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W R Ravis

Publications and source records attributed to W R Ravis.

At least 19 recordsLinked to original sources

Stereospecific pharmacokinetics of free and protein-bound ketoprofen in serum and synovial fluid of horses after intravenous and intramuscular administration.

OBJECTIVE: To determine intravascular and intrasynovial pharmacokinetics of the R and S enantiomers of ketoprofen after i.v. and i.m. administration to horses. ANIMALS: 6 healthy adult mares. PROCEDURE: Horses were weighed and ketoprofen (2.2 mg/kg of body weight) was administered i.v. Blood and synovial fluid samples were obtained and analyzed for concentrations of the R and S enantiomers by means of a modified reverse-phase stereospecific high-pressure liquid chromatographic method. Three weeks later, the procedure was repeated, except that ketoprofen was given IM. Protein binding of ketoprofen enantiomers was determined by means of ultrafiltration. Nonlinear least squares methods were used to calculate pharmacokinetic parameters. RESULTS: Data obtained after i.v. administration best fit an open, two-compartment model. Mean +/- SD S-to-R serum concentration ratios after i.v. and i.m. administration were 1.36 +/- 0.214 and 1.34 +/- 0.245, respectively. Intrasynovial concentrations of the R and S enantiomers of ketoprofen could be measured for only the first 3 hours after i.v. administration; concentrations were less than the limit of quantification by 4 hours after i.v. administration and at all times after i.m. administration. Extent of protein binding of the R enantiomer was not significantly different from extent of protein binding of the S enantiomer; extent of protein binding did not appear to be concentration dependent. Mean free S-to-free R serum concentration ratios, adjusted for protein binding, after i.v. and i.m. administration were 1.58 and 1.56, respectively. CONCLUSIONS: The R and S enantiomers of ketoprofen are rapidly absorbed and eliminated, have low volumes of distribution, and are highly protein bound.

Animals

Up-regulation of dopamine D1-receptors in the brain of 28-day-old rats exposed to the delta (delta) opioid agonist SNC80 during the preweaning period.

Twenty-eight-day-old rats exposed to the delta (delta) opioid receptor agonist SNC80 during the preweaning period exhibited a significant increase in the density and apparent dissociation constant of striatal dopamine D1-receptors. There were no significant effects on the binding characteristics of striatal D2-receptors or on D1- or D2-receptors in the nucleus accumbens. The results suggest that delta-opioid receptor mechanisms might be involved in certain neurological changes observed in offspring of mother addicted to opioids during nursing.

Animals

Effect of cholestyramine resin on single dose valproate pharmacokinetics.

Cholestyramine, a nonabsorbable anion exchange resin, has been reported to bind concomitantly administered drugs and decrease their bioavailability. The objective of the study was to determine the effect of cholestyramine on the plasma concentrations of valproic acid (VPA) following concurrent and staggered (VPA 3 hours before cholestyramine) dosing. Six healthy volunteers participated in an open-label, 3-way crossover study. In each phase fasting subjects received 250 mg of VPA followed by serial blood sampling for VPA plasma concentrations over a 37-hour period. In the concurrent and staggered phase the subjects received 4 g of cholestyramine (CHOL) twice daily 24 hours prior to and following the VPA dose. During the concurrent phase the coadministration of CHOL resulted in a decrease (p < 0.05) in the area under the curve (AUC) for VPA compared to VPA alone (415.2 +/- 113.2 mg*hr/l vs 489.2 +/- 153.0 mg*hr/l, respectively). When the same dose of each drug was administered 3 hours apart, the AUC for VPA (454.8 +/- 123.1 mg*hr/l) was not significantly decreased when compared to VPA alone (489.2 +/- 153.0 mg*hr/l). Also, the bioavailability relative to VPA alone was 86.2% +/- 7.1 for the concurrent phase and 95.3% +/- 13.6 for the staggered phase. Based on the AUC of VPA concurrent administration of CHOL significantly decreases VPA absorption and separating the doses of the 2 drugs by 3 hours may lessen the interaction.

Adolescent

The pharmacokinetics and liver metabolism of N-hydroxy-3,4-methylenedioxyamphetamine (N-OH MDA) in rats.

The metabolism and disposition of N-hydroxy-3,4-methylenedioxyamphetamine (N-OH MDA) was studied by utilizing rat liver slices as well as by intravenous pharmacokinetic studies in rats. In the liver slice experiments, N-OH MDA (16 micrograms/ml) was incubated with rat liver slices and the disappearance of N-OH MDA and the appearance of MDA were observed over 2 hours. Drug and metabolites were assayed by a reverse phase high performance liquid chromatographic procedure including a C8 column and UV detection. N-OH MDA disappeared from the plasma at an apparent first-order rate with a t1/2 of 36.3 +/- 8.4 min. By the end of 2 hours, approximately 85% of the N-OH MDA was biotransformed to MDA. Following placement of jugular cannulas in rats, a dose of 15 mg/kg of N-OH MDA was administered intravenously. With rapid blood sampling, a t1/2 of 0.86 +/- 0.12 min was observed for N-OH MDA. A total body clearance of 9.09 +/- 2.06 L/hr/kg and a volume of distribution of 0.184 +/- 0.022 L/kg were noted. Plasma concentrations of MDA were observed after the N-OH MDA dose to rats. The MDA t1/2 after N-OH MDA dosing was 1.68 +/- 0.29 hours with peak plasma concentrations at 8 min. No other major metabolites could be detected in liver slice, plasma, or urine samples. Both sets of studies demonstrate the rapid conversion of N-OH MDA to MDA in rats.

3,4-Methylenedioxyamphetamine

The pharmacokinetics and pharmacodynamics of procainamide in horses after intravenous administration.

Six horses were administered either 15 or 20 mg/kg body weight (b.w.) procainamide (PA) as an intravenous (i.v.) dose over 10 min. The plasma concentrations of PA and N-acetylprocainamide (NAPA) as well as the pharmacodynamic effect (prolongation of the QT interval) were monitored. The PA plasma concentrations could be described by a one-compartment model with a t1/2 of 3.49 +/- 0.61 h. The total body clearance of PA was 0.395 +/- 0.090 l/hr/kg and the volume of distribution was 1.93 +/- 0.27 l/kg. As observed after PA administration, NAPA (an active metabolite) had a t1/2 longer than PA of 6.31 +/- 1.49 h. Peak NAPA concentrations (1.91 +/- 0.51 micrograms/ml) occurred at 5.2 h after the PA i.v. dose. The ratio of area under the curves for NAPA to PA was 0.46 +/- 0.15 which is similar to that expected in humans classified as slow acetylators. Percentage change in the QT interval was examined with respect to PA and PA + NAPA plasma concentrations. For PA, % delta QT = 41.2 log (PA) - 13.26 and correlations (r) ranged from 0.77 to 0.91 among the horses. In the case of PA+ NAPA, % delta QT = 57.3 log (PA + NAPA) - 31.83 and ranged from 0.77 to 0.90. No evidence of toxicity was noted with respect to changes in the PR interval.

Acecainide

Disposition and bioavailability of neomycin in Holstein calves.

The disposition and absorption kinetics of neomycin were studied in healthy ruminating dairy calves (n = 6), approximately 3-months-old. The calves were treated with single intravenous (i.v.) (12 mg/kg), intramuscular (i.m.) (24 mg/kg), oral (p.o.) (96 mg/kg) and repeated p.o. (96 mg/kg, b.i.d., 15 1/2 days) doses of neomycin. A 3-week rest period was allowed between treatments A and B, and B and C. Baseline and serial venous blood samples were collected from each calf. Plasma concentrations of neomycin were determined by a high performance liquid chromatography procedure. The resulting data were evaluated by using compartmental pharmacokinetic models and nonlinear least squares regression analysis. The mean of some selected parameters were t1/2 lambda 3 7.48 +/- 2.02 h, Clt = 0.25 +/- 0.04 L/h/kg, Vd(ss) = 1.17 +/- 0.23 L/kg, and MRT = 4.63 +/- 0.87 h for the i.v. data and t1/2 = 11.5 +/- 3.8 h, MRTabs = 0.960 +/- 1.001 h, F = 127 +/- 35.2%, and Clt/F = 0.199 +/- 0.047 L/h/kg for the i.m. data, respectively. Only one calf absorbed neomycin to any significant degree (F = 0.0042) after a single p.o. dose. Selected mean parameters determined after repeated oral dosing were: F = 0.45 +/- 0.45%, Cmax = 0.26 +/- 0.37 microgram/ml, and tmax = 2.6 +/- 2.9 h. Terminal half-lives determined for the i.v. and i.m. treatments were considerably longer than those reported previously in the literature.

Animals

Influence of cholestyramine resin administration on single dose sulindac pharmacokinetics.

Cholestyramine, a nonabsorbable anion exchange resin, has been reported to bind concomitantly administered drugs and decrease their bioavailability. The objective of the study was to determine cholestyramine effect on the plasma concentrations of sulindac and its sulfide metabolite following concurrent and staggered (sulindac 3 hours before cholestyramine) dosing. Six healthy volunteers participated in an open-label, 3-way crossover study. Subjects received 400 mg sulindac orally followed by serial blood sampling for sulindac and sulindac sulfide plasma concentrations over a 24-hour period. During the concurrent phase, 4 g of cholestyramine was coadministered resulting in a decrease (p < 0.05) in the area under the curve (AUC) for sulindac compared to sulindac alone (7.11 +/- 3.25 micrograms-h/ml vs 31.65 +/- 7.94 micrograms-h/ml respectively). Also, the sulindac sulfide AUC decreased (p < 0.05) to 7.26 +/- 4.37 micrograms-h/ml coadministration of both drugs compared to 44.69 +/- 11.81 micrograms-h/ml when sulindac is given alone. When the same doses of each drug were given 3 hours apart, the AUC for sulindac (17.88 +/- 3.69 micrograms-h/ml) and its sulfide metabolite (20.12 +/- 7.46 micrograms-h/ml) were still significantly decreased (p < 0.05) when compared to sulindac given alone (31.65 +/- 7.94 micrograms-h/ml for sulindac and 44.69 +/- 11.81 micrograms-h/ml for sulindac sulfide). Based on the lower AUCs for sulindac and sulindac sulfide, separating sulindac and cholestyramine by 3-hour intervals did not prevent the interaction. It is likely that the enterohepatic recycling features of sulindac may not prevent the interaction with cholestyramine even when the 2 drugs are staggered.

Adult

Pharmacokinetics and dialyzability of sulindac and metabolites in patients with end-stage renal failure.

Sulindac was administered as a single 300-mg oral dose to six patients with end-stage renal failure and six normal subjects. Plasma concentrations of sulindac and its sulfide and sulfone metabolites were examined over a 48-hour period. As determined by ultrafiltration methods at 37 degrees C, the percentage free of sulindac and sulindac sulfide in plasma was greater, respectively, in the patients with renal failure (10.50 +/- 2.42 and 9.96 +/- 1.21) than in the normal subjects (6.78 +/- 0.45 and 6.01 +/- 0.37). Free sulindac plasma concentrations were not different between the two groups. However, sulindac sulfide, total and free, plasma concentrations were substantially decreased in the group with renal failure. Total area under the curve (AUC) of the sulfide metabolite was 18% in the normal subjects and the free AUC was 29%. In patients with renal failure, the apparent half-lives of sulindac (1.98 +/- 0.76 hours) and sulindac sulfide (15.6 +/- 5.8 hours) were not different from those of normal subjects. Sulindac sulfone half-life was highly variable and longer in the patient group. Studies of dialysis clearance showed that sulindac and its metabolites are poorly dialyzed. A 4-hour dialysis period increased the plasma binding of both sulindac and sulindac sulfide in the patient group. Based on the decreased plasma concentration of the active sulindac sulfide metabolite in the patient group, dosage adjustments may be required in patients with end-stage renal failure.

Administration, Oral

Pharmacokinetics of L-thyroxine after its oral administration in dogs.

Twelve mature (5 sexually intact males, 4 castrated males, and 3 females) mixed-breed dogs were surgically thyroidectomized and used in a Latin-square design pharmacokinetic study of orally administered L-thyroxine. The dogs were treated with 44, 22, and 11 micrograms of L-thyroxine/kg as a single morning dose or in divided doses, morning and evening. Serum concentration of thyroxine (T4) was evaluated to determine a number of pharmacokinetic variables for comparison. Mean steady-state concentrations (Css) were determined from the area under the curve. Variables were analyzed for comparisons between dosages by use of ANOVA. Concentration at steady state was highest for dogs of the 44-micrograms/kg of body weight once-daily group and was lowest for dogs of the group given 11 micrograms/kg in 2 daily doses. Single daily administration resulted in higher Css, except at the 22-micrograms/kg/d dosage. Clearance was faster for the 22- and 44-micrograms/kg/d dosages than for the 11-micrograms/kg/d dosage. The half-life (t1/2) and mean residence time (MRT) also were shorter for the 44-micrograms/kg/d dosage, possibly indicating more rapid elimination of the drug at higher doses and dose-dependent kinetics. Perhaps, as the dogs' metabolism increased with higher iodothyronine concentrations, hormone degradation was accelerated. Interval (divided vs single dose) caused some expected changes: maximal concentration was higher and minimal concentration was lower when single administration was used. These undulations resulted in iodothyronine concentrations above the physiologic range for a number of hours, whereas concentration closer to physiologic ranges was achieved by use of divided doses.(ABSTRACT TRUNCATED AT 250 WORDS)

Administration, Oral

Pharmacokinetics and intramuscular bioavailability of amikacin in chickens following single and multiple dosing.

The pharmacokinetics of amikacin were studied in healthy mature female chickens (n = 6). Single doses of amikacin were injected as an i.v. bolus (10 mg/kg) and i.m. (20 mg/kg) into the same birds with a 30-day rest period between treatments. Amikacin was determined by the fluorescence polarization immunoassay method. The i.v. pharmacokinetics could be described by a two-compartment model with a t1/2 alpha of 0.150 +/- 0.064 h and a t1/2 beta of 1.44 +/- 0.34 h. The total body clearance was 0.109 +/- 0.017 1/h/kg and the volume of distribution at steady-state was 0.193 +/- 0.060 l/kg. Following a single i.m. injection, the peak plasma concentration (Cmax) was 50.79 +/- 4.05 micrograms/ml and occurred at 0.50 +/- 0.26 h. The i.m. extent of absorption was 91.2 +/- 17.6%. Simultaneous modeling of i.v. and i.m. results provided estimates of an absorption half-life of 0.480 +/- 0.158 h. The i.m. pharmacokinetics after repeated administration were studied following the tenth dose (20 mg/kg, every 8 h). The Cssmax was 38.58 +/- 6.96 micrograms/ml and occurred at 0.79 +/- 0.37 h, and the biological half-life of amikacin was 1.86 +/- 0.47 h. The multiple dosing yielded peak concentrations of 39 micrograms/ml and trough concentrations of 3.26 micrograms/ml. Based on these data, the recommended amikacin dosage in chickens is 20 mg/kg body weight every 8 h.

Absorption

Effect of a perfluorochemical emulsion on the rat hepatic mixed function oxidase system.

The perfluorochemical components of synthetic oxygen transporting emulsions may persist in hepatic tissue. After a single 30% blood exchange with the perfluorochemical emulsion, Fluosol-DA 20%, the effects on the microsomal metabolism of 7-methoxycoumarin and 7-ethoxycoumarin were studied over a 9-week period. Fluosol-DA treated animals were compared with controls (sham) and hetastarch-treated controls. Changes in dealkylase activities were compared with induction by phenobarbitone and 3-methylcholanthrene. The liver to body weight ratio increased by 49% in Fluosol-DA-treated rats over the controls at 1 week and the microsomal protein was increased in the Fluosol-DA-treated rats after 4 and 9 weeks. Fluosol-DA treatment induced 7-methoxycoumarin demethylase with peak differences occurring at 1 week and a Vmax 75% greater than controls. Fluosol-DA was a more potent inducer of demethylase than phenobarbitone. In addition, 7-ethoxycoumarin de-ethylase was induced by Fluosol-DA with a peak induction at 4 weeks. The Vmax at 4 weeks in Fluosol-DA-treated rats was 122% greater than control. In this case, Fluosol-DA produced less induction in de-ethylase than 3-methylcholanthrene. These studies show that Fluosol-DA induces more than one form of cytochrome P450 and the effects resemble those of phenobarbitone more than those of 3-methylcholanthrene. Hetastarch, a plasma expander, did not affect liver weights, microsomal protein content, or the cytochrome P450 system.

7-Alkoxycoumarin O-Dealkylase

Pharmacokinetics of phenobarbital in horses after single and repeated oral administration of the drug.

Six healthy mature horses were orally administered a single dose of phenobarbital (26 mg/kg of body weight), then multiple doses (13 mg/kg) orally for 42 consecutive days. Seventeen venous blood samples were collected from each horse after the single dose study and again after the last dose on day 42. Plasma phenobarbital concentration was determined by use of a fluorescence assay validated for horses. Additional blood samples (n = 11) were collected on days 8 and 25 to determine peak and trough concentrations, as well as total body clearance. Phenobarbital disposition followed a one-compartment model. Mean kinetic variables after single and repeated orally administered doses (42 days) were: elimination half-life = 24.2 +/- 4.7 and 11.2 +/- 2.3 hours, volume of distribution = 0.960 +/- 0.060 and 0.914 +/- 0.119 L/kg, and clearance = 28.2 +/- 5.1 and 57.3 +/- 9.6 ml/h/kg, respectively. Results indicated that significant (P less than 0.05) difference in half-life and oral clearance existed between single and repeated dosing. The significant decrease in half-life after repeated dosing with phenobarbital may be indicative of enzyme induction. Significant difference was not observed between baseline serum enzyme concentration and concentration measured on day 42, except for gamma-glutamyltransferase activity, which was significantly increased on day 42 in 3 of the 6 horses. On the basis of increases in oral clearance observed over 42 days, dose adjustments may be required.(ABSTRACT TRUNCATED AT 250 WORDS)

Absorption

Effects of lactated Ringer solution and prednisolone sodium succinate on dogs with induced hemorrhagic shock.

Hemorrhagic shock was induced in nonsplenectomized dogs by removing 41% of their blood volume over a 15-minute period. Hemodynamic and metabolic variables were determined prior to and for 3 hours after completion of hemorrhage. One group of 5 dogs was not treated. After the 30-minute sample was collected, a second group of 5 dogs was given lactated Ringer solution (LRS) at 88 ml/kg of body weight, IV. A third group of 5 dogs was given LRS (88 ml/kg, IV) and prednisolone sodium succinate (11 mg/kg, IV) 30 minutes after hemorrhage. The IV administration of LRS was completed within 15 minutes. The glucocorticoid was administered as an IV bolus after 500 ml of LRS had been given. The large volume and administration of LRS significantly (P = 0.05) improved many of the hemodynamic and metabolic effects of acute hemorrhage and hemorrhagic shock. At one time or another during the 2.5-hour observation period after the initiation of treatment, mean arterial pressure, cardiac index, systemic vascular resistance, heart rate, respiratory rate, lactate, glucose, and arterial and venous blood gas values were significantly (P = 0.05) improved, compared with baseline values. The addition of prednisolone sodium succinate to the treatment regimen improved the effectiveness of LRS alone only in some dogs at random sampling times. Significant trends were not observed except, possibly, the improvement of venous pH and A-V pH and PCO2 differences.

Acute Disease

Determination of neomycin in plasma and urine by high-performance liquid chromatography. Application to a preliminary pharmacokinetic study.

A reversed-phase high-performance liquid chromatographic (HPLC) method has been developed for the determination of neomycin in plasma and urine. The plasma was deproteinated with trichloroacetic acid and centrifuged. The supernatant was mixed with ion-pair concentrate and centrifuged again. The resultant supernatant was analyzed by HPLC. Urine was centrifuged to remove debris, if any, mixed with ion-pair concentrate and analyzed directly by HPLC. The HPLC conditions consisted of an ion-pairing mobile phase, a reversed-phase column, post-column derivatization with o-phthalaldehyde (OPA) reagent and fluorescence detection. The overall average recovery of neomycin was 97 and 113% from plasma spiked at 0.25-1.0 micrograms/ml, using standard curves prepared in plasma extract and in water, respectively, and 94% for urine spiked at 1-10 micrograms/ml using a standard curve prepared in water. The method was used to detect neomycin in plasma and urine obtained from animals injected intramuscularly with neomycin. Various pharmacokinetic parameters of neomycin were also determined from its profile of plasma concentration versus time.

Animals

Comparative inactivation of isepamicin, amikacin, and gentamicin by nine beta-lactams and two beta-lactamase inhibitors, cilastatin and heparin.

This study was undertaken to compare the susceptibility to inactivation of isepamicin with amikacin and gentamicin when exposed to different beta-lactams, beta-lactamase inhibitors, and heparin. The aminoglycosides (5, 10, 20, and 50 micrograms/ml) were incubated in human serum with ampicillin, azlocillin, aztreonam, carbenicillin, ceftazidime, piperacillin, and ticarcillin (100 and 600 micrograms/ml) and with clavulanate, cilastatin, 1:1 imipenemcilastatin, oxacillin, and sulbactam (20 and 120 micrograms/ml) for 48 h at 37 degrees C. Aminoglycoside concentrations were measured by fluorescence polarization immunoassay (FPI) after 0, 8, and 48 h of incubation and by radial diffusion bioassay after 48 h of incubation. Each of the three aminoglycosides was also added to whole blood containing either heparin (100 U/ml) or 0.5% EDTA as a control and assayed after 6 h by FPI. The degree of inactivation of isepamicin by the beta-lactams was significantly less than that by amikacin (P less than 0.003) and gentamicin (P less than 0.0002) when determined by bioassay. Piperacillin, carbenicillin, and azlocillin produced the greatest amount of inactivation, and cilastatin and oxacillin produced the least. A similar pattern was observed when the degree of inactivation was measured by FPI. A significant difference in the degree of inactivation was noted between isepamicin and gentamicin (P less than 0.003 at 8 h and P less than 0.006 at 48 h) but not between isepamicin and amikacin (P greater than 0.7 at 8 h and P greater than 0.08 at 48 h). Aminoglycoside determinations by FPI were not influenced by the presence of heparin. In summary, isepamicin was found to be at least as stable as amikacin against inactivation by beta-lactam compounds and beta-lactamase inhibitors. Heparin (100 U/ml) did not influence aminoglycoside determinations by FPI.

Amikacin

Perfluorochemical erythrocyte substitutes: disposition and effects on drug distribution and elimination.

As a result of their ability to transport oxygen, PFC emulsions are being investigated for possible use in a wide variety of conditions. The recent FDA approval of F-DA to diminish myocardial ischemia during angioplasty is the first marketing approval for such a product in the world. The many potential uses of such products may result in their common application in the future, especially as new and better products are developed. The elimination, distribution, and tissue retention of PFC emulsions as well as the physiological changes that occur upon their administration have been the subject of many investigations. The results indicate that these agents may influence the pharmacokinetic properties of other drugs by a wide variety of mechanisms. Several studies have shown significant, but not necessarily consistent, changes in drug elimination and distribution following PFC emulsion infusion. Changes appear dependent on the drug examined, emulsion utilized, degree of blood exchange, species utilized, and the controls chosen for comparison. Often, the changes are time dependent indicating the importance of conducting long-term studies. While PFC emulsions do not appear to alter renal elimination of drugs, several studies have demonstrated that these agents have the potential to induce drug metabolism from several days to possibly months after exposure. Observed changes in drug volumes of distribution, which are often time dependent, may be due to changes in normal drug transport throughout the circulation and/or changes in membrane permeability and cell transport mechanisms. Changes in drug transport may result from depletion of plasma proteins or increases in alpha 1-acid glycoprotein levels due to trauma or PFC emulsion effects. The binding of drugs by PFC emulsion droplets varies greatly and PFC emulsion components displace some plasma protein bound drugs. The wide variability in the results and conclusions of the pharmacokinetic studies conducted to date emphasize the importance of utilizing adequate controls to identify which alterations are PFC emulsion specific.

Animals