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At least 19 recordsLinked to original sources

The "forgotten" cross-tolerance between phenobarbital and primidone: it can prevent acute primidone-related toxicity.

PURPOSE: We report on the effect that pretreating patients with phenobarbital has on averting adverse events when primidone is introduced. METHODS: Thirty patients with intractable partial epilepsy were pretreated with phenobarbital before starting primidone. Therapy with primidone was started at a dosage of 500 mg/day, and the phenobarbital was stopped. The primidone dose was then increased by 125 to 250 mg every 3 weeks until adverse events or a seizure-free state was reached. All previous antiepileptic medications were tapered down to yield a primidone monotherapy regimen. RESULTS: Twenty-six patients (87%) tolerated the introduction of primidone with minimal or no adverse events. Only one patient had to discontinue primidone during the initial 4 weeks because of severe dizziness. This was the only patient in whom primidone monotherapy could not be reached because of adverse events. Three other patients experienced dizziness severe enough to interfere with their activities. This symptom disappeared in two patients after the dose was lowered; in the other patient, primidone was stopped and phenobarbital was restarted for another 4 days. No symptoms recurred when primidone was reintroduced on the fifth day. CONCLUSIONS: Pretreatment with phenobarbital can minimize the occurrence of intolerable adverse events associated with the introduction of primidone.

Adolescent↗

Intoxication with primidone: continuous monitoring of serum primidone and its metabolites during forced diuresis.

An 18 year old girl is reported, who ingested 15 g of primidone (Liskantin), 330 mg/kg, to commit suicide. Continuous monitoring of the serum levels of primidone, PEMA, and phenobarbital revealed increased elimination of primidone by forced diuresis (6000 ml/24 hours). It is concluded that forced diuresis inhibits the otherwise mandatory increase in primidone metabolites, PEMA and phenobarbital. It is suggested that even after improvement of the clinical symptoms forced diuresis should be continued for at least 48 hours. In epileptic patients the reinstitution of primidone therapy should be considered only on the third day after accidental ingestion, if the clinical symptoms have improved, and if there is no possibility of immediate determination of primidone serum levels.

Adolescent↗

[Ratio of primidone to phenobarbital serum levels as a criterion in the assessment of anticonvulsive therapy with primidone (author's transl)].

Serum levels of primidone and phenobarbital were measured and showed a relatively constant ratio in patients under primidone monotherapy. In outpatients, however, this ratio was lower and the range of its values wider than in hospitalized children, and the difference was significant (1:2.05 or 1:2.95). The reason for this turned out to be irregular intake of the drug by the outpatients. The ratio of primidone to phenobarbital serum levels offers itself as a control of regularity of intake of primidone.

Adolescent↗

Effect of primidone concentration on glass transition temperature and dissolution of solid dispersion systems containing primidone and citric acid.

The glass transition temperatures of glasses containing various concentrations of primidone in citric acid were measured and found to increase as the primidone concentration increased. Dissolution studies of these systems and particle-size measurements of primidone precipitated during dissolution of devitrified glasses suggest that the increase in the dissolution rate of the devitrified systems is due to both the small size of the precipitated crystals and the excellent wettability of these systems.

Chemistry, Pharmaceutical↗

Chronic primidone treatment in the rat: an animal model of primidone therapy.

A continuously protective, nontoxic, oral model of chronic treatment with primidone was developed in the rat. Rats were treated with primidone (100 mg/kg) by gastric gavage twice daily for up to 8 weeks. This treatment was continuously protective as measured by seizures induced by hexafluorodiethyl ether and minimally toxic as measured by weight gain. Plasma primidone concentration reached a peak (13 micrograms/ml) 2 hours after gavage and was almost undetectable by 12 hours. Plasma phenobarbital concentration peaked (52 micrograms/ml) at 6 hours postgavage after reaching a minimum (19 micrograms/ml) at one hour postgavage. Phenobarbital concentrations measured in plasma, brain and liver after 8 weeks of chronic treatment correlated significantly between each tissue and plasma.

Administration, Oral↗

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↗

NTP Toxicology and Carcinogenesis Studies of Primidone (CAS No. 125-33-7) in F344/N Rats and B6C3F1 Mice (Feed Studies).

Primidone is used alone or with other anticonvulsants in the control of grand mal, psychomotor, and focal epileptic seizures. It may control grand mal seizures refractory to other anticonvulsant therapy. Primidone was nominated by the National Cancer Institute for 2-year toxicology and carcinogenicity studies due to its human use as an anticonvulsant. Male and female F344/N rats and B6C3F1 mice received primidone (greater than 99% pure) in feed for 14 days, 14 weeks, or 2 years. Genetic toxicology studies were conducted in Salmonella typhimurium, cultured Chinese hamster ovary cells, and mouse bone marrow cells. 14-DAY STUDY IN RATS: Five male and five female rats were exposed to 0, 1,250, 2,500, 5,000, 10,000 or 20,000 ppm primidone (equivalent to average daily doses of approximately 120, 240, 500, 970, or 1,100 mg primidone/kg body weight to males and 120, 240, 500, or 900 mg/kg to females) in feed for 14 days. All 20,000 ppm females died before the end of the study as did one 10,000 ppm male and two 20,000 ppm males. The mean body weights of 10,000 ppm males and females and 20,000 ppm males were significantly less than those of the controls. Feed consumption by all exposed rats was generally similar to that by the controls. Males and females in the 10,000 and 20,000 ppm groups were observed to have eye discharge, ataxia, and abnormal posture and were thin and lethargic. 14-DAY STUDY IN MICE: Five male and five female mice were exposed to 0, 625, 1,250, 2,500, 5,000 or 10,000 ppm primidone (equivalent to average daily doses of approximately 100, 200, 400, or 800 mg/kg body weight to males and 100, 250, 500, or 900 mg/kg to females) in feed for 14 days. All mice in the 10,000 ppm groups and one male and one female mouse in the 5,000 ppm groups died on day 3 of the study. The mean body weights of mice in the 625, 1,250, 2,500, and 5,000 ppm groups were similar to those of the controls. Feed consumption by all exposed mice was generally similar to that by the controls. Males and females in the 10,000 ppm groups were observed to have abnormal posture, ataxia, and lethargy. 14-WEEK STUDY IN RATS: Groups of 10 male and 10 female rats were exposed to 0, 300, 600, 1,300, 2,500, or 5,000 ppm primidone (equivalent to average daily doses of approximately 20, 40, 100, 200, or 400 mg/kg) in feed for 14 weeks. All rats survived to the end of the study. The mean body weights of male and female rats in the 2,500 and 5,000 ppm groups were significantly less than those of the controls. Feed consumption by all exposed rats was generally similar to that by the controls. A minimal to mild exposure-related thrombocytosis occurred on day 22 and at week 14 in all exposed groups of male rats and in females in the 1,300 ppm or greater groups. A minimal decrease in hemoglobin concentration occurred in 2,500 and 5,000 ppm male and female rats on day 22 and at week 14. The incidences of centrilobular hepatocyte hypertrophy in male rats exposed to 600 ppm or greater and in female rats exposed to 1,300 ppm or greater were significantly greater than those in the controls. The severity of chronic nephropathy in male rats exposed to 1,300 ppm or greater increased with increasing exposure concentration. 14-WEEK STUDY IN MICE: Groups of 10 male and 10 female mice were exposed to 0, 300, 600, 1,300, 2,500, or 5,000 ppm primidone (equivalent to average daily doses of approximately 50, 100, 200, 400, or 1,000 mg/kg to males and 60, 120, 220, 440, or 1,100 mg/kg to females) in feed for 14 weeks. Three male and two female mice in the 5,000 ppm group died during week 1 of the study. The final mean body weights of all exposed groups were similar to those of the controls. Feed consumption by male mice in the 5,000 ppm group was slightly greater than that by the controls; this may have been due to feed spillage. Male and female mice in the 5,000 ppm groups were ataxic and lethargic. Compared to controls, the estrous cycle lengths of females exposed to 1,300, 2,500, or 5,000 ppm were significantly longer. The liver weights of male and female mice exposed to 600 po 600 ppm or greater were significantly greater than those of the controls. The incidences of centrilobular hepatocyte hypertrophy in all exposed males and in females exposed to 600 ppm or greater and the incidences of cytoplasmic alteration of the adrenal gland and hematopoietic cell proliferation of the spleen in 2,500 and 5,000 ppm males and in 5,000 ppm females were significantly greater than in the controls. 2-YEAR STUDY IN RATS: Groups of 50 male and 50 female F344/N rats were exposed to 0, 600, 1,300, or 2,500 ppm primidone (equivalent to average daily doses of approximately 25, 50, or 100 mg/kg) in feed for 2 years. Survival, Body Weights, and Feed Consumption Survival of the 1,300 and 2,500 ppm males was sig nificantly less than that of the controls. The mean body weights of males and females in the 2,500 ppm groups were less than those of the controls, beginning at week 29 for males and week 17 for females; the mean body weights of 1,300 ppm males and females were less than those of the controls during the second year of the study. Feed consumption by all exposed groups of rats was generally similar to that by the controls. Pathology Findings Male rats exposed to primidone had increased inci dences of thyroid gland follicular cell neoplasms (adenoma and/or carcinoma). All exposed groups of male rats had follicular cell adenomas or carcinomas (combined) at incidences above the historical control range, with the highest incidence in the 1,300 ppm group. Hepatocyte cytoplasmic vacuolation and centrilobular hypertrophy were associated with primidone exposure in male and female rats. These changes were more severe in females than in males and the incidences in all exposed groups of females were significantly greater than those in the controls. Females in the 2,500 ppm group had an increased incidence of hepatocellular eosinophilic foci. In 2,500 ppm males, the incidence of renal tubule hyperplasia was greater than that in the controls in the standard evaluation. Additional hyperplasias were found in the extended evaluation, and the incidences in exposed groups of males were significantly greater than that in the controls. In the extended evaluation, the incidence of renal tubule adenoma in 2,500 ppm males was significantly increased. The incidence of adenoma or carcinoma (combined) in 2,500 ppm males in the combined standard and extended evaluations were marginally increased over those in the controls. Male rats had an exposure-related increase in the severity of chronic nephropathy, which probably accounted for the reduced survival in the 1,300 and 2,500 ppm groups. The incidences of kidney cysts were increased in 1,300 and 2,500 ppm males. Hyperparathyroidism, secondary to the loss of renal function, was present in many exposed male rats. The incidences of parathyroid gland hyperplasia in all groups of exposed males were significantly greater than that in the controls. 2-YEAR STUDY IN MICE: Groups of 50 male and 50 female mice were exposed to dietary levels of 0, 300, 600, or 1,300 ppm primidone (equivalent to average daily doses of approximately 30, 65, or 150 mg/kg to males and 25, 50, or 100 mg/kg to females) in feed for 2 years. Survival, Body Weights, Feed Consumption, and Clinical Findings Survival of the 1,300 ppm males was significantly less than that of the controls. During the second year of the study, the mean body weights of 1,300 ppm male and female mice were less than those of the controls. The final mean body weights of 600 ppm males and females were less than those of the controls. Feed consumption by all exposed groups of mice was similar to that by the controls. During the latter part of the study, a treatment-related increase in the number of animals with swelling of the abdominal area was observed; necropsy revealed that the swelling was due to liver nodules/masses. Pathology Findings The liver was a target organ in both male and female mice. The incidences and multiplicities of hepatocellular neoplasms (hepatocellular adenoma, hepatocellular carcinoma, and hepatoblastoma) in all exposed groups of males and females (except hepatoblastoma in females) were significantly greater than those in the controls. The incidences of hepatocellular adenoma or carcinoma (combined) and hepatocellular adenoma, hepatocellular carcinoma, or hepatoblastoma (combined) in all exposed groups exceeded the historical control ranges in 2-year NTP studies. The incidences of centrilobular hepatocyte hypertrophy were increased in exposed groups of males and females, and the severities increased with increasing exposure concentration. The incidences of cytoplasmic vacuolization were increased in all exposed groups of females and in 300 ppm males. Incidences of eosinophilic focus in all exposed groups of females were significantly greater than those in the controls. Proliferative changes occurred in the thyroid gland in an exposure-related manner in male and female mice. Incidences of follicular cell hyperplasia were increased in all exposed groups of males and in 600 and 1,300 ppm females, but incidences of follicular cell adenomas were increased only in male mice. GENETIC TOXICOLOGY: Primidone was mutagenic in Salmonella typhimurium strain TA1535 in the absence of S9 activation only; no mutagenicity was detected in strain TA98, TA100, or TA1537, with or without S9. Primidone did not induce sister chromatid exchanges or chromosomal aberrations in cultured Chinese hamster ovary cells, with or without S9. The single in vivo study with primidone, a mouse bone marrow micronucleus test, also gave negative results. CONCLUSIONS: Under the conditions of these 2-year feed studies, there was equivocal evidence of carcinogenic activity of primidone in male F344/N rats based on a marginal increase in thyroid gland follicular cell neoplasms, primarily adenomas, and a marginal increase in renal tubule neoplasms. There was no evidence of carcinogenic activity of primidone in female F344/N rats exposed to 600, 1,300, or 2,500 ppm. There was clear evidence of carcinogenic activity of primidone in male B6C3F1 mice based on the increased incidences of hepatocellular neoplasms, and the increased incidence of thyroid gland follicular cell adenomas was also considered to be chemical related. There was clear evidence of carcinogenic activity of primidone in female B6C3F1 mice based on the increased incidences of hepatocellular neoplasms. Exposure of rats to primidone resulted in increased incidences of hepatocyte cytoplasmic vacuolization and centrilobular hypertrophy in males and females and eosinophilic foci in females. The increased severity of nephropathy and increased incidence of renal tubule hyperplasia in male rats were related to primidone exposure. Exposure of male mice to primidone resulted in hepatocyte centrilobular hypertrophy and thyroid gland follicular cell hyperplasia. Exposure of female mice to primidone resulted in hepatocyte centrilobular hypertrophy and cytoplasmic vacuolization, eosinophilic focus, and thyroid gland follicular cell hyperplasia. Synonyms: 5-Aethyl-5-phenyl-hexahydropyrimidin-4,6-dion; 2-deoxyphenobarbital; 2-desoxyphenobarbital; desoxyphenobarbitone; 5-ethyldihydro-5-phenyl-4,6 (1H,5H)-pyrimidinedione; 5-ethylhexahydro-4,6-dioxo-5-phenylphrimidine; 5-ethylhexahydro-5-phenylpyrimidine-4,6-dione; 5-ethyl-5-phenylhexahydropyrimidine-4,6-dione Trade names: Cyral; Hexadiona; Hexamidine; Lepimidin; Lepsiral; Majsolin; Midone; Milepsin; Misodine; Misolyne; Mizodin; Mizolin; Mylepsin; Mylepsinum; Mysedon; Mysoline; Prilepsin; Primacione; Primaclone; Primacone; Primakton; Primadon; Prysoline; Pyrimidone; ROE 101; Sertan

Journal Article↗

How worthwhile is plasma primidone level measurement?

Simultaneous steady-state plasma levels of primidone and phenobarbitone were studied in 43 patients receiving primidone therapy. Primidone and phenobarbitone levels in the individual appeared to be linearly related but steady-state plasma phenobarbitone levels correlated better with primidone dose than did steady-state plasma levels of primidone itself. This pattern of correlation is probably due to primidone being more rapidly eliminated than the phenobarbitone that is derived from it. Steady-state plasma primidone levels showed more inter-dosage fluctuation than steady-state plasma phenobarbitone levels in the same patients. In the subjects studied age, sex, and concurrent anticonvulsant therapy did not alter the relation between plasma levels of primidone or phenobarbitone and primidone dose. The study suggested that knowledge of steady-state plasma primidone levels adds little to knowledge of plasma phenobarbitone levels in guiding the therapy of epilepsy with primidone.

Adolescent↗

The effect of phenytoin and ethosuximide on primidone metabolism in patients with epilepsy.

Little is known about the influence of phenytoin and ethosuximide on primidone. Therefore we studied three groups of patients: 28 receiving primidone alone, 16 on comedication of primidone with phenytoin and 9 on primidone plus ethosuximide. Antiepileptic drug determinations were done with Kupferberg's gas chromatographic method. The results show that the addition of phenytoin--but not ethosuximide--does increase the plasma concentration of phenobarbital derived from primidone but not of primidone itself. The phenobarbital/primidone plasma concentration ratio is with 4.2 +/- 0.7 (+/- S.E.) significantly (P less than 0.001) higher in patients receiving primidone and phenytoin as compared to those on primidone alone (1.6 +/- 0.2) or together with ethosuximide (1.4 +/- 0.7). The effect of phenytoin occurs and persists for several days after the steady state plasma concentration of phenytoin has been reached. This effect is probably not due to induction of enzymes hydroxylating primidone but rather to inhibition of the metabolism and/or excretion of phenobarbital. A case of phenobarbital intoxication due to addition of phenytoin to primidone medication is described in detail.

Drug Interactions↗

Comparison of the anticonvulsant efficacy of primidone and phenobarbital during chronic treatment of amygdala-kindled rats.

In amygdala-kindled rats, single-dose administration of primidone did not reduced seizure activity 2 h after i.p. injection, i.e. when plasma levels of the drug were highest, but significant anticonvulsant effects were found 24 h after administration, when the drug was almost completely eliminated. During chronic treatment with primidone, marked anticonvulsant efficacy was determined after 3-15 days of three times daily treatment with 50 mg/kg i.p., indicating that this effect was due to the accumulation of metabolites, especially phenobarbital. Maximum anticonvulsant activity attained during chronic primidone medication was almost equal to that found during chronic treatment of kindled rats with phenobarbital, 30 mg/kg once daily. However, drug plasma level determinations during both treatments showed that on days when both treatments were about equieffective, levels of metabolically derived phenobarbital in the primidone group were significantly lower than levels in rats treated with phenobarbital alone, thus indicating that primidone potentiated the anticonvulsant effect of metabolically derived phenobarbital. Additional evidence for potentiation of the anticonvulsant effect of phenobarbital by primidone was found in single dose experiments with combined injection of both drugs, whereas side-effects, such as ataxia and muscle relaxation, induced by phenobarbital were not increased by combined treatment with primidone. Accordingly, side-effects occurring during chronic primidone treatment were less pronounced than side-effects found during chronic phenobarbital medication. In both treatment groups, tolerance to the anticonvulsant effect developed during the 2nd week of administration, while attenuation of side-effects took place already in the first week. Following cessation of treatment, signs of physical dependence, such as withdrawal hyperexcitability and weight loss, were observed. The data indicate that, at least in kindled rats, the anticonvulsant activity of primidone during chronic treatment is due to the combined and possibly synergistic actions of primidone and metabolically derived phenobarbital.

Amygdala↗

Phenytoin: an inhibitor and inducer of primidone metabolism in an epileptic patient.

The interaction between primidone and phenytoin was studied in an epileptic patient treated with primidone only and primidone plus phenytoin for 3 months. Plasma and urine levels of drugs and metabolites were monitored daily by GC and GC-MS. The addition of phenytoin to the regimen increased steady-state plasma levels of phenobarbitone and phenylethylmalonamide (PEMA), metabolites of primidone, and decreased levels of primidone and unconjugated p-hydroxyphenobarbitone (p-OHPB), a metabolite of phenobarbitone. After withdrawal of phenytoin, plasma phenobarbitone and primidone levels slowly returned to previous steady-state levels, PEMA rapidly decreased to lower levels than before, and p-OHPB levels rose rapidly. Urinary excretion of primidone and its metabolites paralleled the changes in their plasma levels after the addition of phenytoin but the percentage of unconjugated p-OHPB in urine was unchanged during the course of the study. In conclusion phenytoin initially induces the conversion of primidone to PEMA and phenobarbitone, although each to a different extent, but it appears to inhibit the hydroxylation of phenobarbitone. Thus, two apparently contradictory phenomena seem to be involved in the primidone-phenytoin interaction. The net effect is an enhanced increase in plasma phenobarbitone levels.

Adult↗

Acute primidone overdosage with massive crystalluria.

A patient admitted to the hospital in coma was found to have massive primidone crystalluria. Gas chromatographic analysis of blood and urine for primidone and phenobarbital showed high urine primidone levels and high blood phenobarbital levels. The primidone levels suggest that primidone is rapidly cleared into urine. The high blood phenobarbital levels within 12 hr of overdosage with a history of diphenylhydantoin therapy and without phenobarbital therapy or overdosage suggests that diphenylhydantoin may influence the metabolic conversion of primidone to phenobarbital. The relationship of clinical symptomatology to high levels of primidone and phenobarbital is unclear. Analysis of blood and urine for primidone and phenobarbital and urine for crystals is of value in establishing diagnosis and prognosis in cases of suspected primidone overdosage.

Child↗

[The effect of primidone treatment of thyroid hormones in epileptic children and adolescents (author's transl)].

In primidon-treated patients there are significantly decreased serum concentrations of total and free thyroxin, protein bound iodine and base line serum TSH values. In primidon-treated children T3-resin test values, concentration of thyroxin-binding protein and total cholesterol are identical to those of the control group. Degree of diminution in serum concentration of protein bound iodine, total and free thyroxin and base line TSH was independant of the primidon dose per day. Probably the demonstrated alteration in the thyroid function tests studied, is mainly caused by phenobarbital, the major metabolite of primidon and not directly by unmetabolized primidon. It is suggested that the high protein-binding capacity of phenobarbital results in a competitive displacement of protein bound thyroxin comparable to that of DPH. Phenobarbital is know to be a stimulator of the drug metabolizing enzyme system in the liver. This effect may be the cause of an increased turnover of T4 which results in a decreased serum concentration of total and free T4 at last. It seems possible that there is a balance in serum concentration of thyroid hormones on a lower level. Normal euthyroid state may be presumed, if T4-secretion raises, but there is no clue for an increased pituarity response. In contrast to the normal group in primidon-treated children the base line serum TSH values are decreased. It is supposed that another effect of primidon is responsible for this fact. There may be an influence of primidon treatment on hypothalamic pituarity axis. Our findings do not indicate clearly a hypothyroid state in primidon-treated patients; further investigations should give an answer to the guestion, if side effects as tiredness, decreased impetus and constipation are not partly caused by alterations in thyroid hormone system.

Adolescent↗

Pharmacokinetics of primidone and its active metabolites in the dog.

In dogs, the metabolism of primidone and the pharmacokinetics of the drug itself as well as its metabolites phenobarbital and phenylethylmalonic acid diamide (PEMA) was followed after single oral doses of 30 mg/kg (0.14 mmole/kg). Primidone was rapidly absorbed, so that maximal serum concentrations were reached after 2 hr, the concentration fell then with a half-life averaging 5 hr in Beagles and 10 hr in Mongrels. PEMA appeared in plasma with a ka of 0.003--0.005 min-1, reached maximal concentrations after about 6.5 hr in Beagles and 12 hr in Mongrels. The elimination half-life averaged 7.5 hr in Beagles and 14 hr in Mongrels. After single oral doses, phenobarbital could only be detected in low concentrations in some Beagles. Phenobarbital had an elimination half-life of 32 +/- 4.8 hr in Beagles and of 70 +/- 16 hr in Mongrels. During continued treatment with daily doses of 30--50 mg/kg primidone, steady-state concentrations of about 15 micrograms/ml (65 nmole/ml) were reached after 6--8 days, the PEMA concentrations showed rather pronounced fluctuations around average values of 8--10 micrograms/ml (39--49 nmole/ml), whereas the concentrations of primidone mainly remained below 5 micrograms/ml (23 nmole/ml). In mice, the anticonvulsant potency of the 3 drugs was determined: Elevations of the electroconvulsant threshold by 40 V were produced by 0.01 mmole/kg of phenobarbital, 0.017 mmole/kg of primidone or 0.37 mmole/kg of PEMA. Taking the anticonvulsant potency of the 3 drugs into consideration, phenobarbital is responsible for more than 85% of the total anticonvulsant activity during continued medication of primidone. The penetration of primidone and its metabolites into the cerebro-spinal fluid was followed: phenobarbital reached steady state levels already after 1--1.5 hr, primidone and PEMA not before 2.5 hr. The concentrations in CSF roughly corresponded to the free drug in plasma. On account of the similarities in metabolism and pharmacokinetics of primidone in dog and man, the former species seems to be a suitable model in epilepsy research. Differences between both species are most pronounced in the Beagle.

Animals↗

Therapeutic efficacy of phenobarbital and primidone in canine epilepsy: a comparison.

The efficacy of phenobarbital and primidone against canine epilepsy was compared in a controlled study. Thirty-five dogs showing generalized tonic-clonic seizures (grand mal), treated for a minimum of 6 months, were included in the study; fifteen of these were treated with phenobarbital, the other twenty with primidone. Both drugs were dosed according to the clinical requirement; the daily doses ranged from 5-17 mg/kg phenobarbital and from 17-70 mg/kg primidone. The plasma concentrations of phenobarbital, or of primidone and its metabolites phenobarbital and phenylethylmalondiamide (PEMA), were routinely monitored. Complete control of tonic-clonic seizures for 6 months, at least, was attained in six out of fifteen dogs of the phenobarbital group, and in five out of twenty dogs in the primidone group. A further six dogs on phenobarbital, and seven dogs on primidone, were classified as 'improved', i.e. the rate of seizures was reduced by at least 50%. The rest of the dogs were not improved by the treatment. The difference between the efficacy of phenobarbital and primidone was not significant, but primidone gave rise to signs of liver toxicity in fourteen out of twenty dogs, as indicated by considerable elevations of liver enzyme values (alanine transferase, glutamate dehydrogenase, alkaline phosphatase). Phenobarbital is, therefore, regarded as the drug of first choice for the treatment of canine epilepsy.

Animals↗

Primidone and propranolol in essential tremor: a study based on quantitative tremor recording and plasma anticonvulsant levels.

Primidone was compared to the unselective beta adrenoceptor antagonist propranolol in the suppression of essential tremor. In a 4-week single-blind placebo-controlled study primidone was given in increasing doses from 62.5 mg X 1 up to 250 mg X 3 daily and propranolol 20 mg X 3 daily. The drugs produced a similar reduction in the degree of tremor after 2 and 1 weeks' medication respectively. This indicates that primidone can be an alternative to propranolol when beta-blockers are contraindicated. However, primidone was significantly even more effective in the beginning after only 2 doses, when at the same time 10 of 13 patients showed a maximum of acute toxic side-effects producing nausea, vomiting, giddiness and/or sedation. Correlation analysis between the individual tremor amplitude reductions and plasma primidone concentrations showed on the second day a tendency towards a greater reduction in tremor in those patients with the highest primidone plasma concentration. By the fourteenth day tremor had increased compared with the second day and correlation analysis between individual increase in tremor amplitude and plasma phenobarbital concentrations showed the highest degree of tremor increase in those patients who had the highest levels of phenobarbital. These and other data suggest that after the first doses, tremor suppression and acute toxicity is related to the initial exposure to primidone and the plasma level of the drug itself rather than its metabolites phenobarbital and phenylethylmalanomide. The individual tremor frequency spectrums did not change significantly during the placebo and propranolol periods, whereas the frequency tended to decrease during the primidone period.

Adrenergic beta-Antagonists↗

Acute and chronic effects of propranolol and primidone in essential tremor.

We studied the acute and chronic effects of propranolol and primidone in essential tremor by administering long-acting propranolol (80 to 160 mg/d) and primidone (50 to 250 mg/d) to 50 patients. We evaluated patients at 1, 3, 6, 9, and 12 months after treatment and assessed tremor by subjective rating by patients, clinical scoring, and thermographic (accelerometer) recordings. Acute adverse reactions occurred in 8% with propranolol and 32% with primidone. Propranolol was without therapeutic effect in 30%, and 32% had no benefit from primidone. Significant chronic side effects occurred in 17% taking propranolol and in 0% with primidone. Tolerance to drug effect occurred with chronic treatment in 12.5% of patients with propranolol and 13.0% with primidone. We conclude that propranolol and primidone are effective long-term treatment for some patients with essential tremor. Acute adverse reactions with primidone and side effects with chronic use of propranolol hamper therapy.

Aged↗