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Studies on the modes of action of azaserine in Escherichia coli. Mechanism of resistance to azaserine.

Growth of wildtype Escherichia coli was inhibited by azaserine. There was an inverse relationship between the initial rate of uptake of phenylalanine and the azaserine concentration. Moderately azaserine-resistant mutants exhibited an initial rate that was similar to that of an aroP mutant, but highly azaserine-resistant mutants exhibited little, if any, uptake of phenylalanine. All of the azaserine-resistant organisms tested harboured a mutation in the aroP+ gene. However, resistance to the antibiotic was not due solely to this lesion.

Aspartic Acid

Effect of bombesin and caerulein on early stages of carcinogenesis induced by azaserine in the rat pancreas.

This study was designed to analyze the effect of two pancreaticotrophic peptides on pancreatic carcinogenesis in the azaserine-rat model. The rats were treated with bombesin or caerulein for 16 weeks after initiation with azaserine. Two-week-old Lewis rats were given injections of a single dose of azaserine (30 mg/kg) and the control pups received an injection of saline. They were divided into ten groups for peptide treatment as follows: Group 1, azaserine-saline; Group 2, azaserine-bombesin, 10 micrograms/kg; Group 3, azaserine-bombesin, 30 micrograms/kg; Group 4, azaserine-caerulein, 5 micrograms/kg; Group 5, azaserine-caerulein, 15 micrograms/kg; Group 6, control-saline; Group 7, control-bombesin, 10 micrograms/kg; Group 8, control-bombesin, 30 micrograms/kg; Group 9, control-caerulein, 5 micrograms/kg; and Group 10, control-caerulein, 15 micrograms/kg. At 3 weeks of age, they were weaned. Peptides or saline were injected 3 consecutive days a week for 16 weeks. Rats were autopsied 4 months after the administration of azaserine. Pancreatic weight was increased by bombesin and decreased by caerulein treatment. Quantitative histological analysis of azaserine-induced atypical acinar cell nodules in the pancreas showed that the size and number of atypical acinar cell nodules were increased in both bombesin- and caerulein-treated groups. Thus, these peptides appear to stimulate the growth of preneoplastic acinar cell lesions.

Animals

Mutagenicity of L-azaserine for V79 cells in a pancreatic acinar cell-mediated mutagenesis assay.

The mutagenicity of azaserine was determined in a pancreatic acinar cell-mediated mutagenesis assay using V79 cells as the responder cell line. The mutation frequency of V79 cells was increased in direct culture with azaserine as well as in coculture with rat and hamster pancreatic acinar cells. Although slightly higher mutation frequencies were seen with coculture, the mutation frequency induced by azaserine in coculture was not significantly enhanced over that observed in direct culture. Thus, azaserine cannot be used as a positive control to monitor the level of acinar cell metabolism in such cell-mediated mutagenesis assays. Statistical analysis suggested that hamster acinar cell cocultures were more effective at increasing the mutation frequency of azaserine as compared to rat acinar cell cocultures. Hamster acinar cell cocultures, but not rat acinar cell cocultures, increased the mutagenicity of azaserine in a dose-response fashion. These results suggest that azaserine may be a pancreatic carcinogen for the hamster as well as the rat.

Animals

Effects of corn oil and benzyl acetate on number and size of azaserine-induced foci in the pancreas of LEW and F344 rats.

The response of LEW and F344 strain rats to the pancreatic carcinogen azaserine was compared using the size and number of azaserine-induced acidophilic acinar cell foci and nodules as parameters in a 4-month experiment. A second experiment compared the effect of corn oil intake by gavage and dietary routes on the growth of azaserine-induced pancreatic lesions in LEW rats. A third experiment tested the activity of benzyl acetate in regard to its ability to induce acinar cell foci or to promote the growth of such foci in azaserine-treated rats. The results showed that equivalent doses of azaserine induce two to seven times more foci in LEW than in F344 rats, and that LEW rats have a higher incidence of "spontaneous" foci than F344 rats. Azaserine-treated LEW rats that were given 5 mL corn oil/kg body weight 5 days per week by gavage developed more acinar cell foci than rats fed a basal diet (chow). Addition of an equivalent amount of corn oil to chow had a similar effect of enhancing the development of foci. Rats of neither strain developed acinar cell foci when benzyl acetate was given by gavage or in the diet nor was there evidence that benzyl acetate has a significant effect on the development of foci in azaserine-treated rats. These studies also demonstrate that the azaserine/rat model of pancreatic carcinogenesis which was developed in LEW rats can be adapted for use with F344 rats.

Animals

Potentiation of azaserine by cholestyramine in the rat.

In the rat, when pancreatic growth is stimulated there is an increased incidence of spontaneous pancreatic neoplasms and marked potentiation of the pancreatic carcinogen azaserine. Since previous studies showed that cholestyramine caused pancreatic growth in this species we have now studied the effect of azaserine in rats fed soya flour diets containing cholestyramine. Two groups, each of eight rats, were fed either heated soya flour (HSF) or raw soya flour (RSF). Two further groups, each of 12 rats, received the same diets containing 2% cholestyramine (HSF + C, RSF + C). In each group, four rats received azaserine (30 mg/kg i.p.) and the remainder saline, weekly, for the first 5 weeks. Animals were killed after 24 weeks and pancreatic growth and the number and size of pancreatic neoplastic nodules was measured. RSF caused a significant increase in pancreatic weight, protein, RNA and DNA, compared with HSF and cholestyramine caused a further significant increase in pancreatic weight, protein and RNA but not DNA. Azaserine did not affect pancreatic growth. In azaserine-injected rats significantly more nodules were seen and the nodules were larger and the tumour burden greater in rats fed HSF + C than in rats fed HSF alone. However, the nodule count and other nodule parameters were not significantly different in RSF and RSF + C fed rats. It is concluded that 2% cholestyramine enhances pancreatic growth when added to soya flour diets and in rats fed HSF it potentiates the action of azaserine on the pancreas. It does not increase the potentiation of azaserine seen with RSF up to 24 weeks.

Animals

Histochemical studies on gamma-glutamyltranspeptidase activity of pancreatic acinar cell lesions induced by 4-hydroxyaminoquinoline 1-oxide and/or azaserine in rats.

The utility of gamma-glutamyltranspeptidase (gamma-GTP) as an enzyme marker during pancreatic acinar cell carcinogenesis in rats was assessed by measuring its enzyme-histochemical performance in pancreatic acinar cell lesions induced by 4-hydroxyaminoquinoline 1-oxide (4-HAQO) and/or azaserine in partially-pancreatectomized Fischer 344 and Wistar rats. Rats were given a single intravenous injection of 4-HAQO (10 or 7 mg/kg body weight) 3 days after partial pancreatectomy followed by intraperitoneal injections of azaserine (30 mg/kg) once a week for 10 weeks, or the same treatment without azaserine. The animals were sacrificed at 3, 6, 10, 12 and 18 months. 4-HAQO predominantly induced basophilic foci in Fischer rats, while in Wistar rats acidophilic foci and acidophilic hyperplastic nodules were predominant. A preferential enhancement of the induction of acidophilic foci and hyperplastic nodules was exhibited in Fischer rats following co-administration with azaserine. Normal acinar cells were positive for gamma-GTP. 90 to 100% of basophilic foci were either negative or slightly positive for gamma-GTP, whilst 68 to 98% of acidophilic foci were positive. The gamma-GTP activities of acidophilic hyperplastic nodules were more variable between nodules than within nodules, and either co-administration of azaserine or extension of experimental duration time appeared to increase the gamma-GTP positive nodules. Between the gamma-GTP positive and decreased nodules, no histological but some morphometrical differences were observed. As far as the nodules induced by 4-HAQO in Fischer rats were concerned, all of the gamma-GTP decreased nodules had thin fibrous capsules and exhibited ultrastructurally more atypia than the positive ones. Present study thus revealed that gamma-GTP is neither a useful nor invariable enzyme marker during pancreatic acinar cell carcinogenesis in rats.

4-Hydroxyaminoquinoline-1-oxide

Cyclosporine inhibition of azaserine-induced atypical acinar cell foci in rat pancreas.

The effects of cyclosporine (CsA), an immunosuppressive agent, on azaserine-induced pancreatic carcinogenesis in rats were investigated using the short-term assays of the quantitation of atypical acinar cell foci. Male Lewis rats at 14 days of age were given a single intraperitoneal injection of azaserine (30 mg/kg). At 25 days of age, the treated rats were weaned and divided into two groups fed either basal diet or the same diet containing 0.011% CsA. Saline-injected rats were also fed the CsA diet. Rats were killed 4 months after azaserine injection and acidophilic and basophilic foci in the pancreas were quantified. The pancreas of the rats given saline injection and maintained on the CsA diet showed no significant histological alterations. The dietary CsA after the injection of azaserine markedly reduced the number of both acidophilic and basophilic foci. It is concluded that addition of CsA to the diet inhibits the growth of initiated cells to form foci in the pancreas of azaserine-treated rats. The experimental model is useful in analyzing the modifying role of this immunosuppressant in the induction and growth of epithelial cell tumors.

Animals

Inhibitory effects of estrogen and castration on the early stage of pancreatic carcinogenesis in Fischer rats treated with azaserine.

Effects of sex steroids on pancreatic carcinogenesis during the early stage were studied in azaserine-treated rats of both sexes. Fischer rats were given weekly i.p. injections of azaserine (30 mg/kg) [CAS:115-02; diazoacetate serine(ester)] at 2 and 3 weeks of age and were divided into six groups. Castration, ovariectomy, and s.c. implantations of either a 0.3-mg or a 1.0-mg 17 beta-estradiol (CAS:50-28.2; estradiol) pellet were performed at 7 weeks of age. The groups were as follows: group 1, intact male; group 2, castrated; group 3, castrated plus 0.3 mg estradiol; group 4, castrated plus 1.0 mg estradiol; group 5, ovariectomized; and group 6, intact female. Rats were killed 4 months after the last injection of azaserine. Azaserine treatment induced atypical acinar cell foci and nodules (AACN) in both sexes. The acidophilic AACN are considered preneoplastic lesions. An apparent sex difference was observed; the number of acidophilic AACN was greater in male rats than in female rats. Castration caused a significant decrease in both the serum testosterone levels and the number of acidophilic AACN, which were comparable to those in ovariectomized female rats. Furthermore, when estradiol treatment was administered to the castrated male rats, a linear decrease in the number of acidophilic AACN and an elevation in the serum estradiol levels were observed and were dose dependent. There were also positive relationships between estradiol treatments and the mean pituitary and pancreas weights. These results showed that estradiol treatment and the drop in testosterone levels caused by castration were highly effective in inhibiting the development and growth of preneoplastic lesions of the pancreas of the rats treated with azaserine. This estradiol effect was dose dependent. The present study, therefore, provides evidence that estrogen may act as an inhibitor and androgen as a promoter in the early stage of pancreatic carcinogenesis in rats.

Animals

Expression of c-myc, c-raf-1, and c-Ki-ras in azaserine-induced pancreatic carcinomas and growing pancreas in rats.

We examined the pattern of expression of several proto-oncogenes during nonneoplastic growth and in acinar cell neoplasms in the rat pancreas. The levels of c-myc, c-raf-1, and c-Ki-ras mRNAs were increased in regenerating pancreata following surgical partial pancreatectomy and following administration of camostat. We also investigated proto-oncogene expression associated with the progression of pancreatic cancers in azaserine-treated rats. Injection of a single dose (30 mg/kg) of azaserine (O-diazoacetyl-L-serine) to 14-d-old rats leads to a variety of neoplastic lesions in the rat pancreas. Total RNA was isolated from lesions in various stages of tumor progression, including adenomas, carcinomas in situ, and invasive carcinomas. We observed increased expression of c-myc, c-raf-1, and c-Ki-ras in azaserine-induced adenomas and carcinomas. Actin expression was also increased in these tissues, whereas amylase expression was variable. However, when compared to the normal growing pancreas, the level of proto-oncogene expression in the adenomas and carcinomas was disproportionate to the degree of cellular division in those tissues. Thus, the alterations induced by azaserine apparently caused a deregulated increase in expression of cellular oncogenes associated with growth regulation.

Adenoma

Induction of foci of altered hepatocytes by a single injection of azaserine to rats.

The induction of foci of altered, gamma-glutamyltranspeptidase (GGT)-positive hepatocytes by azaserine was investigated. After injection of a single dose of azaserine, many foci developed in male Wistar rats fed a choline-devoid (CD) diet containing acetylaminofluorene (AAF), but only a few in rats fed a choline-supplemented (CS) diet containing AAF. Similar results were obtained in rats fed a plain CD diet or a plain CS diet and injected with a single dose of azaserine after a partial hepatectomy. These findings indicate that azaserine is an effective initiator of liver carcinogenesis in rats, and that a CD diet acts as a strong promoter of the evolution initiated liver cells to foci of altered, GGT-positive hepatocytes.

2-Acetylaminofluorene

Kinetics of induction and growth of putative precancerous acinar cell foci in azaserine-induced rat pancreas carcinogenesis.

The kinetics of induction and growth of acinar cell lesions has been investigated in rat pancreas after a single dose of the carcinogen azaserine. The time--response relationship was studied in male Wistar-related rats given a single i.p. injection of 30 mg L-azaserine/kg body weight at 18 days of age. Rats were killed between 4 and 78 weeks after treatment and ATPase-stained pancreas sections were quantitatively evaluated for the number and size of acidophilic, ATPase-positive and basophilic, ATPase-deficient foci. The number of acidophilic foci remained constant from 8 weeks onwards, while the number of basophilic foci slightly increased with time. The size of both acidophilic and basophilic foci increased throughout the experimental period. Due to two times higher number/cm3 and faster growth of the acidophilic foci, four times more acidophilic than basophilic focus tissue was present at the end of the experiment. Progression of acidophilic foci to adenomas and carcinomas was occasionally seen at later time points (greater than 34 weeks) in this rat strain. The dose--response relationship was studied in male and female Sprague--Dawley rats given a single i.p. injection of 0-45 mg azaserine/kg body weight at 19 days of age. Rats were autopsied at 17 weeks after treatment, and pancreas sections were quantitatively evaluated after ATPase histochemistry. The relationship between dose and number of foci was linear up to 30 mg/kg azaserine for both acidophilic and basophilic foci in males and females. For each individual dose, the number of foci induced was the same in males and females, and there were two to three times more acidophilic than basophilic foci. The percentage of pancreatic tissue occupied by focus tissue was 1.75 times higher in males, pointing to a higher growth-potential of acidophilic foci in males than in females. The first-order dose--response kinetics indicate that the conversion of a normal acinar cell into a focus-forming cell occurs by one specific azaserine-mediated rare event, occurring probably at the genetic level of the target cell.

Adenosine Triphosphatases

Inhibitory effects of micronutrients on pancreatic carcinogenesis in azaserine-treated rats.

A study was made on the effects of long-term dietary administration of beta-carotene, vitamin C, vitamin E and selenium, either alone or in combination, on azaserine-induced pancreatic carcinogenesis in rats. Male Wistar rats were given two i.p. injections of 30 mg azaserine per kg body weight at 19 and 26 days of age. The rats were allocated to eight groups of 40 animals each and were fed an AIN-76 diet rich in saturated fat (20% lard), either as such or after supplementation with beta-carotene, vitamin C, beta-carotene + vitamin C, vitamin E, selenium, vitamin E + selenium, or the combination of all micronutrients investigated. Fifteen months after the last treatment with azaserine the survivors were killed. The pancreata were examined for the number and size of advanced putative preneoplastic lesions and the number of neoplasms as well. Rats maintained on a diet high in either beta-carotene, vitamin C or selenium developed significantly less atypical acinar cells nodules, adenomas and carcinomas as compared to controls. The number of tumour-bearing animals was significantly lower in the groups fed the diet high in beta-carotene or selenium. In animals of the group given a diet high in all micronutrients investigated, both the number and incidence of pancreatic tumours was lower than in all other groups. It was concluded that selenium, beta-carotene and vitamin C, alone as well as in combination, have an inhibitory effect on pancreatic carcinogenesis induced in rats by azaserine.

Animals

Growth of pancreatic foci and development of pancreatic cancer with a single dose of azaserine in the rat.

Studies were undertaken to characterize the growth of the azaserine-induced putative preneoplastic lesions in rats and to determine if a single dose of azaserine would be carcinogenic. Male Lewis rats were given a single i.p. injection of 30 mg L-azaserine/kg body weight at 7 weeks of age. A purified diet was fed throughout the study. Rats (10-12 per group) were autopsied at 6, 9, 12, 15 and 18 months post-initiation, and pancreases were quantitatively evaluated to characterize the growth of acidophilic and basophilic foci and nodules (henceforth called foci), and the incidence of neoplasms. All azaserine-treated rats had foci, and at all times approximately equal numbers of acidophilic and basophilic foci were present in the pancreas. The number of basophilic foci increased with time, and while their size also increased, the change was small compared with the increase in size of the acidophilic foci. Conversely, all acidophilic foci appeared to be present by 6-9 months, and their size greatly increased with time. The data suggest that virtually all foci persist rather than regress or remodel. At 9 months the incidence of carcinoma in situ was 30% and by 18 months there was a 100% incidence of pancreatic cancers (58% carcinoma in situ and 42% carcinoma).

Animals

Ulex Europaeus-I: a marker for differentiation of (pre)cancerous lesions induced in the rat pancreas by azaserine.

The binding patterns of the lectin Ulex Europaeus-I (UEA-I) to pancreatic cells of Wistar rats from TNO, in azaserine-induced acinar cell lesions, was examined by peroxidase-conjugated UEA-I. In the normal rat, acinar cells showed this lectin binding to luminal and intracytoplasmic cell membranes. Four different types of acinar cell nodules could be distinguished in this rat treated with azaserine. Acinar cell lesions, types 1-3, showed stronger lectin binding than was seen in normal tissue, whereas in type 4 lesions acinar cells showed similar or weaker binding than did the normal cells. In type 1 lesions, UEA-I binding was restricted to the luminal and intracytoplasmic cell membranes. Strong basolateral cell membrane binding not seen in the normal and type 1 or type 4 lesions was characteristic for type 2 lesions. Type 3 lesions were considered as the intermediate between type 1 and type 2. Comparison of histocytologic and UEA-I binding patterns demonstrated that type 1 lesions correspond to 'acidophilic nodules', type 2 to 'well- to moderately differentiated carcinoma', type 3 to 'in situ carcinoma' and type 4 to 'basophilic nodules'. Based on this classification, all 'nodules within nodules' observed in the pancreases of azaserine-treated rats were of malignant types. The present study indicates that UEA-I binding is a useful marker to differentiate between the benign and malignant lesions induced in rat pancreas by azaserine.

Animals

Effect of orchiectomy and testosterone on the early stages of azaserine-induced pancreatic carcinogenesis in the rat.

The incidence of carcinoma of the pancreas is higher among men than women. It is also higher among male than female carcinogen-treated rats. The role of testosterone in this preferential induction of pancreatic cancer was evaluated in a rat model of pancreatic carcinogenesis. Two-week-old Lewis rats were treated with a single injection of azaserine. At weaning (3 weeks), rats were divided into five groups as follows: females; intact males; sham-operated males; orchiectomized males; and orchiectomized males plus testosterone. Four months after administration of azaserine, quantitative histologic analysis of atypical acinar cell foci and nodules of the pancreas showed that in female and orchiectomized male rats, foci and nodules were smaller and less numerous than in intact males. Testosterone treatment partly reversed the effect of orchiectomy. This suggests that the susceptibility of male rats to induction of pancreatic carcinomas by azaserine is at least partially mediated by testosterone. Estrogen and testosterone receptors were assayed, but high-affinity receptors characteristic of gonadal tissues were not detected in normal pancreas or in a transplantable azaserine-induced acinar cell carcinoma. Thus, the effect of testosterone in the pancreas may depend on steroid-binding proteins of another type, or may be indirectly mediated.

Animals

Adenocarcinoma of the pancreas in azaserine-treated rats.

Development of a model of carcinoma of the pancreas in rats was approached by attempting to identify chemicals that (a) behave as mutagens and (b) localize in the pancreas following systemic administration; and then to study the effects of long-term administration. Azaserine was selected because it behaves as a direct-acting mutagen in two bacterial test systems and because tissue distribution studies showed concentration especially in kidney and pancreas. Groups of rats have been given i.p. injections once or twice weekly for 6 months, and rats have been autopsied after 6 to 18 months. During the first year pancreases developed (a) nodules of atypical exocrine cells which seem to represent hyperplastic foci and (b) encapsulated adenomas. After 1 year most pancreases from treated rats are diffusely abnormal and contain many hyperplastic nodules and adenomas, while more than one-quarter have had pancreatic adenocarcimona. Metastases have been observed in lymph nodes, liver, and lung. No carcinomas or adenomas have been observed in control rats. No other organ shows as high an incidence of involvement as pancreas, but renal neoplasms were frequent. Studies with another chemical O-(N-methyl-N-nitroso-beta-alanyl)-L-serine, are at an earlier stage. The tissue distribution of radioactivity following injection of a 14C-labeled sample is similar to that of azaserine; however, this compound is not a direct-acting bacterial mutagen. Rats treated for 6 months twice weekly i.p. have a higher incidence of nodules of atypical acinar cells than did controls, although the number of nodules per rat is few. No adenomas or carcinomas have been found during 13 months of the study. We conclude that azaserine is a carcinogen in rats and causes major abnormalities of growth and differentiation of the exocrine pancreas, including adenocarcinoma in some rats. O-(N-Methyl-N-mitroso-beta-alanyl)-L-serine had less effect than azaserine on pancreatic growth and differentiation.

Adenocarcinoma

Influence of cholecystokinin antagonist on the effects of cholecystokinin and bombesin on azaserine-induced lesions in rat pancreas.

Both cholecystokinin and bombesin have been shown to promote pancreatic carcinogenesis in the azaserine-rat model. The present study was undertaken to discriminate between the effects of cholecystokinin and bombesin and to establish the modulating properties of the specific cholecystokinin receptor antagonist CR-1409 on pancreatic carcinogenesis. After initiation with 30 mg/kg of azaserine, six groups of 15 Wistar rats were treated for 16 wk with cholecystokinin, bombesin, or gelatin (control), some in combination with CR-1409. Doses of cholecystokinin (2.5 micrograms/kg) and bombesin (10 micrograms/kg) were chosen that rendered approximately equal plasma cholecystokinin levels. Both cholecystokinin and bombesin were found to stimulate pancreatic growth, whereas CR-1409 only inhibited the growth-promoting effect of cholecystokinin significantly. Furthermore, both peptides stimulated the development of putative preneoplastic lesions, whereas CR-1409 only inhibited the effect of cholecystokinin significantly. It is concluded that (a) CR-1409 inhibits the promoting effect of cholecystokinin on pancreatic growth and azaserine-induced early pancreatic lesions and (b) the effects of bombesin cannot be fully ascribed to stimulation of the secretion of endogenous cholecystokinin.

Animals

Production of pancreatic acinar cell carcinoma by combined administration of 4-hydroxyaminoquinoline 1-oxide and azaserine in partial pancreatectomized rats.

The effect of azaserine on the pancreatic tumorigenesis of 4-hydroxyaminoquinoline 1-oxide (4-HAQO) after partial pancreatectomy in rats was studied. Pancreatic acinar cell carcinomas were produced in 7 out of 10 rats (70%), which received 7 mg/kg body wt. 4-HAQO 3 days after partial pancreatectomy, followed by 10 weekly injections of 30 mg/kg body wt. azaserine. Partial pancreatectomy enhanced the carcinogenesis of 4-HAQO, which was further promoted by azaserine.

4-Hydroxyaminoquinoline-1-oxide