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Die Biochemie des intermediären Stoffwechsels

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Der Stoffwechsel II

Part of the book series: Handbuch der Allgemeinen Pathologie ((1710,volume 4 / 2))

Zusammenfassung

Unter dem intermediären Stoffwechsel versteht man alle Stoffwechselprozesse, die sich in den Zellen und Geweben des Organismus abspielen. Er umfaßt also alle Veränderungen, welche die körpereigenen Substanzen durchmachen, und alle Veränderungen, welche die Nährstoffe nach ihrer Resorption aus dem Magen-Darmtrakt erleiden.

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Literatur

  1. Abdou, I. A. and H. Tarver jr.: Plasma protein. Loss from circulation and catabolism to carbon dioxyde. J. of Biol. Chem. 190, 769, 781 (1951).

    CAS  Google Scholar 

  2. Abrams, A., and H. Boxsook: The conversion of L-Histidine to glutamic acid by liver enzymes. J. of Biol. Chem. 198, 205 (1952).

    CAS  Google Scholar 

  3. Allfrey, V. G., A. E. Mirsity and H. Stern: The chemistry of the cell nucleus. Adv. Enzymol. 16, 411 (1955).

    CAS  Google Scholar 

  4. Awapara, J., and H. N. Marvin: The relative absorption of intravenously administred amino acids by the liver, kidney and muskle of the rat. J. of Biol. Chem. 178, 691 (1948).

    Google Scholar 

  5. Bach, S. J.: The metabolism of protein constituents in the mammalian body. Oxford 1952.

    Google Scholar 

  6. Baddiley, J.: The structure of Coenzyme A. Adv. Enzymol. 16, 1 (1955).

    CAS  Google Scholar 

  7. Barron, E. S. G.: Modern Trends in Physiology and Biochemistry. New York 1952.

    Google Scholar 

  8. Becker, C. E., and H. G. Day: Utilization of Glucosone and the synthesis of Glucosamine in the rat. J. of Biol. Chem. 201, 795 (1953).

    CAS  Google Scholar 

  9. Bennett, E. L., and B. J. Krueckel: Renewal of nucleotides and nucleic acids in C57 mice studied with Adenine-4,6-C14. Biochim. et Biophysica Acta 17, 503 (1955).

    CAS  Google Scholar 

  10. Bennett, E. L., and B. J. Krueckel: The incorporation of Adenine-4,6-C14 into acid-soluble nucleotides in Cdoerschuk, A. P.: Biophysica Acta 17, 515 (1955).

    CAS  Google Scholar 

  11. Berg, C. P.: Physiology of the D-Amino acids. Physiologic. Rev. 33, 145 (1953).

    CAS  Google Scholar 

  12. Bergström, S., and R. T. Holman- Lipoxidase and the autoxidation of unsaturated fatty acids. Adv. Enzymol. 8, 425 (1948).

    Google Scholar 

  13. Bernstein, R. E.: Nature (Lond.) 172, 911 (1953).

    CAS  Google Scholar 

  14. Blascrko, H.: The amino acid Decarboxylases of mammalian tissue. Adv. Enzymol. 5, 67 (1945).

    Google Scholar 

  15. Borsook, H.: The biosynthesis of proteins and peptides including isotopic tracer studies. Fortschr. Chem. organ. Naturstoffe 9, 292 (1952).

    CAS  Google Scholar 

  16. Borsook, H: Enzymatic synthesis of Peptide bonds. In: Chemical pathways of metabolism, herausgeg. von D. M. Greenberg, Bd. II, S. 173. New York 1954.

    Google Scholar 

  17. Borsook, H., A. Abrams and P. H. Lowy: Fructose-aminoacids in liver: stimuli of amino acid incorporation in vitro. J. of Biol. Chem. 215, 111 (1955).

    Google Scholar 

  18. Borsook, H., C. L. Deasy, A. J. Haagen-Smit, G. Keighley and P. H. Lowy: The degradation of L-Lysine in guinea pig liver homogenate: formation of a-aminoadipic acid. J. of Biol. Chem. 176, 1383 (1948).

    CAS  Google Scholar 

  19. Bostroem, H.: On the metabolism of the sulfate group of Chondroitinsulfuric acid. J. of Biol. Chem. 196, 477 (1952).

    Google Scholar 

  20. Bostroem, H., and B. Miinsson: On the enzymatic exchange of the sulfate group of Chondroitinsulfuric acid in slices of cartilage. J. of Biol. Chem. 196, 483 (1952).

    Google Scholar 

  21. Breusch, F. L.: The biochemistry of fatty acid catabolism. Adv. Enzymol. 8, 343 (1948).

    CAS  Google Scholar 

  22. Brown, G. B.: Precursors of nucleic acids. J. Cellul. a. Comp. Physiol. 38, Suppl. 1, 121 (1951).

    Google Scholar 

  23. Brugsch, J.: Hämoglobin, der rote Blutfarbstoff. Leipzig 1950.

    Google Scholar 

  24. Bücher, T.: Probleme der Energieübertragung in lebenden Zellen. Adv. Enzymol. 14, 1 (1953).

    Google Scholar 

  25. Cantoni, G. L.: S-Adenosylmethionin. A new intermediate formed enzymatically from L-Methionine and Adenosintriphosphate. J. of Biol. Chem. 204, 403 (1953).

    CAS  Google Scholar 

  26. Caputto, R., L. Leloir, R. E. Trucco, C. E. Cardini and A. C. Paladini: The enzymatic conversion of Galactose into Glucose derivates. J. of Biol. Chem. 179, 498 (1949).

    Google Scholar 

  27. Caputto, R., and R. E. Trucco: A new Galactose-containing compound from mammary gland. Nature (Lond.) 169, 1061 (1952).

    CAS  Google Scholar 

  28. Caspersson, T. O.: Cell growth and cell function. New York 1950.

    Google Scholar 

  29. Chaikoff, I. L., and G. W. Brown jr.: Fat metabolism and Acetoacetate formation. In: Chemical pathways of metabolism. Bd. I, S. 277. New York 1954.

    Google Scholar 

  30. Chaikoff, I. L., and D. B. Zilversmith: Radioactive Phosphorus: its application to the study of phospholipoid metabolism. Adv. Biol. a. Med. Physics 1, 322 (1948).

    Google Scholar 

  31. Challenger, F.: Biological methylations. Adv. Enzymol. 12, 429 (1951).

    CAS  Google Scholar 

  32. Chargaff, E.: Chemical specifity of nucleic acids an mechanism of their enzymatic degradation. Experientia (Basel) 6, 201 (1950).

    Google Scholar 

  33. Chou, T. C., and M. Sodak: The acetylation of n-Glucosamine by pigeon liver extracts. J. of Biol. Chem. 196, 105 (1952).

    CAS  Google Scholar 

  34. Christensen, H. N., T. R.Riggs, H. Fisher and I. M. Palatine: Amino acid concentration by a free cell neoplasm: relations among amino acids. J. of Biol. Chem 198, 1, 17 (1952)

    Google Scholar 

  35. Christman, A. A.: Purine and Pyrimidine metabolism. Physiologic. Rev. 32, 303 (1952).

    Google Scholar 

  36. Claude, A.: Proteins, lipids and nucleic acids in cell structures and function. Adv. Protein Chem. 5, 423 (1949).

    CAS  Google Scholar 

  37. Cohen, P. P.: Nitrogen metabolism of amino acids. In: Chemical Pathways of metabolism, herausgeg. von D. M. Greenberg, Bd. II, S. 1. New York 1954.

    Google Scholar 

  38. Cohen, S. S.: Other pathways of Carbohydrate metabolism. In: Chemical pathways of metabolism, herausgeg. von D. M. Greenberg, Bd. I, S. 173. New York 1954.

    Google Scholar 

  39. Colowlcx, S. P.: Transphosphorylating Enzymes of fermentation. In: The Enzymes von J. B. Sumner u. K. Myrbäck, Bd. II/1, S. 114. New York 1951.

    Google Scholar 

  40. Cori, C. G.: Glycogen breakdown and synthesis in animal tissues. Endocrinology 26, 285 (1940).

    CAS  Google Scholar 

  41. Cori, G. T., and C. F. Cori: Crystalline muskel Phosphorylase. J. of Biol. Chem. 151, 57 (1943).

    CAS  Google Scholar 

  42. Davis, B. D.: Intermediates in amino acid biosynthesis. Adv. Enzymol. 16, 247 (1955).

    CAS  Google Scholar 

  43. Dickens, F.: Anaerobic glycolysis, respiration and the Pasteur effect. In: The Enzymes von J. B. Sumner u. K. Myrbäck, Bd. II/1, S. 614. New York 1951.

    Google Scholar 

  44. Dickens, F., and G. E. Glocx: Direct oxidation of Glucose-6-phosphate, 6-Phosphogluconate and Pentose5-phosphate by enzymes of animal origin. Biochemic. J. 50, 81 (1951).

    CAS  Google Scholar 

  45. Doerschuk, A. P.: Some studies on the metabolism of Glycerol-1-C14. J. of Biol. Chem. 193, 39 (1951).

    CAS  Google Scholar 

  46. Doerschuk, A. P.: Radio-tracer studies of the biosynthesis of conjugated D-Glucuronic acid. J. of Biol. Chem. 195, 855 (1952).

    CAS  Google Scholar 

  47. Doerschuk, A. P.: Mechanism studies of Glycogen and Glyceride-Glycerol biosynthesis. J. of Biol. Chem. 196, 423 (1952).

    CAS  Google Scholar 

  48. Dorfman, R. I.: In vivo metabolism of neutral steroid hormones. J. Clin. Endocrin. a. Metabolism 14, 318 (1954).

    CAS  Google Scholar 

  49. Dorfman, R. I., and F. Ungar: Metabolism of steroid hormones. Minneapolis 1953.

    Google Scholar 

  50. Douglas, J. F., and C. G. King: The conversion of C14-labeled Glucose to Glucuronic acid in the guinea pig. J. of Biol. Chem. 202, 865 (1953).

    CAS  Google Scholar 

  51. Pounce, A. L.: The significance of enzyme studies on isolated cell nuclei. Internat. Rev. Cytology 3, 199 (1954).

    Google Scholar 

  52. Drabkin, D. L.: Metabolism of the Hemin-Chromoproteins. Physiologic. Rev. 31, 345 (1951).

    CAS  Google Scholar 

  53. Edlbacher, S.: Histidase and Urocaninase. Erg. Enzymforsch. 9, 131 (1943).

    CAS  Google Scholar 

  54. Eisenberg jr., F.: The formation of Glucose and Glucuronic acid from Lactate-3-C14 in vitro. J. of Biol. Chem. 212, 501 (1955).

    CAS  Google Scholar 

  55. Fink, R. M., K. Fink and R. B. Henderson: Amino acid formation by tissue slices incubated with pyrimidines. J. of Biol. Chem. 201, 349 (1953).

    CAS  Google Scholar 

  56. Forker, L. L., I. L. Chaikoff and W. O. Reinhard: Circulation of plasma proteins: their transport to Lymph. J. of Biol. Chem. 197, 625 (1952).

    CAS  Google Scholar 

  57. Fromageot, C.: Oxidation of organic Sulfur in animals. Adv. Enzymol. 7, 369 (1947).

    CAS  Google Scholar 

  58. Fromageot, C.: The metabolism of Sulfur and its relations to general metabolism. Harvey Lect. 1953/54.

    Google Scholar 

  59. Fuxushima, D. K., and R. S. Rosenfeld: Sterol and steroid metabolism. In: Chemical pathways of metabolism, herausgeg. von D.M. Green-Berg Bd. I, S. 349. 1954.

    Google Scholar 

  60. Gale, E. F.: The accumulation of amino-acids within staphylococcal cells. Symposia Soc. Exper. Biol. 1954.

    Google Scholar 

  61. Granick, S.: The chemistry and functioning of the mammalian Erythrocyte. Blood 4, 404 (1949).

    PubMed  CAS  Google Scholar 

  62. Green, D. E.: Enzymes in metabolic sequences. In: Chemical pathways of metabolism, herausgeg. von D. M. Greenberg, Bd. I, S. 27. 1954.

    Google Scholar 

  63. Green, D. E., and H. Beinert Xanthine oxidase a molybdoflavoprotein. Biochim. et Biophysica Acta 11, 599 (1953).

    CAS  Google Scholar 

  64. Greenberg, D. M.:Carbon catabolism of amino acids. In Chemical pathways of metabolism, herausgeg. von D. M. Greenberg, Bd. II, S. 47. New York 1954.

    Google Scholar 

  65. Greenberg, D. M.: Synthetic processes involving amino acids. In Chemical pathways of metabolism, herausgeg. von D. M.Greenberg, Bd. II, S. 113. New York 1954.

    Google Scholar 

  66. Greenberg, D. M.: Metabolism of Fulfur containing compounds. In: Chemical pathways of metabolism, herausgeg. von D. M. Greenberg, Bd. II, S. 149. New York 1954. Greenberg, G. R., L. Jänicke and M. Silverman: On the occurence of N-Formyltetrahydrofolic acid by enzymic formylation of Tetrahydrofolic acid and on the mechanism of this reaction. Biochim. et Biophysica Acta 17, 589 (1955).

    Google Scholar 

  67. Gross, J., and R. Pitt-Rivers: Recent knowledge of the biochemistry of the thyroid gland. Vitamins a. Hormones 11, 159 (1953).

    CAS  Google Scholar 

  68. Guggenheim, M.: Die biogenen Amine, 4. Aufl., S. 349. Basel u. New York 1951.

    Google Scholar 

  69. Gunsalus, I. C.: Oxidative and transfer reactions of Lipoic acid. Federat. Proc. 13, 751 (1954).

    Google Scholar 

  70. Gutman, A. B.: Some recent advances in the study of Uric acid metabolism an Gout. Bull. New York Acad. Med. 27, 144 (1951).

    CAS  Google Scholar 

  71. Hahn, P. F.: The use of radioactive isotopes in the study of Iron and. Hemoglobin metabolism and the physiology of the Erythrocyte. Adv. Biol. a. Med. Physics 1, 288 (1948).

    Google Scholar 

  72. Hayaiski, O., and A. Kornberg: Metabolism of Cytosine, Thymine, Uracil and Barbituric acid by bacterial enzymes. J. of Biol. Chem. 197, 717 (1952).

    Google Scholar 

  73. Hegsted, D. M., N. Zamchek, C. F. Wang and M. B. Black: Studies on protein deficiency and temperature in relation to edema. Symposia on Nutrition 2, 238 (1950).

    Google Scholar 

  74. Heidelberger, C., E P Abraham and S. Lepxovsky: Tryptophane metabolism. II. Concerning the mechanism of the mammalian conversion of Tryptophane into Nicotinic acid. J. of Biol. Chem. 179, 151 (1949).

    CAS  Google Scholar 

  75. Heidelberger, C., M. E. Gullberg, A. F. Morgan and S. Lepkovsky: Tryptophane metabolism. I. Concerning the mechanism of the mammalian conversion of Tryptophane into Kynurenine, Kynurenic acid and Nicotinic acid. J. of Biol. Chem. 179, 143 (1949).

    CAS  Google Scholar 

  76. Heppel, L. A.: Nucleotides and Nucleosides. In: Chemical pathways of metabolism, herausgeg. von D. M. Greenberg Bd. II, S. 263. New York 1954.

    Google Scholar 

  77. Hehre, E. J.: Enzymic synthesis of Polysaccharides. Adv. Enzymol. 11, 297 (1951).

    CAS  Google Scholar 

  78. Hess, G. H.: The conversion of Fructose-1C and Sorbitol-1-C14 to liver and muscle Glycogen in the rat. J. of Biol. Chem. 214, 373 (1955).

    Google Scholar 

  79. Hoffmann-Ostenhof, O.: Enzymologie. Wien 1954.

    Google Scholar 

  80. Holter, H.: Localization of enzymes in Cytoplasm. Adv. Enzymol.! 3, 1 (1952). HOLTZ, P.: Fermentative Aminbildung aus Aminosäuren. Erg. Physiol. 44, 230 (1941).

    Google Scholar 

  81. Holzer, H.: Ober Fermentketten und ihre Bedeutung für die Regulation des Kohlenhydratstoffwechsels. 4. Kolloquium der Ges. für Physiologische Chemie 1953 in Mosbach. Berlin-Göttingen-Heidelberg 1953.

    Google Scholar 

  82. Holzer, H., u. E. Holzer: Bestimmung stationärer Triosephosphat-Konzentrationen in lebender Hefe. Ein Beitrag zum Mechanismus des Pasteur-Effektes. Z. physiol. Chem. 292, 232 (1953).

    CAS  Google Scholar 

  83. Horecker, B. L., and A. H. Mehler: Carbohydrate Metabolism. Annual Rev. Biochem. 24, 207 (1955).

    CAS  Google Scholar 

  84. Horowitz, H. H., and C. G. King: Glucuronic acid as a precursor of Ascorbic acid in the albino rat. J. of Biol. Chem. 205, 815 (1953).

    CAS  Google Scholar 

  85. Hubener, H. J.: Der Stoffwechsel von Nebennierenrinden-Hormonen und verwandten Steroiden. 5. Kolloquium der Ges. für Physiologische Chemie in Mosbach 1954, S. 212. Berlin-Göttingen-Heidelberg 1955.

    Google Scholar 

  86. Huennekens, F. M., R. E. Basford and B. W. Gabrio: An oxydase for reduced diphosphopyridinnucleotid. J. of Biol. Chem. 213, 951 (1955).

    CAS  Google Scholar 

  87. Huennekens, F. M. H. R. Mahler and J. Nordmann:. Studies on the cyclo-phorase system. XVI, XVII. Arch. of Biochem. 30, 66, 76 (1951).

    Google Scholar 

  88. Jänicke, L.: Occurence of N10-Formyltetrahydrofolic acid and its general involvment in transformylation. Biochim. et Biophysica Acta 17, 588 (1955).

    Google Scholar 

  89. Kalckar, H. M.: The enzymes of nucleoside metabolism. Fortschr. Chem. organ. Naturstoffe 9, 363 (1952).

    CAS  Google Scholar 

  90. Kamin, H., and P. Handler: Effect of infusion of single amino acids upon excretion of other amino acids. Amer. J. Physiol. 164, 654 (1951).

    PubMed  CAS  Google Scholar 

  91. Kaplan, N. O.: Thermodynamics and mechanism of the Phosphate Bond. In: The Enzymes von J. B. Sumner u. K. MYRBÄCK, Bd. II/1, S. 55. New York 1951.

    Google Scholar 

  92. Kisliuk, R. L., and W. Sakami: A study of the mechanism of Serine biosynthesis. J. of Biol. Chem. 214, 47 (1955).

    CAS  Google Scholar 

  93. Knobloch, H.: Die Antivitamine. Erg. Enzymforsch. 11, 67 (1950).

    CAS  Google Scholar 

  94. Kornberg, A., and W. E. Price jr.: Enzymatic esterification of cc-Glycerophosphate by long chain fatty acids. J. of Biol. Chem. 204, 345 (1953).

    CAS  Google Scholar 

  95. Krebs, H. A.: The intermediary stages in the biological oxidation of Carbohydrates. Adv. Enzymol. 3, 191 (1943). The tricarboxylic cycle. In: Chemical pathways of metabolism, herausgeg. von D. M. Greenberg, Bd. I, S. 109. New York 1954.

    Google Scholar 

  96. Küsna, J.: Grundzüge der Physiologie und Pathologie des Kohlenhydratstoffwechsels. In Handbuch der inneren Medizin, herausgeg. G. v. Bergmann, W. Frey u. H. Schwiegk, 4. Aufl., Bd. VII/2. Berlin-Göttingen-Heidelberg 1954.

    Google Scholar 

  97. Landon, E. J., and D. M. Greenberg: J. of Biol. Chem. 209, 493 (1954).

    CAS  Google Scholar 

  98. Lang, K.: Der intermediäre Stoffwechsel. Berlin-Göttingen-Heidelberg 1952. Die Biologie der Enzyme. 4. Kolloquium der Ges. für Physiologische Chemie 1953 in Mosbach. BerlinGöttingen-Heidelberg 1953.

    Google Scholar 

  99. Lang, K.: Über die biologische Wirkung racemischer Aminosäuren. Colloque sur les acides aminés. Basel u. New York 1954.

    Google Scholar 

  100. Lang, K.: Die Fermentsysteme der Zelle. Klin. Wschr. 1955, 300.

    Google Scholar 

  101. Lang, K., u. O. R. Ranke: Stoffwechsel und Ernährung. BerlinGöttingen-Heidelberg 1950.

    Google Scholar 

  102. Lang, K., u. G. Schmid: Über Prolinoxydase. Biochem. Z. 322, 1 (1951).

    PubMed  CAS  Google Scholar 

  103. Lang, K., u. G. Siebert: Die chemischen Leistungen der morphologischen Zellelemente. In Physiologische Chemie, Lehr-und Handbuch B. Flaschenträger u. E. Lehnartz, Bd. II/1 b, S. 1064. Berlin-Göttingen-Heidelberg 1954.

    Google Scholar 

  104. Lanyar, F.: Über experimentelle Alkaptonurie der weißen Maus. Z. physiol. Chem. 275, 225 (1942).

    CAS  Google Scholar 

  105. Lanyar, F.: Über experimentelle Alkaptonurie bei der weißen Ratte. Z. physiol. Chem. 278, 155 (1943).

    CAS  Google Scholar 

  106. Leach, S. J.: The mechanism of enzymic oxidoreduction. Adv. Enzymol. 15, 1 (1954).

    CAS  Google Scholar 

  107. Lemberg, R., and J. W. Legge: Hämatin compounds and bile pigments. New York 1949.

    Google Scholar 

  108. Lerner, A. B.: Metabolism of Phenylalanine and Tyrosine. Adv. Enzymol. 14, 73 (1953).

    CAS  Google Scholar 

  109. Lerner, A. B., and T. B. Fitzpatrick: Biochemistry of Melanin formation. Physiologic. Rev. 30, 91 (1950).

    CAS  Google Scholar 

  110. Lettre, H., u. R. Tschesche: Über Sterine, Gallensäuren und verwandte Verbindungen, 2. Aufl., Bd. I. Stuttgart 1954.

    Google Scholar 

  111. Leuthardt, F., E. Testa u. H. P.Wolf: Der enzymatische Abbau des Fruktose-l-phosphats in der Leber. Helvet. chim. Acta 36, 227 (1953).

    CAS  Google Scholar 

  112. Levy, H., R. W. Jeanloz, R. P. Jacobsen, O. Hechter, V. Schenker and G. Pnncus: Chemical transformations of steroids by adrenal perfusion. J. of Biol. Chem. 211, 867 (1954).

    CAS  Google Scholar 

  113. Lipmann, F.: Metabolic generation and utilization of Phosphate bond energy. Adv. Enzymol. 1, 99 (1941).

    CAS  Google Scholar 

  114. Long, C.: Studies involving Enzymic phosphorylation. The Hexokinase activity of rat tissues. Biochemie. J. 50, 407 (1951).

    Google Scholar 

  115. Lynen, F., and S. Ochoa: Enzymes of fatty acid metabolism. Biochim. et Biophysica Acta 12, 299 (1953).

    CAS  Google Scholar 

  116. Madden, C. S., and G. H. Whipple: Plasma proteins: their source, production and utilization. Physiologic. Rev. 20, 194 (1940).

    CAS  Google Scholar 

  117. Mahler, H. R.: Studies on the fatty acid oxidizing system of animal tissues. IV. The prosthetic group of Buturylcoenzyme A-dehydrogenase. J. of Biol. Chem. 206, 13 (1954).

    CAS  Google Scholar 

  118. Mahler, H. R., and D. G. Elowe: Studies on metalloflavoproteins. II. The role of Iron in Diphosphopyridine Nucleotide Cytochrom cReductase. J. of Biol. Chem. 210, 165 (1954).

    CAS  Google Scholar 

  119. Mahler, H. R., B. Mackler, D. E. Green and R. M. Bock: Studies on metalloflavoproteins. III. Aldehyde Oxidase: a molybdoflavoprotein. J. of Biol. Chem. 210, 465 (1954).

    CAS  Google Scholar 

  120. Mann, T.: Metabolism of semen. Adv. Enzymol. 9, 329 (1949).

    CAS  Google Scholar 

  121. Martius, C.: Die Wirkungsweise des Schilddrüsenhormons. 5. Kolloquium der Ges. für Physiologische Chemie 1954 in Mosbach. Berlin-GöttingenHeidelberg 1955. Der oxydative Endabbau. In Physiologische Chemie. Ein Lehr-und Handbuch von B. Flaschenträger u. E. Lehnartz, Bd. II/2, S. 1026. Berlin-GöttingenHeidelberg 1954.

    Google Scholar 

  122. Martius, C., and F. Lynen: Probleme des Citronensäurecyclus. Adv. Enzymol. 10, 167 (1950).

    Google Scholar 

  123. Mason, H. L., and W. W. Engstrom: The 17-Ketosteroides: their origin, determination and significance. Physiologic. Rev. 30, 321 (1950).

    CAS  Google Scholar 

  124. Meiklejohn, A. P.: The physiology and biochemistry of ascorbic acid. Vitamins a Hormones 11, 62 (1953).

    Google Scholar 

  125. Meister, A.: Transamination. Adv. Enzymol. 16, 185 (1955).

    CAS  Google Scholar 

  126. Meyerhof, O.: New investigations on enzymatic glycolysis and phosphorylation. Experientia (Basel) 4, 169 (1948).

    CAS  Google Scholar 

  127. Michaelis, L.: Theory of Oxidation-Reduction. In: The Enzymes von J. B. Sumner u. K. Myrbäck, Bd. II/1, S. 1. New York 1951.

    Google Scholar 

  128. Moldave, K., and C. Heidelberger: Intramolecular heterogenity in nucleic acid biosynthesis. J. Amer. Chem. Soc. 76, 679 (1954).

    Google Scholar 

  129. Muir, H. M., A. Neuberger and J. C. Peronne: Further isotopic studies on Haemoglobin formation in the rat and rabbit. Biochemie. J. 52, 87 (1952).

    CAS  Google Scholar 

  130. Myrbäck, K., u. G. Neumüller: Stärke und Glykogen. Enzymatische Synthese und Hydrolyse. Erg. Enzymforsch. 12, 1 (1951).

    Google Scholar 

  131. Nachmansohn, D., and I. B. Wilson: The enzymic synthesis and hydrolysis of Acetylcholine. Adv. Enzymol. 12, 259 (1951).

    CAS  Google Scholar 

  132. Ochoa, S.: Biological mechanisms of carboxylation and decarboxylation. Physiologic. Rev. 31, 56 (1951).

    CAS  Google Scholar 

  133. Peters jr., T.: Evidence of intermediate compounds in serum albumin synthesis. J. of Biol. Chem. 200, 461 (1953).

    CAS  Google Scholar 

  134. Pincus, G., and K. V. Thiemann The Hormones, Bd. I. New York 1948.

    Google Scholar 

  135. Racker, E.: Enzymatic synthesis and breakdown of Desoxyribosephosphate. J. of Biol. Chem. 196, 347 (1952).

    CAS  Google Scholar 

  136. Racker, E.: Alternate Pathways of Glucose and Fructose metabolism. Adv. Enzymol. 15, 141 (1954).

    CAS  Google Scholar 

  137. Ratner, S.: Urea synthesis and metabolism of Arginine and Citrulline. Adv. Enzymol. 15, 319 (1954).

    CAS  Google Scholar 

  138. Renold, A. E., A. B. Hastings and F. B. Nesbett: Studies on carbohydrate metabolism in rat liver slices. III. Utilization of Glucose and Fructose by liver from normal and diabetic animals. J. of Biol. Chem. 209, 687 (1954).

    CAS  Google Scholar 

  139. Riggs, T. R., B. Coyne and H. N. Christensen: Intensification of the cellular accumulation of aminoacide by Pyridoxal. Biochim. et Biophysica Acta 11, 303 (1953).

    CAS  Google Scholar 

  140. Roche, J.: Quelques récentes acquisitions sur la biochimie de l’hormone thyroidienne. Expos. ann. Biochim. méd. 13, 145 (1951).

    Google Scholar 

  141. Roche, J., O. Michel, R. Michel and J. Tata: Sur l’élimination de la Trijodthyronine et de laThyroxine et sur leur glycuronconjugation hépatique. Biochim. et Biophysica Acta 13, 471 (1954).

    CAS  Google Scholar 

  142. Rose, W C: Amino acid requirements of man. Federat. Proc. 8, 546 (1949). Rothstein, M., and L. L. Miller: Conversion of Lysine to Pipecolic acid in the rat. J. of Biol. Chem. 211, 851 (1954).

    Google Scholar 

  143. Rothstein, M., and L. L. Miller: Conversion of Lysine to Pipecolic acid in the rat. J. of Biol. Chem. 211, 851 (1954).

    CAS  Google Scholar 

  144. Runnström, J.: The Cytoplasma, its structure, and role in metabolism, growth and differentiation. Modern trends in Physiology and Biochemistry, S. 47. New York 1952.

    Google Scholar 

  145. Sable, H. Z.: Phosphorylation of Ribose and Adenosine in yeast extracts. Proc. Soc. Exper. Biol. a. Med. 75, 215 (1950).

    CAS  Google Scholar 

  146. Samuels, L. T.: The metabolism of androgens by tissues. Recent Progr. in Hormone Res. 4, 65 (1949).

    Google Scholar 

  147. Schachter, D., and J. V. Taggart: Glycine N-Acylase: purification and properties. J. of Biol. Chem. 208, 263 (1954).

    CAS  Google Scholar 

  148. Schettler, G.: Neues vom Cholesterinstoffwechsel. Erg. inn. Med., N. F. 3, 299 (1952).

    CAS  Google Scholar 

  149. Sohoenheimer, R.: The dynamic state of body constituents. Cambridge, Mass. 1941. - Schreier, K.: Die angeborenen Störungen des Eiweißstoffwechsels. In Handbuch der inneren Medizin, herausgeg. von G. V. Bergmann, W. Frey u. H. Schwiegk, 4. Aufl., Bd. VII/2, S. 812. Berlin-Göttingen-Heidelberg 1954.

    Google Scholar 

  150. Schulman, M. P.: Purines and Pyrimidines. In: Chemical pathways of metabolism,herausgeg. D. M. Greenberg Bd. II,S. 223. New York 1954.

    Google Scholar 

  151. Sebrell, W. H., and R. S. Harris: The Vitamins, Bd. II, S. 1 u. S. 268. New York 1954.

    Google Scholar 

  152. Shemin, D.: Some aspects of the biosynthesis of amino acids. Cold Spring Harbor Symp. Quant. Biol. 14, 161 (1950).

    CAS  Google Scholar 

  153. Shemin, D., C. S. Rusell and T. Abramsky: The Succinat-Glycine cycle. I. The mechanism of Pyrrole synthesis. J. of Biol. Chem. 215, 613 (1955).

    CAS  Google Scholar 

  154. Siedel, W.: Gallenfarbstoffe. In Physiologische Chemie, Lehr-und Handbuch von B. Flaschenträger u. E. Lehnartz, Bd. I, S. 909. Berlin-Göttingen-Heidelberg 1950. Der Stoffwechsel der Porphyrine. In Physiologische Chemie, Lehr-And Handbuch von B. Flaschenträger u. E. Lehnartz, Bd. II/1 b, S. 996. Berlin-Göttingen-Heidelberg 1954.

    Google Scholar 

  155. Singer, T. P., and E. B. Kearney: Chemistry, metabolism, and scope of action of the Pyridine Nucleotide Coenzymes. Adv. Enzymol. 15, 79 (1954).

    CAS  Google Scholar 

  156. Sprinson, D. B., and D. Rittenberg: The metabolic activity of the a-, ß-, and y-Hydrogen atoms of L-Leucine and the a,Hydrogen of Glycine. J. of Biol. Chem. 184, 405 (1950).

    Google Scholar 

  157. Stadie, W. C.: Current concepts of the action of Insuline. Physiologic. Rev. 34, 52 (1954).

    CAS  Google Scholar 

  158. Stary, Z.: Stoffwechsel der Phosphatide. In Physiologische Chemie, Lehr-und Handbuch von B. Flaschenträger u. E. Lehnartz, Bd. II/i b, S. 1. Berlin-Göttingen-Heidelberg 1954.

    Google Scholar 

  159. Staudinger, H. J.: Biosynthese der Steroidhormone. 5. Kclloquium der Ges. für Physiologische Chemie 1954 in Mosbach, S. 192. Berlin-Göttingen-Heidelberg 1955.

    Google Scholar 

  160. Stetten, M. R., and D. W. Stetten jr.: Glycogen regeneration in vivo. J. of Biol. Chem. 213, 723 (1955).

    CAS  Google Scholar 

  161. Stumpf, P. K.: Glycolysis. In: Chemical pathways of metabolism, herausgeg. von D. M. Greenberg, Bd. I, S. 67. New York 1954.

    Google Scholar 

  162. Theorell, H.: Heme-linked groups and mode of action of some Hemoproteins. Adv. Enzymol. 7, 265 (1947). - Flavin containing Enzymes. In: The Enzymes von K. MYRBÄCK u. J. B. Sumner, Bd. II/1, S. 335. New York 1951.

    Google Scholar 

  163. Thomas, K.: Fütterungsversuche mit synthetischen Fettsäuren. Gegenwartsprobleme der Ernährungsforschung, S. 125. Basel 1953.

    Google Scholar 

  164. Twombly, G. H.: The synthesis and metabolism of radioactively-labeled Steroids. Vitamins a. Hormones 9, 237 (1951).

    CAS  Google Scholar 

  165. Vannotti, A.: Eisenstoffwechsel. In H. Schwiegk, Künstliche radioaktive Isotope in Physiologie, Diagnostik und Therapie, S. 465. Berlin-Göttingen-Heidelberg 1953. - Porphyrins. London 1954.

    Google Scholar 

  166. Verkade, P. E., J. Van Der Lee u. A. J. S. Van Alphen: Untersuchungen über den Fettstoffwechsel. VIII. Fütterungsversuche an Hunden mit den Natrium-salzen normaler, gesättigter Dicarbonsäuren. Z. physiol. Chem. 250, 47 (1937).

    CAS  Google Scholar 

  167. Vigneaud, V. Du: A trail of research in Sulfur chemistry and metabolism. Ithaca, N. Y. 1952.

    Google Scholar 

  168. Waelsch, H.: Glutamic acid and cerebral function. Adv. Protein Chem. 6, 299 (1951). Certain aspects of intermediary metabolism of Glutamine, Asparagine and Glutathione. Adv. Enzymol. 13, 237 (1952).

    CAS  Google Scholar 

  169. Warburg, O.: Schwermetalle als Wirkungsgruppen von Fermenten. Berlin 1946. Wasserstoff übertragende Fermente. Berlin 1948.

    Google Scholar 

  170. Waymouth, C.: The nutrition of animal cells. Internat. Rev. Cytology 3, 1 (1954).

    CAS  Google Scholar 

  171. Weil-Malherbe, H.: Significance of glutamic acid for metabolism of nervous tissue. Physiologic. Rev. 30, 549 (1950). Der Energiestoffwechsel des Nervengewebes und sein Zusammenhang mit der Funktion. 3. Kolloquium der Ges. für Physiologische Chemie in Mosbach 1952. BerlinGöttingen-Heidelberg 1952.

    Google Scholar 

  172. Weinhouse, S.: Newer pathways of Carbohydrate Metabolism. Diabetes 4, 173 (1955).

    PubMed  CAS  Google Scholar 

  173. Werle, E.: Aminosäuren-Decarboxylasen. Z. Vitamin-, Hormon-u. Fermentforsch. 1 504 (1947/48).

    Google Scholar 

  174. Werle, E.: Aminosäure-Decarboxylasen. Angew. Chem. 63, 550 (1951).

    CAS  Google Scholar 

  175. Wettstein, A.: Advances in the field of adrenal cortical hormones. Experientia (Basel) 10, 397 (1954).

    CAS  Google Scholar 

  176. Whipple, G. H., F. S. Rosscheit-Robbins and L. L. Miller: Blood protein regeneration and interrelation. Ann. New York Acad. Sci. 47, 317 (1946).

    CAS  Google Scholar 

  177. Widmer, C., H. W. Clark, H. A. Neufeld and E. Stotz: Cytochrome components of the soluble SC-factor preparation. J. of Biol. Chem. 210, 861 (1954).

    CAS  Google Scholar 

  178. Williams, R. J., R. E. Eakin, E. Beerstecher jr. and W. Shive: The biochemistry of B Vitamins. New York 1950.

    Google Scholar 

  179. Wiss, O.: Stoffwechsel der Eiweißstoffe und Aminosäuren. In Physiologische Chemie, Lehr-und Handbuch von B. Flaschenträger U. E. Lehnartz, Bd. 1I/2, S. 909. Berlin-Göttingen-Heidelberg 1954.

    Google Scholar 

  180. Woolley, D. W.: Biological antagonisms between structurally related compounds. Adv. Enzymol. 6, 129 (1946).

    CAS  Google Scholar 

  181. Wright, L. D.: Antimetabolites of nucleid acid metabolism. Vitamins a. Hormones 9, 131 (1951).

    CAS  Google Scholar 

  182. Wyngaarden, J. B., and D. W. Stetten jr.: Uricolysis in normal man. J. of Biol. Chem. 203, 9 (1953).

    CAS  Google Scholar 

  183. Zabin, I., and J. F. Mead: The biosynthesis of Sphingosine. J. of Biol. Chem. 211, 87 (1954).

    CAS  Google Scholar 

  184. Zamecnik, P. C.: The use of labeled amino acids in the study of the protein metabolism of normal and malignant tissues: a review. Cancer Res. 10, 659 (1950).

    PubMed  CAS  Google Scholar 

  185. Zeile, K.: Blutfarbstoffe, Häminfermente und Zellhämine. In Physiologische Chemie, Lehr-und Handbuch von B. Flaschenträger U. E. Lehnartz, Bd. I, S. 849. Berlin-GöttingenHeidelberg 1951.

    Google Scholar 

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K. Betke F. Büchner L. Heilmeyer K. Lang D. Lübbers E. Opitz J. Pichotka K. Plötner W. Pribilla H. Schaefer W. Stich W. Volland L. Weissbecker E. Letterer

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Lang, K. (1957). Die Biochemie des intermediären Stoffwechsels. In: Betke, K., et al. Der Stoffwechsel II. Handbuch der Allgemeinen Pathologie, vol 4 / 2. Springer, Berlin, Heidelberg. https://doi.org/10.1007/978-3-642-86170-3_5

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