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Treatment of postanoxic intention myoclonus with valproic acid.

Valproic acid in therapeutic doses was used in the treatment of postanoxic intention myoclonus. Disappearance of the myoclonus occurred with marked improvement in the electroencephalogram. No significant side effects were noted. Hepatic function tests were monitored. Determination of valproic acid plasma levels was used to guide therapy. Levels above 55 micrograms were generally required. The patient remains free of myoclonus after four and one half months.

Humans

Plasma protein binding interaction between phenytoin and valproic acid in vitro.

1 Valproic acid or phenytoin were added to fresh human serum in varying concentrations and their binding characteristics determined by the method of Scatchard (1949). 2 Changes in serum albumin binding were investigated for phenytoin in the presence of 280, 560, 1050 and 2100 mumol l-1 valproic acid, and for valproic acid in the presence of 40, 120, 280 and 480 mumol l-1 phenytoin. 3 Phenytoin appeared to bind to a single site on the albumin molecule and could be competitively displaced from this site by concentrations of valproic acid above 280 mumol l-1. 4 At high concentrations of valproic acid, the affinity of phenytoin for albumin was greatly decreased but the number of available binding sites was increased from one to four. 5 Valproic acid was bound to two high affinity and five low affinity binding sites but the latter were not detectable at valproic acid concentrations below 2100 mumol l-1. 6 Phenytoin displaced valproic acid from its high affinity binding sites, although this was statistically significant only at a concentration of 480 mumol l-1 phenytoin.

Binding Sites

Excretion of valproic acid into semen of rabbits and man.

Dipropylacetic acid (VPA, valproic acid) has been quantified in plasma and semen from rabbits and man using a new gas-liquid chromatographic assay. The drug assay is rapid, sensitive and free from interference by VPA metabolites. The beta phase half-life of VPA in rabbits after an i.v. dose (50 mg/kg) was 56 +/- 6 min. The concentration of VPA in rabbit plasma was 17 to 30 times the concentration in rabbit semen. In man, 500 mg doses of the free acid, p.o., resulted in VPA concentrations in plasma that were 11 to 17 times the concurrent levels in semen. VPA, in concentrations up to 10(-3) M, did not influence the motility of rabbit spermatozoa in vitro.

Adult

Valproic acid binding to human serum albumin and determination of free fraction in the presence of anticonvulsants and free fatty acids.

The interaction between valproic acid (VPA) and human serum albumin (HSA) was investigated using the equilibrium dialysis technique under various conditions. Solutions of VPA in HSA (2 x 10(-4) M) were dialyzed against isotonic phosphate buffer at 37 degrees C. Protein and buffer compartments were assayed for VPA by GLC. The free fraction (alpha) of VPA increased from 0.13 at 27 microgram/ml to 0.49 at 103 microgram/ml. Scatchard plots were linear, indicating the existence of one type of binding site. The mean (+/- % SD) number of binding sites per macromolecule was 2.06 +/- 3.7% and the mean (+/- % SD) association constant was 2.69 x 10(4) +/- 15.0% liters/mole. The effects of three anticonvulsants (phenytoin, phenobarbital, and carbamazepine) and four major free fatty acids (FFA) (stearic, palmitic, oleic, and linoleic) on alpha were studied. The free fraction, 0.18, was not affected by phenobarbital (20 and 40 microgram/ml), carbamazepine (10 and 20 microgram/ml) or phenytoin (20 and 40 microgram/ml). Each of the four FFA caused a significant increase in alpha: 19--48% increase at 100 microgram/ml of FFA and 88--118% at 200 microgram/ml.

Anticonvulsants

Effects of carbamazepine on valproic acid kinetics in normal subjects.

Carbamazepine and valproic acid are used together in the treatment of epilepsy. It is therefore, relevant to investigate the possibility of a carbamazepine effect on valproic acid disposition, particularly since carbamazepine is known to induce enzymes. We gave valproic acid orally to 6 normal subjects, 250 mg twice daily for 4 wk. Carbamazepine, 200 mg once daily, was begun after 4 days on valproic acid. Serum drug concentrations were measured during 4 dosing intervals, once before and 3 times after beginning carbamazepine. Minimum steady-state concentrations of valproic acid declined after carbamazepine from 34.4 +/- 5.1 to 27.1 +/- 4.4 mug/ml (p less than 0.0005). Clearance rose from 6.46 +/- 0.80 to 8.48 +/- 2.28 ml/hr/kg (p less than 0.01). The increase in clearanace and decrease in minimum steady-state levels was apparent only after 2 wk on carbamazepine. The elimination rate constant (KE) during the dosing interval did not rise during carbamazepine administration (0.0623 +/- 0.0168 hr--1 before and 0.0573 +/- 0.0168 hr--1 after, p greater than 0.25), raising the possibility of an increase in distribution volume.

Adult

Dose-dependent inhibition in plasma protein binding of valproic acid during continued treatment in guinea-pigs.

Plasma protein binding of valproic acid over a wide range of steady-state plasma concentration (11.3 +/- 2.6-1303.0 +/- 122.9 micrograms mL-1: s.e.m., n = 5) in guinea-pigs has been studied. Valproic acid was given by intravenous constant infusion. At steady-state the plasma protein binding of valproic acid was analysed. Nonlinear binding was observed. Unbound fraction (fu) of valproic acid increased from 25 to 95% with the increase of steady-state plasma concentration (Css). The plasma protein-bound drug concentration (Cb) of valproic acid increased initially with Css but decreased after the Css exceeded 345.0 micrograms mL-1, where the Cb was 152.5 +/- 26.8 micrograms mL-1. At a Css of 1303.3 +/- 122.9 micrograms mL-1 the Cb was significantly (P less than 0.05) decreased to 72.8 +/- 20.2 micrograms mL-1. Binding characteristics of valproic acid in-vitro were studied using drug-free guinea-pig plasma with added valproic acid (10-1000 micrograms mL-1). The binding behaviour was also nonlinear in-vitro. The fu increased from 14 to 79% with the increase of valproate concentrations. No decrease in Cb was observed throughout the range. The study demonstrated that binding characteristics of valproic acid in-vivo and in-vitro are not parallel. The results suggest that valproic acid may produce or induce plasma protein binding competitors; metabolites of valproic acid may be implicated.

Animals

Decreased plasma protein binding of phenytoin in patients on valproic acid.

1 Plasma protein binding of phenytoin and of valproic acid were measured in ten epileptic patients on this drug combination. Ten other epileptics not on valproic acid served as controls. All patients had normal kidney function. 2 The measured free fraction of phenytoin among the patients on valproic acid ranged from 12.5 to 23.2% and after recalculation to a plasma albumin level of 45 g/l from 12.5 to 20.0 (median 15.4%). This differed significantly (P = 0.002, Mann- Whitney U-test) from the control patients where the normalized values ranged from 9.9 to 13.9% with a median value of 11.8%. 3 The measured free fractions of phenytoin and of valproic acid showed a significant correlation which, however, was due to the quantitative relation between the degree of binding of both these drugs and the concentration of plasma albumin. There was no discernable relation in this material between the free concentration of valproic acid and the free fraction of phenytoin. 4 It is concluded that patients on combined treatment with phenytoin and valproic acid have an unpredictably raised free fraction of phenytoin. This drug interaction therefore can complicate the important plasma level monitoring of phenytoin in epileptic patients unless the free concentration of this drug can be analysed or estimated.

Adolescent

Valproic acid (Depakene). A new anticonvulsant agent.

Valproic acid, a new anticonvulsant, is most effective in absence seizures (simple and complex), but it has produced improvement in tonicclonic seizures, mixed absence with tonic-clonic seizures, and myoclonic epilepsy. It is useful alone or as an adjunct to other anticonvulsants and may allow the dosage of the latter to be reduced. Some patients who are refractory to other anticonvulsants may respond to valproic acid. Adverse reactions occur in about 20% of patients. Gastrointestinal disturbances and drowsiness (usually noted when valproic acid is given with other anticonvulsants) are the most common reactions; hair loss is observed less frequently. Untoward effects are usually transient and do not require discontinuation of use of the drug.

Animals

Valproic acid: reversibly acting drug?

Valproic acid [dipropylacetic acid (DPA)] was evaluated in an alumina-gel monkey model (N = 12) by constant-rate intravenous infusion. The data indicated: (a) a statistically significant decrease in seizure frequency the first 2 days of drug Step I (45-55 mug/ml) and drug Step II (90-110 mug/ml) which was temporary, lasting 2 days only; (b) a later, more permanent decrease in siezure frequency which was not apparent until drug Setp III (130-170 mug/ml); and a delayed return of the seizure frequency to predrug levels for 2 weeks after drug administration was discontinued, with no DPA detectable in plasma after the initial postdrug day. Whether DPA will behave as a reversibly acting drug was discussed.

Animals

The effects of the anticonvulsant valproic acid on cerebral indole amine metabolism.

The effects of valproic acid (500 mg/kg, ip, 1 h prior to testing) on indole amine metabolism were studied in rats by measurement of the contents of tryptophan, 5-hydroxytryptophan (5-HTP), 5-hydroxytryptamine (5-HT), and 5-hydroxyindoleacetic acid (5-HIAA) in the cerebral hemisphere. Tryptophan and 5-HIAA levels were increased, whereas 5-HTP and 5-HT remained unchanged. Furthermore, valproic acid failed to alter the levels of 5-HTP and DOPA, 5-HT and DA, and 5-HIAA in animals pretreated, respectively, with 3-hydroxybenzyl hydrazine (a decarboxylase inhibitor), pargyline (a monoamine oxidase inhibitor), or probenecid (a compound which blocks 5-HIAA transport out of the brain and cerebrospinal fluid). These results militate against the possibility that valproic acid alters the rate of tryptophan hydroxylation or the synthesis of 5-HT. However they do support the concept that valproic acid increases brain 5-HIAA by inhibition of the transport mechanism which removes 5-HIAA from the brain.

5-Hydroxytryptophan

[On the enteral absorption of valproic acid (author's transl)].

The absorption of valproic acid (dipropylacetic acid, DPA)--administered by capsules (free valproic acid) and dragees (valproate sodium)--has been studied. Regarding their bioavailability, both forms of administration examined are equivalent, which means that they are representing therapeutical alternatives.

Biological Availability

Clinical efficacy of valproic acid in relation to plasma levels.

Valproic acid is a new antiepileptic drug recently introduced in the United States for the treatment of absence seizures. In this study on patients with absence and other seizure types, the majority of patients achieved optimal control within four weeks of therapy. No patient responded to valproic acid who did not show an initial clinical response by four weeks of active therapy. Optimal response was generally achieved when plasma levels were greater than 55 microgram/ml. Excellent clinical response was observed in the treatment of absence and myoclonic seizures. Twenty-two patients continued in a long term study have maintained the same degree of seizure control as observed at the time of optimal control.

Adolescent

[Valproic acid in the treatment of epilepsy with special emphasis on serum level determination (author's transl)].

Valproic acid has become a regular component of antiepileptic therapy. Generally it is used against genetically caused, primary generalized epilepsies with bilateral hypersynchronous neuronal discharges in the EEG. An improvement can also be observed by Valproic acid-treatment for secondary generalized and partial epilepsies. Therapeutic results could possibly be improved through a consideration of the serum concentration of valproic acid. Some of the commercial preparations contain the sodium salt of Valproic acid. The free acid which is quickly absorbed, is released in the stomach (tablet) or in the intestine (dragee). The half life is about 15 to 17 hours (one finds a range of 6 to 20 hours in the literature). In view of the half life, it is recommended that the daily dose should be divided into three single doses. About 84 to 95% of the substance is protein bound. Up to now, clinically relevant observations concerning the displacement of valproic acid from its protein binding are unknown. Recently in in vitro studies a decreased protein binding of valproic acid due to phenylbutazone, salicylic acid, and sulfadimethoxine and vice versa, a displacement of phenobarbital and phenytoin caused by valproic acid could be demonstrated. The therapeutic range of the serum level was between 50 and 120 mcg/ml. Individual patients showed that the dispensed dose did not reliably yield the expected serum levels. The necessary daily dose lies for adults between 600 and 2400 mg, in children between 15 and 150 mg/kg. The wide range of allowable dosis is dependent on whether or not valproic acid is to be given in conjunction with other antiepileptic drugs. When phenobarbital and valproic acid are given in conjunction one should be alert for a rise in the phenobarbital serum level. Results of studies in which valproic acid was combined with several other antiepileptic and psychotropic drugs are reported. The majority of the researchers determine a clear parallelism between clinical improvement and a normalization of the EEG in primary generalized epilepsies with bilateral synchronous 3/sec. spikes and waves. The background activity, determined by visual inspection, is not affected. Few workers discuss the correlation of the side effects of valproic acid and its serum level. Tiredness and impaired function of thrombocytes has been observed to be dependent on the valproic acid plasma level.

Blood Platelets

Modification of phenytoin clearance by valproic acid in normal subjects.

1 The effect of valproic acid on the distribution and elimination kinetics of intravenously administered phenytoin has been investigated in eight normal volunteers. 2 In each of the subjects studied the volume of distribution of phenytoin increased significantly during treatment with sodium valproate (1200 mg daily for 7 days). 3 Phenytoin clearance was markedly increased in presence of valproic acid as compared to control values (0.52 +/- 0.17 v 0.38 +/- 0.11 ml min-1 kg-1 respectively, P less than 0.02). 4 It is suggested that the increase of the volume of distribution and of the serum clearance are secondary to displacement of phenytoin from plasma protein binding sites by valproic acid.

Adult

Steady-state kinetics of valproic acid in epileptic patients.

Pharmacokinetic evaluation and prediction were carried out in 20 epileptic patients. Using conventional pharmacokinetic techniques and a one-compartment model, predicted and observed valproic acid plasma concentrations were compared. Valproic acid assay was performed by gas-liquid chromatography. There was good agreement between predicted and observed plasma concentrations. Most patients had predicted half-lives (t1/2s) of 6 to 8 hr, independent of the plasma concentration of valproic acid. Five patients had predicted t1/2s of 12 hr. The correlation between dose and plasma level was poor. Most patients had valproic acid plasma levels between 55 and 100 microgram/ml. Administration of valproic acid three times a day with determination of individual plasma concentrations offers a reliable method of monitoring. Constant levels are maintained in individual patients, but there is substantial intersubject variation.

Adolescent

Valproic acid: interaction with other anticonvulsant drugs.

The interaction of valproic acid and other antiepileptic drugs was studied in 25 patients for 5 to 9 months. Clinical evaluations, seizure records, and antiepileptic drug levels were followed regularly. Eleven of the 13 patients required a reduced phenobarbital dose when concurrently treated with valproic acid. This reduction was prompted by sedation. An average dose reduction of 46 percent resulted in an average serum phenobarbital decrease of 15 percent. Ten of 15 patients had decreased phenytoin concentrations during concurrent administration with valproic acid. No definitive conclusion was reached about other antiepileptic drugs. Decreased phenobarbital excretion because of urine acidification and displacement of phenytoin from protein binding sites may account for the observations. Careful monitoring of anticonvulsant levels is required in anticipation of the documented interactions.

Adolescent

Effect of phenytoin on protein binding of valproic acid.

In vitro experiments using the equilibrium dialysis technique were performed to determine the binding of valproic acid to plasma components in the absence and presence of therapeutic concentrations of phenytoin. The free fraction of valproic acid was found to be dependent on the total valproic acid concentration. Phenytoin did not influence valproic acid protein binding.

Humans