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K Borner

Publications and source records attributed to K Borner.

At least 37 records · Page 2Linked to original sources

Pharmacokinetics of sparfloxacin and serum bactericidal activity against pneumococci.

Sparfloxacin, a new fluorinated quinolone, exhibits higher in vitro activity against pneumococci than do ciprofloxacin and ofloxacin. Since up to 30% of cases of pneumococcal pneumonia are associated with bacteremia, and since an increasing percentage of pneumococci are resistant against penicillin, we studied the serum bactericidal activity of sparfloxacin against pneumococci in eight healthy, middle-aged volunteers. Pharmacokinetics in serum and urine after a 400-mg oral dose of sparfloxacin were comparable to those described by other authors. Inhibitory and bactericidal activities in serum were measured for four pneumococcal isolates representing penicillin-susceptible (one isolate), intermediately resistant (two isolates), and highly resistant (one isolate) strains. Geometric mean inhibitory titers ranged between 1:2.4 and 1:6.3 and bactericidal titers ranged between 1:1.3 and 1:3.6 during a time period of 1 to 6 h after drug intake. Although such titers were not sufficient to predict a clinical response based on previous pharmacodynamic studies using quinolone antibiotics, data obtained with volunteers may only partially reflect the clinical situation in which a rise of humoral antibodies directed against pneumococcal antigens may help to reinforce the bactericidal action of the antibiotic.

Adult↗

Multiple-dose pharmacokinetics of sparfloxacin and its influence on fecal flora.

In a randomized, double-blind, placebo-controlled, multiple-dose pharmacokinetic study, the safety and effect on intestinal flora of sparfloxacin (SPX) were determined in 12 healthy male volunteers (8 received SPX and 4 received a placebo). Following fasting and oral administration of 400 mg on day 1 and 200 mg on days 2 to 8, concentrations of the free drug in serum, urine, and feces were measured by high-performance liquid chromatography; serum and urine were also evaluated by a microbiological assay. All results, except those for renal excretion, exclude the glucuroconjugate metabolite. A mean peak concentration in serum (400-mg dose) of 0.56 +/- 0.13 mg/liter was measured 3.52 +/- 0.98 h after administration. Pharmacokinetic parameters (measured by high-performance liquid chromatography) were based on an open, one-compartment model and resulted in the following day 1 (calculated for the 200-mg dose), day 4 (recalculated for a single dose), and day 8 values (mean +/- standard deviation): area under the curve, 16.4 +/- 2.3 (day 1) and 18.3 +/- 5.1 (day 4) mg.h/liter; elimination half-life, 18.3 +/- 3.9 h; steady-state volume of distribution, 4.7 +/- 1.4 (day 1) and 4.3 +/- 1.2 (day 8) liters/kg; apparent total clearance, 201 +/- 31 (day 1) and 190 +/- 51 (day 4) ml/min; renal clearance, 19.1 +/- 5.8 (day 1) and 23.2 +/- 19.4 (day 4) ml/min. Recovery in urine on day 1 was 5.89% +/- 1.4% of the dose in 24 h for the parent compound and 18.4% +/- 6.8% for the SPX glucuronide.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Comparative pharmacokinetics of the new oral cephalosporins.

The comparative pharmacokinetics of the new oral cephalosporins (ester and nonester types), together with that of the first generation carbacephem, loracarbef, are considered in healthy volunteers. Also in this review, pharmacokinetic and microbiological data are combined in order to predict the possible clinical efficacy of this group of agents. Despite apparent similarities in the structure of these agents, single dose studies have revealed marked differences in the pharmacokinetics of the oral cephalosporins. Multiple dose studies showed no evidence of accumulation with these agents. In the elderly, only minor changes in the pharmacokinetics of the oral agents were observed, and were insufficient to warrant dosage adjustment. Unlike that of the nonester compounds, the bioavailability of the ester cephalosporins is increased when they are administered after food. Variable effects are observed when the ester agents are coadministered with antacids or H2-antagonists; while the absorption of cefetamet pivoxil was unaffected by coadministered antacids or H2-antagonists, the absorption of cefpodoxime proxetil was reduced.

Administration, Oral↗

Vancomycin dosing in haemodialysis patients and Bayesian estimate of individual pharmacokinetic parameters.

A dose reduction of vancomycin to 1000 mg once a week usually is recommended for haemodialysis patients. Our modified dosing schedule consists of a loading dose of 1000 mg and a maintenance dose of 500 mg administered 3 times a week after haemodialysis. Different vancomycin regimens were retrospectively evaluated by therapeutic drug monitoring and bayesian parameter estimates in 39 dialysis patients. The mean (+/- SD) trough level in 7 patients receiving only the conventional dosage regimen was significantly lower than in 17 patients strictly treated by the modified schedule (7 +/- 4 versus 17 +/- 8 mg/L; p = 0.001). The corresponding peaks were low in both groups and no different (23 +/- 10 versus 27 +/- 12 mg/L). The one week average vancomycin clearance was significantly lower in the conventional dosage group compared to the modified dosage group (6 +/- 3 versus 10 +/- 3 ml/min; p = 0.001). High-flux dialysers were not used in the conventional dosage group but for 30 percent of the procedures in the modified dosage group, where the vancomycin one week average elimination half-life was 66 hours (+/- 18) and the volume of distribution 50 litres (+/- 5). As compared to the bayesian programme, NONMEM calculated comparable pharmacokinetic parameters but could be applied only in 5 cases with a sufficient number of concentration measurements. Ototoxicity occurred in 1 patient, whereas vancomycin treatment was judged as ineffective against infection in 5 of the 39 patients. Their troughs were below 15 mg/L.(ABSTRACT TRUNCATED AT 250 WORDS)

Acute Kidney Injury↗

Determination of a new cephalosporin, SCE-2787, in serum and urine by high-performance liquid chromatography.

A high-performance liquid chromatographic method for the determination of a new-broad spectrum cephalosporin (I, SCE-2787) has been developed. The analyte was extracted from serum by precipitation of serum proteins with acetonitrile. Acetonitrile was extracted from the protein-free supernatant by dichloromethane. Urine was simply diluted with mobile phase. Separation was performed by ion-pair chromatography on a reversed-phase column (Nucleosil 5C18; 125 mm x 4.0 mm I.D.; 5 microns average particle size). The guard column was Perisorb RP18 (30 mm x 4.0 mm I.D.; 30-40 microns particle size). The mobile phase was acetonitrile-buffer solution containing 15 mM heptanesulphonic acid (pH 3.2) (4.5:95.5, v/v). Detection was performed at 235 nm with a diode-array detector, which also served to record ultraviolet spectra. The assay was sensitive, precise, accurate and fast. Specificity was controlled by on-line recording the ultraviolet spectrum of I and also by enzymic degradation with beta-lactamase. No interferences were observed during the analysis of serum and urine of healthy volunteers in pharmacokinetic studies.

Biological Assay↗

Elimination of cefmenoxime during continuous haemofiltration.

The elimination of cefmenoxime after single and repeated i.v. dosing was studied in 12 patients with severe renal failure and sepsis during continuous haemofiltration. More than 30% of the drug was found in the filtrate. The sieving coefficient (S) was 0.54. Vss% was unchanged 0.31 l.kg-1 in comparison with patients with normal renal function, whereas the mean t1/2ss was prolonged to about 16 h, and total clearance was reduced 20.8 ml.min-1.1.73 m-2. Once daily administration of 1 g cefmenoxime is suggested as the appropriate dose under such circumstances.

Adult↗

Pharmacokinetics of new oral cephalosporins, including a new carbacephem.

This review analyzes the pharmacokinetics of new oral cephalosporins, including esters, non-esters, and the carbacephem loracarbef, in healthy volunteers, as described in the literature and evaluated in several studies of our own. Single-dose studies have demonstrated considerable pharmacokinetic differences among these compounds. Cefixime, cefpodoxime proxetil, and cefetamet pivoxil are characterized by a low peak concentration and a prolonged half-life, while the other new agents have higher peak levels and shorter half-lives. Except for cefixime, the new oral cephalosporins are eliminated mainly by the kidneys. Pharmacokinetic studies in the elderly and in children indicate that the bioavailability of these agents is not influenced by age. Food increases the bioavailability of the ester cephalosporins but does not affect the absorption kinetics of the other new drugs.

Administration, Oral↗

Comparative pharmacokinetics and serum bactericidal activities of SCE-2787 and ceftazidime.

Ceftazidime and the new SCE-2787 are parenteral cephalosporins with a broad antimicrobial spectrum. Pharmacokinetics, serum bactericidal activities, and side effects were investigated in a randomized crossover study. A total of 12 healthy volunteers received a 20-min infusion of 1.5 g of SCE-2787 or 2.0 g of ceftazidime. Serum and urine concentrations were determined by the bioassay method and by high-pressure liquid chromatography (HPLC). The mean (+/- standard deviation) drug concentrations in serum at the end of infusion of SCE-2787 and ceftazidime were 124.4 +/- 23.8 and 233.1 +/- 54.1 mg/liter, respectively. The urine recovery of SCE-2787 was 87.8% +/- 5.5% of dose in 24 h and for ceftazidime was 85.8% +/- 6.3% of dose in 24 h. Metabolites of SCE-2787 could not be detected by HPLC in serum or urine. Pharmacokinetic parameters were calculated both with a noncompartmental analysis and on the basis of an open two-compartment model (drugs are administered into and eliminated from a central compartment only. However, reversible drug distribution from the central space occurs simultaneously into one peripheral space). The area under the concentration time curve from 0 h to infinity of SCE-2787 was 197.9 +/- 25.4 mg.h/liter, and that of ceftazidime was 334.2 +/- 40.0 mg.h/liter. SCE-2787 had a mean terminal half-life in the elimination phase of 109.0 +/- 15.3 min, while that of ceftazidime was 99.0 +/- 13.4 min. The volume of distribution at steady state of SCE-2787 was 17.1 +/- 1.6 liters/70 kg, and that of ceftazidime was 122.9 +/- 1.3 liters/70 kg. The mean residence time of SCE-2787 was 136.4 +/- 15.4 min, and that of ceftazidime was 122.9 +/- 12.7 min. The renal clearance per. 1.73 m2 of SCE-2787 was 103.1 +/- 12.3 ml/min, and that of ceftazidime was 80.6 +/- 13.2 ml/min. The serum bactericidal activities were measured with the microdilution method of Stratton and Reller (L. B. Reller and C. W. Stratton, J. Infect. Dis. 136:196-204, 1977) against 40 clinically isolated strains. One hour after administration, we measured mean reciprocal bactericidal titers of SCE-2787 and ceftazidime, respectively, against Escherichia coli of 388 and 243, against Klebsiella pneumoniae of 395 and 138, against Pseudomonas aeruginosa of 13.0 and 12.7, and against Staphylococcus aureus of 32.2 and 4.0. No severe side effects were observed in this single drug administration.

Adult↗

[Concentration of ciprofloxacin in bone tissue].

After the administration of a 200 mg i.v. dose, the concentration of ciprofloxacin in bone and serum of 20 patients with coxarthrosis was determined before implantation of a total hip-joint endoprosthesis. Samples were taken from the cortical bone and cancellous bone either 1 hour, 2 hours, 3 hours, 4 to 5 hours, or 13 to 19 hours after administration. Blood samples for the determination of serum concentration were also taken at these times. The bone samples were extracted three times in phosphoric acid (10 mmol/l) at 4 degrees C for 20 hours, the volume of phosphoric acid being ten times that of the bone sample. The ciprofloxacin concentration was determined by high-performance liquid chromatography and fluorescence detection. The bone concentration was referred to bone volume by assuming a bone density of 1.9 g/l. The mean bone concentrations in cancellous and cortical bone after ciprofloxacin administration were, respectively, 2.16 mg/l and 1.42 mg/l after 1 hour; 0.82 mg/l and 0.56 mg/l after 2 hours; 2.50 mg/l and 1.04 mg/l after 3 hours; 1.16 mg/l and 0.42 mg/1 after 4-5 hours; and 0.27 mg/l and 0.15 mg/l after 13-19 hours. Ciprofloxacin quickly penetrated the bone. The ratio of areas under the curve (AUC) from bone to serum was 2.24 for cancellous and 0.99 for cortical bone. In 16 out of 19 bone samples, the ciprofloxacin concentration measured was higher than the MIC90 for Staphylococcus aureus.

Aged↗

Determination of sparfloxacin in serum and urine by high-performance liquid chromatography.

A specific and sensitive analytical method for the determination of sparfloxacin in serum and urine is described. Serum proteins are removed by precipitation with acetonitrile after the addition of ofloxacin as an internal standard. The supernatant solvent is evaporated in a vacuum concentrator and the dry residue is redissolved in the mobile phase. Separation is performed on a cation-exchange column (Nucleosil 100 5SA, 125 x 4.0 mm I.D., 5 microns particle size) protected by a guard column (Perisorb RP-18, 30 x 4.0 mm I.D., 30-40 microns particle diameter). The mobile phase consisted of 750 ml of acetonitrile and 250 ml of 100 mmol/l phosphoric acid (v/v) to which sodium hydroxide had been added. The final concentration of sodium was 23 mmol/l and the pH was 3.82. Sparfloxacin and ofloxacin were determined by spectrofluorimetry (excitation wavelength 295 nm; emission wavelength 525 nm). The flow-rate was 1.5 ml/min and the retention times were 4.7 (sparfloxacin) and 8.0 (ofloxacin) min. Validation of the method yielded the following results for serum: detection limit 0.05 mg/l; precision between series 10.4-3.6%; recovery 99.5-100.0%; comparison with a microbiological assay c(bioassay) = 1.035c(HPLC) - 0.06. The test organism was Bacillus subtilis ATCC 6633. For urine the results were: detection limit 0.5 mg/l; precision between series 7.8-5.0%; recovery 97.0-97.8%; method comparison c(bioassay) = 1.092c(HPLC) - 1.09. No interferences were observed in human volunteers. The method can also be applied to stool samples.

Acetonitriles↗

Multiple dose kinetics of ofloxacin and ofloxacin metabolites in haemodialysis patients.

7 patients with end-stage renal disease on regular haemodialysis were treated orally with a loading dose of 200 mg ofloxacin and multiple maintenance doses of 100 mg per 24 h for 10 days. The pharmacokinetics of ofloxacin and its metabolites were studied at the end of the treatment period. Plasma and dialysate concentrations of ofloxacin and ofloxacin metabolites were measured by HPLC. Peak (3.1 mg.l-1) and trough levels (1.6 mg.l-1) and the AUC of ofloxacin were comparable to the values in healthy volunteers given 300 to 400 mg ofloxacin p.o. The mean half-life, determined in the dialysis-free interval (t1/2 beta) and during the haemodialysis session (t1/2 HD), was 38.5 h and 9.9 h, respectively. Extrarenal clearance (32.7 ml.min-1) was unchanged as compared to that reported in healthy volunteers after a single dose of ofloxacin. The fractional removal by haemodialysis amounted to 21.5%. Two metabolites, ofloxacin-N-oxide and demethyl-ofloxacin, were detected in plasma. Despite prolonged t1/2 beta of both metabolites (66.1 and 50.9 h) and multiple doses of ofloxacin the peak concentrations of the metabolites reached only 14% and 5% of that of the parent drug, respectively. It is concluded that in patients on regular haemodialysis treatment the dosage adjustment employed resulted in safe and therapeutically favourable plasma concentrations. The observed accumulation of ofloxacin metabolites does not appear to have any toxic or therapeutic significance.

Adult↗

Multiple dose pharmacokinetics, safety, and effects on faecal microflora, of cefepime in healthy volunteers.

In a randomized, double-blind, placebo-controlled study in 12 healthy volunteers pharmacokinetics, safety and impact on the faecal microflora of cefepime were determined. For eight days eight volunteers received cefepime 1000 mg bd by constant infusion over 30 min, four volunteers received placebo. Concentrations of cefepime in serum and urine were measured by bioassay and HPLC. The correlation between the two methods was good and the bioassay results were used for pharmacokinetic calculations. The faecal flora was analysed twice before the study, twice during the study and four times after cefepime administration. There were no significant differences in the pharmacokinetic parameters between days 1 and 8. The following values (mean +/- S.D.) represent day 1. The maximum concentration of 72.69 +/- 12.2 mg/L immediately after infusion decreased to 0.56 +/- 0.17 mg/L after 12 h. The mean 12 h recovery in urine was 93.69 +/- 2.14%. Pharmacokinetic parameters based on an open two-compartment model were as follows (mean +/- S.D.): area under the curve, 142.65 +/- 18.35 mg.h/L; elimination half-life 110.3 +/- 8.3 min; steady state volume of distribution 16.0 +/- 1.9 L/70 kg; total clearance, 107.0 +/- 16.0 mL/min; renal clearance 103.0 +/- 15.2 mL/min. No accumulation was observed during the eight day study period with cefepime at this dosage; trough levels on days 2-7 ranged from 0.52 +/- 0.26 mg/L to 0.90 +/- 0.33 mg/L. In the cefepime treated group the following side-effects were noted: headache (5), fatigue (4), nausea/stomach ache (2), soft stool (2), transient scotoma (1). Side-effects in the placebo group were: headache (2) fatigue (3), nausea/stomach-ache (1), soft stool (2) and photophobia (1). During cefepime administration a decrease in the number of Escherichia coli and bifidobacteria in faeces was observed, whereas Bacteroides spp. and clostridia showed a slight increase. The numbers of faecal bacteria returned to normal 20 to 48 days after the study was completed.

Bacteroides↗

Multiple-dose pharmacokinetics of cefprozil and its impact on intestinal flora of volunteers.

The pharmacokinetics of cefprozil were determined with 12 volunteers (8 received cefprozil and 4 received a placebo) after oral administration of 500 mg every 12 h over an 8-day period in a randomized, double-blind, placebo-controlled design. Concentrations in serum and urine were measured by high-pressure liquid chromatography and bioassay. The pharmacokinetic parameters were calculated on the basis of an open one-compartment model. The mean maximum concentration in serum on day 1 was 11.5 +/- 2.6 mg/liter, and the time to reach maximum concentration was 122.3 +/- 30 min after administration. Bioavailability parameters (area under the concentration-time curve from zero to infinity, maximum concentration of the drug in serum, and urinary recovery) indicated an excellent absorption. No accumulation over the 8-day period was registered. Cefprozil had a short biological elimination half-life of 58 +/- 10 min and a renal clearance of 210 +/- 51 ml/min, indicating high rates of renal excretion and tubular secretion. Analysis of the fecal flora showed an ecological impact of cefprozil on the intestinal microflora, such as a moderate decrease in enterobacteria and a slight increase in enterococci, staphylococci, and bacteroides during the study. The number of all bacterial species was already normalized 4 days after the administration period. The tolerance of cefprozil proved to be excellent; only a slight and reversible increase of liver enzymes (in two volunteers), mild cephalalgia, tiredness, and soft stool were registered during the 8-day period. Cefprozil had excellent absorption, no accumulation over an 8-day period, and only a limited impact on the intestinal microflora.

Administration, Oral↗

Pharmacokinetics of cefpodoxime proxetil and interactions with an antacid and an H2 receptor antagonist.

Cefpodoxime proxetil is a new oral esterified cephem antibiotic with a broad antibacterial spectrum. The dissolution of cefpodoxime proxetil is pH dependent. The objectives of this study were to characterize the pharmacokinetics of cefpodoxime proxetil in two different oral doses and to examine possible interactions with an antacid, aluminum magnesium hydroxide (Maalox 70), and an H2 receptor antagonist, famotidine. Two studies involving the same 10 healthy volunteers were performed. In the first study, cefpodoxime proxetil was administered in two doses, 0.1 and 0.2 g. In the second study, two interventions were performed in a randomized crossover design. For one intervention, the volunteers were pretreated with 40 mg of famotidine 1 h before 0.2 g of cefpodoxime proxetil was administered. In the second trial, participants were given 10 ml of Maalox 70 2 h and 10 ml of Maalox 70 15 min before they received 0.2 g of cefpodoxime proxetil. Serum and urine concentrations were determined by high-performance liquid chromatography. For the statistical evaluation, these data were tested by using the pharmacokinetics of 0.2 g of cefpodoxime proxetil from the first study. The maximum concentrations were 1.19 +/- 0.32 mg/liter after 0.1 g of cefpodoxime proxetil and 2.54 +/- 0.64 mg/liter after 0.2 g of cefpodoxime proxetil. The elimination half-lives were 149 min for 0.1 g and 172 min for 0.2 g of cefpodoxime proxetil. The total increase in the area under the concentration-time curve (AUC) was dose dependent. Combination with Maalox 70 caused a reduction in the AUC from 14.0 +/- 3.9 to 8.44 +/- 1.85 mg.h/liter. After famotidine, the AUC decreased to 8.36 +/- 2.0 mg . h/liter. Corresponding changes were registered for the maximum concentration of drug in serum, 24-h urine recovery, and the time to maximum concentration of drug serum. Cefpodoxime proxetil was well tolerated without any seriously adverse drug reactions.

Administration, Oral↗

Multiple-dose-kinetics of ofloxacin after intraperitoneal application in CAPD patients.

Pharmacokinetics of ofloxacin in plasma and peritoneal fluid were studied in 11 patients on continuous ambulatory peritoneal dialysis (CAPD). Seven patients without peritonitis received 20 mg ofloxacin added to 2L dialysate i.p. every 6 h for one day only, while 4 patients with acute peritonitis were treated with this same dosage every 4 h for 3 days, then every 6 h for the next 7 days. Ofloxacin concentrations in plasma and dialysate were determined by HPLC. After i.p. drug application there was a rapid elimination of ofloxacin from dialysate, this being significantly faster in patients with peritonitis as compared to those without. Likewise, the total amount lost from the first bag after a 3 h dwell was higher in the peritonitis group (84.7 +/- 1.5%; mean +/- SEM) than in the non-peritonitis group (75.6 +/- 2.1%). Twenty-four h after start of ofloxacin treatment, the mean peritoneal fluid concentrations at the end of each exchange studied were all above 3 mg/L. In patients with peritonitis, plasma concentrations of ofloxacin rose to 0.94 +/- 0.05 mg/L after 24 h reaching a Cmax of 1.8 +/- 0.2 mg/L after a tmax of 84 +/- 23 h. Intraperitoneal administration of ofloxacin was well tolerated, and no local or systemic adverse events were observed. Peritonitis episodes that were caused by Staphylococcus epidermidis (3) and by E. coli (1) were cured in all patients.

Acute Disease↗

[Efficacy of a theophylline retard preparation administered at 3 different intake times additionally to basic medication].

In this randomised crossover study in 26 outpatients with bronchial asthma the efficacy of a new once-daily theophylline formulation given in addition to a baseline medication was investigated; moreover, under steady state conditions, the effect of three evening intake times (6, 8 and 10 p.m.) on 24-hour pharmacokinetics and peak-expiratory flow profiles was evaluated. The theophylline dose had been individually titrated. The pharmacodynamic results show a marked improvement in 24-hour lung function data after adding theophylline to a drug therapy including inhalative anti-cholinergics in 50% of the treated outpatients. No significant differences between the pharmacokinetic characteristics and the 24-hour averages (mesors) of peak expiratory flow at the three different intake times 6, 8 and 10 p.m. were found; however, intake at 10 p.m. resulted in the highest nocturnal excess of serum theophylline concentrations and the highest peak expiratory flow during the early morning hours between 2 and 6 a.m.

Adult↗

Quinolone pharmacokinetics and metabolism.

The pharmacokinetic properties of the new fluoroquinolones are characterized by a high volume of distribution, long biological half-life, low serum protein binding, elimination by renal and extrarenal mechanisms with high total and renal clearances, limited biotransformation and moderate to excellent bioavailability after oral administration. However, each quinolone derivative (ciprofloxacin, enoxacin, fleroxacin, norfloxacin, ofloxacin and pefloxacin) possesses individual pharmacokinetic parameters, which should be considered in the treatment of patients, especially when liver or renal dysfunction exists.

Administration, Oral↗