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[Inhibition of cytochrome P-450 when exposed to nitro-compounds].

Changes in ESR signals from the active form of cyt P-450 in mouse liver samples after administration of some nitro compounds were studied by the ESR method. It is shown that administration of nitro compounds leads to the formation of nitrosyl cyt P-450-NO complexes and a decrease in the ESR signal from cyt P-450 within the first 1-2 h after administration, indicating the inhibition of enzyme activity. It is assumed the nitro compounds induced inhibition of cyt P-450 in the first hours after administration is responsible for the enhancement by imidazoles of the effect of some chemotherapeutic drugs.

Animals↗

Aliphatic nitro compounds in Astragalus lusitanicus Lam.

Astragalus lusitanicus Lam lusitanicus has been reported to be toxic for mammals. Annually, many sheep are poisoned and die because of feeding on this legume. Aliphatic nitro compounds were detected using two different methods. Colormetry with Griess-ilosvay reagent showed that nitro-compounds occurred in frozen plant samples. Two different compounds in aqueous extract and 1 or 2 in methanolic extracts were detected by thin-layer chromatography. Nitro compounds concentrations were similar to those reported in toxic species of North American Astragalus.

Chromatography, Thin Layer↗

Alterations of the intestinal microflora by diet, oral antibiotics, and Lactobacillus: decreased production of free amines from aromatic nitro compounds, azo dyes, and glucuronides.

F344 rats were fed compounds containing a nitro, azo, or amine-glucuronide group-2-nitronaphthalene (CAS: 581-89-5), 2-nitrofluorene (CAS: 607-57-8; 2-nitro-9H-fluorene), 4-phenylazo-2-naphthol (CAS: 6410-10-2; 1-[(4-nitrophenyl)azo]-2-naphthol), and 2-naphthylamine-N-D-glucuronide--and the formation of free amines was measured in the feces. The effects of diet (mean vs. grain), administration of antibiotic, and the feeding of Lactobacillus acidophilus were evaluated. Meat-fed rats given 2-nitronaphthalene had approximately 4 times higher concentration of free amines in their feces as compared to the concentration in grain-fed rats. In a similar experiment with 2-naphthylamine-N-D-glucuronide, the meat-fed animals had approximately 1.5 times more of the free amines and 50% less of the conjugates in their feces. When meat-fed animals were given L. acidophilus with 2-nitrofluorene or 2-naphthylamine-N-D-glucuronide, they had significantly lower free amines and higher concentrations of conjugates in their feces than did the meat-fed controls. Similarly, erythromycin or tetracycline decreased the fecal amine production in meat-fed animals that had received 2-nitrofluorene or 4-phenylazo-2-naphthol. In another experiment, erythromycin inhibited the production of free amines from 2-naphthylamine-N-D-glucuronide in rats fed a high-fat diet. Studies of fecal enzymes revealed lower levels of beta-D-glucuronidase, nitroreductase, and azoreductase in grain-fed rats and in meat-fed animals also given antibiotics or lactobacilli. These experiments showed that intestinal flora have the ability to convert exogenously administered aromatic nitro and azo compounds and an amine-glucuronide compound to free amines. The rate of these conversions was affected by diet and by oral administration of antibiotics and lactobacilli.

Amines↗

Glutathione conjugation of nitro compounds by monkey glutathione S-transferases.

The distribution in Japanese monkey tissues of glutathione S-transferase activity toward some aromatic nitro compounds was examined by measuring the release of the nitro group as nitrite ion. The activity was especially high in liver, kidney and small intestine when compounds such as 4-nitroquinoline N-oxide, 5-nitrofurfural diacetal and o-dinitrobenzene were used as substrates. The nitrite-releasing activity of the major enzyme purified from rhesus monkey liver was also tested on fifty-two nitro compounds including nineteen nitrofuran derivatives. Among the thirty-three nitro compounds other than the nitrofuran derivatives tested as substrates, the purified enzyme showed activity only toward o-dinitrobenzene, 4-nitroquinoline N-oxide, 3,4-dinitrobenzoic acid, p-dinitrobenzene, 2,5-dinitrobenzoic acid, 2,5-dinitrophenol, tetra-chloronitrobenzene and 2,4-dinitrobenzoic acid. The crude supernatant fraction of rhesus monkey liver showed activity in substrate specificity roughly similar to that of the purified enzyme. On the other hand, among at least ten carcinogenic 2-substituted 5-nitrofran derivatives tested, 4,6-diamino-2-(5-nitro-2-furyl)-s-triazine, 5-nitro-2-furaldehyde semicarbazone, N-[[3-(5-nitro-2-furyl)-1,2,4-oxadiazol-5-yl]methyl] acetamide, and N-[5-(5-nitro-2-furyl)-1-3,4-thiadiazol-2-yl)acetamide were shown to be enzymatically conjugated with reduced glutathione. Among the other nine 2-substituted 5-nitrofuran derivatives tested, six compounds could be the substrates of the enzyme, and 5-nitrofurfural and 5-nitrofurfural diacetal were especially good substrates. There was, however, little apparent correlation between their carcinogenicity and susceptibility to glutathione S-transferase. The bulky substituents at position 2 appeared to decrease the susceptibility of these nitrofuran derivatives to the enzyme. Both Vmax and Km values of the purified enzyme varied greatly among the substrates, and the optimum pH fell between 7.5 and 9.0 in most cases.

Animals↗

Enhanced chemiluminescent determination of chloramphenicol and related nitro compounds by 'on-line' photochemical reaction.

The viability of tandem photochemical reaction-chemiluminescence detection was studied for a heterogeneous family of nitro compounds using chloramphenicol as a test substance. The 'on-line' chemical photodegradation of chloramphenicol was performed in a flow injection assembly by using a photoreactor consisting of a 725 cm x 0.5 mm id piece of PTFE tubing coiled around an 8 W low-pressure mercury lamp. Photodegraded chloramphenicol was detected by oxidizing photo-fragments from the parent compound and their subsequent reaction with a luminol-Co(II) system. The calibration graph was linear up to 3 x 10(-5) mol l-1 chloramphenicol, the limit of detection was 3 x 10(-9) mol l-1, the relative standard deviation was 1.8% for 2 x 10(-6) mol l-1 of the drug and the sample throughput was 60 h-1. The proposed method was used to determine chloramphenicol in pharmaceutical formulations and its application to other related nitro compounds was studied.

Calibration↗

Radiosensitization by non-nitro compounds.

The effects of 23 non-nitro compounds on the radiosensitivity of hypoxic Chinese hamster V79-379A or E. coli AB 1157 cells in vitro are outlined. Imidazole derivatives substituted with several alternative electron-withdrawing groups are described; the dicyanovinyl function conferred considerable radiosensitizing activity. 2,4,5-Tribromoimidazole and 2,4-dinitrophenol may show unusual radiosensitizing activity because of interference with oxidative phosphorylation. Attempts to influence radiosensitivity by compounds potentially capable of depleting intracellular sulphydryls are also described.

Animals↗

Microbial assimilation of alkyl nitro compounds and formation of nitrite.

66 representative strains of bacteria, yeasts and fungi were tested for their ability to grow in a semidefined medium containing 0.5% nitroethane as a nitrogen source. About half of them were found capable of growing in the medium. Hansenula beijerinckii, Candida utilis, and Penicillium chrysogenum were most active in assimilating nitroethane. 2-Nitropropane inhibited growth of most of the microorganisms tested in a medium containing 0.2% peptone and 0.2% glycerol. Hansenula mrakii was found to grow rapidly in the nitroethane-peptone medium after a lag phase. Nitrite was accumulated in the culture fluid after the phase of logarithmic multiplication, and increased with increase of the growth, followed by a decline after the maximum growth. The alkyl nitro compounds were oxidatively denitrified to form nitrite by the crude enzyme from Hansenula mrakii. Nitroethane was generally a poor substrate, but was the best inducer to produce the nitro compounds oxidizing enzyme. 2-Nitro-propane and nitroethane were enzymatically oxidized to nitrite, and acetone and acetaldehyde, respectively, which were isolated as 2,4-dinitrophenylhydrazones and identified. Nitrite formed was found to be reduced into ammonia by the intact cells and also the crude enzyme.

Acetaldehyde↗

N-hydroxyarylamine O-acetyltransferase-deficient Escherichia coli strains are resistant to the mutagenicity of nitro compounds.

In Salmonella typhimurium, a single enzyme catalyzes both the acetyl CoA-dependent O-acetylation of hydroxylamines (a key step in the activation of mutagenic nitroaromatic compounds and related aromatic and heterocyclic amines) and the N-acetylation of aromatic amines. S. typhimurium Ames test mutants lacking this activity are highly resistant to the genotoxic effects of nitro compounds. However, such mutants have not yet been obtained in Escherichia coli. We used a PCR-based method to engineer a null mutation (deletion) of the nhoA gene encoding the enzyme in E. coli and we transduced this mutation into a lacZ strain background suitable for use in mutation assays. In E. coli, as in S. typhimurium, nhoA mutants show marked resistance to nitro compound mutagenicity. The new strains provide a clean background for expression of recombinant N-acetyltransferases.

Acetyltransferases↗

Antifungal nitro compounds from skunk cabbage (Lysichitum americanum) leaves treated with cupric chloride.

Two nitro compounds, 2-(4-methoxyphenyl)-1-nitroethane named as lysichitalexin and 2-(4-hydroxyphenyl)-1-nitroethane were isolated as stress metabolites from the leaves of Lysichitum americanum Hultén and St. John treated with cupric chloride. Their structures were determined by spectroscopic methods and chemical reactions. The former compound showed antifungal activities against Fusarium oxysporum and Cladosporium herbarum. Both compounds were isolated for the first time from this species and the former was isolated from natural sources for the first time. This is the first report on stress metabolites from a member of the Araceae.

Anti-Bacterial Agents↗

Quantitative structure-activity relationship investigation of the role of hydrophobicity in regulating mutagenicity in the Ames test: 2. Mutagenicity of aromatic and heteroaromatic nitro compounds in Salmonella Typhimurium TA100.

A quantitative structure-activity relationship (QSAR) has been derived for the mutagenic activity of 117 aromatic and heteroaromatic nitro compounds acting on Salmonella typhimurium TA100. Relative mutagenic activity is bilin-early dependent on hydrophobicity, with an optimal log P of 5.44, and is linearly dependent on the energy of the lowest unoccupied molecular orbital of the nitro compound. The dependence of mutagenic activity on hydrophobicity and electronic effects is very similar for TA98 and TA100. Mutagenic activity in TA100 does not depend on the size of the aromatic ring system, as its does in TA9. The effect of the choice of assay organism, TA98 versus TA100, on nitroarene QSAR is seen to be similar to the effect previously found for aminoarenes. Lateral verification of QSARs is presented as a tool for establishing the significance of a new QSAR.

Amines↗

[Bacterial reductive transformation of aromatic nitro compounds].

The transformation of 2,4,6-trinitrotoluene (TNT) and other aromatic nitro compounds by bacteria was studied in the course of their growth in a medium containing glucose. Various bacteria were found, for the first time, to be capable of growth in the presence of 200 mg/l of TNT and of transformation of the compound with a higher or lesser activity. The results indicate that Gram-negative bacteria play a key role in TNT transformation under natural conditions. The nitro group reduction is the principal step in the bacterial action on the studied compounds. It is noteworthy that there is no correlation between the degree of nitro reduction and the susceptibility of the bacteria to the toxic effect of benzoic acid, phenol and benzene nitro derivatives.

Alcaligenes↗

Genotoxicity of a variety of nitroarenes and other nitro compounds in DNA-repair tests with rat and mouse hepatocytes.

Genotoxicity of a variety of nitroarenes and other compounds was examined in DNA-repair tests with rat or mouse hepatocytes. Out of 15 nitroarenes tested, 9 compounds, i.e., 1-nitropyrene, 1,3-dinitropyrene, 1,6-dinitropyrene, 1,8-dinitropyrene, 1-nitro-3-acetoxypyrene, 3-nitrofluoranthene, 2-nitrofluorene, 2,7-di-nitrofluorene and 5-nitroacenaphthene elicited positive response of DNA repair in the tests with rat and mouse hepatocytes. Among the positive chemicals, the DNA-repair level of the 3 dinitropyrene isomers was much higher than other nitroarenes. The results indicate that a number of nitroarenes are metabolically activated in the primary culture of rodent hepatocytes, and suggest potential carcinogenicity of 1-nitropyrene and 1-nitro-3-acetoxypyrene the carcinogenicity of which is either not clear or unknown. Of the other nitro compounds, 2-(2-furyl)-3-(5-nitro-2-furyl)acrylamide as well as 4-nitroquinoline 1-oxide were clearly genotoxic in the assays with hepatocytes of both species. However, 5-nitro-2-furaldehyde semicarbazone was negative in both assays with hepatocytes of 2 species.

Animals↗

Effects of nitro compounds, isosorbide dinitrate, 5-isosorbide mononitrate and glyceryl trinitrate on Ca-uptake into Ca-stores and Ca-release from Ca-stores in rabbit isolated femoral veins and femoral arteries.

In organ bath studies, effects of isosorbide dinitrate (ISDN), 5-isosorbide mononitrate (ISMN), a major metabolite of ISDN, and glyceryl trinitrate (GTN) on Ca-uptake into Ca-stores and Ca-release from Ca-stores were tested in the rabbit isolated femoral veins and femoral arteries. ISDN (10(-4) M) and GTN (10(-4) M) inhibited Ca-uptake in the femoral veins but not in the femoral arteries. The selectivity to the femoral veins was not observed in ISMN (10(-3) M) and GTN (3 X 10(-6) M). All the nitro compounds inhibited Ca-release from Ca-stores more effectively in the femoral veins than in the femoral arteries. The present results may explain the selectivity of the nitro compounds to the femoral veins.

Animals↗

Application of difference spectroscopy to the determination of some pharmaceutically important nitro compounds.

A simple and selective spectrophotometric method for the determination of some pharmaceutically important nitro compounds has been developed. The suggested method depends upon the spectral changes induced by reduction using either Zn/HCl or Zn/NH4Cl. The different experimental parameters were studied and incorporated into the procedure. The mean percentage recovery ranged from 99 to 101. The proposed method was applied to the determination of the studied compounds in dosage forms, and the results obtained were compared favourably with those given with the compendial ones.

Indicators and Reagents↗

Novel transformations of gamma-silyl nitro compounds.

Introduction of a gamma-silyl group into nitro compounds of dihydrobenzofuran, dihydrobenzo[b]thiophene, and dihydrofuran allowed new transformations to take place in the presence of a Lewis acid to give the corresponding alpha,beta-unsaturated oximes or multisubstituted dihydrofurans, respectively, in good to excellent yields.[reaction: see text]

Journal Article↗

Effect of dietary carrageenan and pectin on the reduction of nitro-compounds by the rat caecal microflora.

Rats were fed either a basal purified diet, or that diet supplemented with 50 g/kg pectin or iota carrageenan for 50 days, and caecal microbial nitroreductase activity determined using p-nitrobenzoic acid, p-nitrophenol, 2,4-dinitrotoluene, nitrofurantoin and metronidazole as substrates. Both pectin and carrageenan increased the weight of caecal contents, and pectin also increased the number of bacteria per caecum. In contrast, carrageenan decreased the caecal bacterial population. Pectin significantly increased the rate of reduction of metronidazole and the rate of conversion of p-nitrobenzoic acid to p-aminobenzoic acid, while carrageenan significantly decreased the rate of reduction of every compound studied. The results demonstrate that microbial reduction of the nitro-group may be altered by diet, although the response found with one nitro-compound may differ from that seen with another substrate.

Animals↗