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G A Fitzgerald

Publications and source records attributed to G A Fitzgerald.

At least 55 records · Page 3Linked to original sources

Eicosanoid biosynthesis in human cardiovascular disease.

Thromboxane A2, the predominant cyclooxygenase product in platelets, is a potent platelet agonist and vasoconstrictor in vitro. Prostacyclin, the major product of vascular endothelium, has opposite effects on platelet function and vascular tone. These properties prompted the hypothesis that a "balance" between these compounds regulated interactions between platelets and the vessel wall in vivo. Although this possibility has been addressed extensively through experiments in vitro, clinical investigations commonly have been confounded by problems with analytic methodology, by selection of inappropriate metabolic targets for analysis, and by artifacts of trial design. The most reliable forms of assessing biosynthesis that are currently available still do not provide definitive information as to the tissue of origin of the compound studied and are directed toward stable but biologically inactive metabolites rather than the evanescent primary compounds themselves. Despite these limitations, both biochemical evidence and clinical trials clearly implicate thromboxane A2 as an important mediator of vascular occlusive disease in humans. The role of prostacyclin is much more conjectural. It does not circulate in concentrations sufficient to exert a systemic effect, but it may play a local homeostatic role in the regulation of platelet-vascular interactions. Whether preservation of the capacity to form prostacyclin coincident with inhibition of thromboxane A2 is of functional importance can be addressed only by clinical trials comparing inhibitors of thromboxane synthesis inhibition that are selective with cyclooxygenase inhibitors that also block the biosynthesis of prostacyclin. The recognition that multiple factors have the potential to regulate both platelet and vascular function at their interface renders the concept of a thromboxane A2-prostacyclin "balance" somewhat unlikely. However, both eicosanoids may interact with other factors to determine the development or persistence of vascular occlusion. Inhibition of the synthesis or function of thromboxane A2 remains the predominant mechanism for achieving interference with platelet function in vivo. Accumulating evidence for the efficacy of aspirin in human syndromes of vascular occlusion suggests that the biologic role of these compounds in humans should be pursued.

Cardiovascular Diseases↗

Vascular effects of infused adenosine are not mediated by prostacyclin release in humans.

Adenosine may contribute to the regulation of tissue blood flow directly and via release of vasoactive substances. For example, in the isolated, perfused heart, the nucleoside has been reported to release prostacyclin, a potent vasodilator. In humans, minor variations in prostacyclin release into the circulation result in readily detectable changes in the urinary excretion of its metabolite, 2,3-dinor-6-ketoprostaglandin (PG) F1 alpha, as measured by negative ion-chemical ionization gas chromatography-mass spectrometry. To test the hypothesis that prostacyclin participates in or mediates the vascular effects of adenosine, we administered adenosine (5.1 mg/min) or vehicle to healthy volunteers in random order as a 2-h infusion into the femoral artery under double-blind conditions. The plasma levels of adenosine, inosine, and hypoxanthine increased significantly during infusion of active drug, but the urinary excretion of adenosine and uric acid were unchanged, implying efficient tissue uptake of the infused nucleoside. Adenosine, but not vehicle, significantly (P less than 0.01) increased leg blood flow (from 2.7 +/- 0.3 to 8.7 +/- 2.5 ml X 100 ml tissue-1 X min-1), heart rate (from 66 +/- 3 to 80 +/- 4 beats/min), and urinary epinephrine excretion (from 2.8 +/- 0.4 to 5.4 +/- 0.8 ng/mg creatinine). In contrast, the excretion of 2,3-dinor-6-keto-PGF1 alpha was unaltered by infusion of adenosine. We confirmed that biologically significant alterations in prostacyclin release in the lower limb vascular bed would be reflected by the urinary metabolite in experiments involving local infusion of prostacyclin at a rate below the threshold necessary to alter limb blood flow.(ABSTRACT TRUNCATED AT 250 WORDS)

6-Ketoprostaglandin F1 alpha↗

Measurement of renal and non-renal eicosanoid synthesis.

Enzymatic metabolites of arachidonic acid (eicosanoids) have potent biologic actions in vitro that suggest their pathophysiologic importance in vivo. To address this possibility, analytic methodology has been developed to permit study of the formation of these compounds in vivo. Both radioimmunoassay and gas chromatography-mass spectrometry have been used to measure stable but biologically inactive metabolites of the eicosanoids. Although indirect, such measures are presently the most reliable, because superfusion-bioassay lacks the specificity and precision necessary for quantitative analysis of eicosanoid formation in vivo. Measurement of eicosanoids and their hydration products and metabolites in urine represents a non-invasive approach to the assessment of eicosanoid biosynthesis. Although a tissue of origin cannot be ascribed definitely to a compound measured in urine, corroborative evidence can be obtained to indicate the predominant tissue source under physiologic and pathologic conditions. This relates particularly to the distinction between renal and extrarenal biosynthesis of these compounds. Although similar limitations apply to the measurement of eicosanoids in plasma, these may also be confounded by sources of artifact related to blood withdrawal. In the case of thromboxane B2, these concerns have been addressed by the development of methods to measure its enzymatic metabolites in plasma. Finally, formation of eicosanoids may be studied in localized compartments such as lavage or synovial fluid. Such an approach has recently provided biochemical evidence for increased formation of prostacyclin and prostaglandin E2 at the platelet-vascular interface during selective inhibition of thromboxane synthase in humans.

Arachidonic Acid↗

Long-lived enzymatic metabolites of thromboxane B2 in the human circulation.

Thromboxane A2, a potent vasoconstrictor and platelet agonist, is an evanescent cyclooxygenase product of arachidonic acid. Assessment of thromboxane biosynthesis commonly relies upon analysis of the stable but biologically inactive hydration product, thromboxane B2. However, measurement of this compound in plasma is readily confounded by platelet activation ex vivo. We have identified 11-dehydro-thromboxane B2, 11-dehydro-13,14-dihydro-15-keto-thromboxane B2, and 2,3-dinor-thromboxane B2 as enzymatic products of infused thromboxane B2 in the human circulation. Biosynthesis of deuterated standards permitted the development of quantitative analyses for these compounds, employing capillary gas chromatography-negative ion chemical ionization-mass spectrometry. We thus established that the postinfusion half-lives of 11-dehydro-thromboxane B2 and the keto-dihydro metabolite approximated 1 hour, while that of the dinor metabolite ranged from 15 to 17 min. Combined analysis of short- and long-lived enzymatic metabolites of thromboxane B2 promises to bypass the problem of ex vivo platelet activation and enhance the likelihood of relating a discreet clinical event to an alteration in the biosynthesis of thromboxane A2 in the human circulation.

Adult↗

Biosynthesis of thromboxane in patients with systemic sclerosis and Raynaud's phenomenon.

Thromboxane A2, the predominant cyclo-oxygenase product of arachidonic acid in platelets, is a potent vasoconstrictor and platelet agonist. Analysis of urinary metabolites by gas chromatography and mass spectrometry is a specific non-invasive method of measuring the biosynthesis of thromboxane that avoids the problem of platelet activation ex vivo. Excretion of the major urinary thromboxane metabolite, 2,3-dinor-thromboxane B2, was significantly increased (p less than 0.001) in 10 patients (nine women) with systemic sclerosis complicated by Raynaud's phenomenon compared with healthy controls (486 (SD 88) v 162 (38) ng/g creatinine) and increased further in the patients (to 1007 (212) ng/g creatinine) during application of a cold stimulus sufficient to induce digital vasoconstriction. Consistent with an increase in platelet-vascular interactions in vivo, excretion of a prostacyclin metabolite was also significantly increased (p less than 0.005) in the patients with systemic sclerosis (248 (39) v 112 (10) ng/g creatinine) and tended to increase further on cooling. Biosynthesis of thromboxane is increased in patients with systemic sclerosis and may exacerbate digital vasospasm that such patients develop when cold. This observation and the concomitant increase in the formation of prostacyclin provide a rationale for evaluating compounds that prevent the synthesis of thromboxane A2 or inhibit its action while preserving the potential homoeostatic role of prostacyclin.

6-Ketoprostaglandin F1 alpha↗

Hypertensive crisis in prazosin-treated pheochromocytoma.

The selective alpha1-adrenergic antagonist prazosin has recently been recommended for the preoperative management of pheochromocytoma, but we have observed a hypertensive crisis in a patient with such a tumor, despite prazosin therapy. Her blood pressure was easily controlled with small doses of phenoxybenzamine, suggesting that less selective alpha-adrenergic blockade might be advantageous in this situation. The involvement of alpha 2-adrenoreceptors in pressor responses and a lack of evidence for presynaptic alpha 2 control of peripheral sympathetic tone in man suggest that selective alpha 1-blockade is not the optimal treatment of hypertension due to high levels of circulating catecholamines.

Adrenal Gland Neoplasms↗

Endogenous prostacyclin synthesis is decreased during activation of the renin-angiotensin system in man.

Prostacyclin has been implicated as a mediator of renin release, whereas angiotensin II evokes prostaglandin I2 (PGI2) release from both vascular and nonvascular tissues in vitro. The physiological significance of these observations was assessed by measurement of an index of endogenous prostacyclin biosynthesis in human volunteers during varied activation of the renin-angiotensin system secondary to manipulation of dietary sodium. Excretion of the major urinary metabolite of prostacyclin in man, 2,3-dinor-6-keto-PGF1 alpha (PGI-M), fell from 295 +/- 51 to 176 +/- 35 (+/- SEM) ng g creatinine-1 (P less than 0.01) in 10 normal subjects when sodium intake was decreased from 150 to 10 meq/day. In five patients with primary hyperaldosteronism, PGI-M fell from 199 +/- 34 ng g creatinine-1 preoperatively to 120 +/- 26 pg/mg creatinine-1 after removal of the adenoma. In such patients, the reduction in PGI-M was associated with a significant increase in PRA. Thus, in both normal subjects and patients with hyperaldosteronism, PGI-M excretion fell rather than increased with activation of the renin-angiotensin system. This suggests that systemic biosynthesis of PGI2 is unrelated to renin release and that angiotensin II is unlikely to stimulate endogenous prostacyclin biosynthesis under these conditions in man.

Adenoma↗

Circadian variation in adrenergic responses in asthmatic subjects.

1. To determine whether circadian variations in adrenergic responsiveness might underlie nocturnal wheezing in asthma, we measured cardiovascular, airway and plasma adenosine 3':5'-cyclic monophosphate (cyclic AMP) responses to stepwise infusions of L-adrenaline (0.01, 0.03 and 0.075 microgram min-1 kg-1) at 4 h intervals over 24 h in five extrinsic asthmatic men. 2. Peak expiratory flow, blood pressure, heart rate and plasma cyclic AMP showed a significant circadian variation with peak values at 16.00 hours and trough values at 04.00 hours. 3. The beta 2-adrenoceptor-mediated increases in peak flow and cyclic AMP were similar at all times, but adrenergic responsiveness (measured by response/log dose of infused adrenaline) was greater at 04.00 hours than at 16.00 hours because of the lower baseline values at night. 4. Blood pressure and heart rate responses to adrenaline infusions did not significantly differ over 24 h. 5. Airway responses to inhaled adrenaline were studied on the second day; the mean peak flow after adrenaline was similar at 16.00 hours to that at 04.00 hours and since the pretreatment values were lower at 04.00 hours, the magnitude of response to inhaled adrenaline was greater at night. 6. We conclude that there is no significant circadian change in adrenergic responses in asthma and that adrenoreceptor dysfunction is not important in the pathogenesis of nocturnal asthma.

Adult↗

Assessment of the extent to exogenous prostaglandin I2 is converted to 6-keto-prostaglandin E1 in human subjects.

6-Keto-prostaglandin (PG) E1 has been suggested as a possible active metabolite of PGI2. The objective of this study was to evaluate whether 6-keto-PGE1 might mediate the biological responses of exogenous PGI2 in man. Toward this end, a novel gas chromatographic-mass spectrometric assay for 6-keto-PGE1, was developed. Selective ion monitor traces from human plasma detected levels that were at the lower limit of sensitivity for this assay and positive mass spectral identification was not possible. An infusion of PGI2 (8 ng/kg/min) which caused systemic hemodynamic changes did not alter plasma levels of 6-keto-PGE1. We conclude that exogenous PGI2 is not converted to an appreciable extent to 6-keto-PGE1 in man and, therefore, 6-keto-PGE1 biosynthesis is unlikely to be responsible for the biological effects of infused PGI2.

Adult↗

Prostaglandins.

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Humans↗

Intravenous prostacyclin in thrombotic thrombocytopenic purpura.

A therapeutic trial of prostacyclin (PGI), was done in a patient with thrombotic thrombocytopenic purpura resistant to treatment with antiplatelet drugs and plasmapheresis. Despite marked thrombocytopenia and continued treatment with aspirin, sulfinpyrazone, and dipyridamole, the urinary excretion of 2,3-dinor-thromboxane B2, a major thromboxane urinary metabolite, was within the normal range (90.3 to 368 pg/mg creatinine) at 96 pg/mg creatinine. Because of its potent antiaggregatory properties and the possibility of a defect in endogenous PGI2 production in thrombotic thrombocytopenic purpura, synthetic PGI2 (4 to 10 ng/kg-1 . min-1) was infused intravenously, first for 72 hours and then continuously for 18 days. Prostacyclin markedly reduced the excretion of 2,3-dinor-thromboxane B2, and the platelet count rose steadily to reach 100 000/mm3 by the eighth day of the second infusion. The patient remains in clinical remission, on no therapy, 7 months later. A controlled evaluation of PGI2 in thrombotic thrombocytopenic purpura is warranted. Apparent therapeutic failure in previous cases may have resulted from inadequate prolongation of PGI2 infusion.

Adult↗

Erythrocytes catechol-O-methyltransferase activity and indices of sympathetic activity in man.

1. Erythrocyte catechol-O-methyltransferase was studied in a population sample of 147 subjects. 2. There was a wide interindividual variability of catechol-O-methyltransferase activity, which was not unimodally distributed. Catechol-O-methyltransferase activity was not influenced by blood pressure, age or sex, nor was it related to plasma noradrenaline or urinary catecholamines or metanephrines. 3. It is not likely that inactivation of noradrenaline by O-methylation at least by erythrocytes is an important mechanism determining plasma noradrenaline, let alone arterial pressure.

Adolescent↗

Circulating adrenaline and blood pressure: the metabolic effects and kinetics of infused adrenaline in man.

Six normotensive volunteers were infused with L-adrenaline at 0.01, 0.03, 0.05, 0.075 and 0.10 microgram/kg-1 min-1, each increment lasted 10 min. Plasma adrenaline rose from 0.27 to 4.61 nmol/l, and there were dose-related increases in plasma renin activity, blood glucose, plasma cyclic AMP and plasma free fatty acids, but not in plasma noradrenaline and cyclic GMP. Levels of circulating adrenaline previously noted in essential hypertensives had minimal cardiovascular effects. The secretion rate of adrenaline and its rate of clearance from the circulation were calculated from plasma samples taken during an hour-long infusion (0.083 +/- 0.006 microgram kg-1 min-1) of L-adrenaline in the same individuals. The secretion rate ranged from 1.40 to 6.01 nmol/min with a mean (+/- SEM, 6) of 2.82 +/- 0.76 nmol/min. Mean clearance (+/- SEM, 6) was 9.41 +/- 1.37 l/min and ranged from 4.86 to 14.61 l/min. The decline of plasma adrenaline following the infusion was biexponential. Plasma adrenaline is unlikely to be of primary importance in the elevation of blood pressure, either directly, via renin release or by noradrenaline release via presynaptic beta receptors. However, variation in clearance between subjects limits the use of plasma levels as an interindividual index of adrenal release of adrenaline. The relationship between sympathoadrenal activity and plasma adrenaline may be further perturbed by equilibration between the circulation and sites of tissue uptake. The lower levels of plasma adrenaline than of noradrenaline appear to result from both a slower rate of secretion and a higher rate of clearance from the circulation.

Adult↗