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Biomedical subjects

O Vesterqvist

Publications and source records attributed to O Vesterqvist.

At least 37 records · Page 2Linked to original sources

Effect of the phospholipase A2 inhibitors quinacrine and 7,7-dimethyleicosadienoic acid in isolated globally ischemic rat hearts.

Phospholipase A2 (PLA2) activity results in the formation of lysophospholipids and free fatty acids which may contribute to ischemic myocardial dysfunction. We evaluated the cardioprotective activity of two putative PLA2 inhibitors, quinacrine and 7,7-dimethyleicosadienoic acid (DEDA), in isolated globally ischemic rat hearts. Pretreatment with 1, 5 and 50 microM quinacrine before ischemia did not alter coronary flow but did cause significant cardiodepression. Twenty five minutes of global ischemia and 30 min of reperfusion caused severe myocardial dysfunction and lactate dehydrogenase release. Quinacrine significantly improved reperfusion contractile function and reduced lactate dehydrogenase release, indicative of cardioprotection. In contrast, 30 to 100 microM DEDA produced neither preischemic cardiodepression nor cardioprotective activity. PLA2 inhibition was inferred from measurements of the prostacyclin metabolite, 6-keto-prostaglandin F1 alpha in the coronary effluent and myocardial palmitoyl-lysophosphatidylcholine. Quinacrine and DEDA reduced both 6-keto-prostaglandin F1 alpha and palmitoyl-lysophosphatidylcholine by similar degrees. These results suggest that the cardioprotective activity of quinacrine is independent of PLA2 inhibition. A possible role of calcium inhibition was investigated in rat aortic smooth muscle strips. Norepinephrine-, KCl- and BAY K8644-induced contractions were antagonized in the presence of 5 and 50 microM quinacrine, but were unaffected by 30 to 60 microM DEDA. The ability of quinacrine to inhibit calcium was investigated further in cardiac ventricular myocytes. Measurement of mean whole cell calcium currents showed that quinacrine (5 microM) could inhibit this current up to 70%. Thus, these results suggest that quinacrine-induced cardioprotection may not be due to PLA2 inhibition, but may be related to calcium entry blocking activity.

3-Pyridinecarboxylic acid, 1,4-dihydro-2,6-dimethy↗

Prostacyclin production in myocardial infarction in the acute phase and during follow-up.

Twenty-five patients with myocardial infarction were monitored in the acute phase and during follow-up with regard to the in vivo production of prostacyclin (PGI2) and thromboxane (TxA2), by measurement of their major urinary metabolites, 2,3-dinor-6-keto-PGF1 alpha and 2,3-dinor-TxB2, respectively. In 22 of these patients PGI2 and TxA2 production were also assessed before, during and after an exercise test performed 6 weeks after discharge. In approximately 24% of patients the in vivo production of prostacyclin did not increase during the acute phase of the infarction process. This inability was usually associated with a decrease in the release of heart muscle enzymes, and was mostly frequently observed in women. During the exercise tolerance test, none of the patients showed any increase in prostacyclin production, in contrast to healthy volunteers, in whom a significant increase was seen. There were no differences between patients with and without an increase in prostacyclin production during the acute phase. At the follow-up 2 years after the myocardial infarction, eight cardiac events had occurred, all of which were noted among patients who exhibited an expected increase in prostacyclin production in association with the infarction. This would seem reasonable, since most of the patients in this group had larger primary infarctions.

6-Ketoprostaglandin F1 alpha↗

Effects of non-steroidal anti-inflammatory drugs on the in vivo synthesis of thromboxane and prostacyclin in humans.

Most NSAIDs seem to have inhibitory effects on the in vivo synthesis of both TxA2 and PGI2. However there are large differences in the duration of the inhibitory effects as shown in the table below. Aspirin, indomethacin, naproxen and piroxicam inhibit the second wave of platelet aggregation. This effect on platelet aggregation persists as long as each drug causes inhibition of TxA2 synthesis. Thus, inhibition of TxA2 synthesis is likely to be the reason for the effect of NSAIDs on platelet function. The lack of effect of paracetamol on TxA2 synthesis together with the lack of effect on platelet aggregation by paracetamol are in further support of this. [table: see text]

Acetaminophen↗

Thromboxane synthase inhibition: "endoperoxide shunt phenomenon" does not occur in healthy humans in vivo.

The effects of the thromboxane synthase inhibitor CGS13080 on the in vivo synthesis of thromboxane and prostacyclin were determined in six healthy volunteers. Two different doses (0.08 and 0.25 mg/kg x h) were infused for six hours under strictly controlled conditions and 2,3-dinor-TxB2 and 2,3-dinor-6-keto-PGF1 alpha were measured in urine using gaschromatography--mass spectrometry. The in vivo synthesis of thromboxane was inhibited by 80-75% while there was no effect on the in vivo prostacyclin synthesis.

6-Ketoprostaglandin F1 alpha↗

Experimental atherosclerosis: effects of oestrogen and atherosclerosis on thromboxane and prostacyclin formation.

We evaluated the effect of oestrogen and experimental atherosclerosis on the in vivo formation of thromboxane and prostacyclin in rabbits. Twenty-four New Zealand White rabbits were divided into four groups. One group received control diet, one group received control diet and oestrogen, one group received control diet supplemented with 1% cholesterol and one group received cholesterol supplemented diet and oestrogen during 3 months. The in vivo formation of thromboxane and prostacyclin were measured as 2,3-dinor-TxB2 and 2,3-dinor-6-keto-PGF1 alpha in urine by gas chromatography/mass spectrometry. All rabbits on cholesterol diet became hypercholesterolaemic and developed atherosclerosis. As in previous experiments cholesterol and oestrogen-treated rabbits had only minor atherosclerosis compared to purely cholesterol-fed rabbits. The in vivo production of thromboxane in oestrogen-treated rabbits decreased from 1641 +/- 162 pg mg-1 creatinine pretreatment to 808 +/- 92 pg mg-1 creatine at 12 weeks (P = 0.0001). In contrast, the in vivo production of prostacyclin increased during oestrogen treatment (P = 0.0027). The in vivo production of prostacyclin decreased during pure cholesterol feeding without oestrogen 1384 +/- 219 pg mg-1 creatinine to 702 +/- 142 pg mg-1 creatinine (P = 0.0091). The ratio of in vivo prostacyclin to thromboxane formation increased 2-3-fold during oestrogen therapy (P = 0.0007).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Increased thromboxane formation in patients with antiphospholipid syndrome.

Thirty-one patients with IgG antibodies to cardiolipin (ACLA) were studied to determine their in vivo formation of the platelet aggregating and vasoconstricting substance thromboxane A2 (TxA2) and the platelet inhibiting and vasodilating substance prostacyclin (PGI2). This was done by measurements in urine of their enzymatically formed metabolites 2,3-dinor-TxB2 and 2,3-dinor-6-keto-PGF1 alpha, respectively, using gas chromatography-mass spectrometry. It is demonstrated that patients with IgG ACLA have a highly significant increase in the biosynthesis of TxA2 compared with age-matched healthy controls (807 +/- 163 [SEM] vs. 230 +/- 15 pg mg-1 creatinine, P = 0.0000005). A significant increment of the formation of PGI2 was also found (189 +/- 23 (SEM) vs. 125 +/- 11 pg mg-1 creatinine, P = 0.03), although this was much less pronounced than that for TxA2. We conclude that the highly increased formation of TxA2, reflecting platelet activation, in patients with IgG ACLA is of pathophysiologic relevance for their tendency to arterial and venous thrombosis and hence that they should be considered for prophylactic treatment with inhibitors of TxA2 formation, like aspirin.

Adult↗

Effects of naproxen on the in vivo synthesis of thromboxane and prostacyclin in man.

The effect of a single oral dose of 500 mg naproxen on the synthesis in vivo of thromboxane A2 and prostacyclin was studied in healthy volunteers. The synthesis of the prostanoids was assessed by measuring the urinary excretion of the metabolites 2,3-dinor-TxB2 and 2,3-dinor-6-keto-PGF1 alpha, respectively, using stable isotope dilution assays based on gas chromatography - mass spectrometry. Naproxen caused significant inhibition of the excretion of both metabolites for about two days. The reduction of the thromboxane metabolite was more pronounced (75% inhibition) than that of the prostacyclin metabolite (about 50% inhibition). The data support the idea that naproxen causes reversible inhibition of cyclooxygenase.

6-Ketoprostaglandin F1 alpha↗

Effects of oestrogen therapy and orchidectomy on coagulation and prostanoid synthesis in patients with prostatic cancer.

Twenty patients with prostatic carcinoma were randomized to therapy with either oestrogens (n = 10) or orchidectomy (n = 10). Activators and inhibitors of coagulation were studied before treatment, 1.5 months and 6 months after the start of treatment. We found that the patients in the oestrogen group had already increased their factor VII level after 1.5 months (P less than 0.001) and this increased level persisted after 6 months. Factor X tended to increase after 1.5 months and this increase reached significance after 6 months (P less than 0.01). In the orchidectomy groups there was a significant increase in factor X at 6 months (P less than 0.01) and, in addition, antithrombin III (AT III) was increased at this time. Furthermore, there was a parallelism between the increase in factor VII and electrocardiographic evidence of increased coronary insufficiency (r = 0.60; P less than 0.025; n = 15). We found a significant increase of thromboxane as evidenced by the major urinary metabolite 2,3-dinorthromboxane B2 in the oestrogen group as compared to the orchidectomy group. In summary, patients with prostatic cancer during long-term oestrogen treatment were found to have increased levels of factor VII, factor VIII:C and fibrinogen. In addition these patients showed increased formation of thromboxane. The changes imply a hypercoaguable state and platelet activation. No such signs were found after orchidectomy. The findings in the oestrogen group might explain the continuously increased risk of cardiovascular complications during long-term oestrogen therapy.

Aged↗

Pronounced reduction of in vivo prostacyclin synthesis in humans by acetaminophen (paracetamol).

The effect of a single dose of 500 mg acetaminophen (paracetamol) on the in vivo synthesis of prostacyclin was studied in healthy volunteers by measurements of the urinary excretion of 2,3-dinor-6-keto-PGF1 alpha. Acetaminophen caused a marked reduction of prostacyclin synthesis for 6-8 hours without any obvious effect on the thromboxane synthesis. Thus, acetaminophen may at least theoretically be disadvantageous for patients suffering from diseases where prostacyclin mediated vascular defence mechanisms are activated, like myocardial infarction, deep vein thrombosis and following surgery.

6-Ketoprostaglandin F1 alpha↗

An increase in the ratio of thromboxane A2 to prostacyclin in association with increased blood pressure in patients on cyclosporine A.

The aim of this study was to determine the effect of two years of treatment with cyclosporine A on blood pressure and the rates of secretion into the circulation of the vasoconstrictor thromboxane A2 and the vasodilator prostacyclin. Seven patient suffering from multiple sclerosis took part. Their blood pressures and urinary concentrations of 2,3-dinor-thromboxane A2 (a major urinary metabolite of thromboxane A2) and of 2,3-dinor-6-keto-prostaglandin F1 alpha (the major urinary metabolite of prostacyclin) were determined at the end of two years of treatment with cyclosporine A, and once again three months after cessation of this treatment. No other drugs were given during or after cyclosporine A. Mean arterial blood pressure was 113 +/- 5 mmHg (mean +/- SEM) during the cyclosporine A treatment, but fell to 94 +/- 4 mmHg after the three-month's wash-out period. Urinary excretion of the thromboxane metabolite decreased slightly from 674 +/- 150 pg.mg-1 creatinine during cyclosporine A therapy to 503 +/- 90 pg.mg-1-creatinine after the end of therapy. At the same time the prostacyclin metabolite increased significantly from 82 +/- 17 pg.mg-1 creatinine to 113 +/- 23 pg.mg-1 creatinine (P less than 0.05). The ratio of 2,3-dinor-thromboxane B2 to 2,3-dinor-6-keto-prostaglandin F1 alpha (taken as a measure of vasoconstrictor prostanoid activity) fell significantly from 8.4 +/- 0.8 4.7 +/- 0.6 (P less than 0.005). The shift in prostanoid production observed during cyclosporine A treatment could be one causal factor for the hypertensive and thromboembolic events associated with the use of this drug.

6-Ketoprostaglandin F1 alpha↗

In vivo biosynthesis of thromboxane and prostacyclin during exposure to physiological levels of epinephrine.

The effects of 20-min epinephrine infusion (0.025 and 0.3 nmol/kg/min) on the in vivo synthesis of thromboxane A2 and prostacyclin were studied in ten healthy male volunteers. We assessed the in vivo biosynthesis of thromboxane A2 and prostacyclin by measurement of the urinary metabolites 2,3-dinor-TxB2 and 2,3-dinor-6-keto-PGF1 alpha, respectively. Epinephrine infusion did not cause any significant changes in the urinary excretion of the two metabolites. Thus, we conclude that physiological levels of epinephrine do not affect the in vivo biosynthesis of thromboxane A2 and prostacyclin.

Adult↗

Effect of acetyl salicylic acid on increased production of thromboxane after aortic graft surgery.

Contact between blood and foreign surfaces, e.g. vascular grafts, causes activation and release of platelets. One consequence of platelet activation is production of thromboxane A2 (TxA2). The physiological effects of TxA2, i.e. platelet aggregation and vaso-constriction are counteracted by another prostanoid, prostacyclin (PGI2). Acetylsalicylic acid (ASA) causes a longlasting inhibition of platelet TxA2 production and a more shortlasting inhibition of PGI2 production. The present study examines TxA2 and PGI2 synthesis in patients receiving synthetic arterial grafts, some of which were treated with ASA. The prostanoid synthesis was evaluated by measurement of their main urinary metabolites with gas chromatography-mass spectrometry. Platelet release was evaluated by measurements of beta-thromboglobulin (beta-TG) and the plasma coagulation by measurements of fibrinopeptide A (FPA). These compounds were also measured in urine in order to avoid artifacts caused by activation of platelets and plasma coagulation during blood sampling. Following replacement of the abdominal aorta with a synthetic vascular graft there was a marked increase in the synthesis of TxA2 and PGI2. Increased levels of beta-TG and FPA were also demonstrated. Administration of ASA on the first and second postoperative days significantly reduced the synthesis of TxA2 but caused no significant effects on the other parameters measured. It is concluded that ASA may be beneficial in the postoperative period since it counteracts TxA2 with vasoconstricting and platelet aggregating properties but leaves PGI2 with vasodilating and antiaggregating properties relatively uneffected.

Aged↗

Drug interactions with the in vivo synthesis of thromboxane and prostacyclin.

The biosynthesis and metabolic degradation of thromboxane and prostacyclin are briefly described with particular emphasis on the peculiarities of the enzymes involved. This is of great importance for the understanding of this system and for proper interpretation of experimental data. The requirements for adequate methodology in studies designed to assess the in vivo synthesis of those prostanoids are discussed. The characteristics of the thromboxane-prostacyclin system in normals are presented in detail with particular emphasis on those facets of importance for interpretation of literature data, like the diurnal variation, the large interindividual variation etc. The present status of knowledge about the involvement of this system in various cardiovascular diseases as well as the interaction of drugs of various types with the in vivo synthesis of those prostanoids is reviewed in detail.

Anti-Inflammatory Agents, Non-Steroidal↗