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Use of cholestyramine resin in the treatment of digitoxin toxicity.

Two case reports describing the treatment of digitoxin toxicity with cholestyramine resin are presented. Both female patients were receiving 100 microgram/day of digitoxin when toxicity occurred. In both patients, digitoxin was discontinued and hypokalemia was corrected. In patient 1, lidocaine hydrochloride and phenytoin sodium also were administered. Serum digitoxin levels were decreased from 43 ng/ml to 21.8 ng/ml and from 42 ng/ml to 29 ng/ml in patients 1 and 2, respectively, following administration of three 4-g doses of cholestyramine resin over a one-day period. Previous studies on the treatment of digitoxin intoxication with potassium chloride, phenytoin sodium, lidocaine hydrochloride, digitoxin-specific antibodies, colestipol hydrochloride and cholestyramine resin are discussed. Ion-exchange resins may be valuable adjuncts in the treatment of digitoxin intoxication but further studies of their utility are needed.

Aged↗

[The biological availability of digitoxin].

The bioavailability of digitoxin after a single dose of 0.5 mg was studied in 6 healthy volunteers by estimation of tmax, cmax, AUC und urinary excretion rate. After tablets, absorption was rapid, after dragées delayed. The mean t1/2 of digitoxin for i.v. administration was 9.5 +/- 0.9 days, for oral administration of tablets 7.4 +/- 0.5 days and for dragées 9.7 +/- 2.0 days. The cumulative recovery of glycosides in urine during the first 48 hours was higher after tablets than after i.v. administration. The shorter t1/2 of digitoxin after tablets compared with the longer t1/2 after gastric juice resistent dragées demonstrated the presence of a substantial extrahepatic "first pass"-effect by degradation of digitoxin before absorption. Such mechanism would partly explain the shorter t1/2 after digitoxin-tablets due to an increased elimination of splitting products. By extrapolation to t-infinite AUC and urinary excretion rates were not significantly different between various formulations. The mean absolute bioavailability of digitoxin-dragées amounted to 82-88 percent and the relative bioavailability of digitoxin-tablets to 84-93 percent.

Administration, Oral↗

[Serum digitoxin in concomitant use of antiepileptics in routine therapy].

Concomitant use of digitoxin and enzyme-inducing antiepileptics may lower serum levels, and accordingly the effect of digitoxin, unless the higher metabolic clearance is compensated for by higher dosage. Use of digitoxin is almost always guided by serum concentration measurements. Information on a possible enzyme-inducing effect of phenobarbital, phenytoin and carbamazepine is easily accessible. Compilation of serum level measurements for digitoxin showed that serum levels shifted towards lower values during concomitant use of phenytoin or carbamazepine than when digitoxin was used alone. As a consequence, the fraction of patients with serum levels below the therapeutic range was doubled. Concomitant use of phenobarbital did not cause a shift in the levels of digitoxin. In fact, in this group, a larger fraction of the serum level measurements were within the therapeutic range. Thus, the dosage of digitoxin appears to be fully compensated during concomitant use of phenobarbital, but obviously deserves attention during concomitant use of phenytoin or carbamazepine.

Anticonvulsants↗

Disposition of digitoxin in renal failure.

The disposition of digitoxin was studied for a period of 8 days in 6 uremic patients given a single oral dose of 1 mg 3H-digitoxin. In plasma, the time-course of radioactivity indicated a diminished absorption velocity of tritium compared to that of control subjects already reported and, after reaching of a pseudostate-equilibrium at 24 hr, an exponential decline with a mean half-life of 8.0 days. In urine, smaller amounts of tritiated compounds were eliminated in uremic patients (8.7% of the dose) than in controls (22.5%). The average fecal excretion of digitoxin and its metabolites was not significantly increased. Chloroform extraction and thin-layer chromatography in plasma, urine and feces suggested no qualitative alteration in the metabolism of digitoxin. Calculations of the total body tritium content (body stores) after each 24-hr interval and its pharmacokinetic behavior showed that the elimination of digitoxin is determined by the transfer constant from tissue to plasma. The differences in elimination kinetics of digitoxin and its metabolites of uremic patients and healthy subjects were not significant.

Chromatography, Thin Layer↗

Studies on digitalis. VI. The effect of heparin on serum protein binding of digitoxin and digoxin.

The aim of the present study was to investigate the nature of the previously reported changes in the serum protein binding of digitoxin and digoxin in uremic patients under treatment with hemodialysis. Kinetic studies on protein binding during hemodialysis showed that the free fraction of digitoxin rose from 2.6% to 6.9% after 5 min of hemodialysis and remained elevated during the dialyzing period. Free digoxin rose from hemodialysis and remained elevated during the dialyzing period. Free digoxin rose from 78.3% to 87.1% during the same period. In vitro hemodialysis experiments showed that such changes occurred only in vivo. Injection of heparin (5,000 IU) to control subjects produced similar kinetic changes in the protein binding of digitoxin and digoxin. Free fatty acids changed in the same way. These results indicate that the heparin-induced release of free fatty acids causes displacement of digitoxin and digoxin from their albumin-binding sites. Patients on hemodialysis have lower serum levels of digitoxin and cardioactive metabolites (mean, 8.9 ng/ml) than control patients (mean, 16.7 ng/ml) (p less than 0.005) on similar doses (mean, 0.085 mg/day). They should be maintained on the same digotoxin doses as uremic and control patients, but serum digitoxin levels should be adjusted to 10 to 15 ng/ml in hemodialysis patients compared to 15 to 25 ng/ml in uremic patients and in patients with normal renal function.

Blood Proteins↗

Studies on digitalis. VII. Influence of nephrotic syndrome on protein binding, pharmacokinetics, and renal excretion of digitoxin and cardioactive metabolites.

Serum protein binding of digitoxin was lower (p less than 0.05) in 7 patients with nephrotic syndrome (96.2%, SD 1.4) than in 51 control patients (97.3%, SD 0.5). Urine protein binding of digitoxin was 60.1% in the 6 nephrotic patients in whom it was determined. Simultaneous serum and urine measurements of digitoxin and cardioactive metabolites were performed in 5 patients after a single intravenous dose of 0.6 mg digitoxin. A modified 86Rb method was used. Mean T/2 of serum elimation was 4.8 days and 8.1 days in 5 control subjects (p less than 0.05). Serum concentrations 24 hr after the dose were lower in the nephrotic group (p less than 0.0025). The urine concentration T/2 with a mean value of 5.0 days was not significantly different from controls (7.2 days). The cumulative renal exeretion was higher in the nephrotic group (23.2% of dose) than in controls (15.8%) for 8 days. The excretion during one serum T/2 was the same in the two groups. Increased renal excretion thus explains the shortened serum T/2 in nephrotic patients. Preliminary data on the metabolic pattern of digitoxin and cardioactive metabolites in serum and urine suggested that drug metabolism may be changed in patients with nephrotic syndrome. As renal excretion is enhanced, patients with nephrotic syndrome will require higher doses of digitoxin. They should be maintained at lower than usual serum levels of total drug due apparent increased volume of distribution and hypoalbuminemia with consequent increased free drug fraction.

Blood Proteins↗

A comparative trial of digoxin and digitoxin in the treatment of congestive heart failure.

A randomized, crossover, single-blind study compared the efficacy and dosing accuracy of digoxin and digitoxin in 15 ambulatory patients wth congestive heart failure. Loading doses and maintenance doses were calculated according to published equations that adjust for sex, height, and lean body weight (for digitoxin), plus estimated creatinine clearance (for digoxin). At each 2-week visit, serum drug concentrations were measured and compliance with the prescribed regimen was assessed by tablet count. At the end of each study period, a congestive heart failure (CHF) score was determined in a blinded fashion by the same physician. Patient compliance was unusually high (greater than or equal to 80%) at every visit. Therapeutic concentrations were achieved with digoxin and digitoxin in 5 and 14 patients, respectively (p less than 0.05). During digitoxin therapy, CHF scores were lower than pretreatment values (p less than 0.05). The difference between CHF scores during the digoxin and digitoxin periods did not achieve significance (0.05 less than p less than 0.06). Therapeutic serum concentrations can be achieved more easily and frequently with digitoxin than digoxin without compromising the patient's CHF status.

Adult↗

Species differences in plasma binding and tissue uptake of 3H-digitoxin. A comparative study in rats and mice in vivo and in vitro.

The content of cardiac glycosides in plasma and several organs of rats and mice was investigated 30 min and 12 hrs after i.p. administration of 160 mug/kg b.w. 3H-digitoxin. In rat plasma a glycoside concentration of 124.8 and 44.7 ng/ml resp. was found. The corresponding values in the liver were 834.7 and 579.7 ng/g w.w. An opposite liver/plasma distribution was obtained in mice: while in plasma 772.5 and 571.8 ng/ml were recovered, the glycoside concentration in liver was relatively small (284.8 and 235.6 ng/g w.w.). In order to find out the reason for such species differences observed in vivo, liver slices of rats and mice were incubated with 3H-digitoxin in a medium with and without various plasma proteins. The uptake of 3H-digitoxin into liver slices was drastically reduced by adding mouse plasma or albumin to the medium, while rat plasma lowered the uptake far less. These differences are well reflected by binding studies on agargel electrophoresis: only in mouse plasma a binding of 3H-digitoxin could be demonstrated. The binding rate and binding constant analyzed by equilibrium dialysis were higher in mouse than in rat plasma. It is concluded that the lower tissue accumulation in mice compared to rats must be due to the affinity of 3H-digitoxin to mouse plasma albumin. Moreover digitoxin has a higher affinity to the rat than to the mouse liver in the presence of mouse or rat plasma as well as of bovine serum albumin.

Animals↗

Plasma protein binding of digitoxin and some other drugs in renal disease.

Plasma protein binding of most acidic drugs is decreased in uraemia, whereas the binding of basic drugs is usually unchanged or decreased. Decreased protein binding in patients with renal disease mainly relates to drugs binding to albumin. Digitoxin binds to a specific site on the albumin molecule. Conflicting reports exist on digitoxin-protein binding in patients with renal disease. In ten patients with end-stage renal disease treated with haemodialysis we found only a slightly increased free fraction of digitoxin. A heparin-induced increase of the free fraction of digitoxin during haemodialysis has been reported. However, this increase was caused by the generation of non-esterified fatty acids in vitro. If this in vitro lipolysis was blocked, no increase of free digitoxin could be detected. Alterations of digitoxin-protein binding in uraemic patients during haemodialysis and during the intervals between haemodialysis treatments are small.

Blood Proteins↗

Lack of a pharmacokinetic interaction between carvedilol and digitoxin or phenprocoumon.

The possibility of a pharmacokinetic interaction between carvedilol and digitoxin (Study I) or phenprocoumon (Study II) has been evaluated in groups of 12 healthy volunteers. The bioavailability (Cmax, tmax, AUC) of digitoxin and phenprocoumon were assessed after a single dose, given once alone and once on day 6 of treatment with carvedilol 25 mg o.d. Cmax, tmax, AUC and Ut of carvedilol and desmethylcarvedilol were also investigated after the fifth dose of carvedilol and after the sixth dose given concomitantly with digitoxin or phenprocoumon. In Study I, the 95% confidence intervals of the ratio test versus the reference findings were; digitoxin Cmax 0.80-1.20, tmax 0.56-1.14, AUC 0.97-1.33, and for carvedilol Cmax 0.81-1.22; tmax 0.66-1.23; AUC 0.91-1.17. Formation of the active metabolite desmethylcarvedilol and the urinary recovery of carvedilol and desmethylcarvedilol were not influenced by digitoxin. In Study II Cmax and AUC of phenprocoumon were not changed after carvedilol. Cmax of carvedilol was decreased after phenprocoumon. The kinetic parameters of phenprocoumon were Cmax 0.80-1.05, tmax 0.47-2.00, AUC 0.78-1.05, and for carvedilol Cmax 0.59-1.06, tmax 0.71-1.73; AUC 0.80-1.08, respectively. The plasma levels of desmethylcarvedilol and the urinary recovery of carvedilol and desmethylcarvedilol were not influenced by phenprocoumon. The blood pressure and heart rate after carvedilol alone were not affected by concomitant administration of digitoxin or phenprocoumon.

Adult↗

Studies on digitalis. XIII. A prospective study of 649 patients on maintenance treatment with digitoxin.

In a prospective study of digitalis intoxication in 649 patients on maintenance treatment with digitoxin a low incidence of digitalis toxicity was found, namely, 5.8 per cent. This is mainly due to a more careful use to digitalis glycosides. It is especially important to reduce the dose of digitoxin in the liver and partly excreted metabolized in the liver and partly excreted through the kidneys as metabolities. Serum half-time of digitoxin is shortened in patients with impaired renal function. Patients with reduced renal function may be treated with digitoxin in the same doses as individuals with normal renal function. This is in contrast to patients treated with digoxin. Digitoxin should therefore be the cardiac glycoside of choice in treatment of patients with renal failure. Digitoxin is further rapidly eliminated in patients with reduced liver function in spite of its extensive hepatic metabolism. In this study extracardia symptoms were found equally often as cardiac signs of toxicity. Patients intoxicated usually had several symptoms and signs of toxicity at the same time. The specificity of commonly used symptoms and signs a digitalis intoxication is very low. In this study atrial tachycardia with block, which has been considered to be an important cardiotoxic arrhythmia, very seldom was found in digitalis intoxication. There is an overlap in digitalis serum concentration between toxic and nontoxic patients. The diagnosis of toxicity was made on clinical grounds. Most of the intoxicated patients had high serum concentrations, but some had concentrations in the normal or low range. Apart from being a guide to the diagnosis of digitalis intoxication, serum digitalis levels may further be a guide to underdigitalization of cardiac patients, especially patients in sinus rhythm.

Age Factors↗

Digitoxin therapy partially restores cardiac catecholamine and brain serotonin metabolism in congestive heart failure.

The effect of therapeutic doses of digitalis in modifying neural activity has been the subject of considerable controversy. In earlier studies we reported an increase both in serotonergic activity in the posterior hypothalamus and pons-medulla and in cardiac sympathetic tone in the failing cardiomyopathic hamster. In this study we examine the effects of doses of digitoxin, known to be therapeutic for hamster heart failure, on monoamine neurotransmitter metabolism in the brain and heart during the cardiomyopathy. Both digitoxin and ASI-222, a polar amino-glycoside which does not cross the blood-brain barrier, given either acutely (6 mg/kg ip) or chronically (2 mg/kg/day ip for 10 days), normalized the failure-induced increase in serotonin turnover in the pons-medulla but had no effect on the changes in the posterior hypothalamus. Digitoxin therapy also reduced cardiac and adrenal sympathetic activity partially restoring cardiac catecholamine stores. In order to more clearly define the pathways involved we measured serotonin (microgram/g protein) in 18 brain nuclei after 10 days of digitoxin or vehicle treatment. Heart failure was associated with an increase in serotonin in five nuclei: the mammillary; bodies, ventromedial, periventricular and paraventricular nuclei of the hypothalamus, and the centralis superior nucleus of the raphe. Digitoxin therapy completely normalized the changes in the centralis superior and ventromedialis nuclei; neither congestive heart failure nor digitoxin affected serotonin levels in other nuclei. We conclude that there is an increase in activity in specific brain serotonergic nuclei in congestive heart failure. Digitalis reduces cardiac sympathetic tone and restores the changes in two of these nuclei: the ventromedial and the centralis superior.+2

Animals↗

Effect of heparin on digitoxin protein binding.

Reduction of digitoxin binding to plasma proteins after heparin has been reported. Our aim was to determine whether this reduction is an in vivo effect or occurs only after blood collection as a result of heparin-induced lipolysis that increases levels of nonesterified fatty acids in vitro. The effect of heparin on digitoxin protein binding was studied in 10 patients undergoing hemodialysis receiving digitoxin maintenance therapy. Digitoxin free fraction increased after heparin, from 2.5% +/- 0.7% to 4.4% +/- 1.1%, but after inhibition of in vitro lipolysis with diethyl p-nitrophenyl phosphate (2mM), a potent lipase inhibitor, there was no increase in the free fraction (2.3% +/- 0.4% before heparin and 2.4% +/- 0.5% after heparin). Digitoxin salivary levels were also unchanged (0.41 +/- 0.08 ng/ml before heparin and 0.41 +/- 0.08 ng/ml after heparin [n = 8]). These data indicate that the binding of digitoxin to plasma proteins in vivo is not altered by heparin. The reduced binding reported elsewhere was a result of heparin-induced in vitro lipolysis.

Aged↗

[Thrombocytopenia in digitoxin poisoning].

Because she felt unwell, an 80-year-old woman who was receiving treatment with digitoxin (0.07 mg daily) raised the dose on her own initiative to twice or three times the previous level. She then experienced faintness, visual abnormalities and bradyarrhythmia (rate about 40/min). The ECG showed 2 degrees AV block. The digitoxin level was 70.8 ng/ml--far above the upper limit of the therapeutic range (7.5-25 ng/ml). One striking abnormality was thrombocytopenia (33,000/microliters), though the white and red cell counts were normal. Petechiae were not present and there was no evidence of internal bleeding. As the AV block had not produced any critical fall in ventricular rate, there was no need to start treatment with digitalis-binding antibody fragments (Fab fragments). Instead, the patient was given cholestyramine 4 g three times daily with the aim of interrupting the enterohepatic circulation of digitoxin. From then on the rise in platelet count paralleled the fall in digitoxin level. Seven days after discontinuing digitoxin the platelet count reentered the normal range (147,000/microliters). However, the digitoxin level (39.5 mg/ml) was still well above the therapeutic range.

Aged↗

[Digitoxin blood picture and renal elimination in long-term therapy with aluminum-magnesium hydroxide gel].

In ten patients in heart failure for which they were on long-term administration of digitoxin, the influence of aluminium-magnesium hydroxide gel (Maaloxan) on steady-state digitoxin plasma concentration and renal glycoside excretion was studied. Compared with control values before antacid medication (13.6 +/- 4.4 ng/ml), the administration of 20 ml aluminium-magnesium hydroxide gel three or four times daily for several weeks caused no significant change in digitoxin plasma levels (15.1 +/- 4.9 ng/ml). Daily renal glycoside excretion, as a further measure of bioavailability of digitoxin, was also unchanged by the antacid. Therapeutic plasma concentrations of digitoxin are not influenced by antacids which contain aluminium-magnesium hydroxide, at least not if the antacid is taken 1-2 hours after the digitoxin dose.

Aged↗

[Digitoxin in hepatorenal insufficiency].

Serum digitoxin levels were measured during maintenance treatment with digitoxin, 0.1 mg daily i.v., in 12 patients under intensive postoperative care who had hepatorenal failure resulting from multiple organ failure. Thirteen patients in intensive care with comparable basic diseases served as controls; they had developed predominantly renal failure. Serum digitoxin levels in the two groups were no different and remained within therapeutic range during the total period of observation of 8-40 days. During this time toxic serum digitoxin levels were measured in 2.9% of patients in renal failure and 2.7% of patients with hepatorenal failure. The pathogenesis of the liver failure and the severity of the underlying disease did not influence serum digitoxin levels. Digitoxin was tolerated similarly in the two patient groups.

Adult↗

Digitoxin mimics gene therapy with CFTR and suppresses hypersecretion of IL-8 from cystic fibrosis lung epithelial cells.

Cystic fibrosis (CF) is a fatal, autosomal, recessive genetic disease that is characterized by profound lung inflammation. The inflammatory process is believed to be caused by massive overproduction of the proinflammatory protein IL-8, and the high levels of IL-8 in the CF lung are therefore believed to be the central mechanism behind CF lung pathophysiology. We show here that digitoxin, at sub nM concentrations, can suppress hypersecretion of IL-8 from cultured CF lung epithelial cells. Certain other cardiac glycosides are also active but with much less potency. The specific mechanism of digitoxin action is to block phosphorylation of the inhibitor of NF-kappa B (I kappa B alpha). I kappa B alpha phosphorylation is a required step in the activation of the NF-kappa B signaling pathway and the subsequent expression of IL-8. Digitoxin also has effects on global gene expression in CF cells. Of the informative genes expressed by the CF epithelial cell line IB-3, 58 are significantly (P < 0.05) affected by gene therapy with wild-type (CFTR CF transmembrane conductance regulator). Of these 58 genes, 36 (62%) are similarly affected by digitoxin and related active analogues. We interpret this result to suggest that digitoxin can also partially mimic the genomic consequences of gene therapy with CF transmembrane conductance regulator. We therefore suggest that digitoxin, with its lengthy history of human use, deserves consideration as a candidate drug for suppressing IL-8-dependent lung inflammation in CF.

Cardiac Glycosides↗

Digitoxin-associated mortality in acute myocardial infarction.

The use of digitalis in patients who have sustained an acute myocardial infarction has been controversial. A number of reports have suggested that the use of the glucoside actually can increase mortality. In all previous reports, digoxin has been the glucoside in use. In 620 patients admitted to Hamar Hospital from January 1, 1982 to December 31, 1984 with an acute myocardial infarction, 159 were using digitoxin at entry. Their survival until January 1, 1985 was compared with the rest of the population, not using digitoxin. The patients on digitoxin had a significantly higher mortality than those who were not, with a relative risk ratio of 2.33. However, major differences in baseline risk factors existed, and a multivariate Cox regression analysis was employed to adjust for the inequalities in baseline covariates. Only variables available at the entry of the index infarction were used for adjustment. Serum sodium, serum creatinine, age and no smoking were identified in a backward selection procedure as independently influencing mortality. By adjusting for these variables the relative risk ratio was reduced to 1.41, but digitoxin still exerted a significant influence on mortality. It is concluded that the results obtained with the use of digitoxin during a myocardial infarction is similar to previous reports with digoxin. Most of the excess mortality in the digitoxin group can be accounted for by inequalities in baseline characteristics. However, the possibility that a small excess in mortality is due to the digitalis glucoside cannot be excluded.

Aged↗