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Genetic control of the phenobarbital-induced shortening of plasma antipyrine half-lives in man.

The mean half-life of antipyrine in the plasma of four sets of identical and four sets of fraternal twins after a single oral dose of 16 mg/kg of antipyrine was 12.7 +/-(SD) 3.3 hr. After 2 wk on sodium phenobarbital (2 mg/kg daily) the half-life of antipyrine in the plasma of these twins was reduced to 8.0 +/-(SD) 1.5 hr. Shortening of the plasma antipyrine half-life occurred in all but one of these 16 normal, adult volunteers, but there was considerable variation in the extent of reduction which ranged from 0 to 69%. Phenobarbital administration decreased individual variations in antipyrine metabolism as indicated by the smaller standard deviation of the plasma antipyrine half-lives after phenobarbital than observed initially and by the narrowed range of variation in plasma antipyrine half-lives from 2.8-fold initially to 1.8-fold after phenobarbital. These results suggest that some inducing agents may be used to minimize individual variations in drug metabolism where such variations create therapeutic problems by exposing patients who slowly metabolize certain drugs to toxicity and other patients who rapidly metabolize some drugs to undertreatment. During the course of phenobarbital administration blood levels were determined. Phenobarbital blood levels correlated neither with the final values for plasma antipyrine half-lives nor with the per cent reduction in plasma antipyrine half-life produced by phenobarbital treatment. There was a direct relationship between initial antipyrine half-lives and the per cent shortening of antipyrine half-life produced by phenobarbital administration: the shorter the initial antipyrine half-life, the less the reduction caused by phenobarbital treatment. Larger intrapair variances in fraternal than in identical twins indicate genetic, rather than environmental, control of phenobarbital-induced alterations in plasma antipyrine half-life.

Adult↗

Effect of inhalation anesthetics on antipyrine pharmacokinetics of mice.

The effects of the volatile anesthetics, enflurane, isoflurane and halothane, on the pharmacokinetics of antipyrine were examined in mice. The administration of 0.75% isoflurane or 1.0% enflurane in air resulted in a 173 and a 206% increase, respectively, in antipyrine plasma half-life and a 29.1 and a 41.2% decrease in antipyrine total body clearance. There was also an almost 2-fold increase in the volume of distribution of antipyrine. Halothane, at 0.5% in air, had no significant effect upon antipyrine plasma half-life or its volume of distribution. There was no significant change in antipyrine total body clearance and volume of distribution 4 hr after exposure to the volatile agents, but there was a small increase in half-life. The exposures to the volatile anesthetics were also carried out in an atmosphere of 8% oxygen. Antipyrine plasma half-life was increased significantly by 48% in mice breathing 8% oxygen, compared to mice breathing air. Isoflurane in 8% oxygen increased the plasma half-life of antipyrine by 296% compared to mice breathing 8% oxygen. This increase was greater than the effect of isoflurane seen in mice breathing air. Mice breathing halothane in 8% oxygen exhibited a 21% increase in antipyrine plasma half-life and mice breathing enflurane in 8% oxygen, a 117% increase in antipyrine plasma half-life, although the changes were not markedly different from those seen in mice breathing air. Enflurane and isoflurane produced a significant increase in the volume of distribution for antipyrine in the mice breathing 8% oxygen. Total body clearance of antipyrine was decreased markedly in mice breathing isoflurane and enflurane but showed a lesser decrease in mice breathing halothane in 8% oxygen. In vitro in mouse microsomes, halothane, enflurane and isoflurane were all inhibitors of aminopyrine metabolism. Possible mechanisms for these results are discussed.

Animals↗

Antipyrine as a dialyzable reference to correct differences in efficiency among and within sampling devices during in vivo microdialysis.

Antipyrine was investigated as a dialyzable substance that could be used to quantitate relative differences in the efficiency of dialysis among multiple microdialysis probes and by a single probe over time. The contribution of effective membrane surface area to recovery variability was tested by the introduction of air into microdialysis probes. Reduction of effective membrane surface area reduced antipyrine recovery. Dialysates from probes implanted in the jugular vein, brain, and liver of rats receiving antipyrine demonstrated differences in antipyrine concentration among probes within the same rat. These results suggest dissimilar efficiencies of the probes to recover antipyrine, which should be uniformly distributed throughout body water. Dialysates from blood, brain, and liver probes in rats that received both antipyrine and tritiated water (3H2O) showed differences in antipyrine and 3H2O concentrations among probes. Variability of antipyrine and 3H2O concentrations over time within a probe were positively correlated, suggesting that the cause(s) of temporal variability affected both of these markers of body water. Correction of antipyrine tissue/blood ratios, using 3H2O blood/tissue ratios from the same sampling period, reduced the variability in antipyrine tissue/blood ratios, producing ratios closer to the expected value of 1. Differences in probe efficiency contributing to the variability of antipyrine and 3H2O recovery would also be expected to influence the recovery of other substances during microdialysis. The administration of antipyrine during microdialysis experiments is suggested to enable reduction of temporal and site-related differences in substance recovery that are due to differences in probe efficiency. Other methods are necessary to determine the actual extracellular concentration of dialyzed substances and the integrity of the blood-brain barrier.

Animals↗

Antipyrine clearance and metabolite formation in primary biliary cirrhosis.

The disposition of antipyrine is altered and may be a prognostic factor in the presence of various types of hepatic dysfunction. The object of the present study was to investigate whether antipyrine clearance and metabolite formation are useful to detect altered metabolic function in primary biliary cirrhosis. Saliva clearance of antipyrine and the formation clearance of antipyrine metabolites (hydroxymethylantipyrine, HMA; norantipyrine, NORA; and 4-hydroxyantipyrine, OHA) were investigated in a group of 34 women with biopsy-proven PBC (mean age 60 years; range 39-87 years) and in 15 healthy control women (mean age 62 years; range 46-78 years). Parameters of antipyrine clearance of patients in stage I and II were similar to those observed in healthy subjects. When compared to patients in stage I, patients in advanced stages showed a reduction in antipyrine clearance (-29% and -44% in stages III and IV, respectively) and increases in antipyrine half-life (+24% and +75% in stages III and IV, respectively). The reduction in antipyrine clearance was due to a reduction in the formation of all three antipyrine metabolites, with the formation clearance of both HMA and NORA decreasing to a slightly greater extent than that of OHA. Antipyrine clearance correlated significantly with serum bilirubin (P < 0.017) and the Mayo risk score (P < 0.001). Logistic regression analysis indicated that antipyrine clearance was an independent predictor of the histological stage of the disease (P < 0.001). Antipyrine clearance and metabolite formation is a sensitive parameter for assessing hepatic metabolic function in primary biliary cirrhosis.

Adult↗

Differential effects of enzyme induction on antipyrine metabolite formation.

1 The influence of enzyme induction with antipyrine and pentobarbitone was studied on the rates of formation of the major metabolites of antipyrine: 4-hydroxyantipyrine, norantipyrine and 3-hydroxymethyl-antipyrine + 3-carboxy-antipyrine. The inducing drugs were given to panels of healthy volunteers for 8 days and prior to and after this period antipyrine total elimination clearance was determined in plasma, whereas the partial clearances for production of the individual metabolites were assessed on the basis of urinary excretion data. 2 Antipyrine total clearance had significantly increased by 16% following treatment with antipyrine, which could almost entirely be attributed to a selective increase in the rate of production of norantipyrine. 3 With pentobarbitone total clearance of antipyrine had increased by 60%, which was associated with a significant increase in the clearance of production of all three metabolites. However, the increase in norantipyrine formation was significantly higher than the increase in 4-hydroxyantipyrine and 3-hydroxymethyl-antipyrine formation. 4 The most likely explanation for these differences in the degree of induction of the different metabolic routes of antipyrine, is that different enzymes are involved in the different routes. Apparently the enzyme involved in norantipyrine formation is most sensitive to induction by antipyrine and pentobarbitone. By measuring rates of antipyrine metabolite formation it may be possible to study the degree of selectivity of enzyme inducers on oxidative drug metabolism.

Adult↗

Assay of antipyrine and its primary metabolites in plasma, saliva and urine by high-performance liquid chromatography and some preliminary results in man.

A reversed phase system for the HPLC separation of antipyrine and its primary metabolites is described. Based on this system an assay procedure for antipyrine in plasma and saliva was developed with a lowest measurable concentration of 25 ng/ml and precision of +/- 3.6 and +/- 4.5%, respectively. Furthermore, assays for the parent compound, 3-hydroxymethyl-antipyrine, norantipyrine and 4-hydroxy-antipyrine in urine were developed. The lowest measurable concentration for these compounds is about 100 ng/ml except for 3-hydroxymethyl-antipyrine with a lowest measurable concentration of about 200 ng/ml. The precision was established at +/- 3.6 and +/- 5.0% for 3-hydroxymethyl-antipyrine, and antipyrine, respectively, and +/- 7.0 and +/- 3.6% for norantipyrine and 4-hydroxy-antipyrine, respectively. The method was applied to studies on antipyrine metabolism in humans. Following administration of a single dose of 500 mg antipyrine to 5 healthy volunteers, 3.3 +/- 1.2% of the dose was recovered from 48-hour hydrolyzed urine as unchanged drug, 39.7+/- 8.7% as 3-hydroxymethyl-antipyrine, 14.5 +/- 6.8% as norantipyrine and 28.5 +/- 2.2% as 4-hydroxy-antipyrine.

Animals↗

Changes in metabolism and urinary excretion of antipyrine induced by aerobic conditioning.

BACKGROUND: Physical conditioning has been reported to increase liver oxidative metabolism determined by antipyrine clearance. The purpose of this investigation was to study effects of aerobic conditioning on the different metabolic pathways of antipyrine by comparing the production clearances of antipyrine metabolites. METHODS PARTICIPANT: volunteers not engaged in the systematic practice of any sport (n = 14) were compared with aerobically-conditioned subjects (n = 14) (long distance runners, defined as men running > 80 km/week). INTERVENTIONS: antipyrine was administered orally. Saliva samples were collected under basal conditions and at 8, 16, 24, 32 and 40 hrs following antipyrine administration. Urine was collected for 24 hrs after antipyrine ingestion. MEASURES: endurance performance was expressed by the maximal oxygen uptake (VO2max), the ventilatory threshold and the 4 mM.l-1 lactate threshold (OBLA). Antipyrine pharmacokinetic parameters (antipyrine clearance and half-live) were obtained from saliva samples by the standard multiple-sample method. RESULTS: VO2max, ventilatory threshold and OBLA were higher in trained than in control subjects (+32%, +16% and +74%, respectively). Salivary antipyrine clearance was higher, whether or not this variable was corrected for weight (+26% and +38%, respectively), and antipyrine half-life was significantly reduced (-31%) in runners. There was no significant change with training in the renal clearance of antipyrine or in the norantipyrine (NORA) formation clearance but significant increases were observed in hydroxymethylantipyrine (HMA) and 4-hydroxyantipyrine (OHA) formation clearances (+42 and +37%, respectively). CONCLUSIONS: The findings indicate that aerobic conditioning leads to increased disposition of antipyrine and that the main metabolic pathways of the compound are changed differently.

Adult↗

Interaction between antipyrine and aminopyrine.

Aminopyrine administered to normal human volunteers in an oral dose of either 9 mg/kg or 4.5 mg/kg prolonged the plasma half-life and reduced the metabolic clearance rate of antipyrine (18 mg/kg, orally) without changing its apparent volume of distribution. By contrast, this same oral dose of antipyrine given simultaneously with 9 mg/kg aminopyrine failed to alter aminopyrine disposition. Thus, antipyrine and aminopyrine should not be administered simultaneously to measure different steps in hepatic drug oxidation, although in man aminopyrine can be given for this purpose 24 hr after antipyrine. Antipyrine elimination was prolonged to the same extent when aminopyrine was given 5 hr before antipyrine as when the drugs were given simultaneoulsy. Since in man aminopyrine has a biologic halic-life of approximately 2.7 hr, the marked inhibitory effects observed 5 hr after aminopyrine administration may be due to its major metabolite, 4-aminoantipyrine. To define mechanism by which aminopyrine affects antipyrine disposition in vivo, hepatic microsomes were prepared from rats, mice, and dogs, and rates of antipyrine hydroxylation were measured in vitro both in the absence and in the presence of aminopyrine. In these species in vitro inhibition of antipyrine hydroxylation by 4-aminoantipyrine was of a mixed type; antipyrine inhibited competitively aminopyrine N-demethylation in vitro in rats, mice, and dogs. There were some sex and species differences in the Km' V max' and Ki for aminopyrine and antipyrine.

Adult↗

Antipyrine clearance and metabolite excretion in patients with chronic hepatitis C.

BACKGROUND/AIMS: Our aim was to study whether chronic hepatitis C affects the three metabolic pathways of the model drug antipyrine differently. METHODS: We measured antipyrine clearance from saliva as well as urinary excretion of its main metabolites 4-hydroxy-antipyrine, 3-hydroxy-methyl-antipyrine, and nor-antipyrine in 24 patients with chronic hepatitis C and in 21 healthy control subjects. Due to incomplete urine collection, 12 liver patients and three controls were excluded. RESULTS: Antipyrine clearance (mean +/- SD) was significantly lower in patients with chronic hepatitis C, 1.2 +/- 0.7 l.h-1 (n = 12), than in controls (n = 18), 2.2 +/- 1.0 l.h-1 (p = 0.006). The urinary excretion of each of the metabolites was depressed to an equal extent in liver patients. The severity of the liver disease, as assessed by Child Pugh score, serum albumin and bilirubin, correlated significantly with antipyrine clearance and urinary excretion of the metabolite 3-hydroxy-methyl-antipyrine. The hepatitis activity index (Knodell) correlated with 3-hydroxy-methyl-antipyrine and 4-hydroxy-antipyrine, only. CONCLUSIONS: Moderate-severe chronic hepatitis C does not seem to depress the three main metabolic pathways of antipyrine differently.

Adult↗

Accuracy and clinical utility of simplified tests of antipyrine metabolism.

High-performance liquid chromatography (h.p.l.c.) was used to measure plasma antipyrine concentrations in sixteen healthy subjects; five males, six females taking oral contraceptive steroids (OCS) and five age-matched females not taking OCS. Following oral administration of the drug, antipyrine clearance could be determined with similar precision and accuracy from plasma concentrations at two selected times (4 h and 24 h) ('two-sample antipyrine clearance test') as from six samples taken over two to three elimination half-lives (t1/2) of the drug ('conventional antipyrine clearance test'). Provided times for plasma sampling were modified appropriately, the two-sample antipyrine clearance test also gave reliable results in four patients taking phenytoin (sampling times 4 h and 8 h) who had significantly enhanced antipyrine clearance, and in nine patients with severe liver disease (using 4 h and 48 h) in whom antipyrine clearance was impaired. Urinary excretion of antipyrine metabolites (from 0-24 h) was determined in the above groups. Antipyrine systemic clearance correlated best with the percentage of administered dose excreted as 4-hydroxyantipyrine (r = 0.66, P less than 0.001) but also with 3-hydroxymethylantipyrine (r = 0.54, P less than 0.001) and with total metabolites excreted (r = 0.60, P less than 0.001). Total antipyrine metabolites excreted in urine in 24 h were significantly different from controls only in patients with liver disease (14 +/- 7.6% of administered dose vs 62 +/- 14%, P less than 0.001). The relative proportion of antipyrine metabolites did not appear to be altered when hepatic mixed function oxidation was induced by phenytoin or inhibited by OCS or by severe liver disease.

Adult↗

Effects of antipyrine on umbilical and regional metabolism in late gestation in the fetal lamb.

OBJECTIVE: Antipyrine has been used extensively in fetal metabolic studies and is now known to inhibit prostaglandin synthesis; therefore we wished to determine the effects of antipyrine on fetal umbilical and regional metabolism. STUDY DESIGN: Chronically catheterized fetal lambs were randomly assigned to antipyrine (n = 6) or control (n = 5) groups. Animals in the antipyrine group were infused with antipyrine (mean +/- SD 9.6 +/- 0.9 mg/min for 165 +/- 38 minutes), and control group animals were not infused. Measurements were made of fetal blood gases, oxygen content, glucose, lactate, lower-body blood flow, upper-body flow distribution, and substrate uptakes across the umbilical and hind limb circulations. The unpaired t test, correlation coefficient, and regression analysis were used for comparisons. RESULTS: There were no differences in antipyrine and control group animals with respect to blood gases, metabolite levels, umbilical blood flow, or umbilical uptakes. Hind limb blood flow (p < 0.10) and oxygen uptake (p < 0.05) were lower and lactate production was higher (p < 0.01) in antipyrine animals than in control group animals. Duration of antipyrine exposure correlated directly with hind limb lactate production (r = 0.85, p < 0.001) and inversely with hind limb oxygen uptake (r = -0.65, p < 0.05). The distribution of blood flow within the fetal upper body also differed between groups, with higher cardiac distribution in the antipyrine group (p < 0.025). CONCLUSIONS: Antipyrine does not affect umbilical metabolism but does affect carcass metabolism and fetal blood flow distribution.

Animals↗

The effects of acetaminophen, antipyrine and phenacetin on rat urothelial cell proliferation.

Abuse of combination analgesics containing phenacetin, antipyrine (phenazone) and caffeine have been associated with urinary tract tumors. Phenacetin and antipyrine have been shown to be promoters of urinary tract carcinogenesis and antipyrine is also a weak urinary tract carcinogen. Acetaminophen, the main metabolite of phenacetin, is one of the most commonly used analgesics in the USA. In the present study, the dose-related effect on the cell proliferation of the urothelium was evaluated in male Sprague-Dawley rats by autoradiography. Nine groups of twenty, 6-week old rats were treated with 0.5%, 1.0% or 1.5% of acetaminophen, antipyrine or phenacetin in the diet. A tenth group of rats received control diet without added chemicals. Ten rats from each group were killed after each of 6 and 12 weeks of feeding. There was a dose-related increase in the labeling index in the urothelium of the bladder and kidney, particularly after 6 weeks of drug administration. In particular, the 1.0% and 1.5% dose levels of antipyrine and phenacetin showed a marked proliferative effect on the urothelium. In the bladder after 6 weeks, the labeling indices were significantly increased. After 12 weeks, although numerically increased, the indices were not statistically significant. In the renal pelvic urothelium the labeling index was significantly increased in antipyrine and phenacetin treated rats at doses of 1.0% and 1.5%. After 12 weeks the majority of rats treated with 1.5% antipyrine and phenacetin had labeling indices greater than or equal to 2-fold than the control rats both in the kidney and bladder. The increased labeling indices were associated with urothelial hyperplasia, in particular after 6 weeks. In the rats treated with antipyrine there were significant degenerative changes in the urothelial cells expressed as marked vacuolization. The vacuolization is considered to be a toxic effect and the beginning of cell death. Thus cell death with regeneration may be responsible for the increased labeling index in the antipyrine groups. High doses of antipyrine were also associated with renal papillary necrosis in 50% of the rats.

Acetaminophen↗

Metabolism of 14C-antipyrine in suspensions of isolated rat liver cells.

Suspensions of liver cells isolated from perfused rat livers were incubated with antipyrine-N-methyl-14C. Antipyrine was eliminated by first-order kinetics during incubations for 3 hours with primary suspensions (parenchymal cells + non-parenchymal cells) and suspensions of purified parenchymal cells. Antipyrine concentrations were unchanged when incubated with suspensions of non-parenchymal cells, dead cells or medium only. At the end of incubation period, 4-OH-antipyrine and 3-CH2OH-antipyrine were detected mainly as the glucuronide or sulphate conjugates, and evidence for the N-demethylation of antipyrine was also obtained. Half-lives for elimination of antipyrine in primary cell suspensions were not significantly different from the half-lives measured in parenchymal cell suspensions. This finding together with the lack of metabolism of antipyrine found in non-parenchymal cell suspensions suggest that oxidation and conjugation of antipyrine is mainly confined to the parenchymal cells. There was significant inhibition of antipyrine metabolism in primary suspensions by phenylbutazone (1.6 X 10(-3)M), dexamethasone (2 X 10(-4)M) and ethanol (1.3 X 10(-2)M, 0.75%). We suggest that the use of primary suspensions of isolated rat liver cells provide a rapid and simple method for the study of factors influencing drug metabolism in the liver.

Animals↗

Antipyrine elimination as a dynamic test of hepatic functional integrity in obstructive jaundice.

Antipyrine elimination was studied in 29 patients with obstructive jaundice Antipyrine half-lives calculated using plasma concentrations at four and 24 hours ('short antipyrine test') were significantly correlated with those calculated using six time points (p less than 0.001). Mean antipyrine half-life was 28.3 +/- 8 hours (standard error) and was significantly longer than in normal subjects (p less than 0.001). Antipyrine half-life did not correlate with standard biochemical liver function tests, but correlated positively with the postoperative half-time for clearance of endogenous bilirubin (p less than 0.05), and negatively with hepatic cytochrome P-450 content measured in peroperative liver biopsies (p less than 0.05). Of six patients with antipyrine half-life greater than 20 hours, four died, one preoperatively of gastrointestinal haemorrhage and three postoperatively of sepsis. Serial short antipyrine tests were performed in 13 patients before and after biliary drainage. Those with an initial antipyrine half-life greater than 15 hours showed significant changes after drainage, while those with an antipyrine half-life less than 15 hours did not. The test of antipyrine half-life may aid in selecting high risk patients with obstructive jaundice for percutaneous biliary drainage before definitive surgery, and in determining the optimal time for such preliminary biliary decompression.

Adult↗

Effect of butalbital and phenobarbital pretreatment on antipyrine clearance in the rat.

The disposition kinetics of antipyrine after a single i.v. dose (75 mg/kg) of [14C]antipyrine were examined in control rats and in rats pretreated with butalbital and phenobarbital. Blood antipyrine data indicated that daily administration of phenobarbital (50 mg/kg) for 14 days resulted in significantly more rapid elimination of antipyrine than that observed after equal doses of butalbital, which was in turn significantly faster than the control values. Results of additional antipyrine tests after phenobarbital pretreatment for 2 and 5 days showed considerable enzyme induction after only 2 days of exposure to phenobarbital; the mean antipyrine clearance after the 2-day pretreatment was not significantly different from those after the 5- and 14-day pretreatments. The data suggested that the maximum increase in antipyrine clearance, ca. 190% of the control value, was achieved after approximately 5 daily doses of phenobarbital and maintained until the end of the 14-day pretreatment period. The subsequent decline in the induced enzyme activity, assessed by the antipyrine clearance values on days 1, 3, 6, and 9 post-phenobarbital treatment, appeared to be mono-exponential with a half-time of 3.8 days. Thus, the enzyme activity would return to baseline at ca. 15 days after the last dose of phenobarbital. In these studies, consistent increases in liver weight with increasing antipyrine clearance were observed, while no apparent relationship between antipyrine distribution volume and barbiturate pretreatment was found.

Animals↗

Antipyrine elimination in patients with alcoholic and non-alcoholic cirrhosis.

The metabolism of antipyrine to each of its three major metabolites 4-hydroxy-, 3-methylhydroxy- and norantipyrine has previously been demonstrated to be differentially affected in alcoholic cirrhosis. This study compared the metabolism of antipyrine to its metabolites in 30 patients with alcoholic cirrhosis to 15 patients with non-alcoholic cirrhosis and 20 healthy controls. Both groups of cirrhotic patients were comparable with respect to their disease stage, as assessed by the Child-Pugh classification. Compared to controls, patients with alcoholic and non-alcoholic cirrhosis showed a comparable significant reduction in antipyrine clearance and increase in antipyrine half-life. The reduction in antipyrine clearance was due to a reduction in the formation rate of all three antipyrine metabolites in both alcoholic and non-alcoholic cirrhotics. In both groups, the formation rate of norantipyrine was reduced to a greater extent than of 3-methylhydroxy- and 4-hydroxyantipyrine. No significant differences in the parameters of antipyrine elimination, however, were observed between patients with alcoholic and non-alcoholic cirrhosis. Parameters of antipyrine elimination correlated significantly to the Child-Pugh score and single laboratory parameters, however, the correlation coefficients were generally low (< 0.56). The present results suggest that the P450 enzymes involved in antipyrine metabolism are differentially affected in cirrhosis, but there appear to be no differences in the activity of the enzymes between alcoholic and non-alcoholic cirrhosis. Antipyrine metabolism, therefore, depends on the severity rather than the etiology of liver disease and may serve as a measure of hepatic function irrespective of the cause of liver disease.

Adult↗

Antipyrine: radioimmunoassay in plasma and saliva following administration of a high dose and a low dose.

A simple and senstitive radioimmunoassay has been developed for the determination of antipyrine levels in plasma and saliva of man. Antiserum to antipyrine was obtained from rabbits immunized with an immunogen prepared by covalently coupling N-(4-antipyrinyl)-succinamic acid to bovine serum albumin (BSA). The radioimmunoassay can detect antipyrine levels as low as 10 ng/ml of plasma or saliva, using a 0.1-ml sample. This contrasts with the sensitivity of a commonly used spectrophotometric method that can measure about 4,000 ng/ml using a 2-ml plasma sample. Agreement between the radioimmunoassay and spectrophotometric assay of antipyrine was excellent for plasma (r = 0.98) and salvia (r =0.97) when samples were analyzed from 6 subjects receiving 18 mg/kg of antipyrine. The correlation between plasma and saliva antipyrine half-lives using the radioimmunoassay and an 18 mg/kg dose of antipyrine was r = 0.90 (p less than 0.005). After a dose of 1.8 mg/kg of antipyrine, the drug disappeared monoexponentially from plasma and saliva for at least 51 hr, and the correlation between plasma half-life and saliva half-life was r = 0.97 (p less than 0.001) in the 6 subjects. Excellent agreement was also observed between half-lives after the high and low doses of antipyrine (r = 0.99, p less than 0.001 for plasma and r = 0.98, p less than 0.001 for saliva).

Adult↗

Effect of antipyrine coadministration on the kinetics of acetaminophen and lidocaine.

Pharmacokinetic interactions between antipyrine and acetaminophen were evaluated in 7 healthy volunteers. On 3 occasions subjects received: 1, antipyrine 1.0 g intravenously (i.v.); 2, acetaminophen 650 mg i.v.; 3, antipyrine 1.0 g and acetaminophen 650 mg i.v. simultaneously. Between Trials 1 and 3, antipyrine elimination t1/2 (17.2 vs 17.4 h), clearance (0.44 vs 0.43 ml.min-1.kg-1) and 24-h recovery of antipyrine and metabolites (313 vs 293 mg) did not differ significantly. Between Trials 2 and 3, acetaminophen VZ was reduced (1.14 vs 1.00 l.kg-1), t1/2 prolonged (2.7 vs 3.3 h), clearance reduced (4.8 vs 3.6 ml.min-1.kg-1), and fractional urinary recovery of acetaminophen glucuronide reduced. Eight additional subjects received 50 mg of lidocaine hydrochloride i.v. in the control state, and on a second occasion immediately after antipyrine 1.0 g given i.v. The two trials did not differ significantly in lidocaine VZ (2.6 vs 2.7 l.kg-1), t1/2 (2.0 vs 2.4 h) or clearance (15.0 vs 13.5 ml.min-1.kg-1). Although acetaminophen does not alter antipyrine kinetics, acute administration of antipyrine appears to impair acetaminophen clearance, possibly via inhibition of glucuronide formation. However, antipyrine has no significant effect on the kinetics of a single i.v. dose of lidocaine.

Acetaminophen↗