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M Mushtaq

Publications and source records attributed to M Mushtaq.

35 records · Page 2Linked to original sources

Resolution of epoxide enantiomers of polycyclic aromatic hydrocarbons by chiral stationary-phase high-performance liquid chromatography.

Enantiomers of nine K-region and one non-K-region epoxides of polycyclic aromatic hydrocarbons have been resolved by high-performance liquid chromatography with chiral stationary phases either ionically or covalently bonded to gamma-aminopropylsilanized silica. Resolution of enantiomers was confirmed by ultraviolet-visible absorption, circular dichroism, and mass spectral analyses. This method has been applied to the determination of optical purity and absolute configuration of the K-region epoxides formed in the metabolism of 1-methylbenz[a]anthracene, 7-methylbenz[a]anthracene, and 12-methylbenz[a]anthracene by rat liver microsomes.

Animals↗

Metabolism of 6-methylbenz[a]anthracene by rat liver microsomes and mutagenicity of metabolites.

6-Methylbenz[a]anthracene (6-MBA) is metabolized by rat liver microsomes to form 3-hydroxy-6-MBA, 4-hydroxy-6-MBA, 5-hydroxy-6-MBA, 6-MBA trans-3,4-, 5,6-, 8,9-, and 10,11-dihydrodiols, and 4-hydroxy-6-MBA trans-10,11-dihydrodiol as the identifiable metabolites. 6-Hydroxymethylbenz[a]anthracene and its phenolic and dihydrodiol metabolites are also formed. The unique metabolites identified in 6-MBA metabolism are 6-MBA trans-5,6-dihydrodiol and 4-hydroxy-6-MBA trans-10,11-dihydrodiol. Metabolites were isolated by reversed-phase and normal-phase high-performance liquid chromatographies and identified by UV-visible absorption, mass, and proton nuclear magnetic resonance spectral analyses. Metabolites formed by low and high concentrations of liver microsomal enzymes from untreated, phenobarbital-treated, and 3-methylcholanthrene-treated male Sprague-Dawley rats were quantified by using [3H]6-MBA, with the tritium labeled at the methyl carbon, and liquid scintillation counting of fractions collected from reversed-phase high-performance liquid chromatography. Metabolic formations of 6-hydroxymethylbenz[a]anthracene, 6-MBA trans-dihydrodiols, and 4-hydroxy-6-MBA trans-10,11-dihydrodiol are highly dependent on the contents of cytochrome P-450 isozymes present in liver microsomes. The relative mutagenic activities of metabolites toward Salmonella typhimurium TA100 are: 6-MBA trans-3,4-dihydrodiol greater than 6-MBA trans-8,9-dihydrodiol greater than 6-MBA greater than 6-MBA trans-10,11-dihydrodiol greater than 4-hydroxy-6-MBA congruent to 4-hydroxy-6-MBA trans-10,11-dihydrodiol. The relatively high mutagenic activities of 6-MBA trans-3,4-dihydrodiol and 6-MBA trans-8,9-dihydrodiol suggest that both 6-MBA trans-3,4-dihydrodiol 1,2-epoxide(s) and 6-MBA trans-8,9-dihydrodiol 10,11-epoxide(s) may be the major metabolites which contribute to the carcinogenic properties of 6-MBA.

Animals↗

Direct resolution of mono- and diol enantiomers of unsubstituted and methyl-substituted benz[a]anthracene and benzo[a]pyrene by high-performance liquid chromatography with a chiral stationary phase.

The direct resolution of 86 structurally related monomethyl, mono-ol, and trans- and cis-diol enantiomers of unsubstituted and methyl-substituted benz[a]anthracene and benzo[a]pyrene was investigated by high-performance liquid chromatography with a commercially available column, packed with an (R)-N-(3,5-dinitrobenzoyl)phenylglycine, ionically bonded to gamma-aminopropylsilanized silica. The results indicate that structural factors, such as conformation, presence of a methyl substituent, molecular size and shape, and ring saturation all contribute to chiral interactions between the chiral stationary phase and the solutes. Detailed chiral recognition mechanisms can not yet be established, due to complex structural factors that influence enantiomeric resolutions and the lack of data on the absolute configurations of the resolved enantiomers. Nevertheless, the chromatographic method can be applied to the determination of enantiomeric purity of mono- and diol metabolites of polycyclic aromatic hydrocarbons. The absolute configurations of a limited number of resolved enantiomers have been established.

Benz(a)Anthracenes↗

Resolution and absolute configuration of 7,12-dimethylbenz[a]anthracene 5,6-epoxide enantiomers.

The enantiomers of 7,12-dimethylbenz[a]anthracene (DMBA) 5,6-epoxide were directly resolved by normal-phase high-performance liquid chromatography with an ionically bonded chiral stationary phase. The absolute configurations of the resolved enantiomers were determined by comparison of circular dichroism spectra of the methanolysis products formed from the epoxide enantiomers with that of a DMBA trans-5,6-dihydrodiol enantiomer of known absolute stereochemistry. DMBA 5R,6S-epoxide is hydrated by rat liver microsomal epoxide hydrolase predominantly (95%) to a 5S,6S-dihydrodiol. The results indicate that the 5S,6S-dihydrodiol formed from the metabolism of DMBA by microsomes prepared from the livers of 3-methylcholanthrene-treated rats is predominantly derived from a 5R,6S-epoxide intermediate.

9,10-Dimethyl-1,2-benzanthracene↗

Stereoselective hydroxylation at the aliphatic carbons of 7,8- and 9,10-dihydrobenzo[a]pyrenes by rat liver microsomes.

Optically active 7-hydroxy-7,8-dihydrobenzo[a]pyrene and 8-hydroxy-7,8-dihydrobenzo[a]pyrene were identified as two of the major metabolites formed by incubation of 7,8-dihydrobenzo[a]pyrene with rat liver microsomes. Optically active 9-hydroxy-9,10-dihydrobenzo[a]pyrene and 10-hydroxy-9,10-dihydrobenzo[a]pyrene were similarly identified as two of the minor metabolites of 9,10-dihydrobenzo[a]pyrene. The formation of these metabolites was abolished either by prior treatment of liver microsomes with carbon monoxide or the absence of NADPH, but was not inhibited by an epoxide hydrolase inhibitor. The results indicate that the aliphatic carbons of dihydro polycyclic aromatic hydrocarbons may undergo stereoselective hydroxylation reactions catalyzed by the cytochrome P-450 system of rat liver microsomes.

Animals↗

Hepatic effects of orally administered styrene in rats.

Adult male rats receiving styrene by gavage (200 or 400 mg kg-1, 6 days a week) for 100 days exhibited a significant dose-dependent increase in hepatic benzo[a]pyrene hydroxylase and aminopyrine-N-demethylase, a decrease in glutathione-S-transferase and no change in glucose-6-phosphatase. A decrease in the activity of mitochondrial succinic dehydrogenase and beta-glucuronidase was also observed. Activity of acid phosphatase was decreased only at the higher dose level. Levels of serum glutamic oxaloacetic transaminase and glutamic pyruvic transaminase were elevated only at the higher dose level. The absolute and relative weights of the liver of control and treated animals showed no significant difference. Histopathological studies of the liver tissue revealed tiny areas of focal necrosis, consisting of few degenerated hepatocytes and inflammatory cells at the higher dose level only.

Administration, Oral↗

Depletion of glutathione content and inhibition of glutathione-S-transferase and aryl hydrocarbon hydroxylase activity of rat brain following exposure to styrene.

Dose dependent effects of styrene on cellular glutathione content and activity of cytosolic glutathione-S-transferase and microsomal aryl hydrocarbon hydroxylase of rat brain was investigated. A significant inhibition of aryl hydrocarbon hydroxylase and glutathione-S-transferase activity followed by depletion of glutathione content, was observed only at higher doses (450 and 900 mg/kg). Results suggest that exposure of styrene to rats can affect the biotransformation capacity of brain dependent on glutathione content and the activities of aryl hydrocarbon hydroxylase and glutathione-S-transferase.

Animals↗

Effect of styrene on hepatic mixed function oxidases, glutathione content and glutathione-s-transferase activity in rats.

Effect of styrene administration (250, 450 and 900 mg/kg orally for 7 consecutive days) on hepatic mixed function oxidase (MFO) enzyme activities, glutathione content and glutathione-S-transferase activity were observed. Activity of aryl hydrocarbon hydroxylase and aniline hydroxylase was significantly enhanced at higher doses of styrene (450 and 900 mg/kg). A significant lowering of glutathione content accompanied with the inhibition of glutathione-S-transferase activity was also noticed at the highest dose of styrene (900 mg/kg).

Aniline Hydroxylase↗

Toxicological studies of a leachable stabilizer di-n-butyltin dilaurate(DBTL): effects on hepatic drug metabolizing enzyme activities.

Toxicological studies of a leachable stabilizer Di-n-butyltin dilaurate (DBTL) were undertaken. Effects of DBTL after 15 days oral exposure to rats were studied on brain and liver enzyme activities. A significant decrease in body weight gain of DBTL exposed rats were observed. No effect was observed in the activities of brain enzymes, succinic dehydrogenase, adenosine triphosphatase, acetylcholine esterase and monoamine oxidase. In liver, DBTL treatment resulted in a significant decrease in the activities of microsomal enzymes glucose-6-phosphatase, aminopyrine-N-demethylase, benzphetamine-N-demethylase, aniline hydroxylase, benzo(a)pyrene hydroxylase and also on cytochrome P-450 content, whereas no difference in the activities of mitochondrial enzymes, succinic dehydrogenase, Mg2+-adenosine triphosphatase as well as in the activity of lysosomal enzyme acid phosphatase was observed. Duration of exposure dependent increase in pentabarbital induced sleeping time was also observed. DBTL treatment produced an induction in heme oxygenase activity whereas the activity of -aminolevulinic acid synthetase remained unaltered. The results demonstrate that DBTL significantly affects the biotransformation mechanism and heme metabolism of hepatocytes.

Animals↗

Effect of di-2-ethylhexyl phthalate (DEHP) on glycogen metabolism in rat liver.

Effect of di-2-ethylhexyl phthalate (DEHP) on glycogen contents and certain enzymes of carbohydrate metabolism of rat liver was investigated. A significant decrease in glycogen content of unfasted and an increase in fasted animals was observed. Blood glucose tolerance was reduced and the rate of both glycogenesis and glycogenolysis, as judged by measuring glycogen contents after feeding labelled and unlabelled glucose, was also decreased. Activities of glucose-6-phosphate dehydrogenase, phosphorylase and glucose-6-phosphatase were significantly decreased while activities of fructose-1-6-diphosphatase and aldolase remained unaltered. The present results suggest that DEHP affects both glycogenesis and glycogenolysis in rat liver.

Animals↗

Effect of styrene on levels of serotonin, noradrenaline, dopamine and activity of acetyl cholinesterase and monoamine oxidase in rat brain.

Oral intubation of styrene (1 ml/kg body weight daily) in adult male albino rats for 15 days produced a significant increase in serotonin and noradrenaline but no change in dopamine contents in brain. The brain of treated animals also showed a significant decrease in monoamine oxidase (MAO) but no change in acetyl cholinesterase (AChE) activity. The neurotoxic effects of styrene may be mediated through alterations in levels of these biogenic amines in the brain tissue.

Acetylcholinesterase↗

Effect of di-(2-ethylhexyl) phthalate on rat liver injured by chronic carbon tetrachloride treatment.

The effect of Di-(2-ethylhexyl) phthalate (DEPH), a widely used plasticizer, was studied using histopathological and biochemical parameters on rat liver injured by carbon tetrachloride (CCl4). The mild centrilobular necrosis observed with CCl4 (7.7 mmol/kg subcutaneously and biweekly up to 38 days) and mild congestion and bile duct proliferation produced by DEHP (2.5 mmol/kg intraperitoneally daily for ten days after the day 28 of experiment) were modified into extensive necrosis of the parenchymal cells when the animals received both chemicals. Groups of hepatocytes mostly at the periphery of the lobules also showed coagulative necrosis and some central and portal veins were completely occluded. Alterations in the activity of serum and liver enzymes of the animals receiving both chemicals were not significantly different from those treated with CCl4 alone, except in case of glucose-6-phosphatase (G-6Pase) and SGPT. The characteristic decrease of G-6-Pase and increase of SGPT was less marked. Although the exact mechanism of the chemical interaction between CCl4 and DEHP is not known, the results indicate their combined toxic potentiality.

Adenosine Triphosphatases↗

Effect of Di-(2-ethylhexyl) phthalate (DEHP) on chemical constituents and enzymatic activity of rat liver.

Effect of Di(2-ethylhexyl) phthalate (DEHP), was investigated on chemical constituents and activity of certain enzymes of rat liver. A significant increase in liver weight; total and relative to body weight; decrease in total, free and esterified cholesterol; and no change in dry weight, moisture; RNA, DNA, total lipids, phospholipids, pyruvic acid and lactic acid contents was observed in liver of DEHP-treated rats as compared to controls. Activity of 3 mitochondrial enzymes, malic dehydrogenase, cytochrome-c-oxidase and diaphorase were significantly decreased while that of NADH-cytochrome c reductase, RNAase and DNAase remained unaltered upon treatment. The results suggest that DEHP exerts its hepatotoxic effects by interfering with bioenergetics of the cell.

Animals↗

Effect of manganese on neonatal rat: manganese concentration and enzymatic alterations in brain.

Suckling rats were exposed for 15 and 30 days to manganese through the milk of nursing dams receiving 15 mg MnCl2--4H2O/kg/day orally and after which the neurological manifestations of metal poisoning were studied. No significant differences in the growth rate, developmental landmarks and walking movements were observed between the control and manganese-exposed pups. The metal concentration was significantly increased in the brain of manganese-fed pups at 15 days and exhibited a further three-fold increase over the control, at 30 days. The accumulation of the metal in the brain of manganese-exposed nursing dams was comparatively much less. A significant decrease in succinic dehydrogenase, adenosine triphosphatase, adenosine triphosphatase, adenosine deaminase, acetylcholine esterase and an increase in monoamine oxidase activity was observed in the brain of experimental pups and dams. The results suggest that the developing brain may also be susceptible to manganese.

Acetylcholinesterase↗

Stereoselective formations of enantiomeric K-region epoxide and trans-dihydrodiols in dibenz[a,h]anthracene metabolism.

Metabolism of dibenz[a,h]anthracene (DBA) to optically active epoxide and dihydrodiol products by rat liver microsomes was investigated. Enantiomeric separation of K-region 5,6-epoxide, trans- and cis-5,6-dihydrodiols, non-K-region trans-1,2- and trans-3, 4-dihydrodiols, and O-methyl ethers derived from methoxylation of racemic and enantiomeric K-region 5,6-epoxides was performed on HPLC columns packed with Pirkle chiral stationary-phase (CSP) (R)-N-(3,5-dinitrobenzoyl)phenylglycine (R-DNBPG) or (S)-N-(3,5-dinitrobenzoyl) leucine (S-DNBL), which was either ionically or covalently bonded to a silica gel support. Enantiomers of DBA 5,6-epoxide, trans-5,6-dihydrodiol, and its two isomeric O-methyl ethers were efficiently separated on the ionically bonded R-DNBPG column. Enantiomers of DBA cis-5, 6-dihydrodiol were resolved on both ionically and covalently bonded S-DNBL columns. Enantiomeric pairs of the non-K-region trans-1,2- and 3,4-dihydrodiols were poorly resolved on all CSPs tested. DBA was incubated with a NADPH-regenerating system and liver microsomes from untreated, phenobarbital- (PB) treated, 3-methylcholanthrene- (MC) treated, and polychlorinated biphenyl (PCB, Aroclor 1254) treated rats either in the absence or in the presence of an epoxide hydrolase inhibitor, 3,3,3-trichloropropylene 1,2-oxide (TCPO). Metabolites formed were analyzed by reversed-phase, normal-phase, and CSP HPLC. CD spectral and CSP-HPLC analyses of metabolically formed trans-dihydrodiols indicated that the dihydrodiols are highly enriched in the R,R-enantiomers.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗