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Therapeutic monitoring of anticonvulsant drugs: gas-chromatographic simultaneous determination of primidone, phenylethylmalonamide, carbamazepine, and diphenylhydantoin.

We describe a sensitive and precise gas-chromatographic method in which benzylmalonate methylester monoamide is used as the internal standard for the simultaneous determination of primidone, phenylethylmalonamide, carbamazepine, and diphenylhydantoin. The trimethylsilyl derivatives of the anticonvulsants are well separated from each other and from normal serum constituents. The lower limit of detection for each drug is 0.5 mg/liter when 1 ml of serum is analyzed. Within-run precision (CV), established by analysis of 10 replicates, was as follows: primidone (5.4 mg/liter), 2.6%; phenylethylmalonamide (5.5 mg/liter), diphenylhydantoin (6.6 mg/liter), 3.8%; and carbamazepine (10.4 mg/liter), 3.2%. Fifty specimens were analyzed for primidone and 35 for diphenylhydantoin by a standard gas-chromatographic method involving on-column methylation and by the procedure we have developed. The mean value observed for primidone with the on-column alkylation procedure was 9.3 mg/liter and with our procedure was 9.6 mg/liter. When values for our assay were regressed against values for the standard method, the slope of the least-squares line was 0.936, the intercept was 1.00 mg/liter, and r was 0.939. The mean values observed for diphenylhydantoin by on-column methylation and with our procedure were both 12.6 mg/liter. When values for our assay were regressed against the standard method, the slope of the least-squares line was 0.944, the intercept was 0.3 mg/liter, and r was 0.988.

Anticonvulsants

Pharmacokinetics of phenylethylmalonamide (PEMA) in elderly men.

The pharmacokinetics of phenylethylmalonamide (PEMA) were studied in 6 elderly men after oral administration of a single 400 mg dose. Peak PEMA serum levels were obtained within 4 h of intake, half-life values ranged from 30.7-57.9 h in these elderly men. The elimination half-life was twice as long when compared to a study previously performed in young volunteers.

Aged

Gas--liquid chromatographic determination of carbamazepine and phenylethylmalonamide in plasma after reaction with dimethylformamide dimethylacetal.

A previously published procedure for the gas chromatographic analysis of carbamazepine has been modified and expanded to allow simultaneous determination of phenylethylmalonamide, a metabolite of primidone. Internal standards that closely resemble each compound are used, and derivatives are made by reaction with dimethylformamide dimethylacetal. This change of internal standard for carbamazepine and the use of a commercial, pretested column-packing material eliminate the major pitfalls of the original method.

Carbamazepine

Clearance of phenylethylmalonamide during haemodialysis of a patient with renal failure.

Information is presented for the serum concentrations during haemodialysis of primidone, phenobarbitone, and phenylethylmalonamide (PEMA) in a patient with renal failure receiving chronic primidone therapy. The concentrations of drug and metabolites fell during haemodialysis, but PEMA concentrations were above normal at all times. The average renal clearance of PEMA during 6 h of dialysis was found to be 84.7 +/- 4.6 ml min-1.

Humans

Epileptiform seizures in domestic fowl. VIII. Anticonvulsant activity of primidone and its metabolites, phenobarbital and phenylethylmalonamide.

Primidone is an effective anticonvulsant against seizures induced in epileptic fowl by exposure to intermittent photic stimulation. Epileptic fowl metabolize primidone to phenobarbital. Pretreatment of epileptic fowl with SKF 525A to prevent the metabolism of primidone to phenobarbital indicated that primidone itself had anticonvulsant activity. Phenylethylmalonamide, a second metabolite of primidone, did not have anticonvulsant activity when administered at the same dose as primidone.

Animals

Single-dose kinetics of primidone in human subjects: effect of phenytoin on formation and elimination of active metabolites of primidone, phenobarbital and phenylethylmalonamide.

Effect of repetitive administration of phenytoin (PHT) on the single-dose pharmacokinetics of primidone (PRM) was investigated in 3 healthy male subjects. The peak concentration of unchanged PRM was achieved at 12 and 8 h after the administration of PRM in the absence and the presence of PHT, respectively. The elimination half-life of PRM was decreased from 19.4 +/- 2.2 (mean +/- S.E.) to 10.2 +/- 5.1 h (p < 0.05) and the total body clearance was increased from 24.6 +/- 3.1 to 45.1 +/- 5.1 ml/h/kg (p < 0.01) in the presence of PHT. No significant change was observed for the apparent volume of distribution between the two treatments. In the absence of PHT, the measurable amount (> or = 0.1 mumol/l) of phenobarbital (PB) and phenylethylmalonamide (PEMA) did not appear in the serum until 5.3 and 1.3 h after the PRM administration, and the peak concentrations of PB and PEMA were achieved at 52 and 36 h, but the concentrations of both metabolites were very low (PB 1.3 mumol/l; PEMA 1.7 mumol/l). In the presence of PHT, within 0.8 and 0.5 h after the administration of PRM, the derived PB and PEMA appeared in the serum. About a 6-fold increase in the peak concentrations of both the metabolites were observed (PB 8.2 mumol/l; PEMA 11.0 mumol/l). No significant changes were observed for the elimination half-lives of both PB and PEMA in the absence and presence of PHT.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult

Phenylethylmalonamide serum levels in patients treated with primidone and the effects of other antiepileptic drugs.

Data are presented for the serum levels of 2-ethyl-2-phenylmalonamide (PEMA) in patients receiving anticonvulsant medication. Statistical analysis of these data indicates that the serum level of PEMA, which is a metabolite of primidone, is affected not only by the dose of primidone but also by the serum levels of other prescribed anticonvulsant drugs. In particular, phenobarbitone is shown to be a major perturbation upon the PEMA serum level.

Anticonvulsants

Study of the hepatic metabolism of primidone by improved methodology.

The metabolism of the anticonvulsant drug primidone (PRM) was studied in the isolated perfused rat liver by a radiotracer methodology that permits nearly quantitative accounting of the dose as drug and identified metabolites. 14C-PRM and its metabolites were separated by thin-layer chromotography and quantitated by liquid-scintillation counting PRM was extensively converted to known active metabolites: phenobarbital (PB), 15%, and phenylethylmalonamide, 80%, in control livers during 120 minutes. Pretreatment of rats with PB greatly accelerated the rate of PRM metabolism, pretreatment with PRM only moderately so. There was no differential induction of the two metabolism pathways. Addition of phenylethylmalonamide to the perfusate reduced the rate of PRM metabolism but addition of PB did not. It is concluded that conversion of PRM to its active metabolites may be simultaneously influenced by the processes of metabolite induction (PB) and metabolite inhibition (phenylethylmalonamide).

Animals

Acetazolamide-induced interference with primidone absorption. Case reports and metabolic studies.

Effects of acetazolamide on primidone plasma levels were studied in three patients. Apparent interaction occurred in two patients. Primidone was not detected in the plasma when given orally with acetazolamide in one patient. In another, peak serum concentration was delayed, with corresponding delays in urinary excretion of primidone and metabolites. Plasma and urine concentrations of the two metabolites, phenylethylmalonamide and phenobarbital, were also studied.

Acetazolamide

Single-dose pharmacokinetics and anticonvulsant efficacy of primidone in mice.

The pharmacokinetics and efficacy of the anticonvulsant primidone (PRM) and its active metabolites, phenobarbital (PB) and phenylethylmalonamide (PEMA), were studied after single-dose administration in mice. The half-life of PB is twice that of PRM and PEMA. The plasma/brain ratios provide evidence of poor penetration of PRM into brain. The results support our findings of negligible or absent PRM concentrations in the brains of patients on primidone therapy who were undergoing surgery for intractable epilepsy. The anticonvulsant properties of PRM, PB, and PEMA against maximal electroshock in mice were also studied with the use of the metabolic inhibitor SKF 525A. The half-life, potency, peak anticonvulsant effect, and effective dose curves of these compounds indicate that the anticonvulsant effect of short-term oral PRM administration in mice is from derived PB.

Animals

Primidone metabolism in renal insufficiency and acute intoxication.

Primidone (PRIM) is metabolized into phenobarbital (PB) and phenylethylmalonamide (PEMA). During anticonvulsant therapy with PRIM under normal conditions PB represents by fat the largest portion of the total concentration of all three components (PRIM + PB + PEMA). In combined therapy with diphenylhydantoin (DPH), and during chronic PRIM overdosage, the relative concentration of PB is even higher. A case of renal insufficiency while on PRIM therapy and a case of acute PRIM intoxication are presented. In both cases PRIM and PEMA are elevated while PB is relatively low. The mechanisms involved in this phenomenon are discussed. Excluding young children with chronic PRIM overdosage, and the endogenous and exogenous intoxication described here, a relative PB concentration below 40% indicates a lack of patient compliance if a steady treatment schedule has been maintained for at least 3 weeks.

Acute Disease

The disposition of primidone in elderly patients.

1. The pharmacokinetics and metabolism of primidone at steady-state were studied in 10 elderly patients aged 70-81 years and eight control subjects aged 18-26 years. 2. Primidone half-lives and clearance values (mean +/- s.d.) were similar in the elderly and in the young (12.1 +/- 4.6 vs 14.7 +/- 3.5 h and 34.8 +/- 9.0 vs 33.2 +/- 7.2 ml h-1 kg-1 respectively. 3. The serum concentrations of the metabolites phenylethylmalonamide (PEMA) and phenobarbitone relative to those of parent drug were higher in the elderly than in the young, the difference being significant (P less than 0.01) in the case of PEMA. 4. The renal clearances of primidone, phenobarbitone and PEMA were moderately decreased in the elderly but this reduction was statistically significant only for PEMA. Elderly patients excreted a reduced proportion of unchanged primidone and an increased proportion of PEMA in urine. 5. Ageing is associated with a greater accumulation of PEMA, which is unlikely to have a major clinical significance.

Adolescent

Isoniazid as an inhibitor of primidone metabolism.

Isoniazid inhibited the metabolism of primidone in a patient with focal seizures. The steady-state serum level of primidone rose when the patient received both drugs simultaneoulsy. The serum levels of the primidone metabolites, phenobarbital and phenylethylmalonamide, fell and the rate of metabolism of primidone decreased. The results are similar to those observed when isoniazid is adminstered with diphenylhydantoin.

Depression, Chemical

Kinetics of primidone metabolism and excretion in children.

The metabolism and excretion of orally administered primidone was studied in 12 children, aged 7 to 14 yr during long-term dosing. Plasma concentrations of primidone (Pr) peaked at 4 to 6 hr and declined exponentially from 6 to 24 hr, with half-life (t1/2) values ranging from 4.5 to 11 hr. A mean of 92% (72% to 123%) of the administered dose was recovered within 24 hr from the urine as Pr and its metabolites. Of the total Pr daily dose, 42.3% (15.2% to 65.9%) was recovered as unchanged drug, 45.2% (16.3% to 65.3%) as phenylethylmalonamide (PEMA), and 4.9% (1.1% to 8.0%) as phenobarbital (Pb). The mean rate constant for conversion of Pr to PEMA (K1) was 0.0424 hr-1, for conversion of Pr to Pb (K2) was 0.0045 hr-1, and for excretion of unchanged Pr (K3) was 0.0389 hr-1. Of Pb excreted, 43% (13% to 100%) was unchanged, 15% (0% to 27%) was unconjugated p-OH Pb, 20% (0% to 44%) was conjugated p-OH Pb, and 22% (0% to 33%) was conjugated 3,4-OH Pb. KE appears to be important determinant of the steady-state plasma concentration of Pb, but interindividual differences in K2 have little influence on the overall rate constant for elimination of Pr.

Adolescent

Primidone crystalluria following overdose. A report of a case and an analysis of the literature.

Seven cases of crystalluria following primidone overdose have been reported since the 1950s. An eighth case of primidone crystalluria following overdose is presented. Because of low aqueous solubility (600 mg/L at 37 degrees C) which is directly proportional to temperature, any factor increasing renal excretion of unchanged primidone predisposes to crystal formation. Renal clearance is dependent on dosage because of negligible protein binding, zero-order conversion to phenobarbitone (phenobarbital) and first-order conversion to phenylethylmalonamide. Therapy with other anticonvulsants known to induce the metabolism to phenobarbitone does not appear to be protective against crystalluria in overdose situations. The critical serum primidone concentration for crystalluria presence seems to be 80 mg/L. There is evidence for nephrotoxicity of the crystals themselves if formed in vivo (actual crystal presence during voiding). The chemical phenomenon of supersaturation of a solution is protective against in vivo crystal formation with subsequent nephrotoxicity. Vigorous hydration to augment elimination and to lessen the propensity for renal toxicity is recommended.

Adult