Search PubMed⌕ Search

Biomedical subjects

D J Back

Publications and source records attributed to D J Back.

At least 109 records · Page 6Linked to original sources

Cortisol metabolism by human liver in vitro--I. Metabolite identification and inter-individual variability.

The measurement of urinary 6 beta-hydroxycortisol (6 beta-OHF) has been widely used as a non-invasive clinical test to detect cytochrome P450 induction. Although only a minor biotransformation, 6 beta-OHF formation represents a sensitive target for many P450-inducing drugs and environmental chemicals in man. There is good evidence that an isozyme of the P450IIIA subfamily is predominantly responsible for 6 beta-hydroxylase activity and therefore it has been suggested that urinary 6 beta-OHF is a marker of the induction of P450IIIA. The basis of the present study was that in order to realistically assign to 6 beta-OHF the status of a P450IIIA marker we should characterize all the metabolites of cortisol produced by human liver and assess inter-liver variability. Incubations at 37 degrees C for 2 h contained [3H]cortisol (0.1 microCi, 1 or 50 microM), MgCl2 (10 mM), microsomal or cytosolic protein (3 mg), an NADPH-regenerating system and 1/15 M phosphate buffer (pH 7.4) to give a final volume of 0.5 ml. Extraction with ethyl acetate (2 x 2 ml) was followed by radiometric HPLC analysis. Metabolites were identified by co-chromatography with authentic standards and mass spectrometry (electron impact and chemical ionization). All the microsomal incubations (n = 6 livers) produced 6 alpha-hydroxycortisol (6 alpha-OHF), 6 beta-OHF, 20 beta-dihydroxycortisol, 20 beta-dihydroxycortisone, cortisone, and 3 alpha, 5 beta-tetrahydrocortisone (3 alpha, 5 beta-THE), while five produced 6 beta-hydroxycortisone and four produced 3 alpha, 5 beta-tetrahydrocortisol (3 alpha, 5 beta-THF). The cytosolic incubations gave a much simpler metabolic profile, with 3 alpha, 5 beta-THF the major metabolite and 3 alpha, 5 beta-THE a minor metabolite. There was considerable inter-individual variability in metabolite profiles from microsomal incubations. 6 beta-OHF varied from 2.8 to 31.7%. Major metabolites were cortisone and 3 alpha, 5 beta-THE. Inter-liver variability was less for cytosolic incubations, the major metabolite always being 3 alpha, 5 beta-THF. In conclusion we have rigorously identified the hepatic metabolites of cortisol formed in vitro. The highly complex and variable hepatic metabolism of cortisol clearly limits the use of urinary 6 beta-OHF excretion as a marker of baseline P450IIIA activity in man.

Adolescent↗

The in-vitro mucosal conjugation of ethinyloestradiol and the bioavailability of oral contraceptive steroids in patients with treated and untreated coeliac disease.

The ethinyloestradiol (EO2) component of oral contraceptive steroids is extensively conjugated with sulphate by the gut wall. The ability of gastrointestinal mucosa to conjugate EO2 has been examined in vitro in samples of mucosa taken from normal women as well as from women with coeliac disease. The percentage conjugation per mg dry weight for normal tissue (n = 11) was 17.1 +/- 6.4 (mean +/- s.d.) while in untreated coeliac tissue (n = 6) the figure was 6.3 +/- 3.6% (P less than 0.01). In tissue from patients with treated coeliac disease (n = 5) the figure was 12.1 +/- 3.2%. Thus the ability of intestinal mucosa to conjugate ethinyloestradiol was significantly reduced in patients with coeliac disease, and restored towards normal following treatment. However, in patients with coeliac disease the pharmacokinetics of ethinyloestradiol were not significantly different from normal controls.

Administration, Oral↗

Extrahepatic metabolism of zidovudine.

The metabolism of zidovudine (3'-azido-3'-deoxythymidine; AZT) has been studied in human renal, gut and hepatic microsomes. Metabolism of AZT to the ether glucuronide (3'azido-3'-deoxy-5'-beta-D-glucopyranosyl thymidine; GAZT) occurred in the kidney with Km and Vmax values of 1.50 +/- 0.49 mM and 14.5 +/- 2.6 nmol h-1 mg-1 respectively (mean +/- s.d.; n = 3 batches of microsomes from a single kidney). Comparative values obtained in liver were 2.19 +/- 0.6 mM and 43.0 +/- 9.5 nmol h-1 mg-1, respectively. Morphine caused inhibition of AZT conjugation in kidney microsomes. Metabolism of AZT by the kidney could contribute significantly to the overall elimination of AZT. In contrast to the kidney findings, AZT was not metabolised to GAZT by either non-activated (Brij-58) or activated gut microsomes.

Adolescent↗

Metabolism of 2',3'-dideoxyinosine (ddI) in human blood.

1. 2',3'-Dideoxyinosine (ddI) has potent activity against human immunodeficiency virus (HIV). It is converted within target cells to its active form dideoxyadenosine triphosphate(ddA-TP). 2. In addition to the intracellular formation of ddA-TP, ddI can be broken down to hypoxanthine, by purine nucleoside phosphorylase (PNP) and to uric acid, by xanthine oxidase. Since PNP is present in red blood cells we have examined the metabolism of [14C]-ddI by human blood. 3. When incubated with whole blood at 37 degrees C, ddI was extensively metabolised, principally to hypoxanthine (50.4 +/- 12.5% formed at 6 h; mean +/- s.d.; n = 16). Small amounts of uric acid were formed (3.8 +/- 2.4%). 4. ddI breakdown was temperature dependent, being virtually negligible at 4 degrees C. Metabolism to hypoxanthine occurred within red blood cells. 5. The short half-life of ddI in patients is probably the result of both hepatic and erythrocytic metabolism.

Chromatography, High Pressure Liquid↗

Cyclosporin metabolism by human gastrointestinal mucosal microsomes.

The in vitro metabolism of the immunosuppressant cyclosporin (CsA) by human gastrointestinal mucosal microsomes has been studied. Macroscopically normal intestinal (n = 4) and liver (n = 2) tissue was obtained from kidney transplant donors, and microsomes prepared. Intestinal metabolism was most extensive with duodenal protein (15% conversion to metabolites M1/M17 after 2 h incubation at 37 degrees C; metabolite measurement by h.p.l.c). Western blotting confirmed the presence of P-4503A (enzyme subfamily responsible for CsA metabolism) in duodenum and ileum tissue, but not in colon tissue. The results of this study indicate that the gut wall may play a role in the first-pass metabolism of CsA, and could therefore be a contributory factor to the highly variable oral bioavailability of CsA.

Biological Availability↗

Azoles, allylamines and drug metabolism.

Four antifungal drugs, the azoles ketoconazole, itraconazole and fluconazole, and the allylamine terbinafine, were studied for their effects on the metabolism of cyclosporin A (CyA) and cortisol by human liver microsomes in vitro (n = 3). Ketoconazole produced marked inhibition of CyA hydroxylase (to metabolites M17 and M1) with IC50 and Ki values of 0.24 +/- 0.01 and 0.022 +/- 0.004 microM, respectively. On the basis of the IC50, itraconazole was 10 times less potent (IC50 of 2.2 +/- 0.2 microM), and fluconazole and terbinafine were each above 100 microM. No kinetic parameters were calculated for terbinafine because of the lack of inhibitory effects. Ketoconazole was the most potent inhibitor of cortisol metabolism (to 6 beta-hydroxycortisol, IC50 = 0.6 microM). Itraconazole produced marked inhibition of cortisol metabolism (IC50 = 2.4 microM), but fluconazole and terbinafine had little effect. These data confirm that ketoconazole is a potent inhibitor of cytochrome P-450-IIIA4, and this has clinical relevance. Although the inhibition with fluconazole was much less than with itraconazole at equimolar concentrations, it should be noted that in-vivo plasma concentrations of fluconazole are much greater than that of itraconazole. Clinical interactions of CyA with both fluconazole and itraconazole have been reported; in contrast to these azoles, terbinafine does not have the same interaction potential.

Antifungal Agents↗

Pharmacokinetics and serum protein binding of gestodene and 3-keto-desogestrel in women after single oral administration of two different contraceptive formulations.

Two low-dose oral contraceptives, both containing the same dose of ethinyl estradiol (EE2, CAS 57-63-6) but different progestins--gestodene (CAS 60282-87-3) and desogestrel (CAS 54024-22-5), respectively--were administered to 18 women in a single dose, cross-over study. The serum concentrations of gestodene (GEST, one of the components of Femovan) and 3-keto-desogestrel (KDG) have been measured by specific radioimmuno-assays and the pharmacokinetics of both progestins were assessed. The serum protein binding of both compounds was also investigated and although the free fraction was the same for GEST and KDG, the distribution with respect to the binding proteins albumin and sex hormone binding globulin (SHBG) was slightly different. GEST was mainly bound to SHBG, while KDG was predominantly bound to albumin. Maximum concentrations of GEST were observed after 0.7 +/- 0.2 h and amounted to 4.9 +/- 2.4 ng/ml. A biphasic pattern of disposition was observed, with half lives of 0.13 +/- 0.06 h and 14.6 +/- 4.2 h, respectively. The AUC was 32.9 +/- 18.3 ng.ml-1.h. For KDG, maximum serum levels of 1.7 +/- 0.8 ng/ml were observed 1.5 +/- 0.8 h post administration. Drug levels declined with half-lives of 0.5 +/- 0.2 h and 17.0 +/- 9.3 h, respectively, and the AUC was 15.2 +/- 10.9 ng.ml-1.h.

Adult↗

Pharmacokinetics and serum protein binding of 3-keto-desogestrel in women during three cycles of treatment with a low-dose combination oral contraceptive.

The serum concentrations of 3-keto-desogestrel have been measured in 43 women who took a low-dose oral contraceptive containing 30 micrograms ethinyl estradiol (CAS 57-63-6) together with 150 micrograms desogestrel (CAS 54024-22-5) for a period of 3 months. Basic pharmacokinetic parameters, like Cmax, tmax and AUC, as well as the serum protein binding of 3-keto-desogestrel were determined on days 1, 10 and 21 of the first and the third treatment cycle, respectively. During cycle one, Cmax, AUC(0-4h) and AUC(0-24h) values on day 1 were 1.9 +/- 0.7 ng/ml, 3.9 +/- 1.3 ng.ml-1.h and 12.4 +/- 5.7 ng.ml-1.h, respectively. These values increased to 4.7 +/- 2.0 ng/ml, 12.1 +/- 5.6 ng.ml-1.h and 47.3 +/- 26.0 ng.ml-1.h on day 21. Within cycle 3, a similar, although less steep increase was observed for these parameters and there was practically no difference in the values of corresponding parameters on day 21 of both cycles. Throughout treatment, there was a redistribution of 3-keto-desogestrel with respect to the binding proteins albumin and sex hormone binding globulin (SHBG). During cycle 1, the free fraction decreased from 1.8% on day 1 to 1.1% on day 21, and the SHBG-bound fraction increased at the same time from 40% to 62%, mainly at the expense of the albumin-bound fraction. During cycle 3, there were only minor changes as compared to cycle one. The observed changes in the serum protein binding were related to an increase in SHBG levels during the treatment period.

Adult↗

Effect of ampicillin on mefloquine pharmacokinetics in Thai males.

The kinetics of a single oral dose of mefloquine given either alone or with ampicillin has been studied in 8 healthy Thai male volunteers. There was a significantly higher maximum whole blood mefloquine concentration after coadministration with ampicillin (1648 vs 1228 ng.ml-1), as well as a significantly reduced terminal half life (15.3 vs 17.7 days), mean residence time (20.1 vs 23.4 days) and volume of distribution at steady state (14.1 vs 19.4 l.kg-1). Although there was no significant change in the AUC from zero time to infinity, the AUC from zero time to 5 days was significantly increased by ampicillin (4.86 vs 3.27 micrograms.ml-1 day). These changes in mefloquine disposition after antibiotic treatment may be due both to an increase in fractional bioavailability and a reduction in the enterohepatic recycling of mefloquine.

Administration, Oral↗

Oral contraceptive steroids--pharmacological issues of interest to the prescribing physician.

Oral contraceptive steroids (OCS) are well absorbed from the gastrointestinal tract in humans. However, while the progestogens are almost completely bioavailable, ethinylestradiol (EE2) is subject to extensive first pass metabolism consisting chiefly of conjugation with sulfate in the gut wall. Both EE2 and progestogens are well absorbed in patients with an ileostomy or with diseases such as cystic fibrosis or Crohn's disease. However in patients with celiac disease (gluten-sensitive enteropathy) the gut wall is less able to conjugate EE2 and thus its bioavailability is increased. The bioavailability returns to control values as the disease is improved following gluten withdrawal. Other drugs that are conjugated with sulfate, such as vitamin C and paracetamol, compete for available sulfate when coadministered with OCS leading to high plasma levels of EE2. Enzyme-inducing agents such as rifampicin, phenobarbitone, phenytoin and carbamazepine reduce blood levels of the OCS leading to contraceptive failure. In the case of anticonvulsants (but not rifampicin) this can be easily overcome by increasing the dose of OCS used. Broad-spectrum antibiotics are reported to cause failure of contraception by interfering with the enterohepatic circulation of EE2 but limited systematic studies show no evidence of such an interaction. Nevertheless practitioners are advised to recommend the use of alternative contraceptive precautions for women receiving broad-spectrum antibiotics concurrently with their OCS preparation.

Anti-Bacterial Agents↗

The pharmacokinetics of ethynylestradiol in the presence and absence of gestodene and desogestrel.

Single doses of ethynylestradiol (30 micrograms) were given alone and in combination with either gestodene (75 micrograms) or desogestrel (150 micrograms) to 10 healthy female volunteers. The doses of steroids were given both orally and by i.v. infusion over 5-7 minutes. Blood samples were taken at regular intervals over 24 hours. The area under the plasma concentration versus time curve (AUC) for oral EE2 alone was 867 +/- 338 pg/ml x h, for oral EE2 in the presence of gestodene it was 795 +/- 206 pg/ml x h and for oral EE2 in the presence of desogestrel it was 614 +/- 132 pg/ml x h. With either gestodene or desogestrel present, the AUC of EE2 was not significantly different from that found when EE2 was given alone. In addition, there was no significant difference between EE2 + gestodene and EE2 + desogestrel. Comparing the relative oral and iv doses, the bioavailability of EE2 (alone) was 59.0 +/- 13% (n = 6), for EE2 plus gestodene it was 62.1 +/- 10% and for EE2 in the presence of desogestrel it was 62.1 +/- 4.4%. The clearance of EE2 (alone) was 19.9 +/- 5.5 l/h and in the presence of gestodene it was 19.4 +/- 9.6 l/h. The clearance of EE2 in the presence of desogestrel appeared slightly greater at 27.7 +/- 8.9 l/h but none of these clearance values were significantly different from each other. The urinary excretion of 6-beta-hydroxy cortisol was similar after all 6 doses of EE2. These data strongly suggest that following single dose administration, neither gestodene nor desogestrel have any inhibitory effect on the metabolism of EE2 or alter its kinetics to any clinically significant extent.

Administration, Oral↗

The lack of interaction between temafloxacin and combined oral contraceptive steroids.

In view of the considerable debate concerning the possible failure of contraception in women taking broad spectrum antibiotics, we have examined a group of 12 women aged 22-32 in a controlled study. Each woman had been on long-term therapy with oral contraceptive steroids (OCS) containing ethynylestradiol (EE2) and levonorgestrel (Ng) for at least 6 months and all were in good general health. Blood samples were taken about 11.0 hours after dosing with their OCS on days 5, 6, 7 and 8 of their contraceptive cycle, for measurement of EE2, Ng, FSH and LH by radioimmunoassay. In addition blood samples were taken on days 19, 20 and 21 of the contraceptive cycle for assay of progesterone concentrations in plasma. The study was repeated in the next cycle of use of their OCS during which they took temafloxacin, a broad spectrum quinolone antibiotic in a dose of 600 mg twice daily for 7 days starting on day 1 of the cycle. All women completed the study satisfactorily as judged by diary cards, tablet counts and plasma temafloxacin concentrations. In the early part of the study some nausea and headaches were seen due to taking temafloxacin on an empty stomach but these effects were not seen when the antibiotic was later given with food. There was no evidence of any interaction between temafloxacin and the OCS. The plasma concentration of EE2 was 61.4 +/- 21.1 pg/ml in the control cycle and 68.5 +/- 26.6 pg/ml in the temafloxacin cycle.(ABSTRACT TRUNCATED AT 250 WORDS)

4-Quinolones↗

Effect of the progestogens, gestodene, 3-keto desogestrel, levonorgestrel, norethisterone and norgestimate on the oxidation of ethinyloestradiol and other substrates by human liver microsomes.

A number of different progestogens, levonorgestrel (LNG), norethisterone (NET), gestodene (GSD), desogestrel (DG) and norgestimate (NORG) are used in combination with the oestrogen ethinyloestradiol (EE2) in oral contraceptive steroid preparations. All the progestogens are acetylenic steroids and previous studies have indicated the potential of acetylenic steroids to cause mechanism-based or "suicide" inactivation of cytochrome P-450. We have compared the effects of the different progestogens on EE2 2-hydroxylation (a reaction catalyzed by enzymes from the P-450IIC, P-450IIIA and P-450IIE gene families) and also the oxidative metabolism of other drug substrates (cyclosporin, diazepam, tolbutamide) by human liver microsomes. On coincubation with EE2 as substrate, GSD, 3-keto desogestrel (3-KD, the active metabolite of desogestrel) and LNG produced some concentration-dependent inhibition of EE2 2-hydroxylation (maximum 32% inhibition at 100 microM 3-keto desogestrel). Ki values determined for GSD and 3-KD were 98.5 +/- 12.3 and 93.2 +/- 10.3 microM (mean +/- SD; n = 4), respectively. Preincubation of progestogens in a small volume (50 microliters) incubation for 30 min in the presence of an NADPH-generating system enhanced the inhibitory potential of all the steroids (at 100 microM, inhibition was for GSD 39%, 3-KD 46%, LNG 46%, NET 51% and NORG 43%). Inhibitory effects were therefore comparable and also similar to the macrolide antibiotic troleandomycin. The most marked inhibition seen was of diazepam N-demethylation and hydroxylation by GSD (71 and 57%, respectively) and 3-KD (62 and 50%, respectively). In preincubation studies involving cyclosporin as the substrate, the order of inhibitory potency was GSD greater than 3-KD greater than NET greater than LNG for production of both metabolite M17 and M21. The results of the study indicate that all the progestogens in common use have the propensity to inhibit a number of oxidative pathways but there is little evidence for one progestogen being more markedly inhibitory than others.

Contraceptives, Oral↗

Metabolism of the oral contraceptive steroids ethynylestradiol and norgestimate by normal (Huma 7) and malignant (MCF-7 and ZR-75-1) human breast cells in culture.

Human breast cancer cells are used extensively for the study of steroid hormone action. It is known that in both receptor positive and receptor negative cell lines there is considerable metabolism of the natural estrogens, estradiol (E2) and estrone (E1) with interconversion of the two steroids and formation of sulphate and glucuronide conjugates. The aim of the present work was to see if the commonly used oral contraceptive steroids (OCS) ethynylestradiol (EE2) and norgestimate (Ngmate) were metabolized in human breast cancer cell lines (MCF-7 and ZR-75-1) and a normal breast cell line (Huma 7). MCF-7, ZR-75-1 and Huma 7 cells were maintained in Dulbeccos Modified Eagles Medium (DMEM) containing foetal calf serum (FCS) insulin and hydrocortisone. In addition, ZR-75-1 cells required epidermal growth factor (EGF) and E2 while MCF-7 cells required only EGF. On reaching confluence cells were transferred to DMEM containing charcoal-stripped FCS, insulin and hydrocortisone. 48 h later this medium was renewed, radiolabelled steroid ([3H]E1; [3H]E2; [3H]EE2, [3H]Ngmate; [3H]E1-SO4; 1 nM; 0.2 microCi) was added and incubation was for 24 or 48 h. Following incubation, the medium was removed and radioactive steroid extracted with ether. Metabolites were analysed by on-line radiometric HPLC. All the cell lines were able to interconvert E1 and E2; the equilibrium favouring the formation of E2 in MCF-7 and ZR-75-1 and E1 in Huma 7 cells. E1 and E2 also underwent phase II metabolism to form their respective estrogen sulphates, this activity being most marked in the Huma 7 cell line. In addition to sulphotransferase activity, the study with E1 sulphate demonstrated sulphatase activity in both normal and cancer cells. There appeared to be no difference in extent of hydrolysis, with both E1 and E2 formed. With EE2 as substrate there was no evidence of phase I metabolism in any of the cell lines but there was conversion to the presumed 3-sulphate conjugate. The percentage formation of this metabolite was very much greater in Human 7 cells (64.1 +/- 9.6% after 24 h) than in MCF-7 and ZR-75-1 cells (7.4 +/- 5.3% and 10.6 +/- 4.1%, respectively after 24 h). In all the cell lines deacetylation of the progestogen Ngmate to norgestrel oxime was complete within 24 h. In addition there was evidence of loss of the oxime moiety to give norgestrel.(ABSTRACT TRUNCATED AT 400 WORDS)

Breast↗

Metabolism of norgestimate by human gastrointestinal mucosa and liver microsomes in vitro.

The metabolism of the progestogen oral contraceptive norgestimate has been studied in vitro using human intestinal mucosa and human liver microsomes. Metabolites have been separated using radiometric high-performance liquid chromatography (HPLC) and identified by co-chromatography with authentic standards and by mass spectrometry. Histologically normal colon was obtained from 6 patients undergoing various resections and the mucosa mounted between 2 perspex (Ussing) chambers. 2 h after addition of [3H]norgestimate to the mucosal chamber, more than 95% of the radioactivity was present in that chamber. Metabolite analysis showed 38.1 +/- 11.6% (mean +/- SD; n = 8) of drug present was norgestimate, 49.2 +/- 14.5% as 17-deacetyl norgestimate and 8.1 +/- 4.5% as conjugated metabolites. Small amounts of 3-keto norgestimate, norgestrel and uncharacterized metabolites were found. Norgestimate was also metabolized by stomach tissue with 17-deacetyl norgestimate again being the main metabolite found. Microsomes were prepared from 6 human livers. Metabolism was studied over a 5 h time-course in the absence and presence of NADPH. Deacetylation to 17-deacetyl norgestimate took place in the absence of the cofactor. In the presence of NADPH, after 5 h incubation only 30.5 +/- 14.6% (mean +/- SD) of steroid present was norgestimate. The major metabolite formed was 17-deacetyl norgestimate which accounted for 39.3 +/- 20.5%. Less than 2% was present as 3-keto norgestimate but 10.0 +/- 2.3% was identified as norgestrel and 15.5 +/- 8.9% as uncharacterized metabolites. We also examined the microsomal breakdown of [3H]17-deacetyl norgestimate. This was NADPH and oxygen dependent. Norgestrel and other metabolites were formed. This study has demonstrated that norgestimate is rapidly deacetylated by both gut wall and liver. The deacetylated metabolite can then be further metabolized.

Chromatography, High Pressure Liquid↗

Comparative effects of the antimycotic drugs ketoconazole, fluconazole, itraconazole and terbinafine on the metabolism of cyclosporin by human liver microsomes.

Four antimycotic drugs, the azoles ketoconazole, itraconazole and fluconazole, and the allylamine terbinafine have been studied for their effect on the metabolism of cyclosporin by human liver microsomes (n = 3) in vitro. Ketoconazole caused marked inhibition of cyclosporin hydroxylase (to metabolites M17 and M1) with IC50 and Ki values of 0.24 +/- 0.01 and 0.022 +/- 0.004 microM, respectively. Based on IC50 values, itraconazole was ten times less potent (IC50 value of 2.2 +/- 0.2 microM) and both fluconazole and terbinafine had values above 100 microM. Ki values for itraconazole and fluconazole were 0.7 +/- 0.2 and 40 +/- 5.6 microM, respectively. No kinetic parameters were calculated for terbinafine because of the lack of inhibitory effects. Based on these data, ketoconazole is confirmed as being a potent inhibitor of cyclosporin metabolism and this has clinical relevance. Although inhibition by fluconazole was much less than that by itraconazole at equimolar concentrations, it should be noted that in patients plasma concentrations of fluconazole are much greater than those of itraconazole. Clinical interactions of cyclosporin with both fluconazole and itraconazole have been reported. In contrast to the azoles, terbinafine does not have the same potential for interaction.

Adult↗

Cyclosporin metabolism by the gastrointestinal mucosa.

The intestinal mucosal metabolism of the immunosuppressant cyclosporin (CsA) has been studied in vitro using the Ussing chamber technique. Histologically normal colon was obtained from six patients undergoing resections. The mucosal sheets were mounted between two perspex chambers. Three hours after addition of [3H]-CsA (0.2 microCi; 10 microM) to the mucosal chamber, more than 90% of the radioactivity was present in that chamber. Metabolite analysis, by high performance liquid chromatography, indicated that 77.6 +/- 9.2% (mean +/- s.d.) of the drug present was CsA, 9.9 +/- 4.4% and 8.7 +/- 4.7% were the oxidative metabolites M17 and M21 respectively (metabolites identified by co-chromatography with authentic standards). Total metabolite production in tissues from the six individuals was variable (10.1-30.6% at 3 h) and increased over the time period of the study. A different pattern of metabolism was obtained from a single sample of gastric mucosa. More than 20% of CsA was metabolised although neither M17 nor M21 were detected. The results of this study suggest that the gut wall is involved in the first pass metabolism of CsA in vivo and that this could be a contributory factor to the poor systemic availability of CsA seen in some patients.

Chromatography, High Pressure Liquid↗