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Kinetic study of the reaction between trinitrobenzenesulfonic acid and amino acids with a trinitrobenzenesulfonate ion-selective electrode.

Potentiometric studies of the reaction between trinitrobenzenesulfonic acid (TNBS) and several amino acids with the TNBS electrode indicate that the reaction is first-order with respect to TNBS and amino acid concentration. The reaction is zero-order with respect to hydroxide concentration at pH greater than 10.5, indicating that the nonprotonated amino group is the reactive species. Rate constants were calculated for each amino acid and a simple mechanism of the reaction is proposed.

Alanine↗

Induction of chronic cholangitis in the rat by trinitrobenzenesulfonic acid.

We investigated the effects of the hapten trinitrobenzenesulfonic acid instilled into the rat biliary tree. The study included three groups of animals that received a single intracholedochal injection of either saline, 10% ethanol or 10 mg trinitrobenzenesulfonic acid dissolved in 10% ethanol. A fourth group of rats was subjected to common bile duct ligation and was used as control for biliary obstruction. Liver and biliary tract dysfunction was assessed 1, 10, 20 and 30 days after treatment by serum aspartate aminotransferase, alkaline phosphatase and bilirubin, and by histopathological examination of liver slices. By day 10, saline- or ethanol-treated rats did not show changes in the biochemical parameters, and light microscopy revealed no alterations. In contrast, rats treated with trinitrobenzenesulfonic acid showed significant increases in all serum markers throughout the study period. Inflammatory cell infiltrates were seen in portal areas and around bile ducts, indicating pericholangitis. Some rats presented with dilatation of extrahepatic biliary ducts; ductal proliferation and thin porto-portal fibrotic septa were observed in these cases. Bile duct ligation also induced ductal proliferation and fibrosis in all cases, but pericholangitis was not prominent. Retrograde cholangiograms in trinitrobenzenesulfonic acid rats showed distortion of the intra- and extrahepatic biliary tree. In conclusion, chronic cholangitis may be consistently induced in rats by a single intracholedochal administration of trinitrobenzenesulfonic acid.

Alkaline Phosphatase↗

The quantification of protein amino groups by the trinitrobenzenesulfonic acid method: a reexamination.

Trinitrobenzenesulfonic acid (TNBSA) is the reagent in a well-known method for quantification of primary amino groups, but even at room temperature, N-trinitrophenylation of primary amines is concomitant with hydrolysis of the reagent. The production of picric acid, the product of TNBSA hydrolysis, lowers the sensitivity of the method. Heating accelerates hydrolysis more than condensation on amino groups. The optimal pH range is centered on the value 10. The optical density is generally evaluated at 340 or 420 nm. The former value corresponds to the maximal absorption of the final product, N-trinitrophenylamines. The latter value is relative to the Mesenheimer pi-complex, the well-known intermediate of the overall reaction. Both wavelengths are suitable for quantification of amines, but 420 nm seems to be the best. Further addition of sulfite is not necessary. The quantification of amines is somewhat hampered by compounds such as area and sodium dodecyl anions. The relative rates of reaction of diaminoacyl groups of protein with TNBSA differ depending on the substitution degree of the neighboring groups. Some of them do not react. The trinitrophenylation kinetic seems to be more dependent on protein structure than reactivity. In evaluation of the available lysine in glycated proteins, the distinction between reductive alkylation and Maillard-type condensation necessitates quantitative evaluation of nonalkylated lysine in protein hydrolysate, compared to results with the TNBSA method. Our results are confirmed by complete guanidization of the protein and subsequent determination of homoarginine in hydrolysates.

Amines↗

The determination of epsilon-amino groups in soluble and poorly soluble proteinaceous materials by a spectrophotometric method using trinitrobenzenesulfonic acid.

A procedure using 2,4,6-trinitrobenzenesulfonic acid (TNBS) for the determination of epsilon-amino groups in soluble and poorly soluble proteinaceous materials is presented. The major modification from previous procedures is an extended TNBS reaction time to allow a stoichiometric reaction with amino groups. In addition, autoclave hydrolysis is used to assure sample dissolution for spectrophotometric measurements. The assay accuracy was evaluated by determining epsilon-amino groups of insulin and bovine albumin. The determinations differed from literature values by < or = 3.3%. The epsilon-amino group content of Type B gelatin was found to be 33.0 mol/gelatin molecule of 1000 residues and is in agreement with similar source gelatins and collagen. The coefficient of variation for determinations on all three materials was < or = 5.3%. The assay should be applicable to a broad range of proteinaceous materials.

Albumins↗

A study on the topological distribution of phospholipids in microsomal membranes of chick brain using phospholipase C and trinitrobenzenesulfonic acid.

The transbilayer distribution of phospholipids in chicken brain microsomal membranes has been investigated using trinitrobenzenesulfonic acid and phospholipase C from Clostridium welchii. The exposure of intact microsomes to trinitrobenzenesulfonic acid showed that the labelling of aminophospholipids followed biphasic kinetics, indicating that these membranes contain a fast- and a slow-reacting pool of aminophospholipids. Use of microsomes radioiodinated on their surface led to the conclusion that the fast-reacting pool may be located on the outer leaflet of the microsomal vesicles. It contains about 35% of the phosphatidylethanolamine, 29% of the ethanolamine plasmalogens and 18% of the phosphatidylserine. The treatment of intact microsomes with the phospholipase C Cl. welchii produced the hydrolysis of 50% of the phospholipids without any loss of their permeability properties, indicating that they are not permeable to the hydrolase. Phospholipids extracted from the microsomes were hydrolyzed rapidly by the phospholipase C with the exception of phosphatidylserine and phosphatidylinositol. In intact microsomes about 90% of phosphatidylcholine, 32% of ethanolamine phospholipids and 60% of sphingomyelin were accessible to the phospholipase. These results suggest that the phospholipids have an asymmetric distribution in chicken brain microsomes, the external leaflet containing about 75% of the choline phospholipids and 25% of the aminophospholipids, whereas an opposite distribution is observed in the inner leaflet.

Animals↗

Trinitrobenzenesulfonic acid and fluorodinitrobenzene: probes to study local anesthetic effects in cell membranes.

The interaction of local anesthetics with intact erythrocytes was studied by monitoring the extent of reaction of phospholipids with trinitrobenzenesulfonic acid and fluorodinitrobenzene. Incubating erythrocytes with local anesthetics increases the amount of phosphatidylethanolamine and phosphatidylserine available for reaction with trinitrobenzenesulfonic acid and fluorodinitrobenzene. The order of potency of the local anesthetics corresponded to that reported for blocking nerve conduction: dibucaine greater than tetracaine greater than butacaine greater than lidocaine greater than procaine. Treatment of intact erythrocytes with 1 mM tetracaine at 37 degrees C allows 4-5% more of the phosphatidylethanolamine to react with trinitrobenzenesulfonic acid as compared to control cells. Treatment with tetracaine has no effect at 0 degrees C, a temperature at which there is only limited partitioning of the anesthetic into the bilayer. Kinetic analysis of the reaction with trinitrobenzene sulfonic acid showed that the increased number of reactive phosphatidylethanolamine molecules are located mainly on the outer half of the erythrocyte membrane. Tetracaine also increases the number of phosphatidylserine and phosphatidylethanolamine molecules in the erythrocyte membrane which are available to react with the penetrating probe fluorodinitrobenzene. The reaction with PE is increased from 67 to 77% and the reaction of PS is increased from 44 to 57%. Thus tetracaine affects both halves of the lipid bilayer.

4-Aminobenzoic Acid↗

Spectrophotometric determination of hydrazine, hydrazides, and their mixtures with trinitrobenzenesulfonic acid.

A method has been developed to measure hydrazine, hydrazides, and their mixtures using a modification of the trinitrobenzenesulfonic acid method [T. Okuyama and K. Satake (1960) J. Biochem. (Tokyo) 47, 654-660]. After incubation of the sample containing hydrazine and hydrazide with trinitrobenzenesulfonate at pH 8.5 at room temperature for 40 min, the reaction mixture was diluted with a Na2CO3-NaHCO3 buffer (0.1 M, pH 10.8) rather than with 0.5 M HCl. Different chromogens were produced from the reaction of hydrazine (lambda max = 570 nm) and hydrazides (lambda max = 385 and 500 nm) with trinitrobenzenesulfonic acid. The method allowed simultaneous determination of hydrazine (5 to 60 nmol) with hydrazide (10 to 120 nmol) in a mixture with a standard deviation of less than 5%. The presence of amino compounds (except for amino sugars) did not interfere with the measurement of hydrazine or hydrazides. Interference by amino sugars in the determination of hydrazine or hydrazides was eliminated by pretreatment of the sample with NaBH4 to reduce the amino sugars to 2-amino-2-deoxy-hexitols.

Amino Sugars↗

Induction of hapten-specific immunological tolerance and immunity in B lymphocytes. VII. Correlation between trinitrobenzenesulfonic acid administration, serum trinitrophenyl content, and level of tolerance.

The induction of immunological tolerance with trinitrobenzenesulfonic acid (TNBS) was studied by a comparison of the concentration of trinitrophenyl (TNP) in the serum of tolerant mice (TolS) and the degree of unresponsiveness induced as the dose and time of tolerogen injection were varied. The concentration of TNP in TolS was greater with a larger dose of TNBS, as expected, and decreased with time after tolerogen injection in a biphasic manner. The rapid initial decline followed on Day 10 by a more gradual decrease in TNP concentration suggests that there were two classes of TNP conjugates produced by TNBS injection. The serum TNP concentration appeared to correlate to the in vivo response of TNBS-treated mice to thymic-dependent and thymic-independent antigenic challenge while little correlation was evident with the in vitro response.

Animals↗

[Modification of tobacco mosaic virus envelope protein using trinitrobenzenesulfonic acid].

The process of modification of tobacco mosaic virus (TMV) coat protein with a lysine-specific reagent trinitrobenzenesulfonic acid (TNBS) was studied. TMV coat protein molecule is known to contain just two Lys residues (K53 and K68) localized in the same region of TMV coat protein subunit tertiary structure at a distance of about 70Ao from the virion axis. TNBS was used to modify the coat protein of wild type (U1) TMV and that of a coat protein ts-mutant ts21-66, bearing two amino-acid substitutions (I21 T and D66 G), both localized in the 70Ao region. In the mutant coat protein, TNBS modification rate for one of the two Lys residues was found to increase drastically (7 to 8 times) between 30 and 32o at pH 8.0. In U1 coat protein a similar increase was observed for one of Lys residues at 36o and pH 8.6. The results may indicate that the 70Ao region represents the labile section of TMV coat protein molecule, and gradual destruction of this site results first in loss of protein capacity to form well arranged two-cylindrical aggregates and then (after slight heating) in loss of capacity to form ordered helical aggregates.

Capsid Proteins↗

Identification of lysine 74 in the pyruvate binding site of alanine dehydrogenase from Bacillus subtilis. Chemical modification with 2,4,6-trinitrobenzenesulfonic acid, n-succinimidyl 3-(2-pyridyldithio)propionate, and 5'-(p-(fluorosulfonyl)benzoyl)adenosine.

L-Alanine dehydrogenase from Bacillus subtilis was inactivated with two different lysine-directed chemical reagents, i.e. 2,4, 6-trinitrobenzenesulfonic acid and N-succinimidyl 3-(2-pyridyldithio)propionate. In both cases, the inactivation followed pseudo first-order kinetics, with a 1:1 stoichiometric ratio between the reagent and the enzyme subunits. Partial protection of the active site from inactivation could be obtained by each of the substrates, NADH or pyruvate, but complete protection could only be achieved in the presence of the ternary complex E.NADH. pyruvate. The nucleotide analogue of NADH, 5'-(p-(fluorosulfonyl)benzoyl)adenosine was also used for affinity labeling of the enzyme active site. Differential peptide mapping, performed both in the presence and in the absence of the substrates, followed by reversed phase high performance liquid chromatography separation, diode-array analysis, mass spectrometry, and N-terminal sequencing of the resulting peptides, allowed the identification of lysine 74 in the active site of the enzyme. This residue, which is conserved among all L-alanine dehydrogenases, is most likely the residue previously postulated to be necessary for the binding of pyruvate in the active site. Surprisingly, this residue and the surrounding conserved residues are not found in amino acid dehydrogenases like glutamate, leucine, phenylalanine, or valine dehydrogenases, suggesting that A-stereospecific amino acid dehydrogenases such as L-alanine dehydrogenase could have evolved apart from the B-stereospecific amino acid dehydrogenases.

Adenosine↗

A comparative study of the preventative effects exerted by two probiotics, Lactobacillus reuteri and Lactobacillus fermentum, in the trinitrobenzenesulfonic acid model of rat colitis.

The intestinal anti-inflammatory effects of two probiotics isolated from breast milk, Lactobacillus reuteri and L. fermentum, were evaluated and compared in the trinitrobenzenesulfonic acid (TNBS) model of rat colitis. Colitis was induced in rats by intracolonic administration of 10 mg TNBS dissolved in 50% ethanol (0.25 ml). Either L. reuteri or L. fermentum was daily administered orally (5 x 10(8) colony-forming units suspended in 0.5 ml skimmed milk) to each group of rats (n 10) for 3 weeks, starting 2 weeks before colitis induction. Colonic damage was evaluated histologically and biochemically, and the colonic luminal contents were used for bacterial studies and for SCFA production. Both probiotics showed intestinal anti-inflammatory effects in this model of experimental colitis, as evidenced histologically and by a significant reduction of colonic myeloperoxidase activity (P<0.05). L. fermentum significantly counteracted the colonic glutathione depletion induced by the inflammatory process. In addition, both probiotics lowered colonic TNFalpha levels (P<0.01) and inducible NO synthase expression when compared with non-treated rats; however, the decrease in colonic cyclo-oxygenase-2 expression was only achieved with L.fermentum administration. Finally, the two probiotics induced the growth of Lactobacilli species in comparison with control colitic rats, but the production of SCFA in colonic contents was only increased when L. fermentum was given. In conclusion, L. fermentum can exert beneficial immunomodulatory properties in inflammatory bowel disease, being more effective than L. reuteri, a probiotic with reputed efficacy in promoting beneficial effects on human health.

Animals↗

Colorimetric determination of 1-(4'-nitrophenyl)-2-aminopropane-1,3-diol with 2,4,6-trinitrobenzenesulfonic acid in the presence of chloramphenicol.

A colorimetric method based on the interaction between the chloramphenicol degradation product 1-(4'-nitrophenyl)-2-aminopropane-1,3-diol and the 2,4,6-trinitrobenzenesulfonic acid reagent was developed. Analytical solutions were reacted with the reagent at pH 9.1 for 20 min at room temperature, and the resulting color was measured at 340 nm. A linear relationship between absorbance and concentration occurred within the 5--25-micrograms/ml range under the conditions studied. Replicate analyses were in good agreement. An average recovery of 99.4 +/- 0.4% was obtained for the synthetic mixtures.

Chemical Phenomena↗

Molecular association of trinitrobenzenesulfonic acid and surface phospholipids in the development of colitis in rats.

BACKGROUND & AIMS: Mucosal hydrophobicity contributes to the barrier property of the stomach. This study examined the effect of 2,4,6-trinitrobenzenesulfonic acid (TNBS) on colonic mucosal hydrophobicity and its relationship with developing inflammation. METHODS: After the initial study, which suggested that TNBS can chemically react with zwitterionic phospholipids, contact-angle analysis of the colonic mucosa was performed after the luminal exposure of everted sacs of rat colon to TNBS. In vivo, rats were given TNBS, TNBS in ethanol, or TNBS coupled with dipalmitoylphosphatidylcholine by enema. On the 11th day, mucosal hydrophobicity damage score, colon weight, and myeloperoxidase activity were measured. RESULTS: TNBS acutely (5 minutes) reduced the contact angle of the rat colonic mucosa in vitro as well as in vivo when administered in 50% ethanol. Surface mucosal hydrophobicity was significantly reduced 11 days after intracolonic inoculation with TNBS in ethanol and appeared to be associated with colonic inflammation. The ability of TNBS to decrease mucosal hydrophobicity and induce colitis was attenuated if the hapten was coupled with dipalmitoylphosphatidylcholine. CONCLUSIONS: TNBS may reduce mucosal hydrophobicity by reacting with the surface-active phospholipids of the colonic mucosa. Reduced hydrophobic integrity of the colonic mucosa may contribute to TNBS-induced colonic inflammation.

1,2-Dipalmitoylphosphatidylcholine↗

Calorie restriction modifies the delayed-type hypersensitivity response to the hapten trinitrobenzenesulfonic acid and to hapten-modified syngeneic spleen cells.

We have studied the influence of different degrees of calorie restriction on the induction and the regulation of the delayed type hypersensitivity (DTH) response to trinitrobenzenesulfonic acid (TNBS) and TNBS-modified spleen cells (TNBS-SC), injected by the sc or the iv route. Immediately after weaning, BALB/c mice were placed on restricted diets for either 2 or 4 weeks and then the DTH response was induced. The results showed that a 37.5% restriction in the food supply significantly depressed the level of the DTH response induced by the sc injection of TNBS-SC. In contrast, a 25% restriction in the food supply was insufficient to depress the response. Calorie restriction did not modify the inhibitory influence of an iv injection of TNBS-SC on the DTH response. However, iv presensitization with free hapten or the simultaneous injection of TNBS-SC by the iv and the sc routes did not significantly depress the DTH response in calorie-restricted mice, indicating a defect in the inhibitory regulation of the DTH response in these dietary groups.

Animals↗