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Biomedical subjects

G A FitzGerald

Publications and source records attributed to G A FitzGerald.

At least 199 records · Page 11Linked to original sources

Eicosenoid biosynthesis and platelet function with advancing age.

The pathogenesis of atherosclerosis, a major cause of age-related mortality, remains poorly understood. Although platelets and their products, including thromboxane A2, may be of importance in this process, little is known about eicosenoid biosynthesis and platelet function with increasing age. In order to address the hypothesis that platelet activation increases with age, we measured various indices of platelet function in a group of apparently healthy individuals over the age of 50 years. The circulating platelet aggregate ratio, plasma beta-thromboglobulin and threshold aggregating concentration of arachidonic acid were similar to those in healthy subjects aged less than 40 years. Although the bleeding time (168 +/- 24 vs 300 +/- 24 seconds) was significantly (p less than 0.001) shorter in the older volunteers this may be unrelated to platelet function and merely reflect age related changes in skin and/or vascular function. To further assess platelet and vascular function in vivo, we measured excretion of the major thromboxane and prostacyclin metabolites in urine, 2,3-donor-thromboxane B2 (Tx-M) and 2,3-dinor-6-keto-PGF1 alpha (PGI-M). Both Tx-M (223 +/- 22 vs 152 +/- 19 pg/mg creatinine; p less than 0.005) and PGI-M (198 +/- 21 vs 121 +/- 13 pg/mg creatinine; p less than 0.005) excretion were significantly higher in the older volunteers. These subtle but significant changes in eicosenoid biosynthesis are consistent with the presence of platelet activation in vivo increasing with age in apparently healthy individuals.

6-Ketoprostaglandin F1 alpha↗

Systemic production of prostacyclin and thromboxane A2 does not correlate with patency of the ductus arteriosus in very low birth weight infants.

Urinary excretion of prostacyclin and thromboxane metabolites (2,3-dinor-6-ketoprostaglandin F1 alpha, thromboxane B2, and 2,3-dinor-thromboxane B2) as indices of systemic biosynthesis was prospectively determined in nine premature infants during the first 10 days of life, by gas chromatography-mass spectrometry. The patients ranged in gestational age from 27 to 29 weeks and in birth weight from 720 to 980 gm. Four infants developed symptomatic patent ductus arteriosus (PDA). Excretion of all metabolites exceeded adult values on the basis of body surface area at birth, reached a maximum on the fourth day of life, was related to urine output, and did not distinguish patients with and without symptomatic PDA. We conclude that neither circulating prostacyclin nor thromboxane A2 contribute significantly to the pathophysiology of symptomatic PDA in very low birth weight infants.

6-Ketoprostaglandin F1 alpha↗

11-Dehydrothromboxane B2: a quantitative index of thromboxane A2 formation in the human circulation.

In human plasma, 11-dehydrothromboxane (TX) B2 is a major long lived metabolite (t1/2 45 min) formed from infused TXB2, the hydration product of biologically active TXA2. Plasma concentrations of TXB2 itself are readily confounded by ex vivo platelet activation and, theoretically, an enzymatic derivative of this compound, not subject to formation in whole blood, would more accurately reflect TXA2 formation in vivo. To address this hypothesis, we developed a sensitive assay for both 11-dehydro-TXB2 and TXB2, using capillary gas chromatography/negative-ion chemical ionization mass spectrometry. We established that whole blood possesses a minor capacity to form 11-dehydro-TXB2, attributable to nonenzymatic formation in erythrocytes. However, the nonenzymatic formation of 11-dehydro-TXB2 was not a practical limitation to its use as an index of TX biosynthesis. Blood was drawn from healthy volunteers (i) via an indwelling catheter at the time of insertion and at 30, 60, 90, 180, and 240 min thereafter and (ii) via separate venipunctures at 0 time and at 90 and 240 min thereafter. Plasma TXB2 drawn via the catheter at baseline (66 +/- 63 pg/ml) was substantially greater than the maximal estimate of endogenous TXB2 (1-2 pg/ml) in plasma [Patrono, C., Ciabattoni, G., Pugliese, F., Perruci, A., Blair, I. A. & FitzGerald, G. A. (1986) J. Clin. Invest. 77, 590-594] and increased in magnitude and variance over time (339 +/- 247 pg/ml at 240 min). By contrast, 11-dehydro-TXB2 did not change significantly in the sequential catheter samples or in the samples drawn by separate venipuncture. Basal plasma concentrations in volunteers were depressed by pretreatment with 325 mg of aspirin. Furthermore, the range of concentrations in patients with severe atherosclerosis in whom urinary 2,3-dinor-TXB2 was increased was significantly higher (5-50 pg/ml, P less than 0.01) than in healthy subjects (0.9-1.8 pg/ml). Concentrations of 11-dehydro-TXB2 were increased in patients who had recently suffered a pulmonary embolism to a greater extent than either the 11-dehydro-13,14-dihydro-15-keto-TXB2 or the 2,3-dinor-TXB2 metabolites in plasma. These results indicate that plasma TXB2 is readily confounded by platelet activation ex vivo. Measurement of enzymatic metabolites of TXB2 minimizes this problem. The 11-dehydro metabolite is the most appropriate analytic target to detect phasic release of TXA2 in the human circulation, such as might occur in human syndromes of platelet activation.

Aspirin↗

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↗

Coronary vascular occlusion mediated via thromboxane A2-prostaglandin endoperoxide receptor activation in vivo.

The use of enzyme inhibitors to clarify the role of thromboxane A2 in vasoocclusive disease has been complicated by their non-specific action. To address this problem we have examined the effects of thromboxane A2/prostaglandin endoperoxide receptor antagonism in a canine model of platelet-dependent coronary occlusion. Two structurally distinct thromboxane A2/prostaglandin endoperoxide receptor antagonists, 3-carboxyl-dibenzo (b, f) thiepin-5,5-dioxide (L636,499) and (IS-(1 alpha,2 beta(5Z),3 beta,4 alpha))-7-(3-((2-((phenylamino)-carbonyl)hydrazino)methyl)-7- oxabicy-clo(2.2.1)-hept-2-yl)-5-heptenoic acid (SQ 29,548), were studied to ensure that the effects seen in vivo were mediated by receptor antagonism and did not reflect a nonspecific drug effect. Both compounds specifically inhibited platelet aggregation induced by arachidonic acid and by the prostaglandin endoperoxide analogue, U46619, in vitro and ex vivo, and increased the time to thrombotic vascular occlusion in vivo. When an antagonist (L636,499) was administered at the time of occlusion in vehicle-treated dogs, coronary blood flow was restored. In vitro L636,499 and a third antagonist, 13-azaprostanoic acid, specifically reversed endoperoxide-induced platelet aggregation and vascular smooth muscle contraction. Neither compound altered cyclic AMP in platelet-rich plasma before or during disaggregation. Therefore, reversal of coronary occlusion may reflect disaggregation of platelets and/or relaxation of vascular smooth muscle at the site of thrombus formation through specific antagonism of the thromboxane A2/prostaglandin endoperoxide receptor. Thromboxane A2/prostaglandin endoperoxide receptor antagonists are compounds with therapeutic potential which represent a novel approach to defining the importance of thromboxane A2 and/or endoperoxide formation in vivo.

Animals↗

Estimated rate of thromboxane secretion into the circulation of normal humans.

We have measured the excretion of a major urinary metabolite of thromboxane B2 (TxB2), i.e., 2,3-dinor-TxB2, during the infusion of exogenous TxB2 over a 50-fold dose range to enable estimation of the rate entry of endogenous TxB2 into the bloodstream. Four healthy male volunteers received 6-h i.v. infusions of venhicle alone and TxB2 at 0.1, 1.0, and 5.0 ng/kg X min in random order. They were pretreated with aspirin at a dose of 325 mg/d in order to suppress endogenous TxB2 production. Urinary 2,3-dinor-TxB2 was measured before, during, and up to 24 h after the infusions and in aspirin-free periods, by means of radioimmunoassay. The nature of the extracted immunoreactivity was characterized by thin-layer chromatography and confirmed by negative ion-chemical ionization gas chromatography/mass spectrometry. Aspirin treatment suppressed urinary 2,3-dinor-TxB2 excretion by 80%. The fractional elimination of 2,3-dinor-TxB2 was independent of the rate of TxB2 infusion and averaged 5.3 +/- 0.8%. Interpolation of metabolite values obtained in aspirin-free periods onto the linear relationship between the quantities of infused TxB2 and the amount of metabolite excreted in excess of control values (y = 0.0066x, r = 0.975, P less than 0.001) permitted calculation of the mean rate of entry of endogenous TxB2 into the circulation as 0.11 ng/kg X min. The rate of disappearance of immunoreactive TxB2 from the circulation was monoexponential over the first 10 min with an apparent half-life of 7 min. This corresponded to a maximal estimate of the plasma concentration of endogenous TxB2 of 2.0 pg/ml. These results suggest that ex vivo platelet activation and/or analytical problems confound estimates of endogenous thromboxane release based on plasma TxB2 and provide a rationale for seeking longer-lived enzymatic metabolites of TxB2 in plasma.

Adult↗

Measurement of urinary 2,3-dinor-thromboxane B2 and thromboxane B2 using bonded-phase phenylboronic acid columns and capillary gas chromatography--negative-ion chemical ionization mass spectrometry.

The use of bonded-phase phenylboronic acid columns to selectively extract 2,3-dinor-thromboxane B2 and thromboxane B2 from urine is reported. The compounds were first derivatized as the methoxime and then applied to the phenylboronic acid columns. Subsequent purification by thin-layer chromatography and derivatization to the pentafluorobenzyl ester, trimethylsilyl ether followed by capillary gas chromatography-negative-ion chemical ionization mass spectrometry, monitoring specific ions, allows quantitation in the low-picogram/milliliter range. In healthy male volunteers, the median excretions of 2,3-dinor-thromboxane B2 and thromboxane B2 were 10.3 ng/h (range, 4.5-24 ng/h) and 2.8 ng/h (range, 0.5-7.3 ng/h), respectively. The method offers a noninvasive, specific approach to the study of thromboxane synthesis and platelet function in man. It is much less labor intensive than currently available methods employing electron-impact chromatography-mass spectrometry.

Boronic Acids↗

Preparation and analysis of deuterium-labeled aspirin: application to pharmacokinetic studies.

Inhibition of endogenous prostacyclin and thromboxane biosynthesis by aspirin is critically dose-dependent in humans. Gastrointestinal and hepatic hydrolysis may limit systemic availability of aspirin, especially in low doses, perhaps contributing to the biochemical selectivity of aspirin. Existing analytical methods do not permit determination of systemic bioavailability when low (less than 100 mg) doses of aspirin are administered. Deuterium-labeled aspirin (2-acetoxy[3,4,5,6-2H4]benzoic acid) was synthesized from salicylic acid by catalytic exchange and subsequent acetylation. Analysis of the compounds as benzyl esters by GC-MS followed extractive alkylation from plasma. Heptadeuterated compounds were used as internal standards. Simultaneous administration of tetradeuterated aspirin intravenously with native aspirin orally to anesthetized dogs permitted kinetic studies of both aspirin and salicylic acid. The sensitivity of the method is superior to published methods using HPLC and, thus, more applicable to studies of low dose aspirin. Pulse administration of stable isotope-labeled aspirin permits detailed and repeated studies of dose-related aspirin pharmacokinetics in humans.

Animals↗

Cyclooxygenase inhibition, platelet function, and metabolite formation during chronic sulfinpyrazone dosing.

The inhibitory effects of sulfinpyrazone are more marked ex vivo than in vitro, suggesting biotransformation to potentially active metabolites such as the sulfide and sulfone metabolites. As a platelet inhibitor, the sulfide metabolite is 10 times as potent as the parent and because of its long t1/2, the former may lead to cumulative inhibition of platelet function in vivo during chronic sulfinpyrazone dosing. In our study, healthy subjects received sulfinpyrazone, 200 mg four times a day, for 6 days. Plasma levels of the sulfide metabolite rose slightly from 2.1 +/- 0.8 micrograms/ml 12 hr after the fourth dose to 2.8 +/- 0.8 microgram/ml 12 hr after the twenty-fourth dose. This was associated with increasing inhibition of ex vivo platelet aggregation induced by platelet-activating factor during the dosing period, but inhibition of arachidonic acid-induced aggregation did not increase cumulatively during dosing and collagen-induced aggregation was not inhibited. Inhibition of platelet aggregation was no longer evident 24 hr after the final dose of sulfinpyrazone. The effects of sulfinpyrazone on cyclooxygenase activity were assessed by measurement of thromboxane B2 production by thrombin-stimulated platelets ex vivo and urinary excretion of the major prostacyclin metabolite 2,3-dinor-6-keto-PGF1 alpha. During sulfinpyrazone dosing, thromboxane formation and prostacyclin biosynthesis were correspondingly lowered 50% to 60%. The extent of this depression was of the same order on days 2 and 5 of dosing.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Endogenous biosynthesis of prostacyclin during cardiac catheterization and angiography in man.

The potent platelet inhibitory and vasodilator properties of prostacyclin suggest that levels of this substance may be of relevance to drug action and pathologic processes in the coronary vascular bed. Attempts to estimate the coronary secretion rate of prostacyclin have relied on measurements of metabolites obtained via cardiac catheter, usually as an adjunct to coronary angiography. To test the hypothesis that such procedures might themselves perturb endogenous biosynthesis of prostacyclin we used mass spectrometry to measure plasma levels of 6-keto-prostaglandin (PG) F1 alpha across the coronary vascular bed, as well as to assess the excretion of a major urinary metabolite, 2,3-dinor-6-keto-PGF1 alpha (PGI-M), in patients undergoing cardiac catheterization. PGI-M excretion increased variably from a median 100 to 205 pg/mg creatinine (p less than .01) during catheterization with angiography and remained elevated 2 to 4 hr after initiation of the procedure. However, cardiac catheterization without angiography also stimulated metabolite excretion, perhaps reflecting catheter-induced vascular trauma. The direct effect of radiocontrast media on vascular release of prostacyclin was indicated by increased PGI-M excretion in healthy volunteers administered intravenous radiocontrast and by studies of the canine coronary artery and jugular vein in vitro. Measurement of plasma 6-keto-PGF1 alpha after left heart catheterization showed that levels in aortic (21 +/- 8 pg/ml) and coronary sinus (14 +/- 2 pg/ml) blood were increased compared with peripheral venous levels (less than or equal to 4 + 1 pg/ml) determined before this procedure.(ABSTRACT TRUNCATED AT 250 WORDS)

6-Ketoprostaglandin F1 alpha↗

The biochemical pharmacology of thromboxane synthase inhibition in man.

Selective inhibitors of thromboxane synthase have two theoretical advantages over inhibitors of the cyclooxygenase enzyme as potential antithrombotic compounds. First, they do not prevent formation of prostacyclin, a platelet-inhibitory, vasodilator compound, coincident with inhibiting thromboxane biosynthesis. Second, the prostaglandin endoperoxide substrate that accumulates in the platelet in the presence of thromboxane synthase inhibition may be donated to endothelial prostacyclin synthase at the site of platelet-vascular interactions (endoperoxide "steal"). Selective inhibition of thromboxane biosynthesis coincident with enhanced prostacyclin formation in vivo has been observed after administration of these compounds to man. Despite these attractive features and the efficacy of these compounds in diverse short-term animal preparations of thrombosis, investigations of their efficacy in human disease have proven disappointing. This may reflect on the importance of thromboxane A2 in the diseases that have been investigated. Alternatively, the lack of drug efficacy may have resulted from either incomplete suppression of thromboxane biosynthesis and/or substitution for the biological effects of thromboxane A2 by prostaglandin endoperoxides during long-term dosing studies. Given that selective inhibition of thromboxane formation can be approached with aspirin, the particular value of these compounds is dependent on enhancing prostacyclin formation. Aspirin inhibits thromboxane-dependent platelet activation, but many platelet agonists are likely to act in concert in vivo and prostacyclin inhibits platelet aggregation induced by both thromboxane-dependent and thromboxane-independent mechanisms. To test the hypothesis that thromboxane synthase inhibitors are efficacious in human disease, compounds of longer duration of action are required. Combination with antagonists of the prostaglandin/thromboxane A2 receptor may be necessary to reveal their full beneficial action.

Clinical Trials as Topic↗

Prostacyclin biosynthesis and platelet function in autonomic dysfunction.

We measured urinary excretion of the principal metabolite of prostacyclin, PGI-M (2,3-dinor-6-keto-PGF1 alpha) in two patients with Shy-Drager syndrome and three with idiopathic orthostatic hypotension. All patients had a rise in blood pressure (30 +/- 6 mm Hg) after ingestion of 50 mg indomethacin. Urinary excretion of PGI-M was normal and fell 57 +/- 11% after administration of indomethacin. In two subjects, there was no evidence of any circulating inhibitor of platelet aggregation when hypotension was induced by upright posture or ingestion of a meal. Despite the efficacy of indomethacin, these patients with autonomic dysfunction did not show increased production of the vasodilator prostanoid prostacyclin.

6-Ketoprostaglandin F1 alpha↗

Dose-related kinetics of aspirin. Presystemic acetylation of platelet cyclooxygenase.

When aspirin is administered by mouth in low doses, poor systemic bioavailability may contribute to its apparent dose-related "selective inhibition" of thromboxane A2 formation. Systemic bioavailability of orally administered aspirin is necessary to inhibit prostacyclin synthesis by systemic vascular endothelium, whereas cumulative inhibition of thromboxane A2 formation by platelets may occur in the presystemic (portal) circulation. We simultaneously administered unlabeled aspirin orally and deuterium-labeled aspirin intravenously in five healthy volunteers. This permitted an estimation of the bioavailability of an oral dose from the ratio of plasma drug concentration-time curves for the labeled and the unlabeled species. Systemic bioavailability ranged from 46 to 51 per cent of single oral doses of 20, 40, 325, and 1300 mg of aspirin. Bioavailability was similar after single-dose and long-term oral administration of 325 mg. Thromboxane B2 formation in serum ex vivo after oral administration of 20 mg of unlabeled aspirin was reduced 39 per cent before aspirin was detected in the systemic circulation. Furthermore, incubation of simulated peak plasma aspirin concentrations in whole blood in vitro underestimated the inhibition of thromboxane B2 ex vivo after oral administration of 20 or 40 mg of unlabeled aspirin. These data are consistent with presystemic inhibition of platelets by aspirin and suggest that biochemical "selectivity" might be enhanced by slow administration of very low doses of aspirin, thereby optimizing conditions for cumulative, presystemic acetylation of platelet cyclooxygenase and inhibition of thromboxane formation.

Acetylation↗

Increased prostacyclin biosynthesis in patients with severe atherosclerosis and platelet activation.

Prostacyclin is a potent vasodilator and platelet inhibitor produced by vascular endothelium. Endogenous production of prostacyclin under physiologic conditions is extremely low, far below the capacity of vascular tissue to generate this substance in response to stimulation in vitro. This may reflect a low frequency or intensity of stimulation of prostacyclin production. We postulated that if prostacyclin does act as an endogenous platelet-inhibitory agent, it should be produced in greater amounts in a clinical setting in which platelet-vascular interactions are likely to be increased. To test this hypothesis, we examined prostacyclin biosynthesis in patients with severe atherosclerosis and evidence of platelet activation in vivo. Excretion of 2,3-dinor-6-keto-prostaglandin F1 alpha, a major urinary prostacyclin metabolite, was significantly higher in 9 patients with severe atherosclerosis and evidence of platelet activation (251 to 1859 pg per milligram of creatinine) than in 54 healthy volunteers (45 to 219 pg per milligram of creatinine; P less than 0.001). This difference represented an alteration in biosynthesis rather than in metabolism, since the fractional conversion of infused prostacyclin to the dinor metabolite was identical in both groups. Prostacyclin production may be low in healthy persons because there is almost no stimulus for its production but enhanced in patients with severe atherosclerosis as a consequence of platelet interactions with endothelium or other vascular insults. These observations are compatible with a role for prostacyclin as a local regulator of platelet-vascular interactions.

6-Ketoprostaglandin F1 alpha↗