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RbBa2(N3)5: a new ternary azide.

Rubidium dibarium pentaazide, RbBa2(N3)5, was prepared from an aqueous solution of the binary azides at room temperature. It crystallizes in the monoclinic system (space group P2/n). Two central atoms of azide groups occupy the 2c (1) and 2b (1) positions, another azide group lies completely on a twofold axis (2f), while Rb atoms are situated in 2e (2) positions. The crystal structure of RbBa2(N3)5 can be regarded as a distorted AlB2-type arrangement of the metal atoms, with the azide groups occupying the voids between the cations. This results in coordination numbers of 8 (Rb) and 10 (Ba). The N-N distances are in the range 1.169 (8)-1.190 (5) A, typical for the azide group.

Journal Article↗

Structural metrics relationships in covalently bonded organic azides.

Geometrical parameters of covalently bonded organic azides have been analysed using X-ray structural data retrieved from the Cambridge Structural Database. The RNNN fragment geometry shows some important general features: (i) a preference for a trans C(s) configuration; (ii) bending of the N-N-N unit; (iii) substantially different N-N bond lengths in the azide group. Electron-density redistribution within the covalently bonded azide group (relative to that in the isolated azide anion) promotes the capacity of the terminal azide N atom to form hydrogen bonds.

Journal Article↗

Chronic sodium azide treatment decreases membrane-bound protein kinase C activity in the rat hippocampus.

Chronic administration of sodium azide in rats inhibits cytochrome oxidase and produces learning and memory deficits. The present experiment tested the hypothesis that chronic sodium azide treatment might also alter protein kinase C activation. Continuous infusion of sodium azide (400 micrograms/h, sc) in rats for 2 weeks significantly decreases membrane-bound protein kinase C in hippocampus, but not frontal cortex, temporal cortex, or cerebellum. Since protein kinase C activation is correlated with hippocampus-dependent learning, these results suggest a possible biochemical mechanism for azide-induced impairment of learning.

Animals↗

Inactivation of lignin peroxidase by phenylhydrazine and sodium azide.

Lignin peroxidase (LiP) is rapidly inactivated in a concentration-dependent manner by H2O2 and either phenylhydrazine or sodium azide. Full inactivation of isozyme 2b (H8) requires approximately 50 eq of phenylhydrazine or 80 eq of sodium azide. Anaerobic incubation of isozyme 2b with [14C]phenylhydrazine and H2O2 results in 77% loss of catalytic activity and covalent binding of 0.45 mol radiolabel/mol of enzyme. Comparable but not identical results are obtained with an isozyme mixture. A lag period is observed before the peroxidative activity can be measured when an aliquot of an incubation with sodium azide is diluted into the mixture used to assay residual catalytic activity. This lag is associated with reversible accumulation of a catalytically inert species with a Compound III-like spectrum. No meso-phenyl, iron-phenyl, or N-phenyl adducts are formed with phenylhydrazine but a low yield of what appears to be delta-meso-azidoheme is obtained with sodium azide. LiP is thus less susceptible to meso heme additions and more susceptible to oxidative heme degradation than horseradish peroxidase. The data suggest that the active of LiP resembles the closed structure of horseradish peroxidase more than it does the open structure of the globins, catalase, chloroperoxidase, or cytochrome P450.

Azides↗

Inhibition of lignin peroxidase H2 by sodium azide.

The oxidation of veratryl alcohol (3,4-dimethoxybenzyl alcohol) by lignin peroxidase H2 from Phanerochaete chrysosporium and H2O2 was strongly inhibited by sodium azide. Inhibition was competitive with respect to veratryl alcohol (Ki = 1-2 microM) and uncompetitive with respect to H2O2. In contrast, sodium azide bound to the native enzyme at pH 6.0 with an apparent dissociation constant (KD) of 126 mM. Formation of azidyl radicals was detected by ESR spin trapping techniques. The enzymes is nearly completely inactivated in four turnovers. The H2O2-activated enzyme intermediate (compound I) reacted with sodium azide to form a new species rather than be reduced to the enzyme intermediate compound II. The new species has absorption maxima at 418, 540, and 570 nm, suggesting the formation of a ferrous-lignin peroxidase-NO complex. Confirmation of this assignment was obtained by low-temperature ESR spectroscopy. An identical complex could be simulated by the addition of nitrite to the reduced enzyme. The enzyme intermediate compound II is readily reduced by sodium azide to native enzyme with essentially no loss of activity.

Agaricales↗

Effect of sodium azide on catecholamine release from isolated adrenal gland and on guanylate cyclase.

Sodium azide and other compounds which activate guanylate cyclase could stimulate catecholamine (CA) release from perfused dog adrenals. Verapamil reduced the secretory effect of sodium azide, but atropine and hexamethonium did not affect it while isobutyl methylxanthine potentiated it. Ca2+ deprivation abolished the stimulating effect of sodium azide on CA release and cyclic AMP output but the increased output of cyclic GMP remained. These results suggest the involvement of the Ca2+ influx mechanism in the secretory action of sodium azide.

Adrenal Glands↗

Interaction of the mutagenic metabolite of sodium azide, synthesized in vitro, with DNA of barley embryos.

The in vitro synthesized sodium azide mutagenic metabolite (azidoalanine) produced single-strand breaks and proteinase K-sensitive sites in isolated, germinating barley embryos. In contrast with sodium azide, the efficiency of DNA damage induction was lower, and both types of DNA lesions were totally or partially repaired in the course of subsequent 24 h incubation of the embryos. The mutagenic azide metabolite did not inhibit DNA replication, while azide did so even at doses which are not highly mutagenic. The metabolite labelled with 14C at the amino acid residue was taken up with a similar efficiency both into barley embryos germinating for 2 days and into cells of Salmonella typhimurium TA100. The majority of the radioactivity was incorporated into proteins, less into RNA and a negligible amount into DNA.

Alanine↗

Low concentrations of sodium azide specifically inhibit a thromboxane A2 pathway in human platelets.

Sodium azide completely inhibits the serotonin release induced by ADP, arachidonic acid and the thromboxane A2 mimetic U46619, but does not have any effect on the activation by PMA. Collagen and thrombin are inhibited when used at low concentrations, but not at high concentration. This pattern of activation suggests that the inhibition by azide is not a metabolic inhibition. The antagonism of U46619-induced secretion was further studied and was shown to be non-competitive. It is selective for certain components of the U46619 stimulus-response coupling: aggregation, serotonin secretion and the activation of protein kinase C are completely or almost completely inhibited by 300 microM sodium azide. Shape change, calcium elevation, cytoplasmic alkalinization and phosphorylation of myosin light chain are only partially modified. This suggests that azide may specifically inhibit one of the different forms of thromboxane A2 receptors present in platelets.

Adenosine Diphosphate↗

Effects of azide on gastric mucose.

Sodium azide, a classical inhibitor of cytochrome oxidase, is an effective inhibitor of gastric acid secretion in bullfrog and skate gastric mucosae at low concentrations. While a portion of the oxygen uptake in these tissues is sensitive to azide (KI less than 2 mM), there remains a large fraction (25-60%) with a KI more than 10 times this value, suggesting the presence of a second oxidase. The spectra of cytochromes c and b change with oxygen-nitrogen alternation in the presence of high azide concentrations which essentially eliminate the reactivity of cytochrome oxidase. In both species two additional components are observed in the spectra. The first has a peak at 590 nm, is not the cytochrome oxidase-CO complex, is fully reactive in the presence of azide and accounts for the asymmetry of the oxidase peak. The second is a component at 557 nm which can only be separated from cytochromes c and b by spectral deconvolution, and seems to react in a manner similar to cytochrome c. It is suggested that the 590 compound may be the alternate cytochrome oxidase.

Animals↗

Novel effect of azide on sodium channel of Xenopus oocytes.

Bath application of a few mM of sodium azide to a voltage clamped oocyte activated a voltage dependent Na+ current. Characteristics of the azide-induced current were the same as those of already described Na+ current induced by prolonged depolarization. The Na+ current induced either by azide or depolarization was suppressed by the application of Ca2+ channel blockers (Diltiazem and La3+). Azide is known to affect some metabolic processes (ATP and cGMP production etc.), but the present effect could not be attributed to metabolic actions.

Animals↗

Sodium azide preservation of faecal specimens for Kato analysis.

The modified Kato technique has the advantages of reproducibility, simplicity and economy: the disadvantage is that it cannot be used in conjunction with traditional faecal preservatives. Sodium azide has been evaluated as a preservative for human faeces for subsequent Kato analysis. More than 400 faecal samples (from normal and malnourished children, and from mixed-age participants in a field survey of the Turks and Caicos Islands) were each mixed with 2-5 mg of sodium azide powder and stored in 2 or 4 ml autoanalyser cups at ambient tropical temperature. At intervals up to 30 weeks, aliquots were prepared for Kato analysis. Trichuris trichiura, Ascaris lumbricoides and Necator americanus eggs were well preserved without degenerative or developmental changes in morphology. Quantitative analyses of 18 samples indicated that the mean egg count/sample did not change significantly after storage for 1, 2, 4, 8, 12 and 16 weeks in preservative. The use of azide preservative extends the applications of the Kato technique to field and clinical studies in which delays may occur between specimen collection and examination. The direct costs of azide preservation are substantially lower than for traditional methods and the preserved specimens are more compact and resistant to leakage.

Ascaris↗

Mechanism of azide binding to chloroperoxidase and horseradish peroxidase: use of an iodine laser temperature-jump apparatus.

The kinetics of azide binding to chloroperoxidase have been studied at eight pH values ranging from 3.0 to 6.6 at 9.5 +/- 0.2 degrees C and ionic strength of 0.4 M in H2O. The same reaction was studied in D2O at pD 4.36. In addition, results were obtained on azide binding to horseradish peroxidase at pD 4.36 and pH 4.56. Typical relaxation times were in the range 10-40 microseconds. The value of kH/kD(on) for chloroperoxidase is 1.16, and kH/kD(off) is 1.7; corresponding values for horseradish peroxidase are 1.10 and 2.4. The H/D solvent isotope effects indicate proton transfer is partially rate controlling and is more important in the dissociation of azide from the enzyme-ligand complex. A mechanism is proposed in which hydrazoic acid binds to chloroperoxidase in a concerted process in which its proton is transferred to a distal basic group. Hydrogen bonding from the newly formed distal acid to the bound azide facilitates formation of hydrazoic acid as the leaving group in the dissociation process. The binding rate constant data, kon, can be fit to the equation kon = k3/(1 + KA/[H+]), where k3 = 7.6 X 10(7) M-1 S-1 and KA, the dissociation constant of hydrazoic acid, is 2.5 X 10(-5) M. The same mechanism probably is valid for the ligand binding to horseradish peroxidase.

Azides↗

Synergy between chronic corticosterone and sodium azide treatments in producing a spatial learning deficit and inhibiting cytochrome oxidase activity.

Previously, we developed a rat model of persistent mitochondrial dysfunction based upon the chronic partial inhibition of the mitochondrial enzyme cytochrome oxidase (EC 1.9.3.1). Continuous systemic infusion of sodium azide at approximately 1 mg/kg per hr inhibited cytochrome oxidase activity and produced a spatial learning deficit. In other laboratories, glucocorticoids have been reported to exacerbate neuronal damage from various acute metabolic insults. Therefore, we tested the hypothesis that corticosterone, the primary glucocorticoid in the rat, would potentiate the sodium azide-induced learning deficit. To this end, we first identified nonimpairing doses of sodium azide (approximately 0.75 mg/kg per hr) and corticosterone (100-mg pellet, 3-week sustained-release). We now report that chronic co-administration of these individually nonimpairing treatments produced a severe learning deficit. Moreover, the low dose of corticosterone, which did not elevate serum corticosterone, acted synergistically with sodium azide to inhibit cytochrome oxidase activity. The latter result represents a previously unidentified effect of glucocorticoids that provides a candidate mechanism for glucocorticoid potentiation of neurotoxicity induced by metabolic insult. These results may have the clinical implication of expanding the definition of hypercortisolism in patient populations with compromised oxidative metabolism. Furthermore, they suggest that glucocorticoid treatment may contribute to pathology in disease or trauma conditions that involve metabolic insult.

Analysis of Variance↗

Analytical findings in a suicide involving sodium azide.

A 47-year-old laboratory assistant ingested approximately 9 g of sodium azide powder and died 4 h later at a hospital. A high-performance liquid chromatographic method using diode-array detection has been developed for the determination of an azide benzoyl derivative in blood (after a simple deproteinization) and in several tissues (after homogenization in a neutral buffer and deproteinization of the supernatant). The blood concentration in this case was lower than those previously published. The highest azide concentration was found in lung tissue. A complete toxicological screening revealed the presence of cyanide in blood, which has been previously reported twice, but for the first time, it was confirmed by mass spectrometry. Whether the production of cyanide in the presence of azide took place in vivo or postmortem remains unknown; the nature of the metabolic pathway involved also remains unknown.

Azides↗

ISOLATION AND CHARACTERIZATION OF THE CYANIDE-RESISTANT AND AZIDE-RESISTANT CATALASE OF LACTOBACILLUS PLANTARUM.

Johnston, M. A. (Cornell University, Ithaca, N.Y.), and E. A. Delwiche. Isolation and characterization of the cyanide-resistant and azide-resistant catalase of Lactobacillus plantarum. J. Bacteriol. 90:352-356. 1965.-Lactobacillus plantarum T-1403-5 has been shown to possess a very active cyanide- and azide-resistant catalase. By means of fractional ammonium sulfate precipitation, removal of nucleic acids with protamine sulfate, adsorption on calcium phosphate gel, and pH gradient chromatography on diethylaminoethyl cellulose, the catalase "activity" was purified approximately 14-fold. The purified enzyme preparation was insensitive to the heme poisons cyanide and azide, the metal chelating agents ethylenediaminetetraacetate and o-phenanthroline, and the sulfhydryl binding agent p-chloromercuribenzoate. The purified enzyme moved at a uniform rate in the electrophoretic field (isoelectric point, pH 4.7). The ultraviolet-light absorption spectrum was negative for heme-iron components, and fluorescence measurements yielded negative results with regard to flavin components. Acriflavin and Atabrine had no effect on enzyme activity. The nonheme catalase displayed a much broader pH range of activity than the heme-iron catalase of a control culture of Escherichia coli and the azide-sensitive catalase developed by L. plantarum NZ48 when grown in the presence of preformed hematin. The nonheme catalase was more resistant to heat inactivation. No retention of the enzyme on a chromatographic column could be obtained with Sephadex 200, nor could the enzyme be separated from crystalline beef-liver catalase by the gel filtration technique. Sedimentation was obtained in a centrifugal field of 144,000 x g for 12 hr.

Animals↗

Role of sodium azide in reducing nonspecific color development in enzyme immunoassays.

Improved enzyme immunoassay (EIA) procedures achieved by incorporating sodium azide during predilution of serum samples in a solid-phase EIA for the detection of anti-Toxoplasma antibody in swine using a peroxidase conjugate and in all washes of a bovine brucellosis rapid card test EIA using alkaline phosphatase conjugate are reported. Without this modification, substantial background interference was encountered that showed direct correlation with the degree of hemolysis of the serum samples. Anti-Toxoplasma gondii antibody-negative samples, separated by subjective groupings based on degree of hemolysis, into "clear", "slight", and "gross/total" samples, had a mean +/- standard deviation of 0.150 +/- 0.072, 0.187 +/- 0.105, and 0.232 +/- 0.108, respectively. The incorporation of sodium azide during the initial step of serum dilution dramatically eliminated the background, giving a mean +/- standard deviation of 0.079 +/- 0.029, 0.076 +/- 0.022, and 0.081 +/- 0.029, respectively. The level of endogenous peroxidase activity, a possible factor for this nonspecific interference, was considerably elevated in some of the swine sera. The clear, slight, and gross/total categories had relative levels of 1%, 2%, and 51% peroxidase activity compared to the conjugate peroxidase activity of 100%. Whereas sodium azide could be used only in sample predilution in the swine toxoplasmosis peroxidase-conjugate test, in the bovine brucellosis alkaline phosphatase-conjugate card test it could be used in all wash cycles. Many brucellosis card test results were visually uninterpretable because of significant background color when the manufacturer's wash reagent was used. The substitution of a wash reagent containing sodium azide eliminated background color, giving a visually unambiguous test.

Animals↗

[Fatal sodium azide poisoning in a hospital: a preventable accident].

A case of fatal sodium azide poisoning is reported. From the hospital staff, a 57 year old patient had obtained 1 g of sodium azide in order to put it as a preservative, in his 24 hour urinal. Probably due to an error, he swallowed the total dose. A cardiovascular collapse was cause of the death after five hours of intensive treatment and reanimation. Azide anions were found in blood (traces, less than 0.5 mg/L), vitreous (10 mg/L) and cerebrospinal fluid (20 mg/L). The use of sodium azide for disinfection of urine samples should be regarded as obsolete. Less toxic substances for disinfection are available. To avoid chemical disinfection, urine samples can be kept at 4-8 degrees C prior to rapid analysis.

Azides↗

New NO donors with antithrombotic and vasodilating activities, Part 27. Azide oximes and 1-hydroxytetrazoles.

Eleven azide oximes were prepared and tested for their antiplatelet (in vitro), antithrombotic, and blood pressure lowering activities. Nine of them inhibited the aggregation of blood platelets (Born test, inducer collagen) with IC50 values between 10 and 50 microM. The most active compounds i.e. azido-4-nitrophenylbenzaldoxime (2h) had an IC50 = 2 microM. Nine azide oximes exhibited significant antithrombotic properties. The most active compounds were 2h and 2c (azido-4-methylphenylbenzaldoxime) with an inhibition of thrombus formation above 20% in arterioles after a single p.o. dose of 60 mg/kg. Both compounds lowered the blood pressure in spontaneously hypertensive rats by 11% (2h) or 5% (2c), respectively. Seven azide oximes were rearranged to the title tetrazololes which however showed smaller antithrombotic effects. In separate in vitro experiments at 37 degrees C it could be demonstrated that azide oximes release nitric oxide (conversion rate approximately 10%.h-1) and nitrosohydrogen (conversion rate approximately 2%.h-1). This makes it appear probable that the above effects are mediated by these molecules.

Animals↗