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Biomedical subjects

R Preussmann

Publications and source records attributed to R Preussmann.

At least 109 records · Page 6Linked to original sources

The carcinogenic effect of nitrosopiperidine administered in the drinking water of Syrian golden hamsters.

Syrian golden hamsters (Mesocricetus auratus W.) were used to test the long-term carcinogenic effect of nitrosopiperidine (NP). Groups of 30 females and 30 males were given 0.05%, 0.025% and 0.006% NP in their drinking water for life. The animals developed neoplasms in the larynx, pharynx, trachea and forestomach (papillary polyps, papillomas and epidermoid carcinomas) and in the liver (hepatocellular adenomas, carcinomas). In addition, cholangiocellular and endothelial liver tumours and colon adenocarcinomas were observed. The overall tumour frequency was dose-dependent and higher in males than in females.

Animals↗

Metabolism of carcinogenic and non-carcinogenic N-nitroso-N-methylaminopyridines. II. Investigations in vivo.

A comparative study of in vivo metabolism of isomeric N-nitroso-N-methylaminopyridines (NMPY) by analysis of urinary metabolites showed remarkable qualitative and quantitative differences in metabolic pathways. After oral application of the carcinogenic and mutagenic 2-NMPY to BD VI rats only 2-hydroxypyridine and 2-aminopyridine were excreted in urine. 2-Hydroxypyridine most probably is formed after activation of the parent compound by alpha-C-hydroxylation, demethylation and hydrolysis of the putative pyridine-2-diazonium intermediate. Evidence is presented that 2-amino-pyridine is generated by the same pathway after reductive cleavage of pyridine-azobonds formed by coupling of the diazonium intermediate to various nucleophiles. No metabolites derived from deactivating pathways and no unchanged 2-NMPY were detected in urine. After oral application of non-carcinogenic 4-NMPY, only the parent compound, its N-oxide and a ring hydroxylated metabolite with intact N-nitroso structure were found, together with 4-aminopyridine. Formation of the latter is thought to result from demethylation of the denitrosation product 4-methylaminopyridine. In contrast to metabolism of carcinogenic 2-NMPY, no 4-hydroxypyridine, indicative for activation of 4-NMPY to a diazonium intermediate, was detectable in urine.

Administration, Intranasal↗

Fluoro-substituted N-nitrosamines. 6. carcinogenicity of N-nitroso-(2,2,2-trifluoroethyl)-ethylamine in rats.

N-Nitroso-(2,2,2-trifluoroethyl)ethylamine (F-3-NDEA) was tested for carcinogenic activity in male Sprague-Dawley rats at 4 dose levels. The compound was given by gavage twice weekly. Treatment related tumors were observed in all experimental groups and appropriate dose-response relations were seen. The main tumor localisations were the esophagus and the nasal cavity. F-3-NDEA therefore is carcinogenic in rats after oral administration, a biological effect to be expected since it had been shown earlier that this compound is enzymatically activated by dealkylation and is weakly mutagenic in bacterial assay systems. A change in organotropism is observed when comparing carcinogenicity of F-3-NDEA with the predominantly hepatocarcinogenic activity of parent N-nitrosodiethylamine.

Animals↗

Occupational nitrosamine exposure. 1. Rubber and tyre industry.

To determine the role of N-nitrosamines in the known increased cancer risk of rubber workers, air concentrations of such carcinogens were measured by area sampling or personal monitoring in 19 factories. N-Nitrosodimethylamine (NDMA) and N-nitrosomorpholine (NMOR) were found regularly, the air concentrations varying between 0.1 and 380 micrograms/m3 personal monitoring. The mean concentration was usually in the range of 1-10 micrograms/m3. Several other nitrosamines could be detected in certain production branches. In retail shops and storage rooms of tyres NDMA and NMOR were found. Most rubber chemicals based on amines are contaminated with N-nitrosamines, but this contamination cannot explain the air concentrations of nitrosamines found. The occurrence of nitrosamines mainly depends upon their formation during production of rubber and rubber products from used vulcanisation accelerators based on amines and the presence of nitrosating agents, such as diphenylnitrosamine (retarder A) and of nitrous gases, in products or production areas. Elimination of one or both precursors for nitrosamine formation resulted in significant reduction of airial contamination of nitrosamines. The results are discussed in regard to the mechanisms of nitrosamine formation during rubber production, as basis for future epidemiological studies and their potential for exposure prevention.

Air Pollutants↗

Carcinogenic effect of low doses of nitrosopyrrolidine administered in drinking water to Syrian golden hamsters.

Three groups of Syrian golden hamsters each consisting of 30 males and 30 females were given three different doses of nitrosopyrrolidine in their drinking water for the duration of their lives. The animals mainly showed hepatocellular neoplasms. Males were more affected than females and tumor incidence was found to be dose-dependent. No liver tumors were seen in females that received the lowest dose.

Animals↗

Nitrosation of sarcosine, proline and 4-hydroxyproline by exposure to nitrogen oxides.

The nitrosation of amino acids (sarcosine, proline and 4-hydroxyproline) was investigated in model experiments. The compounds were exposed in crystalline form and as aqueous solutions to defined concentrations of nitrogen oxides (in the range of 1-100 ppm) in the atmosphere of a reaction chamber. Nitrosated amino acids were analysed by GC/TEA after silylation. Generally the extent of nitrosation increased with NOx concentration, reaction time and air humidity. Nitrosation of aqueous amino acid solutions decreased markedly with increasing pH.

Amino Acids↗

Fluoro-substituted N-nitrosamines. 5. Carcinogenicity of n-nitroso-bis-(4,4,4-trifluoro-n-butyl)amine in rats.

N-Nitroso-bis-(4,4,4-trifluoro-n-butyl)amine (F-6-NDBA) has been synthesized as a derivative of the rat urinary bladder carcinogen N-nitrosodibutylamine (NDBA). Its chronic administration by gavage to Sprague-Dawley rats induced a significant incidence of malignant tumors of the liver and the lungs. Tumors in the liver were diagnosed as multifocal hepatocellular carcinomas and those of the lungs were mainly squamous cell carcinomas. No tumors were observed in the urinary bladder. This confirms earlier results from metabolism and animal carcinogenicity experiments indicating the importance of metabolic oxidation at the terminal carbon atom of NDBA for its organ-specific effects. This metabolic omega-oxidation is blocked in F-6-NDBA.

Animals↗

Fluoro-substituted N-nitrosamines. 2. Metabolism of N-nitrosodiethylamine and of fluorinated analogs in liver microsomal fractions.

In vitro metabolism of N-nitrosodiethylamine (NDEA) and of its two fluorinated analogs N-nitroso-2,2,2-trifluoroethyl-ethylamine (NDEA-F3) and N-nitroso-bis(2,2,2-trifluoro-ethyl)amine (NDEA-F6) was comparatively investigated using rat liver microsomes and S-9 fraction. Aldehydes, nitrite and unchanged nitrosamines were determined. Additionally the mutagenicity was measured in a Salmonella/mammalian microsome assay. NDEA and NDEA-F3 were deethylated and, to a smaller extent, denitrosated. Dealkylation of NDEA-F3 at the fluorinated ethyl group, however, was strongly inhibited. NDEA-F6 was practically not metabolized under the in vitro conditions used. In contrast to NDEA, the mutagenicity of NDEA-F3 was at best marginal; NDEA-F6 was not mutagenic. The results show that substitution of fluorine in beta-position of NDEA strongly influences alpha-C-hydroxylation and denitrosation.

Aldehydes↗

Metabolism of carcinogenic and non-carcinogenic N-nitroso-N-methylaminopyridines. I. Investigations in vitro.

A comparative study of in vitro metabolism of isomeric N-nitroso-N-methylaminopyridines (NMPY) by rat liver microsomes revealed remarkable differences in the respective rates of potentially activating and deactivating processes. N-Nitroso-N-methyl-2-aminopyridine (2-NMPY), a potent carcinogen in rats and a mutagen in the Ames test was demethylated to a much greater extent than its non-carcinogenic and non-mutagenic isomers 3-NMPY and 4-NMPY. In contrast to the findings for 2-NMPY, enzymatic denitrosation and N-oxide formation play a substantial role in metabolism of 3-NMPY and 4-NMPY. The respective rates of presumed activating to deactivating metabolic processes were found to be -1.5 for 3-NMPY, 0.5 for 4-NMPY, but 3 for 2-NMPY at 10 mM substrate concentration. At 1 mM concentration (which is more close to the conditions prevailing in carcinogenicity experiments), however, the respective ratio for 2-NMPY was approximately 50. 2-Hydroxypyridine, the hydrolysis product of the putative pyridine-2-diazonium intermediate, generated after oxidative demethylation, was formed in high yields from 2-NMPY. Only traces of 3-hydroxypyridine were formed from 3-NMPY and 4-hydroxypyridine could not be detected at all. Experimental evidence suggests that generation of 2-aminopyridine, which was found in high yields after incubation of 2-NMPY, is explained best by a secondary metabolic process: reductive cleavage of azo coupling products formed by reaction of the pyridine-2-diazonium intermediate with appropriate nucleophiles in the incubation mixture.

Animals↗

Fluoro-substituted N-nitrosamines. 4. Comparative genotoxic activities of N-nitrosodibutylamine and three fluorinated analogues in two bacterial systems.

N-Nitrosodibutylamine (NDBA) and three fluorinated analogues (N-nitroso (4,4,4-trifluorobutyl-amine, F3NDBA; N-nitrosobis (4,4,4-trifluorobutyl)amine, F6NDBA; and N-nitrosobis (2,2,3,3,4,4,4-heptafluorobutyl) amine, F14NDBA were comparatively investigated for biological activity in two bacterial systems. Opposite orders of magnitude were obtained for their potency in the two tests. For inducing his+ reversion in auxotrophic strains of Salmonella typhimurium the sequence was F3NDBA greater than F6NDBA greater than NDBA and for inducing lethal DNA damage in repair deficient strains of Escherichia coli WP2 it was NDBA greater than F6NDBA. F14NDBA was not active in either test system.

Animals↗