Search PubMed⌕ Search

Biomedical subjects

F L Tse

Publications and source records attributed to F L Tse.

79 records · Page 5Linked to original sources

Influence of high-fat meal on the absorption of a silicon-containing amide, an inhibitor of acyl-CoA: cholesterol acyltransferase, in man.

The pharmacokinetics of 3-(decyldimethylsilyl)-N-[2-(4-methylphenyl)-1- phenylethyl] propanamide (DMPP), an inhibitor of acyl-CoA: cholesterol acyltransferase, have been examined in 18 healthy male volunteers who received an oral dose of either 14C-DMPP or 3H-DMPP immediately following a high-fat meal, or 3H-DMPP in the fasting state. DMPP was poorly absorbed in the fasting subjects. Administration with a high-fat meal significantly increased the extent of absorption to 15 per cent of the dose. Simultaneous fitting of the blood levels and excretion data to a pharmacokinetic model showed that ca. 64 per cent of the absorbed DMPP was metabolized while the remainder was excreted intact via the bile. The routes of biotransformation included hydrolysis of the amide bond and oxidation of the phenyl ring. The apparent volumes of distribution for DMPP and its 14C and 3H labelled metabolites were 0.89, 0.95, and 1.6 lkg-1, respectively, suggesting that these materials were distributed into extravascular spaces. The metabolites of DMPP were partially excreted in urine, accounting for 1.2 per cent and 3.8 per cent of the postprandial 14C and 3H labelled doses, respectively. The elimination half-lives of DMPP and its 14C and 3H labelled metabolites were 2.8, 5.3, and 6.9 h, respectively.

Acetyl Coenzyme A↗

Interspecies similarities in the disposition of 3H-dihydroergotamine following subcutaneous administration in man and rabbits.

The disposition of dihydroergotamine methanesulfonate following single subcutaneous doses was studied in man and the rabbit using radiotracer techniques. 3H-Dihydroergotamine was almost immediately and completely absorbed from the injection site; peak blood radioactivity levels were attained within 1 h of drug administration in both species. The disappearance of radioactivity from blood was biphasic, with t 1/2,alpha and t 1/2,beta values of 2.9 and 16.9 h, respectively, in man and 2.9 and 14.7 h, respectively, in the rabbit. Apparent volumes of distribution were 18.9 Liter/kg in man and 30.4 Liter/kg in the rabbit. The excretion pattern of dihydroergotamine and its metabolites was also similar for the two species, with biliary elimination being the predominant route. At 4-5 days postdosing, 80-85% of the administered radioactivity was recovered in the feces and urine. The rabbit appears to be an adequate animal model for the study of dihydroergotamine pharmacokinetics in man.

Adult↗

Pharmacokinetics and metabolism of the 5-hydroxytryptamine antagonist tropisetron after single oral doses in humans.

Tropiestron is a potent and selective antagonist of 5-hydroxytryptamine receptors. Tropisetron was developed for the indication of cancer chemotherapy-induced emesis. The pharmacokinetic and metabolic dispositions of tropisetron were studied in 12 healthy male volunteers receiving a single oral dose of 62 or 312 mumol (20 or 100 mg) of [14C]tropisetron. Serial plasma samples and complete urine and feces were collected for 120 hr postdose. Whereas the absorption of oral doses of 62-312 mumol tropisetron was rapid and complete, bioavailability was estimated to be only 66% for the 312 mumol dose and 52% for the 62 mumol dose, apparently because of saturable first-pass metabolism. Maximal concentrations of tropisetron averaged 87 and 608 nM after doses of 62 and 312 mumol, respectively, and the parent drug accounted for 21 and 36% of the radioactivity in AUC0-24 hr pools. Approximately 90% of the drug was metabolized before excretion, and approximately 70% of the dose was recovered in the urine. Following both the 62 and 312 mumol doses, the terminal half-life of tropisetron averaged 6-7 hr and that of total radioactivity was 10-11 hr. Tropisetron and its metabolites in plasma and urine were separated by gradient elution reversed-phase HPLC. Structures of eight metabolites were assigned on the bases of NMR and MS data. Tropisetron was metabolized by oxidative hydroxylation of the indole ring at positions 5, 6, and 7. The hydroxylated derivatives are further conjugated with glucuronic acid and sulfate. N-Oxygenation and oxidative N-demethylation at the tropinyl nitrogen also occur in trace amounts.(ABSTRACT TRUNCATED AT 250 WORDS)

Administration, Oral↗

Pharmacokinetics and metabolism of cyclosporin G in humans.

The pharmacokinetics and metabolism of cyclosporin G (CsG; Sandoz compound OG 37-325) were studied in 12 healthy male volunteers receiving a single oral dose of 150 or 600 mg of [14C]CsG. Serial blood and plasma samples and complete urine and feces were collected for 120-hr postdose. CsG was rapidly absorbed, and the extent of absorption was dose-independent. Maximum blood concentrations of CsG at 2- to 3-hr postdose averaged 342 and 1170 ng/ml after doses of 150 and 600 mg, respectively, each accounting for approximately 50% of the blood radioactivity level. The plasma:blood concentration ratio for both CsG and total radioactivity averaged approximately 0.8. Overall disposition of absorbed CsG was independent of the dose. The drug was extensively metabolized with excretion predominantly via the fecal route. Total recovery in urine was only approximately 3% of the dose. In blood, the terminal half-life of CsG and total radioactivity averaged 9-11 hr following both the 150 and 600 mg doses. In plasma, the half-life of CsG was 2-4 hr and that of total radioactivity was 27-29 hr. The major metabolic pathways resulted from oxidative modifications at amino acids 1, 4, and 9, with concomitant cyclization of amino acid 1 in two metabolites. These pathways resulted in formation of seven major metabolites (designated GM19, GM1c9, GM4N9, GM1, GM9, GM1c, and GM4N) observed in human excreta and/or blood. Major metabolites of CsG in blood involved monohydroxylation (GM1 and GM9) or demethylation (GM4N). In blood, monohydroxylated CsG metabolites (GM1 and GM9) achieved roughly equal levels, with a trend toward higher GM9 concentrations at peak radioactivity.

Absorption↗