Previous Article | Next Article 
J Bacteriol. 1993 March; 175(5): 1325-1336
Lipoic acid metabolism in Escherichia coli: sequencing and functional characterization of the lipA and lipB genes.
K E Reed and
J E Cronan Jr
Department of Microbiology, University of Illinois, Urbana-Champaign 61801.
ABSTRACT
Two genes, lipA and lipB, involved in lipoic acid biosynthesis or metabolism were characterized by DNA sequence analysis. The translational initiation site of the lipA gene was established, and the lipB gene product was identified as a 25-kDa protein. Overproduction of LipA resulted in the formation of inclusion bodies, from which the protein was readily purified. Cells grown under strictly anaerobic conditions required the lipA and lipB gene products for the synthesis of a functional glycine cleavage system. Mutants carrying a null mutation in the lipB gene retained a partial ability to synthesize lipoic acid and produced low levels of pyruvate dehydrogenase and alpha-ketoglutarate dehydrogenase activities. The lipA gene product failed to convert protein-bound octanoic acid moieties to lipoic acid moieties in vivo; however, the growth of both lipA and lipB mutants was supported by either 6-thiooctanoic acid or 8-thiooctanoic acid in place of lipoic acid. These data suggest that LipA is required for the insertion of the first sulfur into the octanoic acid backbone. LipB functions downstream of LipA, but its role in lipoic acid metabolism remains unclear.
J Bacteriol. 1993 March; 175(5): 1325-1336
This article has been cited by other articles:
-
Martin, N., Lombardia, E., Altabe, S. G., de Mendoza, D., Mansilla, M. C.
(2009). A lipA (yutB) Mutant, Encoding Lipoic Acid Synthase, Provides Insight into the Interplay between Branched-Chain and Unsaturated Fatty Acid Biosynthesis in Bacillus subtilis. J. Bacteriol.
191: 7447-7455
[Abstract]
[Full Text]
-
Jiang, Y., Cronan, J. E.
(2005). Expression Cloning and Demonstration of Enterococcus faecalis Lipoamidase (Pyruvate Dehydrogenase Inactivase) as a Ser-Ser-Lys Triad Amidohydrolase. J. Biol. Chem.
280: 2244-2256
[Abstract]
[Full Text]
-
Kozlov, G., Elias, D., Semesi, A., Yee, A., Cygler, M., Gehring, K.
(2004). Structural Similarity of YbeD Protein from Escherichia coli to Allosteric Regulatory Domains. J. Bacteriol.
186: 8083-8088
[Abstract]
[Full Text]
-
O'Riordan, M., Moors, M. A., Portnoy, D. A.
(2003). Listeria Intracellular Growth and Virulence Require Host-Derived Lipoic Acid. Science
302: 462-464
[Abstract]
[Full Text]
-
Jordan, S. W., Cronan, J. E. Jr.
(2003). The Escherichia coli lipB Gene Encodes Lipoyl (Octanoyl)-Acyl Carrier Protein:Protein Transferase. J. Bacteriol.
185: 1582-1589
[Abstract]
[Full Text]
-
Jordan, S. W., Cronan, J. E. Jr.
(2002). Chromosomal Amplification of the Escherichia coli lipB Region Confers High-Level Resistance to Selenolipoic Acid. J. Bacteriol.
184: 5495-5501
[Abstract]
[Full Text]
-
Wada, M., Yasuno, R., Jordan, S. W., Cronan, J. E. Jr., Wada, H.
(2001). Lipoic Acid Metabolism in Arabidopsis thaliana: Cloning and Characterization of a cDNA Encoding Lipoyltransferase. Plant Cell Physiol
42: 650-656
[Abstract]
[Full Text]
-
Tamarit, J., Gerez, C., Meier, C., Mulliez, E., Trautwein, A., Fontecave, M.
(2000). The Activating Component of the Anaerobic Ribonucleotide Reductase from Escherichia coli. AN IRON-SULFUR CENTER WITH ONLY THREE CYSTEINES. J. Biol. Chem.
275: 15669-15675
[Abstract]
[Full Text]
-
Viswanathan, V. K., Edelstein, P. H., Pope, C. D., Cianciotto, N. P.
(2000). The Legionella pneumophila iraAB Locus Is Required for Iron Assimilation, Intracellular Infection, and Virulence. Infect. Immun.
68: 1069-1079
[Abstract]
[Full Text]
-
Gueguen, V., Macherel, D., Jaquinod, M., Douce, R., Bourguignon, J.
(2000). Fatty Acid and Lipoic Acid Biosynthesis in Higher Plant Mitochondria. J. Biol. Chem.
275: 5016-5025
[Abstract]
[Full Text]
-
Yasuno, R., Wada, H.
(1998). Biosynthesis of Lipoic Acid in Arabidopsis: Cloning and Characterization of the cDNA for Lipoic Acid Synthase. Plant Physiol.
118: 935-943
[Abstract]
[Full Text]
-
Berlyn, M. K. B.
(1998). Linkage Map of Escherichia coli K-12, Edition 10: The Traditional Map. Microbiol. Mol. Biol. Rev.
62: 814-984
[Abstract]
[Full Text]
-
Stuible, H.-P., Meier, S., Wagner, C., Hannappel, E., Schweizer, E.
(1998). A Novel Phosphopantetheine:Protein Transferase Activating Yeast Mitochondrial Acyl Carrier Protein. J. Biol. Chem.
273: 22334-22339
[Abstract]
[Full Text]
-
Taylor, S. V., Kelleher, N. L., Kinsland, C., Chiu, H.-J., Costello, C. A., Backstrom, A. D., McLafferty, F. W., Begley, T. P.
(1998). Thiamin Biosynthesis in Escherichia coli. IDENTIFICATION OF ThiS THIOCARBOXYLATE AS THE IMMEDIATE SULFUR DONOR IN THE THIAZOLE FORMATION. J. Biol. Chem.
273: 16555-16560
[Abstract]
[Full Text]
-
Jordan, S. W., Cronan Jr., J. E.
(1997). A New Metabolic Link. THE ACYL CARRIER PROTEIN OF LIPID SYNTHESIS DONATES LIPOIC ACID TO THE PYRUVATE DEHYDROGENASE COMPLEX IN ESCHERICHIA COLI AND MITOCHONDRIA. J. Biol. Chem.
272: 17903-17906
[Abstract]
[Full Text]
-
Wada, H., Shintani, D., Ohlrogge, J.
(1997). Why do mitochondria synthesize fatty acids? Evidence for involvement in lipoic acid production. Proc. Natl. Acad. Sci. USA
94: 1591-1596
[Abstract]
[Full Text]
-
Birch, O. M., Fuhrmann, M., Shaw, N. M.
(1995). Biotin Synthase from Escherichiacoli, an Investigation of the Low Molecular Weight and Protein Components Required for Activity inVitro. J. Biol. Chem.
270: 19158-19165
[Abstract]
[Full Text]