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Biomedical subjects

A B Roy

Publications and source records attributed to A B Roy.

At least 37 records · Page 2Linked to original sources

The inhibition by chlorate of the sulphation of polyethyleneglycol in the isolated perfused guinea pig liver.

1. The sulphation of polyethyleneglycol 200 by the isolated perfused guinea pig liver is inhibited to about 60% by 10 mM ClO3- in the plasma of the perfusate when the concentration of SO4(2-) therein is 1.18 mM. 2. The inhibition is almost complete when the concentration of SO4(2-) is about 0.1 mM, a level which can be achieved by using a modified Ringer-bicarbonate solution, devoid of sulphate, to prepare the perfusate. 3. Chlorate, presumably through its action on ATP-sulphurylase, may therefore be a useful inhibitor of sulphation in the isolated perfused liver when the activity of the sulphurylase is rate-limiting. 4. The rate of bile production in the presence of chlorate is no different from that in its absence showing that, in the time scale of the perfusion, chlorate is not a general liver poison. 5. When the synthesis of PAPS is not rate-limiting, as in the sulphation of oestrone metabolites by rat liver, chlorate has no effect on the rate of sulphation.

Animals↗

The metabolic sulphation of polyethyleneglycols by isolated perfused rat and guinea-pig livers.

1. It is shown that isolated perfused rat and guinea-pig livers can sulphate polyethyleneglycol 200 at rates of about 5 and 10 nmol/g per min, respectively. 2. In the guinea-pig about equal amounts of sulphated polyethyleneglycol 200 appear in the bile and in the perfusate, while in the rat about 99% appears in the latter. 3. Polyethyleneglycols 400 and 1000 are also sulphated in perfused guinea-pig liver but polyethyleneglycol 6000 is not. 4. Polyethyleneglycols are therefore not suitable solvents for xenobiotics which may undergo sulphation because of the likelihood of competition for sulphate.

Animals↗

The metabolism of oestrone and some other steroids in isolated perfused rat and guinea pig livers.

1. Oestrone is rapidly taken up by isolated perfused rat liver (t 1/2 less than 2 min) to yield at least 10 metabolites excreted in the bile; peak concentration occurs after about 20 min. 2. Sulphated metabolites of oestrone appear in the perfusate, reaching peak concentration at about 10 min, and then slowly disappear. 3. Sulphated metabolites of oestrone accumulate in the liver during the first 10 min. They are partly converted to sulphoglucuronides (steroid 3-sulphates conjugated with glucuronic acid in the D ring) and partly hydrolysed to be reconjugated as glucuronides. 4. The major biliary metabolites of oestrone in isolated perfused rat liver are glucuronides and sulphoglucuronides, but free steroids, sulphates and polar metabolites are also so excreted. 5. The isolated perfused guinea pig liver also rapidly takes up oestrone (t 1/2 less than 2 min) but, in contrast to the rat, a single glucuronide is the only quantitatively important metabolite in the bile: it is also extensively secreted into the perfusate where it reaches peak concentration at about 10 min. 6. In perfused guinea pig liver, oestrone does not form sulphoglucuronides, and sulphates are only minor metabolites; this is not due to lack of the appropriate sulphotransferase because oestradiol 17 beta-(beta-D-glucuronide) is extensively sulphated in this system. 7. Oestradiol 17 beta-(beta-D-glucuronide) is not cholestatic in the isolated perfused guinea pig liver although it is in rat liver. 8. There is a similar species difference in the metabolism of dehydroepiandrosterone in the two species: the rat forms sulphoglucuronides, the guinea pig does not. 9. The perfused rat liver extensively hydroxylates, presumably on the D ring, 17-deoxyoestrone and 17-deoxydehydroepiandrosterone. 10. The inability of perfused guinea pig liver to form sulphoglucuronides from oestrone or dehydroepiandrosterone is probably due to its restricted ability to hydroxylate the D ring of steroids. 11. Both rat and guinea pig biles contain beta-glucuronidase, about 80 and 230 sigma units/ml, respectively.

Animals↗

The sulphatase of ox liver. XXV. Sulphatase A as a hysteretic enzyme.

The kinetic behaviour of the system native--substrate-modified sulphatase A (arylsulphate sulphohydrolase, EC 3.1.6.1) has been investigated and it has been shown that the progress curve of the complete reaction, including both the inactivation and reactivation stages, can be treated as that of a simple hysteretic system in which the substrate-modified enzyme is activated by a product of the reaction. It has been concluded that the early suggestions that the modification of sulphatase A was accompanied by the exposure of a second ligand-binding site are incorrect. It has been shown that, in the absence of sulphate, the rate of reversion of substrate-modified to native sulphatase A is increased by 4-nitrocatechol but not by the same concentration of 2-nitrophenol. A detailed reaction sequence is proposed. This explains the kinetic behaviour of sulphatase A with nitrocatechol sulphate or 2-nitrophenyl sulphate as substrate and in the presence or absence of sulphate.

Animals↗

Comparative kinetics of the sulphatases A.

The kinetic behaviour of the sulphatase A from kangaroo liver is that of a simple hysteretic system involving a substrate-modified form of the enzyme. The equilibrium between the native and substrate-modified forms is influenced by one of the reaction products, sulphate. The behaviour of the system differs markedly from that involving the ox enzyme and a generalised model is presented to account for the behaviour of the sulphatases A from ox, human, rat and kangaroo livers.

Animals↗

The use of 17O-NMR in the study of bond cleavage during the hydrolysis of sulphate esters.

The use of 17O-NMR to investigate bond cleavage during the hydrolysis of sulphate esters in water enriched in 17O is described. Despite the inherent disadvantages of 17O for NMR studies, this work shows that, in favourable cases, 17O-NMR of 17O-enriched species is a powerful and sensitive tool for mechanistic studies. It is particularly useful when O-S cleavage occurs, resulting in the formation of S17O16O3(2-) (5% 17O), which can easily be detected at the biologically relevant mumole level. The method complements those using H2(18)O and has the advantage that in principle 17O can be detected in either of the hydrolysis products with little or no purification. It has been shown that sulphatase A (aryl-sulphate sulphohydrolase, EC 3.1.6.1) cleaves the O-S bond while functioning as a cerebroside sulphatase, as it does when functioning as an aryl- or glycosulphatase.

Animals↗

The sulphatase of ox liver. XXIV. The glycosulphatase activity of sulphatase a.

The rhodizonic acid method for the determination of SO2-4 has been used to investigate the glycosulphatase activity of the sulphatase A (aryl-sulphate sulphohydrolase, EC 3.1.6.1) of ox liver. Sulphatase A hydrolyses D-glucopyranose and D-galactopyranose 2-, 3-, 4- and 6-sulphates: glucose sulphates are hydrolysed more rapidly than galactose sulphates and the 3-sulphates more rapidly than the other isomers. 2-Acetamido-2-deoxyglucopyranose 6-sulphate is not hydrolysed, nor is 2,3,4,6-tetra-O-acetyl-beta-D-glucopyranose 1-sulphate. Sulphate is a competitive inhibitor of the glycosulphatase activity. Hydrolysis proceeds through fission of the O-S bond. Evidence is given that the hydrolysis of glucose 3-sulphate is accompanied by the formation of substrate-modified sulphatase A, although this has not been isolated. Sulphatase A has no detectable alkylsulphatase activity.

Animals↗

3',5'-Cyclic nucleotide phosphodiesterase activity of the sulphatase A of ox liver.

The sulphatase A (aryl-sulphate sulphohydrolase, EC 3.1.6.1) of ox liver hydrolyses adenosine 3',5'-monophosphate (cyclic AMP) to adenosine 5'-phosphate at an optimum pH of approx. 4.3, close that for the hydrolysis of cerebroside sulphate, a physiological substrate for sulphatase A. The Km is 11.6 mM for cyclic AMP. On polyacrylamide gel electrophoresis sulphatase A migrates as a single protein band which coincides with both the arylsulphatase and phosphodiesterase activities, suggesting that these are due to a single protein. Cyclic AMP competitively inhibits the arylsulphatase activity of sulphatase A, showing that both activities are associated with a single active site on the enzyme. sulphatase A also hydrolyses guanosine 3',5'-monophosphate, but not uridine 3',5'-monophosphate nor adenosine 2',3'-monophosphate.

2',3'-Cyclic-Nucleotide Phosphodiesterases↗