J Bacteriol. 1993 May; 175(9): 2541-2551
Identification of a novel operon in Lactococcus lactis encoding three enzymes for lactic acid synthesis: phosphofructokinase, pyruvate kinase, and lactate dehydrogenase.
R M Llanos,
C J Harris,
A J Hillier and
B E Davidson
Russell Grimwade School of Biochemistry, University of Melbourne, Parkville, Victoria, Australia.
ABSTRACT
The discovery of a novel multicistronic operon that encodes phosphofructokinase, pyruvate kinase, and lactate dehydrogenase in the lactic acid bacterium Lactococcus lactis is reported. The three genes in the operon, designated pfk, pyk, and ldh, contain 340, 502, and 325 codons, respectively. The intergenic distances are 87 bp between pfk and pyk and 117 bp between pyk and ldh. Plasmids containing pfk and pyk conferred phosphofructokinase and pyruvate kinase activity, respectively, on their host. The identity of ldh was established previously by the same approach (R. M. Llanos, A. J. Hillier, and B. E. Davidson, J. Bacteriol. 174:6956-6964, 1992). Each of the genes is preceded by a potential ribosome binding site. The operon is expressed in a 4.1-kb transcript. The 5' end of the transcript was determined to be a G nucleotide positioned 81 bp upstream from the pfk start codon. The pattern of codon usage within the operon is highly biased, with 11 unused amino acid codons. This degree of bias suggests that the operon is highly expressed. The three proteins encoded on the operon are key enzymes in the Embden-Meyerhoff pathway, the central pathway of energy production and lactic acid synthesis in L. lactis. For this reason, we have called the operon the las (lactic acid synthesis) operon.
J Bacteriol. 1993 May; 175(9): 2541-2551
This article has been cited by other articles:
-
Solem, C., Koebmann, B., Yang, F., Jensen, P. R.
(2007). The las Enzymes Control Pyruvate Metabolism in Lactococcus lactis during Growth on Maltose. J. Bacteriol.
189: 6727-6730
[Abstract]
[Full Text]
-
Lambert, J. M., Bongers, R. S., Kleerebezem, M.
(2007). Cre-lox-Based System for Multiple Gene Deletions and Selectable-Marker Removal in Lactobacillus plantarum. Appl. Environ. Microbiol.
73: 1126-1135
[Abstract]
[Full Text]
-
Raynaud, S., Perrin, R., Cocaign-Bousquet, M., Loubiere, P.
(2005). Metabolic and Transcriptomic Adaptation of Lactococcus lactis subsp. lactis Biovar diacetylactis in Response to Autoacidification and Temperature Downshift in Skim Milk. Appl. Environ. Microbiol.
71: 8016-8023
[Abstract]
[Full Text]
-
Weekes, J., Yuksel, G. U.
(2004). Molecular Characterization of Two Lactate Dehydrogenase Genes with a Novel Structural Organization on the Genome of Lactobacillus sp. Strain MONT4. Appl. Environ. Microbiol.
70: 6290-6295
[Abstract]
[Full Text]
-
Bron, P. A., Grangette, C., Mercenier, A., de Vos, W. M., Kleerebezem, M.
(2004). Identification of Lactobacillus plantarum Genes That Are Induced in the Gastrointestinal Tract of Mice. J. Bacteriol.
186: 5721-5729
[Abstract]
[Full Text]
-
Ramos, A., Neves, A. R., Ventura, R., Maycock, C., Lopez, P., Santos, H.
(2004). Effect of pyruvate kinase overproduction on glucose metabolism of Lactococcus lactis. Microbiology
150: 1103-1111
[Abstract]
[Full Text]
-
Bongers, R. S., Hoefnagel, M. H. N., Starrenburg, M. J. C., Siemerink, M. A. J., Arends, J. G. A., Hugenholtz, J., Kleerebezem, M.
(2003). IS981-Mediated Adaptive Evolution Recovers Lactate Production by ldhB Transcription Activation in a Lactate Dehydrogenase-Deficient Strain of Lactococcus lactis. J. Bacteriol.
185: 4499-4507
[Abstract]
[Full Text]
-
Boels, I. C., Kleerebezem, M., de Vos, W. M.
(2003). Engineering of Carbon Distribution between Glycolysis and Sugar Nucleotide Biosynthesis in Lactococcus lactis. Appl. Environ. Microbiol.
69: 1129-1135
[Abstract]
[Full Text]
-
Even, S., Lindley, N. D., Cocaign-Bousquet, M.
(2001). Molecular Physiology of Sugar Catabolism in Lactococcus lactis IL1403. J. Bacteriol.
183: 3817-3824
[Abstract]
[Full Text]
-
Andersen, H. W., Solem, C., Hammer, K., Jensen, P. R.
(2001). Twofold Reduction of Phosphofructokinase Activity in Lactococcus lactis Results in Strong Decreases in Growth Rate and in Glycolytic Flux. J. Bacteriol.
183: 3458-3467
[Abstract]
[Full Text]
-
Asanuma, N., Hino, T.
(2001). Molecular characterization, enzyme properties and transcriptional regulation of phosphoenolpyruvate carboxykinase and pyruvate kinase in a ruminal bacterium, Selenomonas ruminantium. Microbiology
147: 681-690
[Abstract]
[Full Text]
-
Wouters, J. A., Kamphuis, H. H., Hugenholtz, J., Kuipers, O. P., de Vos, W. M., Abee, T.
(2000). Changes in Glycolytic Activity of Lactococcus lactis Induced by Low Temperature. Appl. Environ. Microbiol.
66: 3686-3691
[Abstract]
[Full Text]
-
Gibson, C. M., Mallett, T. C., Claiborne, A., Caparon, M. G.
(2000). Contribution of NADH Oxidase to Aerobic Metabolism of Streptococcus pyogenes. J. Bacteriol.
182: 448-455
[Abstract]
[Full Text]
-
Martinussen, J., Hammer, K.
(1998). The carB Gene Encoding the Large Subunit of Carbamoylphosphate Synthetase from Lactococcus lactis Is Transcribed Monocistronically. J. Bacteriol.
180: 4380-4386
[Abstract]
[Full Text]
-
Siebers, B., Klenk, H.-P., Hensel, R.
(1998). PPi-Dependent Phosphofructokinase from Thermoproteus tenax, an Archaeal Descendant of an Ancient Line in Phosphofructokinase Evolution. J. Bacteriol.
180: 2137-2143
[Abstract]
[Full Text]
Copyright © 1993 by the American Society for Microbiology. All rights reserved.