Plasma concentration of flumazenil following intranasal administration in children
L D Scheepers1, C J Montgomery, A M Kinahan
1Department of Anesthesia, University of British Columbia, Vancouver, Canada. louissch@home.iatronet.net
Insights
Intranasal flumazenil in children achieved plasma concentrations comparable to intravenous administration. This method may effectively reverse benzodiazepine effects when IV access is difficult.
Area of Science:
- Pediatric Anesthesiology
- Pharmacokinetics
- Drug Delivery Systems
Background:
- Benzodiazepines are commonly used for sedation and anesthesia in pediatric dental surgery.
- Flumazenil is a benzodiazepine antagonist.
- Intravenous administration is the standard route for flumazenil, but may not always be feasible in pediatric patients.
Purpose of the Study:
- To evaluate the pharmacokinetics of intranasal flumazenil in children.
- To determine plasma flumazenil concentrations following intranasal administration of 40 microg x kg(-1).
Main Methods:
- A pharmacokinetic study was conducted on 11 pediatric patients (aged 2-6 years) undergoing general anesthesia for dental surgery.
- Intranasal flumazenil (40 microg x kg(-1)) was administered prior to nasal intubation.
- Plasma samples were collected at multiple time points up to 120 minutes and analyzed using high-performance liquid chromatography.
Main Results:
- Data from 10 patients were analyzed.
- The mean maximum plasma concentration (Cmax) was 67.8 ng/mL, with a time to maximum concentration (Tmax) of 2 minutes.
- The calculated mean half-life was 122 minutes.
Conclusions:
- Intranasal flumazenil administration in children results in plasma concentrations similar to those achieved with intravenous administration.
- This dosage and route may be sufficient to antagonize benzodiazepine side effects.
- Intranasal flumazenil offers a viable alternative route when intravenous access is challenging.
Purpose:
A pharmacokinetic study in children to determine plasma flumazenil concentrations after the intranasal administration of 40 microg x kg(-1).
Methods:
Following institutional approval and informed written consent, 11 ASA physical status I-II patients, aged two to six years, undergoing general anesthesia for dental surgery were recruited. After induction, 40 microg x kg(-1) flumazenil Anexate, Roche, 0.1 mg x mL(-1) (0.4 mL x kg(-1))) were administered via a syringe as drops, prior to nasal intubation. Venous plasma samples were drawn prior to administration of flumazenil (t = 0), and then at 2, 4, 6, 8, 10, 15, 20, 30, 40, 60, and 120 min thereafter. The plasma samples were immediately processed by the on-site laboratory and then stored at -70 degrees C, before batch analysis via high performance liquid chromatography assay. Pharmacokinetic data calculations were performed using WinNonLin software (Scientific Consulting Inc.).
Results:
Eleven patients were studied, but data for one patient were discarded due to insufficient sampling. The median age was 4.3 yr (range 3 to 6), with a median weight of 18.9 kg (range 14.9 to 22.2). There were seven boys and three girls. Mean Cmax was 67.8 ng x mL(-1) (SD 41.9), with Tmax at two minutes. The calculated half-life was 122 min (SD 99).
Conclusion:
The mean plasma concentrations of flumazenil attained were similar to those reported after intravenous administration, and may be sufficient to antagonize the side-effects of benzodiazepines. This route of administration may be useful when the intravenous route is not readily available.
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