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Control of actinomycin D biosynthesis in Streptomyces parvullus: regulation of tryptophan oxygenase activity.

Tryptophan oxygenase (tryptophan 2,3-dioxygenase) activity increases immediately before the initiation of actinomycin D production by Streptomyces parvullus. We have attempted to discern whether this increase is due to a release from catabolite repression or to the synthesis of an inducer substance. The standard culture medium (glutamic acid-histidine-fructose medium) used in antibiotic production studies with S. parvullus contains l-glutamate as a major constituent. l-Glutamate is almost totally consumed before the onset of actinomycin D synthesis. The addition of 10 mM l-glutamate at this stage completely abolished actinomycin D production as well as tryptophan oxygenase synthesis. Fourteen amino acids were tested for a similar effect. Of these, l-glutamate and l-aspartate had the most dramatic effect on tryptophan oxygenase and beta-galactosidase (beta-d-galactosidase), another inducible enzyme. Standard glutamic acid-histidine-fructose medium, preincubated for 23 h to remove l-glutamate, allowed the synthesis of actinomycin D and tryptophan oxygenase by cells at a stage of growth normally considered too early for antibiotic production. A chemically defined medium lacking l-glutamate and adjusted to pH 8.0 was designed to simulate the preincubation medium. The transfer of cells to this artificial preincubation medium resulted in the appearance of tryptophan oxygenase as early as 19 h before normal synthesis occurred, eliminating the possibility that an inducer molecule is synthesized and excreted during the preincubation period. The results of these studies suggest that the increase in tryptophan oxygenase activity before the onset of actinomycin D synthesis, as well as the synthesis of actinomycin D itself, is due to a release from l-glutamate catabolite repression.

Amino Acids↗

Isolation and characterization of the rat tryptophan oxygenase gene.

Tryptophan oxygenase (TO, EC 1.13.1.12) from rat liver is subject to glucocorticoid and developmental control. To study the mechanism of regulation, TO mRNA sequences and the chromosomal TO gene were cloned. From a cDNA library prepared from rat liver poly(A)+ RNA enriched for TO mRNA, a recombinant plasmid containing TO cDNA sequences was identified by translation of hybrid-selected RNA and immunoprecipitation with antibodies directed against TO. This cDNA clone hybridizes to a mRNA 2000 bases long that is inducible by dexamethasone. With this clone as probe we isolated from a bacteriophage lambda rat DNA library genomic clones which together span a region of 32 kilobase pairs (kb). Heteroduplex analysis revealed that the gene extends over 19 kb and is interrupted by at least 11 introns. To characterize the presumptive control region the DNA sequence around the 5' end of the TO gene was determined. S1 nuclease protection experiments revealed two separate start sites for TO mRNA transcription within this region.

Animals↗

Effect of streptozotocin-induced diabetes on tryptophan oxygenase activity and brain tryptophan levels in rats.

Alterations in brain tryptophan levels and the rate of hepatic tryptophan metabolism by tryptophan oxygenase (TPO) were studied in male Sprague-Dawley rats rendered diabetic by intravenous administration of streptozotocin (STZ), 65 mg/kg. Determinations were made at the early onset of diabetes (1-4 days of glucosuria) and 8-12 days following STZ injection. Rats were considered diabetic if their serum glucose exceeded 250 mg percent. Tryptophan brain levels decreased by 17% after four days of diabetes, decreased by 22% on day 5, and by 27% 8-12 days after STZ. Brain 5-hydroxyindoleacetic acid levels were significantly decreased by 27% on day 5, but returned to control levels by 8-12 days. Serotonin concentration in the brain remained at control values. The initial appearance of a significant increase in total TPO activity coincided with the onset of a change in brain tryptophan. Total TPO activity increased by 60% after 4 days of diabetes. The increase was caused by an increase in apoenzyme activity since holoenzyme activity remained unaltered. Holoenzyme activity was increased by 37% after 8-12 days, and accounted for the change in total TPO activity. Insulin treatment reversed the STZ-induced alterations. The results are compatible with the hypothesis that diabetes increases hepatic TPO activity that in turn results in decreased plasma tryptophan levels and decreased availability of tryptophan for brain uptake. However, compensatory changes appear to maintain a stable serotonin concentration in the brain. The early and later changes in TPO activity during diabetes are apparently caused by different regulatory events.

Animals↗

Ethanol-induced increase in liver tryptophan oxygenase activity in the starved rat: evidence against tryptophan mediation.

A single oral dose of ethanol (4.0 g/kg) increased the activity of liver tryptophan oxygenase in starved male rats. The peak increase of 340% for the total activity and 400% for the holoenzyme activity occurred 6 hr after ethanol administration. At or after these peaks, the levels of tryptophan in plasma and brain but not in liver, decreased significantly. Plasma total tryptophan and brain tryptophan started to decrease significantly as early as 0.5-1.0 hr after the ethanol treatment, while the activity of liver tryptophan oxygenase was still at the control level. These findings suggest that not all the changes in tissue tryptophan concentrations seen after acute ethanol treatment are caused by increased liver tryptophan oxygenase activity. Prior to the increase in liver tryptophan oxygenase activity, an increase of 104 and 50% in plasma corticosterone and free tryptophan, respectively, were seen 15 min after ethanol treatment. However, the increase in liver tryptophan at this time appeared to be small (13%) and statistically insignificant. With tryptophan treatment, the initial peak levels of liver tryptophan and plasma free tryptophan required to stimulate an increase in tryptophan oxygenase activity were 170 times higher than those caused by ethanol. It was therefore concluded that increases in plasma and liver tryptophan after acute ethanol ingestion, probably mediated by the lipolytic action of ethanol, are too small to cause the increase in liver tryptophan oxygenase activity seen after ethanol administration. However, experiments with different corticosterone doses showed that ethanol-induced increases in plasma corticosterone concentrations are high enough to cause an increase in liver tryptophan oxygenase activity.

Animals↗

Activation of liver tryptophan oxygenase by hydrocortisone, hematin and tryptophan in streptozotocin-diabetic rats.

This study compared changes in liver tryptophan oxygenase (TPO) activity in response to hydrocortisone, hematin and tryptophan administration to non-diabetic and diabetic (streptozotocin) rats. Hydrocortisone caused similar increases in apoenzyme (inactive), holoenzyme (heme-saturated) and total (holoenzyme + apoenzyme) TPO activities in non-diabetic and diabetic rats. The ability of hematin to increase total TPO activity was significantly less in diabetic rats. The largest differences between diabetic and non-diabetic rats were found with tryptophan which increased total TPO and holoenzyme activities 300% and 650% respectively in non-diabetic rats. However, tryptophan increased both apoenzyme (unchanged in non-diabetic rats) and holoenzyme activities by 300% in diabetic rats. These results indicate that in the diabetic state, the TPO-heme conjugation process is impaired, especially substrate mediated TPO-heme saturation.

Animals↗

Pretranslational control of tryptophan oxygenase levels in Morris hepatoma and host liver.

Tryptophan oxygenase is present and hormonally inducible in host livers but is absent in transplanted Morris hepatomas examined under basal conditions as well as in hormonally induced animals. Studies were performed to determine whether the absence of tryptophan oxygenase in hepatomas is mediated by an alteration in the translational efficiency or the level of the messenger RNA (mRNA) for tryptophan oxygenase. The tissue level of the specific mRNA coding for tryptophan oxygenase was quantitated in an mRNA-dependent Krebs ascites cell-free protein-synthesizing system. The enzyme levels and mRNA activities in host livers and hepatomas from control rats and rats given injections of an inducing dose of hydrocortisone were compared; they indicate that the induction of tryptophan oxygenase in host livers by hormones is accompanied by a proportional increase in the level of its mRNA, whereas in the transplanted hepatomas the tryptophan oxygenase catalytic activity and the mRNA coding for this enzyme were undetectable in both control and glucocorticoid-induced animals. No functional mRNA for tryptophan oxygenase could be detected in the total polyadenylate-containing mRNA isolated from the Morris hepatoma cells. The hepatomas contained normal levels of cytoplasmic glucocorticoid receptor that could bind glucocorticoid, undergo "activation," and translocate to both normal and neoplastic nuclei. Thus, deletion of tryptophan oxygenase in hepatomas is a consequence of the absence of the gene product, i.e., the tryptophan oxygenase mRNA, which codes for its synthesis; this is not due to detectable alterations in the ability of the glucocorticoid receptor to bind the steroid hormone, or of the hormone-receptor complex to undergo activation, or of the activated steroid-receptor complex to bind to nuclei derived from the hepatoma or normal liver.

Animals↗

Effect of bacterial endotoxin and inhibitors on tryptophan oxygenase induction in mouse liver slices.

Tryptophan oxygenase activity in mouse liver slices maintained in cluture medium, in Krebs-Ringer bicarbonate solution, or in homologous whole blood declined within 3 hr to about one-half the original level. Actinomycin D and puromycin accelerated the rate of decline, but endotoxin did not. Direct addition of tryptophan to the medium resulted in a higher than normal tryptophan oxygenase activity within 1 hr, and this was maintained well above that of control liver slices up to 6 hr. Triamcinolone, at a dose that doubles tryptophan oxygenase activity in vivo, had no effect on the enzyme in liver slices. Actinomycin and endotoxin did not alter the substrate induction of tryptophan oxygenase; however, puromycin did, but to a limited extent. Liver slices prepared from mice 4 hr after an injection of cortisone had a greater tryptophan oxygenase activity than those of controls. Either endotoxin or actinomycin D resulted in a more rapid decline of the enzyme when added to the slices than was observed in the controls.

Animals↗

Effect of high- and low-protein diets on the regulation of rat liver tyrosine aminotransferase and tryptophan oxygenase activities by L-tyrosine and L-tryptophan.

Induction of rat liver tyrosine aminotransferase by l-tyrosine and tryptophan oxygenase by l-tryptophan was studied in groups of rats fed on diets containing 18 or 5% protein. The basal activity of hepatic tyrosine aminotransferase of rats receiving 5% protein gradually increased with the age of the animals but that of rats receiving 18% protein did not. l-Tyrosine induced hepatic tyrosine aminotransferase in rats receiving 18% protein when tested at ages from 4 to 20 weeks. When induction by l-tyrosine was carried out in rats receiving the 5% protein diet, significant induction of tyrosine aminotransferase occurred only in 4- or 6-week-old rats. Induction by l-tryptophan of tryptophan oxygenase in liver or the basal activity of this enzyme in liver did not differ between the groups fed on 5 and 18% protein. On changing the diet from 0 to 18% protein, the above-mentioned effects on the induction of hepatic tyrosine aminotransferase were reversed.

Animals↗

Transcriptional regulation of the tryptophan oxygenase gene in rat liver by glucocorticoids.

The enzyme tryptophan oxygenase (EC 1.13.11.11), which is synthesized in rat liver, is induced by glucocorticoids. We have used cloned tryptophan oxygenase genomic and cDNA sequences to study the mechanism of induction. Rat liver poly(A+) RNA was separated on a formaldehyde gel, blotted to nitrocellulose, and hybridized to a nick-translated tryptophan oxygenase cDNA clone to analyze the kinetics of tryptophan oxygenase mRNA accumulation. Transcription in isolated rat liver nuclei was investigated to determine the relative rate of transcription of the tryptophan oxygenase gene. Analysis of the accumulation of albumin mRNA, which is unaffected by glucocorticoids, served as an internal control. We show here that the synthetic glucocorticoid dexamethasone causes a 10-fold increase in the concentration of tryptophan oxygenase mRNA sequences in rat liver, and that this is a consequence of transcriptional activation of the tryptophan oxygenase gene.

Animals↗

Hormonal control of the development of tryptophan oxygenase in primary cultures of young rat hepatocytes.

Developmental increase of tryptophan oxygenase (L-tryptophan: oxygen 2, 3-oxidoreductase (decyclizing), EC 1.13.11.11) was studied using hepatocytes of neonatal rats in primary culture. Hepatocytes from rats of 2-30-days-old were isolated and cultured for 2 days. In cultured hepatocytes of 2-day-old rats, tryptophan (2.5 mM), dexamethasone (1 x 10(-5) M) and glucagon (1 x 10(-7) M) did not cause the appearance of tryptophan oxygenase. But the enzyme activity became detectable, when hepatocytes from 5-day-old rats were incubated with tryptophan, the oxygenase could be induced precociously by dexamethasone, but by glucagon. The effect of glucagon was first seen 2 weeks after birth. However, in hepatocytes of 9-day-old rats glucagon stimulated formation of cyclic AMP and protein kinase activity (EC 2.7.1.37) and also induced tyrosine aminotransferase (EC 2.6.1.5). When hepatocytes of 9-day-old rats were cultured for 4 days, their tryptophan oxygenase became inducible by glucagon. Insulin almost completely inhibited precocious appearance of the enzyme activity evoked by tryptophan plus dexamethasone in hepatocytes of 9-day-old rats. These studies suggest that the appearance of tryptophan oxygenase in rat liver during development is due to first the onset of gene coding for tryptophan oxygenase and then stimulation by the sequential actions of glucocorticoid and glucagon.

Animals↗

Glucocorticoid control of the development of tryptophan oxygenase in the young rat.

Tryptophan oxygenase activity follows a characteristic developmental pattern in the young rat, being absent until about 2 weeks of life, then attaining adult levels by the 3rd week. We have investigated the factors which control this process and determined that the increase in enzymatic activity results from increased glucocorticoid release between the 14th and 21st days. This conclusion was based on our observation that adrenalectomy completely arrests the development of the enzymatic activity. Twenty-one-day-old animals which were adrenalectomized on the 10th day, and thus possess no demonstrable enzymatic activity, could respond to cortisol treatment with an elevation of tryptophan oxygenase activity. Administration of either cycloheximide or actinomycin D completely inhibited this response, suggesting that both protein synthesis and RNA synthesis were requisite for the development of the enzyme. Immunochemical studies revealed that the enzyme found in the young animal was identical with that extracted from the adult rat; furthermore, the increase in activity observed in the developing rat is the result of increased enzyme protein levels. Direct measurement of the synthetic and degradative rates showed the accumulation of enzyme protein to depend upon increased synthetic activity, and not upon decreased enzyme degradation.

Adrenal Glands↗

Effects of protein-degradation inhibitors on the inactivation of tyrosine aminotransferase, tryptophan oxygenase and benzopyrene hydroxylase in isolated rat hepatocytes.

The following three potent inhibitors of hepatocytic proteolysis were investigated to see if they would inhibit the intracellular inactivation of enzymes: chymostatin and leupeptin (proteinase inhibitors) and methylamine (a lysosomotropic weak base). Chymostatin inhibited the inactivation of two of the three enzymes tested: tyrosine aminotransferase (EC 2.6.1.5) and tryptophan oxygenase (tryptophan 2,3-dioxygenase, EC 1.13.11.11). Leupeptin had no effect on any of the enzymes, whereas methylamine had only a weak inhibitory effect on tyrosine aminotransferase inactivation. Apparently proteolytic cleavage (probably by a non-lysosomal proteinase, since only chymostatin is effective) is involved in the inactivation of tyrosine aminotransferase and tryptophan oxygenase. The third enzyme, benzopyrene hydroxylase (flavoprotein-linked mono-oxygenase, EC 1.14.14.1), is probably inactivated by a non-proteolytic mechanism.

Animals↗

Effect of propranolol and cycloheximide on the ethanol-induced increase in liver tryptophan oxygenase activity in starved rats.

Increased supply of tryptophan to the liver, resulting from the lipolytic action of ethanol, is suggested to be responsible for the increased activity of liver tryptophan oxygenase after ingestion of a single large dose of ethanol. This hypothesis was tested using an antilipolytic drug, propranolol, prior to ethanol treatment. It was found that, while propranolol did inhibit the ethanol-induced increase in blood unesterified fatty acids and free tryptophan concentrations, it did not prevent the activation of tryptophan oxygenase by ethanol. In another experiment, where cycloheximide was used to block protein synthesis, it was found that increased protein synthesis rather than decreased protein degradation is probably responsible for the accumulation of liver tryptophan oxygenase after ethanol ingestion.

Animals↗

The prematurely evoked synthesis of liver tryptophan oxygenase.

Livers of normal rats are devoid of catalytically or immunochemically reactive tryptophan oxygenase (EC 1.13.1.12) up to the 10th postnatal day; the enzyme reaches adult concentrations on about the twentieth day. Premature tryptophan oxygenase synthesis can be evoked in 4-day-old rats: if an injection of glucocorticoid is followed, a day later, by an injection of tryptophan, adult levels of tryptophan oxygenase activity and antigen content can be attained within 5 hr. The prematurely evoked tryptophan oxygenase is degraded in about 2 days, but the preparatory action of the glucocorticoid is longlasting. Even 4 days later, an injection of tryptophan can evoke significant enzyme formation. Actinomycin D, injected together with or 12 hr before the tryptophan, is not inhibitory, but if injected with the glucocorticoid it prevents enzyme formation upon later injection of tryptophan. The observations suggest that appearance of the new enzyme in developing tissue results from the sequential action of more than one stimulus and that the potentiality for its transcription may develop long before its actual synthesis.

Age Factors↗