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Biomedical subjects

W Lijinsky

Publications and source records attributed to W Lijinsky.

At least 37 records · Page 2Linked to original sources

The carcinogenic effect of methapyrilene combined with nitrosodiethylamine given to rats in low doses.

The carcinogenic effects of combinations of methapyrilene hydrochloride (MP), nitrosodiethylamine (NDEA), and phenobarbital (PB) or partial hepatectomy (PH) were examined following sequential treatment of rats. MP is a generally non-genotoxic liver carcinogen of moderate potency, NDEA is a genotoxic liver carcinogen, PB is primarily a liver tumor promoter and PH induces cell proliferation. The dose of each carcinogen was chosen to be below that causing significant liver tumor incidence when given singly. There were 12 protocols involving groups of 28 female rats each. Short treatments with NDEA and MP were followed by 60 weeks of PB promotion or by partial hepatectomy. Each treatment was given separately or in double combination as controls. Several animals of each group were killed at intervals during the experiment for examination of toxic effects and the presence of altered hepatic foci. In only 3 of 12 groups was there a significant incidence of rats with liver neoplasms: the two groups given three treatments: NDEA, MP and PB (86% tumors) or NDEA, MP and PH (33%), and the group receiving NDEA and MP without promotion (46%). The results clearly indicated a co-carcinogenic effect between NDEA and MP. Continuous PB potentiated tumor development, while PH did not. There was no evidence of liver toxicity from any of the treatments, but clear cell foci observed in three groups at weeks 13 and 33 correlated with the later development of liver neoplasms.

Adenoma↗

Nonresponsiveness of the rat liver to alkylating carcinogens given by gavage.

Carcinogenic alkylating agents administered orally are metabolized in the liver and alkylate DNA in liver cells of rats and hamsters. They frequently, but not always, induce liver tumors, in addition to tumors of other organs. Directly acting alkylating agents, such as alkylnitrosoureas and alkylnitrosocarbamates, rarely induce liver tumors, although they alkylate DNA in liver cells. The methylating agents nitrosodimethylamine and azoxymethane induce high incidences of liver tumors in rats when given in drinking water, but few or no liver tumors when given by gavage, although the total dose and the weekly dose were the same in either regimen. In contrast, methylnitrosoethylamine and nitrosodiethylamine give rise to liver tumors in rats in high incidences whether given by gavage or in drinking water. Sharp differences are also observed with other nitrosamines, such as those containing a propyl group with an oxygen substituent in the 2-position. These discrepancies indicate that, in addition to alkylation of DNA, pharmacokinetics of dosing and distribution and other reactions of the carcinogen are the dominant factors in determining the development of tumors in the liver.

Administration, Oral↗

Differences in skin carcinogenesis by methylnitrosourea between mice of several strains.

To compare the susceptibilities of the skin of different strains of mice to the carcinogenic effect of a directly acting alkylating agent, groups of 20 mice were treated twice a week with 25 microliters of a solution of methylnitrosourea in methanol. The solution was 0.04M and was applied to the shaved back of female BALB/c, Sencar, CD-1 and Swiss mice for 25 weeks. Four groups of 20 mice of each strain were 8 weeks old at the beginning of treatment. Another four groups were 58 weeks old when treatment began. More of the BALB/c mice developed skin tumors than the other three strains, the Sencar mice somewhat less. Few CD-1 mice developed skin tumors and about one third of the Swiss mice. In all four strains, there were fewer animals with skin tumors among those begun at 58 weeks than in the young mice, but the difference was small. Survival was poor among CD-1 mice, but there was not a large difference between the strains in time of appearance of first tumor, or in average latent period of skin tumors, almost all of which were carcinomas. The Sencar mice were not outstandingly more sensitive to skin carcinogenesis by MNU, as they were to UV radiation-induced skin carcinogenesis. In a comparable study in Swiss mice neither dimethylnitrosourea nor diethylnitrosourea induced skin tumors by painting and both showed only a weak systemic carcinogenic effect in the lungs, although they are directly acting mutagens.

Animals↗

DNA methylation and oncogene expression in methapyrilene-induced rat liver tumors and in treated hepatocytes in culture.

Continued exposure of rats to carcinogenic doses of methapyrilene (MP) leads to elevated levels of 5-methyl-deoxycytidine (5MC) in liver DNA. Since gene expression often correlates with DNA methylation, we investigated these parameters in the MP-induced hepatocellular carcinomas of Fischer 344 rats. DNA was hypermethylated in liver tissue surrounding the tumors relative to liver tissue of untreated controls of the same age, while tumor DNA was not; DNA methylation declined to normal levels when MP treatment ceased. Gene expression analysis showed measurable levels of mRNA for c-Ki-ras, erb-B, erb-B2, hck, src, lyn, vav, trk, raf-1, l-myc, c-jun, c-yes, c-myc, c-abl, and p53. No significant differences in expression for these and other oncogenes were seen between tumors and surrounding livers, although erb-B2 and vav showed visible decreases compared with normal liver. Hypermethylation of DNA and expression of these oncogenes in MP-treated tissues were not correlated. Levels of mRNA for the same genes in MP-treated hepatocytes in culture were similar to in vivo levels; analysis of DNA synthesis levels showed that this gene expression pattern occurred in the absence of proliferation bursts or toxicity in these cells, thus suggesting that treatment in vivo may produce the same results.

Animals↗

DNA hydroxyethylation by hydroxyethylnitrosoureas in relation to their organ specific carcinogenicity in rats.

N-Hydroxyethylnitroso-N'-ethylurea (HEENU) and N-hydroxyethylnitroso-N'-chloroethylurea (HCNU) are two of the few nitrosoureas which induce hepatocellular tumours in rats without further treatment. In the present study we have investigated whether this is due to selectively elevated levels of DNA hydroxyethylation in the target tissue. Formation of the promutagenic base O6-hydroxyethyldeoxyguanosine (O6-HEdG) in various rat tissues was determined by immuno-slot-blot assay. After a single dose by gavage (0.36 mmol/kg body wt) of HEENU, initial levels of O6-HEdG in liver and brain were close to the detection limit of 1.5 mumol/mol deoxyguanosine. In liver, steady state concentrations of 3.5 mumol/mol were reached after 6 h and maintained for at least 18 h. In brain, O6-HEdG levels were 1.7 mumol/mol after 6 h and 3.0 mumol/mol after 24 h. In a second experiment, the formation of O6-HEdG was assessed in target and non-target tissues 6 h after a single dose by gavage (0.36 mmol/kg) of HEENU, HCNU or hydroxyethylnitrosourea (HENU), which is not hepatocarcinogenic. The extent of DNA hydroxyethylation was greatest with HENU in all tissues examined. Concentrations of O6-HEdG were highest in liver (37.2 mumol/mol), followed by kidney (23.3 mumol/mol), lung (18.9 mumol/mol), brain (6.8 mumol/mol) and testes (3.8 mumol/mol). With HEENU and HCNU, levels of 1.4-3.3 mumol O6-HEdG/mol dG were observed in all tissues. In vitro, the alkylation reactions for all three compounds were nearly complete within 6 h. On a molar basis, yields of O6-HEdG in vitro were similar for HENU and HCNU and 3.7 times lower for HEENU. This suggests that the in vivo reactions of the dialkylnitrosoureas are by pathways other than or in addition to those occurring in vitro. We conclude that the hepatocarcinogenicity of HCNU and HEENU cannot be explained on the basis of their reaction with cellular DNA.

Animals↗

The anomalous biological activity of nitroso-2-oxopropyl compounds.

The carcinogenic action of a set of N-nitroso compounds containing the 2-oxopropyl group was considered in relation to their metabolism and their activity as alkylating agents for DNA. In contrast with the great carcinogenic potency of methylnitrosourea and ethylnitrosourea, comparable with the corresponding dialkylnitrosamines, 2-oxopropylnitrosourea is a weak carcinogen with a limited range of target organs in rats and hamsters. 2-Oxopropylnitrosochloroethylurea was somewhat weaker than 2-oxopropylnitrosourea and similarly induced spleen hemangiosarcomas in hamsters, but few tumors of any kind in rats. The relatively much more potent carcinogenicity of nitrosobis-(2-oxopropyl)amine, nitroso-(2-hydroxypropyl) (2-oxopropyl) amine and methylnitroso-2-oxopropylamine suggests that the activity of an oxopropylating agent is not involved in carcinogenesis by nitroso-2-oxopropylamines. The nitrosamines are likely to undergo extensive metabolism to form proximate carcinogenic moieties, probably including the methyldiazonium ion, which are responsible for the induction of a broad range of tumors in rats and hamsters. These include tumors of the liver, pancreas ducts, lung and nasal mucosa in hamsters, and esophagus, liver, lung, thyroid, kidney, trachea, bladder and nasal mucosa in rats.

Animals↗

Local and systemic carcinogenic effects of alkylating carcinogens in rats treated by intravesicular administration.

Several nitrosamines and an azoxyalkane have been administered intravesically to groups of 12 female F344 rats, twice a week for 20 or 30 weeks. Many of the nitrosamines were as efficacious in giving rise to the same tumors of internal organs as when similar doses were administered orally, showing that absorption from the bladder was as rapid as from other sites. The tumors produced included lung and kidney tumors by nitrosodimethylamine, colon and Zymbal gland tumors by azoxymethane, liver tumors by methylnitrosoethylamine (but not by nitrosodimethylamine), liver and esophagus tumors by nitrosodiethylamine, liver and lung tumors by methylnitrosamino-3-pyridylbutanone, liver tumors by nitrosomorpholine, and tumors of the esophagus by methylnitroso-n-butylamine, 2,6-dimethyl-nitrosomorpholine and methylnitrosamino-N,N-dimethylethylamine. Bladder tumors were induced by intravesicular administration of only low doses of nitrosobis-(2-oxopropyl)amine and to a lesser extent by methylnitroso-n-hexylamine and nitroso-(2-hydroxypropyl)(2-oxopropyl)amine, which all induced tumors systemically in addition. The bladder mucosa seemed to lack enzymes necessary to activate most nitrosamines to locally acting proximate carcinogens, but was quite transparent to the passage of carcinogenic nitrosamines present in the urine into the body to induce tumors in distant organs.

Administration, Intravesical↗

Mouse bronchiolar cell carcinogenesis. Histologic characterization and expression of Clara cell antigen in lesions induced by N-nitrosobis-(2-chloroethyl) ureas.

Female Swiss mice (Cr:NIH(S)) developed bronchiolar cell hyperplasia, dysplasia, metaplasia, and various morphologic types of bronchiolar cell tumors after topical (skin) application of N-nitroso-methyl-bis-chloroethylurea (NMBCU) or N-nitroso-tris-chloroethylurea (NTCU). These compounds are the first found to induce systemically bronchiolar cell tumors in mice in high incidence. Twice a week, with a 3-day interval, a 25-microliter drop of 0.04 mol/l (molar) NMBCU or NTCU in acetone was applied to the shaved interscapular integument for a maximum of 35 to 40 weeks. The earliest lung neoplasms were seen in mice that died after 23 weeks of treatment and affected 11 of 19 with NMBCU and 14 of 19 with NTCU treatment. Tumor growth pattern was nodular or the neoplastic tissue was frequently disseminated throughout the parenchyma, starting from multicentric peribronchiolar foci. The most common tumor types were squamous cell carcinomas and adenosquamous carcinomas, followed by adenocarcinomas with or without secretory cells, and a single ciliated-cell tumor. Histochemical and immunohistochemical studies were carried out on paraffin-embedded lungs using the avidin-biotin immunoperoxidase complex procedure and antisera against keratin, Clara cell antigen, surfactant apoprotein, neuron-specific enolase, bombesin, and chromogranin A. In several mice from both groups, hyperplasias and tumors were composed of cells expressing Clara cell antigen. No tumor cells were found expressing alveolar type II or neuroendocrine cell markers. It appeared that bronchiolar cells, in particular Clara cells, had migrated from terminal bronchioles or invaded bronchiolar walls to extend into the alveolar parenchyma. Squamous cell metaplasia with keratin expression was seen within airways or associated with glandular tumors, especially at the periphery. A unique cell type, with large eosinophilic globules and associated eosinophilic crystals, was seen lining airways or forming hyperplastic and neoplastic lesions. N-nitroso-methyl-bis-chloroethylurea- and NTCU-induced mouse bronchiolar cell alterations could be an interesting new model to study mechanisms of bronchiolar cell differentiation and tumor formation.

Adenocarcinoma, Bronchiolo-Alveolar↗

Alkylation of DNA related to organ-specific carcinogenesis by N-nitroso compounds.

Alkylation of DNA by a number of methylating and ethylating carcinogens, mainly N-nitroso compounds, has been examined in target and non-target organs of rats and Syrian hamsters. Six hours after administration by gavage of small doses identical to those given twice weekly for several months to elicit tumours, animals were killed and dissected. DNA was isolated from several organs and hydrolysed, and the content of methyl- and ethylguanines was measured using high-performance liquid chromatography for separation. In most experiments, radiolabelled carcinogen was used, but in some cases measurement of alkylguanines was by fluorescence. Methylation, O6- and N7-, by methylating compounds was much more extensive than ethylation by the corresponding ethyl compounds, irrespective of their relative potencies in inducing tumours. Similar patterns of alkylation were found in target organs and in non-target organs of the carcinogens. Only marginal differences in methylation were seen with N-nitro-sobis(2-oxopropyl)amine between male and female rat livers, although liver tumours are induced only in females, in feminized males and in old males. Deuterium labelling of the methylene of N-nitrosoethylmethylamine had little effect on methylation or ethylation of DNA in rat liver, although the deuterated compound was a much more potent liver carcinogen. The conclusion is that reactions of the carcinogen other than alkylation of DNA are important in giving rise to tumours.

Alkylation↗

Biochemical studies of six nitrogen-containing heterocycles in rat tissues.

Female rats were dosed orally with one-fifth the LD50 of either 1-nitrosopiperidine (a carcinogen), cyclohexylamine, piperidine, 4-carboxy-1-nitrosopiperidine, 4-cyclohexyl-1-nitrosopiperidine or 2,6-dimethyl-1-nitrosopiperidine at 21 and 4 hr before they were killed. The five noncarcinogenic compounds had no effects on any experimental variables examined [hepatic DNA damage, ornithine decarboxylase (ODC) activity, serum alanine aminotransferase (SGPT) activity, cytochrome P-450 and glutathione content]. After administration of 40 mg/kg of 1-nitrosopiperidine, marked hepatic DNA damage and a 3- to 7-fold increase in the activity of hepatic ODC were observed. 1-Nitrosopiperidine (120 mg/kg, 3/5 LD50) caused DNA damage in rat liver and esophagus but not in leukocytes. This higher dose of 1-nitrosopiperidine also increased hepatic ornithine decarboxylase activity by 9-fold. Thus, this hepatic biochemical assay system correctly identified the one carcinogen and the five noncarcinogens in this series of six nitrogen-containing heterocycles.

Animals↗

Biological activity of hydroxylated chloroethylnitrosoureas.

1-Nitroso-1-(2-hydroxyethyl)-3-(2-chloroethyl)urea (Compound I) and 1-nitroso-1-(2-hydroxypropyl)-3-(2-chloroethyl)urea (Compound II) display significantly reduced antitumor activity compared to the corresponding isomeric derivatives 1-nitroso-1-(2-chloroethyl)-3-(2-hydroxyethyl) urea (Compound III) and 1-nitroso-1-(2-chloroethyl)-3-(2-hydroxypropyl) urea (Compound IV). Their low therapeutic activity is paralleled by low toxicity while mutagenicity and carcinogenicity are high. A comparative investigation of the genotoxicity of Compounds I and III using primary cultures of fetal hamster lung cells revealed an about 14-fold higher rate of DNA single-strand breaks following exposure (100 microM, 1 h) to Compound I as compared to Compound III. The rate of DNA interstrand cross-links, on the other hand, was 11-fold higher following Compound III as compared to Compound I. The results underline that the therapeutic activity of chloroethylnitrosoureas is mainly attributable to their cross-linking potential while induction of DNA single-strand breaks plays a decisive role for mutagenicity and carcinogenicity but appears not to be relevant for antineoplastic effectiveness.

Animals↗

A view of the relation between carcinogenesis and mutagenesis.

The somatic mutation theory of cancer causation gained the status of dogma following the demonstration in the 1970s that the majority of carcinogens were mutagens. However, more than a decade of "validation" and experimentation has failed to explain a notable group of noncongruent mutagens and carcinogens. Other evidence, including cases of nonparallel metabolic activation pathways for mutagenesis and carcinogenesis and patterns of organ-specific effects, does not support the somatic mutation theory. Therefore, the mutagenic reactions of carcinogens might be coincidental rather than causal; alternate mechanisms of carcinogenesis should be considered.

Animals↗

Glutathione and lipid peroxide levels in rat liver following administration of methapyrilene and analogs.

The possibility was examined that the induction of tumors in rat liver by feeding methapyrilene, which is not mutagenic, is related to effects on glutathione levels and lipid peroxidation. Fischer 344 rats were given single-dose and multiple-dose treatments with the anti-histamine methapyrilene (MP), which is carcinogenic in rats, and with two non-carcinogenic analogs, methafurylene (MF) and thenyldiamine (TD) and the effects on malonaldehyde (MDA) formation and glutathione (GSH) levels in the liver were investigated. After a single dose, MDA levels were increased at 6 h by MF and TD and at 24 h by MP. MDA levels returned to normal after 30 h with MP and MF, but not with TD. Levels of MDA (and other TBA-reactive products) after four daily treatments were most elevated by TD, less elevated by MP, and were lowered by MF. Forty-two hours following treatment with both MP and MF, MDA levels had returned to normal, but in TD-treated animals MDA remained high. GSH levels were highest after MF and MP, and remained high at 42 h, but TD induced only a small increase. There appears to be increased lipid peroxidation in the liver as a result of treatment of rats with MP, MF and TD. The greater response induced by TD, as well as the increased liver GSH levels after repeated administration of all three drugs indicate that lipid peroxidation in rat liver is not a particular effect related to the liver carcinogen methapyrilene.

Aminopyridines↗

Carcinogenesis in rats by nitrosodialkylureas containing methyl and ethyl groups given by gavage and in drinking water.

The carcinogenic effects in male and female F344 rats of four nitrosodialkylureas containing methyl or ethyl groups have been compared by two modes of administration, gavage in oil solution or dissolved in drinking water. Weekly doses of 20 and 40 mumol were given to each rat by either route and treatment lasted usually 30 wk, resulting in a total dose per rat of 0.6 or 1.2 mmol. Nitrosodimethylurea and nitroso-1-methyl-3-ethylurea gave rise primarily to tumors of the nervous system, whereas nitrosodiethylurea and nitroso-1-ethyl-3-methylurea gave rise to tumors of the mammary gland, lung, intestinal tract, nervous system, and testicular mesotheliomas. The effect of nitrosodimethylurea was weaker than that of the other three compounds, as measured by rate of mortality with tumors. Drinking water treatment was less effective than treatment by gavage, by the same criterion. The tumorigenic effects paralleled those of the corresponding monoalkylnitrosourea, suggesting the presence in the target organs of receptors for which ethylnitrosoureas or methylnitrosoureas, respectively, have affinity.

Animals↗

S-adenosylmethionine, S-adenosylhomocysteine and DNA methylation levels in the liver of rats fed methapyrilene and analogs.

The antihistamine methapyrilene (hydrochloride) and four close structural analogs, methaphenilene, methafurylene, thenyldiamine and clorothen, were given to rats at a concentration of 0.1% in drinking water for 34 weeks. Only methapyrilene produced notable histopathological changes in the liver, bile duct hyperplasia and focal cellular change. Methapyrilene produced an early and persistent elevation in the ratio of S-adenosylmethionine to S-adenosylhomocysteine, which was 2.8 times the control levels at 34 weeks; none of the other antihistamines produced so high a ratio or altered the ratio as early. Methapyrilene, but not the other antihistamines, produced a significant increase in the methylation of liver DNA at 20 and 34 weeks, as measured by the level of 5-methyldeoxycytidine. The increase in deoxycytosine methylation is so far the only detected effect of the carcinogen methapyrilene on DNA which is absent in rats treated with its non-carcinogenic analogs.

Aminopyridines↗

Comparative tumorigenicity of N-nitroso-2-hydroxymorpholine, N-nitrosodiethanolamine and N-nitrosomorpholine in A/J mice and F344 rats.

N-Nitroso-2-hydroxymorpholine (NHMOR), a genotoxic metabolite of the environmental carcinogens N-nitrosomorpholine (NMOR) and N-nitrosodiethanolamine (NDELA), was assayed for tumorigenicity in A/J mice and F344 rats. Groups of female mice were given NHMOR, NMOR or NDELA in the drinking water over a 10-week period; total doses were 53-55 mumol/mouse. The experiment was terminated after 30 weeks. Whereas NMOR was a potent tumorigen, inducing 20.3 lung tumors/mouse, NHMOR and NDELA were only weakly tumorigenic, giving 1.2 and 1.4 lung tumors/mouse respectively. Groups of female F344 rats were also given these three nitrosamines in drinking water for 50 weeks, as follows: NHMOR, total dose 0.6 mmol/rat; NHMOR, 1.2 mmol; NMOR, 1.1 mmol and NDELA, 5.6 mmol. The experiment was terminated after 120 weeks. NMOR was a potent carcinogen, inducing liver tumors in 100% of the rats. NDELA gave hepatocellular tumors in 70% of the rats. NHMOR was inactive even at the higher dose. The results of this study do not support the hypothesis that NHMOR is a proximate carcinogen of NDELA or NMOR.

Adenocarcinoma↗

Chronic toxicity tests of sodium thiocyanate with sodium nitrite in F344 rats.

Sodium thiocyanate, a common environmental chemical, was found to increase the incidence of liver tumors in a group of rats treated with 0.08% in drinking water. To test the possibility that thiocyanate was catalyzing the formation of carcinogenic nitrosamines from amines and nitrite in the food, a group of 20 male and 20 female rats was given a higher dose of sodium thiocyanate (0.32%) together with sodium nitrite (0.2%) in drinking water. Similar groups of rats were given 0.32% sodium thiocyanate or 0.2% sodium nitrite in drinking water or were untreated. All treatments lasted most of the lifetime of the rats, at least 2 years. There was no difference between the groups, treated or untreated, in survival, or in the incidence of any tumor that could be related to the treatment. The results indicate that sodium thiocyanate is without carcinogenic activity in rats, alone or combined with sodium nitrite.

Animals↗