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Sodium azide dilates coronary arterioles via activation of inward rectifier K+ channels and Na+-K+-ATPase.

Sodium azide (NaN(3)), a potent vasodilator, causes severe hypotension on accidental exposure. Although NaN(3) has been shown to increase coronary blood flow, the direct effect of NaN(3) on coronary resistance vessels and the mechanism of the NaN(3)-induced response remain to be established. To address these issues without confounding influences from systemic parameters, subepicardial coronary arterioles were isolated from porcine hearts for in vitro study. Arterioles developed basal tone at 60 cmH(2)O intraluminal pressure and dilated acutely, in a concentration-dependent manner, to NaN(3) (0.1 microM to 50 microM). The NaN(3) response was not altered by the nitric oxide synthase inhibitor N(G)-nitro-L-arginine methyl ester or endothelial removal. Neither inhibition of phosphoinositol 3-kinase and tyrosine kinases nor blockade of ATP-sensitive, Ca(2+)-activated, and voltage-dependent K(+) channels affected NaN(3)-induced dilation. However, the vasomotor action of NaN(3) was significantly attenuated in a similar manner by the inward rectifier K(+) (K(IR)) channel inhibitor Ba(2+), the Na(+)-K(+) ATPase inhibitor ouabain, or the guanylyl cyclase inhibitor 1H-[1,2,4]oxadiazolo[4,3,-a]quinoxalin-1-one (ODQ). Ba(2+), in combination with either ouabain or ODQ, nearly abolished the vasodilatory response. However, there was no additive inhibition by combining ouabain and ODQ. The NaN(3)-mediated vasodilation was also attenuated by morin, an inhibitor of phosphatidylinositolphosphate (PIP) kinase, which can regulate K(IR) channel activity. With the use of whole cell patch-clamp methods, NaN(3) acutely enhanced Ba(2+)-sensitive K(IR) current in isolated coronary arteriolar smooth muscle cells. Collectively, this study demonstrates that NaN(3), at clinically toxic concentrations, dilates coronary resistance vessels via activation of both K(IR) channels and guanylyl cyclase/Na(+)-K(+)-ATPase in the vascular smooth muscle. The K(IR) channels appear to be modulated by PIP kinase.

Animals↗

Mutagenic effects of sodium azide in Drosophila melanogaster.

The mutagenic effects of sodium azide (NaN3) were studied at low pH in male Drosophila melanogaster using the sex-linked recessive-lethal test. No significant increase in the mutation frequency was observed after abdominal injection of azide solutions buffered at either pH 3.8 OR 4.6. However, a weak mutagenic effect was noticed in the flies fed for 3 days on 0.1 mM azide (pH 4.6) solution.

Animals↗

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↗

[Detection of an inhibition of benzo(a)pyrene and sodium azide induced mutagenesis by extracts from human feces].

Low levels of mutagenic activities were detected in only 5-25% of the feces of people on a normal mixed-western diet, when feces were extracted by solvents and extracts were analyzed for mutagenicity with Ames' standard Salmonella/microsome assay. Since mutagens are know to be present in this type of diet and may be synthesized endogenously by bacteria in the large bowel, the question is if antimutagenic compounds mask the presence of genotoxic substances. We therefore tested the inhibition of known mutagens--benzo(a)-pyrene and sodium azide--by acetone/ethyl-acetate extracts of lyophilized feces in model experiments. These extracts completely suppressed the mutagenicity of benzo(a)pyrene and reduced the mutagenicity of sodium azide by about 60%, but were non-cytotoxic. Using gel filtration over Sephadex LH-20 and subsequent silica gel column chromatography we found that the inhibitors were polar organic compounds with molecular weights about 500 or more. The inhibitory effect could not be changed by esterification or saponification methods but was completely abolished by alkaline potassium permanganate oxidation. We therefore conclude that the antimutagenic activities might be identical with bile pigments.

Antimutagenic Agents↗

[Sodium azide--an activator of serum lipoproteins peroxidation].

Addition of even small amounts of sodium azide to preparations of blood serum lipoproteins of various classes, isolated by ultracentrifugation, intensified peroxidation of their lipids. At the same time, physical structure of blood serum lipoproteins was impaired as shown by activation of chemoluminescence using fluorescent probes pyrene and I-aniline naphthalene-8-sulphonate simultaneously with an increase in content of malonic dialdehyde. The data obtained suggest that the results of studies of protein-lipid structures in media containing azides have to be interpreted very carefully to avoid unwarranted conclusions.

Animals↗

Sodium azide treatment decreases striatal and cortical concentrations of alpha-tocopherol in rats.

Sodium azide (20mg/kgsc), given for a maximum of 3 days to rats, significantly decreased the alpha-tocopherol concentrations in the cortex on day 2 and in the striatum on day 3. In these brain regions the oxidized glutathione values showed 30 to 36% (statistically not significant) elevation on day 3. Reduced glutathione levels were not altered. The observations suggest an important role for alpha-tocopherol in the defense against azide induced free radicals probably including NO and lipid peroxide radicals.

Animals↗

Intratubular application of sodium azide inhibits loop of Henle reabsorption and tubuloglomerular feedback response in anesthetized rats.

Sodium azide (NaN3, AZ) is a potent inhibitor and uncoupler of oxidative phosphorylation as well as a nitrovasodilator after being converted to nitric oxide (NO). We studied the effect of intratubular application of AZ on loop of Henle reabsorption and tubuloglomerular feedback (TGF) employing renal micropuncture experiments in nephrons with superficial glomeruli of anesthetized Munich-Wistar-Fromter rats. During perfusion of Henle's loop downstream from an obstructing wax block, AZ (3x10(-5) mol/l and 3x10(-4) mol/l) concentration-dependently increased early distal tubular flow rate and sodium and potassium ion concentration (V(ED), [Na+]ED, [K+]ED). In comparison, application of furosemide (10(-4) mol/l), the action of which is restricted to the water-impermeable thick ascending limb of Henle's loop (TALH) and the macula densa, similarly increased [Na+]ED and [K+]ED, but did not affect V(ED). The effect of AZ on loop of Henle reabsorption appeared to be predominantly localized upstream to the TALH since (1) AZ significantly inhibited net fluid reabsorption (the latter being completely abolished at 3x10(-4) mol/l), (2) the effect of AZ on [Na+]ED and [K+]ED could be mimicked by perfusing the Henle's loop at a flow rate that caused a comparable increase in V(ED) (reflecting a comparable load to TALH), and (3) the effects of AZ and furosemide were additive. In spite of the increase in [Na+]ED and [K+]ED, intratubular application of AZ caused a concentration-dependent inhibition of TGF response, the latter being assessed as the fall in early proximal tubular stop flow pressure during perfusion of Henle's loop at increasing flow rate. Like AZ and furosemide, the NO donor sodium nitroprusside (10(-4) mol/l) blunted the TGF response, but in contrast to furosemide or AZ, it caused a minor decrease in V(ED), without changing [Na+]ED or [K+]ED. The inhibitory effect of AZ on TGF was abolished by the NO scavenger carboxy PTIO. In summary, AZ inhibits both reabsorption in the water-permeable segment of Henle's loop and the TGF response. The effect on reabsorption may be linked to metabolic inhibition rather than NO release, whereas the blunted TGF response appears to involve conversion to NO.

Absorption↗

Sodium azide protects against ischemia-induced acute renal failure in rats.

Sodium azide (AZ) is a nitrovasodilator with diverse biochemical properties. We found that low doses of AZ led to a profound protective effect against postischemic, acute renal failure (ARF) in rats. AZ, given at 250 micrograms/kg iv, before 25 min of renal artery occlusion (RAO) and again before reperfusion, conferred almost complete protection against loss of kidney function determined 18 h after RAO. The effect of AZ was evidenced by a higher creatinine clearance (+348%) and lower levels of blood urea nitrogen (-69%) and histological renal damage (-50%) compared with ischemic control animals. Indexes of kidney function in AZ-treated animals subjected to RAO were not significantly different from those of nonischemic control animals. Two other nitrovasodilators, sodium nitroprusside and hydralazine, at doses which produced decreases in blood pressure similar to that of AZ, were ineffective at preventing ARF. The beneficial effect of AZ may be due to its known ability to inhibit one or more enzymes including adenosinetriphosphatase, cytochrome-c oxidase, and myeloperoxidase.

Acute Kidney Injury↗

Effects of metabolic inhibition by sodium azide on stimulus-secretion coupling in B cells of human islets of Langerhans.

Sodium azide (NaN3), a reversible inhibitor of mitochondrial respiration, blocks glucose-induced electrical activity and insulin secretion in human pancreatic islet B cells. Here we show that brief (10-15 min) application followed by removal of 3 mM NaN3 results in transient overshoot of electrical activity and insulin secretion even at substimulatory levels of glucose (3-5 mM). In addition, application of NaN3, even at very low [Ca2+]o, reversibly increases cytosolic Ca2+ to levels usually associated with substantial insulin release. These results suggest that (i) metabolic inhibition may reset B cell stimulus-secretion coupling and (ii) a rise in free cytosolic Ca2+, by itself, is not sufficient to trigger insulin secretion.

Azides↗

Sodium-azide versus ProClin 300: influence on the morphology of UHMWPE particles generated in laboratory tests.

Ultra-high molecular-weight polyethylene (UHMWPE) has been used in total joint replacement for the last three decades and is currently the best polymer available for this use. Nevertheless, the wear of UHMWPE remains a serious clinical problem. Polyethylene wear debris has been identified as a cause of osteolysis and a major factor reducing the life of the total hip arthroplasty. Debris generated at the articular surfaces enters the periprostethic tissue where it is phagocyted by macrophages. Studies have shown that particles in the 0.1-10microm size range are particularly important in causing adverse cellular reactions resulting in osteolysis. The morphology, size, mass, and number of wear particles produced in a hip joint simulator are influenced by the tribological conditions used during the experiment. This paper shows that the morphology of the UHMWPE particles generated in vitro is influenced by the type of lubricant used. This study compared, quantitatively and qualitatively, particles generated in vitro using bovine calf serum as lubricant with two different preservatives: sodium azide and ProClin 300. No significant difference was observed with regards to wear between the two types of lubricant used. Quantitative analysis of the wear particles showed that particles generated in serum with sodium azide were not [corrected] morphologically different from those produced in serum with ProClin 300 [corrected]

Animals↗

Embryotoxic effects of sodium azide infusions in the Syrian hamster.

Pairs of osmotic minipumps containing 400 mg/ml (6.15 M) sodium azide in distilled water were subcutaneously implanted in timed pregnancy Syrian golden hamsters. The total delivered dose was calculated as 6 X 10(-2) mmol kg-1 hr-1 at the maximal pumping rate. Most dams exhibited obvious signs of toxicity during the period of pump implantation which was Days 7 through 9 of gestation. After removal of the pumps the dams were euthanized on Day 13 of gestation, and the uteri were removed for counting of the number of living, malformed, and resorbed fetuses. This dose rate resulted in a significantly increased incidence of resorptions of embryos over that in a control group implanted with pumps delivering only distilled water. The incidence of gross malformations exclusively in the form of encephaloceles was not different between control and azide-infused groups. The extent of nitrosylation of circulating hemoglobin was followed with time and found to involve only about 0.1% of the total blood pigment. Thus, this commercially important and widely distributed chemical with high acute toxicity is not considered to be teratogenic in hamsters, and it produces embryotoxicity only at dose rates that result in toxic signs in the dams.

Abnormalities, Drug-Induced↗

[The effect of sodium azide on the thermotolerance of the yeast Saccharomyces cerevisiae and Candida albicans].

The addition of sodium azide (a mitochondrial inhibitor) at a concentration of 0.15 mM to glucosegrown Saccharomyces cerevisiae or Candida albicans cells before exposing them to heat shock increased cell survival. At higher concentrations of azide, its protective effect on glucose-grown cells decreased. Furthermore, azide, even at low concentrations, diminished the thermotolerance of galactose-grown yeast cells. It is suggested that azide exerts a protective effect on the thermotolerance of yeast cells when their energy requirements are met by the fermentation of glucose. However, when cells obtain energy through respiratory metabolism, the azide inhibition of mitochondria enhances damage inflicted on the cells by heat shock.

Candida albicans↗

[Suicide with sodium azide].

A case report is presented of the suicide of a 27-year-old female laboratory assistant by means of sodium azide. Simple colorimetric and volumetric methods are present to detect and estimate the salt.

Adult↗

Death following accidental sodium azide ingestion.

Two college students developed symptoms of poisoning following ingestion of a salt solution during a college physiology laboratory exercise. Symptoms included nausea, vomiting, diarrhea, and altered consciousness. The ingested solution was identified as isotonic buffered saline containing sodium azide in a concentration of 1.0 g/L. The solution was commercially prepared for instrumentation use only and was used inadvertently for the exercise instead of freshly preparing sodium chloride in water. One student drank three sips of the solution and survived. The other student drank 700 to 800 mL and over several days became progressively ill, suffering myocardial damage and cardiac dysrhythmias, and, finally, died. Toxicologic studies confirmed the presence of azide in an antemortem urine sample from the deceased. Sodium azide is an uncommon but potent poison which can cause serious illness and death.

Accidents↗

[Effect of prepared Polygonum multiflorum on striatum extracellular acetylcholine and choline in rats of intracerebral perfusion with sodium azide].

OBJECTIVE: To investigate the protection mechanism of prepared Polygonum multiflorum (PPMT) in rat brain with sodium azide (NaN3) perfusion. METHOD: Rats were divided into six groups: control, model, PPMT, Duxil and PPMT + Duxil groups. The intracerebral microdialysis and high performance liquid chromatography-post column Immobilized enzyme reactor-electrochemical detection were used to continuously measure extracellular acetylcholine (ACh) and choline (Ch) levels in striatum of freely moving awake rats. RESULT: The extracellular Ach, Ch levels of striatum stayed stable in the control group during the whole observing period, but the ACh levels in the model group were lower significant than that in the control group. The Ach levels of three drug groups were respectively higher significant than that of model group at some time points. While the extracellular Ch level in striatum of the model group increased singnificantly compared with the control group. The Ch levels of the three drug groups were lower significant than that of the model group respectively at certain time points. The effects of PPMT were similar with that of Duxil. CONCLUSION: The prepared P. multiflorum can improve the impaired cholinergic nerve function to exert the effects of brain protection by elevating extracellular Ach level and improving uptake of extracellular Ch. It may provide the experimental evidence to support the idea that P. multiflorum could be brain protective drug to treat retrogressive disease such as dementia.

Acetylcholine↗

Effects of sodium azide on photosystem II of Chlorella pyrenoidosa.

The action of sodium azide on the electron transport chain was investigated by means of oxygen evolution, fluorescence and luminescence measurements. (1) The damping of the oxygen oscillations is progressively reduced with increasing azide concentration in the range of 10(-5) - 10(-1) M. (2) The rate of the dark decay of the S2 and S3 states is considerably slowed. The degree of slowing is dependent on concentration. (3) Luminescence is inhibited by azide both in the presence and absence of 3-(3,4-dichlorophenyl)-1,1-dimethylurea (DCMU). (4) The fluorescence induction curve in strong light is modified in the presence of azide and its shape depends on azide concentration and on incubation time. (5) At a given time after a saturating flash, the fluorescence yield in the presence of azide is much higher than that of the control. It seems to be due to a general fluorescence increase rather than to a slower Q- reduction. (6) We tentatively propose an accelerated reduction of the primary donor P+ in state S2 and S3, by the intermediate donor Z in the presence of azide. Additionally, we have to assume that in the S2 and S3 states, some centers are blocked in an inactive low fluorescent form and that azide decreases their concentration.

Azides↗

Mechanism-based inactivation of horseradish peroxidase by sodium azide. Formation of meso-azidoprotoporphyrin IX.

Catalytic turnover of sodium azide by horseradish peroxidase, which produces the azidyl radical, results in inactivation of the enzyme with KI = 1.47 mM and kinact = 0.69 min-1. Inactivation of 80% of the enzyme requires approximately 60 equiv each of NaN3 and H2O2. The enzyme is completely inactivated by higher concentrations of these two agents. meso-Azidoheme as well as some residual heme are obtained when the prosthetic group of the partially inactivated enzyme is isolated and characterized. Reconstitution of horseradish peroxidase with meso-azidoheme yields an enzyme without detectable catalytic activity even though reconstitution with heme itself gives fully active enzyme. The finding that catalytically generated nitrogen radicals add to the meso carbon of heme shows that biological meso additions are not restricted to carbon radicals. The analogous addition of oxygen radicals may trigger the normal and/or pathological degradation of heme.

Azides↗

Peripheral and central actions of sodium azide on circulatory and respiratory homeostasis in anesthesized cats.

In pentobarbital-anesthesized cats, bolus i.v. injections of sodium azide produced dose-dependent transient hypotension accompanied by a modest tachycardia and a brief hyperpnea. Intracerebroventricular injections of azide elicited graded effects similar to the i.v. doses, but the responses were slower in onset and could be delayed by occluding the cranial blood supply. This is interpreted to mean that intracerebroventricular azide acts systematically after escaping from the cerebrospinal fluid into the bloodstream. The hypotensive response to i.v. azide was not affected by cholinergic or adrenergic blockade or buffer nerve section. The tachycardia was blocked by sympathetic neural blockade or buffer nerve section indicating that it is a baroreflex response to the vasodepressor effect. Respiratory effects of bolus i.v. azide occurred independently of the hypotensive response and were abolished by peripheral chemodenervation. Infusion of azide facilitated CO2-tidal volume responsiveness in the steady state, an effect that was essentially eliminated by carotid sinus neurotomy. The azide did not affect the tidal volume-respiratory frequency relationship mediated by the pulmonary stretch receptors. Thus, the respiratory stimulant effect of azide in subtoxic doses is attributable to an excitatory action on the arterial chemoreceptors. Toxic doses of azide resulted in centrally mediated hypertension, tachycardia, cardiac arrhythmia, respiratory depression, seizures and death.

Animals↗