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Dissociation of vasoconstrictor and platelet aggregatory activities of thromboxane by carbocyclic thromboxane A2, a stable analog of thromboxane A2.

Carbocyclic thromboxane A2 [2 beta (Z),3 alpha- (1E,3R*)-3-(3-hydroxy(1-octenyl)-bicyclo[3.1.1]hept-2-yl-5-heptenoic acid], a stable analog of thromboxane A2, has been tested for its physiologic properties. Carbocyclic thromboxane A2 is a potent coronary vasoconstrictor, stimulating cornonary vascular smooth muscle at concentrations as low as 29 pM. At 1-5 micro M it is also an inhibitor of arachidonic-acid- and endoperoxide-induced aggregation of platelets. At 200 nM it stimulated the release of lysosomal hydrolases from large granule fractions of liver homogenate. It inhibited thromboxane synthesis in platelets, although it did not inhibit synthesis of prostacyclin in ram seminal vesicles. Thus, carbocyclic thromboxane A2, a molecule closely related to thromboxane A2, separates coronary vasoconstrictor from platelet-aggregating activity. The constrictor activity predominates in vivo; carbocyclic thromboxane A2 induces coronary vasoconstriction leading to myocardial ischemia and sudden death in rabbits in the absence of pulmonary or coronary thrombosis.

Animals↗

A novel approach to dual-acting thromboxane receptor antagonist/synthase inhibitors based on the link of 1,3-dioxane-thromboxane receptor antagonists and -thromboxane synthase inhibitors.

A new class of dual-acting racemic thromboxane receptor antagonist/thromboxane synthase inhibitors is reported, based on the novel approach of linking the known thromboxane synthase inhibitors (TXSI) dazoxiben (2) or isbogrel (11) (separately) to thromboxane receptor antagonists (TXRA) from the 1,3-dioxane series, such as ICI 192605 (10). Dual activity was observed in vitro with inhibition of human microsomal thromboxane synthase in the range IC50 = 0.01-1.0 microM and receptor antagonist activity by inhibition of U46619-induced human platelet aggregation in the range pA2 = 5.5-7.0. The in vitro results also showed that very large groups could be tolerated at the selected substitution positions of the TXRA and TXSI components. Oral activity was observed in ex vivo tests in both rats and dogs at a dose of 10 mg/kg. Thus, (E)-7-[4-[[4-[(2SR,4SR,5RS)-5-[(Z)-5-carboxypent -2-enyl]-4-(2- hydroxyphenyl)-1,3-dioxan-2-yl]-benzyl]oxy]phenyl]-7-(3-pyridyl)he pt-6- enoic acid (110) was both an antagonist (pA2 = 6.7) and a synthase inhibitor (IC50 = 0.02 microM). On oral dosing (10 mg/kg) to rats and dogs, 110 showed significant TXRA activity [concentration ratio > 64 (rat, 3 h) and > 59 +/- 11.3 (dog, 2 h) vs ex vivo U46619-induced platelet aggregation]. Inhibition of thromboxane synthase at the respective time points in these experiments was 81 +/- 4.4% (rat) and 69 +/- 4.8% (dog).

Animals↗

Thromboxane-mediated activation of platelets and enhancement of platelet uptake onto collagen-coated glass or deendothelialized rabbit aorta. Comparative effects of a thromboxane antagonist (EPO45) and a thromboxane synthetase inhibitor (dazoxiben).

The effects of a cyclooxygenase inhibitor (indomethacin), a thromboxane synthetase inhibitor (dazoxiben), and a thromboxane antagonist (EPO45) on rabbit platelet aggregation induced by collagen were studied and compared with effects on platelet uptake both by damaged rabbit aorta and by collagen-coated glass. Platelet aggregation and associated release of serotonin were inhibited to a similar extent both by indomethacin and EPO45. Dazoxiben had a minimal inhibitory effect on aggregation but reduced the release of serotonin by about 40% compared with control. Platelet uptake onto collagen-coated glass was markedly reduced both by indomethacin and EPO45 but not by dazoxiben. In contrast, EPO45 and dazoxiben were equally effective in reducing platelet adhesion to damaged rabbit aorta. At the concentrations used for adhesion studies the formation of thromboxane B2 was reduced both by dazoxiben and by indomethacin (both greater than 95% inhibition compared with control) and to a lesser extent by EPO45 (less than 40% inhibition). The results indicate that thromboxane A2 (and cyclic endoperoxide) released by adherent platelets may enhance thromboxane synthesis and promote platelet uptake both onto collagen-coated glass and onto damaged rabbit aorta. In the presence of vascular tissue, cyclic endoperoxides are readily metabolized and thereby removed. The potential antithrombotic activity of TXA2 synthetase inhibitors could be impaired in situations in which endoperoxide clearance is limited (e.g., accompanying platelet uptake onto artificial surfaces) but not at the damaged vessel wall. Thus, both inhibitors and antagonists are likely to have similar potency as antithrombotic agents in vivo.

6-Ketoprostaglandin F1 alpha↗

Circulating and urinary thromboxane B2 metabolites in the rabbit: 11-dehydro-thromboxane B2 as parameter of thromboxane production.

The metabolism of thromboxane B2 was studied in the rabbit. The aim of the study was to identify metabolites in blood and urine that might serve as parameters for monitoring thromboxane production in vivo. [5,6,8,9,11,12,14,15-3H8]-Thromboxane B2 was administered by i.v. injection to rabbits, and blood samples and urine were collected with brief intervals. The metabolic profiles were visualized by two-dimensional thin layer chromatography and autoradiography, and the structures of five major metabolites were determined using chromatographic and mass spectrometric methods. In urine the major metabolites were identified as 11-dehydro-TXB2 and 2,3,4,5-tetranor-TXB1, and other prominent products were 11-dehydro-2,3,4,5-tetranor-TXB1, 2,3-dinor-TXB1 and 2,3-dinor-TXB2. In the circulation, TXB2 was found to disappear rapidly. The first major metabolite to appear was 11-dehydro-TXB2, which also remained a prominent product in blood for the remainder of the experiment (90 min). With time, the profile of circulating products became closely similar to that in urine. TXB2 was not converted into 11-dehydro-TXB2 by blood cells or plasma. The dehydrogenase catalyzing its formation was tissue bound and was found to have a widespread occurrence: the highest conversion was found in lung, kidney, stomach and liver. The results of the present study suggest that 11-dehydro-TXB2 may be a suitable parameter for monitoring thromboxane production in vivo in the rabbit in blood as well as urinary samples, and possibly also several tissues. This was also demonstrated in comparative studies using radioimmunoassays for TXB2 and 11-dehydro-TXB2.

Alcohol Oxidoreductases↗

Effects of a thromboxane synthetase inhibitor and a thromboxane antagonist on release and activity of thromboxane A2 and prostacyclin in vitro.

The TxA2 synthetase inhibitor, dazoxiben, and the TxA2 antagonist, +/- SQ 29,548, were examined for effects on release and vasoactivity of TxA2 and prostacyclin. Isolated perfused guinea pig lungs were used as the enzyme source from which TxA2 and prostacyclin were released in response to injections of arachidonic acid or bradykinin. Both dazoxiben and +/- SQ 29, 548 inhibited contraction of the superfused rat aorta and bovine coronary artery after arachidonic acid injection through the lung. +/- SQ 29,548 abolished contractions of the rat aorta, but significant aorta contracting activity persisted during dazoxiben treatment. Dazoxiben significantly inhibited arachidonate-induced release of TxA2 (immunoreactive TxB2) into the superfusate, but TxA2 release was significantly potentiated by +/- SQ 29,548. Thus, in the presence of enhanced TxA2 concentrations, +/- SQ 29,548 effectively antagonized the vasospastic effect of TxA2. Dazoxiben diverted a significantly greater amount of arachidonic acid into prostacyclin synthesis (immunoreactive 6-keto-PGF1 alpha), changing original coronary vasoconstriction into relaxation. +/- SQ 29,548 did not significantly modify lung prostacyclin synthesis. Moreover, with +/- SQ 29,548, the absence of TxA2-mediated coronary contraction unmasked active relaxation of the superfused bovine coronary artery, coincident with thromboxane and prostacyclin release. Dazoxiben consistently inhibited TxA2 synthesis and enhanced prostacyclin synthesis. +/- SQ 29,548 augmented TxB2 release in response to arachidonate, but not bradykinin, and did not significantly alter 6-keto-PGF1 alpha release in response to either arachidonate or bradykinin. In terms of vasoactivity measured in vitro, +/- SQ 29,548 and dazoxiben produced similar anti-vasospastic effects, although this was accomplished by completely different mechanisms.

6-Ketoprostaglandin F1 alpha↗

Thromboxane A2 in cardiovascular and renal disorders: is there a defined role for thromboxane receptor antagonists or thromboxane synthase inhibitors?

Thromboxane (TX) A2 and the prostaglandin endoperoxides, PGG2 and PGH2, have a number of biological activities including contraction of vascular and bronchial smooth muscle, platelet secretion and aggregation, and lysis of cellular membranes. Activation of TXA2 receptors may have deleterious consequences in various pathophysiologies, including coronary thrombosis, myocardial infarction, hypertension and renal injury. In addition to cyclooxygenase inhibitors, TX receptor antagonists and TX synthase inhibitors are available as specific pharmacological tools to investigate the specific involvement of TXA2 and the prostaglandin endoperoxides in these conditions. Recent reports indicate that these agents may be useful to prevent coronary artery thrombosis, prevent coronary artery reocclusion following thrombolytic therapy, attenuate the sequelae of circulatory shock, and improve kidney function after renal injury. This review will discuss the specific involvement of TX in these disorders, and compare the efficacy of different pharmacological approaches to the manipulation of either TX formation or activity.

Animals↗

Alterations in thromboxane synthase and thromboxane A2 receptors in experimental alcoholic liver disease.

We have previously shown that hepatic thromboxane production is increased in experimental alcoholic liver disease. The present study was designed to investigate the cell type in liver responsible for increased thromboxane synthesis and the role of the thromboxane receptor system in the pathogenesis of liver injury. Male Wistar rats were divided into four groups and fed a liquid diet with dextrose or ethanol for 2, 4 and 8 weeks. Medium chain triglycerides or corn oil provided the dietary fatty acids. Kupffer cells, endothelial cells and hepatocytes were isolated from rats fed the different diets for 4 weeks. Liver histopathology, thromboxane synthase mRNA and protein, thromboxane levels and thromboxane receptor mRNA were evaluated in each group. In rats fed corn oil and ethanol, an increase in thromboxane synthase and liver levels of thromboxane metabolites were significantly higher than in the corn oil-dextrose-fed group and were correlated with the presence of pathological changes in the liver. Kupffer cells showed increased expression of thromboxane synthase. In rats fed medium chain triglycerides and ethanol, the levels of thromboxane synthase mRNA and protein were significantly lower than in the corn oil-ethanol-fed groups (P < .01) and liver injury was absent. However, the levels of thromboxane synthase mRNA, protein and thromboxane were significantly higher in the medium chain triglyceride-ethanol-fed rats than in the respective dextrose-fed controls. Among the different cell types, thromboxane A2-receptor mRNA levels were highest in the Kupffer cells in corn oil-ethanol-fed rats. The increase in thromboxane synthase in Kupffer cells together with an increase in thromboxane receptor levels suggests than thromboxanes may contribute to liver injury in ethanol-fed rats.

Animals↗

Purification and characterization of an NAD(+)-dependent dehydrogenase that catalyzes the oxidation of thromboxane B2 at C-11 from porcine liver. Development and application of 11-dehydro-thromboxane B2 radioimmunoassay to enzyme assay.

11-Dehydro-thromboxane B2 has been identified as a major metabolite of infused as well as endogenous thromboxane B2 in mammalian plasma and urine. This metabolite is derived from thromboxane B2 by enzymatic oxidation at C-11 catalyzed by 11-hydroxythromboxane B2 dehydrogenase. A radioimmunoassay for 11-dehydro-thromboxane B2 has been developed and used for enzyme assay, purification and characterization. Antibodies were generated against 11-dehydro-thromboxane B2 conjugated to bovine thyroglobulin. Labeled marker was prepared by radioiodinating 11-dehydro-thromboxane B2-tyrosine methyl ester conjugate. A sensitive radioimmunoassay capable of detecting 10 pg of 11-dehydro-thromboxane B2 per assay tube was developed. The antibodies showed minimal crossreaction with thromboxane B2 (0.03%), prostaglandin D2 (2.76%) and other eicosanoids (less than 0.03%). The enzyme activity was determined by assaying NAD(+)-dependent formation of immunoreactive 11-dehydro-thromboxane B2 from thromboxane B2. The enzyme was found to be enriched in liver although significant activity was also detected in gastrointestinal tract and kidney in pig. The enzyme was purified from porcine liver cytosol to apparent homogeneity using conventional and affinity chromatography. The purified enzyme exhibited coenzyme specificity for NAD+ and used thromboxane B2 as a substrate. The enzyme also catalyzes NADH-dependent reduction of 11-dehydro-thromboxane B2 to thromboxane B2 indicating the reversibility of the enzyme catalyzed reaction. The apparent Km values for thromboxane B2, 11-dehydro-thromboxane B2 and NAD+ are 8.1, 8.0 and 23 microM, respectively. Subunit Mr was shown to be 55,000, whereas the native enzyme Mr was found to be 110,000 indicating that the enzyme is a dimer. The enzyme is sensitive to sulfhydryl inhibitions suggesting cysteine residues are essential to enzyme activity. The availability of a homogeneous enzyme preparation should allow further studies on the substrate specificity and the structure and function of the enzyme.

Animals↗

Thromboxane A2 analogues inhibit the metabolism of thromboxane B2 in perfused guinea-pig lung.

The effect of four thromboxane A2-like analogues as inhibitors of thromboxane B2 uptake and metabolism to 13,14-dihydro-15-keto-thromboxane B2 was studied in the perfused guinea-pig lung. We used 5-min infusions containing 1 muCi [3H]thromboxane B2 (10 ng/ml) and measured uptake/accumulation (as tissue to medium ratio) and metabolism to 13,14-dihydro-15-ketothromboxane B2 by radio-TLC. The results showed that thromboxane B2 metabolism is saturable and exhibits substantial dose-dependent inhibition of both processes by U46619 and U44069 endoperoxide analogues (50% inhibition, ID50, in the range 0.5-0.9 microM), pinane thromboxane A2 (a thromboxane A2 partial agonist, ID50 against metabolism, 0.7 microM) and the thromboxane A2 mimetic EPO11 (ID50 against metabolism, 2.6 microM). These agents affected uptake and enzyme transformation steps differentially, thus strengthening the evidence that thromboxane B2 metabolism is a multi-step, uptake-dependent process in this tissue. U46619 did not affect prostaglandin F2 alpha metabolism, nor did prostaglandin F2 alpha inhibit thromboxane B2 metabolism, confirming that thromboxane B2 uptake/metabolism is distinct from the process which handles prostaglandins. Of the four analogues, only pinane thromboxane was a significant substrate for 15-hydroxyprostaglandin dehydrogenase and it was also the best inhibitor of 15-hydroxyprostaglandin dehydrogenase in purified enzyme preparations. These results advance our understanding of the inactivation in lung of thromboxane B2 and invite study of thromboxane A2 itself.

15-Hydroxy-11 alpha,9 alpha-(epoxymethano)prosta-5↗

Increased thromboxane biosynthesis in a human preparation of platelet activation: biochemical and functional consequences of selective inhibition of thromboxane synthase.

Although thromboxane A2 is a potent platelet agonist and vasoconstrictor in vitro, our knowledge of its pathophysiologic importance in human disease is limited. To facilitate the elucidation of its role in vivo, we sought to define a human syndrome in which pharmacologic interventions designed to inhibit the biosynthesis or biologic actions of thromboxane A2 might be appropriately assessed. Patients with severe peripheral vascular disease were selected on the basis of elevated plasma beta-thromboglobulin and circulating platelet aggregates and compared with healthy, age-matched control subjects. In addition to the platelet indexes, their bleeding time was shorter and excretion of 2,3-dinor-thromboxane B2, a noninvasive index of thromboxane formation in vivo, and 2,3-dinor-6-keto-prostaglandin F 1 alpha, the major urinary metabolite of prostacyclin, was markedly increased. A selective inhibitor of thromboxane synthase, imidazo (1,5-2) pyridine-5-hexanoic acid, was administered to these patients under randomized, double-blind, controlled conditions. Platelet aggregation ex vivo, the circulating platelet aggregate ratio, and the bleeding time were all unaltered, despite almost maximal inhibition of platelet thromboxane formation 1 hr after dosing. By contrast, pronounced inhibition of aggregation was observed when platelet cyclooxygenase was inhibited by aspirin. During long-term dosing with the synthetic inhibitor, inhibition of thromboxane biosynthesis was incomplete, which would permit continued thromboxane-dependent platelet aggregation to occur. However, the failure of enzyme blockade to influence platelet function at the time of maximal drug action, despite efficient inhibition of serum thromboxane B2, suggests that accumulation of proaggregatory endoperoxides is also likely to have contributed to the persistence of platelet activation. We have characterized a human preparation in which platelet activation coexists with increased thromboxane biosynthesis. In this setting, platelet activation persists despite long-term administration of a thromboxane synthase inhibitor in a dosing regimen representative of that employed in clinical trials. Prolongation of drug action and combination with antagonists of the shared endoperoxide/thromboxane A2 receptor may be necessary to assess the potential of selective inhibition of thromboxane synthase as a therapeutic strategy in man.

6-Ketoprostaglandin F1 alpha↗

The effect of thromboxane receptor blockade versus thromboxane synthase inhibition on canine arterial graft patency.

This study compared the effects of a thromboxane synthase inhibitor, thromboxane receptor antagonist, and cyclooxygenase inhibitor in a canine arterial graft patency model. Fifty-six dogs were divided into a control (no treatment) and five treatment groups: thromboxane synthase inhibitor (U63557A; 15 mg/kg/tid); thromboxane receptor antagonist (SQ29548; 0.02 mg/kg/hr); high-dose aspirin (325 mg/day; low-dose aspirin (1 mg/kd/day; and aspirin plus dipyridamole (325 mg/day aspirin; 3 mg/kg/day dipyridamole). Drugs were orally administered except for thromboxane receptor antagonist, which was delivered intravenously by minosmotic pumps. After 24 hours of drug treatment, bilateral femoral artery prosthetic grafts (4 mm diameter x 7 cm; 1 polytetrafluoroethylene and 1 Dacron) were implanted. Patency was determined after 1 week. Dogs were classified before operation according to their epinephrine-enhanced arachidonate-stimulated platelet aggregation response. Polytetrafluoroethylene and Dacron graft patency rates were equivalent in all groups. Overall graft patency was significantly improved from 42% (control) to 94% by both high-dose aspirin and thromboxane receptor antagonist (p less than 0.001). Aspirin-dipyridamole also improved patency (83%; p less than 0.01 versus control), whereas thromboxane synthase inhibitor and low-dose aspirin were not effective. Baseline platelet aggregation was not predictive of patency. The drugs that promoted graft patency in this model either suppressed both thromboxane A2 and prostaglandin H2 formation (high-dose aspirin) or blocked their combined platelet receptor (thromboxane receptor antagonist). Thromboxane synthase inhibitor may be ineffective because prostaglandin H2 production is allowed. These data suggest that activation of the platelet thromboxane A2-prostaglandin H2 receptor is an essential event in early arterial graft thrombosis.

Animals↗

Cyclooxygenase inhibitors blunt thromboxane action in human placental arteries by blocking thromboxane receptors.

The effects of cyclooxygenase inhibitors on thromboxane-mediated vasoconstriction in human placental arteries were studied in the isolated perfused fetoplacental cotyledon. The stable thromboxane agonist U-46619 caused a dose-related increase in perfusion pressure in the fetal side of the cotyledon. Meclofenamate (3.3 x 10(-5) M) significantly blunted the pressor response to U-46619, but not to angiotensin II, and inhibited thromboxane B2 formation in placental slices (IC50, 4.80 x 10(-8) M). The mechanism by which meclofenamate prevented thromboxane-induced vasoconstriction was studied using ligand-binding techniques in a membrane fraction prepared from placental cotyledons. Meclofenamate caused a dose-related inhibition of binding of the thromboxane receptor antagonist [3H]SQ 29548 with an IC50 of 2.61 x 10(-5) M. Scatchard analysis of equilibrium binding demonstrated that meclofenamate reduced the number of binding sites without altering the affinity of the receptor, suggesting a noncompetitive mechanism. Indomethacin also caused a dose-related inhibition of thromboxane binding (IC50, 3.27 x 10(-4) M). However, aspirin at a dose of 2.0 x 10(-3) M did not inhibit [3H]SQ 29548 binding. The data indicate that some cyclooxygenase inhibitors blunt thromboxane actions by interfering with binding at thromboxane receptor sites. These studies identify a new mechanism by which cyclooxygenase inhibition by some nonsteroidal anti-inflammatory drugs can prevent thromboxane action in fetoplacental blood vessels in vitro independent of reductions in thromboxane formation.

15-Hydroxy-11 alpha,9 alpha-(epoxymethano)prosta-5↗

Thromboxane generation after thrombin. Protective effect of thromboxane synthetase inhibition on lung fluid balance.

We examined the role of thromboxane in mediating the alterations in pulmonary hemodynamics and in lung fluid and protein exchange after thrombin. Studies were made in control sheep and in sheep pretreated with the thromboxane synthetase inhibitor, Dazoxiben (injection of 10 mg/kg followed by infusion of 4 mg/kg per hr). Thrombin infusion caused an increase in mixed venous and aortic concentrations of thromboxane B2, a stable degradation product of thromboxane A2, whereas the concentrations of 6-keto-PGF1 alpha, a degradation product of prostacyclin, did not change significantly. In sheep pretreated with Dazoxiben, thromboxane B2 concentrations did not increase, indicating effectiveness of the thromboxane synthetase inhibitor. The blood concentrations of 6-keto-PGF1 alpha after thrombin increased in the thromboxane synthetase-inhibited group, indicating shunting towards prostacyclin synthesis. Thrombin in untreated sheep increased pulmonary lymph flow (Qlym) and the lymph protein clearance (Qlym X lymph-to-plasma protein concentration ratio). The increases in lymph parameters were due to an increase in pulmonary vascular permeability to proteins because raising left atrial pressure further increased Qlym but did not change lymph-to-plasma ratio. Dazoxiben prevented the thrombin-induced increase in pulmonary vascular permeability because the increase in left atrial pressure resulted in an increase in Qlym and a decrease in lymph-to-plasma ratio, as was the case after left atrial hypertension in normal animals. Therefore, thrombin results in selective release of thromboxane A2 which precedes the increase in pulmonary vascular permeability. Thromboxane A2 may contribute to the increased permeability after thrombin, since inhibition of thromboxane synthesis prevents the permeability change.

Animals↗

A new role for nicotine: selective inhibition of thromboxane formation by direct interaction with thromboxane synthase in human promyelocytic leukaemia cells differentiating into macrophages.

Thromboxane, one of the major oxygenated arachidonic acid metabolites of human macrophages, is the most potent vasoconstricting and proaggregatory molecule known. In addition, thromboxane has been shown to be related to host defence mechanisms. We studied the effects of nicotine and its major metabolites on thromboxane formation using cultured macrophage-like cells (HL-60), microsomal assays and purified thromboxane synthase. In intact cells, nicotine, cotinine and methylnicotine at submicromolar concentrations inhibited the rate of conversion of both arachidonic acid and the unstable endoperoxide prostaglandin H2 into thromboxane but not into other eicosanoids. This indicates that nicotine selectively inhibits thromboxane synthase at concentrations that are readily observed in the circulation of smokers. Microsomal assays revealed that nicotine decreased the maximal velocity of thromboxane synthase without affecting the apparent affinity of the enzyme for its substrate. In contrast, no effect of nicotine on kinetic parameters of prostaglandin H synthase or prostacyclin synthase could be observed. Difference spectra, using purified thromboxane synthase, revealed that nicotine directly interacts with the enzyme, presumably by binding the nitrogen of the nicotine ring structure to the iron of the cytochrome P-450 component of thromboxane synthase.

6-Ketoprostaglandin F1 alpha↗