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Anticholinergic action of disopyramide in intestinal smooth muscle of the guinea pig: inhibition of muscarinic receptors (M1 and M2).

Antimuscarinic actions of disopyramide were investigated by measuring the contractile responses of intestinal smooth muscles and ligand binding in cardiac and intestinal membrane preparations. Disopyramide caused a parallel shift of the dose-response curves for acetylcholine, McN-A-343, and carbachol to the right in the guinea pig taenia caeci; pA2 values were 5.4 for acetylcholine, 5.5 for McN-A-343 and 5.9 for carbachol. In the guinea pig ileum, disopyramide competitively antagonized acetylcholine in the contractile responses, having the pA2 value of 6.1. In microsomal fractions of the guinea pig taenia caecum and heart, disopyramide was capable of replacing 3H-QNB; K1 values were 7 x 10(-6) M for the taenia and 2 x 10(-6) M for the heart. These results suggest that disopyramide exerts antimuscarinic action through M1 and M2 receptors with a potency approximately 3 times greater for M2 than M1.

(4-(m-Chlorophenylcarbamoyloxy)-2-butynyl)trimethy↗

The antiarrhythmic efficacy of intravenous therapy with disopyramide phosphate.

Disopyramide phosphate was administered intravenously to 57 patients with 60 episodes of arrhythmia (21 supraventricular and 39 ventricular) as a 2 mg/kg bolus. Conversion to sinus rhythm was achieved in three (38 percent) of eight patients with atrial flutter, two (20 percent) of ten patients with atrial fibrillation, one (33 percent) of three patients with paroxysmal atrial tachycardia, and two (50 percent) of four patients with sustained ventricular tachycardia. In nine (75 percent) of 12 patients with nonsustained ventricular tachycardia, suppression of the arrhythmia was accomplished following the intravenous bolus of disopyramide. In 18 (78 percent) of 23 patients with frequent ventricular premature contractions, greater than 50 percent suppression of the ventricular premature contractions was achieved. These effects were satisfactorily maintained in six (86 percent) of seven patients with nonsustained ventricular tachycardia and in 14 (88 percent) of 16 patients with frequent ventricular premature contractions in whom therapy with disopyramide phosphate was continued as a 20 mg/hour intravenous drip infusion for up to 24 hours. Side effects were observed in only eight patients (14 percent) and were primarily anticholinergic in nature. Transient hypotension, not necessitating treatment with pressor agents, was observed in three patients (5 percent), in two of whom discontinuance of therapy with disopyramide was deemed necessary. Intravenous therapy with disopyramide in the dosage regimen employed appears to be moderately effective against supraventricular arrhythmia and particularly effective against ventricular arrhythmia with minimal toxicity. It appears to be a suitable alternative to intravenous therapy with lidocaine and has the additional advantage of availability for oral administration.

Administration, Oral↗

Disopyramide in patients with the Wolff-Parkinson-White syndrome and atrial fibrillation.

The effect of administration of disopyramide on the ventricular response to atrial fibrillation was studied in six patients with the Wolff-Parkinson-White syndrome. The drug was given intravenously to five patients during intracardiac electrophysiologic studies and to a sixth patient during electrocardiographic monitoring in a coronary care unit. One patient with a very rapid ventricular response to atrial fibrillation underwent a second electrophysiologic study after oral treatment for four weeks with disopyramide. In all cases, administration of disopyramide reduced the mean ventricular rate and increased the shortest interval between consecutive preexcited ventricular complexes during atrial fibrillation. Therapy with disopyramide should therefore be useful in preventing ventricular fibrillation which can result from a rapid ventricular response to atrial fibrillation in patients with an accessory atrioventricular pathway. There has been no recurrence of paroxysmal tachycardia in the four patients who have been maintained on oral therapy with disopyramide.

Adult↗

Torsades de pointes in paced patients with sick sinus syndrome after disopyramide administration.

Three ventricular inhibited mode (VVI) pacemaker implanted patients, all above 65 years, female and having sick sinus syndrome suffered from torsades de pointes; one patient after 2.5 years and the other two patients within a day of disopyramide therapy. All had hypopotassemia and plasma disopyramide was below the therapeutic range in two patients. Torsades de pointes was induced following ventricular paced beats and suppressed by cessation of disopyramide in all or by setting a higher pacing rate in one. In our department, permanent VVI pacemakers were implanted in 43 patients with sick sinus syndrome including 26 with bradycardia-tachycardia syndrome, nine of whom were treated by disopyramide. Torsades de pointes was observed only in those disopyramide treated bradycardia-tachycardia patients. Our report stresses the proarrhythmic nature of combined VVI pacing and antiarrhythmic agents in the presence of hypopotassemia.

Aged↗

Poisoning due to class IA antiarrhythmic drugs. Quinidine, procainamide and disopyramide.

Quinidine, procainamide and disopyramide are antiarrhythmic drugs in the class 1A category. These drugs have a low toxic to therapeutic ratio, and their use is associated with a number of serious adverse effects during long term therapy and life-threatening sequelae following acute overdose. Class 1A agents inhibit the fast inward sodium current and decrease the maximum rate of rise and amplitude of the cardiac action potential. Prolonged Q-T interval and, to a lesser extent, QRS duration may be observed at therapeutic concentrations of quinidine. With increasing plasma concentrations, progressive depression of automaticity and conduction velocity occur. 'Quinidine syncope' (a transient loss of consciousness due to paroxysmal ventricular tachycardia, frequently of the torsade de pointes type) occurs with therapeutic dosing, often in the first few days of therapy. Extracardiac adverse effects of quinidine include potentially intolerable gastrointestinal effects and hypersensitivity reactions such as fever, rash, blood dyscrasias and hepatitis. Procainamide produces electrophysiological changes that are similar to those of quinidine, although Q-T interval prolongation with the former is less pronounced at therapeutic concentrations. Hypersensitivity reactions including fever, rash and (more seriously) agranulocytosis are associated with procainamide, and a frequent adverse effect requiring cessation of therapy is the development of systemic lupus erythematosus. Of the 3 drugs, disopyramide has the most pronounced negative inotropic effects, which are especially significant in patients with pre-existing left ventricular dysfunction. As with quinidine, unexpected 'disopyramide syncope' at therapeutic concentrations has been described. Anticholinergic side effects are common with this drug and may require cessation of therapy. Disopyramide therapy may unpredictably induce severe hypoglycaemia. Severe intoxication with the class 1A agents may result from acute accidental or intentional overdose, or from accumulation of the drugs during long term therapy. Acute overdose can result in severe disturbances of cardiac conduction and hypotension, frequently accompanied by central nervous system toxicity. Decreased renal function can cause significant accumulation of procainamide and its active metabolite acecainide (N-acetyl-procainamide), resulting in severe intoxication. Mild to moderate renal dysfunction is less likely to lead to quinidine or disopyramide intoxication, unless renal failure is severe or concurrent hepatic dysfunction is present. Management of acute intoxication with class 1A drugs includes gut decontamination with provision of respiratory support and treatment of seizures as needed. Hypertonic sodium bicarbonate, by antagonising the inhibitory effect of quinidine on sodium conductance, may reverse many or all manifestations of cardiovascular toxicity.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Disopyramide elimination in the isolated perfused rat liver.

The elimination kinetics of disopyramide, [14C]disopyramide and [2H]disopyramide have been studied in the isolated perfused rat liver. Disappearance of disopyramide from perfusate was dose- and time-dependent over the dose range 0.3-7.5 mg. Although the mechanism underlying these observations is unclear, the data are consistent with the presence of enzyme saturation and product inhibition. Biliary secretion of conjugated metabolites appeared to be the rate-limiting step in the perfusate clearance of total radioactivity. At doses of 0.3 and 7.5 mg the kinetics of [2H]disopyramide showed a small isotope effect probably of negligible importance.

Animals↗

[Electrophysiological mechanism of combination therapy with disopyramide and propranolol for paroxysmal atrial fibrillation].

OBJECTIVES: Combined administration of propranolol and disopyramide treatment often leads to better results in patients with atrial fibrillation refractory to only disopyramide administration. The electrophysiological mechanism of this combination therapy was investigated. METHODS: Nineteen patients with paroxysmal atrial fibrillation without organic heart disease were studied. The indices for atrial vulnerability were compared in the control state, 10 min after injection of disopyramide (2 mg/kg) and 10 min after additional administration of propranolol (0.2 mg/kg). RESULTS: Administration of both drugs did not significantly change the percentage fragmented atrial activity and the interatrial conduction delay. Disopyramide increased the atrial effective refractory period and the wavelength index, defined as the ratio of the atrial effective refractory period to the interatrial conduction delay and represented the length of the reentry circuit. Additional injection of propranolol caused further increases in both values. CONCLUSIONS: Combination therapy with disopyramide and propranolol improves atrial vulnerability by increasing the wavelength.

Adult↗

Disopyramide block of cardiac sodium current after removal of the fast inactivation process in guinea pig ventricular myocytes.

To determine the necessity of sodium channel fast inactivation for the block of sodium current (INa) by disopyramide, we studied the effects of disopyramide on INa in guinea pig ventricular myocytes treated with chloramine-T, which removes the fast component of INa inactivation. After exposure to chloramine-T (2 mM), INa amplitude was reduced at all voltages and INa decay was irreversibly prevented. Disopyramide (20 microM) produced both tonic block and use-dependent block of INa in chloramine-T-treated myocytes. Before treatment with chloramine-T, the time course of both the onset of and recovery from use-dependent block by disopyramide were best fit by the sum of double exponential functions, and the time constant of the slow phase of recovery increased as the membrane was hyperpolarized. After removal of the fast component of INa inactivation by chloramine-T, the fast phase of the onset block and the fast phase of recovery from block were abolished. However, the voltage dependency of the time course of recovery from block was unchanged. Thus, although the fast sodium inactivation process is not required for tonic and use-dependent block of INa by disopyramide, it contributes to the fast phase of block development and unbinding from use-dependent block.

Animals↗

Pharmacologic evaluation of standard and controlled-release disopyramide.

Controlled-release disopyramide offers many potential advantages over the standard formulation for improved patient compliance, possible reduction of concentration-related adverse effects, and predictability of pharmacologic effect. The pharmacology of disopyramide, potential advantages and disadvantages of the use of sustained- (or controlled-)release formulations of drugs, and the preliminary finding of our use of controlled-release disopyramide are described. Controlled-release disopyramide is a promising addition to the antiarrhythmic formulary that may increase the clinical utility of disopyramide.

Anti-Arrhythmia Agents↗

Applicability of capillary gas liquid chromatography to the measurement of free fraction of disopyramide in human plasma.

A sensitive and specific capillary gas liquid chromatographic nitrogen/phosphorus selective detection technique was used to measure unbound disopyramide in human plasma. The concentration dependent protein binding of disopyramide was examined. Various concentrations of disopyramide alone ranging from 0.5 to 10.0 micrograms/ml in 0.4 ml of isotonic phosphate buffer (pH 7.4) were dialyzed for 6 hours at 37 degrees C, against 0.4 ml blank plasma from five healthy volunteers. The concentration-dependent binding of disopyramide was confirmed. The average free fraction for disopyramide at concentrations of 0.5, 1.0, 2.0, 3.0, 4.0, 5.0 and 10.0 micrograms/ml were 0.14, 0.15, 0.20, 0.27, 0.30, 0.34 and 0.53, respectively.

Chromatography, Gas↗

Efficacy of disopyramide in comparison with verapamil and propranolol in the prevention of acetylcholine-induced atrial fibrillation in the dog.

The efficacy of verapamil and propranolol was studied in comparison with disopyramide on the atrial fibrillation experimentally induced in the dog heart in situ by electrical stimulation combined with intra-aortic injection of acetylcholine (ACh). After reducing the amplitude and duration of the monophasic action potential (MAP) and the duration of the effective refractory period (ERP) of the atrial contractile fibres, ACh lowered the fibrillation threshold (FT), and, when fibrillation had been elicited, it accelerated the fibrillation rate (FR). Verapamil and propranolol failed to prevent atrial fibrillation: they did not counteract any of the alterations in the electrophysiological properties of the atrial contractile fibres due to ACh. In contrast, disopyramide, at doses within the therapeutic range, prevented fibrillation. The fibrillation threshold, which fell from 50 mA to 1 mA in the presence of ACh, was restored to control values by disopyramide. Disopyramide also antagonized the reduction in amplitude of MAP caused by ACh before the triggering of fibrillation and the reductions by ACh of the durations of MAP and ERP. Disopyramide first slowed FR, in association with an increase in amplitude of fibrillation waves and a tendency to synchronous activity, and ultimately terminated the fibrillation.

Acetylcholine↗

Intravenous disopyramide in myocardial infarction: a haemodynamic study.

Disopyramide (2 mg/kg intravenously in 10 minutes) was administered to 14 patients with myocardial infarction within 36 hours of their infarct. Heart rate (HR) increased significantly five minutes after completion of the injection, but profound tachycardia was not seen. Mean wedge pressure (WP) rose and stroke volume (SV) fell. Disopyramide therefore showed a negative inotropic effect on the heart. Systemic vascular resistance (SVR) increased but blood pressure was not significantly altered. Diastolic and mean pulmonary arterial (PA) pressure was also increased by disopyramide. Peak plasma disopyramide level was reached five minutes after injection. The implications of the haemodynamic effects of disopyramide are discussed.

Adult↗

Time course of the electrophysiological effects of quinidine on canine cardiac Purkinje fibers: concentration dependence and comparison with lidocaine and disopyramide.

We used standard microelectrode techniques to observe the time course of the appearance and disappearance of the cellular electrophysiologic effects of antiarrhythmic drugs during drug infusion and after washout. The slopes of phases 0 (Vmax), 2(V2) and 3(V3) of the action potential of canine Purkinje fibers were followed during 30 min of infusion of quinidine (0.2 - 1 x 10(-5) M), disopyramide (1 x 10(-5) M) or lidocaine (1 x 10(-5) M) and then during 60 min of washout with drug-free Tyrode's solution. All three drugs significantly reduced V3 and increased V2; quinidine and disopyramide also significantly reduced Vmax. The onset of the effects of quinidine and disopyramide on Vmax, V2 and V3 occurred at similar rates. Both the onset and disappearance of the effects of lidocaine were more rapid than those of quinidine and disopyramide. This may have been related to the greater lipid solubility of lidocaine with a heptane: water partition coefficient of 0.85 for lidocaine compared with 0.16 for disopyramide and 0.06 for quinidine. The effects of quinidine (1 x 10(-5) M) on V3 reversed much more slowly upon washout (T1/257 +/- 12 min, mean +/- S.E.) than the effects of quinidine on Vmax (T1/218 +/- 3 min, P less than .01) and V2 (T1/215 +/- 3 min, P less than .01). Concentration-response data showed that the time course of washout of the effects of quinidine was independent of drug concentration. These data suggest that rapidity of antiarrhythmic drug action is related to lipophilicity and that the effect of quinidine on V3 is due to action at a different cellular site from its effects on Vmax and V2.

Action Potentials↗

[Paradoxic response to disopyramide and quinidine (author's transl)].

Until recently, severe paradoxic responses to disopyramide have been believed to occur only, if at all, at extremely high doses. This credo has been shaken by some recent reports on severe ventricular tachyarrhythmias occurring in some patients on disopyramide. A further case (62 years, female, mitral commissurotomy in 1966, combined mitral valve lesion) is presented in whom a normal oral regimen (100 mg disopyramide four times daily) induced syncope due to ventricular tachycardia and flutter. The patient exhibited a long QT time before medication without deafness. Indication for treatment was the preservation of sinus rhythm as intermittent atrial fibrillation or flutter has been documented before. The serum potassium level was in the range of normal. Similar side-effects occurred some days later when the patient received quinidine sulfate. A survey of the most recent literature reveals a total of 20 patients with proven or suspected paradoxic responses to disopyramide. Factors that might favour the occurrence of paradoxic effects were preexisting QT prolongation, hypokaliemia, or massive overdosage. Though the total incidence of these side-effects seems to be relatively low, disopyramide should be given to special subgroups of patients only under careful monitoring.

Adult↗

Voltage-dependent inhibition of the ATP-sensitive K+ current by the class Ia agent disopyramide in cat ventricular myocytes.

The inhibition of the adenosine triphosphate-sensitive K+ (KATP) current by disopyramide, a class Ia antiarrhythmic drug, was studied using whole cell voltage clamp in cat ventricular myocytes at 37 degrees C and was compared to that seen with quinidine, a prototypical class Ia drug. The inhibition of the levcromakalim-induced KATP current was concentration dependent, with Ki, at -20 mV, of 4.9 +/- 0.6 and 1.5 +/- 0.1 microM for disopyramide and quinidine, respectively. Disopyramide also inhibited the KATP current elicited during the metabolic inhibition induced by the uncoupler CCCP. Disopyramide (9 microM) produced a 75% inhibition in comparison to the 82% inhibition of the levcromakalim-elicited current. The degree of inhibition increased with depolarization. This effect was quantified using the fractional electrical distance (delta) as an index of the voltage dependence, yielding equivalent voltage dependency values of 0.48 +/- 0.02 and 0.51 +/- 0.08 for disopyramide and quinidine, respectively. Depolarizing and repolarizing voltage steps in presence of tetrodotoxin (5-30 microM), nitrendipine (1 microM), and 4-aminopyridine (1.5 microM) failed to reveal clear kinetics of block and unblock, suggesting either a very fast block (< 3 ms) or a tonic (i.e., time-independent) inhibition. The preferential inhibition of KATP channels at depolarized potentials during metabolic inhibition may contribute to preserve the ability of class Ia agents to prolong action potential duration without compromising resting potential.

Action Potentials↗

A study of the acute electrophysiological and cardiovascular action of disopyramide in man.

The acute electrophysiological and hemodynamic effects of intravenous disopyramide (1.5 mg/kg body weight) were studied in 12 patients with suspected coronary artery disease. Plasma levels of disopyramide were monitored. Disopyramide delayed conduction within the His-Purkinje system and increased the effective refractory period of the atrium. Conduction within the AV node and its refractory period, however, was not significantly altered by the drug. The corrected Q-T interval was significantly increased. Disopyramide increased systemic arterial pressure and slightly raised the left ventricular end diastolic pressure. Heart rate, cardiac and stroke index were unaltered. Peak mean levels of disopyramide were reached 5 minutes after the injection of the drug.

Adult↗

Disopyramide-induced urinary retention. Report of nine cases and review of the literature.

Urinary retention is sometimes reported as an adverse reaction during disopyramide phosphate therapy. We report one case of acute renal failure and eight cases of urinary retention. Previous reports of this adverse reaction are summarized. The cause of disopyramide-induced urinary retention is unknown. It is possible that disopyramide or a metabolite via their anticholinergic properties plays some role in the manifestation of urinary tract symptomatology. Treatment of this adverse reaction includes lowering the dose, discontinuing the drug, or possibly using a cholinergic drug to compete with the anticholinergic effects of the disopyramide.

Aged↗

Simultaneous determination of disopyramide and mono-N-dealkyldisopyramide enantiomers in human plasma by capillary electrophoresis.

In this paper, a rapid method for the enantioselective analysis of the antiarrhythmic drug disopyramide and its main metabolite mono-N-dealkyldisopyramide in human plasma by capillary electrophoresis employing the cyclodextrin-modified electrokinetic chromatography mode is described. Sample clean-up was carried out by alkalinization with sodium hydroxide followed by liquid-liquid extraction with toluene. The complete enantioselective analysis was performed within less than 5 min using 20 mmol/L sodium acetate buffer, pH 5.0, containing 0.2% w/v sulfated beta-cyclodextrin as chiral selector. A 40 cm uncoated fused-silica capillary was used for the analysis, performed at a voltage of 15 kV and at 20 degrees C. The calibration curves were linear over the concentration range of 62.5-1850 ng/mL and 125-1850 ng/mL for each enantiomer of disopyramide and mono-N-dealkyldisopyramide. The mean recoveries for disopyramide and mono-N-dealkyldisopyramide enantiomers were up to 87 and 69%, respectively. All four enantiomers studied could be quantified at three different concentrations (200, 400 and 600 ng/mL) with coefficient of variation and % relative error not higher than 15%. The quantitation limit was 62.5 ng/mL for (+)-(S)-and (-)-(R)-disopyramide and (-)-(R)-mono-N-dealkyldisopyramide and 125 ng/mL for (+)-(S)-mono-N-dealkyldisopyramide, using 1 mL of human plasma.

Disopyramide↗