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Effects of alloxan and ninhydrin on mitochondrial Ca2+ transport.

Alloxan at millimolar concentrations slightly inhibited the velocity of Ca2+ uptake by isolated rat liver mitochondria irrespective of the free Ca2+ concentration between 1 and 10 microM and was an effective concentration-dependent stimulator of mitochondrial Ca2+ efflux. Ninhydrin also slightly inhibited the velocity of mitochondrial Ca2+ uptake but only at free Ca2+ concentrations above 5 microM. However, ninhydrin was a strong stimulator of mitochondrial Ca2+ efflux even at micromolar concentrations, 10-50 times more potent than alloxan. The mitochondrial membrane potential was reduced 10-20% at most by alloxan and ninhydrin. Alloxan and ninhydrin also stimulated Ca2+ efflux from isolated permeabilized liver cells. When isolated intact liver cells had been pre-incubated with alloxan or ninhydrin before permeabilization of the cells the ability of spermine to induce mitochondrial Ca2+ uptake was abolished. Glucose provided the typical protection against the effects of alloxan on mitochondrial Ca2+ transport only in experiments with intact cells but not in experiments with permeabilized cells or isolated mitochondria. Therefore glucose protection is apparently due to inhibition of alloxan uptake into the cell. Glucose provided no protection against effects of ninhydrin under any of the experimental conditions. Thus both alloxan and ninhydrin are potent stimulators of Ca2+ efflux by isolated mitochondria but very weak inhibitors of the velocity of mitochondrial Ca2+ uptake. The direct effects of ninhydrin on mitochondrial Ca2+ efflux may contribute to the cytotoxic action of this agent whereas the direct effects of alloxan on mitochondrial Ca2+ transport require concentrations which are too high to be of relevance for the induction of the typical pancreatic B-cell toxic effects of alloxan. However, the effects on mitochondrial Ca2+ transport during incubation of intact cells which may result from the generation of cytotoxic intermediates during alloxan xenobiotic metabolism may well contribute to the pancreatic B-cell toxic effect of alloxan.

Alloxan

Tumour-promoting activity of ninhydrin on mouse skin.

Ninhydrin (2,2-dihydroxy-1,3-indanedione; CAS No. 485-47-2) is widely used as a reagent for the detection of free amino and carboxyl groups in proteins and peptides. It is an irritant to mammalian skin. Various toxic effects of ninhydrin have been reported in laboratory animals; however, so far there has been no evaluation of its carcinogenic and co-carcinogenic potential in laboratory animals by long-term in vivo bioassay. Ninhydrin was found to induce the activity of gamma-glutamyl transpeptidase (GGT) in mouse skin but it failed to alter the activity of the enzyme ornithine decarboxylase when compared with animals treated with standard tumour promoter 12-O-tetradecanoyl phorbol-13-acetate (TPA). In the present investigations, the tumour-promoting activity of ninhydrin (including both stage I and stage II of tumour promotion) was tested on Swiss albino mice in a multistage mouse skin model of carcinogenesis. The animals were initiated with a single topical application of 7,12-dimethylbenz-anthracene followed by four topical applications of ninhydrin biweekly as stage I promoter for 2 wk. Stage II promotion was twice weekly through topical application of mezerein. The results revealed that ninhydrin is a strong stage I tumour promoter and its efficacy was comparable with that of TPA at the dose level used in the experiment. However, ninhydrin failed to produce tumours when tested as a stage II or complete tumour promoter on mouse skin.

9,10-Dimethyl-1,2-benzanthracene

Occupational IgE-mediated rhinitis caused by ninhydrin.

Ninhydrin is a laboratory chemical used as a reagent in the detection of free amino and carboxyl groups in proteins and peptides. We present the case of a laboratory technician who developed symptoms of rhinitis when handling papers immersed in a solution containing ninhydrin. Prick tests for ninhydrin and ninhydrin RAST were positive. The inhalation provocation test in an exposure chamber gave an immediate nasal response. A positive prick test to ninhydrin, an elevated level of specific IgE antibodies to ninhydrin, and the RAST inhibition test confirmed an IgE-mediated type I allergic reaction. We are not aware of any other report of ninhydrin as a cause of IgE-mediated allergy.

Adult

Assay of ornithine aminotransferase with ninhydrin.

We developed an assay system for ornithine aminotransferase (EC 2.6.1.13) using ninhydrin. Pyrroline 5-carboxylate, a product of enzymatic transamination, reacts with ninhydrin under hot acidic conditions to form a reddish pigment soluble in ethanol. The millimolar extinction coefficient of reaction product dissolved in ethanol was 16.5 at 510 nm. Acidification with perchloric acid effectively abolished the interfering color development by L-ornithine and L-glutamate. The paired activity measurement in mouse tissues by ninhydrin and o-aminobenzaldehyde methods showed a good correlation (gamma = 0.985). In our ninhydrin method, stable ninhydrin replaced unstable o-aminobenzaldehyde, and sensitivity was much higher than that with the conventional o-aminobenzaldehyde method.

Animals

Combined protein and DNA measurements by the ninhydrin-Schiff and Feulgen techniques.

Feulgen nuclear staining with pararosanilin-SO2 was combined with the ninhydrin-Schiff technique. The aldehyde groups converted from primary amino groups are stained with an acriflavine-Schiff reaction. This results in a red nuclear fluorescence and a bright yellow cytoplasmic and nuclear fluorescence. The combined fluorescence staining facilitates cytofluorometric determination of total protein and DNA in the same cell. The ninhydrin-Schiff reaction is affected by the fixation procedure and the duration of the ninhydrin reaction. Investigations with a model system showed that proportionality between the fluorescence intensity of acriflavine and the amount of protein stained by the procedure was obtained after fixation with a fixation mixture suggested by Böhm et al. (1968) and a reaction with ninhydrin at 37 degrees C for 10 h. The ninhydrin-Schiff reaction has no effect on the fluorescence intensity of cells previously treated with pararosanilin-Feulgen staining and it is not affected itself by this previous procedure. Testing this double fluorescence staining on cytology specimens taken from patients with gastric carcinoma and uterine cervial carcinoma, cancer cells were shown to have markedly increased protein and DNA contents compared with those of normal cells.

Adult

Ninhydrin inhibition of glucose-induced insulin release.

Ninhydrin, a compound which shares chemical properties strikingly similar to alloxan was found to mimic basically the inhibitory effect of alloxan on glucose-induced insulin release. Exposure of pancreatic islets for five minutes to 85 mumol/l ninhydrin produced approximately ninety percent inhibition of subsequent glucose-induced insulin release without altering basal secretion. Both D-glucose and D-mannose provided substantial protection against the inhibitory effect of ninhydrin, and the alpha anomer of D-glucose was more effective than the beta anomer in preventing ninhydrin inhibition of insulin release. Evidence for a common site of inhibition by ninhydrin and alloxan in the insulin release process is discussed.

Animals

Specific modification of arginine residues in proteins with ninhydrin.

Ninhydrin (1)2,3-indantrione monohydrate) was shown to react with the guanidino group of Nalpha-benzyloxycarbonylarginine under mild conditions (pH 8.0, 25 degrees). When ribonuclease A [EC 3.1.4.22] was reacted with ninhydrin under similar conditions, rapid inactivation took place with concomitant modification of arginine and lysine residues. Specific modification of arginine residues in the enzyme could be achieved by reversible blocking of amino groups with citraconic anhydride. Ribonuclease T1 [EC 3.1.4.8] was also inactivated rapidly by ninhydrin under similar conditions. In this case, the single arginine residue (Arg-77) and the amino groups of the N-terminal alanine and lysine-41 appeared to be specifically modified. Other amino acid residues did not appear to be significantly modified by ninhydrin in either of these enzymes. Ninhydrin thus can be used for the specific modification of arginine residues in proteins under mild conditions by reversibly blocking amino and, possibly, thiol groups.

Arginine

Rhinitis caused by ninhydrin develops into occupational asthma.

Ninhydrin (2,2-dihydroxy-1,3-indanedione or 1,2,3-triketo-hydrindene hydrate) is a chemical used in the detection of free amino and carboxyl groups in proteins and peptides. Allergic, immunoglobulin E (IgE)-mediated rhinitis caused by ninhydrin was diagnosed earlier in a 41 yr old woman working as a laboratory technician in a forensic laboratory. Despite handling ninhydrin only in a flow cabinet, symptoms of dyspnoea developed 6 months later. Peak flow was found to vary by 20% during working days. In the specific inhalation challenge it was shown that occupational asthma had also developed due to continuing slight exposure to ninhydrin. The titre of ninhydrin-specific IgE also increased from 0.6 to 1.1 kU x L(-1) in the follow-up. This case stresses the importance of cessation of allergen exposure in occupational allergic rhinitis, in order to prevent asthma.

Adult

Thiol-group reactivity, hydrophilicity and stability of alloxan, its reduction products and its N-methyl derivatives and a comparison with ninhydrin.

The diabetogenic agent, alloxan, is a hydrophilic and chemically unstable compound. The logarithm of the octanol/water partition coefficient of alloxan was found to be -1.86; its half-life at pH 7.4 and 37 degrees in phosphate buffer was 1.5 min. The partition coefficients and half-lives of the alloxan reduction products, alloxantin and dialuric acid, were very similar to those of the parent compound; N-methylalloxan and N,N'-dimethylalloxan were less hydrophilic but more unstable. Ninhydrin was found also to be hydrophilic although this compound, in contrast to alloxan and its derivatives, was quite stable in aqueous solution. Alloxan and its N-methyl derivatives were reduced by thiols and in the presence of glutathione and cysteine, rapid redox cycling occurred, with formation of 'active oxygen' species; no such reaction was observed, however, with ninhydrin. Comparatively slow redox cycling was recorded with alloxan derivatives and dithiothreitol although rapid cycling occurred with ninhydrin and this dithiol. Such differences may explain why ninhydrin does not share with alloxan a selective toxic effect upon the pancreatic B-cell.

Alloxan

Comparative toxicity of alloxan, N-alkylalloxans and ninhydrin to isolated pancreatic islets in vitro.

The in vitro toxicity of the diabetogenic agent alloxan as documented by the induction of beta cell necrosis was studied in isolated ob/ob mouse pancreatic islets. The effect of alloxan has been compared with that of a number of N-alkyl alloxan derivatives and with that of the structurally related compound, ninhydrin. Alloxan and its derivatives were selectively toxic to pancreatic beta cells, with other endocrine cells and exocrine parenchymal cells being well preserved, even at high concentration. In contrast, ninhydrin was selectively toxic to pancreatic beta cells only at comparatively low concentration, destroying all islet cell types at high concentrations. The ultrastructural changes induced by all the test compounds in pancreatic beta cells in vitro were very similar to those observed during the development of alloxan diabetes in vivo. The relative toxicity of the various compounds to pancreatic beta cells in vitro was not, however, related to their ability to cause diabetes in vivo. Indeed, the non-diabetogenic substances ninhydrin, N-butylalloxan and N-isobutylalloxan were very much more toxic to isolated islets than the diabetogenic compounds alloxan and N-methylalloxan. These results suggest that the differences in diabetogenicity among alloxan derivatives are not due to intrinsic differences in the susceptibility of the pancreatic beta cells to their toxicity, but may reflect differences in distribution or metabolism. High concentrations of glucose protected islets against the harmful effects of alloxan and its derivatives, but not those of ninhydrin. Low levels of glucose, and non-carbohydrate nutrients, afforded little protection, indicating that the effect of glucose is not due to the production of reducing equivalents within the cell, 3-O-Methylglucose, which protects against alloan diabetes in vivo, did not protect against alloxan toxicity in vitro. Since 3-O-methylglucose is known to prevent uptake of alloxan by pancreatic beta cells, it appears that uptake of alloxan by the cell is not a prerequisite for the induction of beta cell necrosis.

Alloxan

[GABA fluophore formation due to ninhydrin reaction in the octanolic milieu. Spectrofluorometric investigation. 2nd information (author's transl)].

As a result of the reaction of ninhydrin with gamma-aminobutyric acid and glutamic acid in the octanolic milieu, a fluorescent product, presumably a copper-II-chelate-complex, was formed. Partial reaction steps were investigated spectrofluorometrically. The excitation and emmission spectra resulting from the reaction between ninhydrin and glutamic acid, ninhydrin and gamma-aminobutyric acid, and ninhydrin, glutamic acid and gamma-aminobutyric acid were measured. Possible consequences are discussed with respect to fluorescence histochemical procedures.

Copper

Modification of hemoglobin by ninhydrin.

The Strecker degradation reaction was evaluated as a means of modifying hemoglobin in vitro, utilizing ninhydrin as a model compound. Ninhydrin led to modification of hemoglobin (when incubated with hemoglobin or red cells) at physiologic temperature and pH. Isoelectric focusing documented the formation of new hemoglobin bands, all with decreased (more negative) isoelectric points that hemoglobin A. Both alpha and beta chains were modified to an equal degree, although electrophoretic studies documented two modified species of alpha-chains and three modified species of beta-chains. Amino acid analysis of modified hemolysate following NaB3H4 reduction revealed peaks that coeluted with deaminated valine, epsilon-deaminated lysine, and a product with the guanidino group of arginine. The oxygen affinity of hemoglobin increased following its incubation with increasing concentrations of ninhydrin. These studies suggest that ninhydrin is representative of a class of carbonyl compounds that could be utilized to specifically modify that structure and function of hemoglobin variants.

Chemical Phenomena

Ultrastructural cytochemistry of hepatic lysosomes and their protein components is selectively revealed by the ninhydrin-dimethyl sulfoxide-thiocarbohydrazide-silver proteinate reaction.

Proteins in lysosomal membranes, lysosomes and within the transtubular network are readily accessible for electron microscopic analysis by a new three-step method. Oxidative deamination of tissue-bound amino acids by ninhydrin in aqueous dimethyl sulfoxide and the concomitant formation of corresponding carbonyl groups comprise the first step. The addition reaction of thiocarbohydrazide to tissue-bound carbonyl groups comprises the second step, while the reduction of silver proteinate by tissue-bound thiocarbohydrazones is the final step of this sequential method. Glutaraldehyde-fixed and osmified ultrathin sections of rat liver embedded in LR White were oxidatively deaminated for 24 h by 1% w/v ninhydrin in aqueous 75% v/v dimethyl sulfoxide (DMSO). They were then incubated for 40 min in aqueous 1% w/v thiocarbohydrazide (TCH) and stained for 30 min at 50 degrees C with silver proteinate (SP). The ninhydrin-dimethyl sulfoxide-thiocarbohydrazide-silver proteinate (N-DMSO-TCH-SP) reaction proved to be chemically specific and highly selective for ultrastructural resolution of the internal structure of lysosomes and their protein components. We conclude that the N-DMSO-TCH-SP reaction is the method of choice for cytochemical elucidation of the protein ultrastructure of lysosomes and their enzymatic aggregates.

Animals

Direct determination of bound sialic acids in sialoglycoproteins by acidic ninhydrin reaction.

A simple and rapid method for sialic acid determination in sialoglycoproteins by acidic ninhydrin reaction is described. The method is based on the reaction of sialic acids with an acidic ninhydrin reagent (K. Yao and T. Ubuka (1987) Acta Med. Okayama 41, 237-241). By heating a sample solution containing sialoglycoprotein with the reagent at 100 degrees C for 10 min, a stable color with an absorption maximum at 470 nm was produced. The standard curve was linear in the range of 20 micrograms to 3 mg of fetuin, a sialoglycoprotein, per 3.0 ml of the reaction mixture. The reaction is specific only for sialoglycoproteins among various proteins examined. The acidic ninhydrin method was applied to the determination of sialic acids in sialoglycoproteins in ascites fluids of Ehrlich ascites tumor-bearing mice.

Animals

Monitoring tripeptidase activity using capillary electrophoresis. Comparison with the ninhydrin assay.

Capillary electrophoresis (CE) was used to assay the activity of a tripeptidase from a crude extract of Lactococcus lactis subsp. lactis NCDO 712 against the substrate, Gly-Gly-Phe and a comparison with a standard ninhydrin assay was made. Standard curves of the substrates and products showed a significantly variable colorimetric reaction to ninhydrin making accurate quantification of the tripeptidase problematic. The CE assay further demonstrated that the presence of contaminating enzymes in crude cell-free extracts can cause secondary reactions that are not apparent from the ninhydrin assay data. The CE assay was also able to generate enzyme kinetics data and monitor, during purification, the presence of co-eluting contaminating activities. The speed and sensitivity with CE allows routine analysis of the tripeptidase activity without any derivatization normally required for this enzyme.

Amino Acid Sequence

Assay of sialidase activity using ion-exchange chromatography and acidic ninhydrin reaction.

A new assay method for sialidase (EC 3.2.1.18) activity using ion-exchange chromatography and acidic ninhydrin reaction has been developed. Fetuin, 4-methylumbelliferyl-N-acetylneuraminic acid (MUB-NANA), gangliosides and N-acetylneuramin-lactose were examined as substrates. Free sialic acid liberated from these substrates by sialidase reaction was isolated with a Dowex 1-X8 column (trifluoroacetate form, 1.5 cm x 0.5 cm I.D.) and determined by acidic ninhydrin reaction. Among the substrates tested, MUB-NANA was the best in the present method, N-Acetylneuramin-lactose could not be used as the substrate, because it was not separated from liberated sialic acid under the conditions used. The recovery of N-acetylneuraminic acid was above 88%, and the sensitivity of the method was 20 nmol in 300 microliters of the reaction mixture. The method was applied to the sialidase assay during its purification from rat skeletal muscle, and a Michaelis constant of 1.15 mM was obtained with MUB-NANA as the substrate. The method using the acidic ninhydrin reaction was simple and exhibited good reproducibility.

Animals

Rapid shape change and release of ninhydrin-positive substances by Leishmania major promastigotes in response to hypo-osmotic stress.

Leishmania major promastigotes were grown to late-log phase and washed and resuspended in an isosmotic buffer. When osmolality was suddenly decreased by 50%, the cells rapidly became shorter and increased in width. Cell volume, calculated assuming a prolate-ellipsoidal shape, increased 1.4 times after 1 min. Over the next several minutes, the average length and width returned to control values while the volume returned to baseline, indicating the ability to regulate volume. Concomitantly with the swelling, large amounts of alanine and other ninhydrin-positive substances were released. All of the alanine pool was released within 1 min after reduction of the osmolality by 66%. Cells pre-loaded with [14C]-aminoisobutyric acid also released it very rapidly upon hypo-osmotic stress. Release of ninhydrin-positive substances resulted from decreased osmolality rather than changes in ionic composition. The same results were obtained if osmolality was decreased by reducing only the NaCl content of the buffer instead of diluting it with water, and mannitol could substitute for the NaCl. Promastigotes were able to grow well over several days in media as low as 154 mOsm/kg. The nature of the signalling mechanisms(s) that initiates the rapid shape change and efflux of ninhydrin-positive substances in response to hypo-osmotic stress is at present unknown.

Alanine