48 results on '"Schumann, W C"'
Search Results
2. Estimates of Krebs cycle activity and contributions of gluconeogenesis to hepatic glucose production in fasting healthy subjects and IDDM patients
- Author
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Landau, B. R., Chandramouli, V., Schumann, W. C., Ekberg, K., Kumaran, K., Kalhan, S. C., and Wahren, J.
- Published
- 1995
- Full Text
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3. Changes in hepatic glycogen cycling during a glucose load in healthy humans
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Stingl, H., primary, Chandramouli, V., additional, Schumann, W. C., additional, Brehm, A., additional, Nowotny, P., additional, Waldhäusl, W., additional, Landau, B. R., additional, and Roden, M., additional
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- 2005
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4. Prandial glucose effectiveness and fasting gluconeogenesis in insulin-resistant first-degree relatives of patients with type 2 diabetes.
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Nielsen, M F, primary, Nyholm, B, additional, Caumo, A, additional, Chandramouli, V, additional, Schumann, W C, additional, Cobelli, C, additional, Landau, B R, additional, Rizza, R A, additional, and Schmitz, O, additional
- Published
- 2000
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5. Mechanism by which metformin reduces glucose production in type 2 diabetes.
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Hundal, R S, primary, Krssak, M, additional, Dufour, S, additional, Laurent, D, additional, Lebon, V, additional, Chandramouli, V, additional, Inzucchi, S E, additional, Schumann, W C, additional, Petersen, K F, additional, Landau, B R, additional, and Shulman, G I, additional
- Published
- 2000
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6. Effects of free fatty acid elevation on postabsorptive endogenous glucose production and gluconeogenesis in humans.
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Roden, M, primary, Stingl, H, additional, Chandramouli, V, additional, Schumann, W C, additional, Hofer, A, additional, Landau, B R, additional, Nowotny, P, additional, Waldhäusl, W, additional, and Shulman, G I, additional
- Published
- 2000
- Full Text
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7. Contributions of gluconeogenesis to glucose production in the fasted state.
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Landau, B R, primary, Wahren, J, additional, Chandramouli, V, additional, Schumann, W C, additional, Ekberg, K, additional, and Kalhan, S C, additional
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- 1996
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8. APPLICATION OF A NOVEL APPROACH TO QUANTIFY GLUCONEOGENESIS IN HUMAN PREGNANCY. • 531
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Kalhan, S, primary, Rossi, K, additional, Gruca, L, additional, Patki, C, additional, Burkett, E, additional, Schumann, W. C, additional, Chandramouli, V, additional, and Landau, B. R, additional
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- 1996
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9. Use of 2H2O for estimating rates of gluconeogenesis. Application to the fasted state.
- Author
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Landau, B R, primary, Wahren, J, additional, Chandramouli, V, additional, Schumann, W C, additional, Ekberg, K, additional, and Kalhan, S C, additional
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- 1995
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10. 14C-labeled propionate metabolism in vivo and estimates of hepatic gluconeogenesis relative to Krebs cycle flux
- Author
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Landau, B. R., primary, Schumann, W. C., additional, Chandramouli, V., additional, Magnusson, I., additional, Kumaran, K., additional, and Wahren, J., additional
- Published
- 1993
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11. Use of 14CO2 in estimating rates of hepatic gluconeogenesis
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Esenmo, E., primary, Chandramouli, V., additional, Schumann, W. C., additional, Kumaran, K., additional, Wahren, J., additional, and Landau, B. R., additional
- Published
- 1992
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12. Noninvasive tracing of Krebs cycle metabolism in liver.
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Magnusson, I, primary, Schumann, W C, additional, Bartsch, G E, additional, Chandramouli, V, additional, Kumaran, K, additional, Wahren, J, additional, and Landau, B R, additional
- Published
- 1991
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13. Metabolism of [2-14C]acetate and its use in assessing hepatic Krebs cycle activity and gluconeogenesis.
- Author
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Schumann, W C, primary, Magnusson, I, additional, Chandramouli, V, additional, Kumaran, K, additional, Wahren, J, additional, and Landau, B R, additional
- Published
- 1991
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14. Quantitative comparison of pathways of hepatic glycogen repletion in fed and fasted humans.
- Author
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Shulman, G I, primary, Cline, G, additional, Schumann, W C, additional, Chandramouli, V, additional, Kumaran, K, additional, and Landau, B R, additional
- Published
- 1990
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15. Small increases in insulin inhibit hepatic glucose production solely caused by an effect on glycogen metabolism.
- Author
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Edgerton, Dale S., Cardin, Sylvain, Emshwiller, Maya, Neal, Doss, Chandramouli, Visvanathan, Schumann, William C., Landau, Bernard R., Rossetti, Luciano, Cherrington, Alan D., Edgerton, D S, Cardin, S, Emshwiller, M, Neal, D, Chandramouli, V, Schumann, W C, Landau, B R, Rossetti, L, and Cherrington, A D
- Subjects
INSULIN ,GLUCOSE - Abstract
Based on our earlier work, a 2.5-fold increase in insulin secretion should completely inhibit hepatic glucose production through the hormone's direct effect on hepatic glycogen metabolism. The aim of the present study was to test the accuracy of this prediction and to confirm that gluconeogenic flux, as measured by three independent techniques, was unaffected by the increase in insulin. A 40-min basal period was followed by a 180-min experimental period in which an increase in insulin was induced, with euglycemia maintained by peripheral glucose infusion. Arterial and hepatic sinusoidal insulin levels increased from 10 +/- 2 to 19 +/- 3 and 20 +/- 4 to 45 +/- 5 microU/ml, respectively. Net hepatic glucose output decreased rapidly from 1.90 +/- 0.13 to 0.23 +/- 0.16 mg. kg(-1). min(-1). Three methods of measuring gluconeogenesis and glycogenolysis were used: 1) the hepatic arteriovenous difference technique (n = 8), 2) the [(14)C]phosphoenolpyruvate technique (n = 4), and 3) the (2)H(2)O technique (n = 4). The net hepatic glycogenolytic rate decreased from 1.72 +/- 0.20 to -0.28 +/- 0.15 mg. kg(-1). min(-1) (P < 0.05), whereas none of the above methods showed a significant change in hepatic gluconeogenic flux (rate of conversion of phosphoenolpyruvate to glucose-6-phosphate). These results indicate that liver glycogenolysis is acutely sensitive to small changes in plasma insulin, whereas gluconeogenic flux is not. [ABSTRACT FROM AUTHOR]
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- 2001
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16. 35th Annual Meeting of the European Association for the Study of Diabetes
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Melander, A., Olsson, J., Lindberg, G., Salzman, A., Howard, T., Stang, P., Lydick, E., Emslie-Smith, A., Boyle, D. I. R., Evans, J. M. M., Macdonald, T. M., Bain, J., Sullivan, F., Juhl, C., Pørksen, N., Sturis, J., Hollingdal, M., Pincus, S., Veldhuis, J., Dejgaard, A., Schmitz, O., Kristensen, J. S., Frandsen, K. B., Bayer, Th., Müller, P., Dunning, B. E., Paladini, S., Gutierrez, C., Deacon, R., Valentin, M., Grunberger, G., Weston, W. M., Patwardhan, R., Rappaport, E. B., Sargeant, L. A., Wareham, N. J., Khaw, K. T., Zethelius, Björn, Lithell, Hans, Hales, C. Nicholas, Berne, Christian, Lakka, H.-M., Oksanen, L., Tuomainen, T.-P., Kontula, K., Salonen, J. T., Dekker, J. M., de Boks, P., de Vegt, F., Stehouwer, C. D. A., Nijpels, G., Bouter, L. M., Heine, R. J., Bruno, G., Cavallo-Perin, P., Bargero, G., D’Errico, N., Borra, M., Macchia, G., Pagano, G., Newton, R. W., Ruta, D. A., New, J. P., Wallace, C., Roxburgh, M. A., Young, R. J., Vaughan, N. J. A., Elliott, P., Brennan, G., Devers, M., MacAlpine, R., Steinke, D., Lawson, D. H., Decallonne, B., Casteels, K., Gysemans, C., Bouillon, R., Mathieu, C., Linn, Thomas, Strate, Christine, Schneider, Kerstin, Funda, D. P., Jirsa, M., Kozáková, H., Kaas, A., Kofronová, O., Tlaskalová-Hogenová, H., Buschard, K., Wanka, H., Hartmann, A., Kuttler, B., Rasmussen, S. B., Sørensen, T. S., Markholst, H., Petersen, J. S., Karounos, D., Dyrberg, T., Mabley, J. G., Haskó, G., Szabó, C., Seissler, J., Nguyen, T. B. T., Steinbrenner, H., Scherbaum, W. A., Cipriani, R., Gabriele, A., Sensi, M., Guidobaldi, L., Pantellini, F., Cerrito, M. G., Scarpa, S., Di Mario, U., Morano, S., Ceolotto, G., Iori, E., Baritono, E., Del Prato, S., Semplicini, A., Trevisan, R., Zerbini, G., Meregalli, G., Asnaghi, V., Tentori, F., Maestroni, A., Mangili, R., Marescotti, C., Vedovato, M., Tiengo, A., Tadjieva, J., Mankovsky, B. N., Van Aken, S., Raes, A., Vande Walle, J., Matthys, D., Craen, M., Hansen, H. P., Lund, S. S., Rossing, P., Jensen, T., Parving, H.-H., Andersen, S., Tarnow, L., Hansen, B. V., Trautner, C., Haastert, B., Ennenbach, N., Willich, S., Tabák, Á. Gy., Orchard, T. J., Spranger, J., Preissner, K. T., Schatz, H., Pfeiffer, A., Cantón, A., Burgos, R., Hernández, C., Lecube, A., Mesa, J., Segura, R. M., Mateo, C., Simó, R., Fathallah, L., Greene, D. A., Obrosova, I., Gilbert, R. E., Kelly, D. J., Cox, A. J., Berka-Wilkinson, J. L., Taylor, H. R., Panagiotopoulos, S., Lee, V., Jerums, G., Cooper, M. E., Hitman, G. A., Aganna, E., Ogunkolade, W. B., Rema, M., Deepa, R., Shanthi-Rani, C. S., Barakat, K., Kumarajeewa, T. R., Cassell, P. G., McDermott, M. F., Mohan, V., Ways, K., Bursell, S., Devries, T., Woodworth, J., Alatorre, C., King, G., Aiello, L. P., Karisen, A. E., Pavlovic, D., Nielsen, K., Jensen, J., Andersen, H. U., Pociot, F., Mandrup-Poulsen, T., Eizirik, D. L., Nerup, J., Lortz, S., Tiedge, M., Lenzen, S., Lally, F. J., Bone, A. J., Darville, M. I., Ho, Y.-S., Sternesjö, J., Sandler, S., Chen, M.-C., Schuit, F., Pipeleers, D. G., Merezak, S., Hardikar, A., Hoet, J. J., Remacle, C., Reusens, B., Bréant, B., Garofano, A., Czernichow, P., Kubota, N., Terauchi, Y., Miki, H., Tamemoto, H., Yamauchi, T., Nakano, R., Komeda, K., Eto, K., Tobe, K., Kimura, S., Kadowaki, T., Ide, T., Murakami, K., Tsunoda, M., Mochizuki, T., Ozanne, S. E., Nave, B. T., Wang, C. L., Dorling, M. W., Petry, C. J., Koopmans, S. J., van der Bent, C., Que, I., Radder, J. K., Sebokova, E., Sana, A. K., Klimes, I., Ruderman, N., Morviducci, L., Pastore, L., Morelli, S., Sagratella, E., Zorretta, D., Buongiomo, A., Tamburrano, G., Giaccari, A., Martinenghi, Sabina, De Angelis, Gabriella Cusella, Ravasi, Flavio, Bifari, Francesco, Bordignon, Claudio, Falqui, Luca, Kessler, A., Dransfeld, O., Sasson, S., Tomas, E., Zorzano, A., Eckel, J., Thorsby, P., Rosenfalck, A. M., Kjems, L., Hanssen, K. F., Madsbad, S., Birkeland, K. I., Hamilton-Wessler, M., Markussen, J., Bergman, R. N., Melki, V., Hanaire-Broutin, H., Bessières-Lacombe, S., Tauber, J.-P., Home, P. D., Lindholm, A., Riis, A., Rosenstock, J., Schwartz, S., Clark, C., Edwards, M., Donley, D., Swift, P., Mortensen, H. B., Lynggaard, H., Hougaard, P., Cull, C. A., Neil, H. A. W., Frighi, V., Manley, S. E., Holman, R. R., Turner, R. C., Steiner, G., Davis, W. A., Weeraratna, T., Bruce, D. G., Davis, T. M. E., Vergès, B., Duvillard, L., Pont, F., Florentin, E., Gambert, Ph., Benko, B., Ljubić, S., Turk, Z., Granić, M., März, W., Wollschläger, H., Klein, G., Neiss, A., Wehling, M., Huxtable, S. J., Saker, P. J., Walker, M., Frayling, T. M., Levy, J. C., O’Rahilly, S., Hattersley, A. T., McCarthy, M. I., Orecchio, A., Giacchini, A., Dominici, R., Canettieri, G., Trinti, B., Zani, M., Andreoli, M., Sciacchitano, S., de Silva, A. M., Whitecross, K., Pasco, J., Kotowicz, M., Nicholson, G., Zimmet, P., Boyko, E. J., Collier, G. R., Frittitta, L., Pizzuti, A., Argiolas, A., Graci, S., Goldfine, I. D., Bozzali, M., Ercolino, T., Costanzo, B., Iacoviello, L., Tassi, V., Trischitta, V., Wauters, M., Rankinen, T., Mertens, I., Chagnon, M., Bouchard, C., Van Gaal, L., Sivenius, K., Valve, R., Hakkarainen, V., Niskanen, L., Laakso, M., Uusitupa, M., Beridze, N., Japaridze, M., Kurashvili, R., Dundua, M., Kebuladze, G., Kazakhashvili, N., Offley-Shore, B., Thomas, B., Ghebremeskel, K., Crawford, M., Lowy, C., Eriksson, Ulf J., Martin Simán, C., Wisse, Bert, Gittenberger-de Groot, Adriana C., Wentzel, P., Eriksson, U. J., Wender-Ożegowska, E., Drews, K., Biczysko, R., Bronisz, A., Rość, D., Graczykowska-Koczorowska, A., Kotschy, M., Sokup, A., Kohnert, K. D., Besch, W., Strese, J., Frick, U., Zander, E., Kemer, W., Škrha, J., Kvasnička, J., Kalvodová, B., Hilgertová, J., Schatteman, K., Goossens, F., Scharpé, S., De Leeuw, I., Hendriks, D., Legakis, I. N., Panayiotou, D., Mountokalakis, Th. D., Enderle, M. D., Beckmann, P., Balletshofer, B., Rittig, K., Maerker, E., Volk, A., Meisner, C., Jacob, S., Matthaei, S., Häring, H. U., Rett, K., Ueda, K., Nakagawa, T., Shimajiri, Y., Kokawa, M., Matsumoto, E., Sasaki, H., Sanke, T., Nanjo, K., McKinnon, Caroline M., Macfarlane, Wendy M., Docherty, Kevin, Furukawa, N., Shirotani, T., Kishikawa, H., Kaneko, K., Araki, E., Shichiri, M., Prentki, M., Roduit, R., Susini, S., Buteau, J., Ejrnæs, A. M., Andersen, N. Aa., Osterhoff, M., Möhlig, M., Ortmann, J., Bikashaghi, F., Mayer, C., Bikashagi, F., Ackermans, M. T., Pereira Arias, A. M., Bisschop, P. H. L. T., Endert, E., Sauerwein, H. P., Romijn, J. A., Gastaldelli, A., Baldi, S., Pettiti, M., Natali, A., Frascerra, S., Camastra, S., Toschi, E., Ferrannini, E., Stingl, H., Krssak, M., Bischof, M. G., Krebs, M., Fürnsinn, C., Nowotny, P., Waldhäusl, W., Roden, M., Neeft, M., Meijer, A. J., Båvenholm, P., Pigon, J., Efendic, S., Kästenbauer, T., Sauseng, S., Sokol, G., Auinger, M., Irsigler, K., Abbott, C. A., Carrington, A. L., Faragher, B., Kulkarni, J., Van Ross, E. R. E., Boulton, A. J. M., Armstrong, D. G., Hadi, S., Nguyen, H. C., Harkless, L. B., Jirkovská, A., Kasalicky, P., Hosová, J., Skibova, J., Uccioli, L., Caselli, A., Giacomozzi, C., Macellari, V., Giurato, L., Lardieri, L., Menzinger, G., Pham, H. T., Rosenblum, B. I., Lyons, T. E., Giurini, J. M., Smakowski, P., Chrzan, J. S., Habershaw, G. M., Veves, A., Foster, A. M., Bates, M., Doxford, M., Edmonds, M. E., Kecha, O., Winkler, R., Martens, H., Collette, J., Lefèbvre, P. J., Greiner, D., Geenen, V., Atlan-Gepner, C., Naspetti, M., Valéro, R., Barad, M., Lepault, F., Vialettes, B., Naquet, P., de Galan, B., Netea, M. G., Hancu, N., Smits, P., Van der Meer, J. W. M., Osterbye, T., Jørgensen, K. H., Tranum-Jensen, J., Fredman, P., Høy, M., Bokvist, K., Olsen, H. L., Horn, T., Gromada, J., Laub, R., Lohmann, T., Hahn, H. J., Adler, T., Emmrich, F., Rabuazzo, A. M., Lupi, R., Dotta, F., Patanè, G., Marselli, L., Realacci, M., Piro, S., Del Guerra, S., Santangelo, C., Navalesi, R., Purrello, F., Marchetti, P., de Vos, P., Visser, L., de Haan, B. J., Klok, P., van Schilfgaarde, R., Poppema, S., Juang, J.-H., Kuo, C.-H., Hsu, B. R.-S., Nacher, V., Pérez, M., Biarnés, M., Raurell, M., Soler, J., Montanya, E., Ritzel, R., Maubach, J., Büsing, M., Becker, T., Klempnauer, J., Hücking, K., Schmiegel, W. H., Nauck, M. A., Bouček, P., Saudek, F., Adamec, M., Kožitarová, R., Jedináková, T., Vlasáková, Z., Skibová, J., Bartoš, V., Maffi, P., Bertuzzi, F., Aldrighetti, L., Taglietti, M. V., Castelnuovo, A., Pozza, G., Di Carlo, V., Secchi, A., Renier, G., Mamputu, J.-C., Gillespie, J. S., McMaster, D., Mercer, C., Trimble, E. R., Lecomte, M., Véricel, E., Paget, C., Ruggiero, D., Lagarde, M., Wiernsperger, N., Pricci, F., Leto, G., Amadio, L., Cordone, S., Iacobini, C., Catalano, S., Violi, F., Rotella, C. M., Pugliese, G., Zicari, A., Gradini, R., Sale, P., Pala, L., Cresci, B., Giannini, S., Manuelli, C., Dahlfors, G., Arnqvist, H. J., Gonelle-Gispert, C., Halnan, P. A., Sadoul, K., Wolter, S., Lang, J., Niwa, T., Yu, W., Hidaka, H., Senda, T., Niki, I., Fukasawa, T., Renstrom, E., Barg, S., Seward, E., Rorsman, P., Rutter, G. A., Molinete, M., Lilla, V., Ravazzola, M., Halban, P. A., Efanov, A. M., Bertorello, A. M., Zaitsev, S. V., Zwiller, J., Berggren, P.-O., MŞengül, A., Salman, F., Sargrn, M., Özer, E., Karşidaǧ, K., Salman, S., Gedik, S., Satman, İ., Dinççaǧ, N., Yılmaz, M. T., Lloyd, A., Hopkinson, P. K., Testa, M. A., Blonde, L., Turner, R. R., Hayes, J., Simonson, D. C., van der Ven, N. C. W., Lubach, C. H. C., Snoek, F. J., Mollema, E. D., van der Ploeg, H. M., Danne, T., Hoey, H., McGee, H., Fitzgerald, H., Lernmark, B., Thernlund, G., Fredin, K., Hägglöf, B., Lugari, R., Dell’Anna, C., Ugolotti, D., Dei Cas, A., Barilli, A. L., Sard, L., Marani, B., Iotti, M., Zandomeneghi, R., Gnudi, A., Kjems, L. L., Volund, Aa., Toft-Nielsen, M., Damholt, M. B., Hilsted, L., Hughes, T. E., Krarup, T., Holst, J. J., Young, A., Gottlieb, A., Fineman, M., Kolterman, O., Cancelas, J., García-Martínez, J. A., Villanueva-Peñacarrillo, M. L., Valverde, I., Malaisse, W. J., Filipsson, K., Ahrén, B., Balkan, B., Kwasnik, L., Battle, B., Li, X., Egan, J. M., Clocquet, A. R., Elahi, D., Petrella, E., Pricket, K., Petersen, K. F., Sullivan, J. T., Amatruda, J. M., Livingston, J. N., Shulman, G. I., Freyse, E.-J., Knospe, S., Glund, K., Demuth, H.-U., Walker, D., Malik, R. A., Reljanovic, M., Barada, A., Milicevic, Z., Tack, Cees J., Goldstein, David S., Van Huysen, C., Stevens, M. J., Cao, X., Sundkvist, G., Dahlin, L.-B., Eriksson, K.-F., Rosén, I., Lattimer, S. A., Sima, A. A. F., Sullivan, K., Shaw, J. E., de Courten, M. P., Zimmet, P. Z., Gourdy, P., Ruidavets, J. B., Arveiler, D., Amouyel, Ph., Bingham, A., Tauber, J. P., Lam, K. S. L., Wat, N. M. S., Lam, T. H., Janus, E. D., de Pablos, P., Rodriguez, F., Martínez, J., Sánchez, V., Santana, C., García, I., Macías, A., Levin, K., Hother-Nielsen, O., Henriksen, J. E., Beck-Nielsen, H., Brechtel, K., Machann, J., Koch, M., Nielsen, M., Löblein, K., Becker, R., Denignger, M., Renn, W., Machicao, F., Claussen, C. D., Schick, F., Diraison, F., Moulin, P., Beylot, M., Thams, P., Capito, K., Eliasson, Lena, Barg, Sebastian, Göpel, Sven, Kanno, Takahiro, Renström, Erik, Meda, P., Charollais, A., Gjnovci, A., Calabrese, A., Wonkam, A., Caton, D., Wisznievski, L., Serre, V., Cogne, F., Bauquis, J., Bosco, D., Huarte, J., Herrera, P., Gotfredsen, C. F., Vessby, B., Manuel y Keenoy, B., Engelen, W., Vertommen, J., Schrans, S., Louheranta, A., Lindström, J., Tuomilehto, J., Segal, K. R., Heymsfield, S., Hauptman, J., Boldrin, M., Lucas, C., Pandolfi, A., Cetrullo, D., Polishchuck, R., Alberta, M., Pellegrini, G., Calafiore, A., Vitacolonna, E., Capani, F., Consoli, A., Halleux, C. M., Gillot, E. F., Brichard, S. M., Van der Planken, M., Corthouts, B., Peiffer, F., Scholten, D., Walke, M., Assert, R., Pirags, V., Pedula, K. L., Hillier, T. A., Brown, J. B., Santini, S. A., Marra, G., Cotroneo, P., Manto, A., Di Leo, M. A. S., Di Gregorio, S., Tordi, A., Pitocco, D., Ruotolo, V., Ghirlanda, G., Temelkova-Kurktschiev, T., Schaper, F., Koehler, C., Henkel, E., Hanefeld, M., Mancini, L., Citterio, F., Cotroneo, A., Ceroone, S., Castagneto, M., Rajbhandari, S. M., Dent, M. T., Plater, M. E., Harris, N. D., Tesfaye, S., Ward, J. D., Dupuy, O., Mayaudon, H., Lecoules, S., Bauduceau, B., Palou, M., Farret, O., Molinié, C., Antonelli-Incalzi, R., Fuso, L., Giordano, A., Calcagni, M. L., Todaro, L., Basso, S., Tramaglino, L. M., Troncone, L., Pistelli, R., Guillot, R., Bringuier, A., Porokhov, B., Guillausseau, P. J., Feldmann, G., Zivanic, S., Cizmic, M., Dragojevic, R., Vanovic, M., Borghouts, L. B., van Kranenburg, G. P. J., Schaart, G., Keizer, H. A., Niess, A. M., Dickuth, H. H., Lutz, O., Barbe, P., Calazel-Fournier, C., Hernandez, G., Saint-Martin, F., Galitzky, J., Gonçalves, A. A., da Silva, E. C., Brito, I. J. L., da Silva, C. A., Lawrence, N. J., Kousta, E., Mulnier, H., Penny, A., Millauer, B., Johnston, D. G., Robinson, S., Perriello, G., Pimenta, W., Pampanelli, S., Lucidi, P., Lepore, M., Porcellati, F., Cordoni, M. C., De Feo, P., Bolli, G. B., Sjöstrand, M., Holmäng, A., Lönnroth, P., Hauer, B., Grauer, P., Artzner, S., Lang, R., Stumvoll, M., Monti, L. D., Piatti, P. 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I., Witek, P., Geraldes, Elizabete, Rodrigues, D., Pereira, L., Doménech, A., Leitão, P., Anagnostopoulos, D., Foster, A. V. M., Nag, S., Barsoum, M., Lewis, G., Dunlop, N., Connolly, V., Bilous, R., Kelly, W., Chantelau, E., Gede, A., Sharman, D., O’Halloran, D., Best, C., Abbas, Z. G., Lutale, J., Gill, G. V., Jarvis, W. R., Archibald, L. K., Corcoran, S., Mansell, J., Pibworth, L., Terada, H., Shiba, T., Utugi, N., Utugi, T., Blum, M., Strobel, J., Höffken, K., Razvi, F. M., Kritzinger, E. E., Taylor, K., Jones, S., Illahi, W., Grüβer, M., Hartmann, P., Hoffstadt, K., van Leiden, H. A., Moll, A. C., Polak, B. C. P., Pietragalla, G. B., Maurino, M., Montanaro, M., Karadeniz, Ş., Tommasini, P., Quadrini, C., Demiraj, V., Rispoli, E., Ota, A., Takama, H., Saito, N., Hemández, C., Lepore, D., Antico, L., Giardina, B., Franconi, F., Michoud, E., Chamot, S., Riva, Ch., Hammes, H.-P., Renner, O., Breier, G., Lin, J., Alt, A., Betzholtz, C., Bretzel, R. G., Manti, R., Gallo, M., Molinar Hin, A., Brignardello, E., Boccuzzi, G., Li, Shanfang, Xiang, Kunsan, Zhang, Rugeng, Shangguan, Xinhong, Wu, Jianrong, Donnan, P. T., Broomhall, J., Hunter, K., Morris, A. D., Ioannidis, G., Peppa, M., Rontogianni, E., Kallifronas, M., Lekatsas, I., Chrysanthopoulou, G., Anthopoulos, L., Kesse, M., Thalassinos, N., Neves, C., Medina, J. L., Lopes, F., Yılmaz, M., Güvener, N., Güvener, M., Kocagöz, T., Böke, E., Paşaoglu, I., Bascil Tutuncu, N., Oto, A., Karvonen, M. K., Koulu, M., Pesonen, U., Mercuri, M., Rauramaa, R., Rutter, M. K., Kestevan, P., McComb, J. M., Marshall, S. M., Sobieska, M., Wiktorowicz, K., Kanters, S. D. J. M., Banga, J. D., Algra, A., Frijns, C. J. M., Beutler, J. J., Fijnheer, R., Nicoloff, G., Baydanoff, S., Stanimirova, N., Petrova, Ch., Lario, S., Campistol, J. M., Cases, A., Clària, J., Iñigo, P., Esmatjcs, E., Sármán, B., Tóth, M., Kocsis, I., Somogyi, A., Bumbure, A., Jachimowicz, K., Samson, J., Tomasiak, M., Sobol, A., Stańczyk, L., Watala, C., Stradina, P., Wiśniewska-Jarosińska, M., Marciniak, D., Więcławska, B., Watała, C., Golański, J., Zinnat, R., Mahmud, I., Büyükasik, Yahya, Demiroğlu, H., Szczepanik, A., Skowroński, M., Murawska, A., Meeking, D. R., Allard, S., Munday, J., Chowienczyk, P., Shaw, K. M., Cummings, M. H., Šimková, R., Jirsa, M., Hadoke, P. W. F., McIntyre, C. A., Jones, G. C., Williams, B. C., Elliott, A. I., McKnight, J. A., Pernow, J., Bombonato, G. C., Finucci, G. F., Zotta, L., Senses, V., Ozyazgan, S., Ince, E., Tunçdemir, M., Oztürk, M., Sultuybek, G., Akkan, A. G., Özyazgan, S., Unlücerci, Y., Bekpınar, S., Meyer, M. F., Lee, B. C., Shore, A. C., Humphreys, J. M., Tooke, J. E., Dell’Omo, G., Giovannitti, G., Caricato, F., Mariani, M., Pedrinelli, R., Kiviet-Boehm, C., Schwelling, V., Matthäei, S., Pfohl, M., McInerney, D., Itoh, H., Ohno, T., Katoh, N., Baumgartner-Parzer, S., Artwohl, M., Graier, W., Ludwig, C., Tachi, Y., Bannai, C., Shinohara, M., Shimpuku, H., Ohura, K., Bertacca, A., Sasvári, M., Szaleczki, E., Pusztai, P., Boes, U., Klaus, E., Dittrich, P., Wagner, Z., Wittmann, I., Pótó, L., Wagner, L., Mazák, I., Nagy, J., Feletto, F., Taboga, C., Tonutti, L., Lizzio, S., Russo, A., Selmo, V., Ceriello, A., Lekakis, J., Papamichael, C. M., Stamatelopoulos, K., Stamatelopoulos, S., Yillar, D. O., Gay, M., Lillaz, E., Passaro, A., Vanini, A., Calzoni, F., D’Elia, K., Carantoni, M., Zuliani, G., Fellin, R., Solini, A., Chwatko, G., Bald, E., Dramais, A.-S., Wallemacq, P. E., Vandeleene, B., Ciaria, M. V., Ariano, M., Strom, R., Gibney, J., Weiss, U., Turner, B., O’Gorman, P., Watts, G., Powrie, J., Crook, M., Shaw, K., and Cummings, M.
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- 1999
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17. The tracing of the pathway of mevalonate's metabolism to other than sterols.
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Brady, P S, Scofield, R F, Schumann, W C, Ohgaku, S, Kumaran, K, Margolis, J M, and Landau, B R
- Abstract
Specifically 14C-labeled mevalonic acids were administered to rats in diabetic ketosis, and the distribution of 14C was determined in the hydroxybutyric acid each rat excreted. Also, the distributions of 14C were determined in hydroxybutyric acid formed by slices of livers and kidneys from rats in diabetic ketosis and incubated with the specifically labeled mevalonic acids. The distributions found are in accord with the conversion of mevalonate to hydroxymethylglutaryl-CoA by the shunt pathway proposed by J. Edmond and G. Popják ((1974) J. Biol. Chem. 249, 66-71). That is, carbon 5 of mevalonate was metabolized to form the carboxyl of acetyl-CoA and carbons 2 and 3 of mevalonate were converted in large measure to hydroxybutyric acid without acetyl-CoA as an intermediate, i.e. the bond between carbon 2 and 3 was not cleaved, while the bond between 1 and 2, traced with [1,2-14C]mevalonate, was cleaved. Similar distributions of 14C were found in hydroxybutyric acid excreted by rats in diabetic ketosis administered specifically 14C-labeled isovaleric acids, isovaleric acid having in its metabolism intermediates common to those in the shunt pathway.
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- 1982
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18. The nature of the pentose pathway in liver.
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Scofield, R F, Kosugi, K, Chandramouli, V, Kumaran, K, Schumann, W C, and Landau, B R
- Abstract
[2-14C]Glucose, [3,4-14C]glucose, [5-14C]glucose, [4,5,6-14C]glucose, and [1-14C]ribose were perfused through livers of rats. The rats were fed or fasted and refed. In one experiment the liver perfused was regenerating and in another phenazine methosulfate was in the perfusate. Perfusion was for 30 or 90 min. Glucose from each perfusate and liver glucose-6-P and glycogen were isolated, purified, and degraded. The distributions of 14C in the carbons of the glucoses from the glycogens are similar to the distributions from the glucose 6-phosphates. The distributions of 14C are in accord with metabolism of glucose by the classical pentose pathway and not by the L-type pathway that has been proposed to function in liver.
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- 1985
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19. Quantitative estimation of the pathways followed in the conversion to glycogen of glucose administered to the fasted rat.
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Scofield, R F, Kosugi, K, Schumann, W C, Kumaran, K, and Landau, B R
- Abstract
When [6-3H,6-14C]glucose was given in glucose loads to fasted rats, the average 3H/14C ratios in the glycogens deposited in their livers, relative to that in the glucoses administered, were 0.85 and 0.88. When [3-3H,3-14C]lactate was given in trace quantity along with unlabeled glucose loads, the average 3H/14C ratio in the glycogens deposited was 0.08. This indicates that a major fraction of the carbons of the glucose loads was converted to liver glycogen without first being converted to lactate. When [3-3H,6-14C]glucose was given in glucose loads, the 3H/14C ratios in the glycogens deposited averaged 0.44. This indicates that a significant amount of H bound to carbon 3, but not carbon 6, of glucose is removed within liver in the conversion of the carbons of the glucose to glycogen. This can occur in the pentose cycle and by cycling of glucose-6-P via triose phosphates: glucose—-glucose-6-P—-triose phosphates—-glucose-6-P—-glycogen. The contributions of these pathways were estimated by giving glucose loads labeled with [1-14C]glucose, [2-14C]glucose, [5-14C]glucose, and [6-14C]glucose and degrading the glucoses obtained by hydrolyzing the glycogens that deposited. Only a few per cent of the glucose carbons deposited in glycogen were deposited in liver via glucose-6-P conversion to triose phosphates. Between 4 and 9% of the glucose utilized by the liver was utilized in the pentose cycle. While these are relatively small percentages, since three NADP3H molecules are formed from each molecule of [3-3H]glucose-6-P utilized in the cycle, a major portion of the difference between the ratios obtained with [3-3H]glucose and with [6-3H]glucose is attributable to metabolism in the pentose cycle. Because 3H of [3-3H]glucose is extensively removed during the conversion of the glucose to glycogen within liver the extent of incorporation of the 3H into liver glycogen is not the measure of glucose's metabolism in other tissues before its carbons are deposited in liver glycogen. The distributions of 14C from the 14C-labeled glucoses into the carbons of the liver glycogens mean that at a minimum about 30% of the carbons of the glucose deposited in the glycogen were first converted to lactate or its metabolic equivalent.
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- 1985
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20. Pentose pathway in human liver.
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Magnusson, I, Chandramouli, V, Schumann, W C, Kumaran, K, Wahren, J, and Landau, B R
- Abstract
[1-14C]Ribose and [2-14C]glucose were given to normal subjects along with glucose loads (1 g per kg of body weight) after administration of diflunisal and acetaminophen, drugs that are excreted in urine as glucuronides. Distributions of 14C were determined in the carbons of the excreted glucuronides and in the glucose from blood samples drawn from hepatic veins before and after glucagon administration. Eighty percent or more of the 14C from [1-14C]ribose incorporated into the glucuronic acid moiety of the glucuronides was in carbons 1 and 3, with less than 8% in carbon 2. In glucuronic acid from glucuronide excreted when [2-14C]glucose was given, 3.5-8.1% of the 14C was in carbon 1, 2.5-4.3% in carbon 3, and more than 70% in carbon 2. These distributions are in accord with the glucuronides sampling the glucose unit of the glucose 6-phosphate pool that is a component of the pentose pathway and is intermediate in glycogen formation. It is concluded that the glucuronic acid conjugates of the drugs can serve as a noninvasive means of sampling hepatic glucose 6-phosphate. In human liver, as in animal liver, the classical pentose pathway functions, not the L-type pathway, and only a small percentage of the glucose is metabolized via the pathway.
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- 1988
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21. A method for quantitating the contributions of the pathways of acetoacetate formation and its application to diabetic ketosis in vivo.
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Ohgaku, S, Brady, P S, Schumann, W C, Bartsch, G E, Margolis, J M, Kumaran, K, Landau, S B, and Landau, B R
- Abstract
A method has been developed for estimating in the intact cell the contribution of deacylation of acetoacetyl-CoA to the formation of acetoacetate relative to acetoacetate's formation via hydroxymethylglutaryl (HMG)-CoA. Estimates depend upon the fraction of the terminal four carbons of an even carbon-containing fatty acid that are converted to acetoacetate without prior conversion to acetyl-CoA, since in the formation of acetoacetate via HMG-CoA the omega-2 and omega-3 carbons of the fatty acid are converted to acetyl-CoA. Incorporation of 14C from [16-14C]palmitic acid into carbon 2 relative to carbon 4 of acetoacetate is used as the measure of the formation of the acetoacetate from the omega and omega-1 carbons of the fatty acid without acetyl-CoA as an intermediate. Incorporation of 14C from [13-14C]palmitic acid into carbon 1 relative to carbon 3 of acetoacetate is the measure of the formation of acetoacetate from the omega-2 and omega-3 carbons without acetyl-CoA as an intermediate. Comparison of these incorporations is made with incorporation into the carbons of acetoacetate of 14C from palmitic acid labeled with 14C in any of its first 12 carbons since such incorporation must proceed via acetyl-CoA as an intermediate. In an application of this approach, the specifically 14C-labeled palmitic acids were injected into rats in diabetic ketosis. Hydroxybutyric acid that each rat excreted was isolated and degraded. From the ratios of incorporation into the carbons of the hydroxybutyrates, as a minimum, 11% of the total quantity of hydroxybutyrate excreted by the rats was formed from acetoacetyl-CoA without HMG-CoA as an intermediate.
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- 1982
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22. Pathways of acetoacetate's formation in liver and kidney.
- Author
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Brady, P S, Scofield, R F, Ohgaku, S, Schumann, W C, Bartsch, G E, Margolis, J M, Kumaran, K, Horvat, A, Mann, S, and Landau, B R
- Abstract
Specifically 14C-labeled palmitic acids were perfused through livers and incubated with slices of kidneys from rats in diabetic ketosis. The distribution of 14C in the hydroxybutyric acid formed was determined. In liver, the ratio of incorporation of 14C from [13-14C]palmitic acid into carbon 1 to carbon 3 of the hydroxybutyric acid was the same as the ratio in carbon 2 to carbon 4 from [6-14C]palmitic acid. In kidney, the carbon 1-to-carbon 3 ratio was more than twice the carbon 2-to-carbon 4 ratio. In both tissues, 14C from [16-14C] palmitic acid was preferentially incorporated into carbon 4 compared to carbon 2 of the hydroxybutyric acid, but more so in liver than kidney. These results mean that in liver, the sole pathway of acetoacetate formation is via hydroxymethylglutaryl-CoA, while in kidney it is not. Rather in kidney, acetoacetyl-CoA is converted to acetoacetate to a large extent by direct deacylation, presumably via a transferase- and/or deacylase-catalyzed reaction. In liver, most of the palmitic acid utilized is converted to acetoacetate while in kidney it is not. We previously estimated that, as a minimum, 11% of the hydroxybutyric acid excreted by the rat in diabetic ketosis is formed without hydroxymethylglutaryl-CoA as an intermediate. The kidney appears to be the source of this hydroxybutyric acid if the pathways operative in these tissues in vitro are those that also operate in vivo.
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- 1982
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23. Pathways of acetone's metabolism in the rat.
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Kosugi, K, Scofield, R F, Chandramouli, V, Kumaran, K, Schumann, W C, and Landau, B R
- Abstract
Distributions of 14C were different from those of 13C in glucoses formed by livers of rats in diabetic ketosis and perfused with [2-14C]acetone and [2-13C]lactate. There was 32-73% of the 14C and 8-12% of the 13C in carbons 3 and 4 of the glucoses with the remaining 14C and 13C distributed about equally in the other carbons. Incorporations of 14C from [2-14C]acetone (14-39%) also exceeded those from [2-14C]pyruvate (8-10%) into carbons 3 and 4 of glucoses formed by hepatocytes from rats fed acetone or fasted. [2-14C]Acetone and [2-14C]pyruvate were infused into rats that were fed, fasted, given acetone in their drinking water, or in diabetic ketosis. Thirty-seven to 52% of the 14C in the glucoses formed was in their carbons 3 and 4 when the acetone was infused and 8 to 14% when the pyruvate was infused. [1,3-14C]Hydroxybutyrate was formed by the rats in diabetic ketosis given [2-14C]acetone. It is concluded that acetone is metabolized in rats to a large extent by a pathway in which lactate or its metabolic equivalent is not an intermediate and that pathway is via acetyl-CoA. via acetyl-CoA.
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- 1986
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24. 35th Annual Meeting of the European Association for the Study of Diabetes : Brussels, Belgium, 28 September-2 October 1999
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Melander, A., Olsson, J., Lindberg, G., Salzman, A., Howard, T., Stang, P., Lydick, E., Emslie-Smith, A., Boyle, D. I. R., Evans, J. M. M., Macdonald, T. M., Bain, J., Sullivan, F., Ad Darts Memo, Morris For The Collaboration, Juhl, C., Porksen, N., Sturis, J., Hollingdal, M., Pincus, S., Veldhuis, J., Dejgaard, A., Schmitz, O., Kristensen, J. S., Frandsen, K. B., Bayer, Th, Muller, P., Dunning, B. E., Paladini, S., Gutierrez, C., Deacon, R., Valentin, M., Grunberger, G., Weston, W. M., Patwardhan, R., Rappaport, E. B., Sargeant, L. A., Wareham, N. J., Khaw, K. T., Zethelius, Bjorn, Lithell, Hans, Hales, C. Nicholas, Berne, Christian, Lakka, H-M, Oksanen, L., Tuomainen, T-P, Kontula, K., Salonen, J. T., Dekker, J. M., Boks, P., Vegt, F., Stehouwer, C. D. A., Nijpels, G., Bouter, L. M., Heine, R. J., Bruno, G., Cavallo-Perin, P., Bargero, G., D Errico, N., Borra, M., Macchia, G., Pagano, G., Newton, R. W., Ruta, D. A., New, J. P., Wallace, C., Roxburgh, M. A., Young, R. J., Vaughan, N. J. A., Elliott, P., Brennan, G., Devers, M., Macalpine, R., Steinke, D., Lawson, D. H., Decallonne, B., Casteels, K., Gysemans, C., Bouillon, R., Mathieu, C., Linn, Thomas, Strate, Christine, Schneider, Kerstin, Funda, D. P., Jirsa, M. Jr, Kozakova, H., Kaas, A., Kofronova, O., Tlaskalova-Hogenova, H., Buschard, K., Wanka, H., Hartmann, A., Kuttler, B., Rasmussen, S. B., Sorensen, T. S., Markholst, H., Petersen, J. S., Karounos, D., Dyrberg, T., Mabley, J. G., Hasko, G., Szabo, C., Seissler, J., Nguyen, T. B. T., Steinbrenner, H., Scherbaum, W. A., Cipriani, R., Gabriele, A., Sensi, M., Guidobaldi, L., Pantellini, F., Cerrito, M. G., Scarpa, S., Di Mario, U., Morano, S., Ceolotto, G., Iori, E., Baritono, E., Del Prato, S., Semplicini, A., Trevisan, R., Zerbini, G., Meregalli, G., Asnaghi, V., Tentori, F., Maestroni, A., Mangili, R., Marescotti, C., Vedovato, M., Tiengo, A., Tadjieva, J., Mankovsky, B. N., Aken, S., Raes, A., Vande Walle, J., Matthys, D., Craen, M., Hansen, H. P., Lund, S. S., Rossing, P., Jensen, T., Parving, H-H, Genediab, Study Group, Andersen, S., Tarnow, L., Hansen, B. V., Trautner, C., Haastert, B., Ennenbach, N., Willich, S., Tabak, A. Gy, Orchard, T. J., Spranger, J., Preissner, K. T., Schatz, H., Pfeiffer, A., Canton, A., Burgos, R., Hernandez, C., Lecube, A., Mesa, J., Segura, R. M., Mateo, C., Simo, R., Fathallah, L., Greene, D. A., Obrosova, I., Gilbert, R. E., Kelly, D. J., Cox, A. J., Berka-Wilkinson, J. L., Taylor, H. R., Panagiotopoulos, S., Lee, V., Jerums, G., Cooper, M. E., Hitman, G. A., Aganna, E., Ogunkolade, W. B., Rema, M., Deepa, R., Shanthi-Rani, C. S., Barakat, K., Kumarajeewa, T. R., Cassell, P. G., Mcdermott, M. F., Mohan, V., Ways, K., Bursell, S., Devries, T., Woodworth, J., Alatorre, C., King, G., Aiello, L. P., Karisen, A. E., Pavlovic, D., Nielsen, K., Jensen, J., Andersen, H. U., Pociot, F., Mandrup-Poulsen, T., Eizirik, D. L., Nerup, J., Lortz, S., Tiedge, M., Lenzen, S., Lally, F. J., Bone, A. J., Darville, M. I., Ho, Y-S, Sternesjo, J., Sandler, S., Chen, M-C, Schuit, F., Pipeleers, D. G., Merezak, S., Hardikar, A., Hoet, J. J., Remacle, C., Reusens, B., Breant, B., Garofano, A., Czernichow, P., Kubota, N., Terauchi, Y., Miki, H., Tamemoto, H., Yamauchi, T., Nakano, R., Komeda, K., Eto, K., Tobe, K., Kimura, S., Kadowaki, T., Ide, T., Murakami, K., Tsunoda, M., Mochizuki, T., Ozanne, S. E., Nave, B. T., Wang, C. L., Dorling, M. W., Petry, C. J., Koopmans, S. J., Bent, C., Que, I., Radder, J. K., Sebokova, E., Sana, A. K., Klimes, I., Ruderman, N., Morviducci, L., Pastore, L., Morelli, S., Sagratella, E., Zorretta, D., Buongiomo, A., Tamburrano, G., Giaccari, A., Martinenghi, Sabina, Angelis, Gabriella Cusella, Ravasi, Flavio, Bifari, Francesco, Bordignon, Claudio, Falqui, Luca, Kessler, A., Dransfeld, O., Sasson, S., Tomas, E., Zorzano, A., Eckel, J., Thorsby, P., Rosenfalck, A. M., Kjems, L., Hanssen, K. F., Madsbad, S., Birkeland, K. 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T., Kardos, A., Gingl, Z., Kempler, P., Rudas, L., Lonovics, J., Marchand, M., Stevens, L. K., Tarnas, Gy, Eurodiab Iddm, Study Group, Estrella, F., Christensen, N. J., Keresztes, K., Barna, I., Hermanyi, Zs, Vargha, P., Bonnevie, L., Chanudet, X., Larroque, P., Tutuncu, N. Bascil, Deger, A., Batur, M. K., Yildirir, A., Onalan, O., Aksoyek, S., Kabakciota, G., Erbas, T., Galicka-Latala, D., Surdacki, A., Gerritsen, J., Tenvoorde, B. J., Heethaar, R. M., Tagawa, T. S., Kodama, M., Yoshioka, R., Yamasaki, Y., Didangelos, T., Athyros, V., Kontopoulos, A., Papageorgiou, A., Karamitsos, D., Lacigova, S., Rusavy, Z., Karova, R., Perrild, H., Kay, L., Jorgensen, T., Bien, A. I., Witek, P., Geraldes, Elizabete, Rodrigues, D., Pereira, L., Domenech, A., Leitao, P., Anagnostopoulos, D., Foster, A. V. M., Nag, S., Barsoum, M., Lewis, G., Dunlop, N., Connolly, V., Bilous, R., Kelly, W., Chantelau, E., Gede, A., Sharman, D., O Halloran, D., Best, C., Abbas, Z. G., Lutale, J., Gill, G. V., Jarvis, W. R., Archibald, L. K., Corcoran, S., Mansell, J., Pibworth, L., Terada, H., Shiba, T., Utugi, N., Utugi, T., Blum, M., Strobel, J., Hoffken, K., Razvi, F. M., Kritzinger, E. E., Taylor, K., Jones, S., Illahi, W., Grubetaer, M., Hartmann, P., Hoffstadt, K., Leiden, H. A., Moll, A. C., Polak, B. C. P., Pietragalla, G. B., Maurino, M., Montanaro, M., Karadeniz, S., Tommasini, P., Quadrini, C., Demiraj, V., Rispoli, E., Ota, A., Takama, H., Saito, N., Hemandez, C., Lepore, D., Antico, L., Giardina, B., Franconi, F., Michoud, E., Chamot, S., Riva, Ch, Hammes, H-P, Renner, O., Breier, G., Lin, J., Alt, A., Betzholtz, C., Bretzel, R. G. Rd, Manti, R., Gallo, M., Molinar Hin, A., Brignardello, E., Boccuzzi, G., Li, Shanfang, Xiang, Kunsan, Zhang, Rugeng, Shangguan, Xinhong, Wu, Jianrong, Donnan, P. T., Broomhall, J., Hunter, K., Morris, A. D., Darts Memo, Collaboration, Ioannidis, G., Peppa, M., Rontogianni, E., Kallifronas, M., Lekatsas, I., Chrysanthopoulou, G., Anthopoulos, L., Kesse, M., Thalassinos, N., Neves, C., Medina, J. L., Lopes, F., Guvener, N., Guvener, M., Kocagoz, T., Boke, E., Pasaoglu, I., Bascil Tutuncu, N., Oto, A., Karvonen, M. K., Koulu, M., Pesonen, U., Mercuri, M., Rauramaa, R., Pittsburgh Epidemiology of Diabetes Complications (EDC) Study, Rutter, M. K., Kestevan, P., Mccomb, J. M., Marshall, S. M., Sobieska, M., Wiktorowicz, K., Kanters, S. D. J. M., Banga, J. D., Algra, A., Frijns, C. J. M., Beutler, J. J., Fijnheer, R., Nicoloff, G., Baydanoff, S., Stanimirova, N., Petrova, Ch, Lario, S., Campistol, J. M., Cases, A., Claria, J., Inigo, P., Esmatjcs, E., Sarman, B., Toth, M., Kocsis, I., Somogyi, A., Bumbure, A., Jachimowicz, K., Samson, J., Tomasiak, M., Sobol, A., Stanczyk, L., Watala, C., Stradina, P., Wisniewska-Jarosinska, M., Marciniak, D., Wieclawska, B., Golanski, J., Zinnat, R., Mahmud, I., Buyukasik, Yahya, Demiroglu, H., Szczepanik, A., Skowronski, M., Murawska, A., Meeking, D. R., Allard, S., Munday, J., Chowienczyk, P., Shaw, K. M., Cummings, M. H., Simkova, R., Jirsa, M., Hadoke, P. W. F., Mcintyre, C. A., Jones, G. C., Williams, B. C., Elliott, A. I., Mcknight, J. A., Pernow, J., Bombonato, G. C., Finucci, G. F., Zotta, L., Senses, V., Ozyazgan, S., Ince, E., Tuncdemir, M., Sultuybek, G., Akkan, A. G., Unlucerci, Y., Bekpinar, S., Meyer, M. F., Lee, B. C., Shore, A. C., Humphreys, J. M., Tooke, J. 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25. Quantitation of the pathways of hepatic glycogen formation on ingesting a glucose load.
- Author
-
Magnusson, I, primary, Chandramouli, V, additional, Schumann, W C, additional, Kumaran, K, additional, Wahren, J, additional, and Landau, B R, additional
- Published
- 1987
- Full Text
- View/download PDF
26. Evidence for the presence of glucose cycling in pancreatic islets of the ob/ob mouse
- Author
-
Khan, A, primary, Chandramouli, V, additional, Östenson, C G, additional, Ahrén, B, additional, Schumann, W C, additional, Löw, H, additional, Landau, B R, additional, and Efendić, S, additional
- Published
- 1989
- Full Text
- View/download PDF
27. Evidence for an underestimation of the shunt pathway of mevalonate metabolism in slices of livers and kidneys from fasted rats and rats in diabetic ketosis
- Author
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Brady, P S, primary, Schumann, W C, additional, Ohgaku, S, additional, Scofield, R F, additional, and Landau, B R, additional
- Published
- 1982
- Full Text
- View/download PDF
28. Determinants in the pathways followed by the carbons of acetone in their conversion to glucose.
- Author
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Kosugi, K, primary, Chandramouli, V, additional, Kumaran, K, additional, Schumann, W C, additional, and Landau, B R, additional
- Published
- 1986
- Full Text
- View/download PDF
29. Testing of the assumptions made in estimating the extent of futile cycling
- Author
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Wajngot, A., primary, Chandramouli, V., additional, Schumann, W. C., additional, Kumaran, K., additional, Efendic, S., additional, and Landau, B. R., additional
- Published
- 1989
- Full Text
- View/download PDF
30. ChemInform Abstract: DIE PHOTOCHEMIE VON 1,1,2,2‐TETRAPHENYL‐AETHAN, EINE DI‐PI‐AETHAN‐RK.
- Author
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SCHUMANN, W. C., primary, VASHI, D. B., additional, ROSS, J. A., additional, and BINKLEY, R. W., additional
- Published
- 1972
- Full Text
- View/download PDF
31. Gluconeogenesis and glucuronidation in liver in vivo and the heterogeneity of hepatocyte function.
- Author
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Ekberg, K, Chandramouli, V, Kumaran, K, Schumann, W C, Wahren, J, and Landau, B R
- Abstract
In order to examine metabolic zonation in human liver, [2-14C]glycerol, which labels carbons 2 and 5 of glucose-6-P, and [1-14C]lactate, which labels carbons 3 and 4 of glucose-6-P, in the process of gluconeogenesis, were infused intravenously into healthy subjects who ingested acetaminophen and had fasted 36 h. Distributions of 14C were determined in glucose in blood and in the glucuronic acid moiety of acetaminophen glucuronide excreted in urine. Ratios of 14C in carbons 2 and 5 to 14C in carbons 3 and 4 were significantly higher in blood glucose than in glucuronide. Since glucose and glucuronic acid are formed from glucose-6-P in liver without randomization of carbon, the differences in the ratios indicate that the pool of glucose-6-P in liver is not homogeneous. The glucuronide sampled glucose-6-P with more label from lactate than glycerol compared to the glucose-6-P sampled by the glucose. The apparent explanation is the greater decrease in glycerol compared with lactate concentration as blood streams from the periportal to the perivenous zones of the liver lobule. Glucuronidation is then expressed in humans relatively more in the perivenous than periportal zones and gluconeogenesis from glycerol more in the periportal than perivenous zones.
- Published
- 1995
32. Contribution of gluconeogenesis and glycogenolysis to hepatic glucose production in acromegaly before and after pituitary microsurgery.
- Author
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Höybye C, Chandramouli V, Efendic S, Hulting AL, Landau BR, Schumann WC, and Wajngot A
- Subjects
- Acromegaly blood, Acromegaly surgery, Adenoma blood, Adenoma metabolism, Adenoma surgery, Blood Glucose metabolism, Female, Human Growth Hormone blood, Humans, Insulin-Like Growth Factor I analysis, Male, Microsurgery, Middle Aged, Pituitary Neoplasms blood, Pituitary Neoplasms metabolism, Pituitary Neoplasms surgery, Acromegaly metabolism, Gluconeogenesis physiology, Glucose metabolism, Glycogenolysis physiology, Liver metabolism, Pituitary Gland surgery
- Abstract
The diabetogenic effect of excess growth hormone (GH) such as that in acromegaly is well known. However, the contribution of the various components to hepatic glucose production (HGP) is not completely understood. In this study we evaluated insulin resistance, HGP, gluconeogenesis (GNG), and glycogenolysis (GLY) in five patients with acromegaly before and after pituitary microsurgery. Insulin resistance was estimated by the HOMA index. HGP was measured using a primed continuous (6,6- 2H2) glucose infusion, and GNG was measured from 2 H enrichment at carbons 2 and 5 of blood glucose on ingestion of 2H2O. The ratio of these enrichments equals the fractional contribution of GNG to HGP, and GLY was calculated as the difference between HGP and GNG. All measurements were performed after 12 hours of fasting. Levels of GH and IGF-I decreased, as did the HOMA index (p<0.05). HGP was reduced from 11.4 micromol/kg/min to 9.7 micromol/kg/min (p=0.032). GNG contributed most to HGP. GNG was unchanged, whereas GLY's fraction decreased 29% (p=0.056) postoperatively. This pilot study indicates that GNG is the main contributor to HGP and that GLY is more sensitive than is GNG to the insulin resistance existing in acromegaly.
- Published
- 2008
- Full Text
- View/download PDF
33. Sources of blood glycerol during fasting.
- Author
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Jensen MD, Chandramouli V, Schumann WC, Ekberg K, Previs SF, Gupta S, and Landau BR
- Subjects
- Adult, Body Water metabolism, Carbon Radioisotopes, Deuterium, Humans, Kinetics, Lipoproteins, VLDL blood, Male, Triglycerides blood, Water, Fasting, Glycerol blood
- Abstract
To determine the source(s) of blood and very low density lipoprotein (VLDL)-triglyceride glycerol during fasting, four men ingested (2)H(2)O from 14 to 20 h into a 60-h fast to achieve ~0.5% body water enrichment. At 60 h of fasting, glycerol flux was measured using [2-(14)C]glycerol. Blood was taken for measurement of (2)H enrichment at carbon 6 of glucose and at carbon 3 of free glycerol and VLDL-triglyceride glycerol. (2)H enrichment of the 2 hydrogens bound to carbon 3 of VLDL-triglyceride glycerol was 105 +/- 2% of the (2)H enrichment of the 2 hydrogens bound to carbon 6 of glucose, indicating isotopic equilibrium between hepatic glyceraldehyde 3-P and glycerol 3-P. The (2)H enrichment of the 2 hydrogens bound to carbon 3 of free glycerol was 17 +/- 3% of VLDL-triglyceride glycerol, indicating that a significant percentage of free glycerol in blood originated from the hydrolysis of circulating VLDL-triglyceride or a pool of glycerol with similar (2)H enrichment. Glycerol flux was 6.3 +/- 1.1 micromol. kg(-1). min(-1). Glycerol appearing from nonadipose tissue sources was then approximately 1.1 micromol. kg(-1). min(-1). Seven other subjects were fasted for 12, 42, and 60 h. A small percentage of glycerol in the circulation after 12 h of fasting was enriched with (2)H. The enrichment of the 2 hydrogens bound to carbon 3 of free glycerol in the longer periods of fasting was approximately 16% of the enrichment of the 2 hydrogens bound to carbon 6 of glucose. Therefore, as much as 15-20% of systemic glycerol turnover during fasting is not from lipolysis of adipose tissue triglyceride.
- Published
- 2001
- Full Text
- View/download PDF
34. Determination of the enrichment of the hydrogen bound to carbon 5 of glucose on 2H2O administration.
- Author
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Schumann WC, Gastaldelli A, Chandramouli V, Previs SF, Pettiti M, Ferrannini E, and Landau BR
- Subjects
- Deuterium administration & dosage, Formaldehyde chemistry, Gluconeogenesis, Methenamine chemistry, Xylose chemistry, Carbon chemistry, Deuterium chemistry, Glucose chemistry, Hydrogen analysis, Hydrogen chemistry, Water chemistry
- Published
- 2001
- Full Text
- View/download PDF
35. Quantitative contributions of gluconeogenesis to glucose production during fasting in type 2 diabetes mellitus.
- Author
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Wajngot A, Chandramouli V, Schumann WC, Ekberg K, Jones PK, Efendic S, and Landau BR
- Subjects
- Deuterium, Fasting metabolism, Female, Humans, Male, Middle Aged, Diabetes Mellitus, Type 2 metabolism, Gluconeogenesis, Glucose metabolism
- Abstract
Contributions of gluconeogenesis to glucose production were determined between 14 to 22 hours into a fast in type 2 diabetics (n = 9) and age-weight-matched controls (n = 7); ages, 60.4 +/- 2.3 versus 55.6 +/- 1.2 years and body mass indices (BMI) 28.6 +/- 2.3 versus 26.6 +/- 0.8 kg/m2. Production was measured using a primed-continuous [6,6-2H2]glucose infusion and gluconeogenesis from 2H enrichment at carbons 2 and 5 of blood glucose on 2H2O ingestion. Plasma glucose concentration declined from 9.6 +/- 0.6 at 14 hours to 7.3 +/- 0.6 at 22 hours in the diabetics (P = .001) and from 5.4 +/- 0.1 to 5.0 +/- 0.1 in the controls (P < .05). Production from the 17th to 22nd hour declined 27.1% +/- 0.6% in the diabetics versus 18.5% +/- 0.8% in the controls (P = .001); from 10.4 +/- 0.3 to 7.6 +/- 0.2 versus 10.0 +/- 0.4 to 8.2 +/- 0.4 micromol/kg/min. Percent contributions of gluconeogenesis to production measured at 1 1/2 to 2-hour intervals beginning the 15th hour were 6.8% +/- 1.0% more in the diabetics than controls. The quantity of glucose contributed by gluconeogenesis declined 19.8% +/- 3.8% (P < .001) in the diabetics and 6.9% +/- 2.3% in the controls (P = .05); 7.21 +/- 0.32 to 5.74 +/- 0.26 versus 6.20 +/- 0.28 to 5.75 +/- 0.24 micromol/kg/min. The contribution of glycogenolysis to production, estimated from the difference between production and gluconeogenesis, declined to the same extent in diabetic and control subjects, 40.7% +/- 6.6% and 37.7% +/- 4.1%; from 3.23 +/- 0.35 to 1.86 +/- 0.26 versus 3.81 +/- 0.22 to 2.42 +/- 0.28 micromol/kg/min. Thus, gluconeogenesis contributed more to glucose production in the diabetic than control subjects. Production and the contribution of gluconeogenesis declined more in the diabetic subjects during the fast. The factors regulating these changes remain uncertain.
- Published
- 2001
- Full Text
- View/download PDF
36. A probing dose of phenylacetate does not affect glucose production and gluconeogenesis in humans.
- Author
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Wajngot A, Chandramouli V, Schumann WC, Brunengraber H, Efendic S, and Landau BR
- Subjects
- Aged, C-Peptide blood, Citric Acid Cycle, Deuterium, Female, Glucagon blood, Humans, Insulin blood, Kinetics, Male, Middle Aged, Phenylacetates pharmacokinetics, Gluconeogenesis drug effects, Glucose biosynthesis, Phenylacetates administration & dosage, Phenylacetates adverse effects
- Abstract
Phenylacetate ingestion has been used to probe Krebs cycle metabolism and to augment waste nitrogen excretion in urea cycle disorders. Phenylalkanoic acids, including phenylacetate, have been proposed as potential therapeutic agents in the treatment of diabetes. They inhibit gluconeogenesis in the liver in vitro and reduce the blood glucose concentration in diabetic rats. The effect of sodium phenylacetate ingestion on blood glucose and the contribution of gluconeogenesis to glucose production have now been studied in 7 type 2 diabetic patients. The study was not designed to test whether the changes in glucose metabolism observed in the rat could be reproduced in humans. After an overnight fast, over a period of 1 hour, 4.8 g phenylacetate was ingested, which is the highest dose used to probe Krebs cycle metabolism. Glucose production was measured by tracer kinetics using [6,6-(2)H2]glucose and gluconeogenesis by the labeling of the hydrogens of blood glucose on (2)H20 ingestion. The concentration of phenylacetate in plasma peaked by 2 hours after its ingestion, and about 40% of the dose was excreted in 5 hours. The plasma glucose concentration and production, and the contribution of gluconeogenesis to glucose production, were unaffected by phenylacetate ingestion at the highest dose used to probe Krebs cycle metabolism.
- Published
- 2000
- Full Text
- View/download PDF
37. Origins of the hydrogen bound to carbon 1 of glucose in fasting: significance in gluconeogenesis quantitation.
- Author
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Chandramouli V, Ekberg K, Schumann WC, Wahren J, and Landau BR
- Subjects
- Adult, Deuterium Oxide, Drinking, Female, Galactose pharmacology, Gluconeogenesis physiology, Humans, Male, Succinic Acid pharmacology, Blood Glucose chemistry, Carbon chemistry, Fasting blood, Hydrogen chemistry
- Abstract
Healthy subjects ingested (2)H(2)O. (2)H enriched the hydrogen bound to carbon 1 of blood glucose 1.3 to 1.8 times more than the hydrogens bound to carbon 6. Enrichment at carbon 1 was more than at carbon 5 after 14 h, but not after 42 h, of fasting. After overnight fasting, when [2,3-(3)H]succinate was infused, 34 times as much (3)H was bound to carbon 6 as to carbon 1. On [1-(2)H,1-(3)H, 1-(14)C]galactose infusion, the ratios of (2)H to (14)C and of (3)H to (14)C in blood glucose were 30% less than in the galactose. (3)H at carbon 6 was 1% of that at carbon 1 of the glucose. Thus, although the two hydrogens bound to carbon 1 and the two bound to carbon 6 of fructose 6-phosphate (p) during gluconeogenesis are equally enriched in (2)H via pyruvate's equilibration with alanine, one of each is further enriched via hydration of fumarate that is converted to glucose. That hydrogen at carbon 1 of fructose 6-phosphate (P) is also enriched in fructose 6-P's equilibration with mannose 6-P. (2)H from (2)H(2)O at carbon 1 to carbon 2 of blood glucose cannot then quantitate gluconeogenesis because of [1-(2)H]glucose formation during glycogenolysis. Triose-P cycling has a minimal effect on quantitation. (2)H recovery in glucose from [1-(2)H]galactose does not quantitate galactose conversion via UDP-glucose to glycogen.
- Published
- 1999
- Full Text
- View/download PDF
38. Contributions of net hepatic glycogenolysis and gluconeogenesis to glucose production in cirrhosis.
- Author
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Petersen KF, Krssak M, Navarro V, Chandramouli V, Hundal R, Schumann WC, Landau BR, and Shulman GI
- Subjects
- Adult, Deuterium Oxide, Fasting physiology, Female, Humans, Magnetic Resonance Imaging, Magnetic Resonance Spectroscopy, Male, Reference Values, Gluconeogenesis physiology, Glucose biosynthesis, Glycogen metabolism, Liver metabolism, Liver Cirrhosis metabolism
- Abstract
Net hepatic glycogenolysis and gluconeogenesis were examined in normal (n = 4) and cirrhotic (n = 8) subjects using two independent methods [13C nuclear magnetic resonance spectroscopy (NMR) and a 2H2O method]. Rates of net hepatic glycogenolysis were calculated by the change in hepatic glycogen content before ( approximately 11:00 PM) and after ( approximately 7:00 AM) an overnight fast using 13C NMR and magnetic resonance imaging. Gluconeogenesis was calculated as the difference between the rates of glucose production determined with an infusion of [6,6-2H2]glucose and net hepatic glycogenolysis. In addition, the contribution of gluconeogenesis to glucose production was determined by the 2H enrichment in C-5/C-2 of blood glucose after intake of 2H2O (5 ml/kg body water). Plasma levels of total and free insulin-like growth factor I (IGF-I) and IGF-I binding proteins-1 and -3 were significantly decreased in the cirrhotic subjects (P < 0.01 vs. controls). Postprandial hepatic glycogen concentrations were 34% lower in the cirrhotic subjects (P = 0.007). Rates of glucose production were similar between the cirrhotic and healthy subjects [9.0 +/- 0.9 and 10.0 +/- 0.8 micromol. kg body wt-1. min-1, respectively]. Net hepatic glycogenolysis was 3.5-fold lower in the cirrhotic subjects (P = 0.01) and accounted for only 13 +/- 6% of glucose production compared with 40 +/- 10% (P = 0.03) in the control subjects. Gluconeogenesis was markedly increased in the cirrhotic subjects and accounted for 87 +/- 6% of glucose production vs. controls: 60 +/- 10% (P = 0.03). Gluconeogenesis in the cirrhotic subjects, as determined from the 2H enrichment in glucose C-5/C-2, was also increased and accounted for 68 +/- 3% of glucose production compared with 54 +/- 2% (P = 0.02) in the control subjects. In conclusion, cirrhotic subjects have increased rates of gluconeogenesis and decreased rates of net hepatic glycogenolysis compared with control subjects. These alterations are likely important contributing factors to their altered carbohydrate metabolism.
- Published
- 1999
- Full Text
- View/download PDF
39. Quantifying gluconeogenesis during fasting.
- Author
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Chandramouli V, Ekberg K, Schumann WC, Kalhan SC, Wahren J, and Landau BR
- Subjects
- Adult, Deuterium, Female, Humans, Kinetics, Male, Radioisotope Dilution Technique, Blood Glucose metabolism, Deuterium Oxide pharmacokinetics, Fasting physiology, Gluconeogenesis, Glucose metabolism
- Abstract
The use of 2H2O in estimating gluconeogenesis' contribution to glucose production (%GNG) was examined during progressive fasting in three groups of healthy subjects. One group (n = 3) ingested 2H2O to a body water enrichment of approximately 0.35% 5 h into the fast. %GNG was determined at 2-h intervals from the ratio of the enrichments of the hydrogens at C-5 and C-2 of blood glucose, assayed in hexamethylenetetramine. %GNG increased from 40 +/- 8% at 10 h to 93 +/- 6% at 42 h. Another group ingested 2H2O over 2.25 h, beginning at 11 h (n = 7) and 19 h (n = 7) to achieve approximately 0.5% water enrichment. Enrichment in plasma water and at C-2 reached steady state approximately 1 h after completion of 2H2O ingestion. The C-5-to-C-2 ratio reached steady state by the completion of 2H2O ingestion. %GNG was 54 +/- 2% at 14 h and 64 +/- 2% at 22 h. A 3-h [6,6-2H2]glucose infusion was also begun to estimate glucose production from enrichments at C-6, again in hexamethylenetetramine. Glucose produced by gluconeogenesis was 0.99 +/- 0.06 mg.kg-1.min-1 at both 14 and 22 h. In a third group (n = 3) %GNG reached steady state approximately 2 h after 2H2O ingestion to only approximately 0.25% enrichment. In conclusion, %GNG by 2 h after 2H2O ingestion and glucose production using [6,6-2H2]glucose infusion, begun together, can be determined from hydrogen enrichments at blood glucose C-2, C-5, and C-6. %GNG increases gradually from the postabsorptive state to 42 h of fasting, without apparent change in the quantity of glucose produced by gluconeogenesis at 14 and 22 h.
- Published
- 1997
- Full Text
- View/download PDF
40. Quantitation of glycogen/glucose-1-P cycling in liver.
- Author
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Wajngot A, Chandramouli V, Schumann WC, Efendic S, and Landau BR
- Subjects
- Adult, Blood Glucose analysis, Fasting, Galactose pharmacology, Glucuronates metabolism, Humans, Male, Middle Aged, Osmolar Concentration, Time Factors, Glucose metabolism, Glucosephosphates metabolism, Liver metabolism
- Abstract
A method is introduced for quantitating cycling between hepatic glycogen and glucose-1-P in humans. It depends on the administration of trace [2-3H,6-14C]galactose, a glucose load, and acetaminophen. The ratio of 3H to 14C in the glucuronide of the acetaminophen excreted in urine to that in the administered galactose provides the measure of the fraction of glycogen synthesized that is synthesized from glucose-1-P formed from glycogen. The quantity of glucose-1-P formed from glycogen that is not reconverted to glycogen is not measured. It is assumed that the glucuronide samples the UDP-glucose pool in liver from which glycogen is formed, the last glucosyl units formed from UDP-glucose in glycogen synthesis are the first broken down, and the equilibration of [2-3H]glucose-1-P with fructose-6-P is rapid relative to its conversion to UDP-glucose. During a 5-hour period, while three normal subjects and three non-insulin-dependent diabetics, who had fasted overnight, were infused with 4 mg/kg/min of glucose, the rate of glycogen breakdown, as measured using the method, was only a small percentage of the rate of glycogen synthesis.
- Published
- 1991
- Full Text
- View/download PDF
41. Fructose-6-phosphate cycling and the pentose cycle in hyperthyroidism.
- Author
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Magnusson I, Wennlund A, Chandramouli V, Schumann WC, Kumaran K, Wahren J, and Landau BR
- Subjects
- Adult, Blood Glucose analysis, Female, Galactose administration & dosage, Galactose metabolism, Glucose metabolism, Humans, Liver metabolism, Mathematics, Middle Aged, Oxygen Consumption, Random Allocation, Fructosephosphates metabolism, Hyperthyroidism metabolism, Pentoses metabolism
- Abstract
Hepatic fructose-6-phosphate (fructose-6-P) cycling and pentose cycle activity were quantified in hyperthyroid patients. A measure of the fructose-6-P cycle was the incorporation of 14C, on administering [3-3H,6-14C]galactose, into carbon 1 of blood glucose and the 3H/14C ratio in blood glucose. The measure of the pentose cycle was the randomization of 14C to carbon 1 of blood glucose on administering [2-14C]galactose. [2-3H]Galactose was also administered, so the 3H/14C ratio in blood glucose measured the extent of equilibration of glucose-6-P with fructose-6-P. Patients given [3-3H,6-14C]galactose were restudied when euthyroid. Of the 14C from [3-3H,6-14C]galactose, 7.7-9.5% was in carbon 1 of glucose in both states. 3H/14C ratios were also the same in both states. Fructose-6-P cycling was estimated to be 13 +/- 1% the rate of glucose turnover in the euthyroid and 15 +/- 1% that in the hyperthyroid state. The pentose cycle contributed about 2% to glucose utilization, similar to previous estimates in healthy humans. As in healthy individuals, about 25% of 3H was retained in the conversion of [2-3H]glucose-6-P to glucose. Thus, the fractions of glucose turnover participating in hepatic fructose-6-P and pentose cycling are similar in hyperthyroid and healthy subjects. As a result, augmented fructose-6-P cycling does not substantially contribute to increased hepatic oxygen consumption in hyperthyroidism.
- Published
- 1990
- Full Text
- View/download PDF
42. Effects of clofibrate and ethanol on the pathways of initial fatty acid oxidation.
- Author
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Scofield RF, Schumann WC, Kumaran K, and Landau BR
- Subjects
- Acetates metabolism, Animals, Biotransformation, Female, Kinetics, Oxidation-Reduction, Rats, Rats, Inbred Strains, Clofibrate pharmacology, Ethanol pharmacology, Fatty Acids metabolism
- Published
- 1982
- Full Text
- View/download PDF
43. Pathways of hepatic glycogen formation in humans following ingestion of a glucose load in the fed state.
- Author
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Magnusson I, Chandramouli V, Schumann WC, Kumaran K, Wahren J, and Landau BR
- Subjects
- Acetaminophen, Adult, Blood Glucose metabolism, Carbon Radioisotopes, Diflunisal, Female, Glucuronates urine, Humans, Liver drug effects, Male, Food, Glucose, Glycogen biosynthesis, Liver metabolism
- Abstract
The relative contributions of the direct and the indirect pathways to hepatic glycogen formation following a glucose load given to humans four hours after a substantial breakfast have been examined. Glucose loads labeled with [6-(14)C]glucose were given to six healthy volunteers along with diflunisal (1 g) or acetaminophen (1.5 g), drugs excreted in urine as glucuronides. Distribution of 14C in the glucose unit of the glucuronide was taken as a measure of the extent to which glucose was deposited directly in liver glycogen (ie, glucose----glucose-6-phosphate----glycogen) rather than indirectly (ie, glucose----C3-compound----glucose-6-phosphate----glycogen). The maximum contribution to glycogen formation by the direct pathway was estimated to be 77% +/- 4%, which is somewhat higher than previous estimates in humans fasted overnight (65% +/- 1%, P less than 0.05). Thus, the indirect pathway of liver glycogen formation following a glucose load is operative in both the overnight fasted and the fed state, although its contribution may be somewhat less in the fed state.
- Published
- 1989
- Full Text
- View/download PDF
44. On the lack of formation of L-(+)-3-hydroxybutyrate by liver.
- Author
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Scofield RF, Brady PS, Schumann WC, Kumaran K, Ohgaku S, Margolis JM, and Landau BR
- Subjects
- 3-Hydroxybutyric Acid, Animals, Female, Isomerism, Liver drug effects, Male, Palmitic Acid, Palmitic Acids pharmacology, Pregnancy, Rats, Rats, Inbred Strains, Hydroxybutyrates metabolism, Liver metabolism
- Published
- 1982
- Full Text
- View/download PDF
45. Omega oxidation of fatty acids and the pathway of 3-hydroxybutyric acid formation.
- Author
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Schumann WC, Hemmelgarn E, and Landau BR
- Subjects
- Acetoacetates metabolism, Acetyl Coenzyme A metabolism, Animals, Diabetes Mellitus, Experimental metabolism, Female, Kinetics, Mathematics, Rats, Fatty Acids, Nonesterified metabolism, Hydroxybutyrates metabolism
- Published
- 1978
- Full Text
- View/download PDF
46. omega-Oxidation of fatty acids and the acetylation p-aminobenzoic acid.
- Author
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Hemmelgarn E, Schumann WC, Margolis J, Kumaran K, and Landau BR
- Subjects
- Acetylation, Animals, Carbon Radioisotopes, Diabetes Mellitus, Experimental metabolism, Female, Isotope Labeling, Oxidation-Reduction, Rats, 4-Aminobenzoic Acid metabolism, Aminobenzoates metabolism, Fatty Acids metabolism
- Abstract
p-Aminobenzoic acid was fed to normal and alloxan-induced diabetic rats injected with [omega-14C]labeled and [2-14C]labeled fatty acids. The p-acetamidobenzoic acid that was excreted was hydrolyzed to yield acetate which was degraded. The distribution of 14C in the acetates formed when an [omega-14C]labeled fatty acid was injected was similar to that when a [2-14C]labeled fatty acid was injected. This contrasts with the finding that in acetates from 2-acetamido-4-phenylbutyric acid excreted when 2-amino-4-phenylbutyric acid was fed, there was a difference in the distributions of 14C, a difference attributable to omega-oxidation of the fatty acid. Acetylation of p-aminobenzoic acid is then concluded to occur in a different cellular environment than that of 2-amino-4-phenylbutyric acid, one in which omega-oxidation is not functional. When 2-amino-4-phenylbutyric acid was fed and [6-14C]palmitic acid injected, rather than [16-14C]palmitic acid, the distribution of 14C in acetate was the same as when [2-14C]palmitic acid was injected. This indicates that the dicarboxylic acid formed on omega-oxidation of palmitic acid does not undergo beta-oxidation to form succinyl-CoA. Thus, glucose is not formed via omega-oxidation of long-chain fatty acid.
- Published
- 1979
- Full Text
- View/download PDF
47. Ketone body production in diabetic ketosis by other than liver.
- Author
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Scofield RF, Schumann WC, Kumaran K, and Landau BR
- Subjects
- Animals, Female, Hydroxybutyrates urine, Ketone Bodies urine, Liver metabolism, Palmitic Acid, Palmitic Acids metabolism, Rats, Rats, Inbred Strains, Diabetic Ketoacidosis metabolism, Ketone Bodies biosynthesis
- Abstract
To determine if ketone bodies, synthesized from fatty acids by tissues other than the liver, enter the circulation, rats in diabetic ketosis were injected with sodium [6,13-14C]palmitate. Hydroxybutyrate was isolated from the urine excreted by each rat and from an aqueous extract of its carcass. The distribution of 14C in the four carbons of hydroxybutyrate in the extract was the same as in the urine. The ratio of 14C in carbon 1 to carbon 3 of the hydroxybutyrate averaged 1.80 and averaged 1.31 in carbon 2 to carbon 4. Hydroxybutyrate when formed by perfused liver has the same carbon 1-to-carbon 3 ratio as carbon 2-to-carbon 4 ratio. The results indicate that hydroxybutyrate synthesized by tissues other than the liver mixes in the circulation with that synthesized by the liver and a portion of the mix is then excreted in the urine. The difference between the carbon 1-to-3 carbon ratio 3 and carbon 2-to-carbon 4 ratio calculates to an estimated minimum of 15% to 17% of the hydroxybutyrate in the circulation of the ketotic diabetic rat having tissues other than the liver as its source. Assuming the liver and kidneys are the sources of the ketone bodies in diabetic ketosis, the ketone bodies produced by the kidneys are not excreted into the urine without first entering the circulation.
- Published
- 1983
- Full Text
- View/download PDF
48. A chemical degradation of 3-hydroxybutyric acid.
- Author
-
Schumann WC, Kumaran K, and Landau BR
- Subjects
- Acetates metabolism, Animals, Butyrates metabolism, Carbon Radioisotopes, Chemical Phenomena, Chemistry, Diabetes Mellitus, Experimental metabolism, Diabetic Ketoacidosis metabolism, Isotope Labeling methods, Lauric Acids metabolism, Palmitic Acids metabolism, Rats, Hydroxybutyrates metabolism
- Published
- 1978
- Full Text
- View/download PDF
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