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Biomedical subjects

M J Humphrey

Publications and source records attributed to M J Humphrey.

At least 19 recordsLinked to original sources

Gamma-irradiation of lyophilised wound healing wafers.

Lyophilised wafers are being developed as drug delivery systems that can be applied directly to the surface of suppurating wounds. They are produced by the freeze-drying of polymer solutions and gels. This study investigates the possibility of sterilising these glassy, solid dosage forms with gamma-irradiation and determining the rheological properties of rehydrated wafers post-irradiation. One series of wafers was formulated using sodium alginate (SA) modified with increasing amounts of methylcellulose (MC), the other being composed of xanthan gum (XG) and MC. Batches were divided into three lots, two of which were exposed to 25 and 40 kGrays (kGy) of Cobalt-60 gamma-irradiation, respectively, the third being retained as a non-irradiated control. Apparent viscosities of solutions/gels resulting from the volumetric addition of distilled water to individual wafers were determined using continuous shear, flow-rheometry. Flow behaviour on proprietary suppurating surfaces was also determined. Large reductions in viscosity were apparent for irradiated SA samples while those of XG appeared to be largely unaffected. In addition, an increase in the yield stress of xanthan formulations was observed. Xanthan wafers appeared to withstand large doses of irradiation with no detrimental effect on the rheology of reconstituted gels. This offers the possibility of manufacturing sterilisable delivery systems for wounds.

Alginates↗

Lyophilised wafers as a drug delivery system for wound healing containing methylcellulose as a viscosity modifier.

Lyophilised wafers have potential as drug delivery systems for suppurating wounds. A dual series of wafers made from low molecular weight sodium alginate (SA) and xanthan gum (XG) respectively, modified with high molecular weight methylcellulose (MC) were produced. The swelling and flow properties of these wafers on model suppurating surfaces were both qualitatively and quantitatively investigated. The wafers instantaneously adhered to the surfaces, absorbing water and transforming from glassy, porous solids to highly viscous gels. The rate at which this occurred varied for the series studied with clear distinctions between the behaviour of SA and XG systems. For SA wafers there was a distinct relationship between the flow-rate and MC content. Increased amounts of MC decreased the rate at which the SA wafers flowed across a model gelatine surface. Flow rheometry was used to quantify the effect of increased MC content on both series of wafers and for the SA series, highlighted a substantial increase in apparent viscosity as a function of incremental increases in MC content. These results reflected those from the gelatine model. Observations of the reluctance of a swollen, unmodified XG wafer to flow compared with the relative ease of unmodified, low molecular weight SA was attributed to the yield stress characteristic of xanthan gels. XG is known to exhibit complex, loosely bound network structures in solution via the association of helical backbone structures. The inclusion of sodium fluorescein as a visible model for a soluble drug highlighted the potential of lyophilised wafers as useful drug delivery systems for suppurating wounds.

Alginates↗

Formation and pharmacokinetics of the active drug candoxatrilat in mouse, rat, rabbit, dog and man following administration of the prodrug candoxatril.

1. Candoxatrilat, an active neutral endopeptidase inhibitor, was released rapidly from the inactive prodrug candoxatril in vivo in mouse, rat, rabbit, dog and man. 2. Oral doses of [14C]-candoxatril were cleared rapidly, mostly by ester hydrolysis to candoxatrilat, in mouse, dog and man. A complementary intravenous study in man with [14C]-candoxatrilat showed that the active drug was virtually completely renally cleared. Neither candoxatril nor candoxatrilat underwent chiral inversion in man. 3. Systemic availability of candoxatrilat from the oral prodrug was estimated to be 88, 53, 42, 17 and 32% in mouse, rat, rabbit, dog and man respectively. Plasma clearance of candoxatril was too rapid to enable pharmacokinetic parameter calculation in mouse and rabbit; for man, the apparent oral clearance was 57.9 ml/min/kg and the elimination half-life was 0.46 h. 4. For intravenous candoxatrilat, total plasma clearance values were 32, 15, 5.5, 5.8 and 1.9 ml/min/kg for mouse, rat, rabbit, dog and man respectively. Renal clearance values were 8.7, 7.2, 2.9 and 1.7 ml/min/kg for mouse, rat, dog and man and these approximate to the respective glomerular filtration rates. Allometric scaling with respect to bodyweight across the species allowed reasonable prediction of the above two clearance parameters in man.

Absorption↗

Ketoconazole and fluconazole inhibition of the metabolism of cyclosporin A by human liver in vitro.

The effects of the important antifungal agents, ketoconazole (Ket) and fluconazole (Flu), on the microsomal metabolism of cyclosporin A (CsA) by seven human livers was measured in vitro. A total of eight CsA metabolites were identified by high-performance liquid chromatography, with metabolites AM9 and AM1 predominating. Ket was a stronger inhibitor than Flu for the formation of each of the 8 metabolites; the mean IC50 for the inhibition of total CsA metabolism was 0.26 +/- 0.08 microM and 85.7 +/- 23.9 microM for Ket and Flu, respectively. Inhibition by Ket and Flu was noncompetitive, with Ki = 0.13 microM and 25.1 microM, respectively. There was considerable interindividual variation in the sensitivity of CsA metabolism to inhibition by Ket or Flu and the degree of inhibition was not uniform across the range of individual CsA metabolites. In six of the seven livers tested, Ket and Flu inhibited the aggregate formation of secondary metabolites (AM19, AM49, AM4N9, and AM1c) more than the aggregate formation of primary metabolites (AM9, AM1, and AM4N) and inhibited the formation of AM9 more than AM1. Although the degree of inhibition of total CsA metabolism by Flu correlated directly with the control (uninhibited) rate of total CsA metabolism (r = 0.95), no similar correlation for inhibition by Ket was noted, nor was the magnitude of inhibition by Ket and Flu related. The results are discussed in relation to the inhibition of CsA metabolism by Ket and Flu in patients in vivo and to the possibility of changes in the efficacy and toxicity of CsA as a result of alterations in its metabolite profile.

Adult↗

Disposition of azole antifungal agents. II. Hepatic binding and clearance of dichlorophenyl-bis-triazolylpropanol (DTP) in the rat.

DTP (dichlorophenyl-bis-triazolylpropanol) was evaluated as a probe of drug-cytochromes P450 interactions in vitro and in vivo. Studies with rat liver microsomes demonstrate that DTP shows similar P450 binding affinity to its analog, ketoconazole, as determined by P450 difference spectra and inhibition of the metabolism of methoxycoumarin. As a more polar azole, DTP shows less affinity for rat plasma albumin (fraction unbound 0.56) than ketoconazole (fraction unbound 0.037). DTP metabolism is simpler than that of ketoconazole, with only one pathway, N-dealkylation which removes a triazole ring to yield DTP glycol. This primary metabolite is further metabolised to a carboxylic acid, a glycol glucuronide and a third unknown secondary metabolite (probably an acid glucuronide). Over a dose range of 0.1-24mg/kg there is complete mass balance recovery in urine via the five metabolites and unchanged drug. However DTP metabolism is dose dependent and while the affinity of DTP for the cytochromes P450 carrying out the initial dealkylation is high (1.5 microM based on unbound blood concentration), the capacity of the reaction is low (1 nmole/min). Under linear conditions, metabolic clearance is low (19ml/h), but ten-fold higher than renal clearance. The liver is the major distribution site for both DTP and ketoconazole. At low DTP concentrations, a specific high affinity process dominates the hepatic binding of DTP resulting in a liver:blood partition coefficient of approximately 30. Hepatic binding is concentration dependent and the progressive decrease in partition coefficient observed as the dose of DTP is escalated is coincident with a decrease in volume of distribution. The two saturable processes involved in the disposition of DTP result in an unusual concentration dependency in the blood concentration-time profile of this azole. Following administration of a high dose (10mg/kg) of DTP the log concentration-time profile is sigmoidal. At high concentrations (above 1mg/L) both the N-dealkylation and the hepatic binding of DTP are saturated, but as concentrations fall to approximately 0.05mg/L the former process becomes linear and the time profile is convex over this concentration range. At later times as DTP concentrations decline further, the tissue binding also reaches the linear region and the time profile becomes concave. Only at low concentrations (below 0.05mg/L) do both processes become first order and the true half life is evident.

Animals↗

Importance of metabolic stability and hepatic distribution to the pharmacokinetic profile of amlodipine.

1. In an isolated perfused rat liver (IPRL) model, the extensive hepatic uptake and subsequent slow redistribution of amlodipine into the perfusate have been demonstrated. The apparent liver volume for amlodipine was 920 ml compared with 38ml for nitrendipine. 2. Metabolism is the major clearance mechanism of amlodipine and nitrendipine in animals and man. In the IPRL, the intrinsic (metabolic) clearance and first-pass extraction values for amlodipine are similar to those of nitrendipine. This is in contrast with in vitro metabolic stability data in rat liver microsomes which indicate about 40-fold greater metabolic stability for amlodipine. 3. The discrepancy between relative clearance rates for the two preparations may be explained by consideration of the hepatic volume of the two compounds, with the higher liver volume of amlodipine amplifying the whole organ clearance.

Amlodipine↗

Role of metabolism and pharmacokinetic studies in the discovery of new drugs--present and future perspectives.

1. The impact which pharmacokinetics and drug metabolism studies have made to drug discovery programmes is reviewed with examples from the anti-infective, cardiovascular, anti-inflammatory and CNS therapeutic areas. 2. Contributions that advances in analytical technology have made to the early application of pharmacokinetics and drug metabolism are discussed. 3. Some future perspectives are given on the advances being made in basic science and technology and how this will provide the basis for further growth in the contribution to the drug discovery process.

Animals↗

Volatile anesthetic effects on left ventricular relaxation in swine.

The effects of halothane (0.5, 1.0, and 1.5%; n = 10), enflurane (1.0, 2.0, and 3.0%; n = 8), and isoflurane (0.75, 1.5, and 2.25%; n = 8) on isovolumic relaxation were studied in open-chest swine. The time constant for isovolumic left ventricular pressure decline, T, was determined at each anesthetic concentration at the intrinsic heart rate and during atrial pacing to 150 beats per min. The effect of increased left ventricular afterload on T was investigated by partial occlusion of the thoracic aorta to raise the left ventricular systolic pressure to baseline in the presence of volatile anesthetics, and 20% above baseline in the absence of volatile anesthetics. Heart rate and left ventricular systolic pressure decreased substantially with all three anesthetics, whereas left ventricular end-diastolic pressure increased (by 3-4 mmHg). Relaxation time constants increased with all three anesthetics at the intrinsic heart rate; when the heart rate was controlled by pacing, T increased in the halothane and enflurane, but not in the isoflurane, experiments. T was significantly prolonged (by 30-100%) by partial aortic occlusion in the presence of anesthetic, but not in the control measurements. T did not change significantly in the isoflurane experiments when atrial pacing was employed with partial aortic occlusion. The volatile anesthetics, particularly halothane, seem to impair the relaxation process of the left ventricle; further investigation of the mechanisms of this interference, such as anesthetic effects on intracellular calcium movement and total left ventricular load, is warranted.

Animals↗

Design of toxicokinetic studies.

1. Toxicokinetics is defined as pharmacokinetic studies in animals during actual toxicity studies or under conditions mimicking them (species, duration, dose level, etc.). 2. Toxicology studies require toxicokinetics to check whether systemic exposure reflects administered dose. In particular, it is important to know whether the absence of toxicity at a given dose is due to the innocuousness of the compound or to its poor bioavailability. 3. Pivotal toxicology studies may require different toxicokinetic support than that of early studies, as more is learned of the compound and its metabolites. Considerations need to be placed on such factors as the choice of biological matrix for drug assay, the relevance of metabolites, and which dose levels require the most pharmacokinetic investigation.

Animals↗

Comparison of two azole antifungal drugs, ketoconazole, and fluconazole, as modifiers of rat hepatic monooxygenase activity.

The mechanism of action of azole antifungal agents is believed to involve inhibition of fungal cytochrome P-450, and, therefore, an investigation of the interaction of these drugs with mammalian cytochrome P-450 systems should provide some indication of their selectivity as antifungal agents. The ability of ketoconazole and fluconazole, the latter representing a new generation of triazole antifungal agents, to modify rat mixed function oxidase activity has been investigated in vitro with hepatic microsomes and in vivo using a N-methyl-[14C] antipyrine breath test. As a measure of selectivity the results have been compared with antifungal potency. Ketoconazole is more potent than fluconazole by an order of magnitude in inhibiting metabolism by O-dealkylation of ethoxycoumarin, methoxycoumarin and ethoxyresorufin (IC50 values of 6, 5 and 130 microM for ketoconazole respectively). The effects on the regio- and stereospecific hydroxylation of [14C] testosterone were also measured; the IC50 values for inhibition of total testosterone metabolism were 0.1 mM and greater than 3 mM for ketoconazole and fluconazole respectively. Marked selectivity differences were observed for the two drugs as indicated by ketoconazole being a potent inhibitor of 7 alpha-hydroxylation of testosterone (IC50 20 microM) while fluconazole did not inhibit this activity at 3 mM. In vivo investigations using a range of doses confirmed their ranking for inhibitory potency; the ED50 values for maximum demethylation rate were 17 mumol/kg and greater than 60 mumol/kg for ketoconazole and fluconazole respectively. Thus fluconazole has a lower propensity to interact with rat hepatic cytochrome P-450 and can be considered a more selective antifungal agent as its in vivo antifungal potency is an order of magnitude greater than ketoconazole.

Animals↗

The metabolism and pharmacokinetics of amlodipine in humans and animals.

The disposition of amlodipine, a new calcium-channel blocker with a slow onset and long duration of action, has been investigated in humans and in the animal species used in the evaluation of drug efficacy and safety. Pharmacokinetic studies were conducted with nonlabeled drug using specific high-pressure liquid chromatography or gas chromatographic procedures. The metabolic fate of the drug was investigated in mice, rats, dogs, and humans using [4-14C]-amlodipine. After intravenous administration, the percentages of the dosed radioactivity recovered in urine were 62% in humans, 45% in dogs, 38% in rats, and 25% in mice. The remainder of the doses were recovered in the feces. A similar pattern of excretion was observed after oral dosing indicating complete absorption of the 14C drug. Absorbed drug is extensively metabolized because only approximately 5% of the dose was excreted unchanged in human urine. Metabolism in humans primarily involves oxidation to the pyridine derivative with subsequent oxidative deamination of the 2-aminoethyoxymethyl side chain or deesterification at the 5-methoxycarbonyl group. These metabolites were common to either the rat or dog, although some dihydropyridine derivatives were observed as metabolites in these two species. None of the metabolites identified and then synthesized was found to have any significant calcium antagonist activity relative to amlodipine. Bioavailability of unchanged drug after oral administration was high with values of 63, 88, 100, and 100% in humans, dogs, mice, and rats, respectively. Mean plasma half-life values from single-dose studies were 35 h in humans (cf nifedipine, approximately 2 h), 30 h in dogs, 3 h in rats, and 11 h in mice.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Metabolism and kinetics of amlodipine in man.

1. The disposition of amlodipine, R,S,2-[(2-aminoethoxy)methyl]-4-(2-chlorophenyl)-3-ethoxycarbonyl- 5- methoxycarbonyl-6-methyl-1,4-dihydropyridine has been studied in two human volunteers using single oral and intravenous doses of 14C-amlodipine. The drug was well absorbed by the oral route while the mean oral bioavailability for unchanged drug was 62.5%. 2. Renal elimination was the major route of excretion with about 60% of the dosed radioactivity recovered in urine. Mean total recovered radioactivity in urine and faeces amounted to 84% for both the oral and intravenous routes. 3. Apart from a small amount of unchanged amlodipine (10% of urine 14C), only pyridine metabolites of amlodipine were excreted in urine. The majority (greater than 95%) of the metabolites excreted in the 0-72 h post-dose period were identified; the major metabolite was 2-([4-(2-chlorophenyl)-3-ethoxycarbonyl-5-methoxycarbonyl-6-methyl- 2-pyridyl]methoxy) acetic acid and this represented 33% of urinary radioactivity. The data indicate that oxidation of amlodipine to its pyridine analogue is the principal route of metabolism with subsequent metabolism by oxidative deamination, de-esterification and aliphatic hydroxylation. 4. For the two volunteers, amlodipine concentrations in plasma declined with a mean half-life of 33 h, while slower elimination of total drug-related material from plasma was observed, consistent with prolonged excretion (up to 12 days) of metabolites in urine and faeces. Only amlodipine and pyridine metabolites were found in the circulation. As these pyridine derivatives have minimal calcium antagonist activity the efficacy of amlodipine in man can most probably be attributed to the parent drug.

Administration, Oral↗

The pharmacokinetics and metabolism of idazoxan in the rat.

1. [2'-14C]Idazoxan was rapidly and completely absorbed after its oral administration to rats. 2. After administration of either [2'-14C] or [6,7-3H]idazoxan, radioactivity was taken up by a wide range of tissues and became localized, especially in the organs of metabolism and excretion. Quantitative distribution patterns were route-dependent such that oral dosing resulted in lower radioactivity concentrations in all tissues apart from liver. 3. Clearance of idazoxan (94-144 ml/min per kg) was due mostly to metabolism and was independent of dose. Oral bioavailability in male rats at low oral doses of idazoxan (10 mg/kg) was about 1%, but increased with increasing dose to 23% at 100 mg/kg. Oral bioavailability in female rats was considerably higher than in male rats, at all doses studied. Brain idazoxan levels were in equilibrium with those in plasma, but ten-fold higher. 4. Elimination of radioactivity after administration of 14C-idazoxan was via the urine and the faeces (about 75% and 20% of dose respectively) and occurred essentially in the 24 h period immediately after dosing. By 96 h after dosing, elimination was virtually complete, with less than 0.5% dose remaining in the carcasses. 5. Biotransformation was by hydroxylation at positions 6 and 7 to form phenolic metabolites, which were excreted as glucuronide and sulphate metabolites in urine, but unconjugated in faeces. Other minor metabolic routes were 5-hydroxylation or oxidative degradation of the imidazoline ring, but these pathways were of quantitatively minor importance in the rat.

Adrenergic alpha-Antagonists↗

Pharmacokinetic evaluation of UK-49,858, a metabolically stable triazole antifungal drug, in animals and humans.

The pharmacokinetic profile of UK-49,858 (fluconazole), a novel triazole antifungal agent which is being developed for oral and intravenous use, was determined in mice, rats, dogs, and humans. Comparative data following oral and intravenous administration showed that bioavailability was essentially complete in all four species. Peak concentrations in plasma of drug normalized to a 1-mg/kg dose level following oral administration, were relatively high: 0.7, 0.6, 1.1, and 1.4 micrograms/ml in mice, rats, dogs, and humans, respectively. The volumes of distribution ranged between 1.1 liter/kg in mice and 0.7 liter/kg in humans, which are approximate to the values for total body water. Whole body autoradiography studies in mice following intravenous administration of [14C]UK-49,858 demonstrated that the drug was evenly distributed throughout the tissues, including the central nervous system and the gastrointestinal tract. Plasma protein binding was low (11 to 12%) in all species. Marked species differences were observed in elimination half-lives, with mean values of 4.8, 4.0, 14, and 22 h in mice, rats, dogs, and humans, respectively. The major route of elimination of the drug was renal clearance, with about 70% of the dose being excreted unchanged in the urine in each species. Studies with [14C]UK-49,858 on metabolism and excretion (intravenous and oral) in mice and dogs showed that about 90% of the dose was recovered as unchanged drug in urine and feces, confirming the metabolic stability of the drug. This pharmacokinetic profile is markedly different from that of imidazole antifungal drugs and undoubtedly contributes to the excellent efficacy of UK-49,858 in vivo.

Adolescent↗

Pharmacokinetics of ticarcillin in man.

The excretion of radioactivity has been investigated in 3 healthy volunteers following rapid intravenous administration of 5 g of [35S]-ticarcillin. The radioactive dose was rapidly and completely excreted, since within 4 days 98.5% was recovered, 95% in the urine and 3.5% in faeces. All the urine radioactivity was accounted for as ticarcillin and its penicilloic acid. Plasma and urine samples collected from the volunteers at frequent intervals during the first 6 h of the experiment were assayed for penicillin by an automated chemical method and also for radioactivity. The results obtained by the chemical autoanalyser method were in excellent agreement with the plasma levels of radioactivity. From the data it was possible to calculate the renal clearance of the penicillin, a mean value of 104 ml/min was observed in the 3 volunteers. A further three volunteers were dosed intravenously with a 5 g bolus of non-radiolabelled ticarcillin in a cross-over study with and without predosing with probenecid. Serum samples were analysed by the chemical method for penicillin and the data subjected to pharmacokinetic analysis using a two compartment open model. The results indicate a shift of the distribution equilibrium of ticarcillin from the serum into the peripheral compartment after predosing with probenecid. Furthermore, the mean half-life of ticarcillin in the serum of the three volunteers was significantly increased from 1.3 h to 2.1 h by predosing with probenecid.

Adult↗