Literature DB >> 16313279

Lamotrigine pharmacokinetic/pharmacodynamic modelling in rats.

M M Castel-Branco1, A C Falcão, I V Figueiredo, M M Caramona.   

Abstract

The aim of this study was to perform a pharmacokinetic/pharmacodynamic (PK/PD) modelling of lamotrigine following its acute administration to rats. Adult male Wistar rats were given 10 mg/kg of lamotrigine intraperitoneally. Plasma and brain samples were obtained at predetermined times over 120 h post-dose and analysed by liquid chromatography. The anticonvulsant profile against maximal electroshock seizure stimulation was determined over 48 h after dosing. As a linear relationship between lamotrigine plasma and brain profiles was observed, only the plasma data set was used to establish the PK/PD relationship. To fit the effect-time course of lamotrigine, the PK/PD simultaneous fitting link model was used: the pharmacokinetic parameters and dosing information were used in the one-compartment first-order model to predict concentrations, which were then used to model the pharmacodynamic data with the sigmoid Emax model, in order to estimate all the parameters simultaneously. The following parameters were obtained: Vd = 2.00 L/kg, k(abs) = 8.50 h(-1), k(el) = 0.025 h(-1), k(e0) = 3.75 h(-1), Emax = 100.0% (fixed), EC50 = 3.44 mg/L and gamma = 8.64. From these results, it can be stated that lamotrigine is extensively distributed through the body, its plasma elimination half-life is around 28 h and a lamotrigine plasma concentration of 3.44 mg/L is enough to protect 50% of the animals. When compared with humans, the plasma concentrations achieved with this dose were within the therapeutic concentration range that had been proposed for epileptic patients. With the present PK/PD modelling it was possible to fit simultaneously the time-courses of the plasma levels and the anticonvulsant effect of lamotrigine, providing information not only about the pharmacokinetics of lamotrigine in the rat but also about its anticonvulsant response over time. As this approach can be easily applied to other drugs, it becomes a useful tool for an explanatory comparison between lamotrigine and other antiepileptic drugs.

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Year:  2005        PMID: 16313279     DOI: 10.1111/j.1472-8206.2005.00380.x

Source DB:  PubMed          Journal:  Fundam Clin Pharmacol        ISSN: 0767-3981            Impact factor:   2.748


  7 in total

1.  Lamotrigine inhibits basal and Na+-stimulated, but not Ca2+-stimulated, release of corticotropin-releasing hormone from the rat hypothalamus.

Authors:  Giuseppe Tringali; Jean Michel Aubry; Pierluigi Navarra; Giacomo Pozzoli
Journal:  Psychopharmacology (Berl)       Date:  2006-09-01       Impact factor: 4.530

2.  Differential Effects of Antiepileptic Drugs on Focal Seizures in the Intrahippocampal Kainate Mouse Model of Mesial Temporal Lobe Epilepsy.

Authors:  Venceslas Duveau; Benoît Pouyatos; Karine Bressand; Céline Bouyssières; Tanguy Chabrol; Yann Roche; Antoine Depaulis; Corinne Roucard
Journal:  CNS Neurosci Ther       Date:  2016-02-22       Impact factor: 5.243

3.  Lamotrigine differently modulates 7-nitroindazole and L-arginine influence on rat maximal dentate gyrus activation.

Authors:  P Sardo; S D'Agostino; F Carletti; V Rizzo; V La Grutta; G Ferraro
Journal:  J Neural Transm (Vienna)       Date:  2007-11-12       Impact factor: 3.575

4.  Effects of membrane transport activity and cell metabolism on the unbound drug concentrations in the skeletal muscle and liver of drugs: A microdialysis study in rats.

Authors:  Shuyao Wang; Chun Chen; Chi Guan; Liping Qiu; Lei Zhang; Shaofeng Zhang; Hongyu Zhou; Hongwen Du; Chen Li; Yaqiong Wu; Hang Chang; Tao Wang
Journal:  Pharmacol Res Perspect       Date:  2021-10

5.  Neuroprotection of lamotrigine on hypoxic-ischemic brain damage in neonatal rats: Relations to administration time and doses.

Authors:  Yong-Hong Yi; Wen-Chao Guo; Wei-Wen Sun; Tao Su; Han Lin; Sheng-Qiang Chen; Wen-Yi Deng; Wei Zhou; Wei-Ping Liao
Journal:  Biologics       Date:  2008-06

6.  Effect of lamotrigine on seizure development in a rat pentylenetetrazole kindling model.

Authors:  Yishu Chen; Xiaokuo He; Qianqian Sun; Ziyan Fang; Liemin Zhou
Journal:  Brain Behav       Date:  2017-05-31       Impact factor: 2.708

7.  Applicability of free drug hypothesis to drugs with good membrane permeability that are not efflux transporter substrates: A microdialysis study in rats.

Authors:  Chun Chen; Hongyu Zhou; Chi Guan; Huanhuan Zhang; Yingying Li; Xue Jiang; Zheng Dong; Yuanyuan Tao; Juan Du; Shuyao Wang; Teng Zhang; Na Du; Junyang Guo; Yaqiong Wu; Zehai Song; Haofei Luan; Yu Wang; Hongwen Du; Shaofeng Zhang; Chen Li; Hang Chang; Tao Wang
Journal:  Pharmacol Res Perspect       Date:  2020-04
  7 in total

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