PubMed HealthSearch

Biomedical subjects

E N Moore

Publications and source records attributed to E N Moore.

At least 19 recordsLinked to original sources

Effect of coronary perfusion of heptanol or potassium on conduction and ventricular arrhythmias.

Abnormalities in cellular coupling, modulated in part by intracellular gap junctions, have an important role in the genesis of reentrant arrhythmias in the setting of chronic myocardial infarction. The effects of heptanol, which has a relatively selective action on gap junctional resistance at low concentrations, and potassium, which primarily affects active membrane properties, were assessed using a localized intracoronary infusion system in 11 normal dogs in vivo. Both agents caused a dose-related slowing of conduction. Programmed stimulation during potassium infusion resulted in ventricular fibrillation in two of six animals treated with a low dose (5.0-5.5 meq/l) and five of six animals treated with a high dose (7.0-7.5 meq/l). During the infusion of 1.0 mM heptanol, uniform ventricular tachycardia was induced in four of eight animals. Infusion of heptanol, but not potassium, increased the susceptibility to presumably reentrant ventricular tachycardia in normal myocardium. This suggests that agents that affect cellular coupling may have markedly different arrhythmogenic consequences than agents that primarily alter active membrane properties.

Alcohols

Gap junctional conductance in ventricular myocyte pairs isolated from postischemic rabbit myocardium.

Abnormalities of myocardial gap junction-mediated cell coupling have been implicated in cardiac arrhythmogenesis. The potential role of gap junctional dysfunction in the generation of reperfusion-induced arrhythmias is uncertain. The purpose of this study was to measure the effects of myocardial ischemia and reperfusion on gap junctional conductance (gj) between isolated ventricular myocytes. By using a new experimental model, myocyte pairs were isolated from Langendorff-perfused rabbit hearts 1) after 30 minutes of global normothermic ischemia followed by 30 minutes of reperfusion, 2) after 75 minutes of control perfusion, or 3) immediately after removal of the heart. Myocytes and myocyte pairs were studied using whole-cell recording techniques. Action potential characteristics of cells in all three groups were normal. Despite similar mean gj in all three groups (0.88 +/- 0.27, 1.15 +/- 0.18, and 1.24 +/- 0.25 microS, respectively; p greater than 0.05), the postischemic group was more widely distributed and had a significantly greater proportion of poorly communicating cell pairs than either control group (gj less than 25% of mean in eight of 15 myocyte pairs versus zero of 15 and one of 13, respectively; p less than 0.02). Thus, postischemic myocyte pairs represent a heterogeneous population of electrically coupled cells in which individual deficits in coupling are masked by a normal mean value. In the reperfused intact heart, local disturbances of cell coupling, similarly undetected by gross measures of conduction, could disrupt myocardial conduction and activation on a microscopic scale and thus enhance arrhythmogenicity.

Action Potentials

Effect of cellular uncoupling by heptanol on conduction in infarcted myocardium.

Experiments were performed in vitro on six normal thin ventricular epicardial tissue strips and 10 strips removed from the infarcted regions of dogs 21-60 days after experimental myocardial infarction. Conduction was evaluated by mapping activation sequences at 40-45 sites over an area of 1 x 2 cm during pacing at a basic cycle length of 2,000 msec. The amplitude and length of recorded electrograms were also determined at each site. After control recordings, heptanol, which increases gap junctional resistance, was added to the tissue bath at concentrations ranging between 0.2 and 1.0 mM. In contrast to its effect on normal tissues, heptanol caused 75 of 260 previously active sites in the infarcted tissues to become inactive. The affected sites were located in areas of very slow conduction and/or adjacent to areas of preexisting conduction block. In addition, heptanol decreased the length and degree of fractionation of electrograms recorded in slowly conducting regions of the infarcted tissues. The magnitude of the decrease in electrogram length following heptanol was related to the degree of electrogram abnormality during control as reflected in the ratio of electrogram length to amplitude. Heptanol shortened electrograms by causing local conduction block, which eliminated some components of the fractionated electrograms. In an additional eight epicardial strips removed from the infarcted region, 0.5 mM heptanol had only a slight effect (10.7% decrease) on the maximum rate of membrane depolarization. Thus, heptanol does not act primarily by way of depressing the fast inward current. We conclude from heptanol's effects on conduction and electrogram characteristics that slow and dissociated conduction in the infarcted region is due to an abnormality in gap junctional distribution between surviving cells and/or an abnormality in individual gap junctional function.

Action Potentials

Electrophysiological studies on cardiac catheter ablation.

Clinical and animal investigations have pointed out that high energy electrical shocks are associated with the development of cardiac arrhythmias and with variable success in permanent ablation. The effects of electrode configuration and location on the size of the recorded electrogram was investigated to help explain variable catheter ablation results. We analyzed the cellular effects of catheter ablation shocks and found depression of resting potential, action potential amplitude, dV/dt and action potential duration. The most severe effects were noted with high current densities in tissues located between the cathode and anode. Damage was worse nearest the cathode. Similar cellular studies were completed using argon laser photoablation. Again, there was a decrease in resting potential, action potential amplitude and dV/dt. Laser energy led to a more focal region of myocardium void of action potentials and the border zone of injury was smaller. We also investigated the effects of lower energy shocks (1 to 10 joule) on cardiac tissues. Using microelectrodes, we observed that the membrane potential can "hang up" at the depolarized levels for varying periods of time and that conduction is altered during this membrane "hang-up" period. The duration and membrane hang-up level correlated with shock intensity and shock duration. Sequential shocks resulted in additive membrane "hang-up". We believe that membrane hang-up may be associated with brief arrhythmias observed following catheter ablation since conduction, refractoriness and excitability are all altered.

Action Potentials

Activation patterns in healed experimental myocardial infarction.

The maximum amplitude of vector loops formed by summing orthogonally recorded bipolar electrograms has been shown to reflect the direction of activation in cardiac muscle. To investigate whether components of vector loops could provide information about different activation directions in local areas of myocardium, we correlated "instantaneous vectors" with isochronal activation patterns in an in vitro preparation of experimental myocardial infarction. In thirteen 3 mm x 3 mm regions studied (from 11 tissues), at least 16 microelectrode impalements with a minimum density of 0.8 mm between sites were made. In seven situations in which notched, irregular, and prolonged duration electrograms were present, vector loops pointed in the same general direction throughout their entire time course. In these preparations, microelectrode impalements demonstrated only a single major direction of activation. In five of six areas in which multidirectional vector loops were present, two or more separate local directions of activation corresponded to the directions of the vector loop. Instantaneous vectors were then used to analyze propagation patterns in vivo in 10 animals with 2-4-week-old experimental myocardial infarction. Of 150 sites in the 10 animals, 13% contained more than one major local direction of activation. In 11 markedly abnormal sites, electrograms were recorded during pacing from four sites around the recording probe. When comparing electrogram characteristics from the four sites, a mean difference of 5.9 mV in electrogram amplitude and 19.1 msec in electrogram duration (coefficient of variation, 27% for amplitude and 22% for duration) was found. In only two of the 11 sites was it found that the same number of activation directions occurred from all pacing sites. We conclude: 1) Instantaneous components of vector loops accurately represent local directions of cardiac activation at differing times. 2) Most areas of experimental myocardial infarction have only one major direction of activation despite the presence of abnormal electrograms. 3) In some regions, however, two major local directions of activation can be identified within a relatively local area. 4) Geometric activation patterns in experimental myocardial infarction are markedly dependent on initial activation direction.

Action Potentials

Electrophysiologic studies on ventricular tachyarrhythmias in a chronic canine infarct model.

The development of a chronic canine infarct model has allowed us to (1) understand better the mechanisms of tachyarrhythmogenesis in infarction; (2) evaluate new antiarrhythmic regimens as well as other antitachycardia therapies, including cryoablation, laser ablation, pacing, and surgical techniques; (3) correlate directly the presence of low-level late potentials with myocardial activation in the presence of delayed and fractionated cardiac electrograms; and (5) evaluate critically our present methods of programmed electrical stimulation.

Animals

Differential effects of procainamide, lidocaine and acetylstrophanthidin on body surface potentials and epicardial conduction in dogs with chronic myocardial infarction.

Twenty-eight anesthetized mongrel dogs were studied 2 to 74 months after experimental myocardial infarction in order to examine the effects of procainamide, lidocaine and acetylstrophanthidin on conduction within the infarcted region and the way such effects relate to changes in body surface potentials and antiarrhythmic efficacy. In each animal, 100 to 200 QRS complexes in the X, Y, Z leads were signal averaged, vector summed and high pass filtered at 50 Hz. Susceptibility to ventricular arrhythmia was evaluated using routine programmed ventricular extrastimulation in the anesthetized open chest animal. Epicardial electrograms were sequentially recorded at 45 standard sites within the infarcted region and referenced to the beginning of the QRS complex. Of the three agents, only procainamide exhibited antiarrhythmic action whereas lidocaine and acetylstrophanthidin produced inconsistent effects. Procainamide prolonged the time at which activity in the epicardial electrographic recordings ended relative to the beginning of the body surface QRS complex. This effect was significantly greater in electrograms that ended late in the QRS complex in the control state than for those that ended earlier. Such preferential effect on more abnormal sites was reflected on the body surface as a greater effect of procainamide in prolonging the lower energy terminal portion of the signal-averaged QRS complex than the earlier high energy portion. In contrast, lidocaine significantly prolonged the time at which electrograms ended only for those relatively normal electrograms that ended early in the QRS complex in the control state. In the signal-averaged body surface QRS complex, lidocaine produced a small but significant prolongation of the early high energy portion of the QRS complex but no change in the late portion. Acetylstrophanthidin produced a significant prolongation in early-ending electrograms and, surprisingly, significantly shortened the end time of electrograms that ended late in the QRS complex in the control state. Such effects were not reflected, however, on the body surface because acetylstrophanthidin had no significant effect on either the early or the late portion of the QRS complex. It is concluded that procainamide's differential effect between early- and late-ending electrograms is detected on the body surface by a greater prolongation in the terminal portion of the QRS complex. The signal-averaged body surface QRS complex is less sensitive in detecting the more subtle effects on conduction caused by lidocaine and acetylstrophanthidin.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

Interaction of metoprolol and lidocaine on the ventricular fibrillation threshold in the anesthetized dog.

In the present study, we evaluated the antiarrhythmic interaction (s) of metoprolol and lidocaine in 16 dogs using the ventricular fibrillation threshold (VFT) method. The right ventricle was stimulated with a 100 Hz train of 12.4 ms pulses delivered after every eighth atrial paced beat at a basic cycle length of 300 ms. Lidocaine dosage was 2 mg/kg followed by a 70 micrograms/kg/min infusion and metoprolol dosage was a 75 micrograms/kg bolus. In Group 1, lidocaine was followed by metoprolol; in Group 2, first lidocaine then metoprolol and again lidocaine were given; and in Group 3, dogs received first metoprolol, then lidocaine, and subsequently metoprolol. Drug dose intervals were 45 min. In Group 1, lidocaine elevated the VFT to 149% +/- 20% and metoprolol to 204% +/- 30% of control, (p less than 0.01). In group 2, the VFT remained elevated after the second lidocaine administration (p less than 0.05 vs. Group 1). In Group 3, the VFT was increased by metoprolol to 227% +/- 30% of control (p less than 0.01). Interestingly, defibrillation induced by the combination of metoprolol and lidocaine occurred after 3.2 +/- 0.5 s in four out of 16 animals (p less than 0.05). This "chemical" defibrillation never occurred when only metoprolol or lidocaine alone was administered. Fibrillation was often more organized in the presence of the combination of metoprolol plus lidocaine, which might relate to the observed defibrillation associated with metoprolol plus lidocaine. In conclusion, the combination of metoprolol and lidocaine has no proarrhythmic effects and may enhance the electrical stability of the ventricles as measured by the VFT method.

Anesthesia

Inducible sustained ventricular tachycardia 4 years after experimental canine myocardial infarction: electrophysiologic and anatomic comparisons with early healed infarcts.

We studied a group of 17 dogs 4 to 6 years after infarction produced by 2 hr occlusion of the anterior descending coronary artery followed by reperfusion. Dogs in this "late" infarct group were compared with a group of 24 dogs with "early" healed infarcts (2 to 24 weeks old). With signal-averaging techniques body surface potentials were recorded during sinus rhythm. After thoracotomy epicardial electrograms were recorded from 45 standardized sites within the infarcted region and characteristics of selected electrograms were compared with anatomic features of underlying myocardium. Epicardial recordings from the late infarct group demonstrated earlier local activation (p less than .001) and shorter electrogram duration (p less than .001) when compared with recordings from the early infarct group. There was less temporal dispersion of activation and electrogram duration among the 45 sites in dogs with late infarcts as measured by respective coefficients of variance (p = .007 and less than .001). With programmed stimulation six dogs in the late and eight in the early infarct group exhibited inducible sustained ventricular tachycardia. Mean cycle length of the tachycardia in dogs with late infarcts was significantly shorter (p = .035). Late potentials were notably less prominent in dogs in the late infarct group with ventricular tachycardia than in dogs in the early infarct group. Fewer abnormal electrophysiologic characteristics of late infarcts coincided with relatively less scar in the underlying myocardium. Moreover, the strength of electrophysiologic-anatomic correlations differed in late as opposed to early infarcts. The latter findings suggest long-term evolution of infarct anatomy. We conclude that a substrate for reentrant tachycardia is present in dogs 4 to 6 years after reperfused infarction. Conduction characteristics are less abnormal in these late healed infarcts and are associated with a shorter ventricular tachycardia cycle length and less pronounced late potentials on the body surface.

Animals

Autonomic modulation of ventricular arrhythmia in cesium chloride-induced long QT syndrome.

To evaluate autonomic influence on arrhythmogenesis in an animal preparation of triggered activity, we gave increasing doses of cesium chloride (0.125 to 5.0 mmol/kg iv) to 24 dogs distributed equally among four protocols of autonomic intervention: control, total denervation, beta-blockade, and left stellate stimulation. All dogs underwent atrioventricular node ablation followed by ventricular pacing. A left ventricular endocardial monophasic action potential (MAP) catheter allowed for detection of "MAP early afterdepolarizations" (mEAD). mEAD amplitude was measured relative to MAP amplitude. Cesium chloride (CsCl) increased both MAP duration (132% after 0.125 mmol/kg to 188% after 1.0 mmol/kg; p less than .001) and mEAD amplitude (20% after 0.125 mmol/kg to 49% after 1.0 mmol/kg; p less than .001) in a dose-dependent fashion. All dogs exhibited ventricular ectopy at roughly equivalent doses (0.88 +/- 0.5 mmol/kg). Cesium's peak effect on MAP characteristics, sinus node automaticity, and systolic blood pressure coincided with the onset of sustained ventricular tachycardia (VT). Whereas control and denervated dogs developed VT after similar doses of CsCl (1.21 +/- 0.1 vs 1.12 +/- 0.14 mmol/kg; p = NS), none of the six beta-blocked dogs developed sustained VT. Conversely, those dogs having undergone stellate stimulation developed VT after smaller doses (0.58 +/- 0.34 mmol/kg; p less than .001) and with earlier onset (12 vs 30 sec; p less than .025). After 0.5 mmol/kg of CsCl, left stellate stimulation augmented relative mEAD amplitude compared with control (51% vs 38%; p less than .001), whereas beta-blockade had little effect (39% vs 38%; p = NS). Autonomic intervention as such can affect the arrhythmogenicity of CsCl and similarly alter MAP characteristics. Furthermore, as beta-blockade can prevent sustained arrhythmia without eliminating mEADs, autonomic tone appears to modulate the expression of mEADs as sustained VT.

Action Potentials

Mechanisms of depressed conduction from long-term amiodarone therapy in canine myocardium.

Amiodarone therapy leads to a significant impairment in myocardial conduction, yet it causes only a modest decrease in the maximum rate of depolarization of the action potential (dV/dT). To determine whether the decrease in dV/dT solely accounts for the impaired myocardial conduction or whether passive membrane properties may also be involved, we studied 21 ventricular epicardial tissues from 14 beagles; six dogs received long-term treatment (3-6 weeks) of amiodarone orally, and the remaining dogs served as controls. Amiodarone therapy was associated with a decrease in conduction velocity (0.41 +/- 0.15 vs. 0.56 +/- 0.05 m/sec; p less than 0.01). There was a trend toward a decrease in dV/dT and a significant decrease in the space constant (0.69 +/- 0.27 vs. 1.05 +/- 0.25 mm; p = 0.01), of which the latter correlated closely with the decrease in conduction velocity measured in the amiodarone-treated tissues (r = 0.85, p less than 0.05). These data indicate that the decrease in myocardial conduction velocity caused by amiodarone is primarily due to effects on overall resistance to passive current flow rather than effects on the inward sodium current.

Action Potentials

Interaction of fiber orientation and direction of impulse propagation with anatomic barriers in anisotropic canine myocardium.

We developed a computer model of the interaction of impulse propagation with anatomic barriers in uniformly anisotropic tissue. Its predictions were confirmed experimentally by using an in vitro cut to create a 6 X 1-mm anatomic barrier in 12 canine epicardial strips. The model predicted that long, thin barriers located parallel to the direction of impulse propagation would have little effect in delaying conduction regardless of the arrangement of cardiac fibers. In this situation, the mean experimental ratio of postcut to control conduction times across the barrier was 1.05:1.00 in 10 tissues. When impulses were proceeding perpendicular to an anatomic barrier, significant distal conduction delay was predicted and found to occur only when the conduction from pacing to recording sites was initially longitudinal to fiber orientation (mean experimental ratio, 2.34:1.00 in five tissues) but not transverse to fiber orientation (ratio, 1.08:1.00 in five tissues). We conclude that the direction of initial impulse propagation and the orientation of myocardial fibers have large effects on the degree to which anatomic barriers delay activation in cardiac tissue. These findings may have implications for the participation of anatomic barriers in reentrant circuits.

Animals

Effects of cellular uncoupling on conduction in anisotropic canine ventricular myocardium.

Experiments were performed on canine superfused ventricular epicardial tissue slices to determine the effects of 1.0-2.0 mM heptanol, an uncoupling agent, on conduction longitudinal and transverse to myocardial fiber orientation. Conduction velocities were measured between proximal and distal pairs of epicardial electrodes oriented transverse and longitudinal to the direction of a conducted wavefront evoked by pacing at a basic cycle length of 2,000 msec from one margin of the tissue before and after the addition of heptanol. In a separate group of tissues, the dual bipolar orthogonal electrode was used to sequentially map epicardial activation at 40 to 45 sites in a 1 cm x 2 cm area before and 30 minutes after the introduction of heptanol. In a third group of tissues, transmembrane potentials were recorded with standard microelectrode techniques to determine the effects of heptanol on action potential characteristics. Heptanol did not significantly effect action potential amplitude or maximum rate of depolarization. After 1.0 mM heptanol, conduction velocity began to decrease in 1-2 minutes and reached a steady state in 15-20 minutes. Conduction velocity in the longitudinal direction decreased from a control value of 0.56 +/- 0.13 to 0.46 +/- 0.10 M/sec (+/- SD) at 30 minutes after heptanol (p = 0.005). In the transverse direction, it decreased from 0.24 +/- 0.09 to 0.17 +/- 0.05 M/sec (p = 0.002). The ratio of longitudinal to transverse conduction velocities increased from 2.54 +/- 1.00 to 2.94 +/- 0.82 (p = 0.042). Thus, heptanol preferentially slowed conduction in the transverse direction. Because heptanol did not greatly influence active membrane properties, we used cable equations to calculate the time course of the change in effective junctional resistivity, which rose from 133.2 omega.cm before heptanol to 312.2 omega.cm 30 minutes after heptanol administration. We conclude that heptanol slows conduction velocity by selectively increasing junctional resistivity. The preferential slowing of conduction in the transverse direction is most likely due to the fact that more junctional resistances are encountered per unit distance in the transverse than in the longitudinal direction.

Action Potentials

A model of conduction through the N region of the AV node.

A computer model of the AV node was developed in order to study mechanisms of conduction delay in the AV node. Three cells were used corresponding to the AN, N, and NH region. The basic mechanisms for delay were a high intercellular resistance and a delayed, time dependent recovery of excitability in the center cell. The action potentials for all cells were held constant. The model reproduces antegrade conduction characteristics of the AV node and the waveform of the center cell resemble the two component action potentials of N cells. The model suggests that the conduction properties of the AV node may be due to subthreshold phenomenon.

Atrioventricular Node

The cellular electrophysiologic changes induced by ablation: comparison between argon laser photoablation and high-energy electrical ablation.

The cellular electrophysiologic effects of myocardial ablation performed in vitro with argon laser energy were compared with those of high-energy electrical shocks. A border zone of injured but nonnecrotic tissue surrounding the site of energy delivery was present after tissue ablation by both energy modalities. A decrease in resting membrane potential, action potential amplitude, and maximum rate of upstroke velocity was noted in each tissue sample, was greatest nearest the site of energy delivery, and was of graded severity at increasing distances from the crater edge. The extent of injury, as indexed by changes in action potential variables and necrosis, histologically determined, was greater for tissues exposed to high-energy shocks. The relatively focal injury after argon laser photoablation may explain the lower incidence of arrhythmias and hemodynamic dysfunction noted with the use of this method of ablation in vivo.

Action Potentials

Depression of action potential characteristics and a decreased space constant are present in postischemic, reperfused myocardium.

Brief periods of ischemia and reperfusion may lead to arrhythmias and delayed epicardial activation. To determine the nature of the electrophysiologic substrate and to gain insight into potential mechanisms underlying the electrophysiologic and hemodynamic abnormalities that develop in this setting, standard microelectrode techniques were used to measure action potential characteristics, conduction velocity, and space constants in canine isolated epicardial preparations removed after a 15-min anterior descending artery occlusion and 20-min reflow period in vivo. Our results demonstrate a significant reduction in conduction velocity (0.78 +/- 0.38 vs. 0.31 +/- 0.12 m/s, P less than 0.001), space constant (1.05 +/- 0.42 vs. 0.45 +/- 0.12 mm, P = 0.004), resting membrane potential (81.3 +/- 2.5 vs. 61.7 +/- 7.8 mV, P less than 0.001), action potential amplitude (94.1 +/- 4.2 vs. 64.1 +/- 1.5 mV, P less than 0.001), and dV/dT (164.7 +/- 37.3 vs. 52.6 +/- 19.7 V/s, P less than 0.001) in postischemic reperfused myocardium. The space constant and dV/dT each correlated with conduction velocity; in addition, the space constant was an independent predictor of conduction velocity in these tissues. These electrophysiologic abnormalities may play a role in the arrhythmias and abnormalities of contraction present in postischemic, reperfused myocardium.

Action Potentials