Besides the pathological states, diabetes mellitus may also alter the hepatic biotransformation of pharmaceutical agents. It is advantageous to understand the effect of diabetes on the pharmacokinetic of drugs. The objective of this study was to define the pharmacokinetic changes of tramadol and its main metabolites after in vivo intraperitoneal administration and ex vivo perfused liver study in diabetic rat model.
A rapid LC method with UV detection was developed for the quantification of carboxylic acid metabolite of clopidogrel in human plasma. Following a simple protein precipitation using a mixture of methanolic solution of ZnSO4, the analyte and commercially available internal standard were separated using a mobile phase of water–acetonitril (85:15, v/v) adjusted to pH 3.5 on a Chromolith C18 column at a flow rate of 2.5 mL min−1 with a total retention time of 4 min. Linearity was verified over the range of 20–3,000 ng mL−1 where the LOQ was 20 ng mL−1. This method was applied in a pharmacokinetic study.
Gemfibrozil is a practically water-insoluble, high-dose drug. It represents a typical drug with dissolution rate controlled bioavailability. The aim of this study was to select a dissolution condition for gemfibrozil immediate release capsules, resulting in the best in vitro/in vivo correlation (IVIVC). Five 300 mg gemfibrozil products, including the innovator and four generic products were selected. In vitro dissolution test methods with a standard paddle, round-bottomed vessel of 1 l capacity, and potassium phosphate buffer as the dissolution medium (referred to as conditions I, II and III, respectively) were developed. The products were administered to 12 healthy volunteers and thereby different pharmacokinetic parameters were calculated. Correlations between the in vitro and in vivo calculated parameters were investigated. Of the single point parameters investigated, the best results were seen in the relation between the percent dissolved in 10, 20 and 45 min and the time to 90% dissolution from the in vitro side and the AUCs and C(max) from the in vivo side. The correlation between MRT and MDT was also investigated, and no significant correlation was found in the three above-mentioned conditions. The Wagner-Nelson method was used to calculate the percent remaining to be absorbed. Superimposition of the percent in vivo absorption and the in vitro dissolution curves was used to investigate a multiple point correlation. A remarkable superimposition between in vivo and in vitro curves in conditions I and II was observed.
A rapid and specific HPLC method has been developed and validated for simultaneous determination of clobazam, the anticonvulsant agent, and its major metabolite in human plasma. The sample preparation was a liquid-liquid extraction with tuloene yielding almost near 100% recoveries of two compounds. Chromatographic separation was achieved with a Chromolith Performance RP-18e 100 mm x 4.6mm column, using a mixture of a phosphate buffer (pH 3.5; 10mM)-acetonitrile (70:30, v/v), in isocratic mode at 2 ml/min at a detection wave-length of 228 nm. The calibration curves were linear (r(2)>0.998) in the concentration range of 5-450 ng ml(-1). The lower limit of quantification was 5 ng ml(-1) for two compounds studied. The within- and between-day precisions in the measurement of QC samples at four tested concentrations were in the range of 0.89-9.1% and 2.1-10.1% R.S.D., respectively. The developed procedure was applied to assess the pharmacokinetics of clobazam and its major metabolite following administration of a single 10mg oral dose of clobazam to healthy volunteers.