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A selected ion monitoring method for glutethimide and six metabolites: application to blood and urine from humans intoxicated with glutethimide.

A method employing selected ion monitoring for the analysis of glutethimide and six of its metabolites has been developed. Hydroxylated metabolites analyzed as trifluoroacetates, included 4-hydroxyglutethimide, (1-hydroxyethyl)glutethimide and p-hydroxyglutethimide. The unchanged drug, 3-dehydroglutethimide, desethylglutethimide and the internal standard, [2H5]glutethimide, were chromatographed underivatized on OV-225. The assay was used to measure drug and metabolites in the plasma and urine of patients intoxicated with glutethimide. High levels (e.g. 20--35 microgram ml-1) of unconjugated 4-hydroxyglutethimide, an active metabolite, were found in all patients at a time when levels of unchanged drug were lower and declining. Other unconjugated and conjugated metabolites were found in relatively low concentrations in the plasma (i.e. less than 4 microgram ml-1). The major urinary metabolites were conjugates of 4-hydroxyglutethimide and (1-hydroxyethyl)glutethimide. The unchanged drug and other conjugated and unconjugated metabolites were found in lower amounts in the urine. Normal plasma half-lives of glutethimide and the relatively small amounts in urine of unchanged drug and unconjugated metabolites indicated that drug elimination was not markedly impaired in the intoxicated patients.

Adult

Glutethimide and 4-OH glutethimide: pharmacokinetics and effect on performance in man.

The relationship between the plasma concentration of glutethimide (G) and the change from baseline of the standard error of the mean (deltaSDE) of a tracking test was determined in 7 volunteers. There was excellent positive correlation (r = 0.91) between log G and log deltaSDE and good correlation between log G and deltaSDE (r = 0.77). The metabolite, 4 hydroxyglutethimide, did not contribute significantly to the effect of G administered in therapeutic doses. No trend in performance versus level was found with 5 other tests (finger tapping, card sorting, digit substitution, subtraction, and subjective perception of drowsiness). Although the numbers were small, when the volunteers were divided into smokers (3) and nonsmokers (4) G decreased tracking ability to a greater extent in smokers than in nonsmokers.

Adult

Correlates of outcome following acute glutethimide overdosage.

Potential predictors of outcome following acute glutethimide overdosage were assessed in 63 patients hospitalized with this diagnosis at a large urban medical center between 1962 and 1975. Their mean age was 34 years (range, 15 to 84 years) and 62% were female. Assisted ventilation was required in 59% of cases, and 32% developed hypotension. Six patients died, including all three aged 60 years or older. Multiple regression analysis confirmed that age was the major identifiable determinant of survival, regardless of other factors. Among identifiable determinants of coma grade, glutethimide dose, glutethimide plasma concentration, and coingestion of barbiturates were the most important. An ingested dose of 10 g or more, or a plasma concentration exceeding 30 microgram/ml, was almost always associated with deep coma. However, a relatively small ingested dose or a low plasma level by no means ruled out development of serious intoxication, particularly in those patients who also ingested barbiturates. Thus elderly individuals are at high risk for fatal outcome following glutethimide overdosage and should receive priority for intensive care and monitoring. Glutethimide dose, plasma concentration, and history of coingestion of barbiturates are of value in predicting development of deep coma. These items of information should be obtained on admission whenever possible.

Adolescent

Neurologic and electroencephalographic correlates in glutethimide intoxication.

Neurologic and electroencephalographic (EEG) examinations were performed every two hours during a case of severe glutethimide intoxication resulting from the acute ingestion of at least 15 grams of glutethimide. Neurologic data were reduced to 10 measurements of brainstem function and plotted as an index that varied cyclically in amplitude during the clinical course. Electroencephalographic data were computer-processed by power spectral methods and related to the brainstem function index. Good positive correlation existed between the frequency and reactivity of EEG activity and the level of brainstem function as reflected in the index. The cyclic and, sometimes, unilateral nature of the clinical findings previously reported in glutethimide coma was confirmed and seen to be reflected in the EEG. The present case also indicates that, in the absence of cerebral ischemia or hypoxemia secondary to cardiopulmonary depression, complete clinical recovery from glutethimide-induced coma is possible no matter how severe the presenting neurologic and EEG signs.

Brain Stem

Identification and synthesis of a methylated catechol metabolite of glutethimide isolated from biological fluids of overdose victims.

Urine samples from victims severely intoxicated by glutethimide were hydrolyzed enzymatically. TLC, GLC, and mass spectral analyses revealed a methylated catechol metabolite of the parent drug. Two synthetic pathways are described for the preparation of 2-ethyl-2-(3-methoxy-4-hydroxyphenyl)glutarimide and 2-ethyl-2-(3-hydroxy-4-methoxyphenyl)glutarimde. Comparisons of GLC and mass spectral data to a compound isolated from the body fluids of glutethimide overdose victims conclusively identified a new 3-methoxy-4-hydroxyphenyl metabolite of glutethimide in humans.

Catechols

Enhancement of hepatic drug metabolism by glutethimide in patients with liver disease.

A controlled study of the effects of glutethimide on antipyrine metabolism was performed to ascertain how patients with varying degrees of liver damage responded to microsomal enzyme inducing agents. The administration of 250mg glutethimide daily for one week resulted in significant enhancement of antipyrine metabolism in 4 patients with compensated cirrhosis and 5 patients with features of hepatic failure as well as 7 control subjects without liver disease. Even patients with very severe liver disease did undergo microsomal enzyme induction. Changes in antipyrine half-life after glutethimide were directly proportional to the original antipyrine half-life so that the greatest absolute alterations due to enzyme induction occurred in patients with the most severely impaired hepatic function. These results indicate that not only is antipyrine metabolism severely impaired in patients with liver failure, but elimination rates are markedly altered by enzyme inducing agents. Thus, although these results cannot be extrapolated to all inducers of hepatic microsomal enzymes nor to all drugs metabolized by microsomal oxidases, it is suggested that safe and effective management of drug therapy in these patients requires measurement of plasma levels.

Adult

Aminoglutethimide and glutethimide: effects on 18-hydroxycorticosterone biosynthesis by human and sheep adrenals in vitro.

The conversion of [1,2-3H]corticosterone to 18-hydroxycorticosterone in vitro was studied on human and animal adrenal tissue homogenates. Human adrenals were surgically resected from a patient with Cushing's disease. Sheep adrenal homogenates were prepared from the pooled glands of 20 animals. Incubations supplemented with a NADPH generating system were performed in order to evaluate the effect of aminoglutethimide and its closely related compound glutethimide on corticosterone 18-hydroxylation in vitro. Increasing concentrations of the two drugs were assayed on both human and animal adrenal homogenates. Aminoglutethimide was clearly found to inhibit corticosterone 18-hydroxylation in sheep adrenal homogenates as a 72.6% inhibition occurred in the presence of only 0.2 mumole of the drug. Inhibition reached 91.1% in the presence of 0.5 mumole aminoglutethimide. When added to the human incubated adrenal, a 59.4% inhibition occurred in the presence of 0.5 mumole aminoglutethimide. Glutethimide, a sedative of wide clinical usage, was also found to inhibit corticosterone 18-hydroxylation but the inhibitory effect occurred only in the presence of much higher concentrations. In fact, 5.0 mumoles were necessary to obtain a 43.9% inhibition of 18-hydroxycorticosterone synthesis. This study clearly demonstrates the marked inhibitory effect of aminoglutethimide on corticosterone 18-hydroxylation. Glutethimide, to a lesser extent, also inhibits 18-hydroxycorticosterone synthesis.

18-Hydroxycorticosterone

Synthesis of an active hydroxylated glutethimide metabolite and some related analogs with sedative-hypnotic and anticonvulsant properties.

Two synthetic pathways are described for the preparation of 4-hydroxy-2-ethyl-2-phenylglutarimide (2), an active hydroxylated metabolite of glutethimide (1). Fourteen other glutethimide analogs were also synthesized and tested for biological activity. Most of the analogs exhibited sedative-hypnotic properties and compound 2 possessed the greatest activity compared to the parent drug. 4-Amino-2-ethyl-2-phenylglutarimide and 4-hydroxy-2-ethyl-2-phenylglutaconimide (13) exhibited the greatest potential as anticonvulsant agents. The structure-activity relationships of the series are discussed.

Animals

Changes in reaction time and drug plasma concentrations after nitrazepam and glutethimide.

1 The effects of nitrazepam, glutethimide and placebo were assessed in a double-blind cross-over study with five healthy human subjects, using reaction time, and relating changes to drug concentrations in the plasma. 2 After glutethimide in all five subjects, and after nitrazepam in four subjects, larger doses led to higher concentrations in plasma and to greater changes in reaction time; one subject displayed the higher nitrazepam concentrations and the greater effect following the smaller dose. 3 The relationship between change in reaction time and concentration appeared to be mainly a within-subject dose-effect relationship, with the peak concentration in plasma as the 'dose' and the area under the reaction time curve as the effect.

Adult

The features of hepatic enzyme induction with glutethimide in man.

1 Sequential measurements of D-glucaric acid excretion were made in six healthy volunteers before, during and after 3 weeks' daily medication with glutethimide 500 mg. 2 There was a rapid rise in D-glucaric acid excretion within 2 days of starting medication and a rapid decline when it was stopped. 3 Antipyrine clearance and indocyanine green clearance were measured before and at the end of the 3 weeks' medication. 4 There was a 55% increase in antipyrine clearance but no change in indocyanine green clearance. 5 There was no correlation between antipyrine clearance and D-glucaric acid excretion. 6 Glutethimide causes rapid enzyme induction in man without concomitant rise in hepatic blood flow.

Antipyrine

Metabolism of glutethimide in the human.

Gas chromatographic and gas chromatographic-mass spectrometric techniques were used to identify metabolites of glutethimide excreted in human urine. In this study three monohydroxy metabolites, a dihydrodiol and three dihydroxy metabolites were detected after ingestion of the drug. The results indicate that the phenyl ring of glutethimide is metabolized by the epoxide-dihydrodiol pathway in the human following chronic administration of the drug.

Adolescent

Definitive characterization of the para-hydroxyphenyl metabolite of glutethimide in human urine.

The compound, 2-ethyl-2-(4-hydroxyphenyl)-glutarimide was prepared synthetically. Spectral data is presented which identifies this compound to be a metabolite of glutethimide isolated from enzymatically hydrolyzed human urine, following an overdose of the parent drug. New data supporting the structure of a minor metabolite, 2-ethyl-2-(3-methoxy-4-hydroxy)-glutarimide, is considered. Finally, gas chromatographic techniques have been perfected and are presented which yield complete purification of new metabolites of glutethimide.

Chromatography, Gas

Toxicity of alpha-phenyl-gamma-butyrolactone, a metabolite of glutethimide in human urine.

A novel metabolite, alpha-phenyl-gamma-butyrolactone, isolated from the urine of a glutethimide overdose victim, was synthesized and tested for biological activity in mice. Interperitoneal injections of this lactone caused severe toxicity at moderate dose levels. These results point to another metabolite of glutethimide contributing toxicity to patients severely intoxicated by the parent drug. An improved synthesis as well as complete spectral data of this lactone are also presented.

4-Butyrolactone

Synthesis and characterization of a catechol metabolite of glutethimide (Doriden) in human urine.

A metabolite of glutethimide, 2-ethyl-2-(3,4-dihydroxyphenyl)-glutarimide, previously identified in enzymatically hydrolyzed human urine of overdosed victims was prepared synthetically and its chemical and spectral data compared to the proposed material. Results of these comparisons confirm the presence of a catechol metabolite of glutethimide in the urine of patients severely intoxicated by the parent drug.

Catechols

"Barbiturate burns" caused by glutethimide.

A case of glutethimide overdose associated with skin lesions resembling burns is reported. These characteristic skin lesions are usually ascribed to barbiturates. Their aetiology, incidence, and association with other drugs and neurological disorders are discussed.

Adult

Phenolic metabolite, 2-ethyl-2(4-hydroxphenyl)-glutarimide in human urine following chronic ingestion of glutethimide (Doriden).

Urine samples from comatose patients, identified as having taken large amounts of the drug, glutethimide, were analyzed using gas chromatography, mass spectrometry, thin layer chromatography, and nuclear magnetic resonance spectrometry in order to identify metabolites of the parent drug. The phenolic compound 2-ethyl-2-(4-hydroxphenyl)-glutarimide was fully characterized as a new metabolite in human urine. Also 2-ethyl-2-(3-methoxy-4hydroxyphenyl)-glutarimide was proposed as a new metabolite of the parent drug. Other polar metabolites of the parent drug were also detected and partially characterized.

Chromatography, Gas

[A contribution to acute glutethimide (Elrodorm) intoxication].

Following a short discussion of hitherto known facts about glutethimid intoxications, two own cases are described. In these cases minimal amounts (2.5 and 5 g) caused haemorrhagic diatheses and acute insufficiency of the liver, which in one case were combined with acute renal insufficiency. Possible causes are discussed.

Adult