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Biomedical subjects

A Fujimura

Publications and source records attributed to A Fujimura.

At least 163 records · Page 9Linked to original sources

Influence of lisinopril on urinary electrolytes excretion after furosemide in healthy subjects.

It has been reported that the urinary excretions of chloride (Cl), potassium (K), and magnesium (Mg), but not sodium (Na), after furosemide, a loop diuretic, were decreased by pretreatment with lisinopril, an ACE inhibitor in hypertensive subjects. The electrolytes disturbance induced by furosemide might be ameliorated by lisinopril. The present study re-examines this potential drug interaction in healthy subjects. Lisinopril (20 mg) or its matching placebo was given orally using a double-blind, crossover design. Four hours after lisinopril administration, furosemide (20 mg) was injected intravenously and urine was collected during the following intervals: 0-0.5, 0.5-1, 1-1.5, 1.5-2, 2-3, 3-4, and 4-6 hours. Blood samples for plasma furosemide concentration were obtained at 0.5, 1, 1.5, 2, 3, 4, and 6 hours after the agent. There were no significant differences between the two trials in plasma concentrations of furosemide or urinary excretions of the agent. Urine volume and urinary excretions of electrolytes (Na, Cl, K, and Mg) after the furosemide with lisinopril administration were not significantly different from those of placebo at any observation period. These results suggest that the urinary excretions of electrolytes after furosemide administration are not influenced by pretreatment with lisinopril.

Adult↗

The effect of nifedipine on the pharmacokinetics and dynamics of diltiazem: the preliminary study in normal volunteers.

To evaluate the influence of nifedipine on the pharmacokinetics and the pharmacodynamics of diltiazem, five healthy subjects received 60 mg diltiazem orally on two occasions, diltiazem alone or after nifedipine pretreatment (10 mg three times daily for 3 days). After nifedipine pretreatment, the maximum concentration (Cmax) of diltiazem was increased and the time of Cmax was shortened, and the area under the concentration curve (AUC) tended to be increased. Although heart rate was increased, the corrected PQ interval tended to be prolonged after the nifedipine pretreatment. Both a decreased hepatic clearance and an increased bioavailability of diltiazem probably accounts for the increase in the Cmax and AUC of diltiazem after nifedipine pretreatment, and that might affect the pharmacodynamics of diltiazem.

Administration, Oral↗

Differences of chronopharmacokinetic profiles between propranolol and atenolol in hypertensive subjects.

Previous studies have shown that the absorption rate of a lipophilic, but not hydrophilic, agent is faster after the night dosage than after the morning dosage in nocturnal rodents. The present study examines whether such a difference in chronopharmacokinetic profiles between lipophilic and hydrophilic agents also exists in humans. Propranolol (20 mg), a lipophilic beta-blocker, or atenolol (50 mg), a hydrophilic beta-blocker, was given orally to 13 hypertensive patients at 9:00 AM (day trial) or 9:00 PM (night trial) by a crossover design. Plasma concentrations of propranolol and its metabolites, 4-hydroxypropranolol and naphthoxylactic acid, and atenolol were determined just before and at 0.5, 1, 1.5, 2, 3, 4, 6, 12, and 24 hours after treatment. Maximum plasma concentration (Cmax) and area under the plasma concentration-time curve (AUC) of propranolol in the day trial were significantly greater than those in the night trial. Time to maximum plasma concentration (tmax) was significantly shorter in the day trial. No significant difference was observed in the elimination half-life between the two trials. There were similar administration time-dependent changes in the Cmax for 4-hydroxypropranolol and naphthoxylactic acid. On the other hand, although the Cmax of atenolol was greater and its tmax was shorter in the day trial, the differences did not reach significance. These results suggest that propranolol, but not atenolol is absorbed more rapidly after the morning dosage than after the night dosage. Based on these findings, the authors speculate that the absorption rate of a lipophilic, but not hydrophilic, agent is faster after the morning dosage than after the night dosage in humans.

Administration, Oral↗

The effect of age on diurnal variation in the pharmacokinetics of propranolol in hypertensive subjects.

There is diurnal variation in the absorption rate of propranolol in younger subjects. This study was undertaken to examine the effect of age on the chronopharmacokinetics of propranolol. We gave 20 mg of propranolol orally to 13 younger and 11 older hypertensive subjects at 09.00 h (day study) or 21.00 h (night study) in a cross-over design. Plasma concentrations of propranolol and its metabolites, 4-hydroxypropranolol and naphthoxylactic acid, were determined just before and at 0.5, 1, 1.5, 2, 3, 4, 6, 12, and 24 h after dosage. In the younger subjects the absorption rate constant (ka) of propranolol and its maximum plasma concentration (Cmax) were significantly higher and the time to maximum concentration (tmax) was significantly shorter in the day than at night. There were similar time-variant changes in Cmax and tmax for 4-hydroxypropranolol and naphthoxylactic acid. In contrast, there were no time-variant changes in ka, Cmax and tmax of propranolol and its metabolites in the older subjects. These results suggest that propranolol is absorbed more rapidly after morning dosing than after night-time dosing in younger but not in older subjects. Based on these findings, we speculate that the time-variance in the absorption rate or first-pass elimination, or both, of propranolol diminish with age.

Adult↗

Influence of clorgyline treatment on chronopharmacology of furosemide in rats.

Circadian variations in the adrenergic nervous system have been reported to be altered by chronic treatment with clorgyline, a monoamine-oxidase inhibitor. In the present study, the influence of clorgyline on the chronopharmacology of furosemide, a loop diuretic agent, was examined in rats maintained under conditions of light from 7 am to 7 pm and dark from 7 pm to 7 am. Clorgyline (4 mg/kg/day) or its vehicle alone was infused subcutaneously by osmotic minipumps for 14 days. Furosemide (30 mg/kg) was given orally at 12 am [noon (N)] or 12 pm [midnight (M)]. Urine was collected for 8 hours after the agent, and urinary excretions of sodium and furosemide were determined. Urine volume and urinary excretions of sodium and furosemide were significantly greater at 12 N than at 12 M in the vehicle-infused group of rats. However these administration time-dependent changes in the effects of furosemide and its urinary excretion disappeared in the clorgyline-infused animals. These results suggest that the mode of the diurnal variation in the effects of furosemide is altered by chronic treatment with clorgyline. As chronic clorgyline is considered to disturb the adrenergic nervous system, the present findings are compatible with the hypothesis that this system is involved in the mechanism responsible for the time-dependent change in the effects of furosemide.

Analysis of Variance↗

Chronopharmacology of amlodipine in rats.

The present study was undertaken to examine whether plasma concentrations of amlodipine, a calcium antagonist, and its diuretic effects vary with the time of dosage. Pharmacokinetic study; 20 mg/kg of amlodipine was given orally to rats at 10 am (day trial) or 10 pm (night trial), and blood samples were obtained during a 24-hour period. Pharmacodynamic study; two doses (10 and 20 mg/kg) of amlodipine were given orally at 10 am or 10 pm by a cross-over design, and urine was collected for 12 hours after dosage. Rats were maintained under condition of light from 7 am to 7 pm. The following results were obtained; The tmax of amlodipine was shorter and the Cmax was greater in the night trial than in the day trial. Its diuretic effects were greater in the night trial. These results suggest that the pharmacokinetic and pharmacodynamic profiles of amlodipine vary with its time of dosage.

Amlodipine↗

Chronopharmacokinetic study of a new immunosuppressive agent, FK 506, in mice.

Chronopharmacokinetic profiles of a new immunosuppressive agent, FK 506, were examined in mice. FK 506 (1 mg/kg) was given orally at 10 AM (day trial) or 10 PM (night trial) once a day for 7 days. Blood samples for measurement of FK 506 concentration in whole blood were obtained just before and at 1, 2, 3, 4, 6, 8 and 12 hr after the final dosage. The time to maximum concentration was shorter and the maximum concentration was greater in the night trial than in the day trial. These findings suggest that absorption of FK 506 is faster and its blood concentrations is higher in the night trial.

Animals↗

Influence of alpha-receptor blockade on the time-dependent change in the effect of furosemide.

Influence of alpha-receptor blockade on the time-dependent change in the effect of furosemide (a loop diuretic agent) was examined. Furosemide (30 mg/kg) was given orally to the doxazosin (an alpha 1-blocker)- or vehicle-treated rats at 12 AM or 12 PM. Urine volume and urinary excretions of of sodium and furosemide for 8 hr were significantly greater at 12 AM than at 12 PM in the vehicle-treated animals. However, such time-dependent changes in these parameters disappeared in the doxazosin-treated rats. These results suggest that the alpha 1-receptor-mediated stimuli are involved in the mechanism of the time-dependent change in the effect of furosemide.

Adrenergic alpha-1 Receptor Antagonists↗

Diurnal effect on caffeine clearance.

Caffeine (300 mg) was given orally to nine healthy subjects at 10:00 AM (day trial) or at 10:00 PM (night trial) using a crossover design. Saliva was obtained at 0.5, 1, 1.5, 2, 3, 4, 6, and 8 hours after administration of caffeine. Urine was collected for 8 hours after caffeine dosing. Caffeine clearances in saliva during the day trial were not different from those in the night trial. No significant difference was observed in urinary molar ratios of metabolites (AFMU + 1X + 1U/17U) between the two trials. These data suggest that caffeine clearances in saliva do not vary with its administration time. Since caffeine clearances in plasma are reflected in the urinary ratios of caffeine metabolites, its clearance in plasma might also not be altered by the time of dosing.

Administration, Oral↗

Chronopharmacology of furosemide in the elderly.

The authors have previously reported the time-dependent change in the diuretic effects of furosemide, a loop diuretic agent, in young and middle-aged subjects. The current study was undertaken to examine an influence of aging on this chronopharmacologic phenomenon. Ten milligrams furosemide was given intravenously to 12 elderly subjects (greater than 70 years of age) at 9:00 AM (day trial) or at 9:00 PM (night trial) by a cross-over design. One-hour urine samples were collected for 3 hours after each administration, and urine volume and urinary excretions of sodium and furosemide were determined. Urine volume and urinary sodium excretion increased after furosemide administration. Contrary to the findings in the young and middle-aged subjects, no significant differences were observed in these parameters at any observation period between the day and night trials in the elderly subjects. Urinary furosemide excretion of the day and night trials did not significantly differ. These results suggest that the chronopharmacologic profiles of furosemide are altered in the elderly.

Aged↗

Effect of treatment at night with S-1452, a thromboxane A2 receptor antagonist, on the morning rise in platelet aggregation.

It is well known that platelet aggregation shows a morning rise, which may contribute to the increase in the onset of ischaemic heart diseases during the morning period. The present study was undertaken to determine whether nocturnal dosage with S-1452, a thromboxane A2 receptor antagonist, would blunt the morning rise in platelet aggregability. S-1452 50 mg or placebo were given orally to 8 healthy subjects at 10.00 h (day trial) or 22.00 h (night trial) according to a cross-over design. Plasma concentrations of S-1452 and its metabolites, bisnor-(+)-S-145 and tetranor-(+)-S-145, and platelet aggregation were determined during the 12-hour period following the dose. Mean plasma concentrations of S-1452, bisnor-(+)-S-145 and tetranor-(+)-S-145 during the absorption phase were lower after the nocturnal dose than after the morning dose. The maximum plasma concentration and area under the plasma concentration-time curve of the compounds were also lower and the time to the maximum concentration were delayed after the treatment at night. A morning rise in platelet aggregation was observed following placebo treatment. The inhibitory effect of S-1452 on platelet aggregation was observed at 3 hours and persisted for up to 9 h in both trials. The results suggest that S-1452 is absorbed more slowly after the nocturnal dose than after the morning dose. However nocturnal treatment with 50 mg S-1452 may blunt the morning rise in platelet aggregability.

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

Time-dependent change in the effect of probucol in subjects with elevated cholesterol.

A time-dependent change in the cholesterol-lowering effect of probucol has been evaluated in 20 subjects with elevated cholesterol. Probucol 500 mg was given once daily at 07.00 h (day trial) or 19.00 h (night trial) for 3 months according to a crossover design. Fasting blood samples were obtained during the control period and at the end of each treatment period. Serum concentrations of total and HDL-cholesterol were significantly decreased by both the treatments with probucol [total cholesterol (mmol.l-1): control 6.58; day trial 5.41; night trial 5.10; HDL-cholesterol (mmol.l-1): control 1.35; day trial 1.06; night trial 0.96]. These parameters were significantly lower in the night trial than in the day trial. The data indicate that the cholesterol-lowering effect of probucol varies with its time of administration in subjects with elevated cholesterol.

Aged↗

Influence of renal denervation on chronopharmacology of furosemide in rats.

Our previous studies have suggested that the adrenergic nervous system is involved in the mechanism responsible for the time-dependent change in the urinary excretion of furosemide in rats. To examine a potential role of renal nerves in this phenomenon, renal denervation or sham operation was performed using unilaterally nephrectomized rats. Furosemide (30 mg/kg) was given orally at 12 am or 12 pm. Urine was collected for 8 hours after furosemide dosing, and urinary excretions of furosemide and sodium were determined. Urinary furosemide excretion and diuretic effects of the agent (urine volume and urinary sodium) were significantly greater at 12 am than at 12 pm in the sham-operated group of rats. However these administration time-dependent changes in urinary furosemide and its diuretic effects disappeared in the renal-denervated group of animals. These results suggest that the renal nerves contribute to the time-dependent changes in the urinary excretion of furosemide and its subsequent diuretic effects.

Administration, Oral↗

Daily variations in platelet aggregation and adhesion in healthy subjects.

Platelet aggregation is known to show a morning rise. The present study was undertaken to examine whether platelet aggregation and adhesion show a peak in the afternoon. Platelet aggregation stimulated by 4 microM of adenosine diphosphate, 1 micrograms/ml of collagen, 4 microM of epinephrine and 0.5 mM of arachidonic acid, and platelet adhesion determined by platelet retention on a glass bead column were measured for a period of 28-hour with an interval of 4 hours in 6 healthy subjects. Platelet aggregation in response to 4 different aggregating agents showed a bimodal daily variation with peaks in the morning and in the afternoon. However platelet adhesion only showed a peak in the morning. Previous studies have demonstrated the increases in the onset of acute myocardial infarction (MI) in the morning and afternoon periods. As enhanced platelet aggregation is involved in the development of acute MI, the present study suggests that the rise in platelet aggregation contributes to the increase in acute MI in the morning and in the afternoon. The present study suggests that the enhancement of platelet adhesion, which might be involved in thromboembolic events, may be another triggering factor for the onset of acute MI.

Adenosine Diphosphate↗

Chronopharmacological study of furosemide; (IX). Influence of continuous norepinephrine infusion.

Our previous studies have suggested that the adrenergic nervous system is involved in the mechanisms responsible for the time-dependent changes in the effects of furosemide in rats. To examine this hypothesis further, norepinephrine (150 micrograms/kg/hr) or its vehicle alone was infused subcutaneously by osmotic minipumps. Furosemide (30 mg/kg) was given orally at 12 am or 12 pm. Urine was collected for 8 hours after the agent, and urinary excretions of sodium and furosemide were determined. Urine volume and urinary excretion of sodium and furosemide were significantly greater at 12 am than at 12 pm in the vehicle-infused group of rats. However these administration-time-dependent changes in the effects of furosemide and its urinary amount disappeared in the norepinephrine-infused group of animals. Since chronic norepinephrine infusion is considered to disturb the axis of adrenergic nervous system, these data support the hypothesis concerning the mechanisms of this chronopharmacological phenomenon of furosemide.

Administration, Oral↗

Urinary excretion of furosemide in rats with HgCl2-induced acute renal damage.

To examine the influence of mercuric chloride (HgCl2)-induced acute renal damage on urinary excretion of furosemide, HgCl2 (1 mg/kg) or its vehicle alone was given intraperitoneally to Wistar rats. The following two experiments were done. Study I: Three percent body weight (b.w.) of 1% NaCl solution or furosemide (30 mg/kg) in 3% b.w. of 1% NaCl solution was given orally before and after HgCl2 treatment, and an 8-hour urine was collected. Study II: Furosemide (30 mg/kg) was given orally, and blood samples were obtained at 1, 2, 3, 4, 6 and 8 hours after administration. Urinary excretion of N-acetyl-beta-D-glucosaminidase increased, and urine volume and urinary excretions of furosemide and sodium decreased in the HgCl2-treated rats. There were significant correlations between the urinary furosemide and its diuretic effects. Regression lines after HgCl2 were significantly different from those before treatment. The values of absorption as well as elimination rate constant were smaller, while the time to maximum concentration and the elimination half-life were longer in the HgCl2-treated rats compared to vehicle-treated animals. These results suggest that the urinary excretion of furosemide and the responsiveness of renal tubular cells to this agent are impaired in rats with HgCl2-induced acute renal damage.

Acute Kidney Injury↗

Influence of adrenalectomy on chronopharmacological phenomenon of furosemide in rats.

The role of adrenal corticoids in the time-dependent changes in the effects of furosemide was examined. Furosemide (30 mg/kg) was given orally to adrenalectomized or sham-operated rats at 12 a.m. or 12 p.m. Urine volume and urinary excretion of sodium and furosemide for 8 hr were significantly greater at 12 a.m. than at 12 p.m. in the sham-operated rats. However, such time-dependent changes in these parameters disappeared in the adrenalectomized animals. These findings indicate that adrenal corticoids are directly or indirectly involved in this event.

Adrenal Cortex Hormones↗