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The mechanism and regioselectivity of the ene reactions of nitroso compounds: a theoretical study of reactivity, regioselectivity, and kinetic isotope effects establishes a stepwise path involving polarized diradical intermediates.

A theoretical study of the mechanisms of ene reactions of nitroso compounds has been completed, using UB3LYP, CASPT2, UCCSD(T) and UQCISD(T) methods. Stepwise paths through polarized diradical intermediates are always preferred. These intermediates have unusual properties, involving high rotational barriers about formally single bonds, which permit them to maintain stereochemical relationships. The diradicals may exchange the RNO moiety between the two ends of the alkene via an aziridine N-oxide. The aziridine N-oxide cannot be accessed directly from reactants and cannot lead directly to ene products. It is therefore an innocent by-stander in the way proposed by Singleton for the aziridinium imide in the ene reactions of triazolinediones. A detailed analysis of the electronic structure of the polarized diradicals is given. The kinetic isotope effects measured in a Stephenson isotope effect test have been reproduced. These kinetic isotope effects are consistent with a mechanism in which partitioning of the polarized diradical between cyclization to an aziridine N-oxide and H-abstraction to ene product takes place, and in which the formation of the polarized diradical is to some extent reversible. Finally, calculated regioselectivities reproduce those observed experimentally.

Journal Article↗

Stereoselective cycloadditions of chiral acyl-nitroso compounds; selective reactions of ring-cleaved cycloadducts leading to a new approach to polyoxamic acid.

Diesters obtained from diacids produced by oxidative ring cleavage of cycloadducts derived from acyl-nitroso compounds and cyclic 1,3-dienes undergo highly regioselective hydrolysis on reaction with lithium hydroperoxide, which allows for easy differentiation of the carboxyl groups leading to a new approach to polyoxamic acid.

Journal Article↗

Endogenous versus exogenous exposure to N-nitroso compounds and gastric cancer risk in the European Prospective Investigation into Cancer and Nutrition (EPIC-EURGAST) study.

The risk of gastric cancer (GC) associated with dietary intake of nitrosodimethylamine (NDMA) and endogenous formation of nitroso compounds (NOCs) was investigated in the European Prospective Investigation into Cancer and Nutrition (EPIC). The study included 521,457 individuals and 314 incident cases of GC that had occurred after 6.6 average years of follow-up. An index of endogenous NOC (ENOC) formation was estimated using data of the iron content from meat intake and faecal apparent total NOC formation according to previous published studies. Antibodies to Helicobacter pylori and vitamin C levels were measured in a sub-sample of cases and matched controls included in a nested case-control within the cohort. Exposure to NDMA was < 1 microg on average compared with 93 mug on average from ENOC. There was no association between NDMA intake and GC risk (HR, 1.00; 95% CI, 0.7-1.43). ENOC was significantly associated with non-cardia cancer risk (HR, 1.42; 95% CI, 1.14-1.78 for an increase of 40 microg/day) but not with cardia cancer (HR, 0.96; 95% CI, 0.69-1.33). Although the number of not infected cases is low, our data suggest a possible interaction between ENOC and H.pylori infection (P for interaction = 0.09). Moreover, we observed an interaction between plasma vitamin C and ENOC (P < 0.02). ENOC formation may account for our previously reported association between red and processed meat consumption and gastric cancer risk.

Adenocarcinoma↗

Identification of nitroso compounds from biotransformation of 2,4-dinitrotoluene.

The intermediates of microbial transformation of 2,4-dinitrotoluene by a mixed bacterial culture derived from activated sludge were identified as 2-amino-4-nitrotoluene, 4-amino-2-nitrotoluene, 2-nitroso-4-nitrotoluene, and 4-nitroso-2-nitrotoluene. The biotransformation of 2,4-dinitrotoluene occurred only under anaerobic conditions with an exogenous carbon source. The two nitroso compounds were unstable and could be observed only at the early stage of 2,4-dinitrotoluene anaerobic biotransformation.

Journal Article↗

The carcinogenicity of N-nitroso compounds formed endogenously in mice from benzimidazole carbamate pesticides.

Malignant lymphomas were developed in Swiss mice after intragastric treatment with carbamate pesticides combined with sodium nitrite in their drinking water. Attention is directed to the carcinogenic effect of N-nitroso compounds formed from carbamate pesticides in vivo. The importance of further investigations is stressed, since these results indicate that, under appropriate conditions, commercially available pesticides may increase tumor frequency in mice.

Animals↗

Caffeine-derived N-nitroso compounds. III: Mutagenicity in S. typhimurium and in vitro induction of DNA single-strand breaks in rat hepatocytes by mononitrosocaffeidine and dinitrosocaffeidine.

Mutagenesis in S. typhimurium and in vitro induction of DNA single-strand breaks in primary rat hepatocytes (DNA-SSB) have been investigated for two new N-nitroso compounds, mononitrosocaffeidine (MNC) and dinitrosocaffeidine (DNC). Mononitrosamidocaffeidine (MNAC) and tert.-(butyloxy)carbonyl-mononitrosamidocaffeidine (t-BOC-MNAC), both nitrosated derivatives of caffeidine with nitrosation at methylcarboxamide-N only, were also similarly studied. MNC, an asymmetric nitrosamine, failed to show mutagenicity in any of the tester strains used, and also did not induce DNA-SSB in rat hepatocytes. DNC, having both N-nitrosamide and N-nitrosamine groups in the molecule, showed direct mutagenicity in TA100, TA1535 and TA102. The mutagenic potential of the compound was found to increase on S9 activation. However, it was non-mutagenic in TA98 and TA1537. DNC also exhibited a high potential for inducing alkali-labile DNA-SSB in rat hepatocytes (70-78% C-T value) and was cytotoxic at concentrations over 0.1 mumole/ml. Both MNC and DNC were found to produce formaldehyde on S9 activation. MNAC was not mutagenic directly but showed weak mutagenicity on metabolic activation, whereas t-BOC-MNAC was mutagenic both with and without S9 activation in TA100, TA1535 and TA102. t-BOC-MNAC was more cytotoxic to hepatocytes than MNAC, though both caused DNA-SSB to the same extent (62% C-T value). On the basis of the presented data it is inferred that while DNC is a direct-acting mutagen in TA100, TA1535 and TA102 due to the presence of a reactive N-methylnitrosamido group, its mutagenic potential is greatly enhanced in the presence of S9 possibly due to the synergistic influence of an activated N-methylnitrosamino group in the molecule. Additionally, the study shows a qualitative consistency between Salmonella mutagenicity, genotoxicity in hepatocytes and the reactivity of the methyl group at the nitrosamido-N in nitrosated caffeidine compounds.

Animals↗

Total N-nitroso compounds and their precursors in hot dogs and in the gastrointestinal tract and feces of rats and mice: possible etiologic agents for colon cancer.

We review evidence that red and processed meat are causes of colon cancer and that processed meat is a risk factor for childhood cancer and type 2 diabetes. Associations could be due to N-nitroso compounds (NOCs) derived from nitrosation of NOC precursors (NOCPs). We review our survey of total NOC and NOCP content of foods. Only rapidly nitrosated amines, including a glycosyl amino acid, were efficiently determined as NOCPs. NOCPs in hot dogs and rat feces were partly purified by adsorption-desorption and HPLC. After nitrosation, purified hot dog fractions were directly mutagenic in Ames test. The main NOCPs in these materials may be N-glycosyl amino acids and peptides. NOC levels in rat gastrointestinal tract rose steadily from stomach to feces. NOCP levels showed similar trend but with sharp increases from stomach to duodenum. One day after Min and C57BL/6J mice were fed 4% dextran sulfate sodium to induce acute colitis, fecal NOC levels increased 1.9-fold compared with untreated mice (P < 0.05). For 7 d Swiss mice received semipurified diet, 180 g beef-pork hot dogs mixed with 820 g diet or 180 g sautéed beef mixed with 820 g diet. Fecal NOC outputs on day 7 were 3.7-5.0 (hot dog) and 2.0-2.9 (beef) times those for control groups (P < 0.002 for combined groups), perhaps reflecting higher dietary NOC intakes. Feeding a similar hot dog mixture to mice did not affect normal 7-methyldeoxyguanosine level in colonic mucosal DNA. Overall, results support the hypothesis that colonic NOCs are a cause of colon cancer.

Animals↗

[On the problems with respect to the formation of N-nitroso compound precursors when using alkylating agents in the fumigation of foodstuffs. II. N-methylation of various amino acids by the action of methyl bromide (author's transl)].

The aim of this investigation was to determine whether the insecticide, methyl bromide, used in the treatment of foodstuffs reacts with the amino group of various amino acids in the sense of an N-methylation, thus generating substrates which can be converted to nitroso compounds, i.e. those which are the precursors of cancerogenic compounds. Cooled liquid methyl bromide was added to the aqueous solutions of five amino acids at different pH values. Samples for thin layer chromatographic separation of the derivatives formed were taken after 1, 2, 3, 4, and 8 hours. The method of proving used was at ninhydrine reaction. The results show that methyl bromide reacts with the amino acids glycine, alanine, valine, leucine and glutamic acid to degrees depending upon the pH value and the length of the reaction. The corresponding N-methyl derivatives are formed, namely sarcosine, N-methyl alanine, N-methyl valine, N-methyl leucine, and N-methyl glutamic acid.

Alanine↗

Comutagenic effects exerted by N-nitroso compounds.

Mutagenesis induced by dimethylnitrosamine (DMN) and N-methyl-N-nitrosourea (NMU) in Salmonella typhimurium TA100 and TA1530 is characterized by biphasic dose and time response curves. At low doses or short incubation times mutagenic response is minimal, but increases rapidly when an apparent threshold dose or threshold incubation time is exceeded. Bacteria pretreated with subthreshold doses of DMN or NMU were many times more sensitive to the mutagenic effects of methylating and ethylating N-nitroso compounds than were untreated bacteria. The growth phase of the bacteria had little effect on the percentage enhancement of mutagenesis caused by pretreatment with NMU although exponentially growing cells were more sensitive to mutagenesis induced by NMU or diethylnitrosamine. Mutagenesis induced by methylmethanesulfonate and N-propyl-N'-nitro-N-nitrosoguanidine was not significantly enhanced by pretreatment of bacteria with NMU or NEU suggesting that the former mutagens act by different mechanisms than NMU or NEU.

Dimethylnitrosamine↗

Studies on the enzymatic reduction of C-nitroso compounds. IV. Partial purification and kinetic properties of porcine heart C-nitrosoreductase.

An NAD(P)H-dependent C-nitrosoreductase was purified 90 fold from porcine heart cytosol fraction by ammonium sulfate fractionation, gel filtration with Sephadex G-100, ion-exchange chromatography on DEAE-Sephadex A-50, and affinity chromatography on 5'-AMP-Sepharose. The enzyme had no aldehyde reductase activity and showed a pH optimum of 5.5. Its molecular weight estimated by gel filtration was about 65,000 and 70,000 daltons. In the reaction catalyzed by this enzyme, 2 mol of NADH were consumed per mol p-nitrosophenol (p-NSP) reduced to p-aminophenol (p-AmP). Nitrosobenzene and other aryl nitroso compounds were also reduced but neither phenylhydroxylamine nor hydroxylamine could serve as the electron acceptor. Kinetic measurements were also carried out and, based on the data obtained, the following scheme is proposed for the mechanism of the reaction: [Formula: see text], where E, E', and E" represent the active enzyme unit, the enzyme unit after two-electron reduction, and the enzyme unit after four-electron reduction, respectively, N in NADH, S is p-NSP, and P1 and P2 are NAD+ and p-AmP, respectively. Para-aminophenol showed an inhibition noncompetitive wih NADH and also one apparently noncompetitive with p-NSP. NAD+ showed an inhibition competitive with NADH and one uncompetitive with p-NSP. These results can also be accounted for by the proposed mechanism.

Alcohol Oxidoreductases↗

Tumor induction by N-nitroso compounds in bivalve mollusks Unio pictorum.

Diethylnitrosamine (DENA) and dimethylnitrosamine (DMNA) dissolved in tank water induced neoplasms in bivalve mollusks Unio pictorum. DENA induced tumors in 18% of the animals exposed to 200 ppm and 68% of those exposed to 400 ppm; average latent periods were 71 and 61 days, respectively. DMNA induced tumors in 8% of the animals exposed to 200 ppm for 51 days and 27% of those exposed for 152 days with average latent periods of 85 and 81 days, respectively. Neoplasms were observed in the digestive gland (basophilic cell tumors; 38 cases), the hemopoietic system (hemocytoblastosis; 12 cases) and the kidney (poorly differentiated carcinoma; 1 case). It is expedient to use mollusks, both for testing of N-nitroso compounds and as a biologic indicator of hydrospheric pollution.

Animals↗

Geographic association between urinary excretion of N-nitroso compounds and oesophageal cancer mortality in China.

Overnight urine samples were collected from approximately 60 male adults in each of 69 counties of China in 1989. Two specimens were collected from each subject--one after a loading dose of proline and ascorbic acid and another after a loading dose of proline only. Levels of N-nitrosamino acids and nitrate were measured in urine samples and correlated with cumulative mortality rates for subjects aged between 0 and 64 years in the 1970s. Oesophageal cancer mortality rates were positively and significantly associated with (i) urinary levels of excreted N-nitrosoproline (NPRO) (after proline and ascorbic acid loading or proline loading only), (ii) N-nitrososarcosine levels, and (iii) nitrosation potential (the decrease in the amount of urinary NPRO after adding ascorbic acid to the proline load). There were also positive correlations between the urinary level of NPRO or other N-nitrosamino acids and that of nitrate. The urinary excretion of nitrate was associated with consumption of various nitrate-rich vegetables. The results suggest that N-nitroso compounds (NOC) or other nitrite-derived carcinogens are implicated in the aetiology of oesophageal cancer in China.

Adult↗

S-Nitroso compounds interfere with zinc probing by Zinquin.

The intracellular homeostasis of zinc is postulated to be controlled by signaling through nitric oxide (NO). Administration of the NO donor S-nitrosocysteine (SNOC) caused a rapid drop in the fluorescence of the zinc-specific fluorescence of the zinc probe zinquin in C6 glioma cells. Tentatively, a strong effect of NO on the level of mobile intracellular zinc ions was concluded. However, zinc analysis with atomic absorption spectrometry demonstrated that the total cellular zinc level was not changed under these conditions. Sodium nitrite or an NO donor devoid of sulfhydryl groups (diethylamine NONOate) exerted no degrading effect on the Zn/zinquin fluorescence, but cysteine alone evoked a similar decline as SNOC. Hence, the sulfhydryl groups of cysteine seem to compete for zinc from the Zn/zinquin complex. Analysis of the reaction products by mass spectrometry demonstrated that cysteine caused a depletion of zinc from the Zn/zinquin complex, whereas an NO donor without sulfhydryl groups (diethylamine NONOate) did not. It is concluded that great caution should be employed when using S-nitroso compounds together with zinquin in investigations of intracellular zinc homeostasis.

Animals↗

Infant mouse as a sensitive bioassay system for carcinogenicity of N-nitroso compounds.

Five groups of 48, C57BLxC3H F1, male mice, 15 days old, were administered NDEA intraperitoneally at the following levels: 0.0 (saline only), 0.625, 1.25, 2.50 and 5.00 microgram per g body weight, in a single dose. Groups of eight mice from each of the dose levels were killed at 40, 50, 60, 70, 80 and 90 weeks of age. The nodular liver lesions were classified s (a) focal areas of non-specific cellular changes, (b) hyperplastic nodules, (c) hepatocellular adenomas and (d) hepatocellular carcinomas. Regardless of the dose, all the animals developed hepatocellular carcinomas. The average latent periods, however, were inversely proportional to dose, being 66 weeks with the lowest dose and 44 weeks with the highest dose. The multiplicity and the average weight of the early nodular lesions (50 weeks) was directly related to th NDEA dose. Thus the higher multiplicity was associated with faster emergence of hepatocellular carcinomas. The high susceptibility to hepatocellular carcinogenesis, in association with the short latency, makes the infant mouse a sensitive bioassay system for assessing the carcinogenic potential of N-nitroso compounds.

Adenoma↗