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J J Oberyé

Publications and source records attributed to J J Oberyé.

6 recordsLinked to original sources

Analysis of a sleep-dependent neuronal feedback loop: the slow-wave microcontinuity of the EEG.

Increasing depth of sleep corresponds to an increasing gain in the neuronal feedback loops that generate the low-frequency (slow-wave) electroencephalogram (EEG). We derived the maximum-likelihood estimator of the feedback gain and applied it to quantify sleep depth. The estimator computes the fraction (0%-100%) of the current slow wave which continues in the near-future (0.02 s later) EEG. Therefore, this percentage was dubbed slow-wave microcontinuity (SW%). It is not affected by anatomical parameters such as skull thickness, which can considerably bias the commonly used slow-wave power (SWP). In our study, both of the estimators SW% and SWP were monitored throughout two nights in 22 subjects. Each subject took temazepam (a benzodiazepine) on one of the two nights. Both estimators detected the effects of age, temazepam, and time of night on sleep. Females were found to have twice the SWP of males, but no gender effect on SW% was found. This confirms earlier reports that gender affects SWP but not sleep depth. Subjectively assessed differences in sleep quality between the nights were correlated to differences in SW%, not in SWP. These results demonstrate that slow-wave microcontinuity, being based on a physiological model of sleep, reflects sleep depth more closely than SWP does.

Adolescent↗

Pharmacokinetic and pharmacodynamic characteristics of ganirelix (Antagon/Orgalutran). Part I. Absolute bioavailability of 0.25 mg of ganirelix after a single subcutaneous injection in healthy female volunteers.

OBJECTIVE: To assess the absolute bioavailability of ganirelix (Antagon/Orgalutran; NV Organon, Oss, the Netherlands) after a single SC injection. DESIGN: Randomized, crossover, pharmacokinetic study. SETTING: Phase I clinical research unit. PATIENT(S): Nineteen healthy female volunteers of reproductive age. INTERVENTION(S): Two separate injections of 0.25 mg of ganirelix were given, one subcutaneously and one intravenously, with a washout period of 1 week between injections. Blood samples were taken for assessment of serum ganirelix concentrations, and blood pressure, heart rate, and adverse events were monitored. MAIN OUTCOME MEASURE(S): Pharmacokinetic parameters. RESULT(S): Fifteen subjects were evaluated. The mean concentration-time profile after SC administration was comparable to that after IV administration. The mean (+/- SD) peak concentration and time of occurrence after SC administration were 14.8+/-3.2 ng/mL and 1.1+/-0.3 hours, respectively. The mean (+/- SD) half-lives after IV administration and SC administration were highly similar (12.7+/-3.7 hours and 12.8+/-4.3 hours, respectively). Mean (+/- SD) AUC0-infinity (area under the concentration-time curve) values of 105+/-11 ng/mL x hours and 96+/-12 ng/mL x hours were calculated for IV administration and SC administration, respectively, resulting in an absolute mean (+/- SD) bioavailability of 91.3%+/-6.7%. Both treatments were well tolerated. CONCLUSION(S): Ganirelix is absorbed rapidly and extensively after SC administration, resulting in a high absolute bioavailability of >90%.

Adult↗

Pharmacokinetic and pharmacodynamic characteristics of ganirelix (Antagon/Orgalutran). Part II. Dose-proportionality and gonadotropin suppression after multiple doses of ganirelix in healthy female volunteers.

OBJECTIVE: To assess the dose-proportionality and pharmacodynamic properties of multiple doses of ganirelix (Antagon/Orgalutran; NV Organon, Oss, the Netherlands). DESIGN: Randomized, parallel, pharmacokinetic, and pharmacodynamic study. SETTING: Phase I clinical research unit. PATIENT(S): Three groups of 15 healthy female volunteers of reproductive age. INTERVENTION(S): Subcutaneous injections of 0.125 mg, 0.25 mg, or 0.50 mg of ganirelix were given once daily for 7 days. Blood samples were taken to assess serum ganirelix, LH, FSH, and E2 concentrations. MAIN OUTCOME MEASURE(S): Pharmacokinetic parameters and hormone suppression. RESULT(S): Steady-state levels were reached between days 2 and 3. Peak concentrations, which occurred approximately 1 hour after dosing, increased in a dose-proportional manner and averaged 5.2 ng/mL, 11.2 ng/mL, and 22.2 ng/mL for the 0.125-mg, 0.25-mg, and 0.50-mg doses, respectively. Corresponding mean values for the area under the curve over one dosing interval (24 hours) were 33 ng x h/mL, 77.1 ng x h/mL, and 137.8 ng x h/mL, respectively. After the last 0.25-mg dose of ganirelix, serum LH, FSH, and E2 concentrations were maximally decreased (by 74%, 32%, and 25% at 4 hours, 16 hours, and 16 hours after injection, respectively). Serum hormone levels returned to pretreatment values within 2 days after the last injection. CONCLUSION(S): The pharmacokinetics of ganirelix were dose-proportional within the dose range studied. Multiple injections resulted in immediate suppression of gonadotropins, which was rapidly reversed after treatment discontinuation.

Adult↗

Pharmacodynamics of temazepam in primary insomnia: assessment of the value of quantitative electroencephalography and saccadic eye movements in predicting improvement of sleep.

BACKGROUND AND OBJECTIVE: Quantitative electroencephalographic parameters and saccadic eye movements are frequently used as pharmacodynamic measures of benzodiazepine effect. We investigated the relationship between these measures and the hypnotic effect. METHODS: The correlation between the pharmacodynamic measures and sleep quality was determined in 21 patients with primary insomnia. The pharmacokinetic-pharmacodynamic relationships were characterized after administration of 20 mg oral temazepam. The hypnotic effect was determined on the basis of polysomnographic sleep recordings and a subjective sleep evaluation questionnaire. Correlations between pharmacodynamic measures and the improvement of sleep were investigated. RESULTS: The pharmacokinetic-pharmacodynamic relationships for the parameters derived from electroencephalography and saccadic eye movements showed considerable interindividual variability. Administration of temazepam led to a significant improvement in the objective parameters sleep period efficiency, wake time after sleep onset, and sleep efficiency and in the subjective assessment of sleep quality. No significant correlations were observed between the pharmacokinetic-pharmacodynamic-derived parameters and the improvement in objective or subjective sleep parameters. CONCLUSION: In subjects with primary insomnia the administration of 20 mg oral temazepam results in changes in both the pharmacodynamic measures and in quality of sleep. No individual correlations between the pharmacodynamic measures and quality of sleep were observed. We concluded that the investigated pharmacodynamic measures are of value in the first assessment of clinical efficacy and for the selection of the dose(s) to be investigated in subsequent trials that aim at showing clinical efficacy. However, the conclusive quantification of clinical efficacy should be performed only on the basis of the clinical end point itself.

Adult↗

Integrated pharmacokinetics and pharmacodynamics of Ro 48-6791, a new benzodiazepine, in comparison with midazolam during first administration to healthy male subjects.

AIMS: This study was performed to investigate the pharmacokinetics and pharmacodynamics of ascending doses of Ro 48-6791, compared with midazolam, in healthy subjects during first administration to man studies. METHODS: The study was double-blind and five-way crossover with treatment on 5 consecutive days (three ascending doses, placebo, fixed midazolam dose) in two sequential groups of five healthy male subjects. Ro 48-6791 was administered as a slow i.v. infusion in doses of 0.1-0.3-1 mg in the first group, and 1-2-3 mg in the second. Midazolam was infused at 0.1 mg kg(-1). The infusions were stopped after 20 min or if sedation became too strong for proper performance of the tests. Consequently, infusion rates (mg min(-1)) differed considerably among doses. Blood samples were collected frequently for pharmacokinetic determinations (two-compartment model). Pharmacodynamics were assessed by recording of saccadic eye movements (saccadic peak velocity) and electroencephalography (beta-power). These parameters were used for pharmacokinetic/pharmacodynamic modelling. RESULTS: Ro 48-6791 and midazolam were both well tolerated. Most clinical events were dose-dependent central depressant effects. The volume of distribution (V(SS)) and plasma clearance of Ro 48-6791 were on average markedly larger than those of midazolam (171 +/- 65 vs 41 +/- 10 l and 2.2 +/- 0.9 vs 0.42 +/- 0.11 l min(-1), respectively). The doses of Ro 48-6791 leading to loss of saccadic eye movements were on average four times lower than that of midazolam. The corresponding predicted effect compartment concentrations differed by a factor of about six. Doses of Ro 48-6791 and midazolam eliciting similar maximum effects had a comparable onset and duration of action for saccadic peak velocity. Midazolam caused a significantly larger (33%, range 17, 55%) increase in beta-power than Ro 48-6791 at the highest administered dose. Ro 48-6792, a metabolite of Ro 48-6791, showed a considerably longer half-life than the parent compound. Although there were no indications of a discernable effect of Ro 48-6792 in the present study, the effects of possible accumulation during prolonged administration should be investigated further. CONCLUSIONS: This first study with Ro 48-6791 in humans has shown that this benzodiazepine is approximately four to six times as potent as midazolam, but has a comparable onset and duration of action.

Adjuvants, Anesthesia↗