Aromatic biosynthesis in yeast. II. Feedback inhibition and repression of 3-deoxy-D-arabino-heptulosonic acid 7-phosphate synthase.
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ACV synthetase is the first enzyme in the biosynthetic pathway for all natural penicillins and cephalosporins. Its activity catalyzes the possible rate-limiting step and is subject to various regulatory controls. In both the fungus Cephalosporium acremonium and the actinomycete Streptomyces clavuligerus, formation of the enzyme is repressed by ammonium and phosphate ions, but not by easily-utilized carbon sources; it is induced by methionine in C. acremonium. The action of the crude enzyme is indirectly inhibited in vitro by sugars such as glucose and by the carbon source metabolite glyceraldehyde-3-phosphate (G3P). Sugars are not inhibitory to the purified enzyme activity but G3P is inhibitory. The sugar inhibition is reversed by ATP and the G3P inhibition by L-cysteine (L-cys). Addition of L-cys to fermentation media increases beta-lactam production by both microorganisms. Phosphate and ferrous ions inhibit enzyme activity. Dissolved oxygen levels do not affect enzyme formation. Regulation of ACVS formation most likely occurs at the transcriptional level.
Molybdate and selenate are structural analogs of sulfate that inhibit synthesis of adenosine 5'-phosphosulfate by ATP sulfurylase (sulfate adenylyltransferase, ATP:sulfate adenylyltransferase, EC 2.7.7.4) in crude extracts of tobacco XD cells. Both of these anions derepress ATP sulfurylase in cells growing on sulfate, but not in cells growing on L-cysteine. However, the two anions appear to derepress by different mechanisms. Molybdate caused derepression only at concentrations that were in excess over sulfate and were sufficient to inhibit growth and protein accumulation, indicating that the derepression resulted from sulfur starvation. Selenate caused derepression at one-tenth the concentration of sulfate, a concentration of selenate that was subtoxic, while toxic levels of selenate produced far less derepression. The susceptibility of the tobacco cells to selenate toxicity was high under conditions of sulfur nutrition that derepress ATP sulfurylase, and low under conditions that repress ATP sulfurylase, in agreement with the idea that selenate acts via a functional sulfate assimilation pathway. Since it is known that selenate is incorporated into analogs of sulfur compounds, it is proposed that the tobacco cells synthesize the seleno-analog of the end product of the sulfate pathway responsible for repression, and the seleno-analog antagonizes the normal end product in the repression mechanism, the net result being derepression of ATP sulfurylase by selenate.
A 2.5 kb DNA fragment contain a gene encoding a phospho-alpha-(1-1)-glucosidase (phosphotrehalase), designated treA, was isolated from a Bacillus subtilis chromosomal library by complementation of the tre-12 mutation. The major TreA activity was found in the cytoplasm. TreA exhibits high sequence similarity to thermostable oligo 1,6 beta-glucosidases of several species and the trehalose-6-phosphate hydrolase TreC of Escherichia coli. TreA activity is induced by trehalose and repressed by glucose, fructose or mannitol. Induction by trehalose and repression by glucose are concentration dependent. The highest activity of TreA occurs 90 min before the end of the exponential growth phase in crude cell extracts. The enzyme is able to cleave para-nitrophenyl-glucopyranoside and trehalose-6-phosphate but not trehalose. These results indicate that treA encodes a specific phospho-alpha-(1-1)-glucosidase which cleaves trehalose-6-phosphate in the cytoplasm after transport and phosphorylation of trehalose. The 5' flanking region of treA contains an open reading frame which was partially sequenced, whose product shows about 40% identity to sucrose Enzyme II of the phosphotransferase transport system from several organisms.
The activities of threonine deaminase, acetohydroxy acid synthetase, acetohydroxy acid reductoisomerase, dihydroxy acid dehydrase, and transaminase B were detected in cell-free extracts of Rhodopseudomonas spheroides. No significant repression or derepression of threonine deaminase activity was observed.
Mutants of Salmonella typhimurium with specific pyrimidine requirements were used to demonstrate that only uridine compounds exert repressive control over synthesis of phosphoribosylpyrophosphate synthetase.
The normal hut (histidine utilization) operons, as well as those with mutations affecting the regulation of their expression, of Salmonella typhimurium were introduced on an F' episome into cells of S. typhimurium and Klebsiella aerogenes whose chromosomal hut genes had been deleted and into cells of Escherichia coli, whose chromosome does not carry hut genes. The episomal hut operons respond in a manner very similar to induction and catabolite repression in all three organisms. The small differences found reflect both different abilities to take up inducers from the medium and different degrees of catabolite repression exerted by glucose.