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Physiological basis of transient repression of catabolic enzymes in Escherichia coli.

Transient repression of catabolic enzymes occurs in cells that encounter a new carbon compound in their growth medium, but only when the cells contain the enzyme catalyzing the transfer of phosphate from phosphoenolpyruvate to a small heat-stable protein (HPr), as well as a permease capable of transporting the new compound across the cell membrane. The newly added compound need not be metabolized. The degree and duration of the transient repression have no obvious relation to the intracellular level of the exogenously added compound. It is suggested that the actual passage of the compound through the cell membrane is responsible for the repression.

Alkaline Phosphatase↗

arcA (dye), a global regulatory gene in Escherichia coli mediating repression of enzymes in aerobic pathways.

In Escherichia coli the levels of numerous enzymes associated with aerobic metabolism are decreased during anaerobic growth. In an arcA mutant the anaerobic levels of these enzymes are increased. The enzymes, which are encoded by different regulons, include members that belong to the tricarboxylic acid cycle, the glyoxylate shunt, the pathway for fatty acid degradation, several dehydrogenases of the flavoprotein class, and the cytochrome o oxidase complex. Transductional crosses placed the arcA gene near min O on the chromosomal map. Complementation tests showed that the arcA gene corresponded to the dye gene, which is also known as fexA, msp, seg, or sfrA because of various phenotypic properties [Bachmann, B. (1983) Microbiol. Rev. 47, 180-230]. A dye-deletion mutant was derepressed in the aerobic enzyme system. The term modulon is proposed to describe a set of regulons that are subject to a common transcriptional control.

Aerobiosis↗

Catabolite repression of different inducible enzymes in Escherichia coli and the effect of cAMP.

Simultaneous induction of two enzymes sensitive to catabolite repression does not lead to an additive decrease of the specific activity of the two. Exogenously added cAMP increases the specific activity of catabolically repressed enzymes, irrespective of whether the enzyme is induced separately or simultaneously with another enzyme. In the presence of 12 different substrates metabolized by inducible enzymes glucose does not bring about catabolite repression. Synthesis of cAMP is identical with that occurring under conditions when glucose brings about catabolite repression.

Cyclic AMP↗

In vivo study of developmental changes in carbamoyl-phosphate synthetase I in rat liver. Repression of the enzyme synthesis immediately after birth.

The regulatory mechanism of the developmental increase of carbamoyl-phosphate synthetase I in fetal and neonatal rat liver was studied in vivo. The appearance and rapid increase of the enzyme in late fetal period were caused by de novo synthesis of the enzyme protein. The amount of the enzyme protein analyzed by SDS-polyacrylamide gel electrophoresis was proportional to the enzyme activity throughout the period of development. No indication was observed for preexisting protein which could be converted into the active protein. A novel system for the in vivo study of carbamoyl-phosphate synthetase I synthesis was developed. Hepatocytes, mechanically dispersed by repeated passage of the tissue through a pipet, incorporated [35S]methionine into the enzyme. Taking advantage of this system, the regulation of the enzyme synthesis was studied. In vivo synthesis of the enzyme was detected at 4 days before birth and rapidly increased until 1 day before birth. However, the enzyme synthesis was markedly repressed after birth, when the amount of carmamoyl-phosphate synthetase I itself reached the adult level. This result was in a clear contrast with the constant level of the translatable mRNA (Raymond, Y. and Shore, G.C. (1981) Biochim. Biophys. Acta 656, 111-119) and suggested that post-transcriptional regulation is important in addition to the level of mRNA for the regulation of the carbamoyl-phosphate synthetase I level.

Aging↗

Genetic and physiological characterization of Escherichia coli mutants deficient in phosphoenolpyruvate carboxykinase activity.

Mutants doubly deficient in phosphoenolpyruvate carboxykinase (pck) and phosphoenolpyruvate synthetase (pps) were unable to grow with succinate as the sole carbon source. A number of pck mutations isolated from pps strains by penicillin selection mapped at 74 min on the Escherichia coli chromosome, between glpD and aroB. Several of the strains containing these mutations had a protein antigenically related to phosphoenolpyruvate carboxykinase, and therefore, the mutations probably represented mutations in the structural gene for this enzyme. Phosphoenolpyruvate carboxykinase was regulated at the level of transcription by catabolite repression. Enzyme levels also increased in stationary-phase cultures by a mechanism independent of cyclic adenosine monophosphate or the product of the relA gene.

Chromosome Mapping↗

lac repressor can regulate expression from a hybrid SV40 early promoter containing a lac operator in animal cells.

The E. coli lac operator and repressor were adapted for function in mammalian cells. Plasmids containing an SV40 early region (pSVlacO) or a chloramphenicol acetyl transferase gene (pSVlacOCAT) linked to a hybrid SV40 early promoter bearing a lac operator were tested for function. Identical plasmids lacking an operator (pX-8 and pX-8CAT) were controls. In vitro, early transcription from pSVlacO, but not from pX-8, was inhibited by lac repressor, and repression was overcome by IPTG. Repression of large T synthesis or CAT activity occurred in vivo only when the respective operator-containing plasmid was cotransfected with a plasmid encoding lac repressor, or when the recipient cells stably synthesized lac repressor. IPTG substantially relieved repression in both cases. CAT enzyme repression was paralleled by a decrease in CAT mRNA abundance. Thus regulatory elements of the lac operon function physiologically in mammalian cells.

Acetyltransferases↗