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Biomedical subjects

E Perucca

Publications and source records attributed to E Perucca.

At least 91 records · Page 5Linked to original sources

The new generation of antiepileptic drugs: advantages and disadvantages.

1. After a hiatus of over 20 years, several new antiepileptic drugs (vigabatrin, lamotrigine, gabapentin, oxcarbazepine, topiramate, felbamate, zonisamide and tiagabine) have reached or approached the registration phase. 2. Compared with older agents, many new drugs exhibit simpler pharmacokinetics. This is especially true for vigabatrin and gabapentin, which are renally eliminated and have a low interaction potential. 3. Unlike most of the older agents, vigabatrin, lamotrigine, gabapentin and tiagabine are devoid of significant enzyme inducing or inhibiting properties. Topiramate, oxcarbazepine and felbamate may induce the metabolism of steroid oral contraceptives. In addition, felbamate also acts as a metabolic inhibitor. 4. To date, the efficacy of new drugs has been evaluated extensively only under add-on conditions in patients with partial seizures (with or without secondary generalization) refractory to conventional treatment. However, there is evidence that lamotrigine, zonisamide, felbamate and, possibly, topiramate may also be effective in generalized epilepsies. 5. In placebo-controlled studies, typically between 15 and 40% of patients with difficult-to-treat partial epilepsy have shown an improvement (defined as a 50% or greater decrease in seizure frequency) after addition of a new drug. Only a small minority of these patients achieved complete seizure control. 6. Compared with older agents, some of the new drugs may have a better tolerability profile. Felbamate, however, has been associated with a high risk of aplastic anaemia and hepatotoxicity. 7. At present, the main use of the new agents is in patients refractory to first-line drugs such as carbamazepine or valproate, and further studies are required to characterize their activity spectrum as well as their potential value in monotherapy. In most patients, new drugs cannot be recommended for first-line use until evidence is obtained that potential advantages in tolerability or ease of use outweigh the drawback of their high cost.

Anticonvulsants↗

Reduced plasma nisoldipine concentrations in phenytoin-treated patients with epilepsy.

PURPOSE: To assess whether phenytoin affects the pharmacokinetics of the dihydropyridine calcium antagonist nisoldipine. METHODS: Twelve patients with epilepsy receiving chronic phenytoin therapy and 12 healthy control subjects matched for age and gender received a single oral dose of nisoldipine (40 and 20 mg, respectively). Blood samples were collected for up to 48 h for estimation of plasma nisoldipine levels by capillary gas chromatography. RESULTS: Mean plasma nisoldipine concentrations were much lower in the patients. Geometric means for areas under the concentration-time curve (AUC0-tn) normalized to a 20-mg dose were 1.6 micrograms/L/h (95% confidence intervals, 0.6-3.8 micrograms/L/h) in the patients compared with 15.2 (10.7-21.6) micrograms/L/h in control subjects (p < 0.002). CONCLUSIONS: These results suggest that phenytoin increases the first-pass metabolism of nisoldipine to a clinically important extent. In view of the magnitude and variability of interaction, use of nisoldipine in patients receiving chronic phenytoin therapy is contraindicated.

Adult↗

Pharmacokinetic profile of topiramate in comparison with other new antiepileptic drugs.

Antiepileptic drugs (AEDs) in broad use today have a number of pharmacokinetic liabilities, including a propensity for clinically meaningful drug interactions. Therefore, new AEDs with improved pharmacokinetic characteristics would be welcomed. The pharmacokinetic profiles of six newer AEDs--topiramate (TPM), gabapentin (GBP), vigabatrin (VGB), lamotrigine (LTG), oxcarbazepine (OCBZ), and felbamate--were reviewed. Some of these AEDs offer an improvement in one or more pharmacokinetic parameters compared with traditional AEDs, with TPM, GBP, VGB, and OCBZ demonstrating the most advantageous overall pharmacokinetic profiles.

Acetates↗

The clinical pharmacokinetics of the newer antiepileptic drugs. Focus on topiramate, zonisamide and tiagabine.

Following the introduction of felbamate, gabapentin, lamotrigine, oxcarbazepine and vigabatrin in the early 1990s, other new antiepileptic drugs have been advancing in clinical development. Those most extensively evaluated to date include topiramate, zonisamide and tiagabine. Topiramate, licensed recently in the UK, acts multifactorially through the blockade of sodium channels and kainate/AMPA receptors, enhancement of gamma-aminobutyric acid (GABA)ergic transmission and inhibition of carbonic anhydrase. It is well absorbed from the gastrointestinal tract and negligibly bound to plasma proteins. When used as a monotherapy, topiramate is eliminated primarily in the urine in an unchanged form with a half-life of 20 to 30 hours; elimination is faster in patients receiving concurrent medication with enzyme-inducing anticonvulsants, in whom the extent of biotransformation becomes more prominent. Zonisamide, which has been commercially available in Japan for some years, also has a multifactorial mode of action, possibly involving the blockade of sodium channels, T-type calcium channels and inhibition of carbonic anhydrase. It is rapidly absorbed, 50% bound to plasma proteins and is eliminated predominantly by biotransformation; zonisamide has a half-life of 50 to 70 hours in monotherapy patients, or 25 to 35 hours in patients comedicated with enzyme-inducing anticonvulsants. Tiagabine, a nipecotic acid derivative which inhibits GABA reuptake, is rapidly and completely absorbed after oral intake. It is highly (96%) bound to plasma proteins and it is eliminated primarily by cytochrome P450 3A-mediated oxidation, with a half-life of about 7 hours in healthy volunteers. Tiagabine metabolism is also enhanced by concurrent medication with enzyme-inducing anticonvulsants, resulting in a need to use dosages larger than those required in monotherapy or valproic acid (sodium valproate)-treated patients. Additional investigational antiepileptic agents included in this article are rufinamide (CGP 33101), fosphenytoin, levetiracetam, losigamone, remacemide and stiripentol. All these drugs have undergone early characterisation with respect to pharmacokinetic features and interaction potential.

Anticonvulsants↗

Clinically significant pharmacokinetic drug interactions with carbamazepine. An update.

Carbamazepine is one of the most commonly prescribed antiepileptic drugs and is also used in the treatment of trigeminal neuralgia and psychiatric disorders, particularly bipolar depression. Because of its widespread and long term use, carbamazepine is frequently prescribed in combination with other drugs, leading to the possibility of drug interactions. The most important interactions affecting carbamazepine pharmacokinetics are those resulting in induction or inhibition of its metabolism. Phenytoin, phenobarbital (phenobarbitone) and primidone accelerate the elimination of carbamazepine, probably by stimulating cytochrome P450 (CYP) 3A4, and reduce plasma carbamazepine concentrations to a clinically important extent. Inhibition of carbamazepine metabolism and elevation of plasma carbamazepine to potentially toxic concentrations can be caused by stiripentol, remacemide, acetazolamide, macrolide antibiotics, isoniazid, metronidazole, certain antidepressants, verapamil, diltiazem, cimetidine, danazol and (dextropropoxyphene) propoxyphene. In other cases, toxic symptoms may result from elevated plasma concentrations of the active metabolite carbamazepine-10,11-epoxide, due to the inhibition of epoxide hydrolase by valproic acid (sodium valproate), valpromide, valnoctamide and progabide. Carbamazepine is a potent inducer of CYP3A4 and other oxidative enzyme system in the liver, and it may also increase glucuronyltransferase activity. This results in the acceleration of the metabolism of concurrently prescribed anticonvulsants, particularly valproic acid, clonazepam, ethosuximide, lamotrigine, topiramate, tiagabine and remacemide. The metabolism of many other drugs such as tricyclic antidepressants, antipsychotics, steroid oral contraceptives, glucocorticoids, oral anticoagulants, cyclosporin, theophylline, chemotherapeutic agents and cardiovascular drugs can also be induced, leading to a number of clinically relevant drug interactions. Interactions with carbamazepine can usually be predicted on the basis of the pharmacological properties of the combined drug, particularly with respect to its therapeutic index, site of metabolism and ability to affect specific drug metabolising isoenzymes. Avoidance of unnecessary polypharmacy, selection of alternative agents with lower interaction potential, and careful dosage adjustments based on serum drug concentration monitoring and clinical observation represent the mainstays for the minimisation of risks associated with these interactions.

Analgesics, Non-Narcotic↗

Established antiepileptic drugs.

The major established drugs used in the management of epilepsy are carbamazepine, valproic acid, phenytoin, phenobarbital, primidone, ethosuximide and benzodiazepine drugs. Carbamazepine and phenytoin are used mainly in the treatment of partial seizures and primarily or secondarily generalized tonic-clonic seizures. Valproic acid is effective against all types of seizures, but it is used most extensively in the management of generalized epilepsies. Ethosuximide is effective against absence seizures. Phenobarbital and primidone are effective against all types of seizures (except for absences) although they are less commonly used because of their sedative properties and adverse effects on cognition. Benzodiazepines are most valuable in the treatment of status epilepticus, but their long-term use is often associated with undesirable sedation and development of tolerance to their antiepileptic effect. Irrespective of the drug used, optimal clinical management requires individualization of dosage and dosing schedules based on careful evaluation of clinical response and sound knowledge of the pharmacokinetics and interaction potential of the individual compounds. Monitoring serum drug concentrations may provide a useful guide to dosage adjustments, particularly in the case of phenytoin, which shows dose-dependent kinetics within the therapeutic dosage range.

Anticonvulsants↗

The effect of carbamazepine on the 2-hydroxylation of desipramine.

The effect of carbamazepine (CBZ, 200 mg twice daily for 28 days) on the kinetics of a single oral dose of desipramine (DMI, 100 mg) was investigated in six healthy volunteers. Compared with a control session, treatment with CBZ caused a marked increase in DMI apparent oral clearance (from 1.05 +/- 0.40 to 1.38 +/- 0.52 1 h per kg, means +/- SD, P < 0.01) and a significant shortening in DMI half-life (from 22.1 +/- 3.5 to 17.8 +/- 3.5 h, P < 0.01). The amount of 2-hydroxydesipramine (2-OH-DMI) excreted in urine over a 24-h period was significantly increased during CBZ intake (from 75 +/- 15 to 92 +/- 16 mumol, P < 0.01). These findings suggest that CBZ induces the 2-hydroxylation of DMI, a reaction primarily catalyzed by the polymorphic CYP2D6 isozyme. This interaction may have considerable practical significance.

Adult↗

Progress report on new antiepileptic drugs. A summary of the Second Eilat Conference.

The Second Eilat Conference on New Antiepileptic Drugs was held at the King Solomon's Palace Hotel from October 31 to November 3, 1994. Epileptologists and scientists from 20 countries attended the conference, which was held to discuss new trial designs, drug approval, early use of new antiepileptic drugs, and new drugs in development. Over the last six years, several novel antiepileptic drugs have been introduced worldwide, and new information on their safety and efficacy has become available. These include felbamate, gabapentin, lamotrigine, oxcarbazepine, and vigabatrin. Drugs in development include those at an advanced stage, such as topiramate and tiagabine, as well as those just entering clinical trials, such as remacemide and levetiracetam. The following is a summary of the presentations for drugs in development and newly marketed drugs. The meeting concluded with a presentation, 'Still Searching for the Magic Bullet'.

Anticonvulsants↗

Pharmacological problems in the management of epilepsy in children.

Rational prescribing of anti-epilepsy drugs in children may be complicated by a number of problems, which include: (i) difficulties in arriving rapidly at a syndromic diagnosis, at least in some cases, with consequent uncertainties about therapeutic management; (ii) difficulties in evaluating drug response in young age groups, particularly with respect to subjective side-effects affecting cognitive function; (iii) the vulnerability of infants and children to specific aspects of drug toxicity, such as liver damage induced by valproic acid or behavioural disorders caused by barbiturates; and (iv) the need to adjust dosage to account for age-dependent pharmacokinetic changes. In particular, it is known that the rate of drug metabolism changes markedly during development. Metabolic drug elimination is often reduced at birth, but drug metabolizing enzymes mature rapidly and biotransformation in infants and children usually occurs at a faster rate than in adults. The elimination of drug which are excreted unchanged in urine appears to be less influenced by age in paediatric patients, though impairment in renal drug clearance may be seen in newborns. Monitoring of serum drug concentrations may be helpful for dosage adjustments, but it is not a substitute for careful clinical observation.

Adolescent↗

Pharmacological principles as a basis for polytherapy.

Most patients with newly diagnosed epilepsy can be optimally controlled by prescribing a single anti-epilepsy drug, selected on the basis of its efficacy and safety profile. In about one-third of patients, however, seizures persist during monotherapy, despite the intake of the maximally tolerated drug dose. In such cases, substantial therapeutic benefit may be achieved by prescribing appropriate drug combinations. Safe use of multiple drug therapy requires a good knowledge of clinical pharmacology, particularly an awareness of potentially adverse drug interactions. As many older anti-epilepsy drugs have similar modes of action, their interaction may not always be of clinical benefit, because drug side-effects may also be additive. There is, however, evidence that specific combinations may be particularly advantageous; for example, valproate and ethosuximide in the management of refractory absence seizures. Compared with older drugs, some of the recently developed agents possess different and more selective mechanisms of action, which may result in enhanced therapeutic benefit when specific combinations are used. Preliminary observations do suggest that, in some cases, the efficacy exhibited by certain new drugs could be explained in terms of their pharmacological effect being 'complementary' to that of concurrently used agents.

Anticonvulsants↗

The management of epilepsy in the 1990s. Acquisitions, uncertainties and priorities for future research.

The pharmacological treatment of epilepsy has made considerable progress during the last decade, due to improved knowledge of the clinical pharmacology of individual drugs, acquisition of new information on the factors affecting response and need for drug treatment, and development of promising new agents. Once a clinical diagnosis of epilepsy has been made (which generally requires the occurrence of more than one seizure), treatment should be started with a single drug selected on the basis of seizure type and tolerability profile. Although there are important regional differences in prescribing patterns and individual circumstances may dictate alternative choices, carbamazepine is generally regarded as the preferred treatment for partial seizures (with or without secondary generalisation) while valproic acid (sodium valproate) is usually the first choice in most forms of generalised epilepsies. To achieve therapeutic success, the daily dosage must be tailored to meet individual needs, and there is suggestive evidence that in some patients the dosage prescribed initially may be unnecessarily large. Plasma antiepileptic drug concentrations may aid in the individualization of dosage, but should not be regarded as a substitute for careful monitoring of clinical response. Although overall about 70% of patients can be completely controlled, response rate is influenced by a number of factors, the most important of which are seizure type and syndromic form. The importance of a correct syndromic classification for rational drug selection has been poorly assessed and represents a major area for future research. Patients who do not respond to the highest tolerated dose of the initially prescribed drug may be switched to monotherapy with an alternative agent or may be given add-on treatment with a second drug. Appropriate prospective trials are required to assess the merits of either strategy. If add-on therapy is selected and the patient becomes seizure free, it may be possible to discontinue the drug prescribed initially and reinstitute monotherapy. Only a minority of patients are likely to require multiple drug therapy, and it remains to be established whether specific drug combinations are more effective than others. Until further information becomes available, the new agents should be reserved for patients failing to respond to the conventional treatments of first choice. Patients whose seizures cannot be controlled by available drugs should be reassessed, and polytherapy should be maintained only when there is clear evidence that benefits outweigh possible adverse effects. In many patients who have been seizure free for at least 2 years it may be possible to gradually discontinue all medications.(ABSTRACT TRUNCATED AT 400 WORDS)

Algorithms↗

[Leukemia and pregnancy. Review apropos of a clinical case].

A clinical case is presented of a 37 year old patient with acute myelocytic leukemia who conceived while in therapy. The pregnancy was controlled in our department in association with the Hematology Department. A cesarean section was performed in the 37th week of gestation, resulting in a healthy newborn. A review of literature is presented, analyzing the association between these two conditions, as well as repercussion on the mother and infant and the recommended obstetric management.

Adult↗

Pharmacokinetic and pharmacodynamic studies following single and multiple doses of rolafagrel, a novel inhibitor of thromboxane synthase, in normal volunteers.

The pharmacokinetics and pharmacodynamics of rolafagrel (FCE 22178), a novel thromboxane synthase inhibitor, were evaluated after single and multiple oral doses in eight healthy volunteers. After a single dose (400 mg), the drug was absorbed rapidly, peak plasma concentrations being attained within 2 h in all subjects. Elimination followed a biphasic course, with a rapid initial decline followed after 12-24 h by a late phase with a terminal half-life of about 10 h. About 100% of the administered dose could be recovered in urine within 72 h, mostly in conjugated form. During multiple dosing (400 mg t.i.d. for 5 days), steady-state conditions were approached on day 2 and AUC values over a dosing interval were similar to those observed after a single dose (72.3 vs 76.3 micrograms.ml-1.h). Pharmacokinetic parameters calculated after multiple doses were similar to those observed after a single dose (Cmax: 20.1 vs 18.2 micrograms.ml-1; tmax: 1.2 vs 1.1 h; terminal half-life: 10.9 vs 11.4 h; CL: 85.2 vs 70.4 ml.h-1.kg-1; V: 1.23 vs 1.24 l.kg-1). Platelet generation of thromboxane B2, the stable breakdown product of thromboxane A2, was inhibited by 85% at a plasma rolafagrel concentration of about 4 micrograms.ml-1, and only a small increase in inhibition was observed at higher concentrations.

Administration, Oral↗

Single dose pharmacokinetics of carbamazepine-10,11-epoxide in patients on lamotrigine monotherapy.

The pharmacokinetics of a single oral dose of carbamazepine-10,11-epoxide (CBZ-E, 100 mg) were compared in 10 patients on chronic monotherapy with lamotrigine (LTG, 200-300 mg/day) and in 10 drug-free healthy control subjects. CBZ-E pharmacokinetic parameters in LTG-treated patients were found to be similar to those observed in controls (half-life: 7.2 +/- 1.6 vs 6.1 +/- 0.9 h; apparent oral clearance: 110.8 +/- 53.1 vs 120.5 +/- 29.9 ml/h/kg; apparent volume of distribution: 1.08 +/- 0.37 vs 1.04 +/- 0.25 l/kg respectively; means +/- s.d.). These data indicate that, contrary to previous suggestions, LTG has no effect on the metabolic disposition of CBZ-E.

Adult↗

CYP2D6-related oxidation polymorphism in Italy.

The distribution of the oxidation polymorphism related to cytochrome CYP2D6 (debrisoquine type) was determined in 246 healthy Italian volunteers. Phenotyping was based on HPLC determination of the dextrometorphan/dextrorphan concentration ratio (metabolic ratio) in urine samples collected over an 8 h interval following a single oral 30 mg dose of dextromethorphan hydrobromide. Urinary excretion of dextromethorphan showed a wide interindividual variability, ranging from < or = 0.04 to 3.9% and from 0.5 to 79.6% of the dose, respectively. Metabolic ratios ranged from < or = 0.001 to 6.6. Eleven of the 246 subjects showed a metabolic ratio greater than 0.30, indicating that 4.5% of the population could be ascribed to the poor metabolizer status. The frequency of the poor metabolizer phenotype in this population is within the range described for other Caucasian ethnic groups.

Cytochrome P-450 CYP2D6↗

Inhibition of diazepam metabolism by fluvoxamine: a pharmacokinetic study in normal volunteers.

The effect of fluvoxamine on the pharmacokinetics of diazepam and metabolically derived N-desmethyl-diazepam was investigated in eight healthy volunteers. Each subject received a single oral dose of diazepam (10 mg) in a control session and on the fourth day of a 16-day treatment with fluvoxamine maleate (100 to 150 mg daily). Compared with the control session, concurrent fluvoxamine intake was associated with increased mean peak plasma diazepam concentrations (from 108 to 143 ng/ml, geometric means, difference not significant), with a marked reduction in apparent oral diazepam clearance (from 0.40 to 0.14 ml/min/kg; p < 0.01) and with a prolongation in diazepam half-life (from 51 to 118 hours; p < 0.01). Although peak plasma N-desmethyldiazepam levels were similar in the two sessions, the time required for the metabolite to reach a peak was longer during fluvoxamine intake than in the control session (206 versus 62 hours; p < 0.01). N-Desmethyldiazepam area under the plasma concentration-time curve values were also significantly increased during fluvoxamine treatment. These data suggest that fluvoxamine inhibits the biotransformation of diazepam and its active N-demethylated metabolite. The magnitude of this interaction is likely to have considerable clinical significance.

Adult↗