Search PubMed⌕ Search

Biomedical subjects

D R Hicks

Publications and source records attributed to D R Hicks.

24 records · Page 2Linked to original sources

Determination of tolrestat, a novel aldose reductase inhibitor, in serum and tissues.

An ultraviolet spectrophotometric method and a high-performance liquid chromatographic (HPLC) method were developed for the determination of tolrestat, a novel aldose reductase inhibitor, in serum. The limits of detection of the methods are 15 micrograms/ml and 0.2 microgram/ml, respectively. With human serum, a modification of the HPLC method provides sensitivity to 25 ng/ml. The specificity of the methods were compared. The HPLC method can be applied to the lens and the sciatic nerve.

Aldehyde Reductase↗

Bioavailability studies with etodolac in dogs and man.

The effects of formulation, particle size, coadministration of food, antacids, or antiulcer agents on the bioavailability of etodolac (ULTRADOL, 1,8-diethyl-1,3,4,9-tetrahydropyrano[3,4-b]indole-1-acetic acid), a novel non-steroidal anti-inflammatory agent, have been evaluated in dogs and man. The effects of dosage regimen and/or repetitive dosing on bioavailability were also determined. In man, capsule and tablet dosage forms containing micronized etodolac were shown to have a bioavailability (AUC) equal to that of the reference etodolac solution. Etodolac from tablets and capsules was rapidly absorbed since only minor decreases in Cmax and increases in tmax were observed compared to the etodolac solution. In a comparison of regular and micronized etodolac dosage forms, both in dogs and man, similar findings, i.e. no change in AUC but small parallel changes in Cmax and tmax, were noted. Administration of etodolac with food had no effect on etodolac bioavailability in dogs but tended to cause a delay in its absorption. Coadministration of an antacid, magaldrate, or the antiulcer agent, sucralfate, had no effect on the bioavailability of etodolac in dogs, although with the latter, a significant reduction in Cmax was noted. In man, etodolac may be administered as a single bolus dose or in divided (b.i.d.) doses without any loss in bioavailability. With either regimen, on repeat administration for 7 days, no etodolac accumulation was noted.

Acetates↗

Metabolic disposition and pharmacokinetics of pelrinone, a new cardiotonic drug, in laboratory animals and man.

The metabolic disposition of pelrinone, a cardiotonic drug, was studied in mouse, rat, rabbit, dog, monkey and man. Pelrinone was rapidly and extensively absorbed in rodents, dogs, monkeys and man. Except in rabbits, the major portion of the serum radioactivity was due to parent drug. Pelrinone was moderately bound to human serum proteins and weakly bound to serum proteins from animals. Radioactive compounds were rapidly eliminated from rat tissues with the highest concentrations found in organs associated with absorption and elimination. After a 1.0 mg/kg i.v. dose, the rapid elimination of pelrinone from mouse, rat and dog serum precluded estimation of an elimination half life (t1/2). However, after higher oral or i.v. doses, a more prolonged elimination phase was apparent and the t1/2 of pelrinone ranged from 8-10 h in rodents and dogs. In human subjects given escalating oral or i.v. doses of pelrinone, the elimination t1/2 was independent of dose and averaged 1-2 h. The serum AUC of pelrinone was linearly dose-related following oral doses up to 20 mg/kg in dogs and 100 mg in man. In mice, a greater proportional increase in AUC occurred between oral doses of 2-100 mg/kg while in rats, the serum AUC increased in less than proportional manner from 10-200 mg/kg p.o. In all species, radioactive compounds were excreted mainly in the urine. No metabolites were detected in dog and human urine while small amounts of unconjugated metabolites were excreted in mouse and rat urine.

Administration, Oral↗

Tolrestat pharmacokinetics in rat peripheral nerve.

The clinical efficacy of an aldose reductase (AR) inhibitor in diabetic polyneuropathy depends on its bioavailability at the site(s) of AR in peripheral nerves. Accordingly, the link between the concentration of the AR inhibitor, tolrestat, and the extent of its inhibition of the AR-catalyzed polyol production was investigated in sciatic nerves of galactosemic rats. Tolrestat was administered by gavage (1 x 150 mg/kg, or 5, and 15 mg/kg/day for 15 days to attain steady state as estimated from the 53-h half-life of tolrestat determined in rat nerve); subsequently, at six time intervals, ranging from 4 to 59 days, rats were given access for 4 days to a 20% galactose diet, and killed. At every time point, the composite tolrestat concentration in the nerve correlated with the percentage decrease in nerve galactitol (r = 0.857, p = 0.0015). Because the latter should reflect the extent of nerve AR inhibition by tolrestat, the concentration of "free" tolrestat available at the site(s) of AR in the nerve was estimated from the tolrestat concentration/percent AR inhibition plot obtained in vitro. The estimated amount of tolrestat present at the site(s) of nerve AR represented 0.4% of the composite tolrestat concentration measured in the nerve. The results support the view that the effectiveness of an AR inhibitor in peripheral nerve depends on its pharmacokinetics in the nerve, i.e., on its uptake, nonspecific binding to cellular constituents, and elimination.

Administration, Oral↗

Metabolic disposition and pharmacokinetics of the aldose reductase inhibitor tolrestat in rats, dogs, and monkeys.

The metabolic disposition and pharmacokinetics of the aldose reductase inhibitor tolrestat were studied in rats, dogs, and assamese and capuchin monkeys. In addition, the ocular penetration of tolrestat was examined in rabbits. The bioavailability of tolrestat was 81% in rats and 68% in dogs. In contrast to rats, a major proportion of the serum 14C in dogs and monkeys was due to unchanged drug. The terminal elimination half-life of tolrestat in serum was 3.5 hr in rats, 11 hr in dogs, and 9 hr in monkeys; in both dogs and monkeys, the total body clearance was 200 ml/kg X hr, and the volume of distribution was 3 liters/kg. In rats and dogs, serum tolrestat concentrations were similar after single and multiple po doses, and were linearly dose-related up to 25 mg/kg, but increased disproportionately at higher doses. Tolrestat was at least 98% bound to rat and dog serum proteins. Except for organs associated with absorption and elimination, tissue 14C levels were lower than in serum of rats and capuchin monkeys, and there was no tissue 14C accumulation. The 14C from topically applied 14C-tolrestat readily penetrated into the eyes of rabbits. Liver microsomal cytochrome P-450 was virtually unaltered in tolrestat-treated rats. Tolrestat (and/or its metabolites) underwent enterohepatic circulation in rats. Most of the 14C from 14C-tolrestat administered po and iv to rats and dogs was excreted in the feces. Based on 14C excretion, the absorption of tolrestat was 84% in rats and 82% in dogs.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗