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  • 1
    Electronic Resource
    Electronic Resource
    Oxford, UK : Blackwell Science Ltd
    Anaesthesia 58 (2003), S. 0 
    ISSN: 1365-2044
    Source: Blackwell Publishing Journal Backfiles 1879-2005
    Topics: Medicine
    Notes: The aim of this study was to investigate the pharmacokinetics of sevoflurane uptake into the brain and body by comparing sevoflurane concentrations in internal jugular-bulb blood (Jsev), arterial blood (Asev) and pulmonary arterial blood (PAsev) over a fixed inspired sevoflurane concentration. Ten patients (aged 51–73 years), undergoing coronary artery bypass grafting surgery were enrolled in this study. They were anaesthetised using a constant 3.5% inspired sevoflurane concentration (CIsev) during the first hour of anaesthesia. During constant volume-controlled ventilation, we measured CIsev and end-tidal sevoflurane (CEsev) using infrared analysis. The sevoflurane concentration in the blood was analysed using gas chromatography, and cardiac output was measured using an Opti-Q pulmonary artery catheter. We found that it took 40 min for the brain concentration to equilibrate with arterial blood (Asev). Both CIsev–CEsev and Asev–PAsev gradients persisted during the study period. There was no further uptake of sevoflurane into the brain after 40 min; however, there was near-constant uptake into the body.
    Type of Medium: Electronic Resource
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  • 2
    Electronic Resource
    Electronic Resource
    Springer
    European journal of clinical pharmacology 47 (1995), S. 537-542 
    ISSN: 1432-1041
    Keywords: Pimobendan ; enantiomers ; pharmacokinetics ; stereoselectivity ; demethyl pimobendan ; metabolites
    Source: Springer Online Journal Archives 1860-2000
    Topics: Chemistry and Pharmacology , Medicine
    Notes: Abstract The pharmacokinetics of enantiomers of pimobendan and their demethylated metabolites in plasma and red cells were studied in 8 normal healthy volunteers. After racemic pimobendan 5 mg IV, the plasma concentration-time curve followed a two-compartment open-model with elimination half-lives of 1.81 h and 1.86 h for (+)- and (−)-pimobendan, respectively. The clearances and volumes of distribution postequilibrium were 13.5 ml · min−1 · kg−1, 14.4 ml · min−1 · kg−1; 1.74 l · kg−1 and 2.34 l · kg−1 for (+)- and (−)-pimobendan, respectively. Plasma protein binding (n=3) of (+)-, (−)-pimobendan, (+)- and (−)-demethylated metabolites was 97.6, 97.6, 92.2 and 92.5%, respectively. The plasma concentration-time curve also followed a two-compartment open model after oral administration of 7.5 mg racemic pimobendan. The absolute bioavailabilities of (+)- and (−)-pimobendan were 0.51 and 0.55. Peak levels of (+)-and (−)-pimobendan, both at 1.2 h, were 15.8 and 16.8 ng · ml−1, respectively. The (+)- and (−)-pimobendan concentrations in red cells were determined and their pharmacokinetics were estimated using red blood cell data. Interesting phenomena were observed: the peak concentrations of (+)- and (−)-pimobendan in red blood cells were about 5.5- and 9.2-times higher than in plasma, and the AUCs were correspondingly elevated. The volume of distribution of the central compartment of (−)-pimobendan in red cell was significantly smaller than that of (+)-pimobendan. (0.24 vs. 0.42 l · kg−1.) Similar phenomena were found after IV administration. These all indicated stereoselective partitioning or distribution of (−)-pimobendan into red cells. Since the elimination half-life of (+)- and (−)-pimobendan in red cells was similar (3.07 vs 2.97 h), the highly significant difference in clearance between (+)- and (−)-pimobendan (3.7 vs 2.3 ml · min−1 · kg−1) was solely due to the stereoselective distribution of (−)-pimobendan into the red blood cells. This stereoselective property of the (−)-isomer may be the explanation of a previous report that (−)-pimobendan produced a 1.5-times larger contractile force in detergent-skinned preparations of cardiac muscle from guinea pig and dog than the (+)-isomer.
    Type of Medium: Electronic Resource
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