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Gas-phase deprotonation of arylalkylamines. A collision-induced dissociation study.

The collision-induced dissociation (CID) of deprotonated arylalkylamines of general formula R(1)C(6)H(4)CHR(2)CH(2)NR(3)(2) (where R(1) = H, OH, F or NO(2); R(2) = H or OH; R(3) = H or CH(3)) generated by negative chemical ionization with H(2)O and D(2)O as ionizing reagents, is discussed. The negative chemical ionization mass spectra show that, in the absence of a hydroxy group in the aromatic ring, deprotonation takes place at the benzylic position whereas the proton is lost from the OH group when present. The nitro compound forms only M(-.) ions. The CID spectra of the deprotonated molecules show that fragmentations are strongly dependent on the structural features of the molecules, namely the presence or absence of substituents in the aromatic ring or aliphatic chain. Copyright 1999 John Wiley & Sons, Ltd.

Journal Article↗

Transfer Catalysis Between Two Solids: Application to the Reduction of Nitroarenes.

A wide range of aromatic nitro compounds can be reduced to anilines through the use of a Cr(II)/Mn(0) redox couple in the presence of trimethylsilyl chloride [TMSCl, Eq. (1)]. Only 0.25 equivalents of chromium are required to reduce solid-supported nitroarenes (R=solid support); this represents a rare case of transfer catalysis between two solid phases. The reaction is also amenable to solution-phase synthesis (R=OH).

Journal Article↗

Zirconium-catalyzed amine oxidation: a mechanistic study.

The zirconium-catalyzed oxidation of amines in the presence of hydroperoxides gives the corresponding nitro compounds in high yields. In the present paper, we describe mechanistic details of this three-step oxidation, which was investigated by means of DFT calculations. It is shown that N-oxides, hydroxylamines, and nitroso derivatives are formed as intermediates. These compounds had already been postulated on the basis of synthetic experiments. During the oxidation process, the nitrogen atom changes its electronic character from a strong nucleophilic center to a moderate electrophilic center; this is reflected by the geometry of the transition states of the oxygen-transfer process.

Journal Article↗

The decomposition of benzodiazepines during analysis by capillary gas chromatography/mass spectrometry.

A capillary gas chromatography column directly interfaced to a mass spectrometer was used for the analysis of sixteen benzodiazepines. The thermal stability of the drugs was found to be related to their chemical structure. Nine of the benzodiazepines were thermally unstable indicating that care should be taken in the interpretation of gas chromatographic data from this class of drugs. The unstable benzodiazepines were: ketazolam which decomposes to diazepam; N-4 oxides (chlordiazepoxide and demoxepam) which lose an oxygen radical; aromatic 7-nitro compounds (nitrazepam and clonazepam) which are partially reduced to the corresponding amine; alpha-hydroxy ketones (lorazepam and oxazepam) which decompose with the loss of water and N-methyl-alpha-hydroxy ketones (lormetazepam and temazepam) which partially decompose with the loss of a hydrogen molecule to produce the corresponding alpha, beta-diketones. Few problems were encountered in distinguishing the drugs by their mass spectra, the exceptions being ketazolam which decomposes to diazepam and demoxepam which decomposes to desmethyldiazepam. In general, good spectra were obtained from 20-50 ng of drug injected. However, for those compounds where the decompositions were not quantitative (nitrazepam, clonazepam, lormetazepam, temazepam) detection limits were poor.

Benzodiazepines↗

Review: putative mutagens and carcinogens in foods. I. Nitrate/nitrite ingestion and gastric cancer mortality.

Published figures for per capita daily levels of nitrate ingestion in the 1970s are compared with gastric cancer mortality estimates for the same period. A strong positive correlation is observed in 12 countries, not only when the data are analyzed as a linear-linear function, as illustrated in this paper, but also when the relationship is analyzed as a function of (nitrate)2. This correlation supports the concept that important components of gastric cancer induction are the in vivo bacterial reduction of nitrate to nitrite and the intragastric formation of mutagenic/carcinogenic nitroso, and possibly nitro compounds. Data are summarized from a recent National Academy of Sciences [1981] study that enumerates by individual dietary sources the mean ingestion of nitrate and nitrite by the United States population at the present time. The ingestion figures are used to calculate the probable current gastric nitrite load in US adults with normal gastric acidity. Similar calculations are provided for past years (1925, 1936-1937, and 1971-1972). Since 1925, there has been an approximately threefold decrease in gastric cancer mortality in the US, and this decline is paralleled by an approximately fourfold decrease in average gastric nitrite load. The excessive ingestion of nitrate/nitrite in the US in past years is attributed to the very high content of nitrate and nitrite in cured meats. Several ways compatible with current US farming and marketing practices that are capable of reducing the gastric nitrite load even further are pointed out.

Animals↗

Review: putative mutagens and carcinogens in foods. II: sorbate and sorbate-nitrite interactions.

Sorbic acid and potassium sorbate are widely used Generally Recognized as Safe (GRAS) food additives with an extremely high (25 mg/kg) acceptable daily intake level. Some children between the ages of 6-24 months may actually ingest this amount. While presently not permitted to be added directly to meat and poultry products in the US, potassium sorbate has been proposed as a preservative for bacon, as an additive in conjunction with nitrite and ascorbate or erythorbate. Sorbate and nitrite form several species of direct-acting mutagens and genotoxic agents when present together at pH's mimicking gastric conditions. Two of the mutagens have been identified as ethylnitrolic acid and 1,4-dinitro-2-methylpyrrole. Mutagen formation is blocked by ascorbate at low pH. Ascorbate at eightfold molar excess leads to inactivation of 1,4-dinitro-2-methylpyrrole near neutral pH but does not destroy the mutagenic nitro compound at low pHs. The combination of sorbate with nitrite represents a potential health risk in the absence of adequate inactivating levels of ascorbate (vitamin C).

Carcinogens↗

8-Bromo cyclic GMP inhibits NADH and lactate accumulation in hypoxic rat atria.

The effects of 8-bromo-cGMP on tissue lactate and NADH levels were studied under conditions of high oxygen saturation (95-100%) and hypoxia (50%) in spontaneously beating rat atria. The induction of hypoxia caused a rapid decline in contractility with a simultaneous increase in tissue lactate and NADH. 8-bromo-cGMP (10(-4) mol/l) prevented the accumulation of lactate occurring during hypoxia. It also lowered the level of lactate during high oxygen saturation. Furthermore, 8-bromo-cGMP inhibited the hypoxia-induced increase in NADH and lowered the level of NADH in high oxygen saturation. 8-bromo-cGMP did not affect contractility or heart rate during hypoxia. It is concluded that cGMP may influence the redox-state and metabolism in a direction which is beneficial for the hypoxic myocyte. It is also suggested that antianginal nitro compounds which enhance the level of cGMP might exert an effect similar to that of 8-bromo-cGMP.

Animals↗

Purification and characterization of an enzyme from Mycobacterium sp. Pyr-1, with nitroreductase activity and an N-terminal sequence similar to lipoamide dehydrogenase.

Mycobacterium sp. Pyr-1 produces an enzyme with nitroreductase activity that reduces 1-nitropyrene and 4-nitrobenzoic acid to the corresponding aromatic amines. This enzyme was constitutive and required NADH; and its activity was enhanced by FAD. It was inhibited by antimycin A, dicumarol, and o-iodosobenzoic acid; and it was inactivated by ammonium sulfate precipitation. After purification to homogeneity, the protein produced a single band on native and SDS-polyacrylamide gels and had a single amino-terminal sequence. The N-terminal amino acid sequence was identical to the corresponding sequences of the lipoamide dehydrogenases of M. leprae, M. tuberculosis and Corynebacterium glutamicum. The amino-terminal sequence was also similar to lipoamide dehydrogenases from M. smegmatis and several other bacteria. The amino acid sequence of an internal peptide (12 of 13 amino acids) was nearly identical to the corresponding sequences of lipoamide dehydrogenases from M. leprae and M. tuberculosis and was similar to those of C. glutamicum, Streptomyces coelicolor and S. seoulensis. The data show that a unique lipoamide dehydrogenase in Mycobacterium sp. Pyr-1, which differs from classic (Type I) bacterial nitroreductases, reduces aromatic nitro compounds to aromatic amines.

Amino Acid Sequence↗

Influence of the nature of the pasting liquid on the accumulation of nitroanilines at carbon paste electrode during determination by absorptive stripping voltammetry.

ABSTRACT. The accumulation of ortho-, para-nitroanilines, 2,4-dimetyl-6-nitroaniline, and meta-nitrobenzoic acid at carbon paste electrode (CPE) has been studied. For the preparation of CPE different pasting liquids have been used: esters, aromatic hydrocarbons, saturated hydrocarbons, and polymethylsiloxane. Distribution ratios of o- and p-nitroanilines between the pasting liquid and water have been determined. Correlation between peak current constants and distribution ratios has been found. It has been demonstrated that during the determination of analyte on the CPE with aromatic hydrocarbons, the main influence on nitro-compound accumulation is executed by the extraction into the pasting liquids, and on the CPE with saturated hydrocarbons - by the process of depolarizer sorption onto the graphite. The selective determination of nitroanilines in the presence of hindering compounds with adsorptive stripping voltammetry has been carried out.

Journal Article↗

Synthesis of phlorizin derivatives and their inhibitory effect on the renal sodium/D-glucose cotransport system.

To characterize further the Na+/D-glucose cotransport system in renal brush border membranes, phlorizin - a potent inhibitor of D-glucose transport - has been chemically modified without affecting the D-glucose moiety or changing the side groups that are essential for the binding of phlorizin to the Na+/D-glucose cotransport system. One series of chemical modifications involved the preparation of 3-nitrophlorizin and the subsequent catalytic reduction of the nitro compound to 3-aminophlorizin. From 3-aminophlorizin, 3-bromoacetamido-, 3-dansyl- and 3-azidophlorizin have been synthesized. In another approach, 3'-mercuryphlorizin was obtained by reaction of phlorizin with Hg(II) acetate. The phlorizin derivatives inhibit sodium-dependent but not sodium-independent D-glucose uptake by hog renal brush border membrane vesicles in the following order of potency: 3'-mercuryphlorizin = phlorizin greater than 3-aminophlorizin greater than 3-bromoacetamidophlorizin greater than 3-azidophlorizin greater than 3-nitrophlorizin greater than 3-dansylphlorizin. 3-Bromoacetamidophlorizin - a potential affinity label - also inhibits sodium-dependent but not sodium-independent phlorizin binding to brush border membranes. In addition, sodium-dependent phosphate and sodium-dependent alanine uptake are not affected by 3-bromoacetamidophlorizin. The results described above indicate that specific modifications of the phlorizin molecule at the A-ring or B-ring are possible that yield phlorizin derivatives with a high affinity and high specificity for the renal Na+/D-glucose cotransport system. Such compounds should be useful in future studies using affinity labeling (3-bromoacetamido- and 3-azidophlorizin) or fluorescent probes (3-dansylphlorizin).

Animals↗

Induction of DNA crosslinks in vitro upon reduction of the nitroimidazole-aziridines RSU-1069 and RSU-1131.

The interaction of the nitroimidazole-aziridines RSU-1069 and RSU-1131, as parent or radiation-reduced species, with plasmid DNA in aqueous solution at pH 7 results in strand breakage. The yields of DNA single strand breaks (ssb), "alkali-labile" damage and DNA crosslinks induced by these alkylating agents have been assessed. It is shown that DNA crosslinks are induced only by the reduced nitro-compounds. RSU-1069, as parent or reduced compound, is more efficient at producing these effects than the equivalent form of RSU-1131. Further, RSU-1069 is about 2 X more susceptible to nucleophilic attack by inorganic phosphate and deoxynucleotides than RSU-1131. RSU-1069 also shows greater selectivity for reaction with the nucleotide base moiety than does the less-reactive monomethyl analogue, RSU-1131. The yields of ssb and "alkali-labile" damaged sites induced by the two agents reflect their respective chemical reactivities and appear largely to determine their aerobic cytotoxicities. In contrast, the yield of DNA crosslinks induced by the reduced compounds appears to correspond rather better with the observed hypoxic cytotoxicities. From these findings it is suggested that the induction of DNA crosslinks by these agents may play a major role in their effectiveness as hypoxia-selective cytotoxins.

DNA↗

Preparation, toxicity and mutagenicity of 1-methyl-2-nitrosoimidazole. A toxic 2-nitroimidazole reduction product.

1-Methyl-2-nitrosoimidazole (INO), the 2-electron reduction product of 1-methyl-2-nitroimidazole (INO2), was prepared by electrochemical reduction of INO2 to 2-hydroxylamino-1-methyl-imidazole (INHOH), followed by back oxidation with iodine. Although stable in crystalline form, INO reacted in water, phosphate-buffered saline, and mammalian cell growth medium. Half-lives for decay were determined by UV-visible spectroscopy. INO was found to be highly toxic towards Chinese hamster ovary (CHO) cells, concentrations of 10-60 microM producing significant cytotoxicity. The rate of INO decay was found to be increased in the presence of CHO cells. INO was also toxic and mutagenic towards Salmonella typhimurium TA-100. When compared on a molar basis to the parent nitro compound INO2, and the 4- and 6-electron reduction products INHOH and 2-amino-1-methylimidazole (INH2), INO was by far (two orders of magnitude) the most toxic under aerobic conditions. These results suggest that the nitroso reduction product of 2-nitroimidazoles may be the reduced species responsible for hypoxic cell selective toxicity of 2-nitroimidazoles.

Animals↗

Nitrofuran inhibition of yeast and rat tissue glutathione reductases. Structure-activity relationships.

Nitrofuran derivatives bearing unsaturated five- or six-membered nitrogen heterocycles or related substituents were more effective inhibitors of yeast and rat tissue glutathione reductases than those bearing other groups, such as nifurtimox, nitrofurazone and 5-nitro-2-furoic acid. The inhibitory action proved independent of electron withdrawal from the reduced enzyme, as a consequence of redoxcycling of the nitro group. Uncompetitive kinetics was obtained with nitrofurantoin and nifurtimox. Most of the assayed nitrofurans inhibited the yeast enzyme Coenzyme A glutathione disulfide reductase activity, though less than oxidized glutathione reduction. The transhydrogenase activity was not inhibited to a significant degree. Benznidazole (a 2-nitroimidazole derivative), 2-nitroimidazole, 5-nitroindole and chloramphenicol did not inhibit glutathione reductase. Under the same experimental conditions, liver glutathione peroxidase was not affected by the nitro compounds.

Animals↗

Catalysis of nitrofuran redox-cycling and superoxide anion production by heart lipoamide dehydrogenase.

Heart lipoamide dehydrogenase (LADH) catalyzed redox-cycling and O2-. production by (5-nitro-2-furfurylidene)amino derivatives using NADH as electron donor. NADH was a much more effective electron donor than NADPH for the nitroreductase activity. O2-. production was demonstrated by cytochrome c reduction, adrenochrome formation and the effect of superoxide dismutase. Under optimum conditions, nitroreductase activity was about 1% of LADH activity. One electron oxygen reduction and NADH oxidation correlated in 2:1 stoichiometry. The nitroreductase kinetics was in accordance with an ordered bi-bi mechanism. Nitrofuran derivatives bearing unsaturated five- or six-membered nitrogen heterocycles were more effective substrates than those bearing other groups, namely nifurtimox, nitrofurazone, nitrofurantoin and 5-nitro-2-furoic acid. Other nitro compounds (chloramphenicol, benznidazole, 2-nitroimidazole and 5-nitroindole) were ineffective. With the triazole, traizine and imidazole nitrofuran derivatives, the nitroreductase pH curve showed a maximum at pH 8.8, different from the pH optimum for the lipoamide reductase and diaphorase activities. Spectroscopic observations demonstrated pH-dependent structural changes in the triazole(I) and triazine derivatives which would affect their behavior as nitroreductase substrates. The nitroreductase activity was inhibited by p-chloromercuribenzoate and enhanced by cadmium and arsenite, whereas the NADH-induced LADH inactivation failed to affect the nitroreductase activity. In the absence of oxygen. LADH catalyzed nitrofuran reduction to products more reduced than the nitroanion, which were not reoxidized by oxygen. The anaerobic nitrofuran reduction was inhibited by cadmium and arsenite. The assayed nitrofuran compounds did not inhibit LADH lipoamide reductase activity, at variance with their action on glutathione reductase (Grinblat et al., Biochem Pharmacol 38: 767-772, 1989).

Animals↗

Sensitivity of parasites to free radical damage by antiparasitic drugs.

Over the last few years a remarkable progress has been made in the understanding of parasites biochemistry, molecular biology, and immunology. This progress is especially encouraging in that emphasis on drug development is shifting from random screening towards a more rational approach. A number of peculiar aspects characteristic of parasites which are not present in other organisms and that might be exploitable for the design of specific agents have been described recently. One of these aspects is their deficiency in defense mechanisms against oxygen toxicity. Catalase is absent in many parasites. Distinct superoxide dismutases have been detected and specific inhibitors of these enzymes have been investigated. Glutathione is absent in some anaerobic protozoa. Peroxidase and reductase activities dependent on a glutathione-spermidine cofactor termed trypanothione have been detected in several trypanosomatids and apparently replace the glutathione peroxidase-glutathione reductase system of other eukaryotic cells. Free radical intermediates have been shown to be involved in the reaction of enzymes present in anaerobic protozoa. In addition, a number of antiparasitic agents have been shown to exert their actions through a free radical metabolism: nitro compounds used against trypanosomatids, anaerobic protozoa and helminths; crystal violet used in blood banks to prevent blood transmission of Chagas' disease; the antimalarial primaquine, chloroquinine, and quinhasou; and quinones active in vitro and in vivo against different parasites.

Animals↗

Chagas' disease: carcinogenic activity of the antitrypanosomal nitroarenes in mice.

The carcinogenic activity of antitrypanosomal 2-nitroimidazole, 5-nitroimidazole and 5-nitrofuran derivatives was assessed in female Swiss mice of the same age group. A statistically significantly higher incidence of growths was seen in mice into which 2-nitro had been injected than in mice receiving 5-nitro derivatives intraperitoneally. A histologic type of lymphoblastic lymphoma that invades lymph nodes, spleen, liver, lungs and lymphatic tissue elsewhere was frequently found in nitroarene-treated mice. Further, it is shown that the potency of the drug, rather than the duration of its administration, was usually associated with the growth of lymphomas. The 2-nitro derivative which induced the highest incidence of lymphomas significantly decreased the survival of treated mice; this probably occurred because it undergoes enzymatic reduction of the nitro group more efficiently than the 5-nitro compounds used. The differences of incidence of lymphomas in mice receiving any of these nitroarenes and in control mice that received daily injections of 0.15 M saline were statistically significant (alpha = 0.05). The indiscriminate use of these nitroarenes to treat Trypanosoma cruzi infections in man could therefore induce a significant number of lymphomas.

Animals↗