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Growth hormone-responsive DT-diaphorase-mediated bioreduction of tetrazolium salts.

Microculture tetrazolium assays (MTAs) rely upon the bioreduction of tetrazolium salts to their intensely coloured formazans. Although these assays are being extensively used, the intracellular mechanisms responsible for the formazan production are not known. MTAs currently provide the basis for uniquely precise in vitro bioassays for human growth hormone (hGH) which use the Nb2 cells. We have compared two contrasting tetrazolium salts, namely 3-(4,5-dimethyl-thiazol-2-yl)- 2,5-diphenyltetrazolium bromide (MTT) and 5-(3-carboxymethoxyphenyl)-2-(4,5-dimethylthiazolyl)-3-(4-++ +sulfophenyl) tetrazolium, inner salt (MTS), in this system. An intermediate electron acceptor (IEA) is obligatory for the MTS- but not the MTT-bioassay. We report that inhibitors of DT-diaphorase abolished MTS- but not MTT-formazan production. We conclude that substitution of MTT with MTS/menadione resulted in formazan production via a different electron transfer pathway which is exclusively mediated by DT-diaphorase.

Animals↗

Staining normal and experimental motor nerve terminals with tetrazolium salts.

Nitroblue tetrazolium (NBT) has been used to stain motor nerve terminals and unmyelinated axons in vertebrate skeletal muscle, but undesirable background connective tissue coloration resulted. This procedure was improved by separation of the tetrazolium salt's binding from its subsequent reduction. By uncoupling the binding and reduction steps it was possible (1) to improve nerve terminal staining by using tetranitroblue tetrazolium (TNBT), (2) to counterstain and postfix in osmium tetroxide and (3) to enhance the overall tissue preservation. The separate binding and reduction procedure is compatible with postsynaptic acetylcholinesterase staining. Experimentally manipulated and diseased preparations can be successfully stained, and the requirements for optimal staining in each case are described.

Acetylcholinesterase↗

In vitro studies of the metabolism of tissue slices. I. Metabolic and physical factors influencing the penetration of tetrazolium salts.

The use of tetrazolium salts for metabolic studies has been dismissed on the basis of their poor penetration into fresh tissue slices. In view of the fact that the penetration of these compounds can be visualized, it was felt that knowledge of the factors involved would be important. Factors, known to influence the penetration of oxygen, were examined with respect to the tetrazolium salts. The penetration of tetrazolium salt into tissue slices was a regular and predictable phenomenon. It was found that decreasing the metabolism of the cells in the slice substantially increased the penetration of these compounds, while increases in metabolism, by addition of substrate (such as succinate) to the incubating medium, considerably decreased their penetration. Increasing concentrations of the salt in the medium resulted in greater but limited penetration. It is our belief that the metabolism of tissue slices can be effectively studied with the aid of the tetrazolium salts, the portion of the population of cells participating in any reaction being accurately established by measuring the depth of the zone of reduced dye.

In Vitro Techniques↗

An improved colorimetric assay for cell proliferation and viability utilizing the tetrazolium salt XTT.

A new tetrazolium salt XTT, sodium 3'-[1-[(phenylamino)-carbonyl]-3,4-tetrazolium]-bis(4-methoxy-6- nitro)benzene-sulfonic acid hydrate, was evaluated for use in a colorimetric assay for cell viability and proliferation by normal activated T cells and several cytokine dependent cell lines. Cleavage of XTT by dehydrogenase enzymes of metabolically active cells yields a highly colored formazan product which is water soluble. This feature obviates the need for formazan crystal solubilization prior to absorbance measurements, as required when using other tetrazolium salts such as MTT. Bioreduction of XTT by all the murine cells examined was not particularly efficient, but could be potentiated by addition of electron coupling agents such as phenazine methosulfate (PMS) or menadione (MEN). Optimal concentrations of PMS or MEN were determined for the metabolism of XTT by the T cell lines HT-2 and 11.6, NFS-60 a myeloid leukemia, MC/9 a mast cell line and mitogen activated splenic T cells. When used in combination with PMS, each of these cells generated higher formazan absorbance values with XTT than were observed with MTT. Thus the use of XTT in colorimetric proliferation assays offer significant advantages over MTT, resulting from reduced assay time and sample handling, while offering equivalent sensitivity.

Animals↗

On the mechanism of the multistep reduction of tetrazolium salts with special reference to the involvement of tetrazolium radicals.

Thin layer chromatography (TLC) was performed to analyze which products are formed when unstable tetrazolinyl radicals are generated during the reduction of tetrazolium salts under physiological conditions of biochemical and histochemical assays. It was found in aqueous media that irrespective the assay conditions, reduction of 2,3-di(4-nitrophenyl)-5-phenyl-2H-tetrazolium chloride (p-DNTTC) or 2,3-di(4-nitrophenyl)-5-t-butyl-2H-tetrazolium chloride (t-butyl-DNTC) always lead to production of formazan and never to generation of the corresponding 2(4-nitrophenyl)-5-phenyl- (respectively t-butyl-) tetrazoles by splitting off a nitrophenyl side chain from the tetrazolium ring as a cation. This reaction is known to occur in non-aqueous media (Neugebauer, 1973). Because p-DNTTC is analogous to tetrazolium salts that are used in biochemical and histochemical assays, it is concluded that reduction of tetrazolium salts leads to formation of formazans only under these conditions.

Chromatography, Thin Layer↗

Microculture tetrazolium assays: a comparison between two new tetrazolium salts, XTT and MTS.

Microculture tetrazolium assays are being widely exploited to investigate the mechanisms of both cell activation and cell damage. They are colorimetric assays which are based upon the bioreduction of a tetrazolium salt to an intensely coloured formazan. We contrast the responses obtainable with two new tetrazolium salts, MTS and XTT, when used on the rat lymphoma cell line (Nb2 cells), which has been activated by human growth hormone. These tetrazolium salts, unlike the more commonly used MTT, form soluble formazans upon bioreduction by the activated cells. This has the advantage that it eliminates the error-prone solubilisation step which is required for the microculture tetrazolium assays which employ MTT. Bioreduction of XTT and MTS usually requires addition of an intermediate electron acceptor, phenazine methosulphate (PMS). We found that the XTT/PMS, but not the MTS/PMS, reagent mixture was unstable. Nucleation and crystal formation in the XTT/PMS reagent mixture, prepared in DPBS, could occur within 1-3 min. This resulted in a decline in XTT-formazan production and manifested itself in the microculture tetrazolium assay as both poor within-assay precision and serious assay drift. Several features of the system suggested that the formation of charge-transfer complexes between XTT and PMS accounted for this instability. No such instability was encountered when MTS and PMS were mixed. We demonstrate that MTS/PMS provides microculture tetrazolium assays for hGH which are free from these serious artefacts and which are uniquely precise. In conclusion we therefore advocate the use of MTS in preference to XTT for the new generation of microculture tetrazolium assays.

Animals↗

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 role of plasma membrane in bioreduction of two tetrazolium salts, MTT, and CTC.

Despite widespread use of various tetrazolium assays, the mechanisms of bioreduction of these compounds have not been fully elucidated. We investigated the capacity of tetrazolium salts to penetrate through intact cell plasma membranes. 5-cyano-2,3-ditolyl tetrazolium chloride (CTC) and 3-(4,5-dimethylthiazol-2-yl)-2,5 diphenyltetrazolium bromide (MTT) tetrazolium salts appear to represent examples of species that are reduced by different mechanisms. We provide evidence suggesting that MTT readily crosses intact plasma membranes and is reduced intracellularly. MTT appears to be reduced by both plasma membrane and intracellular reductases; reducing cells are not damaged and remain metabolically active for at least 45 min. In contrast, CTC remains extracellular with respect to viable cells and thus requires plasma membrane permeable electron carrier to be reduced efficiently. However, reduction of CTC in the presence of an electron carrier inflicts damage on plasma membranes. The intracellular vs extracellular sites of reduction of tetrazolium salts were established on the basis of deposition of formazans. Crystals of formazan were detected using fluorescence or backscattered light confocal laser microscopy. We postulate that the capacity of a tetrazolium salt to cross intact plasma membranes constitutes an important experimental variable which needs to be controlled in order to correctly interpret the outcome of tetrazolium assays designed to measure cellular production of oxygen radicals, activity of mitochondrial, cytosolic, or outer membrane reductases, etc.

Biological Transport↗

Tetrazolium salts: a consumer's guide.

The purities of seven tetrazolium salts, obtained from various commercial sources, have been assessed by thin layer chromatography, relative extinction coefficients, and melting points. MTT and INT were largely homogeneous on thin layer chromatography, although significant variations occurred in the melting point behaviour. All the samples of TT examined were contaminated to a small extent with non-tetrazolium u.v.-absorbing material. TNBT and NBT were contaminated with small amounts of mono-tetrazolium salts, although one sample of each was heavily contaminated with another di-tetrazolium compound. Four samples of TNBT contained high melting point contaminants. BT was also contaminated with mono-tetrazolium salts, and some samples also contained di-tetrazolium salt contaminants. NT was the most heavily contaminated of all, most samples containing no less than five separate tetrazolium compounds. Prices varied widely, and in general were not related to purity. Some catalogue entries were very easy to find; others were more difficult. Few specifications were given; of these, most were arbitrary (for example, pure, grade I, and ... probably the finest INT offered anywhere.

Chromatography, Thin Layer↗

Some aspects of the use of tetrazolium salts in quantitative histochemistry.

The reduction of tetrazolium salts to highly coloured insoluble formazans is a reaction which has been widely exploited in histochemistry. This presentation considers three important aspects of the use of these compounds in quantitative studies, namely purity, intermediate reduction products, and calibration and measurement. Thin layer chromatography of tetrazolium salts from different suppliers has shown that standards of purity can vary widely, and that some samples are seriously contaminated. Studies with chromatographically pure compounds have demonstrated that the red diffuse colour seen in some reactions with di-tetrazolium salts is due to a half-reduced reduction intermediate. This "half-formazan" is part of the total activity, and cannot be disregarded in quantitative work. An understanding of the chemical nature of formazan end-products in tissue sections has made it possible to calibrate these reactions for microdensitometry.

Chromatography, Thin Layer↗

Studies on the phenazine methosulphate--tetrazolium salt capture reaction in NAD(P)+-dependent dehydrogenase cytochemistry. III. The role of superoxide in tetrazolium reduction.

A study was made of the involvement of superoxide anions in the aerobic reduction of tetrazolium salts by NAD(P)H and phenazine methosulphate (PMS). On the basis of experiments with superoxide dismutase two mechanisms of tetrazolium reduction could be distinguished--one in which fully reduced PMS (PMSH) is the reducer and one in which superoxide anion is the reducer of tetrazolium salts. It is proposed that superoxide anions is formed after a PMSH-PMS+ dismutation reaction. The relative contributions of the two distinct pathways to tetrazolium salt reduction are controlled by the PMS redox state and the oxygen tension. The consequences of the presence of superoxide anions and scavengers of superoxide anions for quantitative dehydrogenase cytochemistry are discussed.

Histocytochemistry↗

Histochemical localization of NADP-dependent dehydrogenase activity with four different tetrazolium salts.

The properties of the four most commonly used tetrazolium salts, neotetrazolium, nitro blue tetrazolium (nitro-BT), tetranitro-BT, and 2-(2-benzothiazolyl-3-(4-phthalhydrazidyl)-5-styryl-te trazolium (BPST), have been compared for their effects on the localization of nicotinamide adenine dinucleotide phosphate (NADP)-dependent dehydrogenases under optimal incubation conditions in cryostat sections of rat liver. Glucose-6-phosphate dehydrogenase has been selected as an example of these dehydrogenases. It was found that the use of nitro-BT and tetranitro-BT, unlike neotetrazolium and BPST, in combination with an exogeneous electron carrier and azide, resulted in localization patterns in agreement with the sites of activity as determined by microchemical techniques. In the absence of an intermediate carrier the localization was very similar to that of NADPH cytochrome c (P450) reductase as demonstrated immunocytochemically. BPST did not properly localize dehydrogenase activity, most probably because of the redistribution of formazan, due to its lack of firm substantivity. Neotetrazolium reduction in nitrogen gave the localization pattern, both in the presence and absence of carrier, of the reductase, suggesting that the transfer of reducing equivalents from the exogenous electron carrier to neotetrazolium proceeds via cellular electron transport systems. The reduction of nitro-BT and tetranitro-BT via intermediate carriers was oxygen sensitive in parenchymal cells, but not in the non-parenchymal liver cells. This oxygen sensitivity could be blocked by azide. With neotetrazolium, oxygen inhibited both carrier-mediated and carrier-independent reactions, effects that were not reversed with azide. Possible mechanisms of action between oxygen, reduced carriers, and tetrazolium salts are discussed.

Animals↗

EFFECTS OF TETRAZOLIUM SALTS ON OXIDATIVE PHOSPHORYLATION IN RAT-LIVER MITOCHONDRIA.

1. The effects of five different tetrazolium salts on oxidative phosphorylation in rat-liver mitochondria have been investigated. 2. In all cases the mitochondria were uncoupled by very low concentrations of the tetrazolium salts. Further, the transition from a system just exhibiting respiratory control to one in which the mitochondria were totally uncoupled has been shown to occur over very small concentration ranges of the tetrazolium salts. 3. The effectiveness of the five tetrazolium salts as uncoupling agents is discussed in the light of their standard electrode potentials and effectiveness as electron acceptors in dehydrogenase-linked reactions.

Hydroxybutyrates↗

MTS interferon assay: a simplified cellular dehydrogenase assay for interferon activity using a water-soluble tetrazolium salt.

MTS, a tetrazolium dye, is reduced by hydrogenases in living cells to a water-soluble formazan. When it is added to the medium at the end of a cytopathic effects (CPE) inhibition interferon assay, the formazan formed diffuses into the medium; the resultant optical density directly and quantitatively measures how much cellular damage has been produced by the challenge virus in the presence of different amounts of interferon. The use of MTS has considerable advantages in that after it is added, no further steps, such as washing of the cells, extraction of dye, or other manipulations, are needed.

Cell Line↗

Limitations of tetrazolium salts in delineating infarcted brain.

Tetrazolium salts, histochemical indicators of mitochondrial respiratory enzymes, have been used by some pathologists to detect infarcts in myocardium. We explored the utility of this technique in detecting experimental brain infarcts and report our findings. Infarcts were produced in cats, gerbils, and rats by unilateral temporal and permanent cerebral vessel occlusion. After various time periods the animals were killed, and their brains were reacted with 2,3,5, triphenyl, 2H-tetrazolium chloride (TTC). The experimental and contralateral hemispheres were examined by light and electron microscopy. The TTC-stained tissue was correlated with histology. In some situations the histological condition of the tissue correlated well with the TTC staining results. Brain regions supplied by temporarily occluded vessels and judged infarcted by light and electron microscopy did not stain. In these regions less than 6% of the mitochondria were intact. In brain tissue from animals with permanent vessel occlusion (no reflow) mitochondria were intact despite the fact that other cellular organelles, such as nuclei, were destroyed. TTC stained such mitochondria and as a result could not distinguish infarcted brain in complete ischemia situations (no reflow). Another draw back to this staining procedure was 36 h after infarction macrophages with intact mitochondria would replace damage neurons and be stained. Under ideal conditions though this technique can detect irreversibly damaged brain as early as 2.5 h after artery occlusion.

Animals↗