In vitro and in vivo models for evaluating drugs which influence arachidonic acid metabolism.
This paper describes several animal and human models, which are used for studying phospholipase, cyclo-oxygenase and thromboxane synthetase inhibitors.
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This paper describes several animal and human models, which are used for studying phospholipase, cyclo-oxygenase and thromboxane synthetase inhibitors.
The purpose of this presentation is to review the current state of knowledge regarding 5,8,11,14-eicosatetraynoic acid (ETYA, Ro 3-1428) and its effects on lipid metabolism. Accordingly, the topics discussed include hypocholesterolemic and dermatological studies involving ETYA in both animals and man, as well as the effects of ETYA on desaturase enzymes. Metabolic studies involving ETYA are also noted. Primary interest is focused on the effects of ETYA on selected processes of arachidonate metabolism, and the effect of ETYA on inflammation, platelet aggregation and tumor growth are discussed, keeping in mind the relevance of arachidonate metabolism to these processes.
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With improved techniques for isolation and identification of materials, thromboxane (TXA2) and prostacyclin (PGI2) derivatives are now recognized as more abundant in some tissues and more potent than PGE2 and PGF2alpha. The rapid appearance and disappearance of these autacoids can be regulated at many points along the enzymatic path. Two important features affecting the rate of overall prostaglandin formation are the availability of non-esterified substrate and the availability of hydroperoxide activator for the cyclooxygenase. The fate of the endoperoxide formed by this reaction then depends upon the different relative amounts of the synthases and dehydrogenases in each type of synthesizing cell. Important future developments will indicate ways in which the amounts of these enzyme activities are altered and the ways in which the prostaglandin receptors interact with cellular adenyl cyclase and adrenergic receptors.
9,11-Iminoepoxyprosta-5,13-dienoic acid inhibits the thromboxane A2 synthetase in platelet and lung microsomal enzyme preparations and in intact platelets. It does not inhibit the protaglandin I2 synthetase in aorta or lung microsomes and intact Balb 3T3 fibroblasts. In lung microsomes, which contain both enzymes, 9,11-iminoepoxyprosta-5,13-dienoic acid inhibits only thromboxane A2 formation and augments prostaglandin I2 formation. This inhibitor is more selective than other reported prostaglandin endoperoxide analogs which inhibit the platelet thromboxane synthetase.
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9,11-Azo-13-oxa-15-hydroxyprostanoic acid (AOHP) is shown to be a potent inhibitor of thromboxane synthetase with an IC50 at about 10(-6)M. It also blocked the agonist actions of 9,11-epoxymethano-PGH2 (IC50 9 x 10(-7) M) and TxA2 (IC50 2.4 x 10(-6) M) on human platelet-rich plasma indicating that it also is a PGH2/TxA2 receptor blocker.
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The synthetic prostaglandin analog 9,11-azoprosta-5,13-dienoic acid (azo analog I) has been found to be a potent inhibitor of human platelet thromboxane synthetase by three independent analytical methods: electron-capture gas chromatography, radioisotopic thin-layer chromatography, and radioimmunoassay. In the presence of azo analog I, human platelet aggregation induced by either the prostaglandin endoperoxide PGH2 or arachidonic acid was antagonized. The addition of azo analog I shifted the transformation of endoperoxides away from thromboxane synthesis and toward prostaglandin E2 synthesis. The specificity of azo analog I is demonstrated by its selective inhibition of the second wave of either ADP- or epinephrine-induced platelet aggregation. These data indicate that PGH2 must be converted to thromboxane A2 in order to induce human platelet aggregation.
Pinane-thromboxane A2 (PTA2, [1alpha,2 beta(Z),-3 alpha (1E,3R*),5 alpha]-7-(3-(3-hydroxy-1-octenyl)-6,6-dimethylbicyclo[3.1.1]hept-2-yl)-5-heptenoic acid) has been synthesized and tested for biological activity in systems responsive to thromboxane A2, stable prostaglandin endoperoxide (PGH2) analogs, and prostatacyclin (PGI2). At low concentrations, PTA2 inhibited cat coronary artery constriction induced by stable prostaglandin endoperoxide analogs, and it stabilized liver lysosomes. At slightly higher concentrations, it inhibited platelet aggregation. At still higher concentrations, PTA2 inhibited thromboxane synthetase, but it had no effect on prostacyclin synthetase. The analog also had no effect on the inhibition of platelet aggregation by PGI2 or prostaglandin D2. It is suggested that PTA2 has a suitable biochemical profile for use as an antithrombotic agent.
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The soluble and microsomal fractions of Rabbit myocardium are not able to induce the synthesis of thromboxanes. On the contrary, they inhibit the thromboxane synthetase of various sources. The chemical structure of the active constituent responsible for this activity is not yet known: it is probably neither of an enzymatic nature, nor a protein of high molecular weight.
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Triflusal is a new antithrombotic agent, structurally similar to acetylsalicylic acid (ASA), which has been shown to possess a different pharmacological profile, suggesting a different mechanism of action for both compounds. To confirm this hypothesis we have studied, comparatively, the inhibition by triflusal and ASA of the activity of several enzymes involved in the equilibrium of platelet haemostasis, namely, prostaglandin-synthetase system (PG-synthetase), cyclo-oxygenase, thromboxane-synthetase and cAMP-phosphodiesterase. Results indicate that trilfusal is 60% less potent as inhibitor of cyclooxygenase (biological method) and of prostaglandin biosynthesis (spectrophotometric method ) than ASA. On the contrary, triflusal is five times more potent than ASA as inhibitor of cAMP phosphodoesterase. Inhibition of thromboxane-synthetase by both compounds is negligible and without physiological significance. These results suggest a mechanism of action of trifusal that might explain the different pharmacological profile between triflusal and ASA as antithrombotic agents.