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Biomedical subjects

E Seppälä

Publications and source records attributed to E Seppälä.

At least 19 recordsLinked to original sources

Pharmacokinetics of chlorambucil in patients with chronic lymphocytic leukaemia: comparison of different days, cycles and doses.

The effects of repeated treatment cycles and different doses on intraindividual variation in oral bioavailability of chlorambucil and its first, active, and more toxic metabolite, phenylacetic acid mustard, were studied. Chlorambucil and phenylacetic acid mustard concentrations were measured with HPLC on Day 1 and on Day 4 in 15 timed blood samples from 11 chronic lymphocytic leukaemia patients receiving chlorambucil therapy cycles. Bioavailability was evaluated also after the first chlorambucil doses of six consecutive treatment cycles repeated every 4 weeks with increasing chlorambucil doses starting with 0.8 mg/kg/4 days, and increased by 0.1 mg/kg/4 days cycle. Area under the concentration-time-curve (AUC) from t=0 to infinite was in average 3.2 hr* microg/ml for the first cycle, and decreased by 17% in four days (P<0.05). The mean distribution half-life of chlorambucil was 0.49 hr and the terminal elimination half-life 2.45 hr. The bioavailability of chlorambucil decreased further when 4-day treatment cycles were repeated. For the fifth cycle, dose-corrected AUC for the first 2 hr was 33% smaller than that for the first cycle (P for trend <0.01). Data suggest accelerated metabolism and elimination of chlorambucil and phenylacetic acid mustard, but reduced oral bioavailability of chlorambucil cannot be excluded. However, except for AUC, none of the pharmacokinetic parameters of chlorambucil changed significantly during the first 4-day treatment period. The maximal plasma concentration and AUC of phenylacetic acid mustard did not change significantly during repeated treatment cycles. According to this trial a dose adjustment of chlorambucil is not necessary during a short-term course, but may be necessary when treatment cycles are repeated. An average increase in the chlorambucil dose of 10% per cycle maintains similar plasma concentration of chlorambucil.

Administration, Oral↗

Amrinone, a phosphodiesterase III inhibitor, and arachidonic acid metabolism in humans.

Amrinone-a phosphodiesterase III inhibitor-is used in the treatment of acute heart failure. In addition to its hemodynamic effects, amrinone has been shown to inhibit thromboxane synthesis in vitro. We investigated the effects of amrinone on thromboxane, prostaglandin, and leukotriene synthesis in humans. Eight healthy male volunteers took part in this single-blind study in which either amrinone (a 1.5-mg/kg bolus in 30 min and after that 10 microg/kg/min for 1 h 30 min) or placebo (0.9% NaCl) were infused. Amrinone infusion increased systolic blood pressure but had no significant effect on diastolic blood pressure or heart rate. Amrinone did not modulate thromboxane B2 synthesis stimulated by either spontaneous clotting or calcium-ionophore A23187 in whole blood. Amrinone had no effects on prostaglandin E2 or leukotriene E4 production in A23187-stimulated whole blood, nor did it affect urinary excretion of 11-dehydrothromboxane B2 or 2,3-dinor-6-keto-prostaglandin F1alpha, the index metabolites of thromboxane A2 and prostacyclin productions, respectively. We conclude that amrinone has no effects on eicosanoid production in humans at the dose level used in this study, and that the hemodynamic effects noticed are not mediated via cyclooxygenase or lipoxygenase products of arachidonic acid metabolism.

Adult↗

Kinetics of chlorambucil in vitro: effects of fluid matrix, human gastric juice, plasma proteins and red cells.

The mechanisms involved in the bioavailability of chlorambucil or 4-[p-(bis[2-hydroxyethyl]amino)phenyl]-butyric acid are poorly understood. The effects of different matrices on the disintegration of chlorambucil were investigated by HPLC, 1H NMR, 31P NMR, and mass spectrometry. Cellular incorporation and protein binding of the drug in vitro was assessed with [3H]-chlorambucil. Decomposition of chlorambucil and its major metabolite, phenylacetic acid mustard, to mono- and dihydroxy derivatives, was significantly faster in water than in PBS, (phosphate-buffered saline, pH 7.4). The hydrolysis of chlorambucil was as fast in plasma ultrafiltrate as in PBS; plasma proteins, preferentially albumin, prevented this disintegration. In phosphate-buffered media, two additional stabile hydrolysis products were found which were characterised as the mono- and bis-phosphates of 4-[p-(bis[2-hydroxyethyl]amino)phenyl]butyric acid, results of the reaction of nucleophilic buffer species with the aziridinium ion intermediates. Chlorambucil bound covalently to plasma proteins and was incorporated into red cells. These interactions are likely to have a significant role in vivo, reducing the bioavailability of the drug. High H+ concentration associated with high chloride concentration in human gastric juice had a stabilizing effect on chlorambucil. Incorporation of [3H]-chlorambucil into red cells was inhibited in a concentration-dependent fashion by whole human plasma as well as by albumin. We conclude that the chemico-biological interactions demonstrated in the present investigation provide explanations for the remarkable pharmacokinetic differences observed intra- and inter-individually in the clinical use of chlorambucil. The present information is important, when clinical or in vitro evaluation of efficacy and bioavailability of chlorambucil is considered.

Blood Proteins↗

Theophylline infusion modulates prostaglandin and leukotriene production in man.

Although theophylline has been used in the treatment of asthma for decades, it is not a first line choice any more. It is a well-known bronchodilator, but was recently discovered also to be an anti-inflammatory, immunomodulatory and bronchoprotective agent. Therefore we wanted to establish the role of theophylline on prostaglandin and leukotriene production, which plays a part in the pathogenesis of asthma. Theophylline was infused (bolus 5 mg/kg in 15 min and infusion 0.4 mg/kg/h for 1 h 45 min) into healthy volunteers. Thromboxane B2, prostaglandin E2 and leukotriene E4 were measured from the A23187-stimulated whole blood samples and stable metabolites of thromboxane A2; prostacyclin and leukotriene E4 were measured from urine. Theophylline increased prostaglandin E2 production and decreased leukotriene E4 production ex vivo in whole blood, thus increasing the prostanoid/leukotriene ratio. It did not change thromboxane B2 production stimulated by either spontaneous clotting or A23187 in the whole blood. Theophylline had hardly any effect on in vivo thromboxane, prostacyclin and leukotriene E4 production measured as urinary metabolites, 11-dehydro-thromboxane B2, 2,3-dinor-6-keto-prostaglandin F1alpha and leukotriene E4, respectively. Serum theophylline concentrations were at the lower level of normal therapeutic range during the infusion. The increase in PGE2 and the decrease in LTE4 synthesis ex vivo may offer a new explanation for the mode of antiasthmatic action of theophylline. It is notable that this phenomenon occurs at low serum theophylline concentrations. These results confirm the idea that theophylline has an anti-inflammatory and bronchoprotective action and support the use of theophylline as a therapeutic agent in asthmatic patients.

Adult↗

Circulating endothelin-1 in obstructive sleep apnea.

Endothelin (ET)-1 is a potent vasoconstrictive and mitogenic peptide produced by endothelial cells and degraded predominantly in pulmonary vasculature. We measured ET-1 in 9-normotensive and 14 hypertensive men with obstructive sleep apnea. The ET-1 levels were higher in both normotensive (mean +/- SD, 6.3 +/- 2.8 pg/ml) and hypertensive (7.8 +/- 3.0 pg/ml) groups than in 66 healthy controls (2.9 +/- 1.2 pg/ml). Ten patients were restudied after three months of nCPAP treatment. No decrease in ET-1 was observed.

Adult↗

Evaluation of the calcium-PTH axis and renal handling of phosphate by calcium and citrate clamp techniques in normal subjects and in patients with heavy proteinuria.

We studied the effect of induced hyper- and hypocalcemia on parathyroid function and renal handling of phosphate in healthy subjects (n = 10) and in patients with heavy proteinuria, mean 5.6 +/- 1.9 g/24 hours (n = 5). We used calcium and citrate clamp techniques. Hypercalcemia was rapidly induced by calcium infusion and maintained for 120 min, and correspondingly, hypocalcemia by citrate infusion. The suppression of intact PTH secretion during calcium clamp was similar (to the level of < or = 0.8 pmol/l) in both groups. The response of the parathyroid glands to hypocalcemia was similar in normal subjects and proteinuric patients. Both groups showed a peak of PTH secretion at 10 min, 18.9 +/- 6.7 pmol/l in healthy subjects and 20.4 +/- 7.4 pmol/l in patients. The peak levels were 4.8-7.2 times and 4.0-6.7 times the baseline level, respectively. Thereafter the plasma PTH concentration declined to a fairly constant steady-state level (twice the baseline level) in spite of maintained hypocalcemia. The area under the curve of the plasma concentrations of intact PTH at various times (AUC0-120) was 890 +/- 324 pmol/l/min in normal subjects and 989 +/- 331 pmol/l/min in proteinuric patients, the difference between the groups being again not significant. The renal threshold phosphate concentration (TmPO4/GFR) increased during calcium infusion and decreased during citrate infusion in both groups. During recovery from hypocalcemia PTH levels were lower than during hypocalcemic induction at corresponding serum calcium levels. Using calcium and citrate clamp techniques, we found that the response of the parathyroid glands in acute and maintained hypercalcemia and hypocalcemia, and renal phosphate handling in patients with heavy proteinuria was not different from that of healthy subjects.

Adult↗

Effect of nasal CPAP treatment on plasma volume, aldosterone and 24-h blood pressure in obstructive sleep apnoea.

Polycythaemia, peripheral oedema formation and hypertension have classically been described in association with obstructive sleep apnoea (OSA). However, there is very limited information about blood volume in OSA and how it changes during long-term treatment with nasal continuous positive airway pressure (nCPAP). Plasma (PV) and red-cell volumes (RCV), 24-h ambulatory blood pressure (BP), 24-h natriuresis and morning plasma aldosterone, renin activity and atrial natriuretic peptide in 11 men with a mean age of 47 y (range 37-55), apnoea index (AI) of 55 (22-106), body mass index of 36 (30-43) and seated BP of > or = 140/90 mmHg without any medication were measured. BP-measurements were repeated after 3 weeks and all measurements after 3 mo of nCPAP treatment. Aldosterone and 24-h mean heart rates decreased during treatment. Twenty-four-h BP decreased after 3 weeks but that decrease did not persist after 3 mo of treatment. There was a relationship between changes in night-time mean BP and PV and aldosterone. The haematocrit declined in every patient. No significant changes were found in the mean PV or RCV. They were in all instances lower than has earlier been described for normal, non-obese subjects. These data also suggest that OSA causes divergent individual disturbances in blood volume homeostasis which can be corrected by nCPAP.

Adult↗

Effects of noradrenaline and dopamine infusions on arachidonic acid metabolism in man.

We infused noradrenaline (0.025 micrograms/kg/min for 60 min, n=7) and dopamine (3.0 micrograms/kg/min for 60 min, n=6) into healthy male volunteers to study the effects of these catecholamines on in vivo thromboxane A2, prostacyclin and leukotriene E4 production measured as urinary excretions of 11-dehydro-thromboxane (TX) B2, 2,3-dinor-6-keto-prostaglandin (PG) F1alpha and leukotriene (LT) E4, respectively. Plasma noradrenaline and dopamine concentrations were 2.9+/-0.3 and 233+/-17 nmol/l at the endo fo the noradrenaline and dopamine infusions, respectively. Noradrenaline decreased thromboxane production and increased leukotriene production almost two fold. It had hardly any effect on prostacyclin production. Dopamine had no significant effects on any of the variables, however, it had a tendency to increase prostacyclin and leukotriene production. The results indicate that noradrenaline is a more important modulator of arachidonic acid metabolism than dopamine in vivo.

Adrenergic alpha-Agonists↗

Noradrenaline and dopamine infusions modulate arachidonic acid cyclooxygenase and 5-lipoxygenase pathways ex vivo in man.

We have previously demonstrated that adrenaline infusion increases the thromboxane/leukotriene (TX/LT) ratio in whole blood in healthy volunteers. The aim of the present study was to see whether other catecholamines--noradrenaline and dopamine--are also capable of modulating arachidonic acid (AA) metabolism in man. Low doses of noradrenaline (0.025 microgram/kg/min) and dopamine (3.0 micrograms/kg/min), which did not change hemodynamics, were infused for 60 min into healthy male volunteers. Both dopamine and noradrenaline decreased TX synthesis stimulated by spontaneous clotting, but no remarkable effect was seen when calcium ionophore A23187 was used as a stimulus. Dopamine but not noradrenaline increased prostaglandin E2 (PGE2) synthesis in A23187-stimulated whole blood. They both marginally decreased LTB4 formation in A23187-stimulated whole blood. The findings indicate that not only adrenaline but also noradrenaline and dopamine modulate AA metabolism in man.

Adult↗

Adrenaline stimulates thromboxane and inhibits leukotriene synthesis in man.

Catecholamines and other catecholic compounds have opposite effects on the cyclooxygenase and 5-lipoxygenase pathways of arachidonic acid metabolism in human polymorphonuclear leukocytes and whole blood in vitro. The hypothesis that high levels of adrenaline, found e.g. in myocardial infarction, are involved in the regulation of arachidonic acid metabolism was tested. Adrenaline (0.1 micrograms/kg per min for 45 min and thereafter 0.2 micrograms/kg per min for 15 min) was infused to healthy male volunteers to mimic relationships between high levels of adrenaline and arachidonic acid metabolism in myocardial infarction. Adrenaline infusion increased Ca ionophore A23187-induced TXB2 formation in whole blood. The effect was smaller when spontaneous clotting was used as a stimulus. Urinary 11-dehydro-TXB2 excretion, an indicator of total in vivo thromboxane synthesis, increased twofold. Adrenaline infusion decreased both LTB4 and LTE4 synthesis in A23187-stimulated whole blood. These results demonstrate that high levels of adrenaline influence the cyclooxygenase and 5-lipoxygenase pathways of arachidonic acid metabolism differentially in man.

Adult↗

Effects of exercise and ethanol ingestion on platelet thromboxane release in healthy men.

We studied the effects of repeated bicycle exercises and ethanol ingestion (1.5 g/kg) on platelet aggregation and thromboxane (TxB2) release in 10 healthy male volunteers. After a bicycle exercise performed in the morning, the adenosine diphosphate (ADP)-induced platelet aggregation and the aggregation-associated thromboxane release were found to be decreased in fasting men. In contrast, after ingestion of fruit juice and a second exercise at noon, platelet aggregation and thromboxane release were increased. These latter changes were negligible when ethanol was ingested together with fruit juice. A third exercise, performed in the evening, again caused a decrease in the aggregation and associated thromboxane release during the control session, but provoked an increase during the ethanol session. Exercise increased the urinary excretion of 2,3-dinor-6-keto-PGF1 alpha. Changes in the plasma arachidonic acid (AA) concentration probably influenced the platelet thromboxane release. The results suggest that both physical exercise and ingestion of ethanol in fruit juice influence the ADP-stimulated platelet thromboxane release.

Adenosine Diphosphate↗

Postprandial blood concentrations of insulin-independent carbohydrate, galactose, in oral test after gastric surgery.

In order to examine the postprandial blood concentrations of insulin-independent carbohydrates after gastric surgery oral galactose test (1.65 g/kg body weight in water, 33%, w/v) was performed in 55 symptomatic patients and in 5 healthy subjects. There were patients after total gastrectomy (TG) (n = 17), gastric resection with (GRS, n = 17) or without (GR; n = 12) selective vagotomy, and after proximal selective vagotomy (PSV, n = 9). The patients had immediately after drinking the test solution a 2- to 5-fold higher blood galactose concentration than the healthy subjects. The TG patients had the most rapid, the healthy subjects the slowest and the GR and GRS patients an intermediate rapid, immediate increase of blood galactose concentration. The TG patients showed a plateau 40-60 min and a decrease 60-90 min after the start of the test. The PSV patients showed a plateau 60-90 min after the commencement of the test. The GR and GRS patients and the healthy subjects had a continuous increase in blood galactose concentration during the whole test period, but the maximal point 90 min after the drinking of the solution was lower in the GRS than in the GR patients and lowest in the healthy subjects. The PSV patients had a lower blood galactose curve than the TG, GRS and GR patients but higher than the healthy subjects except the plateau 60-90 min postprandially.(ABSTRACT TRUNCATED AT 250 WORDS)

Carbohydrate Metabolism↗

Acute effects of calcium carbonate and citrate on secondary hyperparathyroidism in chronic renal failure.

Two grams of elemental calcium as carbonate or citrate were given after an overnight fast to 14 patients with advanced renal failure (serum creatinine 759 +/- 365 mumol/l, mean +/- SD). The suppressibility of their hyperparathyroidism was confirmed with a calcium infusion test. Both calcium citrate and carbonate increased significantly plasma ionized calcium (6.8 and 4.5%, respectively) and total calcium (9.3 and 6.0%), p less than 0.001. In the majority of the patients, calcium citrate but not carbonate increased plasma calcium sufficiently to induce the suppression of hyperparathyroidism. The decrease of plasma intact parathyroid hormone was 35.9 +/- 24.8% (mean +/- SD); p less than 0.001) after calcium citrate and 9.2 +/- 18.9% (mean +/- SD; NS) after calcium carbonate.

Calcium↗

Peritoneal fluid leukotriene B4 and prostaglandin E2 in acute salpingitis.

Concentrations of leukotriene B4 (LTB4) and prostaglandin E2 (PGE2) in peritoneal fluid were measured in 19 women with suspected acute pelvic inflammatory disease. Acute salpingitis was verified by laparoscopy in 16 cases; 11 of them had isolation of microbes from the peritoneal cavity. Means (+/- SD) levels of peritoneal fluid LTB4 and PGE2 in acute salpingitis were 506 +/- 288 and 378 +/- 330 pg/ml, respectively, and higher (p less than 0.001) than the levels in the peritoneal fluid of 20 healthy controls: LTB4 44 +/- 57, PGE2 11 +/- 2 pg/ml, respectively. An inflammatory cytologic pattern was found in the peritoneal fluid in all the cases with acute salpingitis, neutrophils being the prominent cells. These chemical mediators of inflammation in peritoneal fluid may have a role in the development of scarring and peritubal adhesions found after acute salpingitis.

Acute Disease↗

Effects of non-steroidal anti-inflammatory drugs and prednisolone on synovial fluid white cells, prostaglandin E2, leukotriene B4 and cyclic AMP in patients with rheumatoid arthritis.

Altogether 53 patients (31 women, 22 men) with definite rheumatoid arthritis were randomly divided into groups of 5-6 patients and treated for one day only with one of the following non-steroidal anti-inflammatory drugs (NSAIDs): acetylsalicylic acid, carprofen, diclofenac, indomethacin, naproxen, proquazone, timegadine, tolfenamic acid or paracetamol, and with prednisolone, in recommended doses. Synovial fluid samples were collected before and after the treatment. White cell count and its differentiation as well as the concentrations of protein, cyclic adenosine-3',5'-monophosphate (cAMP), prostaglandin E2 (PGE2) and leukotriene B4 (LTB4) were measured from the synovial fluid. Synovial fluid leukocyte counts correlated with PGE2 concentrations, but showed no correlation with LTB4 levels before treatment. Significant changes were seen in the form of lowered PGE2 values following treatment with the clinically and experimentally most potent NSAIDs, and as depressed LTB4 levels following prednisolone treatment. The other markers of inflammation are obviously more resistant, changing only slowly during prolonged treatment, and may thus be, at least in part, secondary to the changes in prostanoids.

Anti-Inflammatory Agents, Non-Steroidal↗

Evening primrose oil and olive oil in treatment of rheumatoid arthritis.

The effects of 10 ml of evening primrose oil or olive oil, administered twice daily for 12 weeks, on clinical and laboratory signs and on plasma prostaglandins were studied in 18 patients with rheumatoid arthritis. The plasma concentration of PGE2 decreased and that of TxB2 increased in both treatment groups, but no significant improvement could be seen in either group.

Adult↗

Plasma thromboxane B2 levels and thromboxane B2 production by platelets are increased in patients during spinal and epidural anesthesia.

Concentrations of thromboxane (Tx) B2 in plasma and its production by platelets were measured in 20 spinal and 10 epidural anesthesia patients scheduled for small operations in the lower extremities. The main metabolite of prostacyclin, 6-keto-PGF1 alpha and prostaglandin (PG) E2 in plasma were also determined. Plasma TxB2 and TxB2 production by platelets increased during both spinal and epidural anesthesia. Plasma TxB2 levels also remained elevated 1 h after anesthesia. The plasma concentrations of 6-keto-PGF1 alpha and PGE2 did not change during spinal or epidural anesthesia. In in vitro studies, only low concentrations of lidocaine (0.5-1.0 micrograms/ml) and bupivacaine (0.5-3.0 micrograms/ml) increased platelet TxB2 production. In platelet rich plasma, neither lidocaine nor bupivacaine in concentrations of 0.5-3.0 micrograms/ml caused constant changes in ADP-induced platelet aggregation, but they inhibited it in toxic concentrations (12 micrograms/ml). The results suggest that the increased TxB2 plasma levels and platelet TxB2 production during regional anesthesia are not caused by local anesthetics itself but by other factors, e.g. tissue trauma. In clinically found concentrations, local anesthetics do not cause any constant changes in platelet aggregation.

6-Ketoprostaglandin F1 alpha↗