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Tetrazolium salts and formazans.

The history of the tetrazolium salts and formazans goes back 100 years, to when Friese (1875) reacted benzene diazonium nitrate with nitromethane, to produce a cherry-red "Neue Verbindung". This was the first formazan. 19 years later, Von Pechmann and Runge (1894) oxidised a formazan to produce the first tetrazolium salt. Many hundreds of tetrazolium salts and formazans were prepared in the following years, but only a handful have found applications in biological research. This article has attempted to describe the properties of these compounds, and to illustrate how the tetrazolium salt-formazan reaction has been exploited to serve an extremely wide variety of functions.

Animals

The quantification of formazans in tissue sections by microdensitometry. II. The use of BPST, a new tetrazolium salt.

This article describes the use of a microdensitometer for the measurement of BPST formazan in tissue sections. BPST is a new tetrazolium salt, 2-(2-benzothiazolyl)-3-(4-phthalhydrazidyl)-5-styryl-tetrazolium chloride, which produces a single, well-defined formazan, and is thus easily quantified. The formazan gives an excellent localization, since BPST was originally designed for ultrastructural work. Activities are expressed in absolute units as n moles hydrogen/mm3, and are thus directly comparable with standard biochemical data.

Animals

Synthesis of some newer formazans and tetrazolium salts as antiviral agents.

Thirteen new formazans were prepared by the condensation of the phenylhydrazone of 3.4-dimethoxy-6-nitro-veratraldehyde with the appropriate phenyl diazonium salts. Attempts were made to oxidize these highly coloured formazans with various oxidizing agents to their corresponding tetrazolium salts. The most suitable oxidizing agent was found to be H2O2/Fe2+. Both the formazans and tetrazolium salts were screened for their antiviral activity against the Ranikhet disease virus and vaccinia virus in a stationary culture of chorioallantoic membrane of chick embryo. Among the 15 compounds tested one of the compounds namely 1-o-carboxyphenyl-3[3'.4'-dimethoxy-6'-nitrophenyl]-5-phenylformazan evinced 100% protection against the Ranikhet disease virus. Rest of the compounds showed significant protection ranging from 83 to 20%. An attempt has also been made to arrive at some structure-activity relationship.

Antiviral Agents

Oxygen and the production of formazan from neotetrazolium chloride.

Electrons, generated from dehydrogenase reactions, are transferred to oxygen in preference to neotetrazolium chloride. In model systems in solution the presence of a small amount of oxygen drastically reduces the rate of formazan production. The rate of reaction in tissue sections has been followed using scanning and integrating microdensitometry. As in solution, electrons are transferred preferentially to oxygen. However, oxygen seems unable to diffuse through the incubation medium and thus the supply of oxygen at the site of the enzyme activity becomes exhausted; the time taken to use up the oxygen will depend on the rate of the enzyme activity. It is only then that electrons are passed to the tetrazolium salt and formazan is precipitated.

Animals

The quantification of formazans in tissue sections by microdensitometry. I. The use of neotetrazolium chloride.

This article describes the use of a microdensitometer for the measurement of formazan deposits in tissue sections. Some examples are given to illustrate the various applications of this technique in the assessment of glucose-6-phosphate dehydrogenase activity. These are (I) the separate measurement of the red half-formazan intermediate and purple diformazan of neotetrazolium, and the effect of incubation time on their production, (2) the measurement of activities in different regions of the liver lobule, and the selective effect of phenobarbitone, and (3) the measurement of enzyme activity in individual cartilage cells in normal and osteoarthrosis-prone animals. All activities can be expressed in absolute units as nmol hydrogen/mm3/hr, and thus compared with standard biochemical data. The activities obtained all fall within the range of published values for biochemical systems.

Animals

Direct spectrophotometric observation of intracellular nitro-blue tetrazolium and its formazan by multiple internal reflectance infrared spectroscopy.

A technique is described which permits the direct, infrared (IR) spectrophotometric observation of peripheral leukocytes by utilizing multiple internal reflectance (MIR) spectroscopy on zinc selenide prisms. The IR spectra of nitro-blue tetrazolium (NBT) and its derivative, nitro-blue diformazan (NBF), are described and examined and these spectra are compared with those of the intracellular NBT and NBF yielding several peaks which may prove to be analytically useful. Additionally, the presence of unreduced NBT in leukocytes is demonstrated, which microscopic and chemical "NBT tests" have not previously done.

Formazans

Improvement of the glucose oxidase immunoenzyme technic. Use of a tetrazolium whose formazan is stable without heavey metal chelation.

Glucose oxidase immunoenzymatic localization provides a simple way to show antigens in mammalian tissues, with no need for the quenching of endogenous nonspecific staining. The method is useful for the demonstration of many antigens in formalin-fixed, paraffin-embedded tissues. Improvement of this technic by the use of p-nitro blue tetrazolium chloride (NBT) as the disclosing reagent provides a stable, finely grained localization not possible with the previously used thiazolyl blue (MTT). The described modification makes available an ideal immunoenzymatic stain for the study of tissues at the level of the light microscope. This stain is especially useful for the examination of tissues with hemorrhagic or inflammatory lesions, since there is no endogenous background staining. Slides are permanent, and the technic can be used with peroxidase-labeled antibody to localize two antigens in the same tissue.

Animals

The influence of the non-specific desensitization on the formazan activity of granulocytes in children with an infectious form of the bronchial asthma.

The authors applied a bacterial vaccine subcutaneously and pernasally in 42 children with infectious allergic, bronchial asthma. After having applied the vaccine for 6 weeks there has been found a distinct improvement of all values of the N. B. T. reduction test, in particular after subcutaneous injections. The authors attribute these results to a recovery or to a decrease of the activity of inflammation foci.

Administration, Intranasal

[Spontaneous nitroblue terazolium reduction test (NBT) by peripheral blood granulocytes in healthy subjects and in some hematologic syndromes].

The NBT reduction test and determination of alkaline phosphatase activity in the peripheral blood granulocytes (FAG) were done in 94 subjects including 30 blood donors donating blood for the first time and 64 cases of various haematological syndromes. Raised proportion of formazan granulocytes was found in patients with pancytopenia, acute myeloid leukaemia, chronic myeloid leukaemia during blastic exacerbation, Hodgkin's disease during exacerbation and lymphosarcoma. These results correlated with increased FAG activity. Lower proportions of formazan granulocytes capable of spontaneous reduction of NBT were found in patients with chronic myeloid leukaemia, in immunohaemolytic anaemias and in plasmocytoma. Of all the above syndromes only in chronic myeloid leukaemia impaired ability of formazan cell formation parallelled decreased FAG activity. In the remaining syndromes FAG activity in the granulocytes was normal or raised. In the remissions of Hodgkin's disease a fall was observed in the proportion of formazan granulocytes to values of FAG. In chronic myeloid leukaemia the proportion of formazan cells showed considerable fluctuations and no correlation was observed between the proportion of formazan cells and FAG activity.

Alkaline Phosphatase

Effect of solvent on tetrazolium reaction.

The rate of color development of a tetrazolium formazan is shown to be inversely proportional to the dielectric constant of the solvent medium and directly proportional to the hydrogen-bonding capability of solvent mixtures having the same dielectric constant. The geometric isomers of the formazans have different absorbance maxima, and the wavelength of maximum absorbance of a mixture of formazans in different solvents depends upon which isomer predominates in that solvent. The trans-syn-isomer (blue form) of blue tetrazolium has a maximum absorbance at 625 nm in dimethylformamide while the trans-anti-isomer (red form) absorbs at 517 nm in methanol. The absorbance maxima of the corresponding isomers of the formazans of triphenyltetrazolium occur at 535 and 485 nm, respectively. Water and/or methanol (to a lesser extent) are important in the stabilization of the trans-anti-isomer, since the small size of these two substances allows them to form strong intermolecular hydrogen bonds with one or both nitrogen atoms of the azo linkage, thereby preventing the formation of the intramolecular hydrogen bonding exhibited by the trans-syn-isomer. The formazan produced by the reaction of corticosteroids with tetrazolium in strongly basic media can lose a reduction unit and be reoxidized to the tetrazolium. This reaction is solvent dependent and occurs at a much faster rate in chloroform than in alcohol USP.

Adrenal Cortex Hormones

Nitroblue tetrazolium (NBT) reduction by bacteria. Some properties of the reaction and its possible use.

All the S. albus, E. coli and P. aeruginosa strains examined reduced nitroblue tetrazolium (NBT) to dark blue formazan. The amount of formazan produced was proportional to the number of bacteria. Under the same growth conditions, an equal number of bacteria of various strains produced different amounts of formazan. However, there were statistically verified differences in the NBT-reduction between the three species examined. The NBT-reduction took place in all phases of growth but was most intense in the early logarithmic phase. NBT was found to be toxic for bacteria, and the different strains had varying sensitivity to that effect. The NBT-reaction was markedly enhanced by phenazine methosulphate (PMS). The blue colour of formazan produced from NBT has an advantage over the red colour from triphenyltetrazolium chloride (TTC) if the reaction occurs in the presence of haemoglobin often present in biological materials. With NBT and PMS, 10(6)--10(7) bacteria are needed to form detectable amounts of formazan. The NBT-reduction by bacteria may be useful for measuring the influence of bactericidal, bacteriostatic or growth-stimulating factors on bacteria.

Bacteria

[Nitroblue-tetrazolium test in isolated human monocytes].

Depending upon the NBT charge 50 to 80% of isolated non stimulated human monocytes reduce NBT ro morphologically demonstrable Formazan. Similar to neutrophils two different patterns of reaction are exhibited: discrete load with finely distributed Formazan granula surrounding the nucleus; massive reaction with large distributed Formazan granula surrounding the nucleus; massive reaction with large Formazan deposits throughout the cytoplasma. In a low percentage morphologically desintegrated, massive loaden cells appear. After an additional incubation in medium without NBT the number of these necrotic cells increases. The phagocytosis of IgG-coated red cells is impaired after incubation of the monocytes in NBT. In the presence of an alkylating agent not only the NBT-reaction is inhibited; the number of necrotic cells is also diminished. Apparently the Formazan is cytotoxic. The significance of these results in particular in cases of enhanced NBT reduction is discussed. Compared with the findings of other authors concerning the neutrophils the monocytes possess a markedly stronger NBT reducing activity. Considering the lower bactericidal capacity of the monocytes NBT reduction does not in every case parallel bactericidal activity.

Antineoplastic Agents

[Quantitative method of determining the activity of zinc- and copper-dependent superoxide dismutase in biological material].

The activity of superhydroxide dismutase was estimated by following rate of inhibition of non-enzymatic reduction of tetrazolium salt in reaction with superhydroxide ions, which were continuously generated in a photochemical system. The quantitative estimations were achieved by using para-nitrotetrazolium chloride, which was reduced to formazanes soluble in acetone. Formation of formazanes by the photochemical system (riboflavin + tetramethylethylene diamine + O2 + para-nitrotetrazolium chloride + light) in presence of biological material and cyanide was compared with formation of formazanes in absence of cyanide for specific estimation of Zn, Cu-dependent forms of superhydroxide dismutase. The rate of enzymatic cyanide sensitive inhibition of the photochemical formation of formazanes from paranitrotetrazolium chloride was determined by the activity of Zn, Cu-dependent superhydroxide dismutase in biological material and might be expressed in units of the activity -- un. ac. = 10/(0,026.% inhibition--1,3).

Animals

Histochemistry of 3beta-hydroxysteroid dehydrogenase in rat ovary. I. Amethodological study.

By recording the incubation time needed for initial appearance of the red and blue formazans the reliability of the histochemical method for 3beta-HSD was investigated: 1. Prefixation of small tissue blocks with 1% W/V methanol-free formaldehyde (pH=7.2) for up to 30 min preserved morphological integrity as well as maximal enzyme activity. Moreover, the substantivity of formazans and lipids was enhanced. 2. Commercial available glutaraldehyde (pH=7.2) induced SH groups in the tissue (even at 0.1% W/V for 5 min) thereby enhancing the Nothing dehydrogenase reaction. 3. Preextraction of lipids with acetone for 20 min at -30 degree C caused no loss of activity and was an inevitable step if a reliable activity pattern had to be achieved (e.g. in interstitial cells). 4. No diffusion of enzyme was noticed within 30 min of preincubation in phosphate buffer (0.2 M, pH=7.2) at 20 degree C. 5. By using the double-section incubation method no diffusion of 3beta-HSD or rediffusion of NADH or PMSH could be noticed withn 45 min of incubation, provided that low concentrations of NAD (0.1 mg/ml) and PMS (0.003 mg/ml) were balanced against the concentration of Nitro BT (0.5 mg/ml) or Tetranitro BT (1.0mg/ml). 6. The utlity of different inhibitors of alkaline phosphomonoesterase was tested and discussed. 7. By inhibiting alkaline phosphomonoesterase with 0.1 mM of L-p-bromotetramisole or 16 mM of beta-glycerophosphate, 3beta-HSD was shown to be exclusively NAD-linked. 8. Levamisole was a potent inhibitor of NADH-tetrazolium reductase as well as 3 beta-HSD, but not of NADPH-tetrazolium reductase. 9. 3beta-HSD possess SH groups requisite for the activity as this enzyme was totally inhibited by N-ethyl maleimide. 10. Whether alcohol dehydrogenases may use steroids as substrate is discussed; It is concluded that preextraction (by acetone) and/or the use of an inhibitor of alcohol dehydrogenase (1,10-phenanthroline) has to be performed. 11. Propylene glycol was a poor solvent for all substrates and was itself an excellent substrate for alcohol dehydrogenase. 12. Specifications for the ideal solvent of steroid substrates in the histochemical practice are proposed. DMSO showed to be promising as a steroid solvent (e.g. extraction of formazans was considerably lower as compared to DMF). 13. The utilization of substrates was descending in the following order (using 1 mM and 0.1 ml/ml of either DMF or DMSO): epiandrosterone, methandriol, dehydroepiandrosterone and pregnenolone. 14. If DMSO was used as solvent for pregnenolone (but not for the other substrates tested) an evident increase of activity was recorded as compared to DMF.

Alcohol Oxidoreductases