Clinical pharmacology of aminocaproic and tranexamic acids.
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While the major constituents of essential oils are generally mono- and sesquiterpenes, in certain plant families or genera phenylpropanoid compounds are also found in the essential oil, sometimes as the main component. A survey is given of the distribution of these substances, as well as of their structural properties and biochemical origin. In particular, cinnamic acid not only occurs in some cases as a constituent of essential oils, but together with p-hydroxycinnamic acid is the most important metabolic intermediate in the pathways leading to the volatile phenylpropanoids found in these essential oils. These compounds are mostly phenolics, and often occur as their non-volatile glycosides. However, after enzymatic cleavage, which happens frequently during catabolic or postmortal processes, the resulting aglycones, which are not normally components of the essential oil, act as the carriers of flavors and fragrances. These compounds too are included in the survey.
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The metabolite 5-aminolevulinic acid (ALA) is an early committed intermediate in the biosynthetic pathway of heme and chlorophyll formation. In plants, 5-aminolevulinic acid is synthesized via a two-step pathway in which glutamyl-tRNA(Glu) is reduced by glutamyl-tRNA(Glu) reductase (GluTR) to glutamate 1-semialdehyde, followed by transformation to 5-aminolevulinic acid catalyzed by glutamate 1-semialdehyde aminotransferase. Using an Escherichia coli cell-based high-throughput assay to screen small molecule libraries, we identified several chemical classes that specifically inhibit heme/chlorophyll biosynthesis at this point by demonstrating that the observed cell growth inhibition is reversed by supplementing the medium with 5-aminolevulinic acid. These compounds were further tested in vitro for inhibition of the purified enzymes GluTR and glutamate 1-semialdehyde aminotransferase as confirmation of the specificity and site of action. Several promising compounds were identified from the high-throughput screen that inhibit GluTR with an I(0.5) of less than 10 microM. Our results demonstrate the efficacy of cell-based high-throughput screening for identifying inhibitors of 5-aminolevulinic acid biosynthesis, thus representing the first report of exogenous inhibitors of this enzyme.
Penicillin stimulates the formation of ribonuclease in embryoless rice (Oryza sativa L.) endosperm and enhances gibberelin-induced response. Penicillin-induced RNase production is completely inhibited by abscisic acid.
Canaline and gabaculine, inhibitors of gamma-aminotransferases and thus of ornithine aminotransferase (E.C. 2.6.1.13), decreased the flow through ornithine carbamoyl transferase (E.C. 2.1.3.3) in isolated rat hepatocytes incubated with 10 mM NH4Cl and ornithine. The levels of acetylglutamate, an essential activator of carbamoyl phosphate synthetase (ammonia) (E.C. 6.3.4.16), were also decreased, suggesting that the inhibitors had also caused a decrease in the rate of carbamoyl phosphate synthesis. Under these conditions, ornithine appears to be a precursor of acetylglutamate, via ornithine aminotransferase, possibly as a consequence of glutamate synthesis. The influence of aminooxyacetate, an aminotransferase inhibitor, has also been examined.
The aim of this work was to study the neurochemical effects in the brain of GABA-transaminase inhibition by systemic administration of gabaculine (100 mg/kg, i.a.) in the rat. In order to investigate neurotransmitter and related amino-acid compartmentation and metabolism, we have developed an original tool: the coupling, in vivo, on the same animal, of 2D COSY 1H-NMR spectroscopy with intracerebral microdialysis. The main result is a continuous increase in GABA levels, both in the intracellular compartment (up to 3000+/-450%; P<0.001) and extracellular compartment (up to 808+/-82%; P<0.01) at the sixth hour. The intracellular increase in GABA level became significant at the first hour following gabaculine administration, whereas the extracellular level increased as of the second hour, probably indicating that accumulation of GABA in nerve endings precedes its release in synaptic clefts. Moreover, the levels of the excitatory amino acids, glutamate and aspartate, were decreased both in the intra- and extracellular compartments, thus enhancing sedative effects of the drug. We also observed a decrease in the global energetic creatine-phosphocreatine pool, which also could be related to the sedative properties of gabaculine, measurable by the diminution of cortical electrical activity and mean arterial blood pressure. Finally, the coupling between 2D 1H-NMR spectroscopy and intracerebral microdialysis appears to be an original tool for investigating the cerebral metabolic effects induced by pharmacological agents, in situ, in living animals.
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Crude aurintricarboxylic acid synthesized by the conventional method was fractionated into 8 components (A1-A8) by silica gel thin layer chromatography. Some of the components were isolated and their effects were tested on nuclear swelling and on in vitro RNA synthesis and DNA synthesis using isolated polymerases. Only two components with low RF (A7 and A8) induced strong nuclear swelling. The other components were almost inactive. Formaurin-dicarboxylic acid, a contaminating polyanion of crude aurintricarboxylic acid, was synthesized separately. It was as effective as the two active components in nuclear swelling and inhibited RNA and DNA polymerases on naked DNA template. However, it stimulated RNA synthesis on chromatin template probably by dissociating histones from DNA. Unfractionated aurintricarboxylic acid showed the same effects at higher concentrations. A preliminary analysis indicated one of the inactive components (A4) is genuine aurintricarboxylic acid. The results suggest that the observed activity of crude aurintricarboxylic acid is due to some contaminating substances, one of which is formaurindicarboxylic acid.
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Analogs of chemotactic peptides (Formyl-Met-X-Phe-OMe) containing the stereochemically constrained residues alpha-aminoisobutyric acid (Aib), 1-aminocyclopentanecarboxylic acid (Acc5) and 1-aminocyclohexanecarboxylic acid (Acc6) at position 2 are compared with the parent sequence (X = Leu) for their ability to induce lysozyme release in rabbit neutrophils. The Acc6 analog is about 78 times more active than the parent peptide, For-Met-Leu-Phe-OH, whereas Aib and Acc5 analogs are approximately 3 and 2 times, respectively, less active than the parent peptide. NMR and model building studies clearly favour a Met-Acc6 beta-turn solution conformation in the Acc6 analog, suggesting that the neutrophil receptor is capable of recognizing a folded peptide structure. The significant differences in the activities of the Acc5 and Acc6 analogs suggest an important role for the residue 2 sidechain in receptor interactions.