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Biomedical subjects

B J Cusack

Publications and source records attributed to B J Cusack.

35 records · Page 2Linked to original sources

Hepatic drug metabolism and aging.

Although there is considerable variation in the effect of age on drug biotransformation, the metabolism of many drugs is impaired in the elderly. Age-related physiological changes, such as a reduction in liver mass, hepatic metabolising enzyme activity, liver blood flow and alterations in plasma drug binding may account for the decreased elimination of some metabolised drugs in the elderly. It is difficult, however, to separate an effect of aging from a background of marked variation in the rate of metabolism due to factors such as individual metabolic phenotype, environmental influences, concomitant disease states and drug intake. The prevailing data suggest that initial doses of metabolised drugs should be reduced in older patients and then modified according to the clinical response. In most studies the elderly appear as responsive as young individuals to the effects of compounds which induce or inhibit the activity of cytochrome P450 isozymes. Concurrent use of other agents, which induce or inhibit drug metabolism, mandates dose adjustment as in younger patients. Many questions remain unanswered. For instance, limitations of in vitro studies prevent any firm conclusion about changes in hepatic drug metabolising enzyme activity in the elderly. With aging, some pathways of drug metabolism may be selectively affected, but this has not been adequately scrutinised. The possibility that metabolism of stereoisomers may be altered in the elderly has not been adequately tested. The effect of aging on the distribution of polymorphic drug metabolism phenotypes is still not established, despite potential implications for disease susceptibility and survival advantage.

Aging↗

Problems in the use of anticancer drugs in the elderly.

The elderly represent a special challenge to the physician in providing effective cancer chemotherapy. Though they represent the majority of the patients who eventually will need such therapy, until recently little information was available on its use in this population. There are variable age changes in pharmacokinetics, particularly in renal elimination of drug and metabolites, which may necessitate dosage amendment. Concomitant renal impairment or hepatic disease may further alter drug disposition. Other common pre-existing conditions in the elderly also may increase susceptibility to adverse drug effects. For example, the risk of toxicity from doxorubicin and vincristine can be increased in the presence of pre-existing cardiac disease or peripheral neuropathy, respectively. Because of the variability of the ageing process and the effects of concomitant disease, each patient must be assessed on an individual basis. Furthermore, in treatment planning, not only age and health status but also the patient's attitude and the tumour type are important considerations. Chemotherapy for most malignancies appears beneficial and well tolerated in the elderly, and there is little evidence that age per se is a determinant of chemotherapy regimen selection and dosing. The exceptions may be the curable haematological malignancies for which chemotherapy seems less efficacious and more toxic in geriatric than younger patients. The complications of chemotherapy such as vomiting, mucositis and bone marrow depression must be anticipated, diagnosed early and managed aggressively in aged patients. Guidelines are provided to help manage these problems. Chemotherapy in the elderly is still at a relatively early stage of development. Further research is required to establish optimal regimens for use in this population, in particular for curable haematological neoplasms.

Aged↗

Effect of phenytoin on the pharmacokinetics of doxorubicin and doxorubicinol in the rabbit.

Doxorubicin is metabolized extensively to doxorubicinol by the ubiquitous aldoketoreductase enzymes. The extent of conversion to this alcohol metabolite is important since doxorubicinol may be the major contributor to cardiotoxicity. Aldoketoreductases are inhibited in vitro by phenytoin. The present study was conducted to examine the effect of phenytoin on doxorubicin pharmacokinetics. Doxorubicin single-dose pharmacokinetic studies were performed in 10 New Zealand White rabbits after pretreatment with phenytoin or phenytoin vehicle (control) infusions in crossover fashion with 4-6 weeks between studies. Infusions were commenced 16 h before and during the course of the doxorubicin pharmacokinetic studies. Phenytoin infusion was guided by plasma phenytoin estimation to maintain total plasma concentrations between 20 and 30 micrograms/ml. Following doxorubicin 5 mg/kg by i.v. bolus, blood samples were obtained at intervals over 32 h. Plasma doxorubicin and doxorubicinol concentrations were measured by HPLC. The mean plasma phenytoin concentrations ranged from 17.4 to 33.9 micrograms/ml. Phenytoin infusion did not alter doxorubicin pharmacokinetics. The elimination half-life and volume of distribution were almost identical to control. Clearance of doxorubicin during phenytoin administration (60.9 +/- 5.8 ml/min per kg, mean +/- SE) was similar to that during vehicle infusion (67.5 +/- 5.4 ml/min per kg). Phenytoin administration was associated with a significant decrease in doxorubicinol elimination half-life from 41.0 +/- 4.8 to 25.6 +/- 2.8 h. The area under the plasma concentration/time curve (AUC) for doxorubicinol decreased significantly from 666.8 +/- 100.4 to 491.5 +/- 65.7 n.h.ml-1. These data suggest that phenytoin at clinically relevant concentrations does not alter the conversion of doxorubicin to doxorubicinol in the rabbit. The reduction in the AUC for doxorubicinol caused by phenytoin appears to be due to an increased rate of doxorubicinol elimination. Phenytoin or similar agents may have the effect of modifying doxorubicinol plasma concentrations by induction of doxorubicinol metabolism rather than by inhibition of aldoketoreductase enzymes.

Alcohol Dehydrogenase↗

Doxorubicin cardiotoxicity may be caused by its metabolite, doxorubicinol.

Doxorubicin (former generic name, adriamycin), a highly effective anticancer drug, produces cardiotoxicity, which limits its therapeutic potential. The mechanism of this cardiotoxicity has remained elusive. Our data suggest that this toxicity could involve doxorubicinol, the primary circulating metabolite of doxorubicin. Doxorubicinol was markedly more potent than doxorubicin at compromising both systolic and diastolic cardiac function. Similarly, doxorubicinol was much more potent than doxorubicin at inhibiting the calcium pump of sarcoplasmic reticulum [ATP phosphohydrolase (Ca2+-transporting), EC 3.6.1.38], the Na+/K+ pump of sarcolemma [ATP phosphohydrolase (Na+/K+-transporting), EC 3.6.1.37], and the F0F1 proton pump of mitochondria [ATP phosphohydrolase (H+-transporting, EC 3.6.1.34]. Our finding that this highly toxic metabolite was produced by cardiac tissue exposed to doxorubicin suggests that doxorubicinol could accumulate in the heart and contribute significantly to the chronic cumulative cardiotoxicity of doxorubicin therapy. Our observation that doxorubicin was more potent than doxorubicinol in inhibiting tumor cell growth in vitro suggests that the cardiotoxicity of doxorubicin is dissociable from its anticancer activity.

Animals↗

Aging and drug interactions. II. Effect of phenytoin and smoking on the oxidation of theophylline and cortisol in healthy men.

The effect of age on the induction of theophylline metabolism by phenytoin was examined in healthy young and old male cigarette smokers (greater than or equal to 20 cigarettes/day) and nonsmokers. Two single dose studies of theophylline pharmacokinetics were performed, one as a base-line control and another after a 2-week course of phenytoin. Phenytoin was administered as an i.v. loading dose followed by oral ingestion. The dose was adjusted to achieve total phenytoin plasma concentrations within a low therapeutic range (10-13 micrograms/ml). Free phenytoin concentrations in plasma were slightly higher in old (nonsmokers 0.84 +/- 0.13 micrograms/ml; smokers 0.89 +/- 0.12 micrograms/ml) than in young (nonsmokers 0.75 +/- 0.10 micrograms/ml; smokers 0.72 +/- 0.10 micrograms/ml) subjects, but the differences were not significant. Base-line plasma theophylline clearance was 30% lower in old compared with young nonsmokers (34.0 +/- 2.5 vs. 48.8 +/- 2.6 ml/hr/kg, P less than .001), whereas the small age difference between old and young smokers (86.0 +/- 8.4 vs. 72.4 +/- 8.0 ml/hr/kg) was not significant. Smokers had higher values of theophylline clearance than nonsmokers regardless of age. Half-life was prolonged in old nonsmokers in proportion to decreased clearance, despite a slight decrease in volume of distribution. Phenytoin induced theophylline metabolism to an equal degree in both age groups and in both smokers (young 42.6 +/- 6.5%; old 47.3 +/- 3.6%) and nonsmokers (young 56.3 +/- 8.8%; old 45.4 +/- 6.4%). The magnitude of its induction in smokers was additive to that of cigarette smoking. Old age was associated with a modest selective reduction in N-demethylated metabolic pathways to 3-methylxanthine and 1-methyluric acid, whereas smoking preferentially induced the formation of these products. Phenytoin increased the production of all theophylline primary metabolites to an equal degree in both old and young subjects. The urinary excretion of 6 beta-hydroxycortisol was not influenced significantly by age or smoking and increased 2- to 3-fold in all subject groups with phenytoin. These results confirm earlier observations of a reduction in basal oxidative capacity in elderly nonsmoking males. They also demonstrate that the ability to induce the metabolism of theophylline by smoking or phenytoin and the ability to induce the metabolism of cortisol by phenytoin are maintained in old age.

Adult↗

Evaluation of a proposed method for phenytoin maintenance dose prediction following an intravenous loading dose.

A large clinical study, designed to investigate the induction of theophylline metabolism by phenytoin, provided the opportunity to test a previously proposed method for estimating dose requirements of phenytoin. This method involves prediction of the oral maintenance dosage from data obtained following the administration of an intravenous loading dose. In 30 subjects, trough plasma concentration at steady-state were 12.0 +/- 4.9 micrograms X ml-1 (mean +/- SD) and differed by -2.7 +/- 39.3% from a mean target plasma concentration of 12.5 +/- 1.5 micrograms X ml-1. A Bayesian regression programme was used to forecast an estimate of each subject's individual pharmacokinetics. These were then used to predict the steady-state plasma concentrations which would be expected from a standard dosing regimen (4 mg per kg per day). When compared to the results expected from the use of this standard dosage, the proposed method gave acceptable steady-state plasma phenytoin concentrations with significant reductions in deviations from target concentrations. This method for the rapid individualization of phenytoin dosage requirements provides an improvement over more traditional methods of choosing an arbitrary dose adjusted for body weight followed by dosage adjustments based on achieved plasma concentration.

Adult↗

Cigarette smoking and theophylline metabolism: effects of phenytoin.

The induction of theophylline clearance by phenytoin was investigated in 12 young male subjects (six nonsmokers and six cigarette smokers). Each subject received intravenous theophylline to determine baseline pharmacokinetics. This was followed by an intravenous loading dose of phenytoin sodium and oral maintenance dosing for 2 weeks, after which the intravenous theophylline study was repeated. Phenytoin concentrations were similar in nonsmokers (10.8 +/- 2.0 micrograms/ml) and smokers (11.5 +/- 0.9 micrograms/ml). Control theophylline elimination half-life was 35% less and clearance 88% greater in smokers than in nonsmokers. The proportionate changes in half-life (26.8% +/- 5.6% in smokers and 25.8% +/- 3.5% in nonsmokers) and clearance (48.0% +/- 10.1% in smokers and 39.7% +/- 7.2% in nonsmokers) as the result of phenytoin induction were similar in both groups. These results demonstrate that the induction of theophylline clearance by phenytoin is additive to that caused by cigarette smoking and provide support for the suggestion that theophylline metabolism is influenced by multiple polymorphisms.

Adult↗

Additive effect of theophylline on the cardiac response to isoproterenol.

To ascertain the effect of theophylline on the cardiac chronotropic response to beta-adrenergic stimulation, isoproterenol dose-response curves in healthy young subjects were compared during saline and theophylline maintenance infusions. Each study was repeated 1 to 3 weeks later to evaluate reproducibility. Neither the dose of isoproterenol required to raise the heart rate by 25 bpm (2.32 +/- 0.81 vs. 1.55 +/- 0.46 micrograms on day 1 and 1.28 +/- 0.22 vs. 1.27 +/- 0.25 micrograms on day 2) nor the slopes of the dose-response curves were affected by theophylline. Higher heart rates were observed after isoproterenol bolus dosing during theophylline than during saline infusion because of additive chronotropic effects of theophylline and isoproterenol. Since theophylline does not interact in a synergistic fashion with isoproterenol, phosphodiesterase inhibition appears to be an unlikely mechanism of the chronotropic effect of methylxanthines at therapeutic concentrations.

Adult↗

Phenytoin pharmacokinetics in the rabbit: evidence of rapid autoinduction.

Phenytoin pharmacokinetics were studied during continuous intravenous infusion in 12 New Zealand white rabbits. The mean clearance at 40 hours (5.1 +/- 1.1 ml/min per kg; mean +/- SE) was significantly greater than that at 16 hours (3.1 +/- 0.5 ml/min per kg; p less than 0.05). These data suggest that with chronic administration, autoinduction of metabolism results in an increase in the rate of phenytoin clearance in the rabbit.

Animals↗

Aging and drug interactions. I. Effect of cimetidine and smoking on the oxidation of theophylline and cortisol in healthy men.

The effect of age on the inhibition of theophylline metabolism was investigated in young and old male cigarette smokers (greater than 20 cigarettes/day) and nonsmokers by stable isotope methodology. Subjects received oral theophylline (510 mg/day) for 14 days and cimetidine (1200 mg/day) during days 1 to 7 or 8 to 14. On days 7 and 14, a tracer dose (10 mg i.v.) of stable isotope-labeled theophylline was administered with the oral dose of theophylline. Plasma clearance in old nonsmokers was 33% less than in young nonsmokers. Values in both young and old smokers were not significantly different but exceeded those in non-smokers. Because volume of distribution was similar in all groups, the half-lives were prolonged in proportion to the decrease in clearance. Although smoking was associated with selective induction of the formation of 3-methylxanthine and 1-methyluric acid, the effect of cimetidine was nonselective and the proportionate inhibitory effects of cimetidine on theophylline metabolism did not differ with age or smoking status. The excretion of 6 beta-hydroxycortisol was similar in smokers and non-smokers but was slightly inhibited by cimetidine. Cimetidine also reduced the interindividual variation in the absorption of theophylline. Despite a reduction in the basal oxidative capacity in healthy male nonsmokers, these results indicate that both the induction of theophylline metabolism by smoking and the inhibition of theophylline metabolism by cimetidine are preserved in old age.

Adult↗

Therapeutic concentrations of theophylline and enprofylline potentiate catecholamine effects and inhibit leukocyte activation.

Methylxanthines are primary agents used in treatment of hypersensitivity disease. Because polymorphonuclear leukocyte (PMN) activation is associated with generation of potent inflammatory mediators, xanthine effects on the PMN respiratory burst were studied. Enprofylline, a xanthine with important therapeutic potential, does not antagonize adenosine and was contrasted with theophylline. Although enprofylline was more potent at low concentrations, both drugs exhibited dose-dependent inhibition of PMN activation at concentrations greater than 10 mumol/L (1.8 micrograms/ml). Oxygen metabolite generation was decreased by 30% to 40% at therapeutic drug concentrations and by 85% at 1 mmol/L of theophylline. Inhibition by isoproterenol or prostaglandin E2 but not dibutyryl cAMP was potentiated by either xanthine. Isoproterenol effects were also increased when isoproterenol was evaluated in whole blood specimens obtained from subjects after a loading dose of aminophylline. Although these results were most compatible with cAMP phosphodiesterase inhibition, other commonly proposed mechanisms of methylxanthine activity were also studied. Theophylline but not enprofylline blocked adenosine inhibition of PMN activation. Neither xanthine shifted the calcium dose-response when PMNs were activated with calcium ionophore. Because oxygen metabolites generated by the FMN are mediators of inflammation and hypersensitivity, direct inhibition of PMN activation as well as potentiation of catecholamine activity may be important therapeutic effects of theophylline and enprofylline.

1-Methyl-3-isobutylxanthine↗

Theophylline clearance in patients with severe chronic obstructive pulmonary disease receiving supplemental oxygen and the effect of acute hypoxemia.

The effect of hypoxemia on the disposition of theophylline was examined in 10 stable patients with chronic obstructive pulmonary disease (COPD) receiving chronic theophylline and supplemental home oxygen therapy. Pharmacokinetics after intravenous theophylline were estimated on the second day of supplemental oxygen (PaO2, 69 +/- 4 mmHg; mean +/- SEM) and on the second day of room air breathing (PaO2, 43 +/- 3) using a randomized cross-over design. On each occasion stable isotope-enriched theophylline (10 mg, m/z 183) was administered intravenously along with the regular oral dose of theophylline (m/z 180). Concentrations of both forms of theophylline in plasma samples obtained over 24 h were measured using mass spectrometry. Theophylline clearance during oxygen therapy (0.048 +/- 0.005 L/h/kg) was similar to that during room air breathing (0.050 +/- 0.004 L/h/kg). Values for elimination half-life (7.6 +/- 0.8 versus 6.8 +/- 0.6 h) and volume of distribution at steady state (0.450 +/- 0.021 versus 0.429 +/- 0.024 L/kg) were also unchanged. The volume of distribution of theophylline was inversely related to arterial pH during oxygen therapy (pH range, 7.32 to 7.44) and during room air breathing (pH range, 7.33 to 7.47). Although hypoxemia does not alter theophylline clearance in patients with COPD, theophylline loading doses may need adjustment according to arterial pH because of an effect on volume of distribution.

Administration, Oral↗

Cigarette smoking and theophylline metabolism: effects of cimetidine.

The inhibition of theophylline metabolism by cimetidine was investigated in young male cigarette smokers (greater than 20 cigarettes/day) and nonsmokers by stable isotope methodology. Subjects received oral theophylline (510 mg/day) for 14 days and cimetidine (1200 mg/day) over days 1 to 7 or 8 to 14. On days 7 and 14, a tracer dose (10 mg) of stable isotope-labeled theophylline was injected intravenously with the oral dose of theophylline. Serial plasma samples were then obtained for 24 hours and both molecular forms of theophylline were assayed by mass spectrometry after purification by HPLC. Theophylline bioavailability, volume of distribution, and protein binding were of the same order in both groups and were not affected by cimetidine. Although the basal theophylline elimination rate constant was 46% greater and clearance was 54% greater in smokers than in nonsmokers, the proportionate changes in steady-state plasma concentrations, t1/2, and clearance due to cimetidine were much the same in both groups. Plasma thiocyanate concentrations were higher in smokers than in nonsmokers and were related to theophylline clearance. Our findings indicate that cimetidine inhibits theophylline metabolism to a similar extent in both smokers and nonsmokers. Determination of plasma thiocyanate levels may be valuable in the prediction of theophylline clearance.

Administration, Oral↗

Aging and the response to inhibition and induction of theophylline metabolism.

The twofold to threefold higher incidence of adverse drug reactions in elderly as opposed to younger patients is due mainly to more severe disease and the requirement for more complex drug treatment regimens. The incidence of adverse drug reactions increases with the number of prescribed drugs. Because of multiple drug use by the elderly, the potential for drug interactions is greater in this patient group. Surprisingly, the effect of age on the clinical pharmacology of drug interactions has not been thoroughly investigated. Our studies have shown that cimetidine inhibits and phenytoin induces the metabolism of theophylline to a similar extent in healthy male nonsmokers and smokers. Preliminary analysis of the results of a study to investigate the inhibition of theophylline metabolism by cimetidine and ciprofloxacin administered in combination to healthy male and female nonsmokers also does not show an age difference in response. Additional careful studies are needed to evaluate further the pharmacology and clinical importance of pharmacokinetic and pharmacodynamic drug interactions in the elderly.

Adult↗

Salicylate intoxication in the elderly. Recognition and recommendations on how to prevent it.

Aspirin (acetylsalicylic acid) and its salicylate derivatives are effective antipyretic, analgesic, and anti-inflammatory agents that are still very widely used by the elderly despite the advent of newer, potentially safer nonsteroidal anti-inflammatory drugs (NSAIDs). However, none of the new NSAIDs have been proven to be more effective than aspirin or salicylic acid. Chronic salicylate intoxication which is most common in the elderly, may occur with therapeutic doses. Increased toxicity in older patients often appears due to inadvertent overdosage. Dual prescribing or additional use of nonprescription salicylates are some causes of unwitting long term toxicity. According to some studies, systemic clearance of salicylate (mainly by hepatic metabolism) is reduced with age, as is renal elimination. These changes are of increased importance in the elderly using high therapeutic doses of salicylates when metabolism is saturated and more unchanged drug is available for renal excretion. In the face of renal impairment, the risk of toxicity is increased. The diagnosis of acute salicylate intoxication generally does not pose diagnostic problems. Patients often present with a history of intentional overdose, with hyperventilation, fever, and nausea. The diagnosis can be confirmed by measuring serum salicylate concentrations. Chronic intoxication often poses a diagnostic dilemma with atypical presentations mimicking other disease states such as diabetic ketoacidosis, delirium, cerebrovascular accident, myocardial infarction or cardiac failure. The diagnosis of salicylate intoxication should be borne in mind when an older patient presents with recent deterioration in activities of daily living with no known cause. Plasma salicylate concentrations should be measured if salicylate intoxication is suspected, even if there is no documented history of salicylate ingestion. The risk of salicylate nephrotoxicity is also increased with age, and upper gastrointestinal haemorrhage is associated with increased mortality in older age groups. Treatment of acute toxicity consists of prompt recognition of salicylate intoxication, use of activated charcoal, correction of acid-base abnormalities, general supportive measures, and if concentrations are extremely high, dialysis can be effectively used. Chronic toxicity, which can occur even with marginally high salicylate concentrations, is treated with drug withdrawal and supportive therapy. Chronic salicylate toxicity can be averted by prescription of conservative doses of drug, avoidance of concomitant use of different salicylate preparations, and therapeutic monitoring to guide dosage. Renal function should be monitored to detect nephrotoxicity from chronic salicylate therapy. Patients should be regularly screened for evidence of gastrointestinal bleeding.(ABSTRACT TRUNCATED AT 400 WORDS)

Aged↗