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U Jaehde

Publications and source records attributed to U Jaehde.

41 records · Page 3Linked to original sources

Cerebrospinal fluid transport and disposition of the quinolones ciprofloxacin and pefloxacin in rats.

The disposition of ciprofloxacin and pefloxacin in the rat cerebrospinal fluid (CSF) was investigated after i.v. and i.c.v. administration. After injection into the lateral ventricle, the terminal half-life of pefloxacin was shorter than that of ciprofloxacin. After i.v. infusions, the relative CSF exposure, expressed as CSF: area under the plasma concentration time curve ratio, were found to be 10.4 +/- 2.8% for ciprofloxacin and 42.4 +/- 3.0% for pefloxacin. The unit impulse response methodology was applied in order to assess the CSF transport profile. The plasma-CSF transport clearance of pefloxacin and the total amount of drug transported into the CSF were significantly higher compared with ciprofloxacin. Although pefloxacin exhibited a linear CSF transport profile, the plasma-CSF transport clearance of ciprofloxacin was found to be nonlinear at the dose level studied. Pefloxacin was converted in the brain to the active metabolite norfloxacin (N-desmethyl pefloxacin). The difference in CSF exposure of both quinolones and the presence of active metabolites of N-methylated quinolones in the CSF may be of clinical relevance in the treatment of CNS infections, but differences in antimicrobial activity have to be taken into account as well.

Animals↗

Pharmacokinetic disposition of quinolones in human body fluids and tissues.

The unique pharmacokinetic properties as well as the body fluid and tissue penetration of quinolones are discussed. Quinolones are well absorbed from the gastrointestinal tract and are eliminated with considerable differences in their terminal half-lives. The major elimination pathways of quinolones are renal excretion and hepatic metabolism. Renally, these drugs undergo the potential excretion mechanisms (glomerular filtration, tubular secretion, reabsorption). In the liver, they are metabolised primarily by oxidation as well as by conjugative pathways. However, the metabolic pattern and extent of metabolism differ significantly between individual agents. Alterations in the pharmacokinetic disposition of these agents in liver and renal failure as well as in elderly patients are observed as predicted from their excretion pattern. In addition, quinolones can interact with a number of other compounds at hepatic (e.g. with xanthine derivatives), renal (with probenecid) and gastrointestinal (with antacids) sites. The volume of distribution of quinolones is considerably higher than body volume, which suggests intracellular penetration. Studies on tissue penetration show that concentrations exceeding plasma levels are obtained in most tissues. The highest tissue/plasma concentration ratios are achieved in lung and kidney, whereas concentrations in fat are considerably lower than in plasma. Body fluid penetration is introduced as a new approach to evaluate distribution kinetics of quinolones. With the exception of those in nasal secretions and ejaculate, body fluid levels of these drugs rarely reach plasma levels. The body fluid penetration model allows for differentiation among individual agents. There is no apparent relationship between differences in body fluid penetration of quinolones and differences in volume of distribution. For the clinical use of these drugs it is important that the concentrations achieved in body fluids and tissues are sufficient to kill most pathogens. A discussion on the relationship between plasma and tissue levels and the MICs of quinolones is, however, beyond the scope of this article.

4-Quinolones↗

In vitro penetration of des-tyrosine1-D-phenylalanine3-beta-casomorphin across the blood-brain barrier.

The blood-brain barrier transport and metabolism of the synthetic beta-casomorphin (beta CM) derivative des-tyrosine1-D-phenylalanine3-beta-casomorphin (DT-D-Phe3-beta CM) were investigated using an in vitro model consisting of primary cultures of bovine cerebrovascular endothelial cells. DT-D-Phe3-beta CM was transported across the endothelial monolayer without significant metabolism. The endothelial permeability expressing the transport rate ranged between 1.4 and 2.2 cm x 10(-3)/min and was neither affected by luminal concentration changes (1 nM and 1 microM) nor different after luminal and abluminal administration. The metabolic inhibitor 2-desoxy-D-glucose did not affect the permeability of DT-D-Phe3-beta CM. These results suggest that DT-D-Phe3-beta CM is able to cross the blood-brain barrier by paracellular transport without using a carrier system.

Animals↗