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Endogenous formation of nitrosamines and oxidative DNA-damaging agents in tobacco users.

One-third of all cancers worldwide can be attributed to various tobacco habits. Both in tobacco smoke and smokeless tobacco, carcinogenic N-nitroso compounds (NOC) are implicated as DNA-damaging agents in cancers of the aerodigestive tract and the pancreas. The exposure from nitrosamines in certain types of tobacco use such as "toombak" in Sudan could be as high as a few milligrams per day. Using the N-nitrosoproline test, it has been shown that smoking contributes to endogenous nitrosation and likely increases NOC formation in vivo. Smokeless tobacco, most widely used in the form of chewing of betel quid (BQ) with tobacco, was shown to particularly enhance endogenous nitrosation in the oral cavity, a site where chewing habits are causally associated with cancer. Poor oral hygiene was found to contribute to the formation of nitrosamines in the oral cavity. The evidence so far accumulated demonstrates that tobacco habits increase endogenous NOC formation, thus adding to the burden of exposure by preformed carcinogenic NOC in tobacco products. In snuff dippers, the unexpected higher level of HPB released from hemoglobin, an exposure marker for carcinogenic tobacco-specific nitrosamines, has been attributed to the endogenous formation of these carcinogens. Recent studies have demonstrated that besides carcinogenic tobacco-specific nitrosamines, reactive oxygen species derived from BQ ingredients could also play a role in the etiology of oral cancer in chewers. Although the use of chemopreventive agents may block nitrosation reactions in vivo in tobacco users, cessation of tobacco habits is the only safe way for an efficient reduction of cancer risk, in view of the high exposure to other (preformed) tobacco-related carcinogens.

Areca↗

Nitrosamine and related food intake and gastric and oesophageal cancer risk: a systematic review of the epidemiological evidence.

AIM: To study the association between nitrite and nitrosamine intake and gastric cancer (GC), between meat and processed meat intake, GC and oesophageal cancer (OC), and between preserved fish, vegetable and smoked food intake and GC. METHODS: In this article we reviewed all the published cohort and case-control studies from 1985-2005, and analyzed the relationship between nitrosamine and nitrite intake and the most important related food intake (meat and processed meat, preserved vegetables and fish, smoked foods and beer drinking) and GC or OC risk. Sixty-one studies, 11 cohorts and 50 case-control studies were included. RESULTS: Evidence from case-control studies supported an association between nitrite and nitrosamine intake with GC but evidence was insufficient in relation to OC. A high proportion of case-control studies found a positive association with meat intake for both tumours (11 of 16 studies on GC and 11 of 18 studies on OC). A relatively large number of case-control studies showed quite consistent results supporting a positive association between processed meat intake and GC and OC risk (10 of 14 studies on GC and 8 of 9 studies on OC). Almost all the case-control studies found a positive and significant association between preserved fish, vegetable and smoked food intake and GC. The evidence regarding OC was more limited. Overall the evidence from cohort studies was insufficient or more inconsistent than that from case-control studies. CONCLUSION: The available evidence supports a positive association between nitrite and nitrosamine intake and GC, between meat and processed meat intake and GC and OC, and between preserved fish, vegetable and smoked food intake and GC, but is not conclusive.

Case-Control Studies↗

Effect of thiocyanate on nitrite estimation and the cleavage of nitrosamines.

Thiocyanate or bromide increased the colour formed by nitrite reacting with sulfanilic acid and naphthylethylenediamine. If the colour reagents were added together with thiocyanate (final concentration, M/10), the colour intensity was doubled. If sulfanilic acid was added three minutes before addition of naphthylethylenediamine, the relationship between nitrite concentration and colour production was more linear in the presence of thiocyanate. This effect was due to thiocyanate catalysing the diazotization of sulfanilic acid and inhibiting the reaction of nitrite with naphthylethylenediamine. Bromide and thiocyanate are similar in their catalytic effects on nitrosation, and hydrobromic acid in glacial acetic acid is an effective reagent for denitrosation of nitrosamine. Although thiocyanate catalysed denitrosation of nitrosamines, the effect was small except with nitrosomethylaniline, which had also been found to be denitrosated by sulfanilic acid. Thiocyanate could not be used generally for the destruction of nitrosamines; it was also found to be ineffective as an alternative to hydrobromic acid in the estimation of nitrosamines.

Acetates↗

Presence of N-nitrosamines in canned liver patty.

The presence of N-nitrosamines was determined in samples of industrially manufactured liver patty stored at different temperatures for a variable period of time. Sample preparation included steam distillation and extraction of redistilled samples with dichlormethane. The extracts were analyzed by a gas chromatography--mass spectrometry system (GC-MS-SIM). Study results expressed as total N-nitrosamines, including methylethyl-, diethyl- and dibutyl-N-nitrosamines, ranged from 0.0008 to 2.997 mg/kg, which significantly exceeded the recommended value of 0.002 mg/kg. The increase in the formation of N-nitrosamines was directly dependent on the length and temperature of product storage.

Animals↗

The kinetics of chemical reaction of activated nitrosamine with organic substrates.

The chemical reaction of tosylated N-nitrosobis (2-hydroxylpropyl) amine with aniline, 1-naphthol, pyridine, and hydroxylamine follows kinetics which can be described in a mixed order rate equation. This nitrosamine, considered an activated nitrosamine with a potential for alkylating a substrate, was seen to alkylate aniline, pyridine, 1-naphthol, and hydroxylamine. The presence of salts in the solution as well as an increase in solution pH increased the rate of reaction of the nitrosamine with substrates. The nitrosamine reacts quickly with water but will not react with solvents such as acetonitrile, dimethylsulfoxide, and methylene chloride.

Alkylating Agents↗

Metabolism of carcinogenic nitrosamines by rat nasal mucosa and the effect of diallyl sulfide.

Rat nasal cavity is one of the target organs for carcinogenesis induced by N-nitrosodimethylamine (NDMA), N-nitrosodiethylamine (NDEA), and 4-(methylnitrosamino)-1-(3-pyridyl)-1-butanone (NNK). The present work investigated the metabolism of these nitrosamines by rat nasal microsomes, as well as the possible modulating factors. Microsomes prepared from rat nasal mucosa were efficient in metabolizing these nitrosamines. In general, the metabolism of the nitrosamines was slightly higher in 9-week-old rats than in 4-week-old animals, and there was no sex-related difference. Fasting of rats for 48 h, which is known to induce hepatic cytochrome P450IIE1 and NDMA metabolism, did not increase the nasal metabolism of NDMA, NDEA, or NNK. Pretreatment of rats with acetone, another inducer of hepatic P450IIE1, did not increase the metabolism of NDMA. Furthermore, it decreased the nasal metabolism of NDEA and NNK. Immunoinhibition studies suggest that, in the nasal mucosa, P450IIE1 is only partially responsible for the oxidation of NDMA and other P450 isozymes are responsible for the metabolism of NDEA. A single p.o. pretreatment of male rats with diallyl sulfide (DAS), a component of garlic oil, caused a significant decrease in the oxidative metabolism of NDEA and NNK in rat nasal mucosa. Whereas the nasal metabolism of NDMA was reduced by DAS pretreatment, there was no change in the amount of the nasal microsomal proteins immunoreactive with the antibodies against P450IIE1. The inhibitory effect of DAS on the nasal oxidative metabolism of NDMA, NDEA, and NNK was also observed in experiments in vitro. The results demonstrate the ability of nasal mucosa to metabolically activate these nitrosamines and the inhibition of this process by DAS, suggesting that DAS may be effective in inhibiting the related nasal tumorigenesis.

Acetone↗

Artifact formation during smoke trapping: an improved method for determination of N-nitrosamines in cigarette smoke.

Studies in our laboratory revealed artifactual formation of N-nitrosamines during trapping of mainstream and sidestream tobacco smoke by the method of Hoffmann and coworkers (2, 4). Both volatile and tobacco-specific N-nitrosamines were produced. This artifact formation took place on the Cambridge filter, which is part of the collection train used in the previously published procedure. When the filter was treated with ascorbic acid before smoke collection, artifact formation was inhibited. The improved method resulting from these studies was applied to a comparative analysis of N-nitrosamines in smoke from cigarettes that heat, but do not burn, tobacco (the test cigarette) and several reference cigarettes. Concentrations of volatile and tobacco-specific N-nitrosamines in both mainstream and sidestream smoke from the test cigarette were substantially lower than in the reference cigarettes.

Antioxidants↗

Nitrosamine formation from amines applied to the skin of mice after and before exposure to nitrogen dioxide.

Skin lipids of mice exposed to NO2 contain lipid-soluble nitrosating agent(s) (NSA) that react in vitro with amines to produce nitrosamines. To test whether this reaction occurs in skin, we exposed mice to 50 ppm NO2 for 4 h and, 20 h later, applied 25 mg morpholine or N-methylaniline to the skin, which was then analyzed for the corresponding nitrosamine. When morpholine was applied, mean N-nitrosomorpholine yield was only 0.3 nmol/mouse (not significant). When N-methylaniline was applied and mice were killed after 10-40 min, N-nitroso-N-methylaniline yield in the skin was 13-21 nmol/mouse of which 87% occurred in the hair. NSA formation when mice were exposed to 6.5 ppm NO2 was only 0.15% of that for exposure to 50 ppm NO2. NSA occurred mostly in surface lipids of the skin and its in vitro reaction to give nitrosamines was not inhibited by alpha-tocopherol. When morpholine was painted and mice were then exposed to 55 ppm NO2 for 30 min, the skins contained 19 nmol N-nitrosomorpholine/mouse, attributed to a direct reaction between NO2 and the amine. We concluded that nitrosamine formation in skin by this direct reaction may be more important than the reaction of amines with NO2-derived NSA.

Aniline Compounds↗

[Effect of modifiers of microsomal enzymes on the enzymatic denitrosation of dialkyl-N-nitrosamines].

The antioxidant butyl-hydroxytoluene has been shown to increase denitrosation of some dialkyl-N-nitrosamines by the liver microsomes of different lines of rats and to protect against diethyl-N-nitrosamine toxicity. 3-Methylcholanthrene, while decreasing denitrosation of diethyl-N-nitrosamine, increased its toxic effect. This data suggested that enzymatic denitrosation is an effective pathway for the inactivation of dialkyl-N-nitrosamines.

Animals↗

Carcinogenic effects of sequential administration of two nitrosamines in Fischer 344 rats.

The carcinogenic effects of sequential treatment of female F344 rats with two nitrosamines were studied. The animals received either methylethylnitrosamine (NMEA), a strong liver carcinogen, N-nitrosomethylaniline (NMA), a moderately strong esophageal carcinogen, or N-nitrosopyrrolidine, (NPyr), a weaker liver carcinogen. The sequentially treated groups were given NMEA followed by NMA and vice versa, NPyr followed by NMEA and vice versa. The dose and duration for each chemical in the sequentially treated groups were identical for the individual treatments. The animals were allowed to die or were killed when moribund. The animals surviving longer than 110 weeks were sacrificed. The NMEA-NPyr and NPyr-NMEA groups had a tumor spectrum characteristic for NMEA alone (a mixture of hepatic carcinomas and sarcomas with extensive metastases to the lungs). The survival was reduced in the NMEA-NPyr group compared to the NMEA alone group. The time to death of the NMA-NMEA group was not affected by the NMA treatment, but many of the animals had esophageal neoplasms. The NMEA-NMA group survival was reduced when compared to the NMEA alone group but the tumor spectrum was dominated by NMEA. The data indicate that when the target organ is the same, the effect of two nitrosamines is additive with the stronger carcinogen dominating the tumor spectrum. When the target organs are different, the initial exposure influences the tumor spectrum, although the treatment with the second nitrosamine enhances the tumorigenicity of the initial nitrosamine.

Animals↗

Metabolism of nitrosamines by purified rabbit liver cytochrome P-450 isozymes.

The metabolism of nitrosamines by microsomal cytochrome P-450 (P-450) isozymes was studied in a reconstituted monooxygenase system. P-450 LM2, LM3a, LM3b and LM3c, LM4, and LM6 were purified, respectively, from the livers of phenobarbital-treated, ethanol-treated, untreated, isosafrole-treated, and imidazole-treated rabbits. Of these isozymes, LM3a had the highest N-nitrosodimethylamine demethylase (NDMAd) activity with a Km of 2.9 mM and Vmax of 9.3 nmol/min/nmol. LM2, LM4, and LM6 exhibited NDMAd activity only at high N-nitrosodimethylamine concentrations, and isozymes LM3b and LM3c had poor activity even at the highest substrate concentrations examined. LM2, however, was more active than LM3a in the metabolism of N-nitrosomethylaniline. With each isozyme (LM3a or LM4), only one Km for NDMAd was observed, whereas with rabbit liver microsomes, multiple Km of 0.07, 0.27, and 36.8 mM were obtained. P-450 isozymes also catalyzed the denitrosation of nitrosamines at rates comparable to or lower than the demethylation, and the ratio of these two reactions was different with different nitrosamines. 2-Phenylethylamine and 3-amino-1,2,4-triazole, which were believed previously to affect NDMAd by mechanisms independent of P-450, were shown to be potent inhibitors of P-450-dependent NDMAd. These results further establish the role of P-450 isozymes in the metabolism of nitrosamines and indicate that LM3a is apparently responsible for the increased N-nitrosodimethylamine metabolism associated with ethanol treatment.

Animals↗

Contamination of some fermented Nigerian beverages by carcinogenic nitrosamines.

A survey to determine the extent of the nitrosamine contamination of some popular fermented Nigerian beverages by dimethyl- and diethylnitrosamine has been carried out in the Lagos, Ogun, Oyo, Ondo, Kwara and Benue States of Nigeria, following the mass spectrometric detection of these carcinogens in palm wine and nono (sour milk). The indication is that the contamination of the drinks, namely, palm-wine, nono, pito, burukutu, and ogogoro, by both nitrosamines is widespread and occurs at the part per billion level. 0.6 - 22 mu g nitrosamine/l was found by routine thin layer and gas liquid chromatographic methods using authentic nitrosamines as reference standards. Because of the widespread contamination of the test beverages by dimethyl- and diethylnitrosamine, and the usually frequent occurrence of nitrosamine precursors in nature, it is presumed that these potent and versatile carcinogens could play a significant role in the formation of human cancers in the Nigerian population.

Alcoholic Beverages↗

Comparison of mutagenicities of N-nitrosamines on Salmonella typhimurium TA100 and Escherichia coli WP2 uvrA/pKM101 using rat and hamster liver s9.

The mutagenicities of twelve N-nitrosamines were tested on Salmonella typhimurium TA100 and Escherichia coli WP2 uvrA/pKM101 in the presence of rat liver S9 or hamster liver S9 by "preincubation" and "pour-plate" assays. The following eleven N-nitrosamines were mutagenic: N-nitroso-N-dimethylamine; N-nitroso-N-diethylamine; N-nitroso-N-di-n-propylamine; N-nitroso-N-di-n-butylamine; N-nitroso-N-methyl-n- amylamine ; N-nitroso-piperidine; N-nitrosomorpholine; N-nitroso-N-methyl-piperazine; N-nitroso-N-methyl-benzylamine; N-nitroso-N-methyl- phenylamine and N-nitroso-N-phenyl-benzylamine. N-Nitroso-N-diphenylamine was not mutagenic. E. coli WP2 uvrA/pKM101 was more sensitive than S. typhimurium TA100 to the mutagenic actions of N-nitroso-dialkyl amines, N-nitroso- aklyl -aryl amines and N-nitroso- diaryl amines, but S. typhimurium TA100 was more sensitive to those of N-nitroso-cyclic amines. Hamster liver S9 was better than rat liver S9 for metabolic activation of N-nitrosamines, and the preincubation step enhanced the mutagenicities of N-nitrosamines.

Animals↗

Mutagenic and DNA-damaging effects of N-(omega-acetoxyalkyl and omega-methoxycarbonylalkyl)-N-(alpha-acetoxyalkyl)nitrosamines, models for metabolically activated N,N-dialkylnitrosamines with an omega-functional group.

Mutagenic and DNA-damaging effects of a series of N,N-dialkylnitrosamines having an alpha-acetoxy group together with an alpha-acetoxy or an omega-methoxycarbonyl group were tested in Salmonella typhimurium, Escherichia coli, and Bacillus subtilis without metabolic activation. The compounds comprised each of 3 N-(omega-acetoxyalkyl)-N-(acetoxymethyl)nitrosamines, N-(omega-methoxycarbonylalkyl)-N-(acetoxymethyl)nitrosamines, and N-(omega-methoxycarbonylalkyl)-N-(alpha-acetoxybutyl)nitrosamines. All the compounds gave positive results in these mutagenicity and repair tests. No definite differences were observed in the mutagenic and DNA-damaging effects between the model compounds derived from the carcinogenic compounds and those derived from the non-carcinogenic counterparts. The strongest mutagenic activity was observed so far with N-(2-methoxycarbonylethyl)-N-(l-acetoxybutyl)nitrosamine in all of the four bacterial strains.

Bacillus subtilis↗

Induction of tumors in heterotopic bladder by topical application of N-methyl-N-nitrosourea and N-butyl-N-(3-carboxypropyl)nitrosamine.

The heterotopic urinary bladder with a communicating reservoir is a potentially useful model for bladder carcinogenesis studies. As a test of whether such bladders will develop transitional cell carcinomas after chronic carcinogenic stimuli, two carcinogens, N-methyl-N-nitrosourea and N-butyl-N-(3-carboxypropyl)nitrosamine, were instilled repeatedly into the reservoir connected with the heterotopic bladder. Transitional cell carcinomas developed in 25 of 33 heterotopic bladders exposed to cumulative doses of 1.5, 3.0, or 6.0 mg of N-methyl-N-nitrosourea for between 20 and 30 weeks, while heterotopic bladders exposed to cumulative doses of 150 or 300 mg of N-butyl-N-(3-carboxypropyl)nitrosamine failed to develop tumors. However, 11 of 27 rats with heterotopic bladders that were exposed to N-butyl-N-(3-carboxypropyl)nitrosamine for over 20 weeks developed tumors in their homotopic or natural bladders. N-Methyl-N-Nitrosourea probably acted directly on the bladder epithelial cells to induce neoplastic change. The reason(s) for the development of tumors in homotopic but not heterotopic bladders when N-butyl-N-(3-carboxypropyl)nitrosamine was administered directly into the heterotopic bladders could not be ascertained from these studies.

Animals↗

Chemical studies on tobacco smoke LIX. Analysis of volatile nitrosamines in tobacco smoke and polluted indoor environments.

Chemical-analytical data were presented illustrating that the mainstream smoke of tobacco products contains traces of volatile N-nitrosamines. The quantity of volatile nitrosamines in the sidestream smoke of cigarettes and cigars exceeds that in the mainstream smoke by at least a factor of 10. This observation led to model studies and analysis of air in bar cars of trains, in a local bar and other indoor atmospheres polluted by tobacco smoke. The results showed that, during one hour in a smoke-polluted indoor environment, one may inhale volatile nitrosamines in quantities equal to those in the mainstream smoke of 0.5-30 cigarettes. It is emphasized that there are, at present, no epidemiological data linking human respiratory cancers to volatile nitrosamines.

Air Pollution↗

Metabolism of N-nitrosamines by cultured human and rat esophagus.

The metabolism of several N-nitrosamines (N-nitrosodimethylamine, N-nitrosoethylmethylamine, N-nitrosodiethylamine, N-nitrosobenzylmethylamine, and N-nitrosopyrrolidine) in cultured human and rat esophagus has been investigated by measuring (a) CO2, (b) metabolites with an oxo group, and (c) metabolites bound to DNA. Both acyclic and cyclic N-nitrosamines were metabolized by rat esophagus. The highest level of metabolite binding was seen with N-nitrosobenzylmethylamine, an organotrophic carcinogen for the rat esophagus. The binding level was about 100-fold higher than in human esophagus. This compound methylated rat esophageal DNA at positions 7 and O6 of guanine. The level of benzylation in rat was one-tenth of the level of methylation. Formation of benzaldehyde exceeded that of formaldehyde plus CO2 by a factor of six, indicating that the methylene group was preferentially oxidized. N-Nitrosoethylmethylamine, another unsymmetrical N-nitrosamine, was preferentially oxidized by rat esophagus in the ethyl group, as shown by higher formation of CO2 and acetaldehyde from the compound labeled in the ethyl group. The highest binding level to DNA from this compound was observed with the methyl group. No binding was detected to human esophagus. N-Nitrosopyrrolidine was oxidized by both rat and human esophagus in the alpha position, as measured by the formation of 2,4-dinitrophenylhydrazone derivative of 4-hydroxybutanal. Binding of metabolites of N-nitrosopyrrolidine to DNA was detected only in rat esophagus. As measured by the formation of both CO2 and formaldehyde, N-nitrosodimethylamine was metabolized by both human and rat esophagus. While most of the radioactivity associated with DNA was found to be incorporated into guanine and adenine, methylation of the guanine positions 7 and O6 was detected by chromatography of the hydrolyzed rat DNA. The results indicate significant quantitative and perhaps qualitative differences between cultured rat and human esophagus in their ability to activate N-nitrosamines, although unknown physiological differences after culture may contribute to this difference.

Alkylation↗

A novel oxidative degradation of N-nitrosamine via electron transfer.

Anodic oxidation of N-nitrosamines derived from various secondary amines has been investigated by cyclic voltammetry and controlled-potential electrolysis at a glassy carbon electrode in acetonitrile. The nitrosamines give one, two, or three irreversible anodic peaks, depending upon the structure of the parent secondary amines. Electrolysis of simple dialkylnitrosamines gave the corresponding nitramines with coulometric n-values between 1 and 1.5, together with beta-ketonitrosamines in which the carbonyl group is on the same side as the nitroso-oxygen atom. With N-nitrosopiperidine (derived from a cyclic amine), N-nitropiperidine was formed in the same way, but the beta-oxidized nitrosamine was not detected in the solution from electrolysis. Added water (ca. 1%) in acetonitrile had essentially no effect on the electrochemistry of simple dialkylnitrosamines, whereas the first anodic peak of N-nitrosopiperidine was increased and the formation of N-nitropiperidine was inhibited in the macroscale electrolysis. In deoxygenated acetonitrile, the first anodic peaks of all the nitrosamines examined were enhanced and the other anodic peaks became obscure. Macroscale electroysis gave neither the nitramines nor the beta-ketonitrosamines and the coulometric n-value increased. It is suggested that unidentified oxidation processes produce electroactive species whose further oxidation results in various degradation products.

Nitrosamines↗