Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “AMINOBENZOATES”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

Crystal structures of wild-type p-hydroxybenzoate hydroxylase complexed with 4-aminobenzoate,2,4-dihydroxybenzoate, and 2-hydroxy-4-aminobenzoate and of the Tyr222Ala mutant complexed with 2-hydroxy-4-aminobenzoate. Evidence for a proton channel and a new binding mode of the flavin ring.

The crystal structures of wild-type p-hydroxybenzoate hydroxylase from Pseudomonas fluorescens, complexed with the substrate analogues 4-aminobenzoate, 2,4-dihydroxybenzoate, and 2-hydroxy-4-aminobenzoate have been determined at 2.3-, 2.5-, and 2.8-A resolution, respectively. In addition, the crystal structure of a Tyr222Ala mutant, complexed with 2-hydroxy-4-aminobenzoate, has been determined at 2.7-A resolution. The structures have been refined to R factors between 14.5% and 15.8% for data between 8.0 A and the high-resolution limit. The differences between these complexes and the wild-type enzyme-substrate complex are all concentrated in the active site region. Binding of substrate analogues bearing a 4-amino group (4-aminobenzoate and 2-hydroxy-4-aminobenzoate) leads to binding of a water molecule next to the active site Tyr385. As a result, a continuous hydrogen-bonding network is present between the 4-amino group of the substrate analogue and the side chain of His72. It is likely that this hydrogen-bonding network is transiently present during normal catalysis, where it may or may not function as a proton channel assisting the deprotonation of the 4-hydroxyl group of the normal substrate upon binding to the active site. Binding of substrate analogues bearing a hydroxyl group at the 2-position (2,4-dihydroxybenzoate and 2-hydroxy-4-aminobenzoate) leads to displacement of the flavin ring from the active site. The flavin is no longer in the active site (the "in" conformation) but is in the cleft leading to the active site instead (the "out" conformation). It is proposed that movement of the FAD out of the active site may provide an entrance for the substrate to enter the active site and an exit for the product to leave.

4-Aminobenzoic Acid↗

Novel aerobic 2-aminobenzoate metabolism. Purification and characterization of 2-aminobenzoate-CoA ligase, localisation of the gene on a 8-kbp plasmid, and cloning and sequencing of the gene from a denitrifying Pseudomonas sp.

A new pathway for the aerobic metabolism of 2-aminobenzoate which proceeds via 2-aminobenzoyl-CoA has recently been revealed in a Pseudomonas strain KB 740-. The enzyme catalyzing the first step, the formation of the coenzyme A (CoA) thioester of 2-aminobenzoate, is 2-aminobenzoate-CoA ligase. It was purified from cells aerobically grown with 2-aminobenzoate as sole carbon, energy, and nitrogen source and characterized. It is rather specific for 2-aminobenzoate, but activates also benzoate and fluorobenzoates. ATP was cleaved into AMP and pyrophosphate. The ligase is a monomer of M(r) 65,000, as determined by gel filtration and SDS/PAGE. The N-terminal amino acid sequence was determined and the gene locus of the enzyme was identified by Southern blot hybridization on a small 8-kbp plasmid pKB 740. The 1.8-kb nucleotide sequence of the 2-aminobenzoate-CoA ligase gene and the derived amino acid sequence of the native enzyme (597 residues) are reported.

Aerobiosis↗

Simultaneous determination of p-aminobenzoic acid, acetyl-p-aminobenzoic acid and p-aminohippuric acid in serum and urine by capillary gas chromatography with use of a nitrogen-phosphorus detector.

In various studies during recent years, the use of p-aminobenzoic acid has been described in screening tests for exocrine pancreatic function. A synthetic three-unit compound N-benzoyl-L-tyrosyl-p-aminobenzoic acid has been administered orally and hydrolysed in the small intestine in the presence of chymotrypsin to N-benzoyl-L-tyrosine and p-aminobenzoic acid. This study describes a convenient procedure in which, after a selective extraction and derivatization with diazomethane, capillary gas chromatography is used combined with nitrogen-sensitive detection. With the proposed procedure, p-aminobenzoic acid and its major metabolites, acetyl-p-aminobenzoic acid and p-aminohippuric acid, can be monitored in serum and in urine samples.

4-Aminobenzoic Acid↗

Occurrence of para-aminobenzoic acid and benzocaine as contaminants in sunscreen agents of para-aminobenzoic acid type.

Para-aminobenzoic acid (PABA) and some of its esters, such as amyl para-dimethylaminobenzoate, ethyl 4-bis(hydroxypropyl)aminobenzoate, 2-ethylhexyl para-dimethylaminobenzoate and glyceryl para-aminobenzoate are used as sunscreen agents. Methods for separating PABA and the 5 mentioned PABA esters by thin layer chromatography and high pressure liquid chromatography (HPLC) are presented. Contamination with PABA and benzocaine were measured quantitatively by the HPLC technique in samples of the 4 PABA esters, using different brands and different batches of the same brand. PABA was detected in all 12 samples examined and benzocaine in 11. The degree of contamination was batch-dependent. Minimal amounts of PABA and benzocaine were found in most batches but in glyceryl para-aminobenzoate both substances were present at a level above 0.1% (w/w). High levels of benzocaine were also detected in batches of ethyl 4-bis(hydroxypropyl)-aminobenzoate.

4-Aminobenzoic Acid↗

Absorption and metabolic characteristics of p-aminobenzoic acid and its isomer, m-aminobenzoic acid, from the rat small intestine.

Absorption and metabolic characteristics of p-aminobenzoic acid (PABA) and m-aminobenzoic acid (MABA) from the rat small intestine were examined by means of in situ recirculation and in vitro everted sac experiments. p-Aminobenzoic acid was extremely rapidly absorbed from the rat small intestine, whereas the absorption of MABA, the m-isomer of PABA, was comparably slower. This finding was partly explained by the result that PABA is more lipophilic than MABA. The metabolite percentage of PABA was considerably greater than that of MABA in mucosal fluid, tissue, and serosal fluid. On the other hand, a concentration-dependent and a directional difference in the transfer rate of these drugs were observed in everted and noneverted sacs of rat small intestine. Furthermore, mucosal uptake of PABA or MABA was inhibited by 1 mM 2,4-dinitrophenol, 10 mM sodium azide, and pretreatment with HgCl2 (10 mM). These results indicate that MABA, as well as PABA, is transported through the intestine by a carrier-mediated transport system, and that the molecular structure of these drugs is important for their absorption and metabolic characteristics.

4-Aminobenzoic Acid↗

Different transfers of N-acetyl-p-aminobenzoic acid and p-aminobenzoic acid across the placenta and the small intestine in rats.

The aim of the present study was to evaluate the transfer of N-acetyl-p-aminobenzoic acid (AcPABA) across the rat term placenta and the rat small intestine and to compare it with that of its parent drug p-aminobenzoic acid (PABA). Umbilical perfusion of the rat term placenta was used to determine the materno-fetal transfer. AcPABA appeared in the fetal compartment significantly more slowly than PABA (k transfer = 0.023 and 0.064 min(-1), respectively). The rate of equilibration between the maternal and fetal compartments was slightly lower for AcPABA than for the parent drug (k eqilibration = 0.0082 and 0.011 min(-1), respectively). Similarly, AcPABA was shown to be absorbed from the small intestine significantly more slowly than PABA (ka = 0.052 and 0.82 min(-); tmax = 37 and 3.1 min, respectively). Our results showed that both investigated compounds which are structurally related and very similar in their physical-chemical characteristics crossed both the placental and small intestinal barrier with a different kinetics. AcPABA was transported across both barriers significantly more slowly than its parent compound, which might indicate a possible equipment of the placenta with a carrier for PABA, a similar one to that previously found in the rat small intestine.

4-Aminobenzoic Acid↗

Spontaneous formation of immunogenic conjugates by 3-hydroxy-para-aminobenzoic acid--a biotransformation product of procaine and para-aminobenzoic acid.

3-Hydroxy-para-aminobenzoic acid (3-HPABA), a biotransformation product of procaine and para-aminobenzoic acid, is capable of binding covalently to proteins by simple incubation at alkaline pH. When administered incorporated in Freund adjuvant to rabbits, 3-HPABA conjugates with normal rabbit serum proteins (3-HPABA-NRS) give rise to both hapten specific antibodies and anti-NRS antibodies. Cross immunological reactions were found between 3-HPABA and ortho-aminophenol (OAP) and 3-hydroxy-sulfanilamide (3-HS) immunological systems, but not between 3-HPABA and para-aminophenol (PAP) and 5-aminosalicyclic acid (5-ASA) immunological systems. The significance of these findings for the explanation of procaine allergy and the possible use of 3-HPABA conjugates for skin testing in procaine hypersensitivity is discussed.

4-Aminobenzoic Acid↗

Regulative influence of o-aminobenzoic acid on the biosynthesis of nourseothricin in cultures of Streptomyces noursei JA 3890b. IV. Bistability of metabolism and the mechanism of action of aminobenzoic acids.

Using the semi-continuous cultivation technique we could establish that specifically in Streptomyces noursei JA 3890b during growth on a medium supplied with D,L-alanine, NH4+, and maize starch there are two different phenotypes of the organism and stationary states of metabolism, respectively. The expression of either the metabolic state I with an enhanced capacity to oxidative deamination of alanine via the NAD+-dependent alanaine dehydrogenase or the metabolic state 2 which may be characterized by the preferred use of ammonium ions via the NADP+-dependent glutamate dehydrogenase was shown to depend strongly on the conditions of inoculum cultivation. When the amino acid permeases were derepressed by cultivating the inoculum cells on amino acid media, probably due to the defective mechanism of negative feedback control of amino acid influx in this strain an abnormously high uptake of alanine was observed that, consequently, was correlated to the enhanced oxidation of this amino acid as well as to the intensive production of ammonia within the cell. This overproduction of cellular NH4+ seems to bring about the subsequent repression of biosynthetic glutamate dehydrogenase and so on the accumulation of ammonia autocatalytically may rise up (metabolic state I). On the other hand, if the influx of alanine was kept low and the NADH oxidation was less efficient, respectively, or when there was high cellular activity of glutamate dehydrogenase the level of ammonia never did exceed the respressory limit and, accordingly, the expression of the metabolic state 2 was observed. Switching-over of metabolic flux from the state 2 towards the state 1 can be brought about either by increasing the level of nitrogen sources in the medium or by adding buffers pH greater than 7.5. In contrast, decrease of cellular level of NH4+ was shown to induce the transition of metabolic state 1 into the state 2. This can be achieved not only by limitation of nitrogen source but also by adding different aminobenzoic acids and, alternatively, effectors of membrane function (short-chain alcohols), inhibitors of cytochrome oxidases (sodium azide, potassium cyanide), heavy metal (Fe++)-chelating agents (catechol, 2,5'-dipyridyl, o-phenanthroline), beta-alanine, and buffers pH less than 7. This suggests that these effectors are capable of preventing the abnormously high influx of amino acids as well as its wasteful catabolism within the cell of S. noursei JA 3890b. Therefore, it seems likely that by this way the aminobenzoic acids and similar effectors can diminish the catabolite repression or inhibition of secondary metabolism by cellular excess of some nitrogen compounds in good agreement with its well-known stimulatory action on the biosynthesis of the antibiotic nourseothricin in this strain.

Alanine↗

Regulative influence of o-aminobenzoic acid on the biosynthesis of nourseothricin in cultures of Streptomyces noursei JA 3890b. III. Change of redox state of nicotinamide-adenine-dinucleotides in the presence of aminobenzoic acids.

o-Aminobenzoic acid (OABA, anthranilic acid) and related compounds which are known to stimulate the biosynthesis of streptothricin-type antibiotic nourseothricin by Streptomyces noursei JA 3890b were found to increase strongly the NADH/NAD+ ratio in growing mycelium of this strain suggesting that these effectors are capable of interfering with the function of the respiratory chain. In parallel, a complex shift of metabolism was induced shown by simultaneous alteration of mycelial activities of alanine dehydrogenase, glutamine synthetase, and glutamate dehydrogenase. These changes may be responsible for the observed delay of amino acid catabolism and may improve the precursor supply of the secondary metabolism.

Alanine↗

p-Aminobenzoate-p-aminobenzoate.

p-Aminobenzoate (PABA) synthase from Bacillus subtilis is an aggregate composed of two nonidentical subunits and has the following properties. (i) In crude extracts this enzyme catalyzes the formation of PABA in the presence of chorismate and either glutamine (amidotransferase) or ammonia (aminase). The amidotransferase activity is about 5- to 10-fold higher than the aminase activity and is stable for at least 1 week when frozen at -70 C. (II) Although no divalent cation requirement could be demonstrated with crude extracts, 2 mM ethylene-diaminetetraacetic acid completely inhibits both activities. (iii) After ammonium sulfate fractionation both the aminase and amidotransferase activities require Mg2+ and guanosine in addition to the substrates indicated above for optimal activity. The guanosine requirement can be replaced by guanosine 5'-monophosphate, guanosine 5'-diphosphate, and guanosine 5'-triphosphate but not by guanine, adenosine 5'-triphosphate, uridine 5'-triphosphate, cytidine 5'-triphosphate, thymidine 5'-triphosphate, inorganic phosphate, and phosphoribosylpyrophosphate. Furthermore, at a pH above 7.4 or below 6.4 activity is rapidly lost a 4 C, or -60 C. (IV) The enzyme is composed of two non-identical subunits, designated subunit A and subunit X. Subunit A has an estimated molecular weight of 31,000, whereas subunit X has an estimated molecular weight of 19,000. Subunit A has aminase activity but no amidotransferase activity; a mutation at the pabA locus results in the loss of PABA synthase activity. Subunit X, which is also a component of the anthranilate synthase complex, has no PABA synthase activity itself but complexes with subunit A to give an AX aggregate that can use glutamine as a substrate. (v) The molecular weight of the AX complex has been estimated at 50,000, suggesting a 1:1 ratio of subunits. (vi) The enzyme is readily associated and dissociated.

Aminobenzoates↗

Determination of protease-cleaved p-aminobenzoic acid (PABA) in serum after oral administration of N-benzoyl-L-tyrosyl-p-aminobenzoic acid (PABA-peptide) in children.

A modification of the urine PABA tet published by Imondi et al. is described. Ninety minutes after oral administration of PABA peptide, PABA was determined in serum. The average concentration in healthy children was 0.42 +/- 0.055 mg per 100 ml. Up to that time we recovered in the urine 66.1 +/- 6.1% of the substance previously administered. In the children with cystic fibrosis of the pancreas (CF) serum PABA concentrations were less than 0.1 mg per 100 ml. The infants under 2 months old also had clearly low serum concentrations, on average 0.29 +/- 0.06 mg per 100 ml, whereas the PABA concentrations in the older babies lay within the range for the older children (0.40 +/- 0.07 mg%).

4-Aminobenzoic Acid↗

[Specificity and sensitivity of the 4-N-acetyl-L-tyrosyl-p- aminobenzoic acid test in childhood with serum p-aminobenzoic acid determination].

Specificity and sensitivity of ALTAB test have been estimated in 40 healthy children and 13 cystic fibrosis patients. The test has been carried out in the modification as 2-hour-serum PABA-test. The found specificity was 90%, the sensitivity 100% respectively. Therefore this test is suitable for evaluation of exocrine pancreas function.

4-Aminobenzoic Acid↗