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Biomedical subjects

B Kaye

Publications and source records attributed to B Kaye.

At least 37 records · Page 2Linked to original sources

The metabolism and kinetics of doxazosin in man, mouse, rat and dog.

The metabolic fate of doxazosin was investigated in man, mouse, rat and dog using 14C-labelled compound. Bioavailability and pharmacokinetic studies were also conducted with nonlabelled drug, using a specific h.p.l.c. method. Following both oral and intravenous administration, the major route of elimination of drug-related compounds was via the faeces for all species studied. Comparison of the oral and intravenous data show that doxazosin is completely absorbed in man, mouse and rat and is moderately well absorbed in dog. The drug is extensively metabolized, e.g. only about 5% of the dose was excreted unchanged in man. Metabolism in man mainly involves 6- and 7- O-demethylation and 6' and 7'-hydroxylation. These and some minor products were common to the mouse, rat or dog and man. Plasma protein binding was high in all species studied, ranging from 95.3% in the rat to 98.3% in human patients. Oral bioavailability is 60% in dog and approximately 50% in the rat, which is similar to the value of 63% reported for man at therapeutic doses. Mean plasma clearance values were 13 ml min-1 kg-1 (dogs), 30 ml min-1 kg-1 (rats) and 1.2 ml min-1 kg-1 (human subjects). Mean plasma half-life values were 5 h in dogs and 1.2 h in rats: a value of 9 h was reported for human volunteers (cf. 2.5 h for prazosin). The long plasma half-life of doxazosin provides the basis for once-daily dosing.

Adult↗

Comparison of the serum pharmacokinetics of a long acting and a conventional oxytetracycline injection.

A crossover study was carried out in cattle to determine the serum pharmacokinetics of a standard dose (20 mg/kg bodyweight) of oxytetracycline given either as a conventional injectable formulation or as a long acting formulation. For reference purposes, an intravenous treatment (also given at 20 mg/kg) was included in the trial protocol. A comparison of the two treatment regimes showed that the long acting formulation gave a significantly lower peak oxytetracycline serum concentration, with a significant extension of drug serum concentration. The long acting formulation also showed a longer serum half life and a significantly greater area under the curve value, calculated from 36 hours onwards, together with serum oxytetracycline concentrations which exceeded 0.5 microgram/ml for 86.8 as opposed to 51.5 hours for the conventional formulation. It is concluded that the use of the long acting formulation in cattle leads to a more sustained serum oxytetracycline concentration than does the same dose of conventional formulation.

Animals↗

Comparison of the side-effects of low-osmolar contrast media in intravenous urography.

The subjective side-effects of almost equivalent intravenous iodine doses of the three new low-osmolar contrast media, ioxaglate (Hexabrix), iopamidol (Niopam) and iohexol (Omnipaque) have been recorded and are found to be generally comparable. Urticaria occurred more frequently with ioxaglate than with the other contrast media and there was a tendency for ioxaglate to cause more nausea. Pain at the injection site occurred less often with ioxaglate than with iohexol. If low-osmolar contrast media are to be used in intravenous urography the relative cost of each is important, there being as yet insufficient data concerning the relative incidences of major reactions.

Contrast Media↗

Oxidative metabolism of carbazeran in vitro by liver cytosol of baboon and man.

The metabolism of carbazeran has been investigated in vitro using liver cytosol from dog, baboon and man. Carbazeran was not metabolized in cytosol prepared from dog liver but was rapidly metabolized to a single product in baboon- and human-liver cytosol. The product was identified as 4-hydroxy carbazeran. The enzyme responsible for the 4-hydroxylation of carbazeran in vitro was shown by the use of inhibitors to be liver aldehyde oxidase. Species differences in the metabolism of carbazeran in vitro correlate well with studies in vivo; these showed that following an oral dose to man and baboon, the compound was almost completely cleared via pre-systemic 4-hydroxylation, whereas in the dog, this metabolic route appeared unimportant.

Aldehyde Oxidase↗

A species difference in the presystemic metabolism of carbazeran in dog and man.

The bioavailability of carbazeran and the metabolism of carbon-14 labelled drug have been studied in the dog and man following oral administration. The drug was moderately well absorbed in both species, but there was a marked difference in bioavailability and in routes of metabolism. In the dog, systemic bioavailability was approx. 68% and biotransformation involved mainly O-demethylation. In man, bioavailability was not measurable and carbazeran was almost completely cleared via 4-hydroxylation of the phthalazine moiety. Thus the lack of detectable pharmacological effect in man following oral administration of the drug appears to be due to presystemic metabolism by a particularly active pathway not found in the dog.

Adult↗

The effect of hyoscine butylbromide on the swallowing of capsules.

Hyoscine butylbromide (20 mg) given intravenously to 48 patients with normal oesophageal motility significantly reduced oesophageal transit of hard gelatin capsules when swallowed in the erect and supine positions with 15 ml and 60 ml water when compared to an age/sex matched group. Delayed capsule transit and possible failed or slowed drug absorption occurring as a consequence of anti-cholinergic drugs on the oesophagus, constitutes a new drug interaction.

Adult↗

The metabolism of oxamniquine in the gut wall.

1. The extent of metabolism of oxamniquine, 6-hydroxymethyl-7-nitro-2-isopropylaminomethyl-1,2,3,4-tetrahydroquinoline, in the gut of the dog has been studied using an intestinal preparation which allows collection of the outflow from the portal vein. 2. Oxamniquine undergoes substantial conversion to 2-isopropylaminomethyl-7-nitro-1,2,3,4,-tetrahydroquinoline-6-carboxylic acid before or during absorption. 3. This oxidation is not significantly inhibited by pretreatment with pyrazole, erythromycin or gentamicin. 4. Results indicate that appreciable oxidation of oxamniquine is mediated via enzymes in the gut wall.

Animals↗

Analysis of cefazolin in serum or urine.

A method was developed to determine cefazolin in serum or urine. The drug is extracted from serum or urine with ethyl acetate, separated by TLC, and determined by fluorescence quenching densitometry. The method was developed to study the pharmacokinetics of the compound in humans.

Cefazolin↗

Uptake of [14C]oxamniquine by Schistosoma mansoni.

The uptake and retention of drug-related material by Schistosoma mansoni was studied in the mouse host following a single oral or intramuscular dose (50 mg/kg) of [14C]oxamniquine. Male worms took up more labelled material than did female worms but the amount in each particular sex of worm was found to be similar after both routes of administration. Exposure of worms was therefore independent of the route of administration. Six days after drug administration, at the time of an hepatic shift, significantly more drug-related material was present in male worms than in female worms. Examination of worms recovered from mice 4 h after treatment showed that metabolites of oxamniquine constituted 70--90% of the drug-related material present in the worms. Both sexes of worms were able to take up metabolites of oxamniquine in vitro.

Administration, Oral↗

The metabolism of oxamniquine - a new schistosomicide.

The metabolism of oxamniquine, 6-hydroxymethyl-7-nitro-2-isopropylaminomethyl-1,2,3,4-tetrahydroquinoline, has been studied in the mouse, rat, hamster, rabbit, rhesus monkey, dog and man. Urinary excretion is a major route of elimination in man. The compound is converted to two metabolites, the major one arising from oxidation of the 6-hydroxymethyl group to a carboxyl group and the other by oxidation of the side chain to give the 2-carboxylic acid. There is a species at the dose levels used since both acidic metabolites were found in appreciable quantities only in the urine of mouse, rabbit, hamster and dog. The 2-carboxylic acid was not found in the urine of rhesus monkey and rat and occurred in only trace amounts in human urine.

Animals↗