Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Procainamide”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 127 records · Page 7Linked to original sources

Pharmacokinetic and electrophysiologic interactions of amiodarone and procainamide.

The effects of amiodarone on the pharmacokinetic and electrophysiologic properties of procainamide were examined in eight patients treated for recurrent ventricular arrhythmias who received intravenous procainamide, 6 to 15 mg/kg, at control and after 1 to 2 weeks of oral amiodarone treatment. Compared with control, procainamide plasma clearance decreased from 0.43 +/- 0.12 L/kg-hr to 0.33 +/- 0.12 L/kg-hr (P less than 0.01), plasma elimination half-life increased from 3.77 +/- 0.64 hours to 5.21 +/- 0.42 hours (P less than 0.01), and volume of distribution was unchanged from 2.31 +/- 0.74 L/kg to 2.47 +/- 0.90 L/kg during amiodarone treatment. As single agents, intravenous procainamide and oral amiodarone produced equivalent increases in QRS duration, rate-corrected QT interval, right ventricular effective refractory period, and cycle length of induced ventricular tachycardia. After the addition of intravenous procainamide to amiodarone the QRS duration, rate-corrected QT interval, and, in six of eight patients, ventricular tachycardia cycle length were significantly increased compared with control or either drug alone, suggesting additive electrophysiologic effect. However, acceleration of induced ventricular tachycardia occurred in one patient with combined treatment, suggesting a potential for adverse electrophysiologic interactions. These findings indicate that amiodarone has pharmacokinetic and electrophysiologic interactions with procainamide and suggest that the intravenous dose of procainamide be reduced by 20% to 30% during concurrent drug administration.

Aged↗

Use of procainamide gels in the purification of human and horse serum cholinesterases.

Two large-scale methods based primarily on the use of procainamide-Sepharose gels were developed for the purification of horse and human serum non-specific cholinesterases. With method I, the procainamide-Sepharose 4B gel was used in the first step to handle large volumes of serum. With method II, the procainamide-Sepharose 4B gel was used in the final step to obtain pure enzyme. Although both methods gave electrophoretically pure cholinesterase preparations in good yields, they were significantly more efficient at purifying the horse enzyme than the human enzyme. To study this problem, the relative binding of human and horse cholinesterases to procainamide-, methylacridinium (MAC)-, m-trimethylammoniophenyl (m-PTA)- and p-trimethylammoniophenyl (p-PTA)-Sepharose 4B gels were measured, by using two approaches. In one, binding was measured by a procedure involving equilibration of pure cholinesterase in a small volume of diluted gel slurry (4%, v/v). A partially purified preparation of Electrophorus acetylcholinesterase was included. Pure human cholinesterase bound consistently more tightly to each of the gels than did horse cholinesterase, and the acetylcholinesterase appeared to bind the gels 10-100 times more tightly than did the non-specific cholinesterases. The order of binding for the cholinesterases, beginning with the tightest, was: procainamide-Sepharose 4B, MAC-Sepharose 4B, p-PTA-Sepharose 4B and m-PTA-Sepharose 4B. For the acetylcholinesterase the order was: MAC-Sepharose 4B, procainamide-Sepharose 4B, p-PTA-Sepharose 4B and m-PTA-Sepharose 4B. The second approach involved passing native sera or partially purified sera fractions through 1 ml test columns of each of the four affinity gels to determine their retention capacity for the cholinesterases. With these impure samples, the MAC-Sepharose 4B gels proved superior to the procainamide-Sepharose 4B gels at retaining human cholinesterase, but the opposite was true for the horse cholinesterase.

Acetylcholinesterase↗

Association of antibody to histone complex H2A-H2B with symptomatic procainamide-induced lupus.

Antinuclear antibodies develop in most patients who are given prolonged procainamide therapy, but clinical symptoms resembling those of lupus appear in only 15 to 20 percent of such persons. No objective marker for symptomatic procainamide-induced lupus has been described. However, IgG antibodies to the histone complex H2A-H2B have previously been reported in this disorder, and it has been suggested that antiguanosine antibodies may be a marker for major manifestations of procainamide-induced lupus. We therefore tested for these antibodies in 20 symptomatic and 31 asymptomatic patients treated with procainamide. Most of the symptomatic patients had multiple manifestations of drug-induced lupus; resolution of symptoms after the discontinuation of procainamide was required for inclusion in the symptomatic group. All 20 symptomatic patients had elevated IgG antibodies to H2A-H2B, in contrast to only 2 asymptomatic patients (P less than 0.001). This activity was absent in patients not treated with procainamide and in patients with lupus induced by hydralazine or quinidine. IgG antiguanosine was elevated as compared with normal controls in 13 of 20 symptomatic and 19 of 31 asymptomatic patients--a finding that did not distinguish between symptomatic and asymptomatic patients. We conclude that IgG antibodies to H2A-H2B are a sensitive and specific marker for procainamide-induced lupus. The striking correlation between antibodies to H2A-H2B and symptomatic disease suggests a possible association between this antibody and the underlying pathogenic events.

Aged↗

Influence of disopyramide, compared with procainamide and quinidine, on isolated dog arteries in response to transmural stimulation and norepinephrine.

In helically cut strips of dog cerebral, coronary, and mesenteric arteries contracted with prostaglandin (PG) F2 alpha, disopyramide phosphate produced moderate contractions that were unaffected by phentolamine, chlorpheniramine, cinanserin, or aspirin. Procainamide and quinidine elicited only a slight contraction. Mesenteric arterial strips contracted with norepinephrine slightly contracted in response to disopyramide but significantly relaxed with procainamide and quinidine. The contractile response of mesenteric arterial strips to transmural electrical stimulation was attenuated by high concentrations (5 x 10(-5) M) of disopyramide or procainamide and by low concentrations of quinidine. Disopyramide-induced attenuation was greater in the response to high-frequency stimulation. Disopyramide at high concentrations potentiated the contractile response of mesenteric arteries to norepinephrine and tyramine, while, in contrast, procainamide and quinidine shifted the dose-response curve for norepinephrine to the right. Treatment with procainamide and quinidine, but not with disopyramide, protected alpha-adrenoceptors from persistent blockade by phenoxybenzamine; quinidine was far more effective than procainamide. It may be concluded that disopyramide possesses a nonspecific vasoconstricting action but not an alpha-adrenoceptor blocking property, whereas quinidine and procainamide show a reversible, competitive alpha-adrenoceptor antagonism. Different hemodynamic actions of these antiarrhythmics in situ appear to be related to such contrasting effects on arterial smooth muscle.

Animals↗

Cardiovascular effects of quinidine and procainamide on intact dogs and isolated cross-perfused canine atria.

The effects of quinidine and procainamide were studied in isolated canine atria cross-perfused with heparinized arterial blood from donor dogs as well as in these donor dogs. When administered intravenously to donor dogs, both drugs produced dose-related hypotensive effects, but quinidine was 3-10 times more potent than procainamide. Quinidine frequently caused tachycardia in the donor dogs, while procainamide usually produced bradycardia. Quinidine-induced tachycardia was partially suppressed by vagotomy and completely inhibited or changed to bradycardia after propranolol. In isolated atria, small doses of drugs caused slight negative chronotropic and inotropic effects, frequently accompanied by small and short-lasting increases in contractile force and heart rate. Only decreases in contractile force and rate were observed with large doses. Administration of quinidine and procainamide into the sinus node artery of the isolated atrium induced negative, biphasic, or triphasic changes in chronotropism and inotropism. In isolated atria, quinidine and verapamil depressed the contractile force to a greater extent at higher stimulation frequencies. Procainamide showed less of this effect, because atrial muscle became unresponsive to high-frequency pacing with the larger doses of procainamide. These results suggest that quinidine and procainamide have both cardiac-depressant and -stimulating properties.

Animals↗

Effects of procainamide on automatic and triggered impulse initiation in isolated preparations of canine cardiac Purkinje fibers.

The effects of procainamide (40 mg/L) were studied on automatic and triggered impulse initiation in isolated preparations of canine cardiac Purkinje fibers using standard microelectrode techniques. Procainamide decreased normal automaticity by 48% in Purkinje fibers superfused with standard (KCl 4 mM) Tyrode's solution. In contrast, procainamide decreased the rate of normal Purkinje fibers that had been treated with isoproterenol (1 microM) by only 6% (NS). For comparison, the effects of lidocaine (4 mg/L) and quinidine (5 mg/L) were studied on isoproterenol-treated fibers. Lidocaine and quinidine both significantly decreased the isoproterenol-enhanced rate of normal automaticity (by 45 and 10%, respectively). In studies of the effects of procainamide on Purkinje fibers with abnormal automaticity (i.e., the pacemakers had maximal diastolic potentials less than -60 mV), it was found that drug treatment decreased the rate of 24 h infarct zone Purkinje fibers by 22% and barium chloride (250 microM) treated Purkinje fibers by 51%. In studies of another five infarct zone preparations, the Purkinje fibers had maximal diastolic potentials greater than -75 mV and showed triggered activity with delayed afterdepolarizations. Procainamide decreased the triggered activity in only one of these preparations. Ventricular tachycardias that respond to procainamide may be caused by abnormal automaticity, whereas procainamide refractory tachycardias may result from triggered activity or from catecholamine-enhanced normal automaticity.

Action Potentials↗

Dose and concentration dependent effect of ranitidine on procainamide disposition and renal clearance in man.

The pharmacokinetics of oral procainamide (1 g) were investigated in six healthy subjects during chronic dosing with ranitidine 150 mg twice daily, and in three of the subjects when ranitidine 750 mg was administered over 12 h. The procainamide area under the plasma concentration-time curve was significantly (PQ0.02) increased by ranitidine (27.761.5 vs 31.561.8 mg l-1 h) with a significant reduction in renal clearance (379632 vs 309630 ml/min, PQ0.02). There was no change in half-life. The N-acetylprocainamide (NAPA) area under the plasma concentration-time curve was also significantly (PQ0.02) elevated by ranitidine (8.661.2 vs 9.761.3 mg 1-1 h) due to a reduction in renal clearance from 187630 to 168628 ml/min. The larger dose of ranitidine produced greater alterations in the procainamide and NAPA pharmacokinetics. Ranitidine reduced the absorption of procainamide by 10% and by 24% at the higher dose level. Two-hourly renal clearance values of procainamide were significantly (PQ0.05) reduced in the 2 to 10 h period and for NAPA between 0 to 6 and 8 to 10 h. The larger ranitidine dose reduced the renal clearances of procainamide and NAPA over the control period at each 2-hourly time period. The reductions in renal clearance are most likely mediated by competition for the renal tubular cationic secretory pathway. Clinical implications arising from this study suggest a reduction in procainamide dosage may be necessary in a small, select number of patients with high plasma ranitidine concentrations, e.g., the elderly; furthermore, failure of therapeutic response for some drugs may be due to ranitidine-induced impaired gastrointestinal absorption.

Adolescent↗

Procainamide in the dog: antiarrhythmic plasma concentrations after intravenous administration.

Procainamide hydrochloride was administered to ouabain-intoxicated dogs to determine an antiarrhythmic plasma concentration of procainamide. Ventricular arrhythmias were produced in dogs following intravenous injections of ouabain. After a sustained ventricular tachycardia was achieved, procainamide was administered and plasma samples collected for assay. Plasma procainamide was assayed by fluorescence polarization immunoassay. Procainamide was administered at increasingly higher constant rate infusions in order to achieve intermittent, steady-state plasma concentrations. Infusion rates were calculated on the basis of previous pharmacokinetic information. All six dogs that received procainamide converted to a normal sinus cardiac rhythm after attaining a mean plasma concentration of 33.8 micrograms/ml with a range of 48.5 micrograms/ml-25.0 micrograms/ml. It was observed that the computer-generated prediction of plasma concentrations based upon previous pharmacokinetic data produced an underestimate of the actual plasma concentrations. These data may suggest that plasma concentrations of procainamide for controlling some cardiac arrhythmias in dogs may be higher than plasma concentrations cited for human patients.

Animals↗

Procainamide in the induction and perpetuation of ventricular tachycardia in man.

The effects of a single intravenous infusion of 750 mg of procainamide was studied in 12 patients with symptomatic chronic recurrent ventricular tachycardia in whom arrhythmias could reproducibly be initiated and terminated by programmed electrical stimulation of the heart. Sustained ventricular tachycardia was induced in 6 patients and non-sustained tachycardia was induced in the remaining 6 patients during control studies. Following procainamide (plasma level 10.3 +/- 3.7 mcg/ml), ventricular tachycardia could be induced in 10/12 patients, sustained in 4 patients and non-sustained in the remaining 6 patients. In 8/12 patients (66%), induction of ventricular tachycardia was facilitated as demonstrated by: (1) tachycardia zone was widened in 4 patients and was unchanged in another 3 patients; (2) non-sustained ventricular tachycardia was sustained ventricular tachycardia in one patient. the ventricular tachycardia had a faster rate and a different QRS morphology; (3) in 4 patients tachycardia was inducible with a lesser number of extrastimuli and/or by spontaneously occurring ventricular premature depolarization and; (4) increase of the number of induced ventricular responses of non-sustained ventricular tachycardia. In 4/12 patients (33%), procainamide abolished or modified the induction of ventricular tachycardia as demonstrated by: (1) inability to induce ventricular tachycardia in 2 patients; (2) narrowing of the tachycardia zone and conversion from sustained into non-sustained ventricular tachycardia (one patient) and; (3) decrease in the number of induced ventricular responses in one patient. The response to procainamide could not be predicted from rates of spontaneous ventricular tachycardia, induced ventricular tachycardia during control studies, degree of slowing of ventricular tachycardia or from prolongation of the coupling interval after procainamide. These results suggest that instead of abolishing the arrhythmia, procainamide in frequently employed doses in patients with chronic recurrent ventricular tachycardia can facilitate its initiation sometimes at even faster rates. Patients not responsive to the usual doses of procainamide should undergo acute drug trials to determine the optimal dose/drug levels.

Aged↗

The efficacy, electrophysiologic and electrocardiographic effects of intravenous pirmenol, a new class I antiarrhythmic agent, in patients with ventricular tachycardia: comparison with procainamide.

UNLABELLED: The electrophysiologic and electrocardiographic effects of intravenous pirmenol were compared with intravenous procainamide in 17 patients with symptomatic ventricular tachycardia. Pirmenol was found to prolong the PR interval, the QRS duration, the QTc interval, the HV interval, the atrial effective refractory period, and the ventricular effective refractory period. The sinus cycle length decreased following pirmenol administration. The sinus node recovery time, the PA interval, the AH interval, the Wenckebach cycle length, and the AV nodal ERP were unchanged. In patients whose ventricular tachycardias remained inducible on pirmenol, the cycle length was significantly prolonged compared to baseline. These changes were similar to those seen following the administration of procainamide. All 17 patients had sustained ventricular tachycardia inducible during programmed ventricular stimulation in the baseline state. In four patients the ventricular tachycardia was suppressed with both primenol and procainamide. In the remaining 13 patients ventricular tachycardia remained inducible on procainamide. Of these 13 patients, an additional two patients had their ventricular tachycardias rendered noninducible on pirmenol. IN CONCLUSION: (1) the electrophysiologic and electrocardiographic effects of pirmenol are similar to those of procainamide; (2) although ventricular tachycardia inducibility following procainamide was similar to that of pirmenol, an occasional patient with ventricular tachycardia inducible on procainamide had ventricular tachycardias suppressed on pirmenol.

Administration, Oral↗

Comparison of right atrial and peripheral procainamide infusion levels in patients with spontaneous or induced atrial fibrillation.

As part of a new effort to develop an implantable drug infusion/pacing system to treat atrial fibrillation, this study examined the effects of rapid intracardiac procainamide infusion in humans with pacing-induced atrial fibrillation. Twenty patients with atrial fibrillation for > 5 minutes during an EP study received 500 mg of procainamide either via a peripheral venous infusion (n = 5) or directly in the right atrium (n = 15). Peak coronary sinus and femoral vein procainamide blood levels (mean +/- SEM) during 10, 5, and 3.3 minute central infusions were 17.0 +/- 4.1, 25.1 +/- 4.5, 45.6 +/- 5.1 and 11.3 +/- 3.2, 17.1 +/- 6.4, 18.7 +/- 5.0, respectively. In contrast, peak coronary sinus and femoral procainamide levels following the 5 minute intravenous infusion were 17.7 +/- 5.1 and 9.3 +/- 2.1. Changes in QT, QTc, QRS, and RI intervals were similar at each infusion rate. Systolic blood pressures (BP) decreased more with higher procainamide infusion rates but similar when comparing intravenous versus central drug administration at the same rate. The mean +/- SEM decreases in blood pressure with the 10, 5, and 3.3 min procainamide infusions were 12f5, 20f11, and 39f14, respectively. Conversion to sinus rhythm was not a primary endpoint given the often transient nature of acute atrial fibrillation in this setting. We conclude that significantly higher femoral vein and coronary sinus procainamide levels can be achieved by central rather than peripheral drug infusion. These data support that concept that rapid central infusion of anti-arrhythmic therapy can result in high intracardiac levels of antifibrillatory agents for the treatment of paroxysmal atrial fibrillation.

Adult↗

Modulation of procainamide's effect on conduction by cellular uncoupling in perfused rabbit hearts.

INTRODUCTION: How cell-to-cell electrical coupling influences an antiarrhythmic agent's effect on conduction is largely unknown. To investigate this, we evaluated the effects of procainamide on myocardial conduction at decreasing degrees of cell-to-cell electrical coupling induced by graded doses of heptanol. METHODS AND RESULTS: Electrograms were recorded from 50 ventricular epicardial sites in a 1 cm x 0.5 cm area during pacing to produce conduction longitudinal or transverse to myocardial fiber orientation in Langendorff-perfused rabbit hearts. The effects of procainamide (15 mg/L) on conduction velocity were determined in the presence of increasing doses of heptanol (0.2, 0.5, and 1.0 mM). In addition, using standard microelectrode techniques in isolated superfused rabbit myocardium, intracellular potentials were recorded in the presence of 15 mg/L procainamide and heptanol (1.0 mM). In the absence of heptanol, procainamide slowed conduction velocity. In the presence of increasing doses of heptanol, procainamide's contribution to the depressant effect on conduction velocity was attenuated and reversed at the highest dose. The latter effect was preferentially seen for conduction longitudinal to myocardial fiber orientation. Heptanol had no effect on action potential amplitude or maximum rate of depolarization in the presence of procainamide. CONCLUSIONS: Procainamide's effect on conduction velocity is influenced by the underlying degree of cell-to-cell electrical coupling. The present model should be useful in evaluating the relative ability of other pharmacologic agents to modulate conduction under conditions of changing cell coupling.

Action Potentials↗

Procainamide and phenytoin. Comparative study of their antiarrhythmic effects at apparent therapeutic plasma levels.

The antiarrhythmic effects of procainamide and phenytoin were studied in 81 patients admitted to the coronary care unit at the University Hospital in Linköping because of a suspected or proven diagnosis of acute myocardial infarction, and who developed ventricular arrhyhmias, requiring treatment, during the first 8 hours in hospital. Patients were randomly allocated to a procainamide of phenytoin group. The drugs were given as intravenous and oral loading doses followed by oral maintenance therapy. Plasma levels of the two druge were frequently determined and the electrocardiogram was continuously recorded during the 24-hour trial and analysed minute by minute. A significantly higher frequency of therapeutic failure was found in the phenytoin group (23 of 35 patients)compared to the procainamide group(13 of 39 aptients) during the first 2 hours after initiation of therapy. Four patients in the phenytoin group and 2 in the procainamide group developed symptoms probably caused by the trial drugs, necessitating discontinuation of therapy. The mean plasma levels were usually within the apparent therapeutic range (for phenytoin 40-72 mumol/l (10-18 mug/ml), and for procainamide 17-34 mumol/l (4-8 mug/ml). Seventeen patients (68%) in the phenytoin group and 10 patients (48%) in the procainamide group had plasma concentrations within this range when the therapeutic failure was observed. Nine patients died in hospital but only one of them during the trial. The results of this investigation clearly demonstrate the overall superiority of procainamide over phenytoin as an antiarrhythmic drug in short-term therapy after acute myocardial infarction.

Acute Disease↗

Effects of procainamide on electrical activity in thoracic veins and atria in canine model of sustained atrial fibrillation.

Focal discharges (FDs) are present in thoracic veins during atrial fibrillation (AF). We hypothesize that procainamide exerts its anti-AF action by suppressing FDs in the thoracic veins. We studied six mongrel dogs (22-27 kg) with sustained (>6 h) AF induced by 47 +/- 20 days of chronic rapid LA appendage (LAA) or pulmonary vein (PV) pacing. Procainamide was infused intravenously until AF was terminated or a cumulative dose of 20 mg/kg was reached. High-resolution mapping during AF showed FDs in the vein of Marshall, PVs, and the LAA. Procainamide significantly (P < 0.05) reduced the frequency of these FDs and suppressed the interactions of wave fronts between PVs and LA. The cumulative dose of PA needed to terminate AF correlated negatively (r =-0.9, P < 0.05) with the baseline effective refractory period (ERP) of PV and positively (r = 0.8, P < 0.05) with the baseline maximum dominant frequency (DF) of AF. In four of five dogs, AF converted to atrial tachycardia originating from the PVs before termination. Attempts to reinduce sustained AF were unsuccessful in these five dogs. AF was resistant to procainamide in the sixth dog. In conclusion, procainamide reduced the rate of FDs in the thoracic veins and the LA and suppressed the interaction between PVs and LA. Second, FDs in the PV are more resistant to procainamide's action than FDs in the atria. Third, inherent PV ERP is important in determining the antifibrillatory efficacy of procainamide.

Animals↗

Comparison of individual and combined effects of procainamide and amiodarone in patients with sustained ventricular tachyarrhythmias.

To compare the individual and combined electrophysiological effects of amiodarone and procainamide, 35 patients with sustained ventricular arrhythmias underwent programmed stimulation in the control state, after procainamide (mean concentration, 8.7 +/- 2.8 micrograms/ml), after 13 +/- 2 days of amiodarone (1,400 mg/day x 7 days, then 400 mg/day), and after amiodarone with procainamide (mean procainamide concentration, 7.8 +/- 2.2 micrograms/ml). Sustained ventricular tachycardia (VT) was inducible in all 35 patients during treatment with procainamide alone and with amiodarone alone. Procainamide and amiodarone similarly increased the VT cycle length (+68 vs. +61 msec), the corrected QT interval (+63 vs. +49 msec), and the ventricular effective refractory period measured at paced cycle lengths of 600-550 msec (+23 vs. +21 msec) and 400 msec (+25 vs. +23 msec). Procainamide had a more pronounced effect on QRS duration than amiodarone during sinus rhythm (+18 vs. +8 msec, p less than 0.01) and during paced cycle lengths of 600-550 msec (+32 vs. +23 msec, p less than 0.01) and 400 msec (+37 vs. +28 msec, p less than 0.1) but a similar effect on the QRS duration during VT (+32 vs. +29 msec). During combination therapy, VT initiation was prevented in only two (6%) patients. The combination therapy produced a greater increase (p less than 0.001) than individual therapy in all the electrophysiological intervals assessed, with the exception of the sinus cycle length. On each drug regimen, a cycle length-dependent increase (p less than 0.05) in paced QRS duration was noted (400 more than 600-550 msec).(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Comparative hemodynamic effects of procainamide, tocainide, and encainide in severe chronic heart failure.

Many of the newer antiarrhythmic agents are said to cause minimal myocardial depression, but their hemodynamic effects have not been invasively evaluated and compared in patients with severe chronic heart failure. In a randomized, crossover study, the hemodynamic responses to single oral doses of procainamide (750 mg), tocainide (600 mg), and encainide (50 mg) given to 21 patients with severe chronic heart failure were compared. Cardiac performance decreased with all three drugs, but the magnitude of deterioration differed among the three agents. Stroke volume index decreased with procainamide (-5 +/- 1 ml/m2, p less than 0.001), tocainide (-7 +/- 1 ml/m2, p less than 0.001), and encainide (-8 +/- 1 ml/m2, p less than 0.001), but the decline was significantly greater with encainide than with procainamide (p less than 0.05). Similarly, left ventricular filling pressure increased with tocainide and encainide (+4 +/- 1 and +5 +/- 2 mm Hg, respectively; both p less than 0.05), but not with procainamide; the increase was significantly greater with tocainide and encainide than with procainamide (p less than 0.001). These deleterious hemodynamic effects were accompanied by worsening symptoms of heart failure in six patients with encainide and seven patients with tocainide but in only two patients with procainamide. Serum levels for all drugs were in the therapeutic range. In conclusion, although the three type I antiarrhythmic agents tested may all adversely affect left ventricular function in patients with heart failure, encainide and tocainide are more likely than procainamide to cause hemodynamic and clinical deterioration.

Aged↗

Effects of procainamide on wave-front dynamics during ventricular fibrillation in open-chest dogs.

BACKGROUND: There is increasing evidence that both functional reentrant wave fronts and multiple wavelets are present during ventricular fibrillation (VF). However, the effects of procainamide on the characteristics of activation waves during VF are poorly understood. METHODS AND RESULTS: Seven dogs were studied; six underwent subendocardial chemical ablation procedures. A plaque with 317 to 480 bipolar electrodes was sutured to the right ventricular free wall, and the patterns of activation were registered with a computerized mapping system. VF was electrically induced, and the patterns of activation were registered at baseline and during procainamide infusion (serum concentration, 9.3+/-1.9 microg/mL). Among the six dogs that had their subendocardium ablated, reentrant wave fronts were present in 6 of the 108 runs of VF at baseline and in 6 of the 100 runs of VF during procainamide infusion. By analyzing the wave fronts, we found that the cycle length, refractory period, conduction velocity, and wavelength at baseline were 101+/-9 ms, 54+/-5 ms, 0.93+/-0.21 mm/ms, and 51+/-16 mm, respectively, and during procainamide infusion, values became 125+/-11 ms (P<.001), 119+/-7 ms (P<.001), 0.42+/-0.02 mm/ms (P<.001), and 50+/-4 mm (P=.8), respectively. The vast majority of the activation waves do not form organized reentry. These activation waves broke up more frequently at baseline than during procainamide administration. The number of activation waves was 7.25+/-1.39 s(-1) x cm(-2) at baseline and 4.45+/-1.80 s(-1) x cm(-2) during procainamide administration (P<.001). The dog without subendocardial ablation had similar results. CONCLUSIONS: Procainamide decreases the number of wavelets during VF by preventing spontaneous wave breaks. This represents a novel mechanism of antiarrhythmic drug action.

Animals↗

Serum drug concentrations in patients with ischemic heart disease after administration of a sustained release procainamide preparation.

Despite widespread marketing of a sustained release preparation of procainamide hydrochloride (PROCAN-SR, Parke-Davis), published literature demonstrating its efficacy in maintaining uniform serum drug levels over a 6-hour dosing interval is derived from only normal healthy volunteers. Thirty-three patients with ischemic heart disease, ages 30-88 years, were administered 1-4g/24 hours (mean dose 34 mg/kg/day) of PROCAN-SR in 4 equally divided doses on a Q6H schedule. After achievement of steady-state equilibrium drug concentration, procainamide and N-acetylprocainamide levels were determined by high-performance liquid chromatography on sera obtained from blood samples drawn 2, 3.5 and 5 hours after an oral dose. Mean maximal procainamide and N-acetylprocainamide serum concentrations were 4.6 +/- 1.8 microgram/ml and 4.2 +/- 2.1 micrograms/ml respectively. Mean minimal concentrations were 3.5 +/- 1.7 microgram/ml and 3.6 +/- 2.0 micrograms/ml respectively. The mean change in drug concentration was small (1.1 microgram/ml procainamide and 0.6 microgram/ml N-acetylprocainamide) with procainamide and N-acetylprocainamide concentrations varying only by 27 and 15 percent respectively. These data demonstrate in a population of patients with ischemic heart disease, that Q6H dosing with a sustained release procainamide hydrochloride preparation (PROCAN-SR, Parke-Davis) is associated with only a small acceptable variation between maximal and minimal serum procainamide and N-acetylprocainamide concentrations. This preparation should, therefore, offer greater patient convenience and compliance without sacrificing antiarrhythmic efficacy.

Acecainide↗