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Role of Members of the Vitamin B Complex in Enzyme Systems

Published online by Cambridge University Press:  28 February 2007

J. H. Quastel
Affiliation:
Agricultural Research Council Unit of Soil Metabolism, University College, Cardiff
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Abstract

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Type
Meeting Report
Copyright
Copyright © The Nutrition Society 1946

References

Auhagen, E. (1931). Hoppe-Seyl. Z. 204, 149.CrossRefGoogle Scholar
Auhagen, E. (1932). Hoppe-Seyl. Z. 209, 20.CrossRefGoogle Scholar
Axelrod, A. E. and Elvehjem, C. A. (1941). J. biol. Chem. 140, 725.CrossRefGoogle Scholar
Axelrod, A. E., Sober, H. A. and Elvehjem, C. A. (1940). J. biol. chem. 134, 740.CrossRefGoogle Scholar
Baddiley, J. and Gale, E. F. (1945). Nature, Lond., 155, 727.CrossRefGoogle Scholar
Ball, E. G. (1939). J. biol. Chem. 128, 51.CrossRefGoogle Scholar
Banga, I., Ochoa, S. and Peters, R. A. (1939, 1). Biochem. J. 33, 1109.CrossRefGoogle Scholar
Banga, I., Ochoa, S. and Peters, R. A. (1939, 2). Nature, Lond., 143, 764.CrossRefGoogle Scholar
Banga, I., Ochoa, S. and Peters, R. A. (1939, 3). Nature, Lond., 144, 74.CrossRefGoogle Scholar
Barron, E. S. G. and Lyman, C. M. (1939). J. biol. Chem. 127, 143.CrossRefGoogle Scholar
Barron, E. S. G., Lyman, C. M., Lipton, M. A. and Goldinger, J. B. (1941, 1). J. biol. Chem. 141, 957.CrossRefGoogle Scholar
Barron, E. S. G., Lyman, C. M., Lipton, M. A. and Goldinger, J. B. (1941, 2). J. biol. Chem. 141, 975.CrossRefGoogle Scholar
Benoy, M. P. and Elliott, K. A. C. (1937). Biochem. J. 31, 1268.CrossRefGoogle Scholar
Braunstein, A. E. and Asarkh, R. M. (1945). J. biol. Chem. 157, 421.CrossRefGoogle Scholar
Burk, D., Winzler, R. J. and du Vigneaud, V. (1941). J. biol. Chem. 140, xxi.Google Scholar
Corran, H. S., Dewan, J. G., Gordon, A. H. and Green, D. E. (1939). Biochem. J. 33, 1694.CrossRefGoogle ScholarPubMed
Corran, H. S., Green, D. E. and Straub, F. B. (1939). Biochem. J. 33, 793.CrossRefGoogle ScholarPubMed
Davies, R. (1943). Biochem. J. 37, 230.CrossRefGoogle Scholar
Dewan, J. G. and Green, D. E. (1938). Biochem. J. 32, 626.CrossRefGoogle Scholar
Dorfman, A., Berkman, S. and Koser, S. A. (1942). J. biol. Chem. 144, 393.CrossRefGoogle Scholar
du Vigneaud, V. (1942). Science, 96, 455.CrossRefGoogle Scholar
Ellinger, P. and Koschara, W. (1933, 1). Ber. dtsch. chem. Ges. 66, 315.CrossRefGoogle Scholar
Ellinger, P. and Koschara, W. (1933, 2). Ber dtsch. chem. Ges. 66, 808.CrossRefGoogle Scholar
Ellinger, P. and Koschara, W. (1933, 3). Ber. dtsch. chem. Ges. 66, 1411.CrossRefGoogle Scholar
Ellinger, P. and Koschara, W. (1934). Nature, Lond., 133, 553.CrossRefGoogle Scholar
Elvehjem, C. A., Madden, R. J., Strong, F. M. and Woolley, D. W. (1937). J. Amer. chem. Soc. 58, 1767.CrossRefGoogle Scholar
Elvehjem, C. A., Madden, R. J., Strong, F. M. and Woolley, D. W. (1938). J. biol. Chem. 123, 137.CrossRefGoogle Scholar
Elvehjem, C. A., Woolley, D. W., Strong, F. M. and Madden, R. J. (1938). J. biol. Chem. 124, 715.Google Scholar
Emerson, G. A. (1945). J. biol. Chem. 157, 127.CrossRefGoogle Scholar
Euler, H. v., Adler, E. and Günther, G. (1937). Hoppe-Seyl. Z. 249, 1.CrossRefGoogle Scholar
Euler, H. v., Adler, E., Günther, G. and Das, N. B. (1938). Hoppe-Seyl. Z. 254, 61.CrossRefGoogle Scholar
Euler, H. v., Albers, H. and Schlenk, F. (1936, 1). Hoppe-Seyl. Z. 237, 1.CrossRefGoogle Scholar
Euler, H. v., Albers, H. and Schlenk, F. (1936, 2). Hoppe-Seyl. Z. 240, 113.CrossRefGoogle Scholar
Euler, H. v. and Hellström, H. (1938). Hoppe-Seyl. Z. 252, 31.CrossRefGoogle Scholar
Fischer, F. G. and Eysenbach, H. (1937). Liebigs Ann. 530, 99.CrossRefGoogle Scholar
Funk, C. (1913, 1). J. Physiol. 46, 173.CrossRefGoogle Scholar
Funk, C. (1913, 2). Brit. med. J. i, 814.CrossRefGoogle Scholar
Gale, E. F. and Epps, H. M. R. (1942, 1). Biochem. J. 36, 600.CrossRefGoogle Scholar
Gale, E. F. and Epps, H. M. R. (1942, 2). Biochem. J. 36, 619.Google Scholar
Gale, E. F. and Epps, H. M. R. (1943). Nature, Lond., 152, 327.CrossRefGoogle Scholar
Gavrilescu, N., Meiklejohn, A. P., Passmore, R. and Peters, R. A. (1932). Proc. roy. Soc. (B), 110, 431.Google Scholar
Green, D. E. (1936). Biochem. J. 30, 2095.CrossRefGoogle Scholar
Green, D. E., Herbert, D. and Subrahmanyan, V. (1940, 1). J. biol. Chem. 135, 795.CrossRefGoogle Scholar
Green, D. E., Herbert, D. and Subrahmanyan, V. (1940, 2). J. biol. Chem. 138, 327.CrossRefGoogle Scholar
Green, D. E., Leloir, L. F. and Dewan, J. G. (1937). Biochem. J. 31, 934.CrossRefGoogle Scholar
Green, D. E., Moore, D. H., Nocito, N. and Ratner, S. (1944). J. biol. Chem. 156, 383.CrossRefGoogle Scholar
Green, D. E., Westerfeld, W. W., Vennesland, B. and Knox, W. E. (1942). J. biol. Chem. 145, 69.CrossRefGoogle Scholar
Gunsalus, I. C. and Bellamy, W. D. (1944, 1). J. Bact. 47, 413.Google Scholar
Gunsalus, I. C. and Bellamy, W. D. (1942, 2). J. biol. Chem. 155, 357.CrossRefGoogle Scholar
Gunsalus, I. C., Bellamy, W. D. and Umbreit, W. W. (1944). J. biol. Chem. 155, 685.CrossRefGoogle Scholar
György, P. Kuhn, R. and Wagner-Jauregg, T. (1934). Hoppe-Seyl. Z. 223. 241.CrossRefGoogle Scholar
Haas, E., Horecker, B. L. and Hogness, T. R. (1940). J. biol. Chem. 136, 747.CrossRefGoogle Scholar
Harris, S. A. and Folkers, K. (1939). J. Amer. chem. Soc. 61, 1245.CrossRefGoogle Scholar
Hawthorne, J. R. and Harrison, D. C. (1939). Biochem. J. 33, 1573.CrossRefGoogle Scholar
Karrer, P., Schöpp, K. and Benz, F. (1935). Helv. chim. Acta, 18, 426.CrossRefGoogle Scholar
Karrer, P., Schwarzenbach, G., Benz, F. and Solmssen, U. (1936). Helv. chim. Acta, 19, 811.CrossRefGoogle Scholar
Kinneraley, H. W., O'Brien, J. R. and Peters, R. A. (1935). Biochem. J. 29. 2369.CrossRefGoogle Scholar
Klein, J. R. and Kohn, H. I. (1940). J. biol. Chem. 136, 177.CrossRefGoogle Scholar
Knight, B. C. J. G. (1937). Biochem. J. 31, 731.CrossRefGoogle Scholar
Kohn, L. J. and Elvehjem, C. A. (1936). J. Nutrit. 11, 67.CrossRefGoogle Scholar
Krampitz, L. O. and Werkman, C. H. (1941). Biochem. J. 35, 595.CrossRefGoogle Scholar
Krebs, H. A. (1937). Biochem. J. 31, 661.CrossRefGoogle Scholar
Kubowitx, F. and Lüttgens, W. (1941). Biochem. Z. 307, 170.Google Scholar
Kuhn, R., György, P. and Wagner-Jauregg, T. (1933, 1). Ber. dtsch. chem. Ges. 66, 317.CrossRefGoogle Scholar
Kuhn, R., György, P. and Wagner-Jauregg, T. (1933, 2). Ber. dtsch. chem. Ges. 66, 576.CrossRefGoogle Scholar
Kuhn, R., György, P. and Wagner-Jauregg, T. (1933, 3). Ber. dtsch. chem. Ges. 66, 1034.CrossRefGoogle Scholar
Kuhn, R., Reinemund, K., Kaltschmitt, H., Strobele, R. and Trischmann, H. (1935). Naturwissenschaften, 23, 260.CrossRefGoogle Scholar
Kuhn, R. and Rudy, H. (1936). Ber. dtsch. chem. Ges. 69, 2557.CrossRefGoogle Scholar
Kuhn, R., Westphal, K., Wendt, G. G. and Westphal, O. (1939). Naturwissenschaften, 27, 469.CrossRefGoogle Scholar
Lichstein, H. C., Gunsalus, I. C. and Umbreit, W. W. (1945). J. biol. Chem. 161, 311.CrossRefGoogle Scholar
Lipmann, F. (1937). Enzymologia, 4, 65.Google Scholar
Lipmann, F. (1939). Nature. Lond. 143. 436.CrossRefGoogle Scholar
Lipmann, F. (1941). Advanc. Enzymol. l, 99.Google Scholar
Lipton, M. A. and Elvehjem, C. A. (1941). Nature, Lond., 145, 226.CrossRefGoogle Scholar
Lohmann, K. and Schuster, P. (1937). Biochem. Z. 294, 188.Google Scholar
Long, C. (1938). Biochem. J. 32, 1711.CrossRefGoogle Scholar
Long, C. and Peters, R. A. (1939, 1). Biochem. J. 33, 759.CrossRefGoogle Scholar
Long, C. and Peters, R. A. (1939, 2). Biochem. J. 33, 772.CrossRefGoogle Scholar
Mann, P. J. G. and Quastel, J. H. (1940). Nature, Lond., 145, 856.CrossRefGoogle Scholar
Mann, P. J. G. and Quastel, J. H. (1941). Biochem. J. 35, 502.CrossRefGoogle Scholar
Martius, C. and Knoop, F. (1937). Hoppe-Seyl. Z. 246, 1.CrossRefGoogle Scholar
McBurney, C. H., Bollen, W. B. and Williams, R. J. (1935). Proc. nat. Acad. Sci., Wash., 21, 301.CrossRefGoogle Scholar
Michaalis, M. and Quastel, J. H. (1941). Biochem. J. 35, 518.CrossRefGoogle Scholar
Miller, D. R., Lampen, J. O. and Peterson, W. H. (1943). J. Amer. chem. Soc. 65, 2369.CrossRefGoogle Scholar
Negelein, E. and Wulff, H. J. (1937). Biochem. Z. 293, 351.Google Scholar
Ochoa, S. (1939). Biochem. J. 33, 1262.CrossRefGoogle Scholar
Ochoa, S. (1941). J. biol. Chem. 138, 751.CrossRefGoogle Scholar
Ochoa, S. and Rossiter, R. J. (1939). Biochem. J. 33, 2008.CrossRefGoogle Scholar
Passmore, R., Peters, R. A. and Sinclair, H. M. (1933). Biochem. J. 27, 842.CrossRefGoogle Scholar
Pennington, D. E., Snell, E. E. and Eakin, R. E. (1942). J. Amer. chem. Soc. 64, 469.CrossRefGoogle Scholar
Peters, R. A., Rydin, H. and Thompson, R. H. S. (1935). Biochem. J. 29, 53.CrossRefGoogle Scholar
Peters, R. A. and Sinclair, H. M. (1933). Biochem. J. 27, 1910.CrossRefGoogle Scholar
Pilgrim, F. J. and Elvehjem, C. A. (1944). J. biol. Chem. 156, 256.CrossRefGoogle Scholar
Pratt, E. F. and Williams, R. J. (1939). J. gen. Physiol. 22, 637.CrossRefGoogle Scholar
Quastel, J. H., Tennenbaum, M. and Wheatley, A. H. M. (1936). Biochem. J. 30, 1668.CrossRefGoogle Scholar
Quastel, J. H. and Webley, D. M. (1941). Biochem. J. 35, 192.CrossRefGoogle Scholar
Quastel, J. H. and Webley, D. M. (1942). Biochem. J. 36, 8.CrossRefGoogle Scholar
Quastel, J. H. and Wheatley, A. H. M. (1938). Biochem. J. 32, 936.CrossRefGoogle Scholar
Quastel, J. H. and Wooldridge, W. R. (1929). Biochem. J. 23, 128.CrossRefGoogle Scholar
Rossiter, R. J. (1940). J. biol. Chem. 135, 431.CrossRefGoogle Scholar
Rydin, H. (1935). Biochem. J. 29, 860.CrossRefGoogle Scholar
Schlenk, F. and Snell, E. E. (1945). J. biol. Chem. 157, 425.CrossRefGoogle Scholar
Sealock, R. R., Livermore, A. H. and Evans, C. A. (1943). J. Amer. chem. Soc. 65, 935.CrossRefGoogle Scholar
Silverman, M. and Werkman, C. H. (1939). Iowa St. Coll. J. Sci. 12, 107.Google Scholar
Silverman, M. and Werkman, C. H. (1941). J. biol. Chem. 138, 35.CrossRefGoogle Scholar
Sinclair, H. M. (1933). Biochem. J. 27, 1927.CrossRefGoogle Scholar
Sober, H. A., Lipton, M. A. and Elvehjem, C. A. (1940). J. biol. Chem. 134, 605.CrossRefGoogle Scholar
Still, J. (1941). Biochem. J. 33, 380.CrossRefGoogle Scholar
Straub, F. B. (1939). Biochem. J. 33, 787.CrossRefGoogle Scholar
Straub, F. B. (1940). Biochem. J. 34, 483.CrossRefGoogle Scholar
Suzuki, U., Shimamura, T. and Odake, S. (1912). Biochem. Z. 43, 89.Google Scholar
Teague, P. C. and Williams, R. J. (1942). J. gen. Physiol. 25, 777.CrossRefGoogle Scholar
Theorell, H. (1934). Biochem. Z. 275, 344.Google Scholar
Theorell, H. (1935). Biochem. Z. 278, 263.Google Scholar
Theorell, H.(1936, 1). Biochem. Z. 288, 317.Google Scholar
Theorell, H. (1936, 2). Nature, Lond., 138, 687.CrossRefGoogle Scholar
Theorell, H. (1937). Biochem. Z. 290, 293.Google Scholar
Thompson, R. H. S. (1934). Biochem. J. 28, 909.CrossRefGoogle Scholar
Trufanov, A. V. (1941). Biokhimia, 6, 301.Google Scholar
Warburg, O. and Christian, W. (1932). Biochem. Z. 254, 438.Google Scholar
Warburg, O. and Christian, W. (1933). Biochem. Z. 266, 377.Google Scholar
Warburg, O. and Christian, W. (1934). Biochem. Z. 274, 112.Google Scholar
Warburg, O. and Christian, W. (1935). Biochem. Z. 275, 464.Google Scholar
Warburg, O. and Christian, W. (1936). Biochem. Z. 287, 291.Google Scholar
Warburg, O.and Christian, W. (1938). Biochem. Z. 298, 150.Google Scholar
Warburg, O.and Christian, W. (1939). Biochem. Z. 303, 40.Google Scholar
Warburg, O., Christian, W. and Griese, W. (1935). Biochem. Z. 282, 147.Google Scholar
Williams, R.J., Mosher, W. A. and Rohrmann, E. (1936). Biochem. J. 30, 2036.CrossRefGoogle Scholar
Woods, D. D. and Trim, A. R. (1942). Biochem. J. 36, 501.CrossRefGoogle Scholar