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Biomedical subjects

A G Renwick

Publications and source records attributed to A G Renwick.

14 recordsLinked to original sources

Saccharin metabolism and tumorigenicity.

Exposure of male Charles River CDI rats to a 5% saccharin diet in utero and throughout weaning, conditions associated with tumor induction, did not induce detectable metabolism (less than 0.4% of the oral dose) of tritiated saccharin in vivo. No metabolites (less than 0.06 microgram per kilogram per 24 hours) were detected in the urine of normal rats given a tracer dose. Pretreatment with 3-methylcholanthrene did not induce saccharin metabolism.

Animals

"Affinity" chromatography of steroid-transforming enzymes with a non-steroidal ligand.

The chromatographic behaviour of an avian oestradiol-17 beta dehydrogenase, the 3(17) beta-hydroxy steroid dehydrogenase from Pseudomonas testosteroni and cortisone reductase from Streptomyces dehydrogenans was studied on columns of p-(phenoxypropoxy)aniline attached to CNBr-activated Sepharose. The ligand was effective in adsorbing the oestradiol dehydrogenase from a partially purified extract of chicken liver, and the cortisone reductase was perferentially retained when mixtures of the three dehydrogenases were applied to columns in 10mM-buffer. Under these conditions the 3(17)beta-hydroxy steroid dehydrogenase was eluted in the front, but was adsorbed in the presence of 3 M-KCl. beta-N-Acetylglucosaminidase present in the liver preparation was not retained by the ligand, whereas lactate dehydrogenase from rabbit muscle was adsorbed in a manner similar to the retention pattern found on affinity chromatography with 2',5'-ADP--Sepharose. The mean overall purification of the oestradiol dehydrogenase was 13-fold, with a mean recovery of 53%. p-(Phenoxypropoxy)aniline offers promise for the purification of steroid-transforming enzymes where elution with substrate or cofactor is not wanted. It is also suggested that the ligand may be of service in the purification of receptors of hormonal steroids.

17-Hydroxysteroid Dehydrogenases

Isolation, characterization and distribution of adenosine 3':5'-cyclic monophosphate from Pinus radiata.

Cyclic AMP was extracted in 0.1 M-HCl from tissues of Pinus radiata and purified by gel filtration on Sephadex G-10, and chromatography on Dowex AG1 (X2) and polyethyleneimine-cellulose in two separate solvent systems. Presumptive cyclic AMP from 10kg batches of pine needles was characterized by countercurrent distribution in the presence of cyclic [8-3H]AMP. Statistical analysis of the curves for radioactivity and mass (determined by the Gilman competitive-binding assay) showed that the fit of the curves was highly significant for seven degrees of freedom. The distribution of cyclic AMP within P. radiata and various other plant tissues was determined by the Gilman procedure. The results suggest that there is no relationship between variations in cyclic AMP concentrations and the known function of the tissue in which it was measured.

Chromatography

The fate of saccharin impurities: the excretion and metabolism of toluene-2-sulphonamide in man and rat.

Oral doses (20 mg/kg) of [Me-14C]toluene-2-sulphonamide were rapidly eliminated by rats (92% of dose in 24 h). Most of the 14C (88%) was recovered in the urine within 7 days with litte (5%) in the faeces. Larger oral doses (125 and 200 mg/kg) were eliminated more slowly (70 and 43% respectively in 24 h) but the overall distribution of 14C between urine and faeces was unchanged. 2. Low oral doses (0.2--0.4 mg/kg) of [Me-14C]toluene-2-sulphonamide were excreted more slowly in man than in the rat, with about 50% recovered in the urine in 24 h and 80% in 48 h. Negligible 14C (less than 1%) appeared in the faeces. 3. The main metabolites of toluene-2-sulphonamide were 2-sulphamoylbenzyl alcohol and its sulphate and glucuronic acid conjugates (80% of the 14C in the urine of rats and 35% in man) and saccharin (35% in man and 3% in the rat). Other metabolities found in the urine were 2-sulphamoylbenzoic acid (2% in the rat and 4% in man) and N-acetyltoluene-2-sulphonamide (6% in rat and 2% in man) together with unchanged compound (5% in rat and 3% in man).

Animals

The fate of saccharin impurities: the excretion and metabolism of [3-14C]Benz[d]-isothiazoline-1,1-dioxide (BIT) in man and rat.

1. The 14C label of [3-14C]benz[d]isothiazoline-1,1-dioxide (BIT) (40 mg/kg) was rapidly eliminated (97% dose in 24 h), largely in the urine (92% dose in 24 h), after oral administration to rats. Larger doses (400 mg/kg) were eliminated more slowly after oral or parenteral administration (45--60% within 24 h) mostly in the urine (42--53%). Little 14C (2--3% dose) was present in the faeces after intraperitoneal (400 mg/kg) or low oral (40 mg/kg) doses, but the presence of larger amounts (12% dose) after larger oral doses (400 mg/kg) indicated incomplete absorption. 2. Metabolites identified in the urine of rats were saccharin (about 30% of urinary 14C), 2-sulphamoylbenzoic acid (about 35% urinary 14C) and 2-sulphamoylbenzyl alcohol (15% urinary 14C) in addition to unchanged compound (5--10% urinary 14C). The urine also contained a polar, labile metabolite that gave BIT on acid hydrolysis. The pattern of metabolism was not significantly affected by dose or route of administration. 3. In man, urine was the major route of elimination of 14C (93% dose) after administration of 14C-BIT (0.5 mg/kg). Negligible 14C was recovered in the faeces (less than 1% dose). Excretion was rapid (59% dose in 6 h; 80% dose in 12 h) and little 14C was eliminated on the second (3%) or subsequent days after dosing. 4. Identified metabolites in man included saccharin (about 50% of urinary 14C), 2-sulphamoylbenzoic acid (7% urinary 14C) and 2-sulphamoylbenzyl alcohol (8% urinary 14C unconjugated and 40% conjugated) with negligible unchanged compound. Only traces of the polar labile metabolite were detected. 5. the possible significance of metabolic interrelationships of toluene-2-sulphonamide and BIT to studies on the metabolism of saccharin are discussed.

Animals

The fate of saccharin impurities: the metabolism and excretion of 3-amino [3-14C]benz[d]-isothiazole-1,1-dioxide and 5-chlorosaccharin in the rat.

1. 3-Amino[3-14C]benz[d]isothiazole-1, 1-dioxide was prepared from [3-14C]-saccharin. IT was well adsorbed on oral administration to rats (25 mg/kg) with only 2% of the 14C in the faeces. The absorbed material was rapidly eliminated with about 87% dose in the urine in 24 h and 91% in 4 days. Little 14C (0.5% of dose) was present in the carcass 4 days after dosing. Most of the 14C in the 0--24 h urine (99%) was present as unchanged 3-aminobenz[d]isothiazole-1,1-dioxide, the rest being an unidentified metabolite. 2. 5-Chlorosaccharin was excreted unchanged after oral administration to rats (80 mg/kg) with 76% dose in the urine in 24 h and 81% in 4 days. Only 4% was detected in the faeces. There was no significance hydrolysis (less than 0.5%) to 5-chloro-2-sulphamoylbenzoic acid. 3. The extent of metabolism of these and other compounds related to saccharin showed good agreement with the extent of their partitioning into organic solvents.

Animals

The fate of saccharin impurities. The excretion and metabolism of [14C]toluene-4-sulphonamide and 4-sulphamoyl[14C]benzoic acid in the rat.

1. 4-Sulphamoyl[carboxy-14C]benzoic acid was rapidly eliminateda after oral administration to rats (94% dose in 24 h). After 6 days most of the 14C (73-83% dose) was recovered in the urine with significant amounts (18-32% dose) in the faeces due to incomplete absorption. 2. The 14C in the urine and faeces was unchanged 4-sulphamoylbenzoic acid. No 14CO2 was detected in the expired air. 3. After oral administration of [methyl-14C]toluene-4-sulphonamide to rats the label was rapidly eliminated largely in the urine (66-89% dose) with little in the faeces (2-8% dose). The 14C in the faeces was 4-sulphamoylbenzoic acid, which probably originated in the tissues since the gut flora was unable to effect this biotransformation. 4. The urine of rats given [14C]toluene-4-sulphonamide contained 4-sulphamoylbenzoic acid as the major metabolite (93% of the urinary 14C) together with small amounts of unchanged compound (1.5-2.3% of urinary 14C), 4-sulphamoylbenzyl alcohol (2.0-3.9%), 4-sulphamoylbenzaldehyde (0-1.5%) and at higher doses N-acetyltoluene-4-sulphonamide (2.1-2.3%).

Animals

16Beta-hydroxylation of dehydroepiandrosterone sulphate by homogenates of human foetal liver.

The chemical syntheses of the 3-sulphates of 16 alpha-acetoxy-, 16 alpha-hydroxy- and 16 beta-hydroxy-dehydroepiandrosterone as their triethylammonium salts are described preparatory to studies of the metabolism of [7 alpha-3 H]dehydroepiandrosterone sulphate by homogenates of human foetal liver. Five main radioactive products of the incubation were separated by partition chromatography on a Celite column. Two were identified as 16 alpha-and 16 beta-hydroxydehydroepiandrosterone 3-sulphates by crystallization to constant specific radioactivity before and after solvolysis. The yields of the conversion to the two epimers were 24.4% (16 alpha) and 1.8% (16 beta).

Androstenediol