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D A Lathrop

Publications and source records attributed to D A Lathrop.

At least 19 recordsLinked to original sources

Effects of altered extracellular potassium and pacing cycle length on the class III antiarrhythmic actions of dofetilide (UK-68,798) in guinea-pig papillary muscle.

The effects of altered extracellular K+ concentrations ([K+]o) and pacing cycle lengths (CLs) on the electrophysiological actions of dofetilide (UK-68,798), a potent class III antiarrhythmic agent, were examined in isolated guinea-pig ventricular papillary muscle. At a normal [K+]o (4 mM) and at CL between 300 and 5000 msec, dofetilide (10 nM) significantly increased the action-potential duration (APD) and the effective refractory period (ERP), whereas other action-potential parameters were unaffected. Elevation of [K+]o to 10 mM reduced membrane diastolic potential (MDP), action-potential amplitude (APA), and the maximum rising velocity of the action-potential upstroke (Vmax). These changes were accompanied by a small shortening of APD90, but with an increase in ERP; i.e., the ERP/APD90 ratio was increased. Dofetilide also significantly lengthened APD90 at 10 mM [K+]o and at each CL. Even at the short cycle lengths (300 and 500 msec), dofetilide-induced increases in APD90 were not attenuated whether [K+]o was at 4 or 10 mM. These results indicate that at various pacing CLs, 10 nM dofetilide increases myocardial APD and ERP to a similar extent without significant reverse use-dependence when the cell membrane is normally polarized or partially depolarized by elevated [K+]o. Dofetilide may, therefore, be expected to be beneficial in the treatment of cardiac tachyarrhythmias related or unrelated to regional myocardial hyperkalemia during myocardial ischemia.

Action Potentials

Biphasic effect of tetraethylammonium on canine purkinje fibre action potential configuration.

1. Using conventional microelectrode techniques a biphasic effect of tetraethylammonium (5 mmol/l) on the configuration of action potentials recorded from isolated canine Purkinje fibres: action potentials were first shortened (early effect) and then lengthened (late effect) by tetraethylammonium. 2. The early effect of tetraethylammonium also included lengthening of phase 1 duration and elevation of the plateau amplitude. These early effects reached steady-state within the first 3 min of superfusion and were readily reversed within 3 min of initiating washout of the drug. 3. The late effect (gradual lengthening of repolarisation during phase 3) failed to reach steady-state within the initial 60 min of superfusion and was not reversible. 4. The early effects of tetraethylammonium were more marked at slow driving rates and were not affected by blockade of alpha- and beta-adrenoceptors using 1 mumol/l phentolamine and 1 mumol/l propranolol. 5. The early effects of tetraethylammonium were mimicked by 4-aminopyridine (0.5 mmol/l), and in the presence of 4-aminopyridine tetraethylammonium failed to induce further changes in action potential morphology. 6. The early effects of tetraethylammonium may be due to inhibition of the transient outward current. 7. The rapid onset and reversibility of these early effects suggest that tetraethylammonium may act from outside the cell membrane.

Action Potentials

Class III antiarrhythmic action by potassium channel blockade: dofetilide attenuates hypoxia induced electromechanical changes.

OBJECTIVE: The aim was to examine the electromechanical effects of dofetilide, a new class III antiarrhythmic agent, in isolated guinea pig ventricular muscle during hypoxia. METHODS: Hypoxia was induced by superfusing guinea pig right ventricular papillary, muscles with Tyrode's solution gassed with 95% N2 + 5% CO2 [PO2 = 5.3(SEM 1.3) kPa]. Prior to hypoxia, the preparations were either pretreated for 30 min with 0.1 microM dofetilide (n = 6) or with 100 microM glibenclamide (a blocker of ATP sensitive K+ channels, n = 6), or not pretreated (n = 6). Sixteen additional preparations were exposed to 1 mM nicorandil (an activator of ATP sensitive K+ channels) in the absence (n = 6) and presence of dofetilide (n = 6) or glibenclamide (n = 4). Transmembrane action potentials and developed force were recorded using conventional microelectrode techniques and a force transducer. RESULTS: During normoxia, dofetilide markedly increased APD90 from 236(SEM 6) ms to 298(7) ms (p < 0.05) and the effective refractory period (ERP) from 248(5) ms to 315(6) ms (p < 0.05). In the drug free group, 60 min hypoxia decreased APD90 by 47(5)% (p < 0.05), ERP by 48(4)% (p < 0.05) and developed force by 71(6)% (p < 0.05) of baseline, respectively. These hypoxia induced effects were significantly attenuated after pretreatment with dofetilide or glibenclamide. Nicorandil decreased APD90 by 45(5)% (p < 0.05), ERP by 44(6)% (p < 0.05), and developed force by 69(10)% (p < 0.05) of baseline, respectively. Pretreatment with dofetilide or glibenclamide also significantly attenuated the nicorandil induced decreases in APD90, ERP, and developed force. CONCLUSIONS: Dofetilide, like glibenclamide, effectively attenuates hypoxia and nicorandil induced action potential shortening and the associated reduction in contractile force. Thus dofetidile would be expected to retain its antiarrhythmic efficacy during myocardial hypoxia or ischaemia.

Action Potentials

Active and passive electrical properties of isolated canine cardiac Purkinje fibers under conditions simulating ischaemia: effect of diltiazem.

The effect of a calcium channel blocker diltiazem on the electrical properties of canine Purkinje fibers superfused in a milieu similar to that occurring in acute myocardial ischaemia was studied. Action potential parameters, passive electrical properties, and conduction velocity were measured using conventional microelectrode techniques. Superfusion with glucose-free Tyrode's solution containing 9 mM K+, gassed with 100% N2 at pH = 6.5 ('ischemic solution') significantly reduced the maximal diastolic potential, action potential duration, maximal upstroke velocity, conduction velocity and length constant, while input resistance and longitudinal resistance were elevated and membrane resistance remained unchanged. Diltiazem (1 microM) alone reduced only the action potential duration, while all other parameters were unaffected. Pretreatment with diltiazem did not fully prevent the effects of ischemic superfusion; however, the ischaemia-induced decrease in length constant was not significant in the presence of diltiazem. In addition, the increase in longitudinal resistance during ischaemia was significantly reduced following diltiazem pretreatment. This decrease in longitudinal resistance may contribute to the improvement of ischaemia-induced conduction delay observed in intact animals and may be related to a reduction of ischaemia-induced increase in intracellular free Ca2+.

Action Potentials

Nonlinear relationship between V+max and h infinity in frog skeletal muscle.

The relationship between the maximum velocity of action potential upstroke (V+max) and steady-state Na+ channel inactivation (h infinity) was studied in frog skeletal muscle during repetitive discharges evoked in the presence of cevadine (1 mumol/l). Conventional microelectrodes and vaseline-gap voltage-clamp techniques were used. A severe degree of nonlinearity was found between (h infinity) and (V+max) especially when the Na+ conductance (gNa) was small. The observed nonlinearity could be explained as a property of the normal Na+ channel gating in skeletal muscle rather than that of cevadine-modified channels. Part of this work has been published in abstract form in Biophys. J. 57: 105A, 1990.

Action Potentials

Ionic currents in ventricular myocytes isolated from the heart of a patient with idiopathic cardiomyopathy.

Whole-cell configuration of the patch-clamp technique was applied to record ionic currents from human ventricular myocytes isolated from a cardiac transplant patient with idiopathic cardiomyopathy. Inward calcium current, transient outward current, and inward rectifier potassium current were recorded, while no discernible delayed rectifier potassium current was observed. Thus the currents that underlie electrical activity in human ventricular myocytes appear to resemble those reported earlier in canine and rabbit ventricular myocytes.

Calcium

Electrophysiologic effects of FPL 13210 on canine Purkinje fiber action potential duration and Vmax comparison to disopyramide.

The frequency-dependent effects of FPL 13210, a new disopyramide derivative, were examined in isolated canine cardiac Purkinje fibers paced at a frequency of 2 Hz and following abrupt changes in pacing cycle length. At 2 Hz, FPL 13210 depressed Vmax, while shortening action potential duration measured at 50% of repolarization (APD50) and not affecting duration measured at 90% of repolarization (APD90). These effects were concentration dependent over the range of 1-30 microM. The depression of Vmax produced by 5 microM FPL 13210 was not significantly different than that produced by 18 microM disopyramide while the preparations were paced constantly at 2 Hz. At these concentrations, recovery of Vmax was slowed by both FPL 13210 and disopyramide. The slow time constant estimated for this relation after exposure to FPL 13210 was approximately 6.5 times longer than that estimated following administration of disopyramide. In addition, APD90s evoked by early premature stimuli in the presence of 5 microM FPL 13210 were longer than those produced in the absence of drug when the diastolic intervals longer than 100 ms produced shorter APD90s after FPL 13210 administration. Therefore, when FPL 13210 is compared to disopyramide using concentrations selected to produce equivalent degrees of Vmax depression, FPL 13210 produced effects on APD90 that were opposite to those produced by disopyramide when the diastolic interval was longer than normal. These effects of FPL 13210 would suggest that this compound should be classified as a class Ic antiarrhythmic agent, unlike disopyramide, a class Ia antiarrhythmic agent.

Action Potentials

Effect of sotalol on transmembrane ionic currents responsible for repolarization in cardiac ventricular myocytes from rabbit and guinea pig.

The effects of sotalol, a beta-adrenoceptor blocker and class III antiarrhythmic agent, on transmembrane ionic currents were examined in single rabbit and guinea pig ventricular myocytes using whole-cell voltage-clamp techniques. In neither of these species did 60 microM sotalol appreciably effect the inward rectifier, the transient outward or the inward calcium currents. In addition, sotalol did not elicit a slowly inactivating component of the sodium current as did 1 microgram/ml veratrine. In guinea pig ventricular myocytes, sotalol also significantly depressed the outward delayed rectifier current. An outward delayed rectifier current was not observed in rabbit ventricular myocytes examined at room temperature; and, under these conditions sotalol did not lengthen action potential duration. Sotalol induced lengthening of cardiac action potential duration can, therefore, be explained by depression the outward delayed rectifier current.

Action Potentials

Rate and concentration-dependent effects of UK-68,798, a potent new class III antiarrhythmic, on canine Purkinje fibre action potential duration and Vmax.

1. The frequency-dependent electrophysiological effects of UK-68,798 in concentrations of 1, 3, 10 and 30 nM were examined in isolated cardiac Purkinje fibres of the dog at both a number of constant rates of stimulation and following abrupt changes in pacing cycle length. 2. In all concentrations evaluated, UK-68,798 lengthened action potential duration in a concentration- and rate-dependent manner (e.g., at a cycle length = 500 ms, control APD90 = 234.0 +/- 3.3 ms, while after 10 nM UK-68,798, APD90 = 315.0 +/- 5.9 ms). 3. The duration of action potentials evoked following abrupt changes in pacing rate were also increased in a concentration-dependent manner at all diastolic intervals tested. 4. The fast and slow time constants for restitution of APD were not altered by UK-68,798. However, the amplitude terms for this relation were increased. 5. In addition, the maximum upstroke velocity (Vmax) was not significantly affected by exposure to UK-68,798 at any concentration or diastolic interval. The kinetics for recovery of Vmax were thus unaffected. 6. These findings are similar to those previously reported for recognized class III antiarrhythmic agents (e.g., bretylium, clofilium, and sotalol); however, UK-68,798 was 1,000 to 10,000 times more potent. 7. The combined potency and selectivity of this agent seem to make it an ideal tool for the investigation of cardiac potassium channels believed responsible for controlling the duration of the action potential. 8. This potent and highly selective compound may prove extremely useful in the control of cardiac arrhythmias.

Action Potentials

Vasoactive intestinal polypeptide enhances automaticity of supraventricular pacemakers in anesthetized dogs.

Effects of the cardiac neuropeptide vasoactive intestinal polypeptide (VIP) and isoproterenol (ISO) were compared on sinus nodal, subsidiary atrial, and atrioventricular junctional pacemaker automaticity in pentobarbital sodium-anesthetized dogs (n = 14). Autonomic cardiac nerves were decentralized by bilateral vagotomy and stellectomy. VIP and ISO (30, 100, and 300 pmol/kg iv) were administered during sinus rhythm and either after crushing the sinus node to unmask a latent subsidiary atrial pacemaker (n = 7 dogs) or after injecting pentobarbital sodium into the sinus node artery to elicit an atrioventricular junctional pacemaker (n = 7). Spontaneous sinus nodal, subsidiary atrial, and atrioventricular junctional pacemaker rates (after autonomic nerve decentralization) were 142 +/- 4, 114 +/- 3, and 79 +/- 4 beats/min (means +/- SE), respectively. Both VIP and ISO dose dependently increased the rates of all three pacemaker sites. Combined muscarinic-cholinergic (atropine; 0.11 mg/kg iv) and beta-adrenergic receptor blockade (nadolol; 0.5 mg/kg iv) abolished the stimulatory effects of ISO on subsidiary atrial and atrioventricular junctional pacemakers but did not affect the responses to VIP. We conclude that exogenous VIP enhances the automaticity of sinus nodal, subsidiary atrial, and atrioventricular junctional pacemakers independently of muscarinic-cholinergic and beta-adrenergic receptors. Based on the previous demonstration of VIP-immunoreactive nerves throughout the heart, our findings also suggest that endogenous VIP may be involved in cardiac pacemaker regulation.

Animals

Voltage-clamp characteristics of ventricular myocytes in rabbit.

Action potentials and ionic currents were measured by patch-clamp in single right ventricular myocytes isolated enzymatically from rabbits and guinea pigs at room temperature. Based upon the shape of their action potentials, the rabbit myocytes were divided into two groups. In group 1 (n = 15), a prominent phase of initial rapid repolarization (phase 1) occurred following the upstroke of the action potential. Action potentials recorded in the second group (n = 9) did not have a noticeable phase 1. In group 1, voltage-clamp protocols revealed a transient outward current (Ito) activated upon depolarization from a holding potential of -50 mV to potentials positive to -20 mV. This outward current inactivated rapidly (tau = 50 ms) in a voltage-independent manner. The transient outward current was not apparent in group 2. In all the rabbit myocytes, the inward calcium current (ICa) was activated between -30 and -20 mV, with a peak at 0 mV. The inactivation kinetics of the inward calcium current were dependent on the voltage. In 4 out of 11 cells, inactivation was best described by a single exponential relation, and in the remaining 7 cells by a double exponential relation. The recovery of the inward calcium current from inactivation and the restitution of the duration of the action potential showed similar time-courses of 132 +/- 11.6 ms (n = 8) and 163.7 +/- 23.0 ms (n = 6), respectively. In all the rabbit myocytes the relation between current and voltage, established at the end of 400 ms command pulses, displayed a negative slope conductance. In rabbit myocytes, unlike those of guinea pig, pulses as long as 5 s revealed the delayed rectifier outward current to be weak or absent. Our results suggest that two populations of ventricular myocytes exist in the rabbit; neither has a prominent delayed rectifier, at least at room temperature, while one group has a transient outward current and the other does not. The major currents controlling the duration of the action potential at room temperature in myocytes from the right ventricle of the rabbit, therefore, are the inward calcium current and the inward rectifier potassium current (IK1).

Action Potentials

Concentration- and rate-dependent electrophysiological effects of restacorin on isolated canine Purkinje fibres.

The cellular electrophysiological effects of restacorin, a new antiarrhythmic agent were studied using conventional microelectrode techniques in isolated dog cardiac Purkinje fibres. Restacorin (1-30 mumol/l) decreased the maximum rate of rise of the action potential upstroke and action potential amplitude while action potential duration measured at 90% of repolarization was shortened in a concentration-dependent manner during pacing at a constant basic cycle length of 500 ms. The effect of 10 mumol/l restacorin on maximal rate of rise of the action potential upstroke and on action potential duration measured at 90% of repolarization were also studied while varying the constant pacing cycle length between 300 and 5000 ms. The results of these studies indicated a rate-dependent effect of restacorin on the action potential characteristics examined. After abrupt changes in cycle length, 10 mumol/l restacorin slowed the fast component of the relation for restitution of action potential duration from 155.3 +/- 5.2 ms (control, n = 6) to 217.1 +/- 17.8 ms (n = 6, P less than 0.05). In the presence of restacorin (10 mumol/l), a second slow component for recovery of maximal action potential upstroke rising velocity was expressed having a time constants of 8.5 +/- 1.2 s. The range of premature action potential durations was significantly decreased (by 57.1%, P less than 0.01) by 10 mumol/l restacorin. These results indicate that the cellular electrophysiological effects produced by restacorin in dog cardiac Purkinje fibres best resemble those produced by recognized class Ic antiarrhythmic drugs.

Action Potentials

Different actions of aconitine and veratrum alkaloids on frog skeletal muscle.

1. The electrophysiological effects of veratridine, cevadine and aconitine (10(-8)-2 x 10(-4), 2 x 10(-7)-2 x 10(-6) and 2 x 10(-6)-10(-4) mol/l, respectively) were compared on frog muscle membrane using conventional microelectrodes. 2. Veratridine and aconitine were equally effective in depolarizing the resting membrane with the threshold concentration of 5 x 10(-5) mol/l. 3. Volleys of repetitive discharges and slow transient depolarizations were observed when single electrical stimuli were applied in the presence of veratridine (5 x 10(-8)-2 x 10(-5) mol/l), but not aconitine. Volleys with aconitine could be evoked only by repetitive stimulation; however no tendency of repolarization was observed following these volleys. Two orders of magnitude more aconitine than veratridine was required to induce volleys with similar parameters. 4. The effects of cevadine were similar to those of the corresponding concentrations of veratridine. 5. The observed differences between the electrophysiological actions of aconitine and veratrum alkaloids may be explained in part with differences in Na+ channel inactivation produced by these toxins, in addition to differences in their use-dependent behavior.

Aconitine

Effect of antiarrhythmic drugs, TTX, and 4-aminopyridine on repetitive electrical activity in frog skeletal muscle.

1. Conventional microelectrode techniques were used to study the effects of antiarrhythmic drugs (quinidine, 2-20 microM; lidocaine, 5-50 microM; verapamil, 2-20 microM), 4-aminopyridine (4-AP, 50-100 microM), and tetrodotoxin (TTX, 1.5-6 nM) on repetitive electrical discharges induced in the muscle membrane in the presence of 1 microM cevadine. 2. Antiarrhythmic drugs and 4-AP produced progressive reduction of the maximum upstroke velocity (V+ max) of the discharges, while the cycle length was prolonged by each drug except 4-AP. 3. The efficacy in depression of V+ max and prolongation of cycle length was not proportional in the case of individual drugs. 4. A simple model of the repetitive activity incorporating drug-effects was presented. The cevadine-modified Na+ channels could be blocked by antiarrhythmic agents, however, the efficacy of these drugs on the normal and cevadine-modified Na+ channels were found to be different.

4-Aminopyridine

Use-dependent action of antiarrhythmic drugs in frog skeletal muscle and canine cardiac Purkinje fiber.

1. Conventional microelectrode techniques were used to study the effect of quinidine (10 microM), lidocaine (20 microM), and verapamil (3-10 microM) on action potential upstroke (V+ max) in frog skeletal muscle and dog Purkinje fiber. 2. The frequency-dependent nature of V+ max depression induced by these drugs was similar in both preparations, however, quinidine was more potent in skeletal muscle while lidocaine was in Purkinje fibers. 3. In skeletal muscle tetrodotoxin (3 and 15 nM) and low concentrations of antiarrhythmic drugs proportionally reduced the maximum velocity of depolarization and repolarization (V+ max and V- max, respectively), whereas V- max was more depressed than V+ max by high concentrations (50-200 microM) of antiarrhythmics. Decreases in the overshoot potential were proportional to the V+ max block in the case of each drug. 4. These results indicate that therapeutically relevant concentrations of quinidine and lidocaine inhibit skeletal muscle Na+ channels in a use-dependent manner similar to heart, while at higher concentrations the K+ channels may also be blocked. Therapeutic implications of the results are discussed.

Action Potentials

Sotalol and mexiletine: combination of rate-dependent electrophysiological effects.

The rate-dependent electrophysiological effects of sotalol (30 microM), mexiletine (10 and 18 microM), and their coadministration were examined in isolated dog cardiac Purkinje fibers following abrupt changes in pacing cycle length. Combination of 30 microM sotalol with 10 microM mexiletine significantly lengthened premature action potential durations at diastolic intervals of less than 50 ms while the basic action potential duration evoked at a stimulus frequency of 2 Hz was not affected. This effect on the premature action potential duration was attenuated when the higher mexiletine concentration (18 microM) was coadministered with sotalol. The fast time constant for restitution of the action potential duration was significantly slowed by either combination. Coadministration of sotalol and mexiletine, like mexiletine alone, produced a rate-dependent depression of Vmax that displayed a second slow time component during recovery. This slow component for recovery of Vmax was not distinguished in the absence of drug or in the presence of sotalol alone. Sotalol-induced lengthening of the action potential duration observed at slow pacing frequencies was also attenuated by addition of mexiletine; and, under these conditions, Purkinje fiber early afterdepolarizations were prevented. In addition, the range of premature action potential durations was significantly decreased by mexiletine and by the combination, while sotalol alone increased this range slightly. These results indicate that coadministration of sotalol and mexiletine may provide beneficial electrophysiological effects expected to provide enhanced antiarrhythmic efficacy and fewer proarrhythmic complications in patients.

Action Potentials

Effects of propranolol on premature action potentials in canine Purkinje and ventricular muscle.

We compared the effects of a low (0.09 microgram/ml) concentration of propranolol expected to produce only beta-adrenoceptor blockade and a high concentration (0.9 microgram/ml) expected to produce additional direct local anesthetic-like electrophysiological effects on basic and premature action potentials. Both isolated dog cardiac Purkinje and ventricular muscle fibers were examined using conventional microelectrode techniques. The low concentration of propranolol produced no significant electrophysiological change in either fiber type. The high concentration of propranolol shortened the action potential duration and refractoriness while decreasing the maximal upstroke velocity (Vmax) in both Purkinje and ventricular muscle fibers at a constant basic cycle length. In Purkinje fibers, the high concentration also slowed the kinetics of restitution of the action potential duration (tau c from 124.6 +/- 6.5 to 201.4 +/- 16.0 ms, p less than 0.01, n = 7), slowed the recovery kinetics of Vmax, and shifted the early portion of the normalized restitution curve toward longer action potential duration values in both fiber types. The range of premature action potential durations, defined as the difference between action potential durations during the first 100 ms of restitution, was decreased by the high concentration of propranolol in both Purkinje and ventricular muscle fibers by 39.5% and 33.9%, respectively. These findings indicate that (a) low concentrations of propranolol produced no direct electrophysiological effect, and (b) high concentrations of propranolol produced several potential antiarrhythmic effects in addition to the previously reported effects on Vmax and the action potential duration.

Action Potentials

In vitro cardiac models of dog Purkinje fibre triggered and spontaneous electrical activity: effects of nicorandil.

1. The effects of nicorandil (30 microM and 100 microM) on two models of triggered activity [early afterdepolarizations (EADs) and delayed afterdepolarizations (DADs)] and on spontaneous automaticity occurring from both normal and depolarized levels of membrane potential were examined in isolated cardiac Purkinje fibres of the dog. Standard intracellular microelectrode techniques were used. 2. Nicorandil (30 microM) abolished EADs provoked by superfusion with Tyrode solution containing 2.7 mM K+ and 3 mM Cs. 3. DADs were induced by 0.2 microM acetylstrophanthidin in Tyrode solution containing 5.4 mM K+. Nicorandil (30 microM) significantly reduced the amplitude of these DADs from 12.5 +/- 2.5 mV to 5.5 +/- 0.2 mV (P less than 0.02, n = 6), while DADs were fully abolished by 100 microM nicorandil. 4. In unstimulated Purkinje strands, superfused with 2.7 mM K+ containing Tyrode solution having a pH of either 7.4 or 6.8, spontaneous depolarizations developed with a mean maximum diastolic potential (MDP) of -84.6 +/- 1.6 mV (n = 9) or -54.0 +/- 1.2 mV (n = 9), respectively. Nicorandil significantly reduced the frequency of this automatic activity and caused its cessation, at either level of MDP. Nicorandil, however, produced significant hyperpolarization only when automaticity occurred from the depolarized level of potential. 5. These results suggest that nicorandil may exert significant antiarrhythmic actions in vivo by abolishing both spontaneous and triggered electrical activity.

Action Potentials