore , Williams & Wilkins, 1960. 39 Veech RL, Lawson JWR, Cornell NW, Krebs HA: Cytosolic phosphorylation potential. J Biol Chem 254: 6538–6547, 1979. 40 Cohen SM: Simultaneous 13C and 31P NMR studies of perfused rat liver. J Biol Chem 258: 14294–14308, 1983. 41 Cohen M, Hughes TR: Nuclear magnetic resonance spectra of adenosine di- and triphosphate. J Biol Chem 237: 176–181, 1962. 42 Gupta RK, Moore RD: 31P NMR studies of intracellular free Mg2+ in intact frog skeletal muscle. J Biol Chem 255: 3987–3993, 1980. 43 Gupta RK, Benovic JL, Rose ZB: The determination of the free magnesium level in the human red cell by 31P NMR. J Biol Chem 253: 6172–6176, 1978. 44 Malloy CR, Cunningham CC, Radda GK: The metabolic state of the rat liver measured by 31P NMR spectroscopy. Biochim Biophys Acta 885: 1–11, 1986. 45 Mosher TJ, Williams GD, Doumen C, LaNoue KF, Smith MB: Error in the calibration of the MgATP chemical shift limit: effects on the determination of free magnesium by 31P NMR. MagReson Med 24: 163–169, 1992. 46 Gupta RK, Benovic JL, Rose ZB: Magnetic resonance studies of the binding of ATP and cations to human hemoglobin. J Biol Chem 253: 6515–6171, 1978. 47 Gupta RK, Gupta P, Yushok WD, Rose ZB: Measurement of the dissociation constant of MgATP at physiological nucleotide levels by a combination of 31P NMR and optical absorbance spectroscopy. Biochem Biophys Res Comm 117: 210–216, 1983. 48 Malloy CR, Cunningham CC, Radda GK: The metabolic state of rat liver in vivo measured by 31P NMR spectroscopy. Biochem Biophys Acta 885: 1–11, 1986. 49 Goldberg RN, Tewari YB: Thermodynamics of the disproportion of adenosine 5′-diphosphate to adenosine 5′-triphosphate and adenosine 5′-monophosphate. Biophys Chem 40: 241–261, 1991. 50 Wu ST, Pieper GM, Salhany JM, Eliot RS: Measurement of free magnesium in perfused and ischemic arrested heart muscle. A quantitative phosphorus-31 nuclear magnetic resonance and multiequilibria analysis. Biochemistry 20: 7399–7403, 1981. 51 Hoek JB, Thomas AP, Rubin E, Thomas AP: Ethanol-induced mobilization of calcium by activation of phospholipid-specific phospholipase C in intact hepatocytes. J Biol Chem 262: 682–691, 1987. 52 Romani A, Dowell E, Scarpa A: Cyclic-AMP-induced Mg2+ release from rat liver hepatocytes, permiabilized hepatocytes and isolated mitochondria. J Biol Chem 266: 24376–24384, 1992. 53 Mendelson JH, Mello NK: Basis mechanisms underlying physical dependence upon alcohol. Ann NY Acad Sci 311: 69–79, 1978. 54 Altura BM, Altura BT: Peripheral and cerebrovascular actions of ethanol, acetaldehyde and acetate: relationship to divalent cations. Alcohol Clin Exp Res 11: 99–111, 1987. 55 Kwack H, Veech RL: Citrate: its relation to free magnesium ion concentration and cellular energy, in ( ER Stadtman, PB Chock eds) Current Topics in Cellular Regulation. San Diego , Academic Press, 33: 185–207, 1992. 56 Tewari YB, Steckler DK, Goldberg RN: Thermodynamics of isomerization reactions involving sugar phosphates. J Biol Chem 263: 3664–3669, 1988. 57 Guynn RW, Gelberg HJ, Veech RL: Equilibrium constants of the malate dehydrogenase, citrate synthase, citrate lyase, and acetyl coenzyme A hydrolysis reaction under physiological conditions. J Biol Chem 5: 6957–6965, 1973. 58 HA Sober, (ed): Handbook of Biochemistry. Cleveland , Chemical Rubber Company, 1970, pp J-190. 59 Alberty RA: Standard Gibbs free energy, enthalpy, and entropy changes as a function of pH and pMg for several reactions involving adenosine phosphates. J Biol Chem 244(12): 3290–3302, 1969. 60 Irani RR: Metal complexing by phosphorus compounds v. temperature dependence of acidity and magnesium complexing constants. J Phys Chem 65: 1463–1465, 1961. 61 Lambert SM, Watters JI: The complexes of magnesium ion with pyrophosphate and triphosphate ions. J Am Chem Soc 79: 5606–5608, 1957. 62 Colin E, Clark W, Glew DN: Faraday trans. 1. J Chem Soc 76: 1911–1916, 1980. 63 Goldberg RN: Ref. Data. J Physical Chem 10: 671–764, 1981. 64 Larson JW, Hepler LG: in JF Coetzee, CD Ritchie, (eds): Solute-Solvent Interactions. New York , Marcel Dekker, 1969, pp 1–44. 65 Guynn RW, Webster LT, Veech RL: Equilibrium constants of the reactions of acetyl coenzyme A synthetase and the hydrolysis of adenosine triphosphate to adenosine monophosphate and inorganic pyrophosphate. J Biol Chem 249: 3248–3254, 1974. 66 Lawson JWR, Guynn RW, Cornell NW, Veech RL: A possible role for pyrophosphate in the control of hepatic glucose metabolism, in RW Hanson, MA Mehlman, (eds); Gluconeogenesis: Its Regulation in Mammalian Species, pp 481–512, New York , John Wiley and Sons, 1976. 67 Veech RL, Raijman L, Dalziel K, Krebs HA: Disequilibrium in the triose phosphate isomerase system in rat liver. Biochem J 115: 837–842, 1969. 68 Cornell NW, Leadbetter M, Veech RL: Effects of free magnesium concentration and ionic strength on equilibrium constants for the glyceraldehyde phosphate dehydrogenase and phosphoglycerate kinase reactions. J Biol Chem 254: 6522–6527, 1979. 69 Guynn RW, Veloso D, Lawson JWR, Veech RL: The concentration and control of free inorganic pyrophosphate in rat liver in vivo. Biochem J 140: 369–375, 1974. 70 Wold F, Ballou CE: Studies on the enzyme enolase. J Biol Chem 227: 301–312, 1956. Citing Literature Volume18, Issue5October 1994Pages 1040-1056 ReferencesRelatedInformation

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