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M R Franz

Publications and source records attributed to M R Franz.

At least 19 recordsLinked to original sources

Induction of ventricular fibrillation by T-wave field-shocks in the isolated perfused rabbit heart: role of nonuniform shock responses.

OBJECTIVES: Single electrical field shocks are able to induce ventricular fibrillation (VF) if applied during the vulnerable period. During this period, a shock can either prolong the action potential duration or induce a new action potential. Whether the occurrence of different shock responses contributes to the induction of VF has not been investigated directly in the intact heart. METHODS: In 12 isolated Langendorff-perfused rabbit hearts seven monophasic action potentials (MAPs) were recorded simultaneously during the application of 838 T-wave shocks. Post-shock repolarization was assessed by classifying the shock-induced response in each MAP recording either as a full action potential or an action potential prolongation. Heterogeneity of post-shock repolarization was defined if both response patterns were present in different MAP recordings at the same time. The heterogeneity of post-shock activation was measured as the dispersion of the post-shock activation time (PS-AT). The arrhythmogeneity of a shock was quantified as the number of rapid shock-induced repetitive responses. RESULTS: Shocks inducing nonuniform repolarization were associated with greater arrhythmogeneity than shocks inducing uniform repolarization (17.6 +/- 30.0 versus 1.6 +/- 1.1 shock-induced repetitive responses, p < 0.001). The severity of the induced arrhythmia increased gradually with increasing nonuniformity of repolarization (p < 0.01 for a 10% increase), being maximal when the shock initiated near equal numbers of both full action potentials and action potential prolongations. The induction of severe arrhythmias by T-wave shocks was also associated with a higher dispersion of PS-AT (29 +/- 14 ms for the induction of VF, 19 +/- 12 ms for non-sustained arrhythmia, and 12 +/- 8 ms for no arrhythmic response, all p < 0.001). For VF inducing shocks, an increase in shock strength towards the upper limit of vulnerability decreased the dispersion of PS-AT from 34 +/- 15 ms to 23 +/- 11 ms (p < 0.001). CONCLUSIONS: Nonuniform post-shock repolarization and dispersed post-shock activation contribute to the induction of VF by T-wave shocks. A decreasing dispersion of PS-AT towards higher shock strengths may contribute to the decreased or abolished inducibility by shocks above the upper limit of vulnerability.

Action Potentials

Reduced arrhythmogenicity of biphasic versus monophasic T-wave shocks. Implications for defibrillation efficacy.

BACKGROUND: Biphasic waveforms defibrillate more effectively than monophasic waveforms; however, the mechanism remains unknown. The "upper-limit-of-vulnerability" hypothesis of defibrillation suggests that unsuccessful defibrillation is due to reinduction of ventricular fibrillation (VF). Thus, VF induction mechanisms may be important for the understanding of defibrillation mechanisms. We therefore compared myocardial VF vulnerability for monophasic versus biphasic shocks. METHODS AND RESULTS: In 10 Langendorff-perfused rabbit hearts, monophasic and biphasic T-wave shocks were randomly administered over a wide range of shock coupling intervals and shock strengths, and the two-dimensional coordinates within which VF was induced were used to calculate the area of vulnerability (AOV) for both shock waveforms. The arrhythmic response to biphasic shocks differed from that to monophasic shocks in three distinct ways: (1) the AOV was smaller (8.9 +/- 4.2 versus 13.9 +/- 6.0 area units, P < .02), (2) the transition zone between VF-inducing and nonarrhythmogenic shocks was narrower (14.7 +/- 4.8 versus 29.9 +/- 6.4 area units, P < .001), and (3) the entire AOV shifted toward longer coupling intervals (by 11.0 +/- 8.8 ms at the left border [P < .005] and 6.0 +/- 5.2 ms at the right border [P = .005] of the AOV). CONCLUSIONS: Biphasic shocks encounter a smaller AOV than monophasic shocks, a narrower transition zone from VF to no arrhythmia induction, and a lesser effectiveness in inducing VF at short coupling intervals. In keeping with the upper-limit-of-vulnerability hypothesis, these waveform-dependent differences in VF inducibility might help explain the lower defibrillation threshold for biphasic shocks.

Animals

Effect of sustained load on dispersion of ventricular repolarization and conduction time in the isolated intact rabbit heart.

INTRODUCTION: It is well known that myocardial stretch can elicit ventricular arrhythmias in experimental models. However, previous reports have predominantly documented stretch-induced arrhythmias during short, pulsatile stretch. The arrhythmogenic mechanism of sustained static stretch is incompletely understood. METHODS AND RESULTS: To examine the influence of sustained load on several electrophysiologic parameters, a latex balloon was placed into the left ventricle of ten isolated Langendorff-perfused rabbit hearts and filled with a neutral volume of fluid. The heart was paced from a catheter inside the right ventricle (apicoseptal endocardial position), and the following parameters were studied during steady-state pacing with a cycle length of 500 msec (S1) and during extrastimulation (S2, base drive of 8 beats): monophasic action potential (MAP) durations at 90% repolarization (APD90) from 5 to 6 epicardial electrodes located on both ventricles and one right ventricular endocardial contact electrode; dispersion of APD90 (range of MAP durations from all electrodes); effective refractory period (ERP) and longest activation time (pacing stimulus to MAP upstroke). After baseline recordings, the balloon inside the left ventricle was filled with a volume of 1.0 mL of fluid by means of a servo-controlled pump. The ERP was significantly shortened from 198 +/- 9 msec at baseline to 183 +/- 8 msec during sustained load (P < 0.03). Similarly, the average APD90 was shortened from 180 +/- 5 msec at baseline to 175 +/- 6 msec during sustained load (P < 0.006) with steady-state pacing and from 178 +/- 6 msec to 170 +/- 8 msec during premature extrastimulation (P < 0.03). At the same time, dispersion of APD90 was increased from 27 +/- 5 msec to 38 +/- 6 msec (P < 0.002) during steady-state pacing and from 28 +/- 4 msec to 38 +/- 6 msec (P = 0.013) during premature extrastimulation. The longest activation time among all MAP recordings was increased from 39 +/- 2 msec to 43 +/- 3 msec (P = 0.003) during steady-state pacing and from 56 +/- 6 msec to 69 +/- 6 msec during premature extrastimulation (P < 0.003). CONCLUSIONS: Sustained load shortens the ERP and the mean APD90, and at the same time increases dispersion of APD90 and prolongs activation times. These findings provide additional insight into the arrhythmogenic mechanisms of sustained mechanical load.

Action Potentials

Myocardial vulnerability to T wave shocks: relation to shock strength, shock coupling interval, and dispersion of ventricular repolarization.

INTRODUCTION: Induction of ventricular fibrillation (VF) by T wave shocks is of clinical interest due to the correlation between the upper limit of vulnerability (ULV) and the defibrillation threshold (DFT). However, the ULV has not yet been defined precisely in reference to the entire "area of vulnerability" (AOV), which is defined bifunctionally by both shock strengths and shock coupling intervals, nor has it been related to the dispersion of ventricular repolarization, considered to be an important determinant of vulnerability. METHODS AND RESULTS: In 11 isolated perfused rabbit hearts immersed in a tissue bath containing a 3-lead ECG recording system and two opposite plate electrodes for field shock administration, 7 monophasic action potentials (MAPs) were recorded simultaneously from different epicardial and endocardial regions of the right and left ventricles. An average of 90 +/- 25 monophasic waveform shocks of varying shock strengths and coupling intervals were delivered to each heart to determine the horizontal and vertical boundaries of the AOV. The AOV approximated a rhomboid with homogenous VF inducibility. The ULV and lower limit of vulnerability (LLV) represented discrete corners of the AOV with significant changes in VF inducibility if either shock coupling intervals or shock strength were changed by only 10 msec or 10 V, respectively (P < 0.001). The ULV occurred at 7 +/- 10 msec shorter coupling intervals than the LLV (P < 0.05), and VF-inducing shock strengths at the left corner of the AOV were 50 +/- 67 V higher as compared to the right corner (P < 0.01). The maximal range of VF-inducing coupling intervals coincided (within < 2 msec) with the dispersion of MAPs at 70% repolarization, and the ULV coupling interval coincided (within < 4 msec) with the longest repolarization at 50%. CONCLUSIONS: (1) VF vulnerability to monophasic T wave shocks is defined by an AOV that has the shape of a leftward tilted rhomboid. (2) Both the ULV and LLV are sharply defined upper and lower corners of the AOV rhomboid. (3) The width of the AOV corresponds to the dispersion of ventricular repolarization at the 70% level. (4) Considering the dispersion of ventricular repolarization may yield more precise ULV determinations and a better understanding of the correlation between the ULV and DFT.

Action Potentials

[In vivo registration of monophasic action potentials--new possible applications in clinical electrophysiology].

Monophasic action potential (MAP) recordings have gained a more important role during the recent years. A new application for their use in the clinical laboratory is the precise differentiation between ventricular tachycardias and ventricular fibrillation. A correct diagnosis of the arrhythmic episode may be of relevance for the determination of the defibrillation threshold during implantation and testing of implantable cardioverter defibrillators. Diagnostic studies and ablation procedures of triggered arrhythmias represent another indication for MAP recordings. The focus of enhanced automaticity can be located by the detection of afterdepolarizations which allows a reliable ablation using a MAP-ablation combination catheter. Recently, a new phenomenon has been reported regarding the relationship between ventricular repolarization and excitability during programmed electrical stimulation in humans. Each additional extrastimulus was able to capture the myocardium at a less complete repolarization level than the previous one. This "facilitation of excitability" phenomenon or "encroachment" was correlated with the initiation of ventricular tachyarrhythmias. The involved mechanism can be modulated pharmacologically and might therefore play a role in the antiarrhythmic treatment of patients with ventricular arrhythmias.

Cardiac Pacing, Artificial

The vulnerable period for low and high energy T-wave shocks: role of dispersion of repolarisation and effect of d-sotalol.

INTRODUCTION: The induction of ventricular fibrillation (VF) by T-wave shocks has been related to dispersion of repolarisation, but only indirect evidence of this hypothesis exists. The effects of drugs prolonging repolarisation like d-sotalol on the vulnerability to T-wave shocks remain unknown. METHODS: In 9 isolated rabbit heart, 7 monophasic action potentials (MAPs) and an ECG were recorded simultaneously. Vulnerable periods were determined using two different shock strengths, one close to the fibrillation threshold and the other close to the upper limit of vulnerability, at baseline and after action potential prolongation by d-sotalol. RESULTS: The vulnerable period had a duration of 30 +/- 14 ms for the lower and 34 +/- 12 ms for the higher shock strength (P = NS). Coupling intervals of the vulnerable periods were 13 +/- 10 ms shorter for higher shock strengths as compared to lower shock strengths (P < 0.005). The vulnerable period for low shock strengths coincided with dispersion of MAPs at 90% repolarisation (r = 0.87-0.92, P < 0.005), and the vulnerable period for high shock strengths coincided with dispersion at 70% repolarisation (r = 0.82-0.93, P < 0.005). ECG parameters predicted the vulnerable periods less precisely than MAP repolarisation (r < or = 0.72). d-Sotalol prolonged MAP durations by an average of 33 ms at 70% and 39 ms at 90% repolarisation but did not alter the described relations, nor did it reduce dispersion of repolarisation or duration of the vulnerable periods. CONCLUSIONS: Dispersion of repolarisation determines vulnerable periods and might be part of the arrhythmogenic substrate promoting induction of VF by T-wave shocks. The coupling intervals of the vulnerable periods depend on the applied shock strength as well as repolarisation, with shock strengths close to the fibrillation threshold inducing VF during dispersion at 90% repolarisation and shock strengths close to the upper limit of vulnerability inducing VF during dispersion at 70% repolarisation. d-Sotalol reduces neither vulnerability to T-wave shocks nor dispersion of repolarisation in this isolated heart model.

Action Potentials

Stretch-induced voltage changes in the isolated beating heart: importance of the timing of stretch and implications for stretch-activated ion channels.

OBJECTIVES: It is now well recognized that myocardial stretch can cause arrhythmias due to stretch-induced depolarizations. The effects of transient stretch applied during the various phases of the cardiac action potential have not been investigated. This study (1) examined the effects of short stretch pulses and sustained stretch on the monophasic action potential (MPA) repolarization time course and diastolic potential, (2) examined the arrhythmic response to differently timed stretch pulses, and (3) tested by comparison with computer simulations whether these effects are compatible with stretch-activated channel characteristics known from patch-clamp studies. METHODS: We studied the MAP changes elicited by short transient stretch pulses applied at different times during the cardiac cycle to 8 isolated Langendorff-perfused rabbit hearts. The left ventricle (LV) was instrumented with a fluid-filled balloon, the volume of which was altered rapidly and precisely by means of a computer-controlled linear motor-driven piston. MAPs were recorded simultaneously from one right ventricular (RV) and two LV sites while short volume pulses of increasing amplitude were applied to the LV at variable delays after the last of 8 regular electrical pacing stimuli. The effect of pulsatile volume pulses applied at different phases of electrical systole and diastole was compared to the effect of sustained stretch pulses (60 s duration) of the same amplitude. The experimental results were compared with computer simulations of stretch-induced effects on the action potential to further validate the experimentally measured effects with theoretical predictions based on the Oxford Heart model with added stretch channel terms. RESULTS: Stretch pulses applied during early systole caused a brief transient repolarization during the LV MAP plateau phase, with a maximal amplitude of 24 +/- 10% of the total MAP amplitude. Stretch pulses at the end of the MAP caused a transient depolarization, with a maximal amplitude of 13 +/- 5%. These oppositely polarized stretch effects crossed over during a transitional range of repolarization (mean 65 +/- 9% of repolarization) when stretch produced neither transient repolarizations nor depolarizations. Only stretch pulses applied at a mean repolarization level of 77 +/- 5% or later led to arrhythmias, preceded by transient depolarizations. No corresponding de- or repolarizations were seen in MAPs recorded simultaneously from the unstretched RV. The effects of long pulses on the MAP waveform were nearly identical to an overlay plot of the effects of many differently timed short transient pulses. When the stretch-induced voltage changes in the MAP were plotted against the repolarization level at which they were produced, a linear relationship was found (mean correlation coefficient r = 0.97; P < 0.0001) with a reversal at approximately half the total MAP amplitude. The computer simulations of the influence of stretch-activated channels reproduced both the effects of short and sustained stretch seen in the MAP recordings. CONCLUSIONS: We demonstrated in the isolated beating heart that the electrophysiologic effects of sudden myocardial stretch depend on the timing of the stretch relative to electrical systole or diastole. These findings are in agreement with patch clamp studies on stretch-activated ion channels which showed a linear current/voltage relation with a reversal potential between -20 and -30 mV. Only stretch pulses applied at the end of the action potential or during diastole elicit ectopic beats as a result of transient depolarizations, while stretch pulses applied during phase 2 and 3 cause transient repolarizations or no effect, respectively.

Action Potentials

Relation between repolarization and refractoriness during programmed electrical stimulation in the human right ventricle. Implications for ventricular tachycardia induction.

BACKGROUND: Although programmed electrical stimulation is widely used for provoking sustained ventricular tachycardia (VT), the mechanism by which repetitive extrastimulation evokes VT is still little understood. Specifically, it is not clear why several closely coupled extrastimuli are frequently required to induce VT. Although regularly paced human ventricular myocardium exhibits a near constant relation between myocardial repolarization and refractoriness, the effect of repetitive extrastimulation on the relation between repolarization and excitability in the human heart and its relevance for arrhythmia induction by programmed stimulation are unknown. We hypothesized that the induction of VT by repetitive extrastimulation is facilitated by an altered relation between repolarization and refractoriness, and this leads to disturbances in ventricular impulse propagation, which trigger the onset of VT. METHODS AND RESULTS: Twenty-one patients undergoing routine electrophysiological study were paced from the right ventricular apex and outflow tract endocardium with monophasic action potential-pacing catheters placed at both sites simultaneously Monophasic action potential durations (APDs) and effective refractory periods (ERPs) were measured simultaneously at each site, during regular stimulation (S1-S1) at 400-ms cycle length and during three consecutive extrastimuli (S2 through S4) at the closest coupling intervals at which all three extrastimuli still resulted in capture. Measurements further included the repolarization level at which the earliest capture occurred, the ratio between ERP and APD, and the propagation time between the pacing and distant recording site. APD and ERP both shortened progressively with each extrastimulus. APD at 90% repolarization decreased from a baseline (S1) of 238.1 +/- 19.7 ms by 14.9% at S2, 18.9% at S3, and 22.9% at S4 (P < .0001, S1 versus S4). ERP decreased from 233.1 +/- 19.7 ms (S1) to 180.0 +/- 41.9 ms (S3) (P < .0001, S1 versus S3). While ERP shortening occurred mainly on the basis of APD shortening, there was an additional factor that contributed to ERP shortening independent of APD shortening. Each consecutive extrastimulus was able to elicit a propagated response at earlier repolarization levels than the previous one: the earliest capture for S2 occurred at 85.5 +/- 10.2% of complete repolarization, for S3 at 83.9 +/- 10.5%, and for S4 at 78.4 +/- 11.2% (P < .05 for S2 versus S3; P < .05 for S3 versus S4; P < .01 for S2 versus S4). This progressive "encroachment" of the earliest capture stimulus onto the preceding repolarization phase (at progressively less repolarized levels) correlated with a progressive delay of impulse propagation between the pacing site and the second recording site: propagation time increased from baseline (S1) by 10.5 +/- 1.3% with S2 to 19.0 +/- 1.6% with S3 and to 22.5 +/- 2.8% with S4 (P < .05, S4 versus S1). VT was induced in 11 of 21 patients. Nine of these had VT induced only when significant encroachment of extrastimuli on the preceding repolarization phase (< 81.3 +/- 7.0%) and associated conduction slowing (> 16.6 +/- 1.8%) were present. CONCLUSIONS: Repetitive extrastimulation not only shortens APD and subsequently ERP but also alters the ERP/APD relation by allowing capture to occur at progressively less complete repolarization levels. This progressive encroachment onto the preceding repolarization phase is associated with impaired impulse propagation and a high incidence of VT induction. This may help explain how repetitive, closely coupled extrastimulation induces ventricular tachycardia in the human heart.

Aged

Sudden cardiac death and polymorphous ventricular tachycardia in patients with normal QT intervals and normal systolic cardiac function.

This study delineates the clinical spectrum of 15 patients with polymorphic ventricular tachycardia and normal QT intervals in the absence of apparent structural heart disease, adverse drug effects, or electrolyte disturbances. Patients presented with either palpitations (n = 2), presyncope (n = 5), syncope (n = 4), no symptoms (n = 1), or aborted sudden death (n = 3). Mean age was 41 years (range 20 to 64), and mean follow-up 38 months (range 4 to 109). Left ventricular function was normal as determined by either echocardiogram (n = 9) or left ventriculography (n = 9). Episodes of polymorphic ventricular tachycardia (VT) were analyzed in terms of the preceding interval, and the relation of the initiating coupling interval to the QT interval (coupling interval/QT interval = polymorphic VT index). The mean QT for the group as a whole was 0.41 +/- 0.02 second. Patients could be separated into 3 distinct groups. Four patients had polymorphic VT reproducibly induced by exercise and initiated by late-coupled beats (mean polymorphic VT index 1.27 +/- 0.21). Isoproterenol induced polymorphic VT in 3 of 4 patients, and all 4 responded to chronic beta blockade. Two patients had polymorphic VT during episodes of coronary artery spasm, and both responded to calcium channel blockade. Polymorphic VT unrelated to exertion or coronary vasospasm occurred in 9 patients. Tachycardia onset was initiated by closely coupled beats (mean polymorphic VT index 0.95 +/- 0.16), and was preceded by a pause in 4 patients, and no pause in 5 patients. Sudden death occurred in 5 of 9 patients with the shortest polymorphic VT indexes.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult

Electrocardiographic indexes of dispersion of ventricular repolarization: an isolated heart validation study.

OBJECTIVES: This study tested the correlation of QT and JT dispersion and other potentially useful electrocardiographic (ECG) indexes with dispersion of repolarization and recovery time. BACKGROUND: Dispersion of ventricular repolarization is currently being assessed noninvasively from the surface ECG by means of QT and JT dispersion, although their correlation with dispersion of repolarization as measured directly from the myocardium is not well established. METHODS: Multiple monophasic action potentials were recorded simultaneously with a 12-lead ECG from isolated Langendorff-perfused rabbit hearts. The QT and JT dispersion was compared with the dispersion of monophasic action potential duration at 90% repolarization (APD90) and with dispersion of recovery time. As new ECG indexes, total T wave area, T wave area after the peak (late T wave area) and T peak to T end interval were also tested. RESULTS: The QT and JT dispersion showed a significant correlation with the dispersion of APD90 and the dispersion of recovery time (r values between 0.58 and 0.64, respectively, p < 0.001). However, total T wave area showed better correlation, respectively, with dispersion of APD90 and recovery time (r = 0.79 and r = 0.82, p < 0.0001), as did late T wave area (r = 0.81 and r = 0.81, p < 0.0001) and T peak to T end interval (r = 0.81 and r = 0.82, p < 0.0001). CONCLUSIONS: The JT and QT dispersion correlate significantly with dispersion of APD90 and recovery time. The ECG assessment of dispersion of repolarization can be improved by three new ECG dispersion indexes: T peak to T end interval, total T wave area and late T wave area. These new indexes should be tested clinically.

Action Potentials

Prolongation of conduction time during premature stimulation in the human atrium is primarily caused by local stimulus response latency.

BACKGROUND: Conventional clinical electrophysiological techniques cannot accurately differentiate between local stimulus response latency and propagation time of the atrial response. The purpose of this study was to identify and distinguish local stimulus response latency from impulse propagation time in the human right atrium during programmed electrical stimulation. METHODS: Pacing was performed from two atrial sites (high and low right atrium) in 19 patients, using monophasic action potential recording/pacing combination catheters (interelectrode distance < 2 mm). Local stimulus response latency (interval between stimulus artifact and upstroke of the local monophasic action potential), and propagation time (interval between local and remote monophasic action potential upstroke) were evaluated at a basic cycle length (S1-S1) of 600 ms and as a function of the extrastimulus proximity (interval between extrastimulus and effective refractory period). Data are presented as means +/- SEM. RESULTS: During basic stimulation, local latency was very small (3.8 +/- 1.7 ms). During premature extrastimulation (proximity < 70 ms), local latency increased progressively with decreasing coupling intervals. Prolongation of local latency was most pronounced during stimulation close to the effective refractory period with local stimulus response latency increasing to 18.3 +/- 1.4 ms (380 +/- 7.9%) at 10 ms proximity (P < 0.002) and to 27.9 +/- 3.7 ms (630 +/- 13.2%) at 5 ms proximity, respectively (P < 0.0001). The impulse propagation time between the stimulation site and the remote recording site was on average 54.5 +/- 14.3 ms during basic stimulation, and increased up to 62.1 +/- 13.5 ms (14.0 +/- 8.4%), which was not significant. CONCLUSIONS: The intra-atrial impulse propagation remained essentially unchanged during the entire range of premature stimulation. Local stimulus response latency was negligible and constant during late coupling intervals but increased dramatically when extrastimulation approached the preceding repolarization phase. This has the following clinical impact: first, local stimulus response latency during premature extrastimulation curbs the targeted atrial response interval second, local stimulus response latency, not propagation time, seems responsible for the greater functional than effective refractory period during electrical stimulation; third, local stimulus response latency should be considered in pace mapping for accurate comparison of conduction time before pacing with that during pacing.

Aged

Terfenadine increases the QT interval in isolated guinea pig heart.

Torsades de pointes ventricular tachycardia (VT) has been reported in patients taking the nonsedating antihistamine, terfenadine. We performed electrophysiologic studies of 14 isolated guinea pig hearts using the Langendorff technique to assess whether terfenadine exerted actions that could be responsible for inducing the arrhythmia. Twelve hearts were perfused with an oxygenated Tyrode's solution containing a 2-microM preparation of either racemic, R-, or S-terfenadine. QT interval (QT), monophasic action potential duration (APD), and ventricular effective refractory periods (ERP) were measured at a fixed range of cycle lengths (CL). At 400-ms CL, both isomers and racemate prolonged QT and APD by 8% and ERP was increased by 14%. Infusion of vehicle, dimethyl sulfoxide (DMSO), alone in two hearts caused a slight decrease in QT and APD, suggesting that the direct effect of terfenadine on QT may have been underestimated. One-way analysis of variance (ANOVA) showed no statistical difference in effect on QT, APD, or ERP for the three forms of terfenadine (p < 0.05). These results support the conclusion that terfenadine induces torsades de pointes because of direct actions in delaying cardiac repolarization. The lack of stereospecificity in this action indicates that chirally pure formulations are not likely to have greater safety than the racemate.

Action Potentials

Computer analysis of monophasic action potentials: manual validation and clinically pertinent applications.

Monophasic action potential (MAP) recordings are increasingly being used in a variety of clinical and experimental situations but their manual measurement is cumbersome, especially when hundreds or thousands of beats must be analyzed to monitor the exact time course of action potential duration (APD) changes following heart rate alterations, during surveillance of APD alternans, or during the onset and stabilization of Class III drug effects. To facilitate this task we developed a computer program that automates programmed electrical stimulation, digitizes at 1-kHz sampling frequency MAP recordings up to 8 channels simultaneously, analyzes all APDs at repolarization levels from 10%-90% in 10% decrements (APD10-90), and automatically outputs the analyzed numerical data into spreadsheets for graphical display or statistical analysis. To validate the computer algorithm, two independent observers manually analyzed 585 concurrent MAP recordings at a paper speed of 100 mm/s. Cycle length measurements by the computer were precise to 0.4 +/- 0.5 ms as compared to the computer determined paced cycle length. Computer measurements of APD20, 50, and 90 differed from manual measurements by 2.0 +/- 8.8 ms, 0.7 +/- 7.9 ms, and 0.2 +/- 8.5 ms, respectively, for observer 1; and by 12.2 +/- 8.3 ms, 5.8 +/- 7.5 ms, and 1.4 +/- 10.1 ms, respectively, for observer 2. Inter-observer variability (IOV) was 10.3 +/- 11.1 (APD20), 5.1 +/- 9.0 ms (APD50), and 1.2 +/- 7.8 ms (APD90), which was similar to computer/observer-2 differences and significantly greater (0.001) than computer/observer-1 differences. This indicates that the computer analysis was at least as precise as manual measurements when compared to IOV, and more precise when comparing computer/observer-1 differences to IOV. While providing equal or greater precision, computer-aided analysis of 100 MAP signals took approximately 1 minute while manual analysis of the same data set took between 2.5 and 4 hours. The pacing and analysis software was subsequently applied to experiments that mimic clinically pertinent examples of MAP recordings: (1) automatic generation, analysis, and graphical display of electrical restitution curves at multiple ventricular sites simultaneously; (2) evaluation of myocardial pharmacokinetics by monitoring the progression of Class III antiarrhythmic drug effects by continuous MAP recordings, and displaying differences in drug action between multiple sites; (3) depiction of the adaptation time course of APD to abrupt changes in paced cycle length; and (4) quantitative analysis of APD alternans during myocardial ischemia. The results show that our computerized algorithm greatly facilitates the generation of cardiac electrophysiological, and clinically important, data.

Action Potentials

Prolongation of monophasic action potential duration and the refractory period in the human heart by tedisamil, a new potassium-blocking agent.

The effect of intravenous tedisamil (0.3 mg.kg-1), a newly developed potassium-blocking agent, on ventricular repolarization was studied in 10 patients (three women, seven men; mean age 53 +/- 8 years) with coronary artery disease (stenoses < or = 60%). Left ventricular monophasic action potentials, effective refractory periods and surface electrocardiograms were recorded during sinus rhythm and during constant atrial pacing at cycle lengths of 600, 500 and 400 ms. Under tedisamil there was a 12% reduction of heart rate and in parallel a prolongation of QTc interval (+10%) and left ventricular monophasic action potential duration (+16% at 90% repolarization). QRS duration remained unchanged. Tedisamil increased the duration of monophasic action potentials during constant atrial pacing, indicating a direct prolongation effect on left ventricular repolarization independent of sinus node activity. By increasing the atrial pacing rate this prolonging effect diminished. Left ventricular effective refractory periods also increased in a frequency-dependent fashion with a greater prolongation effect at long cycle lengths as compared to short cycle lengths. The ratio between effective refractory period and monophasic action potential duration, however, remained constant, independent of heart rate. We conclude that tedisamil is bradycardiac at the dose tested and has a reverse use dependent prolongation effect on left ventricular repolarization and refractoriness. The electrophysiologic profile is consistent with a class III antiarrhythmic classification.

Action Potentials

Dispersion and delay of electrical restitution in the globally ischaemic heart.

Alternans of action potential duration (APD) has been shown to be a precursor of ventricular fibrillation in ischaemic myocardium. We postulated that magnitude of alternans of APD during ischaemia depends not only on the severity of ischaemia but also on disturbed beat-to-beat restitution of APD. Monophasic action potentials were recorded simultaneously from right (RV) and left ventricular (LV) epicardial sites of isolated rabbit hearts. The inter-beat time courses of APD recovery were determined both during normal flow and ischaemia by interposing single cycle length changes ranging from 200 to 800 ms (= electrical restitution) simultaneously at the three recording sites. During normal perfusion, electrical restitution curves showed a steep initial recovery of APD, attaining steady-state values at extrastimulus cycle lengths of only 298 +/- 12 ms, with a high degree of uniformity between the three recording sites (inter-site variability < 2%). Ischaemia produced a marked slowing of electrical restitution which, on average, reached a plateau at extrastimulus cycle lengths of 415 +/- 45 ms, 650 +/- 72 ms and > 800 ms at 2 min, 5 min and 9 min of ischaemia, respectively (each P < 0.001 vs control). In addition, ischaemia resulted in a large inter-site variability, with RV and LV restitution curves deviating from each other by as much as 28.5% (P < 0.0001 vs baseline). We conclude that global ischaemia not only leads to a delayed but also non-uniform electrical restitution.(ABSTRACT TRUNCATED AT 250 WORDS)

Action Potentials

New classification of moricizine and propafenone based on electrophysiologic and electrocardiographic data from isolated rabbit heart.

Because the classification of propafenone and moricizine is not clear, we measured in 20 specifically equipped isolated rabbit hearts QRS duration, QT interval, action potential duration at 90% of repolarization (APD90), effective refractory period (ERP), conduction time (CT), and rise velocity (Rv) of the monophasic action potentials (AP) during exposure to moricizine and propafenone in comparison with procainamide. Propafenone and procainamide prolonged APD90 and JT. All drugs increased ERP. Propafenone demonstrated marked tonic sodium channel block. Onset of use-dependent kinetics (tau on), defined as change in Rv as fraction per beat at 300 ms cycle length (CL), were 0.047 +/- 0.004/beat for procainamide, 0.050 +/- 0.004/beat for propafenone, and 0.022 +/- 0.003/beat for miricizine. Recovery kinetics, defined as recovery of Rv after cessation of pacing, had a time constant of 5.3 +/- 0.7 s for procainamide, 6.3 +/- 0.8 s for propafenone, and 25.0 +/- 1.3 s for moricizine. Based on these data, moricizine must be classified as a Ic agent, whereas propafenone demonstrates pronounced tonic sodium channel block, in addition to its phasic block, which is similar to class Ia kinetics.

Action Potentials