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Electrophysiologic effects of encainide on acutely ischemic rabbit myocardial cells.

The electrophysiologic effects of encainide were determined in normal and acutely ischemic (30 min) rabbit ventricular muscle cells. Encainide (10(-6), 5 X 10(-6) and 10(-5) M) had no effect on resting potential (RP); 10(-6) M encainide reduced overshoot and action potential (AP) amplitude of cells in normal left ventricles and cells in normal areas of ischemic ventricles. Encainide, 5 X 10(-6) M and 10(-5) M, depressed Vmax and prolonged AP duration of normal cells. Surviving cells within ischemic areas displayed AP with reduced RP, overshoot, AP amplitude, Vmax and shortened AP duration. All encainide concentrations reduced overshoot, AP amplitude and Vmax of depressed AP. Encainide's lengthening of AP duration was greater in cells within ischemic areas than in surrounding normal cells. Encainide (10(-6) M) prolonged effective refractory period and often blocked AP in ischemic cells. Encainide also caused depression in membrane responsiveness. Encainide's differential effect upon AP may significantly contribute to its antiarrhythmic activity in ischemic heart disease.

Action Potentials↗

Treatment of atrioventricular node reentrant tachycardia with encainide: reversal of drug effect with isoproterenol.

To determine the efficacy of encainide in the treatment of atrioventricular (AV) node reentrant tachycardia, Holter electrocardiographic (ECG) monitoring, exercise treadmill testing and programmed electrical stimulation were performed in 16 patients while they were taking no medication and after steady state levels were reached during treatment with encainide (75 to 200 mg/day; mean 117 +/- 47). In addition, to study the possible reversal of drug effects by sympathetic stimulation, AV node conduction and tachycardia induction were reassessed during isoproterenol infusion (1 to 3 micrograms/min), a dose calculated to increase the rest heart rate by 25 +/- 10%. Sustained AV node reentrant tachycardia could be initiated in all 16 patients in the control state, in 2 patients after encainide and in 10 patients during isoproterenol infusion. The shortest mean atrial paced cycle length sustaining 1:1 AV conduction was 358 +/- 57 ms during the control study, which increased to 409 +/- 59 ms with encainide (p less than 0.01 versus control) and decreased to 313 +/- 31 ms during isoproterenol infusion (p less than 0.01 versus control and encainide). The shortest mean ventricular paced cycle length with 1:1 ventriculoatrial conduction was 337 +/- 56 ms in the control study, 551 + 124 ms with encainide infusion (p less than 0.01 versus control) and 354 +/- 72 ms during isoproterenol infusion in the encainide-loaded state (p less than 0.01 versus both control and encainide). During a mean follow-up period of 19 +/- 10 months, significant clinical recurrences occurred in 4 of the 10 patients in whom tachycardia could still be initiated with encainide (with or without isoproterenol).(ABSTRACT TRUNCATED AT 250 WORDS)

Anilides↗

Co-inheritance of the polymorphic metabolism of encainide and debrisoquin.

O-demethylation of the investigational antiarrhythmic encainide was found to be correlated with the genetically determined hydroxylation of debrisoquin in 20 randomly selected and unrelated subjects and in five members of one family. Extensive metabolizers of debrisoquin had a mean (+/- SD) encainide elimination t1/2 of 1.19 +/- 0.98 hours (range 0.25 to 3.4 hours). Poor metabolizers of debrisoquin (two normal subjects and three family members) had a mean t1/2 of 13.2 +/- 0.73 hours (range 7.8 to 22.4 hours). The elimination rate constant of encainide and the fractional excretion of O-desmethyl encainide in urine were linearly related to the fractional urinary excretion of 4-hydroxy-debrisoquin. Poor metabolizers could be identified after a 50 mg dose of encainide by the fractional excretion of O-desmethyl encainide in urine or the absence of (1) measurable ECG changes or (2) O-desmethyl encainide in plasma. The correlation between excretion of O-desmethyl encainide and 4-hydroxy-debrisoquin suggests that significant numbers of the caucasian population (7% to 9%) are likely to be poor metabolizers of encainide and to have markedly different pharmacokinetics and plasma concentration-response relationships than extensive metabolizers.

Administration, Oral↗

Electrophysiological effects of encainide (MJ9067) on canine subendocardial Purkinje fibers surviving infarction.

The electrophysiological effects of encainide (MJ9067) on canine subendocardial Purkinje fibers surviving infarction were examined 22-24 h after coronary artery ligation, using standard microelectrode techniques at pH 7.4. Encainide (5 and 10 microM) shortened APD50, decreased the action potential amplitude and overshoot, caused a 2-3 mV depolarization of the cell, and decreased the maximum rate of phase 0 depolarization. All these effects were dose dependent. APD90 was slightly, but not significantly, shortened. Encainide had a greater effect on APD50 and APD90 at longer (1,000 ms) stimulation cycle lengths than at shorter (400 ms) cycle lengths. There was a significant interaction between the effects of stimulation rate and encainide concentration on APD90, APD50, amplitude, and overshoot. The same parameters measured at a lower pH (7.1) gave similar results. There was a significant correlation (r = -0.540, p less than 0.001) between the control APD90 and the degree and direction of change of APD90 after 10 microM encainide. Automaticity of the infarcted preparations was eliminated or slowed in a dose-dependent fashion by 5 and 10 microM encainide. The curve relating membrane potential and the maximum rate of phase 0 depolarization was shifted down and toward higher potentials by 5 microM encainide. The results show that encainide produces similar changes in the action potentials of Purkinje fibers surviving infarction as in normal Purkinje fibers, and is effective in lowering the rate of spontaneous depolarization in infarcted tissue. Furthermore, encainide appears to be the only antiarrhythmic drug which has been shown to increase and decrease APD90, depending on the initial APD90 of the cell.

Action Potentials↗

Developmental electrophysiology of encainide and its major metabolites on the Purkinje fiber action potential.

OBJECTIVE: With clinical data suggesting that neonates may be more prone to developing electrophysiologic side effects from encainide, this study investigates the in vitro developmental electrophysiologic effects of encainide and its major metabolites on the action potential parameters of the canine cardiac Purkinje fiber. METHODS: With standard microelectrode techniques, the in vitro tonic and rate-related effects of encainide, and its major metabolites (3-methoxy-4-hydroxy encainide, MODE, and O-dimethyl encainide, ODE) were investigated using mature and immature canine cardiac Purkinje fibers. RESULTS: The significant developmental differences in the effects of these compounds on the canine Purkinje fiber illustrated in this study are: (1) 1 x 10(-6) M encainide depresses Vmax in neonatal Purkinje fibers, yet not in the adult. (2) 1 x 10(-6) M MODE lengthens APD90 in the neonate, yet it has no substantial effect in the adult. (3) 1 x 10(-6) M ODE shortens APD90 in the adult, yet it has no appreciable effect on the neonate. (4) Rate-related effects of encainide and ODE are more pronounced in adult Purkinje fibers. CONCLUSION: In contrast to other in vitro studies on class I antiarrhythmic agents, neonatal canine Purkinje fibers seem to be more sensitive than the adult to the tonic depolarization depressant effect of encainide. This in vitro sensitivity parallels clinical experience with the drug in neonatal patients. Although encainide is no longer available for clinical use, these findings highlight the fact that the immature conduction system may show markedly different sensitivities to different class I agents despite the fact that these agents share similar qualitative pharmacologic properties.

Action Potentials↗

Antiarrhythmic efficacy of encainide in patients with refractory recurrent ventricular tachycardia.

Encainide is a new agent for treating ventricular arrhythmias. We attempted long-term oral therapy with encainide in 38 patients with recurrent, strikingly drug-refractory ventricular tachycardia. The usual daily dose of encainide ws 150-250 mg divided into four or six doses. The mean period until withdrawal of encainide or the date of follow-up was 4.2 months. Encainide completely eliminated recurrence of ventricular tachycardia in 54% of the patients for 6 months of therapy and in 29% of the patients for 18-30 months of therapy. Twelve patients (32%) had side effects possibly due to encainide; in four, the arrhythmia may have been worsened by encainide. During chronic therapy, encainide increased the PR interval by 18% and the QRS duration by 32%. There was no significant change in the corrected QT interval. The presence of QRS prolongation appeared to correlate with antiarrhythmic effect. We conclude that encainide is a safe, well-tolerated antiarrhythmic agent that is often effective against previously drug-refractory ventricular tachycardia.

Actuarial Analysis↗

Encainide and its metabolites. Comparative effects in man on ventricular arrhythmia and electrocardiographic intervals.

To assess the relative contributions of encainide and its putatively active metabolites, O-demethyl encainide (ODE) and 3 methoxy-O-demethyl encainide (3MODE), to the drug's pharmacologic effects, we compared intravenous infusions and sustained oral therapy in two phenotypically distinct groups of patients, extensive and poor metabolizers of encainide. Unlike poor metabolizers, extensive metabolizers had appreciable quantities of both metabolites detectable in plasma and had fourfold shorter elimination half-lives for encainide. By quantitating electrocardiogram intervals, arrhythmia frequency, and plasma concentrations, we found that, in poor metabolizers, arrhythmia suppression and ventricular complex (QRS) prolongation were correlated positively with encainide concentrations (r greater than or equal to 0.570, P less than 0.014). In these two subjects, antiarrhythmic concentrations of encainide (greater than 265 ng/ml) were at least fivefold higher than those sustained in the six extensive metabolizers during steady state oral therapy. In extensive metabolizers, encainide concentrations were uncorrelated with effects. Arrhythmia suppression and QRS prolongation in extensive metabolizers correlated best with ODE (r greater than or equal to 0.816, P less than 0.001); QTc change correlated positively with both 3MODE and ODE. Arrhythmia suppression paralleled QRS prolongation; the relationship between them appeared similar in both phenotypic groups. In most patients, extensive metabolizers, encainide effects during oral therapy are mediated by metabolites, probably ODE.

Aged↗

Encainide: a new antiarrhythmic agent.

Encainide is classified as a type Ic antiarrhythmic agent. Absorption is essentially complete, but bioavailability is variable because of first-pass metabolism. Two metabolic phenotypes, extensive and poor metabolizers, have been identified. O-demethyl encainide and 3-methoxy-O-demethyl encainide are active metabolites of encainide and contribute significantly to its antiarrhythmic effect. In clinical trials, encainide has been shown to be highly effective in suppressing premature ventricular contractions and ventricular tachyarrhythmias. The drug is useful in treating ventricular arrhythmias refractory to other agents. Encainide is also moderately effective in supraventricular arrhythmias involving an accessory pathway. It is highly effective in cases of Wolff-Parkinson-White syndrome, where the accessory pathway has a short refractory period. Common adverse effects of encainide are dizziness, visual disturbances, nausea, and headache. Encainide appears to be a safe and effective antiarrhythmic agent with few adverse effects and negligible hemodynamic effects. Encainide may be a useful agent for ventricular and supraventricular arrhythmias, particularly those refractory to other agents.

Anilides↗

Marked Q-T prolongation due to encainide therapy.

Encainide is a type Ic antiarrhythmic agent. During encainide therapy, mild Q-T interval prolongation can be seen, usually associated with prolongation of the Q-R-S interval. The present case report describes an unusual and marked prolongation of the Q-T interval with no Q-R-S interval prolongation in a patient who was treated with encainide for atrioventricular nodal reentrant tachycardia. The drug metabolite profile in this patient's serum indicated an unusual elevation of the 3-methoxy-O-demethyl encainide metabolite, versus O-demethyl encainide. This elevated metabolite level suggests that 3-methoxy-O-demethyl encainide has a significant effect on prolongation of repolarization. An abnormal metabolism of encainide may be the underlying mechanism by which some patients would manifest an unusual prolongation of Q-T interval during encainide therapy.

Anilides↗

Pharmacokinetics of encainide in patients with cirrhosis.

The pharmacokinetics of encainide were investigated in 10 patients with cirrhosis and 10 matched controls following single intravenous (IV, 25 mg), single oral (so, 25 mg), and multiple oral (mo, 25 mg thrice daily over 5 days) dosing. The hepatic oxidative drug-metabolizing enzyme capacity and its inducibility were assessed by antipyrine elimination and 6-beta-hydroxycortisol excretion. Eight controls and nine patients were of the extensive metabolizer phenotype (EM), as assessed by the sparteine metabolic ratio. Statistics was performed in EM only. The antipyrine half-life was significantly longer and clearance was significantly lower in patients with cirrhosis. Following IV administration, no significant differences in encainide half-life clearance, volume of distribution, or the area under the plasma concentration time curve (AUC) were observed between patients and controls. Following so and mo, there was a fourfold reduction in the oral clearance in cirrhotics. Thus, encainide bioavailability was increased in cirrhosis. Whereas the AUC of encainide was significantly higher in patients, no differences were observed in its active metabolites, O-desmethyl-encainide (ODE) and 3-methoxy-O-desmethylencainide (MODE). Plasma concentrations of encainide and its metabolites after 3 and 5 days of mo suggested steady-state conditions after 3 days of oral dosing. No change in antipyrine elimination and 6-beta-hydroxycortisol excretion following mo occurred. There was no relationship between parameters of encainide and antipyrine elimination. In conclusion, even though the elimination of encainide was reduced in patients with cirrhosis, plasma levels of the pharmacologically active metabolites, ODE and MODE, were comparable.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Malignant ventricular tachyarrhythmias associated with the use of encainide.

In patients treated with the antiarrhythmic drug, encainide, the agent appeared to cause or exacerbate malignant ventricular tachyarrhythmias in 11 cases. The most common type of arrhythmia associated with encainide toxicity was polymorphic ventricular tachycardia (VT) resulting in cardiac arrest. In contrast to drug-induced arrhythmias commonly encountered with quinidine and other type I antiarrhythmic drugs, encainide-induced rhythm was not associated with marked QT prolongation, was not necessarily initiated by R-on-T premature ventricular beats, and usually did not self-terminate. Two patients could not be resuscitated from the rhythm, and several others required prolonged or multiple resuscitations. The risk of encainide-induced ventricular tachyarrhythmias was 11% in 90 patients receiving the drug for recurrent sustained VT and/or fibrillation (VF), 2.2% in 47 patients receiving the drug for chronic complex ventricular ectopic activity. Encainide-induced arrhythmias occurred 29.8 +/- 11.3 hours (range 17 to 48 hours) after starting chronic oral maintenance doses or after dose increases, or 1 to 2 hours after single large doses. Patients experiencing this adverse effect could not be distinguished from those who did not on the basis of encainide dose, degree of QRS widening, or clinical status. We recommend that patients with history of sustained VT or VF have encainide therapy started only in a hospital setting with continuous ECG monitoring and capabilities for cardiopulmonary resuscitation. Dose changes should not be made more frequently than every 48 hours, and patients should not be discharged from the hospital until they have been on stable dose of encainide for a minimum of 48 hours.

Adult↗

Electrophysiology of oral encainide.

The electrophysiologic effects of oral encainide were assessed in 15 patients. Electrophysiologic studies were performed before and after 3 or more days of oral encainide therapy, 100 to 300 mg/day (mean 242 +/- 66). Patients received no other cardioactive drugs during this time. Encainide significantly (p less than 0.005) lengthened the following: A-H interval (74.5 +/- 21.5 to 105.5 +/- 39.1 ms, mean +/- standard deviation), the shortest atrial pacing cycle length maintaining 1:1 atrioventricular (A-V) nodal conduction (339.0 +/- 71.3 to 417.0 +/- 88.6 ms), H-V interval (47.5 +/- 7.8 to 67.1 +/- 12.9 ms), QRS interval (103.5 +/- 30.9 to 132.3 +/- 35.7 ms), right atrial (233.8 +/- 27.2 ms to 282.9 +/- 38.6 ms) and right ventricular (235.7 +/- 15.6 to 267.1 +/- 36.9 ms) effective refractory periods and Q-T interval (364.4 +/- 38.0 to 416.9 +/- 55.3 ms). The spontaneous sinus cycle length did not change significantly. In four patients who had accessory A-V muscle connections (two manifest, two concealed) encainide abolished anterograde conduction over the accessory pathway in two patients, and increased the retrograde effective refractory period and/or lengthened retrograde conduction time or blocked retrograde conduction in the accessory pathway, or all three variables, in all four patients. There was no correlation between the plasma encainide concentration obtained at the time of study and the magnitude of change in any electrophysiologic variable. It is concluded that (1) encainide depresses conduction in the A-V node, His-Purkinje system and accessory pathway, and increases refractoriness of the atrium, ventricle and accessory pathway, and (2) differences between these results and those of earlier studies using encainide in a single intravenous dose (which found no significant effects on A-V nodal conduction or atrial and ventricular refractoriness) may be explained in part by the effects of an active metabolite of encainide.

Administration, Oral↗

Encainide for refractory supraventricular tachycardia in children.

Fifteen children, aged 5 days to 19 years (mean 4.7 years), with medically refractory supraventricular tachycardia were given oral encainide. In 10 of 15 children with "incessant" tachycardia (greater than 10% of the day), encainide alone controlled supraventricular tachycardia in 5 children; in combination with other antiarrhythmic agents, it partially controlled supraventricular tachycardia in 4 and was ineffective in 1. In 5 children with accessory atrioventricular connections, encainide eliminated supraventricular tachycardia in 3 and was ineffective in 2. Therapeutic encainide dosages ranged from 60 to 120 mg/m2/day (mean 90) (2.0 to 5.7 mg/kg/day). Encainide caused prolongation of the PR interval by 35%, RP interval by 17%, QRS interval by 44% and corrected QT interval by 10%. In 5 children with depressed left ventricular function administration of encainide, by controlling the arrhythmia, increased echocardiographic left ventricular shortening fraction from a mean of 24% to a mean of 36%. Three patients developed excessive QRS aberrancy, which was associated with wide QRS tachycardia in 2. No adverse reactions were noted in the absence of QRS aberration. Side effects were minor and noted in only 1 of 9 patients continuing to take the drug in 9 months of follow-up. Encainide was effective, or partially effective, in the control of resistant or incessant supraventricular tachycardia in 80% of children treated. Encainide allowed rapid resolution of arrhythmia-induced cardiomyopathy by controlling chronic supraventricular tachycardia.

Adolescent↗

Encainide in lethal ventricular arrhythmias evaluated by electrophysiologic testing and decrease in symptoms.

Encainide hydrochloride has distinct electrophysiologic properties that suggest active antiarrhythmic properties. Encainide has been administered both intravenously (0.5 to 1.7 mg/kg) and orally (100 to 300 mg/day) to patients with lethal ventricular arrhythmias--ventricular tachycardia (VT) and ventricular fibrillation--and evaluated by electrophysiologic testing. In 62 patients with inducible sustained VT, intravenous encainide prevented initiation in 13 (21%). In 57 patients with refractory sustained VT, oral encainide prevented initiation of VT by programmed stimulation in 17 (30%). The results obtained with intravenous and oral encainide in the same patient were usually concordant (93%). Encainide may worsen ventricular arrhythmia, most typically by converting nonsustained VT into sustained VT during electrophysiologic testing. In patients with lethal ventricular arrhythmia, analysis of symptoms before and during chronic encainide therapy showed that the number and severity of arrhythmia-related symptoms were reduced. Encainide appears to be a useful antiarrhythmic agent.

Administration, Oral↗

Comparative study of encainide and quinidine in the treatment of ventricular arrhythmias.

The antiarrhythmic efficacy and safety of oral encainide hydrochloride and quinidine sulfate were compared in a nine center double-blind crossover study in 187 outpatients with benign or potentially lethal ventricular arrhythmias. Patients with at least 30 premature ventricular complexes/h were randomized to receive either encainide, 25 mg four times/day, or quinidine, 200 mg four times/day, for 2 weeks. These doses were continued for another 2 weeks if a 75% or greater reduction in premature ventricular complexes was observed. If this reduction was not seen, encainide was increased to 50 mg four times/day or quinidine to 400 mg four times/day for an additional 2 weeks. Both drugs produced a statistically significant reduction in premature ventricular complex frequency compared with baseline values. Encainide produced a statistically significant greater mean reduction in total premature ventricular complexes than did quinidine during the initial dose phase and after dose adjustment. More patients required dose increases of quinidine (60%) than of encainide (51%). Early discontinuation of treatment resulting in advancement to the next study period occurred in 12 patients taking encainide and 38 patients taking quinidine (p less than 0.05). PR and QRS intervals increased significantly during encainide treatment, as did QTc and JT intervals during quinidine treatment. No adverse reactions resulted from these electrocardiographic changes. Adverse reactions were more common with quinidine than with encainide.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

The effect of diltiazem on the disposition of encainide and its active metabolites.

The disposition of encainide is under genetic control. In extensive metabolizers, the drug undergoes extensive first-pass metabolism to form the active metabolites O-desmethylencainide (ODE) and 3-methoxy-O-desmethylencainide (MODE). Because diltiazem is a known inhibitor of hepatic oxidative metabolism, the disposition of encainide and its metabolites was studied in eight extensive metabolizers and one poor metabolizer before and after administration of 90 mg diltiazem every 8 hours for 10 days. After diltiazem, the encainide serum AUC values increased in seven of the eight extensive metabolizers, and the percent recovery of encainide in urine increased by 69%. There were no apparent changes in the serum AUC values of the metabolites, suggesting that diltiazem may alter both the formation and the elimination clearances of the metabolites to a similar degree. In the poor metabolizer, encainide serum AUC increased 33% during treatment with diltiazem, but ODE and MODE could not be reliably quantitated. The subjects had no change in QRS, QTc, or JTc intervals after administration of diltiazem. Diltiazem inhibited the first-pass metabolism of encainide, resulting in increased bioavailability. This appeared to be caused by the inhibition of debrisoquin 4-hydroxylase and impairment of other unmeasured metabolic pathways for encainide. However, because no change occurs in the systemic exposure to the active metabolites, dosage adjustments in extensive metabolizers are probably not required for patients receiving combination encainide and diltiazem therapy.

Adult↗

Treatment of frequent ventricular arrhythmia with encainide: assessment using serial ambulatory electrocardiograms, intracardiac electrophysiologic studies, treadmill exercise tests, and radionuclide cineangiographic studies.

The effects of encainide on ventricular arrhythmia and left ventricular function were studied in 21 patients with chronic, high-grade ventricular arrhythmia using a prospective, 3-month, placebo-controlled, single-blind trial design. Encainide caused a 96% decrease in the average hourly frequency of ventricular premature complexes (VPCs) and comparable reductions in salvos of nonsustained ventricular tachycardia (VT) and episodes of sustained VT. Intracardiac electrophysiologic testing showed prolonged intraatrial and intraventricular conduction times and increased atrial, atrioventricular nodal, and ventricular refractory periods with both i.v. and oral encainide without His-Purkinje block, despite marked prolongation of HV and QRS intervals. Induced repetitive ventricular beating after ventricular extrastimuli in 15 patients showed persistent repetitive ventricular beating with chronic oral encainide in seven patients, four of whom had sustained VT within 2 months of treatment on encainide. Encainide did not reduce exercise capacity or left ventricular ejection fraction at rest or during supine exercise. Minor adverse effects of encainide in 11 of 21 patients included dose-related visual disturbances, dizziness and sinus pauses (less than 3 seconds). Major adverse effects included the new appearance of sustained VT in three of 20 patients (15%). Oral encainide effectively reduces the frequency and grade of VPCs, prolongs intracardiac conduction times, and does not impair left ventricular performance. However, it is associated with frequent minor side effects and uncommon but potentially severe major side effects (sustained VT), both of which apparently have a direct relationship to the size of the dose.

Adult↗

Clinical efficacy and electrophysiologic effects of encainide in patients with Wolff-Parkinson-White syndrome.

We performed electrophysiologic studies in 19 patients with accessory pathways before and during encainide therapy with a mean daily dose of 197 mg. Fourteen patients had manifest accessory atrioventricular connections, and five patients had concealed accessory atrioventricular connections. The patients had recurrent atrioventricular reentrant tachycardia for a mean of 15.8 years and had received a mean of 3.6 drug trials without successful suppression of recurrent arrhythmias. Encainide caused complete antegrade conduction block in the accessory pathway in eight of 14 patients with manifest accessory atrioventricular connections. The shortest atrial pacing cycle length maintaining 1:1 conduction over the accessory pathway at control study w3as 328 +/- 66 msec in patients in whom antegrade conduction block occurred, and it was 247 +/- 21 msec (p less than .01) in patients in whom conduction remained during encainide therapy. Retrograde conduction over accessory atrioventricular connections could be evaluated in 14 patients, and complete block occurred in seven patients during encainide therapy. There was no correlation between control retrograde effective refractory period or conduction of the accessory pathway and subsequent development of conduction block with encainide therapy. It should be noted that five patients who developed drug-related retrograde block over the accessory pathway had initial retrograde effective refractory periods for the accessory pathway less than 270 msec. Nineteen patients had atrioventricular reentrant tachycardia initiated at control electrophysiologic study. Encainide prevented induction of tachycardia in 10 patients, and in the other nine patients, cycle length of tachycardia increased during drug treatment from 313.9 +/- 53.1 to 418.3 +/- 80.9 msec (p less than .001), primarily due to an increase in ventriculoatrial conduction time from 162.2 +/- 43.8 to 238.3 +/- 87.9 msec (p less than .01). Fifteen patients continued encainide treatment for a mean of 18 months (range 7 to 38), and all but one patient remain asymptomatic. Encainide is well tolerated and prevents recurrence of reentrant tachycardia in patients with Wolff-Parkinson-White syndrome very effectively.

Adolescent↗