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Biomedical subjects

A T Elvin

Publications and source records attributed to A T Elvin.

12 recordsLinked to original sources

Pharmacokinetics of diltiazem and propranolol when administered alone and in combination.

Multiple oral doses of diltiazem (DTZ) and propranolol (PPL, 60 mg every 8 h daily for 13 doses) were administered to 14 healthy volunteers alone and in combination on three separate occasions. Serial blood samples were collected up to 24 h after dose 13 on day 5 to determine possible pharmacokinetic interactions between the two drugs. When administered alone, DTZ concentration peaked at 161.4 ng ml-1 3 h following the final dose with an elimination half-life of 6.1 h. DTZ oral clearance was 65.1 l h-1. PPL did not affect DTZ oral clearance and half-life during the combination treatment. However, DTZ tmax was extended from 2.9 h to 3.5 h (p less than 0.05) and Cmax was 144.7 ng ml-1. Unlike the parent drug DTZ, desacetyldiltiazem (DAD) plasma profile was elevated during the combination treatment. DAD Cmax and AUC both increased approximately 20 per cent (p less than 0.05). PPL pharmacokinetics were altered as well. Oral clearance of PPL decreased from 80.4 l h-1 to 61.0 l h-1 while the half-life increased from 5.9 h to 8.0 h (p less than 0.05). PPL Cmax increased from 155.1 ng ml-1 to 167.5 ng ml-1.

Adult

Effect of food coadministration on 5-aminosalicylic acid oral suspension bioavailability.

Single doses of 1 gm 5-aminosalicylic acid (5-ASA) suspension was administered to 24 healthy volunteers during both fasting and fed conditions. For subjects in a fasting state, plasma 5-ASA and acetyl 5-ASA concentrations peaked rapidly 1 hour after dosing to 14.72 micrograms/ml and 11.4 micrograms/ml, respectively. The elimination half-life of 5-ASA was 51.9 minutes, whereas the acetyl 5-ASA half-life could not be determined. A mean of 78.3% of the dose was excreted in the urine, with 5-ASA accounting for 21.2% of the dose and acetyl 5-ASA accounting for the balance. Only 11.3% of the dose was eliminated in the feces, consisting mostly of acetyl 5-ASA. Food coadministration reduced 5-ASA and acetyl 5-ASA systemic relative bioavailability to 44% and 76%, respectively, compared with the fasting treatment. Urinary excretion of the salicylates was reduced to 46.8%, and fecal salicylate elimination increased almost 100%--to 24.2% of the total dose.

Administration, Oral

Factors affecting quinidine protein binding in humans.

The free (unbound) concentration of drug in plasma is often an important determinant of pharmacological and toxicological effects. Unfortunately, studies examining the factors influencing the free fraction of quinidine in plasma have yielded inconsistent results. It is probable that differences in the type of blood collection tubes utilized and the analytical procedure employed biased some of these estimates of quinidine binding. The present study was executed in a manner free of factors now known to introduce artifacts into estimates of the free fraction of quinidine. In healthy volunteers, the free fraction of quinidine (1.0 microgram/mL) was 0.129 +/- 0.019 (mean +/- SD) and was constant throughout the therapeutic range. A high-affinity, low-capacity binding site (K = 1.17 X 10(5) M-1; nP = 3.49 X 10(-5) M) and a low-affinity, high-capacity binding site (K = 1.33 X 10(3) M-1; nP = 3.14 X 10(-3) M) were identified. The characteristics of quinidine binding in a 4.5-g/dL solution of human serum albumin (K = 3.05 X 10(3) M-1; nP = 1.36 X 10(-3) M) suggested that the low-affinity, high-capacity binding site was on this quinidine free fraction increased from 0.114 to 0.231. A lidocaine concentration of 250 micrograms/mL caused a similar increase. Patients suffering traumatic injury had a significant increase in alpha 1-acid glycoprotein concentration (197 mg/dL) and a decreased quinidine free fraction (0.075 +/- 0.019). Patients with hyperlipidemia had free fractions similar to those observed in healthy individuals (0.118 +/- 0.019).(ABSTRACT TRUNCATED AT 250 WORDS)

Binding, Competitive

Estimation of tris(2-butoxyethyl) phosphate in biological fluids: novel intersubject variability in recovery from human serum.

Tris(2-butoxyethyl) phosphate (I), a plasticizer commonly found in evacuated blood collection tubes, displaces many basic drugs from their binding sites on serum proteins and causes them to redistribute from serum into red blood cells (i.e., artificially lowering serum or plasma drug concentration). Thus, the ability to quantitate I in serum or plasma may be helpful in establishing the suitability of various lots of evacuated blood collection tubes for use in drug level monitoring and pharmacokinetic studies. In the process of establishing a minor modification of an assay which has been reported, remarkable and reproducible interindividual variability (n = 10) in the slope of standard curves was observed (range, 0.0143-0.0486). This variability appeared to be caused by differences in the recovery of I from the serum of these individuals. The source of this difference seemed to be related to serum lipoprotein concentration since the slope of standard curves was highly correlated with serum triglyceride concentration (r = -0.800) as well as with the sum of serum triglyceride and cholesterol concentrations (r = -0.881). These observations suggest that the examination of interindividual differences in the recovery of drugs and related compounds from serum should be a routine part of assay development.

Adult

Species differences in the urinary excretion of the novel primary amine conjugate: tocainide carbamoyl O-beta-D-glucuronide.

The metabolism of the antiarrhythmic drug tocainide (I) has been shown previously to occur via a novel pathway involving the addition of carbon dioxide to the primary amine nitrogen of I followed by conjugation with glucuronic acid. The product of this reaction, tocainide carbamoyl O-beta-D-glucuronide (II), the principal metabolite of I in humans, has been found to cyclize under strongly basic conditions to form 3-(2,6-xylyl)-5-methylhydantoin (III). Thus, evidence for the existence of II can be obtained by two different procedures: conversion of II to III in the presence of strong base and by hydrolysis of II with beta-glucuronidase. The principal purpose of the present investigation was to identify suitable species for studies of the mechanism involved in the formation of II, as well as to find an animal model suitable for toxicological evaluation of tocainide and structurally related compounds. Eight animal species were examined to identify those capable of metabolizing I into II. The fraction of an intraperitoneal dose excreted in urine as II was estimated by measurement of tocainide released by beta-glucuronidase mediated hydrolysis of urine and by the quantitation of III formed after alkalinization of urine samples. Urinary recovery of unchanged drug ranged from 9.5% of the dose in the gerbil to 48.7% in the cat. The percent of the dose excreted in urine as acid hydrolyzable conjugates ranged from less than 1% in the gerbil to a mean of 13% in the rabbit. Guinea pigs, dogs, cats, rabbits, and pigtail monkeys excreted amounts of II ranging from 0.2 to 2.4% of the dose. Thus, none of the species appeared to be a suitable model for the study of the mechanism of formation of II because of the quantitative insignificance of this pathway.

Animals

Effect of food on lidocaine kinetics: mechanism of food-related alteration in high intrinsic clearance drug elimination.

The effect of high-protein meal on the hepatic clearance (ClH) of intravenous lidocaine, because of its conceptual importance in understanding first-pass metabolic phenomena, was evaluated in nine healthy males. Our randomized crossover study demonstrated that mean ClH rose from 1245 to 1477 ml/min (P less than 0.03) as a result of the meal (i.e., mean area under the blood concentration-time curve decreased 20%). The magnitude of the change in clearance correlated weakly with fasting ClH (r = 0.54; slope = -0.037% per ml/min; intercept = 67.2%; P less than 0.15). In a separate study, it was observed that the meal did not influence lidocaine serum protein binding; the free fraction of lidocaine in samples drawn from the subjects in the fasting state averaged 0.305 +/- 0.027 while that from subjects who had eaten was 0.321 +/- 0.042. These data suggest that the mean clearance of lidocaine is increased by stimulation of hepatic blood flow rate. Furthermore, the magnitude of this increase is consistent with expectations based on a simple physiologic model. Thus, these data provide experimental support for the hypothesis that transient increases in splanchnic blood flow rate observed after a high-protein meal may explain apparent improvement of the oral bioavailability of model high intrinsic clearance drugs.

Adult

Tocainide conjugation in humans: novel biotransformation pathway for a primary amine.

The metabolism of tocainide, an experimental antiarrhythmic drug, was studied in humans. Urinary excretion of unchanged drug was 28-55% in 24 hr after oral dosing. Urine hydrolysis with hydrochloric acid or beta-glucuronidase increased tocainide recovery to 55-79%. Saccharo-1,4-lactone inhibited the beta-glucuronidase-mediated tocainide recovery increase. Adjustment of urine to pH 13 produced a compound identified as 3-(2,6-xylyl)-5-methylhydantoin. Evidence suggests that it was derived from the same metabolite that formed the additional tocainide after acid or beta-glucuronidase treatment. Tocainide carbamoyl O-beta-D-glucuronide is the structure proposed for the metabolite. The suggested pathway for its formation involves the addition of carbon dioxide to the amino nitrogen of tocainide followed by uridine diphosphate-glucuronic acid conjugation.

Anilides

Tocainide kinetics and metabolism: effects of phenobarbital and substrates of glucuronyl transferase.

Tocainide, a lidocaine congener with low hepatic clearance, is eliminated predominantly by formation of a novel glucuronide conjugate. This suggested the possibility of metabolic interactions with enzyme inducers or competitive substrates for glucuronyl transferase. The time course of tocainide blood concentration as well as the urinary excretion-time profiles of drug and principal metabolite (a glucuronide of tocainide carbaminic acid, TOCG) were examined in six subjects before and after 15 days on phenobarbital (100 mg/day). In another study, the effect of salicylamide and clofibrate on the time courses of tocainide and TOCG urinary excretion were examined in four of the same six subjects. After 600 mg tocainide HCl by mouth, the area under the tocainide blood concentration-time curve was 48.2 +/- 11.9 hr micrograms/ml for the control dose and 49.6 +/- 4.2 hr micrograms/ml (mean = SD) after phenobarbital. Percent of dose excreted unchanged in urine (46.0 +/- 4.9 and 43.4 +/- 5.6) and percent of dose excreted as TOCG (30.6 +/0 3.3 and 27.7 +/- 7.2) were not affected by phenobarbital (data presented as control and after phenobarbital). Because salicylamide has been reported to be a potent inhibitor of the glucuronidation of some drugs and because clofibrate yields metabolites that may be competitive inhibitors of tocainide conjugation, the two were given together with tocainide. Average percent of dose recovered in urine as unchanged tocainide in 24 hr was 26.8%, 28.3%, and 29.7% in the control, salicylamide, and clofibrate studies. The urinary excretion of TOCG was also not affected. It is concluded that under the conditions of our investigation, the principal urinary metabolite of tocainide, a glucuronide of tocainide carbaminic acid, is formed by a mechanism not subject to induction by phenobarbital or competitive inhibition by salicylamide or clofibrate.

Adult

Mechanisms of nonlinear disposition kinetics of sulfamethazine.

Five healthy male subjects received oral doses of 10 and 40 mg/kg of sulfamethazine (SMZ) approximately 14 days apart in a nonrandomized crossover study. Blood and urine samples were collected for at least 24 and 72 hr, respectively. All samples were assayed by the Bratton-Marshall procedure for SMZ and apparent N-acetylsulfamethazine (NSMZ). Recovery of total drug (SMZ + NSMZ) in urine was 88.9% following the low and 79.5% following the high dose. The low and high dose plasma concentration time curves were not readily superimposable (i.e., nonlinear kinetic behavior was observed). The data suggest that several mechanisms contribute to the nonlinearity. Specifically, a dose-dependent decrease in absorption rate displaced the plasma concentration-time curve to the right in some subjects, whereas apparent metabolic clearance (Clm) decreased with increasing dose (estimated assuming dose = amount of SMZ + NSMZ in urine to 72 hr) in all subjects (0.35 ml/min/kg for the low and 0.23 for the high dose). Still greater dose-dependent effects were found when apparent Clm of unbound drug was determined, since free fraction rose from 0.11 to 0.30 over the observed plasma concentration range. Renal clearance (ClR) of Smz appeared to be a complex function of time. In the low dose study it ranged from an average of 0.071 ml/min/kg at 2 hr to 0.146 ml/min/kg at 6 hr after drug. After the high dose comparable values were 0.083 and 0.128. Interindividual variability and pronounced nonlinear kinetics of SMZ after 40 mg/kg suggest that this dose is probably a poor choice for the determination of acetylator phenotype.

Acetylation

Kinetics of the oral antiarrhythmic lidocaine congener, tocainide.

Tocainide, a primary amine analogue of lidocaine, is effective against some experimental and clinical arrhythmias. Its pharmacokinetic behavior was studied in 6 healthy male subjects. Peak blood levels (CB max) and area under the blood concentration-time curve (AUC) were linearly related to dose with slopes of 0.0067 mcg/ml and 6 min mcg/ml per milligram of dose, respectively. Renal clearance of tocainide averaged 59 ml/min when urinary pH was uncontrolled or acidified, while it was reduced to 13 ml/min during intense sodium bicarbonate loading. Blood levels following intravenous infusion were well described by a 2-compartment open model with a volume of the central compartment of 0.92 L/kg. The t 1/2 beta was 11 hr and total body clearance was 166 ml/min. Loo-Riegelman analysis of the absorption rate did not allow unequivocal assignment of an "order" to the absorption process. Bioavailability approached 100%. Administration of drug 5 min after a test meal suppressed CB max 40% but minimally affected AUC. Approximately 50% of the drug was found to be plasma protein bound at clinically effective concentrations.

Administration, Oral