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In vivo response of the rat's retinal pigment epithelium to azide: changes induced by light damage.

Functional changes in retinal pigment epithelium (RPE) associated with light-induced retinal damage were studied by measuring transocular potential changes evoked by injections of azide and thiocyanate (SCN-). The retinal damage by light in the rat is classified into two types: Type 1, rod cell death associated with RPE deterioration; Type 2, the loss of rod cells without RPE deterioration. To study the type 1 damage, littermate pairs of long-term dark-adapted adult albino rats were tested at 1 h and 10 d after the exposure to green light of 1,200 lx for 1/2 to 24 h. Time course of the damage progress was also followed for 12 h. We found that 1) RPE was affected rapidly by the damaging light, 2) the exposure length determined the ultimate degree of RPE damage, 3) damaging effects on RPE proceeded slower and weaker after exposure than during continuous light, 4) progress of the damage in RPE was two-phasic; during the first phase, the SCN- response was enhanced and the azide response was reduced; both responses were decreased rapidly in the second phase. The first phase was assumed to indicate a depolarization of the basolateral membrane of RPE, and the second phase to manifest the structural deterioration of RPE. The type 2 damage was studied in young rats with exposure to weak light for 28 d. At 30 d after the exposure, a-wave of the ERG and number of rod cells were substantially reduced but azide and SCN- responses were affected slightly.

Animals↗

Sodium azide as a preservative in epidemiological studies of helminth ova in fecal specimens.

In 20 fecal specimens stored at ambient temperature (30-40 degrees C) for 3-7 days, substantial reductions in hookworm ova load were observed when a sensitive egg counting method (modified Kato's technique) was employed. Aliquots to which sodium azide (3 mg/g of fecal matter) was added showed considerably less reduction. A larger study on 120 specimens confirmed that there was no reduction up to 3 days. Significant decreases, however, occurred by 5 days, and these could not be prevented even by doubling the sodium azide dose (to 6 mg). It is recommended that in epidemiological studies of hookworm infestation in tropical countries, 3 mg of sodium azide should be added per g of fecal matter within 6 h of collection and the specimen tested within 3 days.

Adolescent↗

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↗

[A new test for hemolysis related to tocopherol deficiency: hemolysis caused by sodium azide (NaN3). Results in cholestasis in children].

In patients suffering from intra or extrahepatic biliary obstruction defective absorption of liposoluble vitamins results in tocopherol deficiency. Erythrocyte membranes thus have an increased susceptibility to various oxydants. Erythrocytes from 28 infants and children with biliary atresia have been studied. The usual peroxide hemolysis test (H2O2) was compared with a new method using sodium azide (NaN3), an inhibitor of intraerythrocytic catalase, as the hemolyzing agent. A much more significant correlation was found between plasma tocopherol levels and NaN3--induced hemolysis (R. coefficient = -0.872; P = 99.9%) than tocopherol levels and peroxyde hemolysis (RC = -0.477; P = 95-99%). In severely tocopherol-deficient patients (plasma levels below 0.15 mg/dl compared to normal of 0.5 mg/dl) sodium azide hemolysis is completed by the 5th hour of incubation at 37 degrees C. After the 5th hour, hemolysis begin to appear in the control media and when measured at 20 hrs is almost complete especially in the isotonic saline solution (NaCl 0.9 g/l). When abnormal red cells are incubated in their own tocopherol-supplemented plasma a complete normalization of hemolysis due to NaN3, H2O and control media is obtained. The sodium azide hemolysis test is proposed as a new and simple means of measuring tocopherol deficiency in erythrocyte membranes.

Azides↗

Exposure to azide markedly decreases the abundance of mRNAs encoding cholesterol synthetic enzymes and inhibits cholesterol synthesis.

This study was performed to identify genes that are regulated in the adaptive response to prolonged inhibition of oxidative phosphorylation. Gene microarray analysis in control Clone 9 cells and Clone 9 cells exposed to 5 mM azide for 24 h was carried out as a condition of "Chemical hypoxia." Among several hundred mRNAs whose abundances were either increased or decreased, we noted that the abundance of mRNAs encoding enzymes that catalyze the sequential steps of cholesterol synthesis was decreased; this finding was verified by real-time PCR. Exposure to azide for 24 h markedly inhibited the biosynthesis of cholesterol by approximately 90% and decreased the cellular content of cholesterol by 30%, similar results were observed in HepG2 cells. The abundance of sterol regulatory element binding protein (SREBP)-2 mRNA decreased to 0.37 and 0.25 that of controls after 2 and 24 h exposure, respectively. After 24 h of exposure to azide the precursor and nuclear forms of SREBP-2 protein decreased by approximately 80% and approximately 50%, respectively. Stimulation of AMP-activated protein kinase (AMPK) by AICAR in Clone 9 cells increased the abundance of mRNAs encoding cholesterol biosynthetic enzymes and that of SREBP-1c, and had no effect on SREBP-2 mRNA abundance. We conclude that the decrease in the abundance of multiple mRNAs encoding cholesterol biosynthetic enzymes may be mediated by decreased expression of SREBP-2 mRNA and protein and does not involve stimulation of AMPK. The decrease in SREBP-2 mRNA and protein abundance in the face of decreased cell cholesterol content raises the possibility of a novel regulatory pathway.

Animals↗

Nitrite production by stimulated human polymorphonuclear leukocytes supplemented with azide and catalase.

The formation of nitric oxide by human phagocytes as measured by nitrite production is controversial. We report here that nitrite production by phorbol myristate acetate (PMA)-stimulated human polymorphonuclear leukocytes (PMN) is considerably increased by the addition of azide and a further increase occurs when catalase also is added. Nitrite production by the PMN-PMA-azide-catalase system is unaffected by superoxide dismutase or monomethylarginine but is markedly reduced by the substitution of chronic granulomatous disease for normal neutrophils. The stimulated neutrophils could be replaced by the H2O2-generating enzyme system glucose-glucose oxidase. These findings suggest that nitrite production does not, in this instance, reflect nitric oxide synthase activity by human neutrophils but rather the catalase-catalyzed conversion of azide to nitrite in the presence of H2O2 generated by the stimulated PMN.

Azides↗

Observation of Cu-N3- stretching and N3- asymmetric stretching bands for mono-azide adduct of Rhus vernicifera laccase.

Mono-azide adduct of Rhus vernicifera laccase, a multicopper oxidase containing one type-1 (blue) copper, one type-2 (non-blue normal) copper, and a pair of type-3 (binuclear and EPR silent) coppers, of which type-2 and type-3 coppers constitute a trinuclear site, was investigated with resonance Raman (RR) and Fourier transform infrared (FT-IR) spectroscopies as a step toward elucidation of the structure and function of the trinuclear site. The Cu-N3- stretching (vCu-N3-) RR band was observed for azide-bound multicopper oxidases for the first time. The vCu-N3- band was located at 400 cm-1 for mono-14N3- laccase, which shifted to 396 cm-1 with the 15N14N14N3- analog. The N3- asymmetric stretching (v(N3-)asym) band was observed by FT-IR spectroscopy at 2035 cm-1 for mono-14N3- laccase and at 2025 cm-1 for the 15N14N14N3- analog. The vCu-N3- and v(N3-)asym frequencies and their 15N14N14N- isotope shifts for azido laccase correspond well with those of metazido hemocyanin, indicating that both derivatives should have a similar binding geometry of azide.

Azides↗

X-ray structures and mechanistic implications of three functional derivatives of ascorbate oxidase from zucchini. Reduced, peroxide and azide forms.

The X-ray structures of three functional derivatives of ascorbate oxidase (EC 1.10.3.3) from Zucchini have been determined and are compared to the "native" oxidized form. The fully reduced form of ascorbate oxidase has been refined to a crystallographic R-factor of 19.6% for all reflections between 8.0 A and 2.2 A resolution. The geometry at the type-1 copper (CU1) is unchanged compared to the oxidized form, but the oxygen ligand bridging the copper ions CU2 and CU3 (spectroscopic type-3 copper pair) is released and the copper ions move apart yielding a trigonal planar co-ordination with their ligating histidine residues. The co-ordination at the copper ion CU4 (spectroscopic type-2 copper) is not affected. The copper-copper distances increase from an average 3.7 A in the native form to 5.1 A for CU2-CU3, 4.4 A for CU2-CU4 and 4.1 A for CU3-CU4. The peroxide derivative of ascorbate oxidase has been refined to a crystallographic R-factor of 16.0% for all reflections between 8.0 A and 2.59 A resolution. The geometry at the type-1 copper site is not changed compared to the oxidized form. The oxygen ligand bridging copper atoms CU2 and CU3 is lost, too. The peroxide binds terminally to the copper ion CU2 as hydroperoxide. Copper ion CU2 is fourfold co-ordinated to the NE2 atoms of the three histidine residues and to the oxygen atom of the terminally bound peroxide molecule in a distorted tetrahedral geometry. Copper ion CU3 is threefold co-ordinated as in the reduced form and co-ordination around copper atom CU4 is unaltered. The copper-copper distances increase to 4.8 A for CU2-CU3 and 4.5 A for CU2-CU4. The distance CU3-CU4 remains 3.7 A. Treatment with peroxide causes a partial depletion of copper ion CU2. The refinement for the azide derivative of ascorbate oxidase converged at a crystallographic R-factor of 17.8% for all reflections between 8.0 A and 2.32 A. There are no significant structural changes at the type-1 copper site. The oxygen ligand bridging copper ions CU2 and CU3 is again released. Two azide molecules bind terminally to copper ion CU2. Copper ion CU2 is fivefold co-ordinated to the NE2 atoms of the three histidine residues and to both terminally bound azide molecules in a trigonal-bipyramidal manner. Copper-copper distances increase to 5.1 A for CU2-CU3 and 4.6 A for CU2-CU4. The distance CU3-CU4 is decreased to 3.6 A.(ABSTRACT TRUNCATED AT 400 WORDS)

Ascorbate Oxidase↗

Crystallographic study of azide-inhibited bovine Cu,Zn superoxide dismutase.

The crystal structure of azide-inhibited bovine Cu,Zn superoxide dismutase has been studied and refined based on X-ray synchrotron radiation data, in conjunction with difference Fourier and restrained crystallographic refinement techniques. The final R-factor for the 20,756 reflections in the 10.0 to 2.1 A resolution range is 0.166. In both enzyme subunits, the azide anion, which is a competitive inhibitor expected to mimic the superoxide binding mode, is observed directly coordinated to the Cu2+ at the place of the metal-bound water molecule, forming an ion pair with the conserved active site residue Arg141. The coordination sphere of Cu2+ is partly altered with respect to the uninhibited enzyme: a displacement of 0.67 A in subunit A, and 0.37 A in subunit B of the dimeric enzyme is observed for the Cu2+. Only two ligands in the Cu2+ coordination sphere (His46 and His118) are affected by azide binding, whereas virtually no rearrangement of the Zn2+ ligands is reported.

Animals↗

Azide-resistant mutants of Azorhizobium caulinodans with enhanced symbiotic effectiveness.

Azide-resistant mutants of Azorhizobium caulinodans strains Sb3, S78, SrR13 and SrS8 were isolated and screened for nitrate reductase activity. Selected nitrate reductase negative mutants were inoculated on Sesbania bispinosa and S. rostrata under sterile conditions in chillum jars to study their symbiotic behavior. Azide-resistant mutants exhibited either similar or higher symbiotic effectiveness than the parent strain after 30 d of plant growth. Nodule mass, nitrogenase activity and uptake hydrogenase activity of the mutants varied depending on the host as well as on the plant growth stage. In comparison to wild-type parent strains, four azide-resistant mutants, Sb3Az18, S78Az21, SrR13Az17 and SrS8Az6 showed significant increase in nodulation and nitrogen fixation as well as shoot dry mass of the inoculated plants.

Azorhizobium caulinodans↗

The conversion of glyceraldehyde-3-phosphate dehydrogenase to an acylphosphatase by trinitroglycerin and inactivation of this activity by azide and ascorbate.

Trinitroglycerin oxidizes the essential sulfhydryl group, Cys-149, of pig muscle glyceraldehyde-3-phosphate dehydrogenase (D-glyceraldehyde-3-phosphate : NAD+ oxidoreductase(phosphorylating) EC 1.2.1.12) TO A SLUFENIC ACID, NOT TO A DISULFIDE. This conclusion is based on the observation that the inactivation of the dehydrogenase activity of the enzyme by the organic nitrate induces the acylphosphatase activity which is catalyzed by the sulfenic acid form of the enzyme. Inorganic nitrite is released during this process which is stoichiometric with the degree of inactivation of the dehydrogenase. The acylphosphatase activity induced by trinitroglycerin, unlike the dehydrogenase activity, is sensitive to CN-. Treatment of the enzyme oxidized with trinitroglycerin with 14-CN- leads to the incorporation of protein-bound 14-CN-, which is stoichiometric with the degree of inactivation of the dehydrogenase. Treatment of the sulfenic acid form of glyceraldehyde-3-phosphate dehydrogenase at pH 5.3 with a 10-fold molar excess of azide over the concentration of enzyme subunit completely inactivates the acylphosphatase reaction catalyzed by the oxidized enzyme. Concomitantly, the dehydrogenase activity catalyzed by the sulfhydryl form of the enzyme reappears which indicates that excess azide reduces the sulfenic acid which is required for the acylphosphatase. Treatment of the oxidized enzyme with a stoichiometric amount of azide at pH 5.3 stimulates the acylphosphatase activity and does not lead to the reappearance of dehydrogenase activity. When the sulfenic acid form of the enzyme is incubated with 20 mM L-ascorbate at pH 5.3, the acylphosphatase activity is completely inactivated and the dehydrogenase activity catalyzed by the reduced form of the enzyme is recovered. Thus, L-ascorbate also reduces the protein sulfenic acid which is required for the acylphosphatase activity.

Animals↗

A new method of anomeric protection and activation based on the conversion of glycosyl azides into glycosyl fluorides.

Glycosyl azides provide reliable anomeric protection stable to conditions for hydrolytic removal of ester groups, for reductive opening or release of acetalic diol protection, for the introduction of ether-type protection, and for glycosylation processes. The utility of this anomeric protection is further enhanced as glycosyl azides may be converted into glycosyl fluorides, which can be activated for glycosylation reactions. To this end, glycosyl azides have been subjected to 1,3-dipolar cycloaddition with di-tert-butyl acetylenedicarboxylate. On treatment with hydrogen fluoride-pyridine complex the N-glycosyl triazole derivatives directly give glycosyl fluorides.

Azides↗

Early stages in the formation and stabilization of acetylcholine receptor aggregates on cultured myotubes: sensitivity to temperature and azide.

We have studied the effects of temperature and sodium azide on the formation and stability of embryonic brain extract (EBX)2-induced acetylcholine receptor (AChR) aggregates on myotubes. Sequential changes in AChR distribution were studied on living myotubes in culture by video-intensified fluorescence microscopy. Aggregate formation was temperature dependent, increasing sharply from 24-36 degrees, maximal at 36-37 degrees, and virtually blocked at 38-40 degrees. Whereas aggregate size increased rapidly with time (up to 4 hr) at 36 degrees, at 18-24 degrees small (less than or equal to 1 micron) "microaggregates" formed and accumulated for up to 10 hr. Aggregates formed within 1.5 hr at the sites of microaggregates (formed after 4 hr at 23 degrees) if the temperature was raised to 36 degrees. However, if EBX was removed, the microaggregates on 50% of myotubes disassembled within 1.5 hr. The formation of microaggregates at 23 degrees and aggregates at 36 degrees was reversibly inhibited by sodium azide. These results show that clusters of microaggregates are the precursors of aggregates, and suggest that microaggregate clouds represent a discrete, labile, ATP-dependent stage in aggregate formation. Aggregates that had formed after 4 hr in the presence of EBX disassembled slowly (within 12-14 hr) following removal of EBX at 36 degrees, and even more slowly at 23-30 degrees. However, a temperature shift to 38 degrees, or the addition of azide, resulted in a rapid but reversible disassembly of aggregates (within 4 hr). Thus, newly formed aggregates appear to be relatively stable structures, while microaggregate clouds are labile, tending to disassemble or evolve into aggregates.

Animals↗

Production of frameshift mutations in Salmonella by a light sensitive azide analog of ethidium.

Frameshift mutations have been produced in specific repair-negative Salmonella tester strains by photoaffinity labeling technique using ethidium azide. Reversions requiring a +1 addition or a -2 deletion were specially sensitive. Mutagenesis was reduced by the simultaneous addition of non-mutagenic ethidium bromide, and was prevented by photolysis of the azide prior to culture addition. Identical tester strains active in DNA excision repaire were not mutagenized by the azide. These results are consistent with the interpretation that photolysis of the bound ethidium analog converts the drug from its noncovalent mode of binding (presumably intercalation) to a covalent complex with consequent production of frameshift mutations. Such photoaffinity labeling by drugs which bind to DNA not only confirms the importance of covalent drug attachment for frameshift mutagenesis, but also provides powerful techniques for studying the molecular deatils of a variety of genetic mechanisms.

Azides↗

Mutagenic and chromosome-breaking effects of azide in barley and human leukocytes.

Azide (10-3 M, solution buffered at pH 3) is more effective in inducing mutations in embryonic shoots of seeds germinated between 8 and 16 h than in non-germinated seeds and in seeds germinated between 0 and 8 h and 16 to 28 h. This peak of chlorophyll-deficient seedling mutation frequency coincides with maximum frequencies of seeding lethals and DNA replication in the cells of the embryonic shoot. The mutation data suggest azide may only act on replicating DNA. Azide induced no chromosome-aberration frequencies significantly above controls in (1) embryonic shoots of barley seeds germinated for 8--12 h, (2) microspores of barley and (3) human leukocytes. It appears to be a point-mutation mutagen.

Azides↗

Sodium azide-induced mutagenesis in Saccharomyces cerevisiae.

Sodium azide (0.5--2.0 X 10(-5) M), applied for 24 h on cells growing in complete medium, increased up to 26 times the frequency of reversions and locus-specific suppressor mutations of allele ilv1-92 in diploid strain D7 of Saccharomyces cerevisiae. Similarly, it enhanced the frequency of reversions and/or mitotic gene conversions of alleles trp5-12/trp5-27 up to 19 times. Reconstruction experiments showed that the increase of mutations in complete medium was not due to a selection of prototrophic types under growth conditions and, therefore, that sodium azide acts as a weak mutagen in S. cerevisiae under growth conditions at a low pH. No mutagenic or convertogenic effect was observed when azide was applied to resting cells in buffer at pH 4.2.

Azides↗

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↗

In vivo conversion of sodium azide to a stable mutagenic metabolite in Salmonella typhimurium.

Salmonella typhimurium TA1530 and G46 strains growing in minimal medium supplemented with sodium azide produce a stable mutagenic metabolite which is not azide. The production of this metabolite is restricted to the log phase of bacteria grown in the presence of azide. The metabolite is highly mutagenic in DNA-repair defective base-substitution strains TA1530 and TA1535, but ineffective in frameshift strains TA1538 and TA1537. The metabolite induces mutations in resting cells of the TA1530 strain.

Azides↗