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Reversal of advanced digitoxin toxicity and modification of pharmacokinetics by specific antibodies and Fab fragments.

The effects of Fab fragments of high-affinity specific antibodies have been studied in a canine experimental model of lethal digitoxin toxicity. Selected antiserum from sheep immunized and boosted with a digoxin-serum albumin conjugate contained antibodies that cross-reacted with digitoxin with an average intrinsic association constant of 1.4 x 10(10) M(-1) as determined by equilibrium dialysis. Rapid second-order association kinetics (k(f) = 3.7 x 10(6) M(-1) per s) and slow dissociation kinetics (k(r) = 1.9 x 10(-4) per s) were documented for the antibody-digitoxin complex. Eight dogs given 0.5 mg/kg digitoxin intravenously developed ventricular tachycardia after 23+/-4 (SEM) min. Control nonspecific Fab fragments were then given. All animals died an average of 101+/-36 min after digitoxin administration. Another eight dogs given the same digitoxin dose similarly developed ventricular tachycardia after 28+/-3 min. This group then received a molar equivalent dose of specific Fab fragments intravenously over 3 min, followed by a 30-min infusion of one-third of the initial dose. All dogs survived. Conducted sinus beats reappeared 18+/-4 min after initial Fab infusion, and stable normal sinus rhythm was present at 54+/-16 min. Plasma total digitoxin concentrations increased threefold during the hour after initial Fab infusion, while plasma free digitoxin concentration decreased to less than 0.1 ng/ml. Effects on digitoxin pharmacokinetics of these Fab fragments and the antibody population from which they were derived were further investigated in a primate species. Unlike common laboratory animals previously studied, the rhesus monkey was found to have a prolonged elimination half-life, estimated at 135 and 118 h by radioimmunoassay and [(3)H]digitoxin measurements, respectively, similar to man and thus providing a clinically relevant experimental model. Intravenous administration of 2 mol of specific Fab fragments per mole of digitoxin 6 h after 0.2 mg of digitoxin produced a rapid 4.3-fold increase in plasma total digitoxin concentration followed by a rapid fall (t((1/2)) 4 h) accompanied by a 14-fold enhancement of urinary digitoxin excretion over control values during the 6-h period after Fab was given. Analytical studies were consistent with increased excretion of native digitoxin rather than metabolites, and the glycoside was found in equilibrium dialysis studies to be excreted in the urine in Fab-bound form. Administration of 2 mol of specific antibody binding sites per mole of digitoxin as intact IgG caused a greater and more prolonged increase in plasma total digitoxin concentration, peaking 13-fold above control levels. In contrast to the effects of Fab, however, specific IgG reduced the rate of urinary digitoxin excretion substantially below control values. We conclude that Fab fragments of antibodies with high affinity for digitoxin are capable of rapid reversal of advanced, otherwise lethal digitoxin toxicity, and are capable of reducing the plasma half-life and accelerating urinary excretion of digitoxin.

Animals

Interference of oleandrin and oleandrigenin in digitoxin immunoassays: minimal cross reactivity with a new monoclonal chemiluminescent assay and high cross reactivity with the fluorescence polarization assay.

Toxicity from ingestion of the oleander plant is common. Oleandrin, the oleander glycoside, has structural similarity to cardiac glycoside digoxin and is known to cross react with various digoxin immunoassays. The authors studied the cross reactivity of oleandrin and its deglycosylated congener oleandrigenin with a fluorescence polarization immunoassay for digitoxin and compared their results with a new chemiluminescent assay for digitoxin on the Automated Chemiluminescent System (ACS:180 Plus) from Chiron Diagnostics. Even though the chemiluminescent assay has been reported to be comparable with the fluorescence polarization assay among normal patient population, oleandrin and oleandrigenin showed very high cross reactivities with the fluorescence polarization immunoassay and minimal cross reactivity with the new chemiluminescent assay. When the authors supplemented a serum specimen containing no digitoxin with 50 micrograms/ml of oleandrin, the fluorescence polarization assay recorded a value of 535.7 ng/ml of digitoxin equivalent, whereas the new chemiluminescent assay recorded a value of 10.3 ng/ml of digitoxin equivalent. The cross reactivity of oleandrigenin with the fluorescence polarization immunoassay for digitoxin was significantly lower than oleandrin. The presence of oleandrin also falsely elevated total digitoxin level in a specimen supplemented with digitoxin and oleandrin. The authors also measured free digitoxin concentration by the fluorescence polarization immunoassay in the ultrafiltrate of serum supplemented with digitoxin and oleandrin. Because digitoxin and oleandrin are bound strongly to protein, monitoring free digitoxin concentration by the fluorescence polarization immunoassay instead of total digitoxin concentration does not eliminate oleandrin interference. The authors conclude that fluorescence polarization immunoassay for digitoxin has a high cross reactivity with oleandrin and can falsely elevate digitoxin concentration in the presence of oleandrin, whereas the new chemiluminescent assay for digitoxin is almost free from interferences from oleandrin.

Anti-Arrhythmia Agents

Effect of digoxin fab antibody on the measurement of total and free digitoxin by fluorescence polarization and a new chemiluminescent immunoassay.

Digoxin fab antibody (Digibind; Burroughs Wellcome, Research Triangle Park, NC, USA) is used in the treatment of digoxin overdose. The effect of digibind on the measurement of total and free digoxin has been extensively studied. However, the effect of digibind on digitoxin measurements has not been studied thoroughly. The authors studied the effect of digibind on the measurement of total and free digitoxin in vitro using the fluorescence polarization immunoassay and a new chemiluminescent immunoassay. We also studied the capability of digibind to bind digitoxigenin, the major aglycon metabolite of digitoxin. Digibind neutralized both digitoxin and digitoxigenin in vitro, as evidenced by significant reductions in free digitoxin and digitoxigenin (measured as digitoxin equivalent) concentrations. Digibind caused negative interference in the measurement of total digitoxin concentrations by both fluorescence polarization and chemiluminescent assays. However, the magnitude of negative interference was significantly higher with the chemiluminescent assay. For example, in a serum pool supplemented with 80 ng/mL of digitoxin, the concentrations of total and free digitoxin measured by the fluorescence polarization immunoassay were 82.1 ng/mL and 3.3 ng/mL respectively. In the presence of 5 microg/mL of Digibind, the corresponding total and free digitoxin concentrations were 73.9 ng/mL and none detected, respectively. In another serum pool supplemented with 70 ng/mL of digitoxin, the concentrations of total and free digitoxin as measured by the chemiluminescent assay were 69.1 ng/mL and 3.8 ng/mL, respectively. In the presence of 5 microg/mL of Digibind, the corresponding total and free digitoxin concentrations were 29.0 ng/mL and none detected, respectively. Because this effect may also occur in vivo, the progress of Digibind therapy in treating a patient with digitoxin overdose may be monitored by measuring the free digitoxin concentrations.

Cardiotonic Agents

Species differences in the toxicity and cytochrome P450 IIIA-dependent metabolism of digitoxin.

In rats, cytochrome P450 (P450) IIIA enzymes are an important determinant of digitoxin toxicity. Induction of these liver microsomal enzymes decreases the toxicity of digitoxin by increasing its oxidative cleavage to digitoxigenin bis- and monodigitoxoside (dt2 and dt1). The present study shows that the susceptibility of different mammalian species to digitoxin toxicity is inversely related to liver microsomal P450 IIIA activity (measured as testosterone 6 beta-hydroxylase activity). Based on this correlation, we correctly predicted that hamsters, which have the highest P450 IIIA activity, are extremely resistant to digitoxin toxicity. To further examine the relationship between digitoxin toxicity and P450 IIIA activity, the pathways of digitoxin metabolism catalyzed by liver microsomes from nine mammalian species were examined by high performance liquid chromatography. The overall rate of digitoxin metabolism varied approximately 90-fold and followed the rank order: hamster greater than rat greater than guinea pig greater than dog greater than mouse approximately monkey greater than rabbit approximately cat greater than human. The qualitative differences in digitoxin metabolism were as striking as the quantitative differences. Formation of 16- and/or 17-hydroxydigitoxin was the major pathway of digitoxin oxidation catalyzed by liver microsomes from hamster, guinea pig, rabbit, cat, dog, and cynomolgus monkey. Guinea pig and, to a lesser extent, hamster liver microsomes also converted digitoxin to an unknown metabolite, the formation of which was catalyzed by P450. None of the species examined catalyzed the 12-hydroxylation of digitoxin to digoxin at a high rate. Similarly, none of the species examined catalyzed a high rate of conversion of digitoxin to dt2, with the notable exception of the rat. However, dt2 formation was the major pathway of digitoxin metabolism catalyzed by human liver microsomes, although humans were much less active (approximately 2%) than rats in this regard. The rate of dt2 formation varied approximately 41-fold among 22 samples of human liver microsomes, which was highly correlated (r = 0.841) with the rate of testosterone 6 beta-hydroxylation. Antibody against rat P450 IIIA1 inhibited the high rate of dt2 formation by rat liver microsomes and the low rate catalyzed by mouse, guinea pig, dog, monkey, and human liver microsomes. In contrast, anti-P450 IIIA1 did not inhibit the 12-, 16-, or 17-hydroxylation of digitoxin (or the formation of the unknown metabolite), despite the fact that anti-P450 IIIA1 strongly inhibited (greater than 70%) the 6 beta-hydroxylation of testosterone by liver microsomes from each of the species examined (except rabbit liver microsomes, which were inhibited only approximately 30%).(ABSTRACT TRUNCATED AT 400 WORDS)

Adolescent

Pharmacodynamics, pharmacokinetics and metabolism of digitoxin and derivatives in cats.

Derivatives of dihydro-digitoxin (DHD) were studied in the search for a glycoside with a primarily extrarenal clearance and a faster elimination rate than digitoxin. The positive inotropic doses of the derivatives of DHD were higher than those of digitoxin and digoxin. There was no significant difference in the therapeutic margin. After injection of 3H-digoxin in unaesthetized cats, no metabolites were found in the serum which did not bind with the antibody used for the RIA. After injection of 3H-digitoxin and its derivatives, the radioactivity was cleared from the serum at a much lower rate than the concentrations assayed by RIA. The metabolites which did not bind to the digitoxin antibody were hydrophilic and had a low protein binding. Digitoxin-bisdigitoxoside (Dt-2) determined by RIA rapidly disappeared from the serum. The radioactivity remaining after 24 h was eliminated with a half-life of 219 h. Ten min after injection of DHD the serum contained no unchanged DHD, but 36% digitoxin suggesting that the reduction of digitoxin to DHD is reversible and that the conversion of DHD to Dt-2 is the rate limiting step in the metabolism of digitoxin. The total body clearance of digitoxin, its metabolites and derivatives determined by RIA increased in the order DHD-oxime less than or equal to digitoxin less than DHD less than or equal to DHD-acetyloxime less than DHD-methyloxime. The clearance and the elimination rate of DHD-methyloxime were significantly higher than those of digitoxin (P = 0.05).

Animals

Rapid detection of cardioactive bufalin toxicity using fluorescence polarization immunoassay for digitoxin.

Intoxication caused by digitalis-like substances after ingestion of cooked toad soup has been reported. Bufalin, a cardioactive compound, is found in toad. Bufalin is also found in many Chinese medicines. Earlier reports demonstrated cross reactivity of bufalin with fluorescence polarization immunoassay for digoxin. In this report, the authors demonstrated a significantly higher cross reactivity of bufalin with the fluorescence polarization assay for digitoxin. They supplemented aliquots of normal plasma that had various concentrations of bufalin (1 to 50 micrograms/ml) from a local blood bank and measured apparent digitoxin concentrations using fluorescence polarization immunoassay and chemiluminescent assays (ACS digitoxin) for digitoxin. They measured apparent digoxin and digitoxin concentrations using fluorescence polarization, microparticle enzyme immunoassay, and chemiluminescent assays for digitoxin. They observed apparent digitoxin or digoxin concentrations in sera supplemented with bufalin only with the fluorescence polarization assays. For example, the apparent digitoxin concentration observed in a serum supplemented with 25 ng/ml of bufalin was 24.3 ng/ml of digitoxin equivalent. The apparent digoxin concentration observed in the same specimen was 1.33 ng/ml digoxin equivalent. Bufalin caused positive interference in serum digoxin or digitoxin measurements in specimens containing digoxin or digitoxin when concentrations were measured by fluorescence polarization assays. In contrast, bufalin lowered the measured digoxin concentrations in serum pools containing digoxin when digoxin concentrations were measured by the microparticle enzyme immunoassay. The authors conclude that bufalin toxicity can be rapidly detected by the fluorescence polarization assay for digitoxin.

Animals

Interactions between digitoxin and some antiarrhythmic drugs.

In the present study the pharmacokinetic interactions between digitoxin and the antiarrhythmic drugs amiodarone, mexiletine and propafenone have been examined. Experiments were performed on rabbits in which serum digitoxin concentration was used as indicator to detect drug interactions. The radioimmunoassay "Coat-A-Count" procedure of DPC was used for the quantitative measurement of digitoxin. It was determined that in order to achieve a considerable level of serum digitoxin, it was necessary to administer a multiple dose rather than the one tolerated by humans. It was also observed that serum contained digitalis like immunoreactive factor(s) (DLIF) measured as digitoxin. The mean (+/- SE) digitoxin equivalent value of the DLIF, measured by the "Coat-A-Count" radioimmunoassay in the serum of rabbits (n = 34) was 4.15 +/- 0.059 ng/ml. Each of the three antiarrhythmic drugs increased serum digitoxin levels; its values were almost double in relation to the control group where only digitoxin was administered. This increased digitoxin value was detected one hour after administration of the first dose of the antiarrhythmic drug and remained at a higher level than that of the control group for 6-8 hours. Rabbits given a single high dose of digitoxin and some of the antiarrhythmic drugs and those given a small dose of digitoxin for only four days, presented a retrogressive increase of digitoxin level in serum 5-6 days later. This mechanism needs to be further investigated.

Amiodarone

Studies on digitalis. XI. Digitoxin metabolism in patients with impaired renal function.

The metabolic pattern of cardioactive and conjugated digitoxin metabolites was studied in 10 uremic patients on maintenance treatment with digitoxin 24 hr after the last dose (mean dose, 0.060 mg/day). Urine was collected over 24 hr. The mean serum digitoxin level was 9.4 ng/ml, and urine level was 6.8 ng/ml. The metabolic pattern of cardioactive metabolites was studied in 5 patients on hemodialysis. Their mean serum digitoxin level was 6.3 ng/ml and urine level was 7.3 ng/ml, on a digitoxin dose of 0.072 mg/day. Unchanged digitoxin was the main cardioactive substance present in both serum and urine of uremic patients. Uremic patients had significantly less unchanged digitoxin and had more hydroxylated (DG-3) and hydroxylated and hydrolyzed (DG-2, DG-1, and DG-0) metabolites than control patients. The extent of conjugation was the same in the two groups. Our data suggest that uremic patients produce more digitoxose than control patients and that digitoxin elimination is more rapid in uremic patients. The altered pattern of digitoxin metabolites is most consistent with uremia-induced changes in hydroxylation and hydrolysis. The hemodialysis group had a pattern of digitoxin and cardioactive metabolites similar to control patients, indicating that patients on hemodialysis differ from other uremic patients with respect to digitoxin metabolism.

Biotransformation

[Interaction of quinidine and digitoxin in the human (author's transl)].

With a daily maintenance dose of 0.1 mg digitoxin a mean steady state digitoxin serum concentration of 17.0 +/- 3.2 ng/ml was measured in 10 male probands. When 750 mg of quinidine bisulphate were administered at the same time digitoxin concentration increased significantly to 22.4 +/- 4.2 ng/ml (P less than 0.0005). The serum half life of digitoxin during quinidine treatment was significantly increased to 10.8 +/- 2.1 days compared to a control group with 7.6 +/- 1.6 days (P less than 0.0025). Protein binding of digitoxin, renal digitoxin excretion and renal digitoxin clearance were equally uninfluenced by quinidine as were endogenous creatinine clearance and sodium and potassium excretion in urine. In two patient with cardiac insufficiency there was likewise a significant increase in digitoxin serum concentration. For clinical application of combined therapy of quinidine and digitoxin the danger of digitalis intoxication seems to be less in comparison to digoxin as increase of digitoxin concentration in serum is lower than of digoxin.

Adult

Effect of cardiopulmonary bypass with heparin administration on digitoxin pharmacokinetics, serum electrolytes, free fatty acids, and renal function.

In 14 patients investigated before, during, and after extracorporeal circulation, serum digitoxin concentration fell significantly during bypass but returned to preoperative values within 24 hr. Both changes occurred in parallel with changes in hematocrit. Serum magnesium concentration fell markedly just before and during bypass and returned to preoperative values on the third and fourth postoperative days. Urine digitoxin concentration fell on the day of operation and remained low in the postoperative period, with a concomitant reduction in the renal excretion of digitoxin. Creatinine and digitoxin clearances decreased on the day of operation and returned slowly to control values during the postoperative period. In 5 other patients, serum digitoxin protein binding decreased significantly during bypass due to heparinization and was normalized by administration of protamine sulfate. Free fatty acids increased significantly immediately before bypass and returned to normal toward its end. The marked changes in digitoxin serum levels during cardiopulmonary bypass can be explained by hemodilution. Acute deterioration of renal function does not lead to accumulation of digitoxin. Heparin administration causes major changes in free fatty acids and serum digitoxin protein binding without important changes in the free digitoxin concentration. Digitoxin can thus be safely administered to patients undergoing cardiac surgery with extracorporeal circulation.

Aged

Some observations on serum concentrations of digitoxin and digoxin.

Serum concentrations of digitoxin and digoxin were measured in 145 cases with various heart diseases receiving maintenance doses of digitalis. Digitalis toxicity was seen in only 2 cases (1.4%). Day-to-day variation of serum concentration while taking the same daily dose was small in digitoxin therapy (13.8%), but a considerable variation was seen in digoxin therapy (24.4%). Serum concentrations of both digitoxin and digoxin were measured in the patients receiving digitoxin, and there was a positive correlation between the two (r = 0.66, p less than 0.001). This fact suggested that the effect of digitoxin was the sum of the effects of digitoxin and its metabolite, digoxin. In the patients taking digoxin, digitoxin was not detected in the serum. Serum digitoxin level had a significantly positive correlation to serum albumin level, presumably because digitoxin was retained in serum in the bound form to albumin. Minimal effective level, 10 ng/ml, was however obtained with higher daily dose of digitoxin in patients with lower serum albumin.

Adolescent

Studies on digitalis. V. The influence of impaired renal function, hemodialysis, and drug interaction on serum protein binding of digitoxin and digoxin.

The aim of the present investigation is to study digitoxin and digoxin protein binding in patients with normal renal and hepatic function, in patients with uremia, and in patients under treatment with hemodialysis for renal failure. The binding of digitoxin and cardioactive metabolites to serum proteins was studied using equilibrium dialysis (an in vitro chemical assay) alone and in combination with a modified 86Rb method. The following values for protein binding were found: DT-3 (digitoxin), 95.7%; DT-2 (digitoxigenin-bis-digitoxoside), 96.5%; DT-1 (digitoxigenin-mono-digitoxoside), 98.7%; DT-0 (digitoxigenin), 92.7%; DG-3 (digoxin), 21.2%; DG-2 (digoxigenin-bis-digitoxoside), 16.3%; DG-1 (digoxigenin-mono-digitoxoside), 18.5%; and DG-0 (digoxigenin), 13.3%. In vitro addition of procainamide, phenytoin, heparin, and rifampicillin did not influence the in vitro binding of digitoxin. Protein binding of digitoxin showed small individual variations in patients with normal renal and hepatic function. Uremia per se did not influence the in vitro binding of digitoxin. There were marked changes in digitoxin and digoxin protein binding during an 8-hr hemodialysis, digitoxin binding decreasing from 97.1% to 93.7% (p less than 0.0025) and digoxin binding from 23.5% to 15.4% (p less than 0.05). In the uremic patient the metabolic pattern of digitoxin tended toward a decrease in protein-bound metabolites.

Blood Proteins

Evidence for the involvement of a distinct form of cytochrome P450 3A in the oxidation of digitoxin by rat liver microsomes.

The preceding paper (B. Gemzik, D. Greenway, C. Nevins, and A. Parkinson (1992). Regulation of two electrophoretically distinct proteins recognized by antibody against rat liver cytochrome P450 3A1. J. Biochem. Toxicol., 7 (43-52).) described the regulation of two rat liver microsomal proteins (50- and 51-kDa) recognized by antibody against P450 3A1. It was also shown that changes in the levels of the 51-kDa 3A protein were usually paralleled by changes in the rate of testosterone 2 beta-, 6 beta-, and 15 beta-hydroxylation. The present study demonstrates that age- and sex-dependent changes in the 50-kDa protein were paralleled by changes in the rate of digitoxin oxidation to digitoxigenin bisdigitoxoside. Induction or suppression of the 50-kDa protein by treatment of rats with various xenobiotics were also paralleled by changes in the rate of digitoxin oxidation. These results suggest that, contrary to previous assumptions, the conversion of digitoxin to digitoxigenin bisdigitoxoside and the conversion of testosterone to 2 beta-, 6 beta-, and 15 beta-hydroxytestosterone are primarily catalyzed by different forms of P450 3A. Further evidence for this conclusion was obtained from studies in which the suicide inhibitor, chloramphenicol, was administered to mature female rats previously treated with pregnenolone-16 alpha-carbonitrile (PCN), which induces both the 50-kDa and the 51-kDa protein. Treatment of mature female rats with PCN alone caused a marked increase (16- to 18-fold) in the 6 beta-hydroxylation of testosterone and the rate of digitoxin oxidation. Treatment of PCN-induced rats with chloramphenicol caused a approximately 70% decrease in liver microsomal testosterone 6 beta-hydroxylation, but had no effect on the rate of conversion of digitoxin to digitoxigenin bisdigitoxoside. The oxidation of testosterone by purified 3A1 (a 51-kDa protein) was also inhibited by chloramphenicol in a time- and reduced nicotinamide adenine dinucleotide phosphate (NADPH)-dependent manner. In addition to testosterone and chloramphenicol, purified 3A1 also metabolized troleandomycin, but it was unable to convert digitoxin to digitoxigenin bisdigitoxoside. Testosterone inhibited the microsomal oxidation of digitoxin, but digitoxin did not inhibit testosterone oxidation. This suggests that testosterone is a substrate for the 3A enzyme that metabolizes digitoxin, but that this form of P450 3A does not contribute significantly to testosterone oxidation by rat liver microsomes.(ABSTRACT TRUNCATED AT 400 WORDS)

Aging

Cholestyramine and spironolactone and their combination in digitoxin elimination.

The effects of oral cholestyramine 4 gm 8 times daily and spironolactone 300 mg daily, given independently and in combination, on the elimination rate of digitoxin were studied in 6 healthy subjects pretreated with 0.1 or 0.15 mg oral digitoxin daily for 30 days before each intervention. The mean pretreatment digitoxin concentrations for the group ranged from 21 +/- 2.9 (SD) ng/ml to 28.5 +/- 6.9 ng/ml. The mean control digitoxin half-life (t 1/2) was reduced from 141.6 to 84.4 by treatment with cholestyramine alone. Treatment with spironolactone alone prolonged the mean digitoxin t 1/2 to 192.2 hr. The mean digitoxin t 1/2 after both active drugs was intermediate at 102.9 hr. Spironolactone did not fulfill the expectation from animal studies that it would enhance the clearance of digitoxin by cholestyramine. The prolongation of digitoxin elimination after spironolactone may contraindicate this drug in digitoxin intoxication.

Canrenone

Cytostatic drugs are without significant effect on digitoxin plasma level and renal excretion.

In three patients with malignant lymphoma who received 0.5 mg digitoxin before and 24 hr after combination therapy with cyclophosphamide, Oncovin, procarbazine, and prednisone (COPP) or cyclophosphamide, Oncovin, and prednisone (COP), plasma glycoside concentrations and renal excretion were measured 0 to 168 hr after digitoxin and the areas under plasma concentration-time curves *(AUCs) were calculated. In 10 patients receiving 0.1 mg digitoxin, daily plasma glycoside concentration and daily renal excretion were measured before and after COPP, COP, or cyclophosphamide, Oncovin, cytosine-arabinoside, and prednisone (COAP) treatment schemes. In contrast to previous reports on digoxin, cytostatic drug therapy does not lead to a reduction in steady-state digitoxin plasma levels and daily renal excretion. During cytostatic therapy attainment of peak digitoxin level was delayed after a single dose, showing that the rate of digitoxin absorption was reduced, but that the AUCs and renal excretion of digitoxin (parameters of the extent of digitoxin absorption) were not diminished. Since the absorption rate is not clinically relevant in patients on long-term glycoside therapy, our results indicate that digitoxin is preferable to digoxin in such patients.

Adolescent

Binding of digitoxin and some related cardenolides to human plasma proteins.

Tritium-labeled digitoxin, digitoxigenin, digoxin, and digoxigenin of established purity and chemcal authenticity were used to study the binding of these compounds to human plasma proteins. 97% of digitoxin in plasma was nondialyzable. Continuous flow paper electrophoresis of plasma containing digitoxin and dialysis experiments in which human serum albumin competed for the glycoside with plasma or plasma protein fractions demonstrated that digitoxin was almost exclusively bound by albumin. Equilibrium dialyses revealed that the interaction was characterized by a single binding site on the albumin molecule and an association constant of 9.62 x 10(4) liter/mole at 37 degrees C. At 1 degrees C the association constant was 4.64 x 10(4) liter/mole. The interaction therefore was endothermic; the gain in enthalpy of 3.5 kcal/mole and the free energy change of - 7.06 kcal/mole was derived from a large change in entropy of 33.8 cal/mole per degrees K. The direction of these thermodynamic changes suggested the formation of a hydrophobic bond between digitoxin and albumin. Quenching of the fluorescence of albumin by digitoxin indicated that the conformation of albumin was altered by the binding process.Digitoxigenin, its mono- and didigitoxosides, digoxin, and digoxigenin competed with digitoxn for its binding site on albumin. The affinity of the mono- and didigitoxosides for the site was equal to that of digitoxin, but that of digitoxigenin was only one-third as great. The ability of the digitoxose residues of the glycosides to enhance binding to albumin was also observed with digoxin, which was more extensively bound by the protein than digoxigenin. At concentrations of 2 mug/ml or less in plasma, only 23% of digoxin was bound. Albumin, which interacted with digoxin with an apparent association constant of 9 x 10(2) liter/mole at 37 degrees C, was entirely responsible for the binding. Lowering the temperature from 37 degrees to 1 degrees C decreased the fraction of digoxin bound to albumin by two-thirds. The marked difference in avidity of digitoxin and digoxin for serum albumin is reflected by the higher plasma concentrations, lower rate of urinary excretion, and longer half-time of digitoxin as compared to those of digoxin when these compounds are administered to man.

Blood Protein Electrophoresis

[Kinetics of digitoxin during antirheumatic therapy with azapropazone (author's transl)].

The effect of chronic therapy with 5-dimethylamino-9-methylamino-9-methyl-2-propyl-1H-pyrazolo[1,2-a] [1,2,4] benzotriazine-1,3-(2H)-dione-dihydrate (azapropazone-dihydrate; Prolixan 300) on the elimination of a single i.v. dose of digitoxin was studied in 8 patients with rheumatoid arthritis and osteoarthritis using a crossover design. 0.5 mg digitoxin were injected i.v. alone and together with a chronic oral therapy of azapropazone starting 3 weeks before digitoxin was given. Digitoxin plasma levels were determined by radioimmunoassay over a period of 19 days. The half-life for plasma digitoxin was 6.4 +/- 0.5 days after digitoxin alone and 7.0 +/- 0.6 days during azapropazone treatment. In two patients the half-life of digitoxin was increased by about one-third during azapropazone therapy. The areas under the plasma digitoxin curve were 2592 +/- 262 ng/ml X h and 2615 +/- 273 ng/ml X h, respectively. None of the differences were statistically significant. It was concluded that there was no clinically significant interaction between azapropazone and a single dose of digitoxin.

Adult