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M Bialer

Publications and source records attributed to M Bialer.

At least 37 records · Page 2Linked to original sources

Enantioselective synthesis and teratogenicity of propylisopropyl acetamide, a CNS-active chiral amide analogue of valproic acid.

Propylisopropyl acetamide (PID), an amide analogue of the major antiepileptic drug valproic acid (VPA), possesses favorable anticonvulsant and CNS properties. PID contains one chiral carbon atom and therefore exists in two enantiomeric forms. The purpose of this work was to synthesize the two PID enantiomers and evaluate their enantiospecific teratogenicity. Enantioselective synthesis of PID enantiomers was achieved by coupling valeroyl chloride with optically pure (4S)- and (4R)-benzyl-2-oxazolidinone chiral auxiliaries. The two oxazolidinone enolates were alkylated with isopropyl triflate, hydrolyzed, and amidated to yield (2R)- and (2S)-PID. These two PID enantiomers were obtained with excellent enantiomeric purity, exceeding 99.4%. Unlike VPA, both (2R)- and (2S)-PID failed to exert teratogenic effects in NMRI mice following a single 3 mmol/kg subcutaneous injection. From this study we can conclude that individual PID enantiomers do not demonstrate stereoselective teratogenicity in NMRI mice. Due to its better anticonvulsant activity than VPA and lack of teratogenicity, PID (in a stereospecific or racemic form) has the potential to become a new antiepileptic and CNS drug.

Abnormalities, Drug-Induced↗

Pharmacokinetic analysis and anticonvulsant activity of glycine and glycinamide derivatives.

The objective of this study was to investigate the pharmacokinetics and pharmacodynamics (anticonvulsant activity and neurotoxicity) of a series of amide derivatives of glycinamide in order to explore their structure pharmacokinetic-pharmacodynamic relationship and to discover a glycinamide derivative which might have the potential to become a new antiepileptic agent. The following compounds were investigated: glycylglycine, glycylglycinamide, gaboylglycinamide, N-acetylglycine, N-acetylglycinamide, N-acetylglycylglycinamide, N-acetyl, N'-benzylglycinamide, N-benzyloxycarbonylglycine or Z-glycine, Z-glycinamide, Z-glycylglycine and Z-glycylglycinamide. The anticonvulsant activity and neurotoxicity study was carried out in classical animal models for anticonvulsant screening. The pharmacokinetics of the active compounds was studied in dogs, which is a common animal model for a comparative crossover pharmacokinetic studies. Of the compounds investigated in this study, all the dipeptides of glycinamide and the glycine derivatives were found to be inactive. The only two active compounds were: N-acetyl,N'-benzylglycinamide (VII) and Z-glycinamide (IX). These compounds demonstrated similar pharmacokinetic profiles. Unlike glycine or glycinamide, compounds VII and IX, being lipophilic derivatives of glycinamide, showed anticonvulsant activity in animal models due to their better pharmacodynamic and pharmacokinetic properties. The pharmacodynamics and pharmacokinetics of compounds VII and IX were similar to that of the potential new antiepileptics; N-valproylglycinamide and phthaloylglycinamide. This study provides certain clues concerning the structural requirements for the design of anticonvulsant-active glycine derivatives.

Animals↗

Progress report on new antiepileptic drugs: a summary of the fourth Eilat conference (EILAT IV).

The Fourth Eilat Conference on New Antiepileptic Drugs (AEDs) was held at the Royal Beach Hotel, Eilat, Israel, from 6th to 10th September 1998. Epileptologists and scientists from 20 countries attended the conference, which was held to discuss a number of issues in drug development, including outcome assessment in epilepsy (long-term efficacy, quality of life, safety), cost-effectiveness, an update on drugs in development, a progress report on recently marketed AEDs, and controversies in strategies for drug development. This review focuses on drugs in development and recently marketed AEDs. Drugs in development include ADCI, AWD 131-138, DP16, ganaxolone (CCD 1042), levetiracetam (ucb L059), losigamone, pregabalin (isobutyl GABA [CI-1008]), remacemide hydrochloride, retigabine (D-23129), rufinamide (CGP 33101), soretolide (D2916), TV1901, and 534U87. New information on the safety and efficacy of recently marketed drugs (felbamate, fosphenytoin, gabapentin, lamotrigine, oxcarbazepine, tiagabine, topiramate, vigabatrin, zonisamide) and of a new antiepileptic device, the neurocybernetic prosthesis (NCP), has become available. This paper summarizes the presentations made at the conference.

Animals↗

The structural requirements for the design of antiepileptic-glycine derivatives.

Glycine is a major inhibitory neurotransmitter and recent reports have shown that certain lipophilic derivatives of glycine demonstrate anticonvulsant activity in intact animals. In these studies, glycinamide derivatives were found to be more potent than their corresponding glycine analogues. Consequently, the objective of the current study was to investigate the pharmacokinetics and pharmacodynamics (anticonvulsant activity and neurotoxicity) of the following phenyl derivatives of glycinamide: N'-benzyl glycinamide, N-benzyloxycarbonyl glycinamide (Z-glycinamide), Z-glycine, N-Z,N'-benzyl glycinamide and N-phenylacetyl glycinamide. The antiepileptic activity and neurotoxicity was carried out in classical animal models for antiepileptic screening. The pharmacokinetics of the active compounds were studied in dogs, a common animal model for comparative crossover pharmacokinetic studies. Of the compounds investigated in this study, Z-glycinamide, N'-benzyl glycinamide and N-Z,N'-benzyl glycinamide were found to be active. Therefore, the disposition of Z-glycinamide and N-Z,N'-benzyl glycinamide in comparison to Z-glycine was studied in plasma, brain, liver and urine of rats. The disposition of Z-glycinamide and N-Z,N'-benzyl glycinamide into the brain was better than that of Z-glycine. Unlike glycine or glycinamide, Z-glycinamide and N-Z,N'-benzyl glycinamide showed antiepileptic activity in animal models due to their better pharmacodynamic and pharmacokinetic properties. The pharmacokinetics of Z-glycinamide was similar in dogs and rats. Substitution of the Z group with the analogous phenylacetyl moiety led to inactive compounds. In an analogous series of compounds, the loss of the anticonvulsant activity may be due to pharmacodynamic and pharmacokinetic reasons. This study provides certain clues concerning the structural requirements for the design of antiepileptic-active glycine derivatives.

Animals↗

Stereoselective pharmacokinetics and pharmacodynamics of propylisopropyl acetamide, a CNS-active chiral amide analog of valproic acid.

PURPOSE: The purpose of this study was to evaluate there existed stereoselective effects in the pharmacokinetics, anticonvulsant activity, microsomal epoxide hydrolase (mEH) inhibition, and teratogenicity of the two enantiomers of propylisopropyl acetamide (PID), a CNS-active chiral amide analogue of valproic acid. METHODS: Racemic PID, as well as the individual enantiomers, were intravenously administered to six dogs in order to investigate the stereoselectivity in their pharmacokinetics. Anticonvulsant activity was evaluated in mice (ip) and rats (oral), mEH inhibition studies were performed in human liver microsomes, and teratogenicity was evaluated in an inbred susceptible mice strain. RESULTS: Following intravenous administration to dogs of the individual enantiomers, (R)-PID had significantly lower clearance and longer half-life than (S)-PID, however, the volumes of distribution were similar. In contrast, following intravenous administration of racemic PID, both enantiomers had similar pharmacokinetic parameters. In rats (oral), (R)-PID had a significantly lower ED50 in the maximal electroshock seizure test than (S)-PID; 16 and 25 mg/kg, respectively. PID enantiomers were non-teratogenic and did not demonstrate stereoselective mEH inhibition. CONCLUSIONS: (R)-PID demonstrated better anticonvulsant activity, lower clearance and a longer half-life compared to (S)-PID. When racemic PID was administered, the clearance of (S)-PID was significantly reduced, reflecting an enantiomer-enantiomer interaction.

Allylisopropylacetamide↗

Enantioselective pharmacokinetics of 10-hydroxycarbazepine after oral administration of oxcarbazepine to healthy Chinese subjects.

BACKGROUND AND OBJECTIVES: Oxcarbazepine is a new antiepileptic drug which in humans acts as a prodrug to its central nervous system-active metabolite 10-hydroxycarbazepine. Because 10-hydroxycarbazepine is a chiral molecule, the objective of the study was to perform a stereoselective pharmacokinetic analysis of 10-hydroxycarbazepine in humans. METHODS: The pharmacokinetics and disposition of the enantiomers of 10-hydroxycarbazepine were investigated in 12 healthy Chinese subjects. Each subject received a single oral dose of 600 mg oxcarbazepine and the concentrations of R- and S-10-hydroxycarbazepine in serum were determined by a stereoselective HPLC assay. The enantiomers of free and conjugated 10-hydroxycarbazepine and of the oxidized diol metabolite were also quantified in urine. (con 't on page 548) RESULTS: At all sampling times, the serum concentrations of S-10-hydroxycarbazepine were much higher than those of R-10-hydroxycarbazepine, and their ratio also tended to increase with time. The area under the serum concentration versus time curve of S-10-hydroxycarbazepine was about fivefold greater than that of R-10-hydroxycarbazepine (129.8 +/- 33.1 versus 26.3 +/- 8.5 mg/L x h; P < .001). Half-lives did not differ significantly between the enantiomers (11.9 +/- 3.3 hours for R-10-hydroxycarbazepine versus 13.0 +/- 4.1 hours for S-10-hydroxycarbazepine). About 27% of the molar dose of oxcarbazepine was recovered in urine, mostly as the S-enantiomer of 10-hydroxycarbazepine and its conjugates. Carbamazepine-10,11-trans-dihydrodiol accounted for less than 3% of urinary metabolites. CONCLUSIONS: The marked differences in serum levels and urinary excretion between the two enantiomers of 10-hydroxycarbazepine are likely to be related primarily to stereoselective presystemic metabolic keto-reduction of the prochiral carbonyl group of the oxcarbazepine molecule.

Administration, Oral↗

Stereoselective pharmacokinetic analysis of the antiepileptic 10-hydroxycarbazepine in dogs.

The active entity of the new antiepileptic drug, oxcarbazepine (OXC), is 10-hydroxycarbazepine (MHD). In humans, OXC undergoes rapid presystemic (first-pass) metabolic reduction to MHD. MHD is a chiral molecule with an asymmetric carbon at position 10. Previous reports have shown that in humans, the first-pass metabolic reduction of OXC into MHD is stereoselective, resulting in a 1-to-4 AUC ratio of R(-) and S(+) enantiomers. The objective of the current study was to investigate whether the pharmacokinetics of MHD was stereoselective. Racemic MHD was thus administered intravenously (i.v.) and orally to six dogs, and plasma samples were analyzed by a stereospecific, high-performance liquid chromatographic (HPLC) assay. We found that R(-)-MHD had a clearance similar to that of S(+)-MHD; however, a difference was found between the volume of distribution (Vd) and consequently, between the half-lives of the two MHD enantiomers. The main pharmacokinetic parameters of R(-)- and S(+)-MHD were as follows: A terminal half-life (t1/2) of 2.2 +/- 0.4 hours for R(-)-MHD and of 3.8 +/- 0.3 hours for S(+)-MHD; a clearance (CL) of 7.8 +/- 1.3 L/h for R(-)-MHD and of 8.6 +/- 2.1 L/h for S(+)-MHD; a Vd of 25 +/- 6 L for R(-)-MHD and of 47 +/- 14 L for S(+)-MHD; and a Vd at steady state (V(ss)) of 22.8 +/- 3.6 for R(-)-MHD and of 29.9 +/- 4.1 for S(+)-MHD. After its oral administration to dogs, the absolute bioavailability was 78.4 +/- 20.9% for R(-)-MHD and 78.5 +/- 27.3% for S(+)-MHD; t1/2 was 2.7 +/- 0.6 hours for R(-)-MHD and 4.1 +/- 0.8 hours for S(+)-MHD. These results showed stereoselectivity in the volume of distribution and consequently, the t1/2 of S(+)-MHD was longer than that of R(-)-MHD after both i.v. and oral administration to dogs.

Administration, Oral↗

Structure-pharmacokinetic-pharmacodynamic relationships of N-alkyl derivatives of the new antiepileptic drug valproyl glycinamide.

PURPOSE: The purpose of this study was to evaluate the structure-pharmacokinetic-pharmacodynamic relationships of a series of N-alkyl and N,N-dialkyl derivatives of the new antiepileptic drug (AED), valproyl glycinamide (VGD). METHODS: The following compounds were synthesized: N-methyl VGD (M-VGD), N,N-dimethyl VGD, N-ethyl VGD, N,N-diethyl VGD (DE-VGD), and N,N-diisopropyl VGD. These compounds were evaluated for anticonvulsant activity, neurotoxicity, and pharmacokinetics. RESULTS: After i.p. administration to mice in the maximal electroshock seizure test (MES), DE-VGD had an ED50 value comparable to that of VGD (145 and 152 mg/kg, respectively), whereas in the subcutaneous metrazol test (sc Met) model, M-VGD had a slightly lower ED50 than VGD (108 and 127 mg/kg, respectively). After oral administration to rats, M-VGD had an MES-ED50 similar to that of VGD (75 and 73 mg/kg, respectively). Of the N-alkyl VGD derivatives studied, M-VGD had the best pharmacokinetic profile: the lowest clearance (5.4 L/h), the longest half-life (1.8 h), and the lowest liver-extraction ratio (14%). N,N-dialkylated VGD derivatives underwent two consecutive N-dealkylations, whereas N-alkylated derivatives underwent a single N-dealkylation process, yielding VGD as a major active metabolite. CONCLUSIONS: M-VGD had the most favorable pharmacodynamic and pharmacokinetic profile of the investigated N-alkyl VGD derivatives. VGD was found to be a major active metabolite of M-VGD and to be less neurotoxic than M-VGD. Therefore VGD rather than one of the investigated N-alkyl VGD derivatives should be considered for development as a new AED.

Alkylation↗

Valnoctamide, valpromide and valnoctic acid are much less teratogenic in mice than valproic acid.

The teratogenic properties of valproic acid (VPA) and its analogues depend to a great extent on their chemical structure. We investigated the structure-teratogenicity relationships of VPA, its structural isomer, valnoctic acid (VCA), and their two amide analogues, valpromide (VPD) and valnoctamide (VCD), respectively. Each substance was injected (3 mmol/kg) in NMRI-mice on the morning of day 8 of gestation. Embryolethality, fetal weight and exencephaly rates were recorded on day 18 of gestation. VPA caused 53% exencephaly, VPD induced 6%, VCA and VCD produced only 1% exencephaly (control values between 0 and 1%). VPA-treated mice also had increased embryolethality rates (52%). There was no significant change of embryolethality in the other treatment groups. Pharmacokinetic studies showed that VCD was eliminated from plasma at a slower rate than VPA. Also, the residual teratogenic activity of VPD was not accounted for by the relatively small amounts of its hydrolysis product VPA. This study indicates that VPD, VCA and VCD were distinctly less teratogenic than VPA. Apparently the amidation of the free carboxylic group and/or methyl-substitution at the beta-position of the carbon chain greatly decreased the teratogenic activity of VPA.

Abnormalities, Drug-Induced↗

Existing and new criteria for bioequivalence evaluation of new controlled release (CR) products of carbamazepine.

While the three classical pharmacokinetic (PK) parameters, AUC, Cmax and tmax are adequate to assess bioequivalence of immediate release (IR) formulations, they are not designed to fully characterize the pharmacokinetic (PK) performance of controlled release (CR) formulations and provide only limited insight into the function of carbamazepine (CBZ) CR products. Thus, for reliable assessment of bioequivalence in CR formulations, there is a role for the use of additional criteria (parameters). The following are the proposed new parameters: MRT (mean residence time), Cmax/AUC, plateau time or POT (the time span associated with the concentrations within 25% of Cmax), tapical (the arithmetic mean of the times associated with POT) and Capical (the arithmetic mean of the concentrations within 25% of Cmax). The above proposed parameters, were utilized in a recent PK study of new CR products of CBZ (600 mg) designed for once daily dosing. The comparative PK analysis was conducted in a three-way crossover single dose studies of three CBZ CR formulations (Teril 600 CR tablet, CBZ 600 granulate and Timonil 600 Retard tablet). Teril 600 CR was found to be bioequivalent to Timonil 600 Retard while CBZ 600 granulate was not. This conclusion was reached utilizing both the classical and the proposed new parameters. The new parameters showed that CBZ 600 granulate has similar rate of absorption as the two 600 mg CR tablets, but its extent of absorption was lower. The new parameters examined in this paper are more attractive than the single point parameters, Cmax and tmax, for assessment of rate of absorption and the flatness of the plasma concentration versus time curve. Their potential benefit and practical utility was confirmed in this study, which demonstrated bioequivalence between a new CR and an innovator CBZ (600 mg) tablet. Absorption rate assessment is important in light of concentration-related side effects associated with CBZ therapy and the impact of fluctuations and the flatness of the CBZ plasma concentration curve on the drug efficacy and tolerability.

Adult↗

Disposition of two tetramethylcyclopropane analogues of valpromide in the brain, liver, plasma and urine of rats.

2,2,3,3-Tetramethylcyclopropane carboxamide (TMCD) and N-methyl TMCD (M-TMCD) are analogues of valpromide (VPD) or amide derivatives of valproic acid (VPA), one of the major antiepileptic drugs (AEDs). In rodent models both TMCD and M-TMCD are more potent as anticonvulsants than VPA. The present study investigates the pharmacokinetics (PK) of TMCD and M-TMCD in rats by monitoring the levels of these two amides in the brain, liver, plasma and urine of rats. The disposition of TMCD and M-TMCD was analyzed in a comparative manner with that of VPD and VPA, previously studied by us. The following similar PK parameters were obtained for TMCD and M-TMCD, respectively: clearance, 5 and 5.6 ml/min/kg; volume of distribution (Vss), 0.72 and 0.96 l/kg; half-life (t1/2), 1.1 and 1. 2 h; and mean residence time (MRT), 2.41 and 2.8 h. The ratio of AUCs of TMCD of liver to plasma and brain to plasma were 1.67 and 1. 13, respectively. The ratios of the AUCs of M-TMCD of liver to plasma and brain to plasma were 1.43 and 0.99, respectively. Thus, both compounds distribute evenly between plasma and brain, but their distribution into the liver is 50% larger than that in the plasma. Therefore, PK analysis of TMCD and M-TMCD brain levels gave major PK parameters similar to those obtained from the plasma data. The fraction metabolized of M-TMCD to TMCD was 32%. The brain was not found to be a metabolic site for the M-TMCD to TMCD biotransformation which occurred primarily in the liver as indicated by the high liver concentrations of TMCD as a metabolite of M-TMCD. Unlike VPD, TMCD and M-TMCD did not undergo amide-acid biotransformation to their corresponding inactive acid, 2,2,3, 3-tetramethylcyclopropane carboxylic acid (TMCA). Both M-TMCD and TMCD distribute better into the brain than VPA, a fact that may contribute to their better anticonvulsant activity.

Amides↗

Does carbamazepine have a narrow therapeutic plasma concentration range?

Recently, there has been considerable discussion regarding the classification of drugs as a function of their therapeutic index, defined as the ratio between the upper and lower limits of the therapeutic range. Pharmacologic agents with a therapeutic index < 2 are classified as "narrow therapeutic index" (NTI) drugs. One of the agents classified as an NTI drug is carbamazepine. These recent developments led us to evaluate critically the evidence supporting the classification of carbamazepine as an NTI drug to address an old question: "Does carbamazepine have a narrow therapeutic plasma concentration range?"

Anticonvulsants↗

Criteria to assess in vivo performance and bioequivalence of generic controlled-release formulations of carbamazepine.

PURPOSE: Concern persists that the criteria used to establish bioequivalence of generic drugs may not adequately guarantee the interchangeability of antiepileptic medications (AEDs), particularly controlled-release (CR) formulations. We examined the utilization of several new parameters, in addition to AUC, peak plasma concentration (Cmax), and time to reach Cmax (tmax), for the assessment of bioequivalence and in vivo performance of CBZ and other CR products. These new parameters may offer additional information for evaluation of CR products that yield a prominent plateau in the plasma time-concentration curve. They include mean residence time (MRT), Cmax/AUC, plateau time or POT (the time span associated with the concentrations within 25% of Cmax), t(apical), and C(apical) (the arithmetic mean of the POT times and concentrations within 25% of Cmax, respectively). Additional parameters for multiple-dose studies include the percentage fluctuation and the flatness of the steady state-concentration curve. METHODS: These proposed parameters were used in two recent (single and multiple dose) two-way crossover studies of a new CR product of CBZ (Teril 400 CR) in comparison with Tegretol CR Divitab. RESULTS: Teril 400 CR was found to be bioequivalent to Tegretol CR Divitab, by using both the classic and the additional proposed parameters. Both CBZ CR products have similar rates of absorption and similar flatness of their plasma time-concentration curves as assessed by visual inspection and the proposed parameters. CONCLUSIONS: The additional parameters examined may supplement the traditional single-point parameters, Cmax and tmax, for assessment of rate of absorption and the flatness of the concentration curve. Their potential benefit and practical utility was confirmed in these two studies. Absorption-rate assessment is important in light of concentration-related side effects associated with CBZ therapy and the impact of fluctuations and the flatness of the CBZ plasma concentration curve on the drug efficacy and tolerability.

Adolescent↗

Isolation of N,N-dialkylated derivatives of valproylglycinamide from dog plasma by active charcoal adsorption and their quantification by high-performance liquid chromatography.

A selective assay for quantification of N,N-dimethylvalproylglycinamide (DM-VGD) and N,N-diethylvalproylglycinamide (DE-VGD) in dog plasma utilizing reversed-phase high-performance liquid chromatography and UV detection has been developed. These compounds are derivatives of the potential anticonvulsant drug, valproylglycinamide, which is currently undergoing clinical trials. The method is based on extraction of dog plasma with activated charcoal, separation of the charcoal pellet and extracting it with methanol, evaporation of the solvent and injecting the reconstituted residue onto the column. The active charcoal adsorption method is reliable and reproducible, and it provides a chromatogram free of interfering endogenous plasma compounds. The assay was validated and provided a limit of quantification of 2.3 mmol/l for DE-VGD and 5.3 mmol/l for DM-VGD. Mean recovery of these compounds from plasma averages 75%. This analytical method is suitable for the quantitative determination of DM-VGD and DE-VGD in plasma and it has been applied to a pharmacokinetic study of these compounds in a dog.

Animals↗

Pharmacokinetic analysis and antiepileptic activity of two new isomers of N-valproyl glycinamide.

Valproyl glycinamide (TV 1901-VPGD) is a new antiepileptic drug, which is currently undergoing clinical trials. The present study explored the pharmacokinetics and pharmacodynamics (anticonvulsant activity and neurotoxicity) of two new isomers of valproyl glycinamide: valnoctyl glycinamide (VCGD) and diisopropylacetyl (DIGD). Both VCGD and DIGD showed anticonvulsant activity and a safety margin in mice similar to those of VPGD. Following i.v. administration (556 mg) to six dogs, VCGD had a clearance (Cl) value of 3.8 +/- 1.1 Lh-1 (mean +/- SD), a volume of distribution (Vss) of 15 +/- 2 L, and a half-life (t1/2) of 1.9 +/- 0.3 h. DIGD had Cl, Vss, and t1/2 values of 10 +/- 0.8 Lh-1, 19 +/- 3 L, and 1.6 +/- 0.2 h, respectively. Neither VCGD nor DIGD operated as chemical drug delivery systems (CDDSs) of glycine, valnoctic acid, or diisopropyl acetic acid and both showed antiepileptic profiles different from that of valproic acid (VPA). Both glycinamides were biotransformed to their glycine analogues with similar fractions metabolized (fm): 59 +/- 5% (VCGD) and 62 +/- 15% (DIGD). The two glycine metabolites, valnoctyl glycine (VCGA) and diisopropylacetyl glycine (DIGA), were also administered to the same dogs in order to calculate the above fm values. Both VCGA and DIGA had higher Cl and lower Vss values than VCGD and DIGD and therefore their mean t1/2 values were 0.43 +/- 0.02 and 0.30 +/- 0.07 h, respectively. VCGA and DIGA were excreted mainly intact in the urine, with fractions excreted unchanged (fe) of 60 +/- 9 and 55 +/- 7%, respectively. The improved pharmacokinetic profile of VCGD and DIGD relative to their glycine analogues may explain the similarity of their anticonvulsant activity to that of valproyl glycinamide. The current study demonstrates the benefit of the structure-pharmacokinetic-pharmacodynamic relationship (SPPR) approach in developing and selecting a potent antiepileptic compound in intact animals based not only on its intrinsic pharmacodynamic activity but also on its improved pharmacokinetic profile.

Animals↗

Stereoselective pharmacokinetic analysis of valnoctamide in healthy subjects and in patients with epilepsy.

OBJECTIVE: To investigate the pharmacokinetics of the four stereoisomers of valnoctamide, a mild tranquilizer endowed with anticonvulsant properties. METHODS: Racemic valnoctamide, 400 mg, was administered orally to seven healthy subjects and to six patients with epilepsy stabilized with long-term carbamazepine therapy. In the patients with epilepsy, valnoctamide kinetics was also reassessed after 8-day oral dosing at a dosage of 600 mg daily. Plasma samples were assayed by gas chromatography-mass spectrometry with use of a capillary column coated with chiral stationary phase that enabled baseline resolution of the four stereoisomers, designated hereafter as A, B, C, and D (where A and C, together with B and D, represent enantiomeric pairs). RESULTS: In healthy subjects, stereoisomers A, C, and D showed similar kinetics, with an apparent oral clearance (CL/F) of about 4 1/2 L/hr, a half-life (t1/2) of about 10 hours, and an apparent volume of distribution (VSS/F) of about 65 L. However, stereoisomer B showed a much higher clearance (8.7 +/- 0.9 L/hr) and a shorter t1/2 (5.8 hours). For all stereoisomers, CL/F values in patients with epilepsy were about tenfold higher than those found in healthy subjects. Compared with healthy subjects, patients with epilepsy also showed shorter t1/2 values and higher VSS/F values for each of the stereoisomers. After 7-day dosing, CL/F values at steady state were lower than those determined in the same patients after a single dose. CONCLUSIONS: Valnoctamide exhibits enantioselectivity and diastereoselectivity, an observation that may have important practical implications if pharmacodynamic differences between stereoisomers are also found. The observed pharmacokinetic differences between healthy subjects and patients with epilepsy are likely to be related to induction of metabolism of valnoctamide stereoisomers by carbamazepine.

Administration, Oral↗

Pharmacokinetics and antiepileptic activity of valproyl hydroxamic acid derivatives.

PURPOSE: To explore the utilization of seven novel hydroxamic acid derivatives of valproic acid (VPA) as new antiepileptics. METHODS: The study was carried out by investigating the pharmacokinetics of two active compounds in dogs and pharmacodynamics (anticonvulsant activity and neurotoxicity) of valproyl hydroxamic acid and six of its derivatives. RESULTS: Three valproyl hydroxamic acid derivatives: valproyl hydroxamic acid-VPA-HA, N-(1-hydroxyethyl)-valpromide-HEV and N-methoxy valpromide, showed better anticonvulsant activity than VPA at the maximal electroshock (MES) test. The remaining four compounds, O-valproyl-VPA-HA, N-valproyl-O-valproyl-VPA-HA, N-(1-methoxyethyl) valpromide and N-(1,2-dihydroxylpropyl)-valpromide were found to be inactive. Therefore, only the pharmacokinetics of the active compounds VPA-HA and HEV was studied. CONCLUSIONS: In contrast to valpromide (VPD) which is biotransformed to VPA, VPA-HA and HEV were found to be stable in vivo to the biotransformation of the amide to its corresponding acid. VPA-HA and HEV showed improved anticonvulsant activity over VPA because of their greater intrinsic activity and not due to better pharmacokinetic characteristics. This paper discusses the structural requirements for active anticonvulsant valproyl hydroxamic acid derivatives.

Animals↗

The disposition of valproyl glycinamide and valproyl glycine in rats.

PURPOSE: To investigate the disposition of valproyl glycinamide and valproyl glycine in rats and to compare it with that of valproic acid (VPA) and valpromide which were studied previously. METHODS: The study was carried out by monitoring the brain and liver levels of valproyl glycinamide and valproyl glycine (as a function of time after iv dosing) in addition to the regular pharmacokinetic (PK) monitoring of plasma and urine levels of these compounds. RESULTS: The following PK parameters were obtained for valproyl glycinamide and valproyl glycine, respectively: clearance, 7.1 and 16 ml/ min/kg; volume of distribution (Vss), 0.78 and 0.41 l/kg; half-life, 1.1 and 0.37 h; and mean residence time, 1.8 and 0.4 h. The ratios of AUCs of valproyl glycinamide of liver to plasma and brain to plasma were 0.70 and 0.66, respectively. The ratios of the AUCs of valproyl glycine of liver to plasma and brain to plasma were 0.19 and 0.02, respectively. CONCLUSIONS: Valproyl glycinamide distributes better in the brain than VPA, a fact which may contribute to its better anticonvulsant activity. Valproyl glycine was barely distributed in the brain, a fact which may explain its lack of anticonvulsant activity. In addition to the liver, the brain was found to be a minor metabolic site of the biotransformation of valproyl glycinamide to valproyl glycine.

Animals↗