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Structures of aromatic inhibitors of influenza virus neuraminidase.

Neuraminidase (NA), a surface glycoprotein of influenza virus, is a potential target for design of antiinfluenza agents. The crystal structure of influenza virus neuraminidase showed that in the active site 11 residues are universally conserved among all strains known so far. Several potent inhibitors based on the carbohydrate compound 2-deoxy-2,3-didehydro-D-N-acetylneuraminic acid (DANA) have been shown to bind to the conserved active site and to reduce virus infection in animals when administered by nasal spray. Inhibitors of this type are, however, rapidly excreted from physiological systems and may not be effective in order to provide long-time protection. A new class of specific NA inhibitors, which are benzoic acid derivatives, has been designed on the basis of the three-dimensional structure of the NA-DANA complex and modeling of derivatives of 4-(acetylamino)benzoic acid in the NA active site. Intermediates were synthesized and were shown to moderately inhibit the NA activity and to bind to the NA active site as predicted. These rudimentary inhibitors, 4-(acetylamino)-3-hydroxy-5-nitrobenzoic acid, 4-(acetylamino)-3-hydroxy-5-aminobenzoic acid, and 4-(acetylamino)-3-aminobenzoic acid, and their X-ray structures in complexes with N2 (A/Tokyo/3/67) and B/Lee/40 neuraminidases have been analyzed. The coordinates of such inhibitors complexed with NA were used as the starting model for further design of more potent benzoic acid inhibitors. Because the active site residues of NA are invariant, the designed aromatic inhibitors have the potential to become an antiviral drug against all strains of influenza virus.

Aminobenzoates↗

A thin-layer chromatographic method to determine process impurities in leucovorin calcium.

A densitometric thin-layer chromatographic method for the analysis of process impurities in leucovorin calcium was developed and validated. Using this method, folic acid, N10-formyldihydrofolic acid, p-aminobenzoic acid, and N-(4-aminobenzoyl)-L-glutamic acid were monitored with a limit of detection of approximately 0.1% each. Both absorbance and fluorescence densitometric evaluations were utilized; fluorescence evaluation selectively detected impurities that were not chromatographically resolved from leucovorin.

4-Aminobenzoic Acid↗

[The PABA test in chronic pancreatitis: value of plasma para-amino benzoic acid determinations (author's transl)].

Plasma concentrations and urinary excretion of para-aminobenzoic acid (PABA) were measured over a 6-hour period after administration of N-benzoil L-tyrosyl aminobenzoic acid (NBT-PABA) to 15 patients with chronic pancreatitis and 15 controls. The sum of plasma PABA concentrations at 1 hour and 2 hours was calculated for each subject. The resulting value proved to have a specificity of 100% and a sensitivity of 80%, as opposed to 86% and 67% respectively for urinary concentrations.

4-Aminobenzoic Acid↗

Laccase-catalysed synthesis of coupling products of phenolic substrates in different reactors.

Substrate oxidation of aromatic substances by the enzyme laccase followed by a heteromolecular coupling with a co-substrate is a promising possibility for the synthesis of new compounds. To find a suitable reactor for the effective production of new compounds, the laccase-catalysed coupling of 3-(3,4-dihydroxyphenyl)propionic acid with 4-aminobenzoic acid was investigated as a model system. Based on the kinetic parameters, a mathematical model was used to predict the reaction yield and oxygen demand in a discontinuously stirred tank reactor and a continuously operated stirred tank reactor. Membrane processes were used for bubble-free aeration of the system and to recover the soluble enzyme.

4-Aminobenzoic Acid↗

Effects of medium alterations on in vitro development of Brugia malayi larvae in cultured mosquito thoraces.

A recent study showed that 1-day-old, intracellularly lodged larvae of Brugia species develop in vitro to the infective third-stage larvae (L3) in excised thoraces of susceptible mosquitoes in the diphasic insect tissue culture medium containing a nutrient agar base overlaid with a 1:1 mixture of Schneider's Drosophila medium and Grace's insect cell culture medium supplemented with 20% fetal bovine serum (FBS) and antimicrobial agents. In the present investigation, the diphasic culture medium was used to evaluate the effects of medium alterations on the development of 1-day-old, intracellularly lodged larvae of subperiodic Brugia malayi in excised thoraces of Aedes aegypti to the L3. One-day-old larvae developed to the L3 in medium without nutrient agar base, at pH 7.0 and pH 7.5, in Hanks' balanced salt solution (HBSS) and in HBSS supplemented with bovine albumin fraction-V (BAF-V). These larvae also developed in the absence of FBS in the overlay medium, in overlay medium containing 5-20% FBS, in medium components obtained from different sources, in serum free Sf-900 (GIBCO) medium, and when FBS is replaced by BAF-V in the overlay medium. The percentage of L3 was not increased substantially in infected excised thoraces of mosquitoes when nutrient supplements, such as folic acid, p-aminobenzoic acid, glucose, lipid concentrate, hemin, or reduced glutathione, were added to the overlay medium containing BAF-V. These results suggested that 1-day-old, intracellularly lodged larvae developed to the L3 in infected excised thoraces of mosquitoes at almost the same rate as in intact mosquito, when excised thoraces were maintained alive under optimal conditions in a culture medium.

4-Aminobenzoic Acid↗

Absorption spectra of radicals of substrates for p-hydroxybenzoate hydroxylase following electrophilic attack of the .OH radical in the 3 position.

The spectra of radicals formed upon the addition of .OH radicals to the 3 position of substrates for p-hydroxybenzoate hydroxylase (4-hydroxybenzoic acid, 2,4-dihydroxybenzoic acid, and 4-aminobenzoic acid) have been determined using pulse radiolysis combined with the results from high performance liquid chromatography measurements. The 3-hydroxy radical forms of the substrates absorb maximally in the 365-410 nm region with extinction coefficients in the range 3700-5250 M-1 cm-1. Upon combining these radical spectra with the known spectrum of enzyme-bound reduced flavin that is substituted in the C(4a) position of the isoalloxazine ring, spectra are found which closely resemble the species long thought to be formed concomitantly with the introduction of an oxygen atom into substrates. On the basis of these spectral results a new radical mechanism is proposed for the functioning of this class of flavoprotein hydroxylases.

4-Aminobenzoic Acid↗

N-acetylation of drugs. Pharmacogenetic studies in rabbits selected for their acetylator characteristics.

Studies on acetylation of sulfadiazine, isoniazid, and p-aminobenzoic acid in selected lines of slow and rapid acetylator rabbits are described. Pedigree analysis of rabbits classified as slow or rapid sulfadiazine acetylators confirmed previous studies that the rate of sulfadiazine elimination (acetylation) is genetically controlled, with rapid elimination dominant over slow elimination of the drug. Pharmacokinetic studies in rabbits of specified sulfadiazine acetylator genotypes with isoniazid and p-aminobenzoic acid show that the rate of isoniazid elimination is under the same genetic control as is sulfadiazine, whereas the rate of p-aminobenzoic acid elimination is not. A new drug acetylation polymorphism, which controls the rate of enzymatic acetylation of p-aminobenzoic acid in peripheral blood cells and which is related to the sulfadiazine acetylation polymorphism, is described.

Acetyltransferases↗

Simple and micro high-performance liquid chromatographic method for simultaneous determination of p-aminohippuric acid and iothalamate in biological fluids.

A simple, rapid and micro high-performance liquid chromatographic method was developed for separate or simultaneous determination of p-aminohippuric acid and iothalamate in plasma and urine using p-aminobenzoic acid as an internal standard. The method involved deproteinizing samples with two volumes of acetonitrile followed by injection of 5 microliters of deproteinized supernatant onto a C18 reversed-phase column. The mobile phase contained 3.5% acetonitrile in 0.04% phosphoric acid and flowed at a rate of 1.5 ml/min. The column effluent was monitored by an ultraviolet detector at 254 nm. Retention times for p-aminohippuric acid, iothalamate and p-aminobenzoic acid were approximately 4.5, 6 and 8 min, respectively. This method requires as little as 5 microliters of sample and can be used to measure accurately down to 1 microgram/ml p-aminohippuric acid and 0.5 microgram/ml iothalamate in plasma samples. The coefficients of variation of the assay with or without the use of internal standard were generally low (below 7%). No interferences from endogenous substances or any drugs tested were found.

4-Aminobenzoic Acid↗

High performance liquid chromatographic determination of folic acid and its photodegradation products in the presence of riboflavin.

A high performance liquid chromatographic procedure was developed to determine folic acid and its photodegradation products, p-aminobenzoic acid, pterine-6-carboxylic acid, p-aminobenzoyl-L-glutamic acid, and pteroic acid in the presence of riboflavin. The method involves reversed phase, paired-ion chromatography on mu-BondaPak C18 column using a UV detector (254 nm), and isocratic solvent system (at ambient temperature) comprising 0.017 M monobasic potassium phosphate, tetrabutyl ammonium hydroxide solution (20%, aqueous) and methanol (870:15:250, v/v). The range of quantitation for the individual compounds was found to be: p-aminobenzoic acid, 0.01 - 1.25 x 10(-5) M; pterine-6-carboxylic acid, 0.01-2.0 x 10(-5) M; p-aminobenzoyl-L-glutamic acid, 0.02-2.0 x 10(-5) M; pteroic acid, 0.02-2.5 x 10(-5) M; folic acid, 1.0-5.0 x 10(-5) M; riboflavin, 1.0-5.0 x 10(-5) M. Linear regression analysis of the data demonstrates adequate performance of the method in terms of accuracy and precision (R. S. D. 3%). The method is specific, rapid and convenient and has been applied to photodegradation studies of folic acid in the presence and absence of riboflavin.

4-Aminobenzoic Acid↗

Rodent models of the human isoniazid-acetylator polymorphism.

Inbred strains and subpopulations of rats, laboratory mice, and deer mice were examined for individual variation in the ability to metabolize several arylamines (p-aminobenzoic acid, sulfamethazine, aniline, alpha-naphthylamine, and aminofluorene) by N-acetylation. Individual differences within species were found to be dependent upon the tissue source of N-acetyltransferase activity and the acetyl acceptor employed. Long-Evans rats possessed about 2-fold more p-aminobenzoic acid N-acetyltransferase activity in blood and liver than Sprague-Dawley rats; no strain differences could be found with sulfamethazine. Nine strains of laboratory mice (Mus musculus) were found to have considerable liver p-aminobenzoic acid N-acetyltransferase activity but only slight activity towards sulfamethazine. No strain differences were apparent in regard to liver N-acetyltransferase activity. Blood p-aminobenzoic acid N-acetyltransferase activity was distinctly polymorphic in laboratory mice; of the nine strains tested, only A/J mice did not have this activity. Partially inbred deer mice (Peromyscus maniculatus) showed a narrower phenotypic range than random-bred stock from which they were obtained, which suggests the existence of distinct subpopulations with respect to N-acetylation capacity. Presumptive evidence for multiple forms of N-acetyltransferase in liver and blood was obtained through a study of substrate specificity.

Acetylation↗

Pancreatic glucagon secretion and exocrine function (BT-PABA test) in chronic pancreatitis.

Plasma concentrations of pancreatic glucagon, C-peptide, and pancreatic polypeptide were measured during arginine stimulation in 16 patients with chronic pancreatitis, in eight subjects with idiopathic diabetes mellitus, and in seven healthy controls. The hormone responses were compared with exocrine pancreatic function as assessed using the urinary excretion rate of p-aminobenzoic acid after oral ingestion of n-benzoyl-l-tyrosyl-p-aminobenzoic acid (BT-PABA). The increase in pancreatic glucagon levels during arginine stimulation was significantly reduced in patients with chronic pancreatitis compared to healthy controls, most markedly in those with secondary diabetes. In contrast, the glucagon response was unimpaired in patients with idiopathic diabetes. The arginine-induced increase in plasma glucagon and C-peptide concentrations correlated significantly with urinary PABA excretion in chronic pancreatitis (P less than 0.001, P less than 0.01, respectively). The responses of plasma C-peptide and pancreatic polypeptide separated pancreatitic and idiopathic diabetes less well. Thus, the glucagon response to arginine distinguished secondary diabetes due to chronic pancreatitis and idiopathic diabetes mellitus. The correlation between urinary PABA excretion and glucagon levels suggests that in chronic pancreatitis there is a parallel impairment of exocrine and endocrine function.

4-Aminobenzoic Acid↗

[Results of a pilot study of neonatal screening for congenital biotinidase deficiency].

Biotinidase activity was determined in a pilot study of 78,000 dried blood samples on filter paper. In the assay the liberation of p-aminobenzoic-acid from biotinyl-p-aminobenzoic-acid by biotinidase is tested. One boy was identified to be with biotinidase deficiency. Transient reduction of biotinidase activity to virtually negative test results was observed in 8 preterm babies (recall: 0,01%). Specificity and sensitivity of the test were nearly 100%. We suggest that screening for biotinidase deficiency should be incorporated into existing neonatal screening programs for inborn errors of metabolism. This suggestion is based on the ease of testing, the necessity for presymptomatic laboratory diagnosis, and on the effectiveness of early treatment of the multiple carboxylase deficiency caused by defective biotinidase.

Amidohydrolases↗

Evidence for arylamine N-acetyltransferase activity in the fungi Candida albicans.

N-acetyltransferase activities were determined in Candida albicans, which is a member of the normal flora of the mucous membranes in the respiratory, gastrointestinal and female genital tract. The N-acetylation of 2-aminofluorene and p-aminobenzoic acid by the N-acetyltransferase from Candida albicans was determined using high pressure liquid chromatography. The activities (mean +/- S.D.) of N-acetyltransferase from Candida albicans cytosols were 1.06 +/- 0.01 nmol/min per mg protein for the acetylation of 2-aminofluorene substrate, and not detectable levels of acetyl-p-aminobenzoic acid for the acetylation of p-aminobenzoic acid. The apparent kinetic constants Km and Vmax values were 0.17 +/- 0.06 mM and 1.43 +/- 0.42 nmol/min per mg protein, respectively, for 2-aminofluorene substrate. The optimum pH value for the enzyme activity was 8.0. The optimal temperature for the enzyme activity is 40 degrees C for 2-aminofluorene substrate. Among a series of divalent cations and salts, Fe2+, SCN-, I-, and NH4+ were demonstrated to be the most potent inhibitors. The N-acetyltransferase activity was inhibited by iodoacetamide: at 0.25 mM iodoacetamide, activity was reduced 50% and 1.0 mM iodoacetamide inhibited activity more than 90%. This is the first demonstration of acetyl CoA arylamine N-acetyltransferase activity in the yeast-like fungus Candida albicans.

4-Aminobenzoic Acid↗

Kinetics of acetyl coenzyme A:arylamine N-acetyltransferase from rapid and slow acetylator frog tissues.

N-acetyltransferase (NAT) activity was determined in 100 frog (Rana tigrina) livers using 2-aminofluorene and p-aminobenzoic acid as substrates. Overall, the liver NAT activity of the 50 females was higher than the liver NAT activity of the 50 males. The activities (mean +/- SD) of NAT from the bladder, blood, colon, and liver of males was 0.30 +/- 0.11, 0.05 +/- 0.03, 0.09 +/- 0.05, and 0.93 +/- 0.56 nmol/min/mg protein for the acetylation of aminofluorene and 0.29 +/- 0.06, 0.36 +/- 0.04, 0.26 +/- 0.02, and 0.32 +/- 0.14 nmol/min/mg protein for the acetylation of p-aminobenzoic acid. In the bladder, blood, colon, and liver from female frogs, the activities obtained were 1.00 +/- 0.41, 0.52 +/- 0.07, 0.08 +/- 0.05, and 1.27 +/- 0.49 nmol/min/mg protein for aminofluorene and 0.34 +/- 0.12, 0.36 +/- 0.04, 0.34 +/- 0.07, and 0.48 +/- 0.21 nmol/min/mg protein for p-aminobenzoic acid. Kinetic constants for arylamine NAT activity in the blood, liver, bladder, and colon from frogs with rapid, intermediate, and slow acetylator activities were determined. KM and Vmax values for aminofluorene were 2- to 6-fold higher for liver than for the other tissues. KM and Vmax values for p-aminobenzoic acid showed a smaller variation among the tissues examined, with values obtained for the liver and bladder being somewhat higher than the values for the blood and colon. An apparent KM difference for aminofluorene was found in the liver from frogs with high and low acetylator activity. Based on the aminofluorene NAT activity of liver, there seems to be a polymorphism in NAT activity with 4 rapid, 21 intermediate, and 75 slow acetylators among the 100 frogs assayed. Distribution of acetylator phenotypes was similar among the 50 males and 50 females in this study. This is the first demonstration of acetyl coenzyme A:arylamine NAT activity in an amphibian and could lead to the development of a frog model for monitoring the effect of pollution of wetland environments on native species.

Acetyl Coenzyme A↗

[Clinical evaluation of anticancer therapy combined with p-aminobenzoic acid-N-xyloside].

Paraaminobenzoic acid-N-xyloside (K-247) is a new antitumor drug, which has no direct effect on immunologic status. Clinical trial of K-247 was performed in 8 patients with for advanced or recurred gastrointestinal cancer, who had short life expectancy. Oral administration of K-247, 600 to 900 mg/day, was carried out in combination with antitumor treatments using MMC, FT-207, 5-FU, PSK or irradiation. No toxic symptoms were observed in all patients. Of the 8 patients studied, one showed an encouraging response, while the remaining 7 patients were too far advanced to respond to these treatments.

4-Aminobenzoic Acid↗

Immunological evidence for N-acetyltransferase isozymes in the rabbit.

An immunological evaluation of N-acetyltransferase (NAT) (EC 2.3.1.5) in liver, duodenum, lung, and kidney of the rabbit is described. Polyclonal antibodies to hepatic NAT isolated from rapid acetylator rabbits were raised in a goat and utilized for immunoblot analyses and enzyme inhibition studies. Immunoblot analyses demonstrated that hepatic and duodenal cytosols from rapid but not slow acetylator rabbits contained an immunoreactive 33-kDa protein. No immunoreactivity was observed for lung or kidney cytosols from either rapid or slow acetylators. The inhibition of sulfamethazine and p-aminobenzoic acid acetylation by polyclonal antibodies was investigated using cytosols from rapid and slow acetylator rabbits. With rapid acetylator cytosols, maximal inhibition of hepatic, duodenal, and lung NAT activities was 94.4 +/- 9.0%, 92.5 +/- 8.5%, and 28.3 +/- 2.4%, respectively, for sulfamethazine (500 mM) acetylation and 90.1 +/- 8.0%, 80.2 +/- 6.4%, and 26.7 +/- 3.1%, respectively, for p-aminobenzoic acid (500 microM) acetylation. Using 25 microM p-aminobenzoic acid as substrate, maximal inhibition of NAT activity was 32.0 +/- 2.1% with liver cytosol and 5.8 +/- 0.16% with duodenal cytosol, whereas no inhibition of lung NAT activity was observed. Kidney NAT activity was not inhibited by the polyclonal antibodies. With slow acetylator cytosols, no inhibition of NAT activities was observed. It is concluded that at least two NATs are present in liver, duodenum, and lung of rapid acetylator rabbits. Furthermore, the principal NAT in liver and duodenum is immunologically related to the minor form of lung NAT and is antigenically distinct from kidney NAT of rapid acetylators. Hepatic, duodenal, lung, and kidney NAT(s) of slow acetylator rabbits is (are) immunologically distinct from the major hepatic NAT in rapid acetylators. The data support the model in which the hepatic polymorphism in rabbits is caused by the total lack of the major rapid acetylator hepatic NAT in the phenotypic slow acetylator animal. These observations may have significant implications in the organ-specific toxicities of carcinogens that undergo metabolic activation via N-acetylation.

4-Aminobenzoic Acid↗

Regulation by aromatic amino acids of the biosynthesis of candicidin by Streptomyces griseus.

The biosynthesis by Streptomyces griseus of candicidin, an aromatic polyene macrolide antibiotic, was inhibited by L-tryptophan, L-phenylalanine and, to a lesser degree, by L-tyrosine. A mixture of the three aromatic amino acids inhibited candicidin biosynthesis to a greater extent than did each amino acid separately. L-Tryptophan strongly inhibited the incorporation of the labelled precursors propionate or 4-aminobenzoic acid into candicidin. Incorporation of propionate into candicidin was 50% inhibited by 2.5 mM-tryptophan. Inhibition by tryptophan did not require protein synthesis as the same effect was observed in cells in which protein synthesis was prevented by chloramphenicol. The inhibitory effect of L-tryptophan was partially reversed by exogenous 4-aminobenzoic acid suggesting that this effect is exerted at the level of 4-aminobenzoic acid synthase.

Antifungal Agents↗

A unique enzyme catalyzing the formation of 4-hydroxyaniline from 4-amino-benzoic acid in Agaricus bisporus.

A unique enzyme that catalyzes the formation of 4-hydroxyaniline from 4-aminobenzoic acid was found in the homogenate of Agaricus bisporus. The enzyme was prepared from the homogenate by (NH4)2SO4 fractionation, gel filtration and ion-exchange chromatography. The products formed from 4-aminobenzoic acid by the enzyme were shown to be 4-hydroxyaniline and CO2. The reaction required FAD, NAD(P)H and O2. These results indicate that the enzyme is a new FAD-dependent monooxygenase.

4-Aminobenzoic Acid↗