J Bacteriol. 1992 January; 174(2): 541-548
Characterization of amino acid aminotransferases of Methanococcus aeolicus.
R Y Xing and
W B Whitman
Department of Microbiology, University of Georgia, Athens 30602.
ABSTRACT
Four aminotransferases were identified and characterized from Methanococcus aeolicus. Branched-chain aminotransferase (BcAT, EC 2.6.1.42), aspartate aminotransferase (AspAT, EC 2.6.1.1), and two aromatic aminotransferases (EC 2.6.1.57) were partially purified 175-, 84-, 600-, and 30-fold, respectively. The apparent molecular weight, substrate specificity, and kinetic properties of the BcAT were similar to those of other microbial BcATs. The AspAT had an apparent molecular weight of 162,000, which was unusually high. It had also a broad substrate specificity, which included activity towards alanine, a property which resembled the enzyme from Sulfolobus solfataricus. An additional alanine aminotransferase was not found in M. aeolicus, and this activity of AspAT could be physiologically significant. The apparent molecular weights of the aromatic aminotransferases (ArAT-I and ArAT-II) were 150,000 and 90,000, respectively. The methanococcal ArATs also had different pIs and kinetic constants. ArAT-I may be the major ArAT in methanococci. High concentrations of 2-ketoglutarate strongly inhibited valine, isoleucine, and alanine transaminations but were less inhibitory for leucine and aspartate transaminations. Aromatic amino acid transaminations were not inhibited by 2-ketoglutarate. 2-Ketoglutarate may play an important role in the regulation of amino acid biosynthesis in methanococci.
J Bacteriol. 1992 January; 174(2): 541-548
This article has been cited by other articles:
-
Helgadottir, S., Rosas-Sandoval, G., Soll, D., Graham, D. E.
(2007). Biosynthesis of Phosphoserine in the Methanococcales. J. Bacteriol.
189: 575-582
[Abstract]
[Full Text]
-
Hendrickson, E. L., Kaul, R., Zhou, Y., Bovee, D., Chapman, P., Chung, J., Conway de Macario, E., Dodsworth, J. A., Gillett, W., Graham, D. E., Hackett, M., Haydock, A. K., Kang, A., Land, M. L., Levy, R., Lie, T. J., Major, T. A., Moore, B. C., Porat, I., Palmeiri, A., Rouse, G., Saenphimmachak, C., Soll, D., Van Dien, S., Wang, T., Whitman, W. B., Xia, Q., Zhang, Y., Larimer, F. W., Olson, M. V., Leigh, J. A.
(2004). Complete Genome Sequence of the Genetically Tractable Hydrogenotrophic Methanogen Methanococcus maripaludis. J. Bacteriol.
186: 6956-6969
[Abstract]
[Full Text]
-
Porat, I., Waters, B. W., Teng, Q., Whitman, W. B.
(2004). Two Biosynthetic Pathways for Aromatic Amino Acids in the Archaeon Methanococcus maripaludis. J. Bacteriol.
186: 4940-4950
[Abstract]
[Full Text]
-
Dudley, E. G., Steele, J. L.
(2001). Lactococcus lactis LM0230 contains a single aminotransferase involved in aspartate biosynthesis, which is essential for growth in milk. Microbiology
147: 215-224
[Abstract]
[Full Text]
-
Matsui, I., Matsui, E., Sakai, Y., Kikuchi, H., Kawarabayasi, Y., Ura, H., Kawaguchi, S.-i., Kuramitsu, S., Harata, K.
(2000). The Molecular Structure of Hyperthermostable Aromatic Aminotransferase with Novel Substrate Specificity from Pyrococcus horikoshii. J. Biol. Chem.
275: 4871-4879
[Abstract]
[Full Text]
-
Yvon, M., Chambellon, E., Bolotin, A., Roudot-Algaron, F.
(2000). Characterization and Role of the Branched-Chain Aminotransferase (BcaT) Isolated from Lactococcus lactis subsp. cremoris NCDO 763. Appl. Environ. Microbiol.
66: 571-577
[Abstract]
[Full Text]
-
Cohen-Kupiec, R., Marx, C. J., Leigh, J. A.
(1999). Function and Regulation of glnA in the Methanogenic Archaeon Methanococcus maripaludis. J. Bacteriol.
181: 256-261
[Abstract]
[Full Text]
Copyright © 1992 by the American Society for Microbiology. All rights reserved.