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Biomedical subjects

W D Hooper

Publications and source records attributed to W D Hooper.

At least 19 recordsLinked to original sources

Expression of cytochrome P450 3A5 in Escherichia coli: effects of 5' modification, purification, spectral characterization, reconstitution conditions, and catalytic activities.

Cytochrome P450 (P450) 3A5 is a human enzyme with 85% amino acid sequence identity to the more predominantly expressed P450 3A4 and has been reported to have overlapping catalytic specificity. The 5'-terminus of a P450 3A5 cDNA was modified for optimal expression in Escherichia coli using the vector pCW, by aligning the MALLLAVFL N-terminal sequence of recombinant bovine P450 17A (H. J. Barnes, M. P. Arlotto, and M. R. Waterman, (1991) Proc. Natl. Acad. Sci. USA 88, 5597-5601) to the 3A5 cDNA. Two constructs were made, differing by their identity with the modified 3A4 N-terminal sequence (E. M. J. Gillam, T. Baba, B-R. Kim, S. Ohmori, and F. P. Guengerich, (1993) Arch. Biochem. Biophys. 305, 123-131). The first modified sequence (3A5#1) was identical to recombinant P450 3A4 up to codon 15, the 3A5 sequence being introduced thereafter. In the other (3A5#2), the successful 3A4 N-terminal nucleotide sequence was attached to codon 30. The yield was greater than fourfold higher in the first construct [up to 260 nmol (liter culture)-1]. The recombinant P450 3A5 (construct 1) was purified to electrophoretic homogeneity using a variation of a three-step procedure developed previously for P450 3A4, with an overall yield of approximately 40%. Purified P450 3A5 was active in nifedipine oxidation, testosterone 6 beta-hydroxylation, aflatoxin 3 alpha-hydroxylation and 8,9-epoxidation, ethylmorphine N-demethylation, erythromycin N-demethylation, and d-benzphetamine N-demethylation. The reconstitution of nifedipine oxidation, testosterone 6 beta-hydroxylation, and the aflatoxin oxidation activities showed dependence upon the presence of cytochrome b5, divalent cations, phospholipid mixtures, glutathione, and cholate similar to that previously found for purified P450 3A4. However, rates of the N-demethylations of ethylmorphine, erythromycin, and d-benzphetamine were as high or higher for P450 3A5 than P450 3A4 and were not particularly dependent upon modifications of reconstitution systems [corrected].

Amino Acid Sequence

Metabolism of carbamazepine and co-administered anticonvulsants during pregnancy.

Urinary excretions of carbamazepine, carbamazepine-10,11-epoxide, carbamazepine-10,11-trans-diol, 9-hydroxyacridan and 2- and 3-hydroxycarbamazepine were measured at various stages of pregnancy, and in the post-natal period, in ten epileptic women, six of whom took no other enzyme-inducing anticonvulsant and four of whom took such co-medication. Mean plasma carbamazepine apparent clearance was increased in pregnancy, but only by virtue of the increased clearance in the anticonvulsant co-medicated women. Alterations in the proportions of the carbamazepine dose cleared via the various excretion pathways studied were quantitatively minor, but there was evidence consistent with impaired conversion of carbamazepine-10,11-epoxide to carbamazepine-10,11-trans-diol during all pregnancies studied. Clearances of carbamazepine to the various excretory products studied were consistent with there being (i) increased urinary excretion of unmetabolised drug in pregnancy, possibly related to the increased glomerular filtration rate, (ii) increased formation of oxidative metabolites of the drug, particularly in women co-medicated with enzyme-inducing anticonvulsants, this effect being offset, in full (in non-co-medicated women) or in part (in co-medicated women) by (iii) inhibition of the epoxide-diol pathway in pregnancy, an inhibition to which folate intake may have contributed.

Adult

Early stage autoinduction of carbamazepine metabolism in humans.

Six healthy young adult male volunteers were given two 600 mg (2540 mu moles) oral doses of carbamazepine (CBZ) 5 days apart. Serial concentrations of CBZ and its 10,11-epoxy (CBZ-epoxide) and 10,11-dihydro-10,11-trans-dihydroxy (CBZ-diol) metabolites in plasma, and daily excretions of these substances and the 2-hydroxy (2-OH-CBZ), 3-hydroxy (3-OH-CBZ) and 9-hydroxymethyl-10-carbamoylacridan (acridan) metabolites in urine were followed for 5 days after each dose. Pharmacokinetic analysis showed that autoinduction of CBZ metabolism was present within 6-10 days of the initial drug dose. The mean oral clearance of CBZ increased from 1.48 to 1.74 l.h-1 (difference 0.26 l.h-1, 95% confidence interval 0.11 to 0.41 l.h-1) and the mean percentage urinary recovery of the amount of CBZ eliminated increased from 41.8% to 44.6% (difference 2.8%, 95% confidence interval 0.5 to 5%) between the two studies 5 days apart. The data for daily clearance to metabolite and the time-courses of the plasma CBZ-epoxide to CBZ and CBZ-diol to CBZ concentration ratios suggested that autoinduction had begun by the second day after CBZ intake, and involved not only the epoxide-diol pathway but, to a lesser extent, the oxidations to phenolic derivatives.

Acridines

Urinary excretion of phenobarbitone and its metabolites in chronically treated patients.

The elimination of phenobarbitone (PB) was studied in 14 chronically treated epileptic patients under steady state conditions. PB, [S]-PB-N-glucoside ([S]-PB-N-G) and p-hydroxy-PB (p-OH-PB) were assayed in urine by a HPLC method. Some 57% of the daily dose was recovered in urine, 14% as [S]-PB-N-G, 16% as p-OH-PB (conjugated plus non-conjugated) and 27% as unaltered PB. Thus PB-N-G formation contributed significantly to the elimination of PB during long-term administration of the drug, and there was reason to suspect that some of the PB-N-G formed may have already been degraded to untraced products before excretion from the body.

Adult

Inhibition of phenobarbitone N-glucosidation by valproate.

Plasma phenobarbitone concentrations and daily urinary excretion of phenobarbitone and its metabolites p-hydroxyphenobarbitone (conjugated and unconjugated), and [S]-phenobarbitone-N-glucoside were measured under steady-state conditions in two groups of epileptic patients, (i) taking phenobarbitone with or without other drugs, but not valproate (n = 12), and (ii) taking phenobarbitone with other drugs including valproate (n = 8). Mean steady-state plasma phenobarbitone concentrations were 5.9 mg l-1 higher, relative to drug dose, in the patients taking valproate than in those not taking valproate. Urinary excretion of [S]-phenobarbitone-N-glucoside was significantly lower in the group taking valproate (1.9 +/- s.d. 2.0% of phenobarbitone dose vs 16.2 +/- s.d. 9.9%). Urinary excretion of phenobarbitone (23.7 +/- s.d. 9.8% vs 48.2 +/- s.d. 13.6%) and unconjugated p-hydroxyphenobarbitone (5.7 +/- s.d. 3.9% vs 16.0 +/- s.d. 9.1%) was higher in those taking valproate, while conjugated p-hydroxyphenobarbitone excretion was similar in both groups (8.3 +/- s.d. 4.9% vs 6.5 +/- s.d. 2.9%). Valproate appeared to inhibit both the direct N-glucosidation of phenobarbitone and the O-glucuronidation of p-hydroxyphenobarbitone.

Adult

Comparative metabolism of clinically important precursors of N-desmethyldiazepam using phenobarbitone-pretreated rat liver microsomes.

Phenobarbitone-pretreated male Sprague-Dawley rat liver microsomes were used to examine C3-hydroxylation and N-dealkylation of four clinically important benzodiazepines: diazepam (DZP), prazepam (PZP), pinazepam (PIN) and halazepam (HZP). These substrates differ only in the nature of the N-substituent of the B ring and N-desmethyldiazepam (DMD) is the N-dealkylation product in each case. C3-Hydroxylation was accordingly also studied with DMD as substrate. All monooxygenations were studied with substrates at a concentration of 10 microM, in the absence of solubilizing agents, and under conditions where the production of secondary metabolites was minimized. A 20-fold variation in the rate of C3-hydroxylation was recorded across the five substrates with HZP showing the highest rate and DMD showing the lowest rate. An almost equally large range of variation was shown for the N-dealkylation reaction, with PZP undergoing this biotransformation more than 17 times faster than DZP. Log P values (a measure of lipophilicity) for the five substrates were determined using an HPLC method and a remarkable lack of correspondence between this substrate parameter and either of the monooxygenations was noted. This suggests that multiple substrate determinants govern the relative rates of these monooxygenations. It was, however, notable that the additive rate of metabolism of these substrates by both monooxygenase routes did show an excellent correlation with substrate lipophilicity.

Animals

Enantioselective pharmacokinetics of ethotoin in humans following single oral doses of the racemate.

Racemic ethotoin (1000 mg) was administered orally as a single dose to six healthy adult volunteers. Blood samples were collected at appropriate times for 120 h following the dose. Ethotoin was quantified enantio-selectively in plasma using a novel chiral column HPLC procedure. One of the enantiomers of the chiral metabolite, 5-phenylhydantoin, was also quantified in the HPLC method. The Cmax and AUC0-infinity values for (+)-(S)-ethotoin were significantly greater than those for (-)-(R)-ethotoin (ratio of mean AUC0-infinity values 0.88), but the elimination half-lives of the isomers were virtually identical [12.35 +/- 5.15 h for (-)-(R)-ethotoin; 12.28 +/- 5.34 h for (+)-(S)-ethotoin]. Parameters derived from AUC0-infinity (Cl0/F and V(area)/F) also differed slightly between the isomers. The data were interpreted as indicating a small difference in the absorption of the two isomers; it seemed unlikely, in terms of the identical elimination rates, that their metabolic profiles would differ greatly. The 5-phenylhydantoin was eliminated with a significantly longer half-life (18.69 +/- 6.11 h) than that of ethotoin. Enantioselectivity in the pharmacokinetics of ethotoin is therefore a minor issue.

Administration, Oral

Phenytoin metabolism during pregnancy.

The steady-state 72 h urinary excretion of various phenytoin metabolites has been measured in 10 epileptic women, whose plasma phenytoin concentrations relative to the phenytoin dose fell during pregnancy and rose again post-partum. In later pregnancy and post partum, a mean of 61.3% and 48.9%, respectively, of the total daily phenytoin dose was eliminated as 5-(4-hydroxyphenyl)-5-phenylhydantoin (p-HPPH). Even though p-HPPH accounts for not much more than half the total daily phenytoin dose, increased excretion of this metabolite sufficed to account for the elimination of the entire increase in the dose of phenytoin required during pregnancy. There was no definite increase in the excretion of any other (minor) metabolite measured. Thus pregnancy seems not to enhance uniformly the capacity of the various metabolic pathways of phenytoin.

Epilepsy

Urinary metabolites of phenobarbitone, primidone, and their N-methyl and N-ethyl derivatives in humans.

1. Phenobarbitone (1) and three of its N-alkyl derivatives, and primidone (10) and four of its N-alkyl derivatives, were orally administered separately to two human volunteers. Total urine was collected for approximately 2 weeks following each dose, and the drugs and their metabolites were assayed by g.l.c.-mass spectrometry. 2. Recoveries in the phenobarbitone series increased from approximately 40% to approximately 50% as alkylation of (1) increased. There was a linear relationship between the extent of p-hydroxylation and the lipophilicity (log P) of the substrates. The increased total recovery was largely attributable to increased p-hydroxylation. 3. Urinary recoveries in the primidone series decreased from approximately 80% for (10) to approximately 30% for its diakyl derivatives, despite a slight increase in p-hydroxylation with increasing alkylation (and increasing lipophilicity). The decreased recovery was mainly the result of decreased urinary excretion of the drug.

Adult

Single oral dose pharmacokinetics and comparative bioavailability of danazol in humans.

A comparative bioavailability study was conducted with two capsule formulations of danazol (200 mg) in 16 healthy adult male volunteers. Fasting subjects received single doses (400 mg) of each formulation on separate occasions 1 week apart. Blood samples were drawn at specified times up to 32 h after the dose and danazol concentrations in plasma were determined by a specific and sensitive HPLC method. The results for one subject were excluded as outlier values. The data from the other 15 subjects showed small differences, which did not achieve statistical significance between the formulations with respect to Cmax, Tpeak and AUC0-infinity. The mean elimination half-life for danazol was 9.44 +/- SD 2.74 h and the mean apparent total body clearance was 710 +/- SD 2161 h-1. These data differed from previously published results, probably as a result of the more sensitive and specific assay method used in the present work. It is likely that a high proportion of the oral dose of danazol is eliminated by presystemic metabolism.

Administration, Oral

Facile hydrolysis of mebeverine in vitro and in vivo: negligible circulating concentrations of the drug after oral administration.

The HPLC methods for the determination of plasma concentrations of the antispasmodic agent mebeverine (0.01-10 micrograms/mL) and its hydrolysis product veratric acid (0.1-50 micrograms/mL) are presented. Mebeverine was demonstrated to hydrolyze readily in fresh unbuffered human and rat plasma samples ex vivo. Hydrolysis in human plasma was completely inhibited in the presence of the esterase inhibitor physostigmine sulfate, at a concentration of 130 micrograms/mL. However, the inhibitor was only partially effective in blocking mebeverine hydrolysis in rat plasma. After oral administration of mebeverine.HCl (270 mg) to fasted human volunteers, measurable concentrations of the drug were not found in plasma. By contrast, the metabolite veratric acid achieved considerable concentrations (mean peak plasma concentration of 13.5 micrograms/mL at 40-80 min). After iv administration of mebeverine.HCl (2 mg) to rats, the drug was rapidly eliminated from plasma (mean half-life of 29 min) with simultaneous appearance of veratric acid (mean peak plasma concentration of 1.80 micrograms/mL at 15-30 min). However, after oral administration of the same dose, only traces of mebeverine were found in plasma, with the exception of one rat. Veratric acid again achieved considerable concentrations (mean peak plasma concentration of 0.90 micrograms/mL at 15 min-4 h). The results show that mebeverine undergoes rapid and extensive first-pass metabolism involving hydrolysis of the ester function, and that negligible circulating concentrations of the parent drug are found in humans.

Adult

Effects of ethinylestradiol and testosterone implants on hepatic microsomal cytochrome P450 monooxygenases of birth gonadectomized male and female Dark Agouti rats.

Monooxygenases in the cytochrome P450 IIIA subfamily are induced by a number of their xenobiotic substrates and by testosterone, an endobiotic substrate of importance in their regulation. 17 alpha-Ethinylestradiol (EE) is also metabolized by these enzymes and in this study Dark Agouti rats were used to examine the effects of subcutaneous implantation of controlled release silastic capsules containing EE to determine if this steroid also induces these enzymes. Data were compared with results obtained from equivalent groups of animals implanted with capsules containing testosterone propionate (TP). Liver microsomes prepared from male and female rats were used to identify intrinsic gender differences in the monooxygenases studied and gender differences in the responses to the implanted steroids were also determined. Effects due to imprinting of growth hormone secretion patterns were controlled by using male and female birth gonadectomized animals. Results obtained from groups with blank implants showed there were no effects due to the silastic implant material itself on the monooxygenases studied. The specific activities of erythromycin N-demethylation in liver microsomes of both EE and TP implanted male and female birth gonadectomized animals were enhanced relative to corresponding blank implanted controls consistent with both steroids having an effect to induce activity attributable to cytochrome P450 IIIA isoforms. Immunoinhibition studies using microsomes from EE treated female rats with erythromycin as substrate provided further evidence for this steroid having this induction effect. The specific activity of ethylmorphine N-demethylation was however not increased in microsomes prepared from the EE implanted female animals and was decreased in the corresponding male preparations. These findings distinguished the response to this steroid from that to TP and suggested induction by this estrogen of an isoform(s) having a more limited range of substrates than has characteristically been found in this subfamily. EE treatment also caused an increase in diazepam C3 hydroxylase consistent with an effect to induce P450 IIIA activity but this was found only in microsomes from birth gonadectomized female animals. This was in contrast to the effect of TP treatment which produced increases in this monooxygenase in both male and female animals. Another gender specific effect of EE was a striking decrease in morphine N-demethylase activity seen only in birth gonadectomized male rats. This again contrasted with the effect of TP which caused a marked increase in this activity in liver microsomes of both male and female birth gonadectomized animals consistent with the proposal that testosterone is important in the regulation of this activity.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

Lack of a pharmacokinetic interaction between phenobarbitone and gabapentin.

Twelve subjects received a single oral dose (300 mg) of gabapentin and serial blood and urine samples were collected for drug measurements. Oral phenobarbitone (30-90 mg/day) was then administered to steady-state, and the gabapentin single dose study was repeated on day 42. Gabapentin was administered from days 49 to 52 to achieved steady-state, and further blood and urine samples were collected for drug measurements. Trough plasma phenobarbitone concentrations were monitored at frequent intervals. No statistically significant differences were observed in gabapentin Cmax, tmax, AUC, t1/2 or urinary drug recovery following single doses of gabapentin alone or combined with phenobarbitone. Phenobarbitone did not alter the disposition of gabapentin at steady state. Mean trough steady-state phenobarbitone concentrations were not significantly affected by concomitant gabapentin administration.

Acetates

Metabolic studies with phenobarbitone, primidone and their N-alkyl derivatives: quantification of substrates and metabolites using chemical ionization gas chromatography-mass spectrometry.

Metabolic studies with phenobarbitone, primidone and some of their N-alkyl derivatives required the concurrent assay of any mixture of these substrates (twelve compounds) and their major metabolites (an additional twenty-two compounds) in urine. The method described in the present report met this requirement by incorporating two complementary derivatization techniques into a gas chromatographic-mass spectrometric (GC-MS) assay procedure. Following hydrolysis of conjugates with beta-glucuronidase, urine samples were extracted with ethyl acetate (3 X 5 ml). The combined extracts were dried over sodium sulphate, divided into two equal portions, and the solvent was removed. One residue was derivatized by propylation using 1-iodopropane with base catalysis. The other residue was silylated using methyl-N-(tert.-butyldimethylsilyl)trifluoroacetamide. The derivatives in each case were analysed by GC-MS, using temperature-programmed packed-column GC and chemical ionization MS. Mass spectra were acquired over an appropriate mass range, and peak areas for the compounds of interest were determined from specific mass chromatograms. Satisfactory precision, accuracy, specificity and sensitivity were obtained for all analytes. All compounds produced satisfactory derivatives by at least one procedure; twelve compounds could be analysed by both techniques. The method illustrates the utility of chemical ionization GC-MS for the simultaneous quantitative analysis of multiple related analytes in complex biological samples.

Administration, Oral

Enantioselective binding of mephobarbital to plasma proteins.

The enantioselective protein binding of mephobarbital (MPB) was investigated in human plasma and human serum albumin solutions by equilibrium dialysis. A small but statistically significant difference was observed in the in vitro plasma protein binding of the enantiomers; (S)-MPB was approximately 59% bound and (R)-MPB approximately 67% bound. The binding to albumin [(S)-MPB: approximately 29% bound, and (R)-MPB: approximately 41% bound] was less than to plasma proteins but showed somewhat greater enantioselectivity, suggesting that albumin binding is a major source of the enantioselectivity in plasma. The effects of MPB concentration, of varying enantiomeric concentration ratio, and of phenobarbital on the enantioselective binding of MPB were studied. The effect of age was also investigated by measuring the binding in plasma from 8 young (18-25 yr) and 8 elderly (greater than 60 yr) male subjects who took single doses of MPB. The results were in close agreement with the in vitro binding data, and the binding of both enantiomers was marginally but significantly lower in the young compared with the elderly subjects. These differences in binding were consistent with previously observed pharmacokinetic differences between the two subject groups.

Adult

The influence of age and gender on the stereoselective metabolism and pharmacokinetics of mephobarbital in humans.

In this clinical investigation, four groups of subjects (eight young women and eight young men [age range, 18 to 25 years], and eight elderly women and eight elderly men [greater than 60 years of age]) received single oral doses (400 mg) of racemic mephobarbital. The apparent total body clearance of R-mephobarbital was much greater and the elimination half-life was much shorter in the young men compared with the other three groups. This enantiomer displayed an age-dependent gender effect and a gender-dependent age effect in its metabolism. The apparent total body clearance of the S-enantiomer was much lower than that of the R-enantiomer in all subjects and did not differ between subject groups, although the elimination half-life was slightly but significantly shorter in young males. A consequence of these enantiomeric differences was an apparently enhanced stereoselectivity in the metabolism of mephobarbital in young men. These substantial influences of age and gender on the stereoselective disposition of mephobarbital are consistent with recent findings concerning the expression and regulation of cytochrome P450 enzymes.

Adolescent