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D R Abernethy

Publications and source records attributed to D R Abernethy.

At least 19 recordsLinked to original sources

Stereoselective halofantrine disposition and effect: concentration-related QTc prolongation.

AIMS: 1) To characterize the variability of multiple-dose halofantrine pharmacokinetics over time in healthy adults, 2) to correlate the pharmacodynamic measure electrocardiographic (ECG) QT interval with (+)- and (-)-halofantrine plasma concentration and 3) to evaluate the safety and tolerance of halofantrine hydrochloride given over time to healthy adults. METHODS: Twenty-one healthy subjects were enrolled and 13 completed the study (180 days). Subjects received either 500 mg of racemic halofantrine once daily in the fasted state for 42 days, or placebo, and then halofantrine washout was documented for the following 138 days. Pharmacokinetic and pharmacodynamic (ECG QTc) measurements were obtained. RESULTS: Mean accumulation half-times (days) for halofantrine were: 7.0 +/- 4.8 [(+)-halofantrine] and 7.3 +/- 4.8 [(-)-halofantrine]. Mean steady-state concentrations were: 97.6 +/- 52.0 ng ml(-1) [(+)-halofantrine] and 48.5 +/- 20.8 [(-)-halofantrine]. Steady-state oral clearance was: 139 +/- 73 l h(-1) [(+)-halofantrine] and 265 +/- 135 l h(-1) [(-)-halofantrine]. Peak plasma concentrations of both (+)- and (-)-halofantrine were attained at 6 h and maximal ECG QTc prolongation was at 4-8 h following drug administration. Fourteen of 16 subjects who received active drug had ECG QTc prolongation that was positively correlated with both (+)- and (-)-halofantrine concentration. The five subjects who received placebo had no demonstrable change in ECG QTc throughout the study. Conclusions Halofantrine accumulates extensively and shows high intersubject pharmacokinetic variability, is associated with concentration-related ECG QTc prolongation in healthy subjects, and is clinically well tolerated in this subject group.

Adult↗

Loratadine and terfenadine interaction with nefazodone: Both antihistamines are associated with QTc prolongation.

BACKGROUND AND OBJECTIVE: Nefazodone inhibits CYP3A; therefore coadministration with CYP3A substrates such as terfenadine or loratadine may result in increased exposure to these drugs. A potential pharmacodynamic consequence is electrocardiographic QTc prolongation, which has been associated with torsade de pointes cardiac arrhythmia. Therefore a clinical pharmacokinetic-pharmacodynamic evaluation of this potential interaction was conducted. METHODS: A randomized, double-blind, double-dummy, parallel group, multiple-dose design was used. Healthy men and women who were given doses of 60 mg of terfenadine every 12 hours, 20 mg of loratadine once daily, and 300 mg of nefazodone every 12 hours were studied. Descriptive pharmacokinetics (time to maximum concentration, maximum concentration, and area under the plasma concentration-time curve) were used for the examination of interactions among the respective parent drugs and metabolites. QTc prolongation (mean value over the dosing interval) was the pharmacodynamic parameter measured. Kinetic and dynamic analysis was used for the examination of pooled concentration and QTc data with the use of a linear model. RESULTS: Concomitant nefazodone treatment markedly increased the dose interval area under the plasma concentration-time curve of both terfenadine (mean value, 17.3 +/- 8.5 ng. mL/h versus 97.4 +/- 48.9 ng. mL/h; P <.001) and carboxyterfenadine (mean value, 1.69 +/- 0.48 microg. h/mL versus 2.88 +/- 0.53 microg. h/mL; P <.001) and moderately increased the dose interval area under the plasma concentration-time curve of both loratadine (mean value, 31.5 +/- 27.9 ng. h/mL versus 43.7 +/- 25.9 ng. h/mL; P <.014) and descarboethoxyloratadine (mean value, 73.4 +/- 54.9 ng. h/mL versus 81.9 +/- 26.2 ng. h/mL; P <.002). The mean QTc was unchanged with terfenadine alone; however, it was markedly prolonged with concomitant nefazodone and terfenadine (mean [90% confidence interval] prolongation 42.4 ms [34.2, 50.6 ms]; P <.05). Similarly, the mean QTc was unchanged with loratadine alone; however, it was prolonged with concomitant nefazodone and loratadine (21.6 ms [13.7, 29.4 ms]; P <.05). Nefazodone alone did not change mean QTc. QTc was positively correlated with terfenadine plasma concentration (r (2) = 0.21; P =.0001). Similarly, QTc was positively correlated with loratadine plasma concentration (r (2) = 0.056; P =.0008) but with a flatter slope. There was no relationship between QTc and nefazodone plasma concentration during treatment with nefazodone alone (r (2) = 0.002, not significant). CONCLUSIONS: In healthy men and women, concomitant nefazodone treatment at a therapeutic dose increases exposure to both terfenadine and carboxyterfenadine. This increased exposure is associated with marked QTc prolongation, which is correlated with terfenadine plasma concentration. A similar interaction occurs with loratadine, although it is of lesser magnitude. Concomitant administration of nefazodone with terfenadine may have predisposed individuals to the arrhythmia associated with QTc prolongation, torsade de pointes, when terfenadine was available for clinical use. However, a new finding is that in the context of higher than clinically recommended daily doses (20 mg) of loratadine concomitant administration with a metabolic inhibitor such as nefazodone can also result in QTc prolongation.

Adult↗

Ca(2+) sensors of L-type Ca(2+) channel.

Ca(2+)-induced inactivation of L-type Ca(2+) is differentially mediated by two C-terminal motifs of the alpha(1C) subunit, L (1572-1587) and K (1599-1651) implicated for calmodulin binding. We found that motif L is composed of a highly selective Ca(2+) sensor and an adjacent Ca(2+)-independent tethering site for calmodulin. The Ca(2+) sensor contributes to higher Ca(2+) sensitivity of the motif L complex with calmodulin. Since only combined mutation of both sites removes Ca(2+)-dependent current decay, the two-site modulation by Ca(2+) and calmodulin may underlie Ca(2+)-induced inactivation of the channel.

Amino Acid Sequence↗

New molecular determinant for inactivation of the human L-type alpha1C Ca2+ channel.

Molecular cloning of the human fibroblast Ca2+ channel pore-forming alpha1C subunit revealed (Soldatov, 1992. Proc. Natl. Acad. Sci. USA 89:4628-4632) a naturally occurring mutation g2254 --> a that causes the replacement of the conservative alanine for threonine at the position 752 at the cytoplasmic end of transmembrane segment IIS6. Using stably transfected HEK293 cell lines, we have compared electrophysiological properties of the conventional alpha(1C,77) human recombinant L-type Ca2+ channel with those of its mutated isoform alpha(1C,94) containing the A752T replacement. Comparative quantification of steady-state availability of the current carried by alpha(1C,94) and alpha(1C,77) showed that A752T mutation prevented a large (approximately 25%) fraction of the current carried by Ca2+ or Ba2+ from fully inactivating. This mutation, however, did not appear to alter significantly the Ca2+-dependence and kinetics of decay of the inactivating fraction of the current or its voltage-dependence. The data suggests that Ala752 at the cytoplasmic end of IIS6 might serve as a molecular determinant of the Ca2+ channel inactivation, possibly regulating the voltage-dependence of its availability.

Alanine↗

A pharmacokinetic and pharmacodynamic study of the potential drug interaction between tasosartan and atenolol in patients with stage 1 and 2 essential hypertension.

The primary objective of this study was to evaluate the pharmacokinetics (PK) and pharmacodynamics (PD) of tasosartan and atenolol administered alone and concomitantly under steady-state conditions in 17 patients ages 18 to 65 years diagnosed with stage 1 to 2 essential hypertension. After a 3- to 14-day qualification period, all patients received placebo tasosartan on days--1 through 5 and 25 through 34, atenolol alone (50 mg) on days 1 through 5, atenolol (50 mg) + tasosartan (50 mg) on days 6 through 19, and tasosartan (50 mg) alone on days 20 through 24. A PK and PD evaluation of atenolol alone was performed on study day 5. On study day 19, PK and PD of both tasosartan and atenolol were assessed. PK and PD evaluation for tasosartan alone was assessed on study day 24. The coadministration of atenolol + tasosartan did not affect the pharmacokinetics of tasosartan, its major metabolite (enoltasosartan), or atenolol when compared with tasosartan or atenolol administered separately. For area under the change in diastolic blood pressure curve, the reduction was significantly greater after tasosartan + atenolol compared with that after atenolol alone (336 +/- 85 and 190 +/- 71 mmHg.24 h; p < 0.05 for combination and atenolol alone, respectively; mean +/- SEM). Combination therapy also caused a maximal reduction in diastolic blood pressure that is significantly more than with monotherapy with atenolol (-27 +/- 2 mmHg and -20 +/- 2 mmHg, respectively, p < 0.05). The additive effects of tasosartan and atenolol in decreasing diastolic blood pressure may provide a rationale for combination antihypertensive therapy.

Adolescent↗

Aging is associated with endothelial dysfunction in the human forearm vasculature.

OBJECTIVE: Our objective was to examine the role of the endothelium in maintaining vascular tone in the basal as well as in the contracted state during aging. DESIGN/PARTICIPANTS: Responses to brachial artery infusion of acetylcholine in presence and absence of NG-nitro-L-arginine methyl ester (L-NAME) and to angiotensin II were studied in 11 young and 12 old white subjects. MEASUREMENTS: Strain gauge plethysmography was used to measure forearm vascular resistance (FVR). The dose of acetylcholine at 50% maximal observed decrease in forearm vascular resistance (EC50) was significantly higher (11.0 +/- 1.59 vs 7.07 +/- .65 microg/min, respectively; mean +/-SEM; P < .05) and the FVR at maximal acetylcholine effect (Emax) remained greater (12.6 +/- 1.75 vs 7.15 +/- 1.25 mm Hg/100 mL tissue volume/min; P < .02) in old compared with young subjects. Acetylcholine effect was significantly reversed by concomitant administration of L-NAME, as indicated by the increase in EC50 (old, 20.2 +/- 3.69; young, 11.9 +/- 1.68 microg/min). RESULTS: There was no age-related difference in sodium nitroprusside-induced decrease in FVR. The EC50 and Emax for angiotensin II-mediated increase in FVR were 7.87 +/- 1.15 and 8.36 +/- 1.00 ng/min (EC50) and 5.30 +/- .67 vs 6.56 +/-1.25 mm Hg/100 mL tissue volume/min (Emax), and these were not different in old and young subjects, respectively. CONCLUSIONS: These data indicate that aging is associated with impaired endothelial- dependent vascular relaxation and that this is selective, with no age-related change in endothelial-independent vascular relaxation or angiotensin II-mediated vascular contraction.

Acetylcholine↗

Verapamil metabolite exposure in older and younger men during steady-state oral verapamil administration.

To determine the effect of age on exposure to the circulating major verapamil metabolites norverapamil, N-dealkylverapamil (D-617), and N-dealkylnorverapamil (D-620), plasma concentrations of verapamil and the three metabolites were determined during the last dose interval of a 14-day administration period of 240 mg of sustained release verapamil once daily in 11 older (aged 65-75 years) and 8 younger (20-28 years) healthy male volunteers. Area under the plasma concentration time curve (AUC) was greater for verapamil (mean +/- S. D.) (2815 +/- 733 older versus 1639 +/- 466 ng/ml.h(-1) young; P <. 0007) and norverapamil (2927 +/- 655 versus 2143 +/- 471 ng/ml. h(-1); P <.007); however, it was not significantly different for D-617 [2386 +/- 772 versus 1894 +/- 418 ng/ml.h(-1); not significantly different (NS)] and N-dealkylnorverapamil (897 +/- 366 versus 757 +/- 104 ng/ml.h(-1); NS) in older as compared with young subjects. These data indicate that impaired verapamil oral clearance previously described in older men does not result in decreased exposure to the formed major metabolites, rather there is increased exposure to norverapamil and the same or a trend toward greater exposure to D-617 as well. This suggests that in addition to the impaired clearance mechanisms for verapamil, which are thought to be primarily mediated by CYP3A, biotransformation processes distal to the formation of norverapamil and D-617 are impaired as well.

Administration, Oral↗

Impaired endothelial-dependent forearm vascular relaxation in black Americans.

BACKGROUND: Hypertension is a major cause of morbidity and mortality in the general population and has an even more significant impact on the black community in particular. Explaining the interethnic differences has been difficult. Differences in endothelial function may provide some insight into the causes of the increased incidence of hypertension in the black population versus their white cohorts. METHODS: In this study 16 black subjects and 12 white subjects received brachial artery infusions of acetylcholine (12.5, 25, and 50 microg/min) and angiotensin II (3.82, 9.55, and 19.10 ng/min). Measurement of forearm vascular resistance by venous occlusion plethysmography was conducted. RESULTS: The dose of acetylcholine at 50% maximal observed response (EC50) for black subjects was 10.6+/-2.39 microg/min and 3.3+/-0.44 microg/min in the white subjects (mean +/- SEM; P < .05). Sodium nitroprusside infusions at 1 and 2 microg/min did not cause a significant difference in response between the 2 groups. After angiotensin II was infused, forearm vascular resistance Emax was 3.42+/-0.78 mm Hg/100 mL tissue volume/min for black subjects and 3.16+/-0.99 mm Hg/100 mL tissue volume/min for white subjects. CONCLUSION: This study shows impaired endothelial-dependent forearm vascular relaxation as measured by decreased acetylcholine response in black subjects. This impairment in endothelial function may contribute to the increased incidence of hypertension in black subjects compared with white subjects. Mechanisms for this finding warrant further investigation.

Acetylcholine↗

Aging effects on drug disposition and effect.

Drug therapy in older individuals has generally been summarized in the phrase "start low and go slow". As better understanding of the effects and disposition of drugs in the aged has evolved, the concept of "therapeutic burden" which encompasses the number of concurrent medications as well as the dose of medications administered has assumed considerable importance. Epidemiologic and surveillance data demonstrate that drug therapy, in addition to offering improvement in quality and quantity of life, is also a major source of morbidity for the aged patient. These data and advances in understanding the pathophysiology of aging for individual patients which contribute to understanding of age related changes in drug response are discussed.

Aging↗

Ticlopidine inhibits phenytoin clearance.

Because cases of phenytoin toxicity during concomitant ticlopidine therapy have been reported, we investigated the effects of multiple doses of ticlopidine on phenytoin pharmacokinetics in six patients receiving phenytoin monotherapy. Two steady-state dosing rate and serum phenytoin minimum concentration (Cmin) pairs were obtained for each patient administered oral phenytoin alone, then phenytoin plus 250 mg ticlopidine twice daily. All patients had serum Cmin ticlopidine values of 0.06 to 0.25 microg/mL when receiving ticlopidine. Individual pharmacokinetic parameters for phenytoin were calculated. The Michaelis-Menten constant (Km) was determined as the slope and maximum velocity (Vmax; equivalent to the maximal rate of elimination or the maximum daily dose that can be metabolized) as the y-intercept of the linear Michaelis-Menten plot. Mean phenytoin Km significantly increased from 5.8 to 12.3 during ticlopidine coadministration compared with administration of phenytoin alone (P = .02). Mean phenytoin Vmax was not significantly changed by the coadministration of ticlopidine. These data indicate that ticlopidine inhibits the clearance and alters the clinical pharmacokinetics of phenytoin so that dosage adjustment of phenytoin should be considered when ticlopidine is coadministered. The results are consistent with previous human liver microsome findings that ticlopidine is a potent inhibitor of CYP2C19, a P450 isozyme that is significantly responsible for phenytoin metabolism.

Administration, Oral↗

Pharmacokinetics and clinical effectiveness of methylphenidate.

Methylphenidate is prescribed for over 90% of children in the US diagnosed as having attention-deficit hyperactivity disorder (ADHD). Although ADHD has been widely studied, the use of methylphenidate in ADHD still poses a number of unresolved questions, including its pharmacodynamic characteristics (drug concentration-effect relationship) and the effect of long term treatment on the patient's psychopathology later in life. The objective of this review is to provide an analysis of the pharmacokinetic-pharmacodynamic properties and therapeutic effectiveness of methylphenidate that may help to answer some of these questions. Methylphenidate has 2 chiral centres, but the drug used in therapy comprises only the threo pair of enantiomers. d-threo-Methylphenidate is more potent than the l-enantiomer. Methylphenidate is administered as a racemic mixture that undergoes stereoselective clearance. Methylphenidate is a short-acting stimulant with a duration of action of 1 to 4 hours and a pharmacokinetic half-life of 2 to 3 hours. Maximum drug concentration after oral administration occurs at about 2 hours. Methylphenidate is absorbed well from the gastrointestinal tract and easily passes to the brain. Methylphenidate is efficacious for short term treatment for children with ADHD. Its mechanism of action is not understood, but may be associated with its influence on multiple neurotransmitters, especially the release and reuptake of dopamine in the striatum. There is marked individual variability in the dose-response relationship for methylphenidate, and therefore dosage must be titrated for optimal effect and avoidance of toxicity in each child. It is unclear whether this variability is predominantly pharmacokinetic or pharmacodynamic. If variable stereoselective metabolism occurs clinically, therapeutic drug monitoring of methylphenidate will require the application of chiral assay methods for the analysis of the active component, d-threo-methylphenidate. It is difficult to predict which children will have a favourable response to methylphenidate. Nonetheless, several studies have been published linking the severity of ADHD in children with improved clinical response to methylphenidate. The use of individual single-blind medication trials may be a practical solution to this problem. Additionally, the targeted condition warrants careful consideration, since different conditions (e.g. misbehaviour or poor academic performance) may require different regimens. Further studies of the relationship between the pharmacokinetic and pharmacodynamic properties of methylphenidate are required to allow the development of optimal dosage regimens.

Attention Deficit Disorder with Hyperactivity↗

Method for the determination of 5,5-diphenylbarbituric acid and its separation from 1,3-dimethoxymethyl-5,5-diphenylbarbituric acid in plasma by high-performance liquid chromatography.

A method is described for the measurement of 5,5-diphenylbarbituric acid in plasma using high-performance liquid chromatography with UV detection. Briefly, the compounds are separated on a C18 reversed-phase column using a mobile phase of 50 mM sodium acetate (pH 4.5) and methanol. The flow-rate is 1.0 ml/min and 25 microl are injected and detected at 215 nm. The method is specific and sensitive in the range of concentrations tested, with a limit of quantification of 0.25 microg/ml. The calibration curves are linear for concentrations between 0.25 and 10 microg/ml. Intra-day and inter-day coefficients of variation are less than 8.5 and 10.5%, respectively, over the linear range. Intra-day and inter-day bias are less than 7.0 and 8.0%, respectively. A pharmacokinetic study conducted in male Beagle dogs administered 10 mg/kg of 1,3-dimethoxymethyl-5,5-diphenylbarbituric acid or 8 mg/kg of 5,5-diphenylbarbituric acid intravenously demonstrates the utility of this method.

Animals↗

Glutathione is a cofactor for H2O2-mediated stimulation of Ca2+-induced Ca2+ release in cardiac myocytes.

Reactive oxygen species are known to cause attenuation of cardiac muscle contraction. This attenuation is usually preceded by transient augmentation of twitch amplitude as well as cytosolic Ca2+. The present study examines the role of an endogenous antioxidant, glutathione in the mechanism of H2O2-mediated augmentation of Ca2+ release from the sarcoplasmic reticulum. Whole-cell patch-clamped single rat ventricular myocytes were dialyzed with the Cs+-rich internal solution containing 200 microM fura-2 and 2 mM glutathione (reduced form). After equilibration of the myocyte with intracellular dialyzing solution, Ca2+ current-induced Ca2+ release from the sarcoplasmic reticulum was monitored. Rapid perfusion with H2O2 (100 microM or 1 mM) for 20 s inhibited Ca2+ current, but enhanced the intracellular Ca2+ transients for 3-4 min. Thus, the efficacy of Ca2+-induced Ca2+ release mechanism was augmented in 71% of myocytes (n = 7). This enhancement ranged between 1.5- to threefold as the concentrations of H2O2 were raised from 100 microM to 1 mM. If glutathione were excluded from the patch pipette or replaced with glutathione disulfide, the enhancement of Ca2+-induced Ca2+ release was seen in only a minority (20%) of the myocytes. H2O2 exposure did not increase the basal intracellular Ca2+ levels, suggesting that the mechanism of H2O2 action was not mediated by inhibition of the sarcoplasmic reticulum Ca2+ uptake or activation of passive Ca2+ leak pathway. H2O2-mediated stimulation of Ca2+-induced Ca2+ release was also observed in myocytes dialyzed with dithiothreitol (0.5 mM). Therefore, reduced thiols support the action of H2O2 to enhance the efficacy of Ca2+-induced Ca2+ release, suggesting that redox reactions might regulate Ca2+ channel-gated Ca2+ release by the ryanodine receptor.

Animals↗