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D A Terrar

Publications and source records attributed to D A Terrar.

At least 19 recordsLinked to original sources

Effects of propofol and enflurane on action potentials, membrane currents and contraction of guinea-pig isolated ventricular myocytes.

1. The effects of two general anaesthetics, propofol and enflurane, on electrical activity and contractions were investigated in single myocytes isolated from guinea-pig ventricles. 2. Propofol and enflurane depressed the plateau and shortened the duration of action potentials. 3. Under voltage-clamp conditions, propofol and enflurane reduced the amplitude of inward calcium current and of additional inward current activated by cytosolic calcium. 4. Contractions (measured with an optical technique) accompanying either action potentials or second inward currents (in response to depolarizations to 0 mV) were reduced by both anaesthetics. The mechanisms for calcium entry during contractions accompanying pulses to positive potentials such as +60 mV are thought to differ from those accompanying second inward currents which are evoked by pulses from -40 to 0 mV. Enflurane enhanced the amplitudes of contractions accompanying pulses to positive potentials; in contrast these contractions were depressed by propofol. 5. In experiments where recovery processes were investigated by use of pairs of voltage-clamp pulses with a variable interval between them, enflurane but not propofol slowed the recovery of contractions and calcium-activated 'tail' currents. These observations are consistent with the hypothesis that enflurane may impair calcium handling by the sarcoplasmic reticulum whereas propofol has little, if any, effect at this site. 6. In conclusion, the actions of propofol and enflurane on second inward currents contribute to their effects on action potentials and contraction. The negative inotropic effect of both anaesthetics may result partly from reduced calcium influx to trigger contraction, and for enflurane, partly from an impairment of calcium handling by the sarcoplasmic reticulum.

Animals

Actions and mechanisms of action of novel analogues of sotalol on guinea-pig and rabbit ventricular cells.

1. The actions and mechanisms of action of novel analogues of sotalol which prolong cardiac action potentials were investigated in guinea-pig and rabbit isolated ventricular cells. 2. In guinea-pig and rabbit cells the compounds significantly prolonged action potential duration at 20% and 90% repolarization levels without affecting resting membrane potential. In guinea-pig but not rabbit cells there was an increase in action potential amplitude and in rabbit cells there was no change in the shape or position of the 'notch' in the action potential. 3. Possible mechanisms of action were studied in more detail in the case of compound II (1-(4-methanesulphonamidophenoxy)-3-(N-methyl 3,4 dichlorophenylethylamino)-2-propanol). Prolongation of action potential duration continued to occur in the presence of nisoldipine, and calcium currents recorded under voltage-clamp conditions were not reduced by compound II (1 microM). Action potential prolongation by compound II was also unaffected in the presence of 10 microM tetrodotoxin. 4. Compound II (1 microM) did not influence IK1 assessed from the current during ramp changes in membrane potential (20 mV s-1) over the range -90 to -10 mV. 5. Compound II (1 microM) blocked time-dependent delayed rectifier potassium current (IK) activated by step depolarizations and recorded as an outward tail following repolarization. When a submaximal concentration (50 nM) was applied there was no change in the apparent reversal potential of IK.6. Submaximal concentrations of compound II were without effect on activation of IK with time at a membrane potential of + 40 mV, and no changes were detected in the time constants of the two components of IK decay over the range of potentials - 60 to 0 mV. Compound 11 (50 nM) appeared to cause a small shift in the activation of IK with membrane potential (an apparent shift of approximately 10mV in the depolarizing direction at the mid-point of the curve).7. Log dose-response curves for action potential prolongation and for blockade of IK by compound II were similar. The IC50 for compound II was approximately 30 nM.8. It is concluded that this novel series of compounds prolongs action potential duration, and that in the case of compound II the evidence supports a potent selective effect on the time-dependent potassium current IK, an effect which can account for this prolongation.

Action Potentials

Inactivation of Ca current during the action potential in guinea-pig ventricular myocytes.

The inactivation of Ca channels during the action potential plateau of guinea-pig ventricular myocytes was investigated by interrupting action potentials with voltage clamp pulses to assess Ca channel availability. The influence of the bulk cytosolic calcium [( Ca]i) transient on Ca channel inactivation was also studied by impaling cells with microelectrodes containing the Ca chelator BAPTA (1,2 bis(2-aminophenoxy)ethane-N,N,N',N'-tetraacetic acid; 125-200 mM). Ca channel availability decreased progressively with action potential duration, reaching approximately 20% of maximum availability after 100 ms and falling close to zero at the end of the plateau. When membrane potential became more negative than -40 mV Ca channel availability increased. Elevation of the action potential plateau to more positive levels increased Ca channel availability (even though this was expected to increase peak [Ca]i). When the cytosol was loaded with BAPTA Ca channel availability during the plateau increased. Inactivation of Ca channels was not, however, abolished. The observations are consistent with the hypothesis that in guinea-pig ventricular myocytes the majority of Ca channels are inactivated during the plateau and recovery does not occur until repolarization is almost complete. It may be that while the cytosolic Ca transient (that is generated in part by release of Ca from the intracellular Ca stores) modulates Ca channel availability, significant inactivation of the Ca channel during the action potential plateau is due to voltage dependent inactivation and to Ca-induced inactivation resulting from the Ca which enters the myocyte via Ca channels.

Action Potentials

The synthesis and potassium channel blocking activity of some (4-methanesulfonamidophenoxy)propanolamines as potential class III antiarrhythmic agents.

The synthesis of 22 (4-methanesulfonamidophenoxy)propanolamines and their testing on isolated guinea pig cardiac myocytes, on isolated preparations from guinea pig atria, and on rat blood pressure are described. Secondary amines in the series (11a-f) showed residual beta-blocking activity, whereas incorporation of N-methyl phenylalkyl and 4-phenyl alicyclic amine groups abolished beta-blocking activity but led to enhanced ability to block the channel conducting the delayed rectified potassium current, and hence produced an increase in the cardiac action potential duration (APD). Incorporation of hydrophobic Cl and CF3 groups further enhanced potassium channel blocking activity. Compounds 81 and 8m produced a significant increase in APD at nanomolar concentrations, with no effect on cardiac muscle conduction velocity, and hence merit further investigation as Class III antiarrhythmic agents. Methylation of the methanesulfonamido group abolished channel-blocking activity; 4-carboxy and 3-methanesulfonamido analogues retained activity but at a reduced level.

Animals

Modes of hexamethonium action on acetylcholine receptor channels in frog skeletal muscle.

1. The antagonism between hexamethonium and cholinoceptor agonists was investigated in frog skeletal muscle fibres with voltage-clamp techniques. Hexamethonium caused a voltage-dependent reduction in the amplitude of endplate currents. For neurally evoked endplate currents, the reduction increased e-fold with a 38 mV membrane hyperpolarization. 2. The effect of hexamethonium on the time course of endplate currents was small, and was most apparent as a slight prolongation of the decay phase at hyperpolarized potentials (more negative than -100 mV). A similar small prolongation of single channel lifetime was detected with fluctuation analysis techniques. Hexamethonium produced a voltage-dependent reduction in apparent single channel conductance as the membrane was hyperpolarized. 3. Log (concentration-response) curves for acetylcholine (ACh)-induced currents, determined either from currents accompanying ramp changes in membrane potential or from steady state currents in voltage-jump experiments, were less steep for responses in the presence of hexamethonium. This reduction in slope became more pronounced at more negative membrane potentials. Observations at +50 mV suggested that the equilibrium constant for competitive antagonism was approximately 200 microM. 4. In voltage-jump experiments with a two-microelectrode voltage clamp, the current evoked by ACh in the presence of hexamethonium differed from that recorded with ACh alone. In the presence of hexamethonium, the expected 'instantaneous' ohmic increase in membrane current in response to a hyperpolarizing step was not detected; instead a decrease in current was observed. This problem was further investigated with a vaseline-gap voltage-clamp technique which provides improved temporal resolution. With this method a rapid decrease in the ACh-induced inward current was observed with step hyperpolarizations in the presence of hexamethonium. 5. When the membrane potential was stepped back to its resting level from a more hyperpolarized potential in the presence of hexamethonium, there was a surge of ACh-induced inward current that decayed with a time constant of less than 100 microseconds. 6. The slow relaxation in the ACh-induced current that followed a voltage step recorded in the presence of hexamethonium was slower than that recorded with ACh alone. In the presence of hexamethonium the time constant of this relaxation increased e-fold for a 67 mV hyperpolarization. 7. The results are consistent with a rapid voltage-dependent block of ACh-activated channels by hexamethonium with hyperpolarization, and voltage-dependent unblock with depolarization. The voltagedependent block is combined with competitive antagonism at the ACh receptors. However, not all observations appear to be compatible with a simple sequential block of open ion channels, but rather suggest that occupation of the channel by hexamethonium may not prevent channel closure.

Animals

Action potential duration and the inotropic response to reduced extracellular potassium in guinea-pig ventricular myocytes.

The mechanism of the inotropic effect of a reduction of extracellular potassium from 5.4 to 2.7 mM was investigated in myocytes isolated from guinea-pig ventricle. Action potentials were recorded using intracellular microelectrodes and cell shortening was measured by analysis of a video image. Changes in cytosolic calcium transients were estimated from calcium-activated currents under voltage-clamp conditions. The aim was to determine whether the prolongation of action potential duration which was observed to occur in low potassium might contribute to the increased shortening and increase in calcium-activated current under these conditions. Using a voltage-clamp waveform to mimic the waveform of the action potential, it was found that reduction of potassium caused a marked increase in cell shortening and of calcium-activated current in the absence of prolongation of the 'action potential' waveform. No change in inward calcium current was detected when extracellular potassium was reduced. The sensitivity to strophanthidin appeared to be increased under these conditions. We conclude that prolongation of the action potential is not a major factor contributing to the increased cell shortening and to the increased cytosolic calcium transient when extracellular potassium is reduced.

Action Potentials

The effects of ryanodine and caffeine on Ca-activated current in guinea-pig ventricular myocytes.

1. Action potentials from guinea-pig single ventricular myocytes were interrupted by application of a 300 ms voltage clamp to -40 mV in order to evoke the Ca-activated tail current which is thought to be carried by Na:Ca exchange. Stimulation frequency was 1 Hz and temperature 36 degrees C. 2. The actions of ryanodine (1 microM and 10 microM) and caffeine (1 mM and 10 mM) on Ca-activated tail currents were investigated. 3. Exposure to 10 mM caffeine and ryanodine reduced tail currents associated with very abbreviated (12 ms duration) action potentials and greatly reduced the difference between first and steady-state tail currents at this action potential duration. These observations were interpreted in terms of suppression of Ca release from the sarcoplasmic reticulum (SR) stores. 4. Tail current decay during the voltage clamp is thought to reflect the fall in [Ca]i which accompanies muscle relaxation. Current decay is dependent on Ca extrusion via Na:Ca exchange and on Ca accumulation by the SR stores. Time constants of tail current decay were seen to decrease with increasing action potential duration. This relationship was not affected by 1 mM caffeine or 1 microM ryanodine. Ryanodine at 10 microM and 10 mM caffeine abolished this relationship and increased the time constants of current decay. An increase in the time constant of tail current decay was thought to reflect a reduction in the rate of Ca accumulation by the sarcoplasmic reticulum. 5. The actions of caffeine and ryanodine on the Ca-activated tail currents are consistent with a dose-dependent leakage of Ca from the SR Ca stores. The Ca-activated tail current appears to be a useful tool in the study of Ca homeostasis.

Action Potentials

The action of strophanthidin on calcium-activated current and contraction in single guinea-pig ventricular myocytes.

Calcium-activated tail current was used as a qualitative indicator of changes in [Ca]i in order to investigate the mechanism of strophanthidin-induced inotropy in single guinea-pig ventricular myocytes. Action potentials were interrupted (by application of a voltage clamp to -40 mV) in order to evoke Ca-activated current. Exposure to 10 microM-strophanthidin for 2 min resulted in an increase in contractions associated with complete action potentials and in an increase in Ca-activated current. Strophanthidin appeared not to substantially modify the time course of the envelope of tail currents (recorded by interrupting action potentials at different durations), which is thought to reflect the time course of the systolic [Ca]i transient. Exposure to 1 microM-ryanodine slowed the development of the Ca-activated current envelopes and abolished the above effects of strophanthidin. Exposure to strophanthidin led to reduction in Ca current in a majority of cells (measured by a voltage-clamp step from -40 to 0 mV). These results are consistent with the hypothesis that in single guinea-pig ventricular myocytes strophanthidin causes an increased loading of ryanodine-sensitive intracellular stores of Ca, possibly through reduced extrusion of Ca from the cell by Na-Ca exchange during the action potential plateau.

Action Potentials

Changes in cytosolic calcium monitored by inward currents during action potentials in guinea-pig ventricular cells.

Action potentials were recorded from single cells isolated from guinea-pig ventricular muscle. Contraction was measured with an optical technique. Tail currents thought to be activated by cytosolic calcium were recorded when action potentials were interrupted by application of a voltage-clamp. A family of tail currents was recorded by interrupting the action potential at various times after the upstroke. The envelope of tail current amplitudes was taken as an index of changes in cytosolic calcium. Consistent with this interpretation, tail currents were negligible following intracellular loading with the calcium chelator BAPTA to suppress calcium transients. The cytosolic calcium transient estimated from the envelope of tails reached a peak approximately 50 ms after the upstroke of the action potential, and fell close to diastolic levels before repolarization was complete; 10 mM caffeine delayed the time to peak contraction, and caused a prolongation of the cytosolic calcium transient estimated from the envelope of tail currents. Caffeine also induced the appearance of a distinct late plateau phase of the action potential. Intracellular BAPTA suppressed the late plateau, contraction and tail currents in cells exposed to caffeine. Exposure to caffeine increased the time constant for decay of tail currents (from approximately 25 to 70 ms). When action potentials were greatly abbreviated by interruption with a voltage-clamp, a progressive decline occurred in the subsequent three contractions and tail currents. There was a progressive reversal of these effects over four responses when the full action potential duration was restored. None of these effects was observed in cells exposed to caffeine. Calcium-activated tail currents appear to be a useful qualitative index of changes in cytosolic calcium. The observations are consistent with the suggestion that cytosolic calcium is reduced during the plateau by a combination of calcium extrusion through Na-Ca exchange and calcium uptake into caffeine-sensitive stores. It also appears that reduction of stores loading during abbreviated action potentials reduces subsequent contraction in cells not exposed to caffeine.

Action Potentials

Mechanisms and significance of calcium entry at positive membrane potentials in guinea-pig ventricular muscle cells.

Possible mechanisms for calcium entry at positive membrane potentials were investigated in single cells isolated from guinea-pig ventricular muscle. The cells were voltage clamped and contraction was measured by an optical technique. When prolonged (200 ms to 2 s) depolarizations at +60 mV were applied, contraction amplitude increased with pulse duration, in contrast to the contraction at 0 mV. When a 'pre-pulse' to 0 mV was applied for 200 ms to inactivate current through 'L-type' calcium channels, contraction nevertheless increased with membrane potential during a subsequent test pulse applied over the range -40 to +60 mV. Contraction during the test pulse at +60 mV was abolished when extracellular calcium was reduced to zero. This effect developed more rapidly than abolition of the contraction in response to the pre-pulse to 0 mV. Reduction of extracellular calcium from 2.5 to 1 mM reduced the contraction at +60 mV to a greater extent than that at 0 mV and caused an inward shift in the current at +60 mV. Nifedipine (5 microM) substantially reduced the contraction during the test pulse to 0 mV but had little effect on the contraction at +60 mV. Conversely, dodecylamine (20 microM) caused little or no decrease in the contraction at 0 mV but substantially reduced the contraction at +60 mV. Following a conditioning pre-pulse to 0 mV the contraction at +60 mV was not consistently reduced by exposure to 3 microM-ryanodine. The interpolation of a single 200 ms pulse to +60 mV in a train of pulses to 0 mV potentiated the following contraction to 0 mV. This potentiation decayed over the first four steps to 0 mV following an interpolated pulse and increased with the voltage of the interpolated pulse over the range -20 to +60 mV. Potentiation was abolished on exposure to 3 microM-ryanodine. These observations are consistent with entry of calcium at positive membrane potentials through voltage-dependent, non-inactivating pathways which are insensitive to nifedipine but inhibited by dodecylamine. The observations support the hypothesis that calcium entry via this mechanism may contribute, at least under some conditions, to the loading of intracellular stores of calcium during the late plateau of the action potential, and thus influence subsequent contraction. Calcium entry through Na+-Ca2+ exchange is a possibility which would allow calcium entry to increase over the range of membrane potentials at which contraction was increased. However, additional calcium entry through other nifedipine-insensitive pathways, such as calcium-activated non-selective channels, cannot be excluded.

Amines

Influence of halothane on contraction at positive membrane potentials in single cells isolated from guinea-pig ventricular muscle.

Actions of halothane were investigated under voltage-clamp conditions in single cells from guinea-pig ventricular muscle. Contraction (measured by an optical method) evoked by step depolarization to 0 mV was consistently reduced by halothane. At positive membrane potentials (+60 mV) 2% halothane did not cause a consistent depression of peak contraction, and in the majority of cells contraction was enhanced. Two per cent halothane increased the time-to-peak contraction at +60 mV. However, when a pre-pulse to 0 mV was applied to inactive calcium current through L-channels, any effect of 2% halothane on the time-to-peak of contraction was reduced or abolished. A halothane-induced increase in time-to-peak contraction was also observed at membrane potentials in the range of the action potential plateau (+20 and +40 mV). In double-pulse experiments contraction during a 'test' depolarization to +60 was measured following a 'conditioning' depolarization to 0 mV. Contraction at +60 mV was slightly reduced at brief interpulse intervals (less than 400 ms) following the 'conditioning' depolarization to 0 mV, and recovered as the interval was prolonged; in cells exposed to halothane contraction at +60 mV was no longer influenced by the interval between the pulses. Isoflurane (3.2%) had qualitatively similar but less potent effects than halothane on contraction at +60 mV. These observations are consistent with the suggestion that mechanisms for calcium entry may vary with the membrane potential: at 0 mV, the major pathway for calcium entry may be through halothane-sensitive L-type calcium channels, while at +60 mV entry may be through additional pathways which are relatively resistant to halothane. Actions of halothane on the time-to-peak of contraction may be accounted for by its influence on the sarcoplasmic reticulum to decrease net uptake and release of calcium. These actions of halothane might be of importance during the action potential plateau.

Animals

Mechanism of potentiation of contraction by depolarization during action potentials in guinea-pig ventricular muscle.

Action potentials were recorded from guinea-pig ventricular cells and contraction recorded by an optical technique. When the plateau of a single action potential was depolarized (by 70-120 pA applied 100 ms after the upstroke for 100 ms), contraction associated with the following normal action potential was potentiated. This potentiation was not seen in cells exposed to 10 mM-caffeine. The observations are consistent with potentiation of subsequent contraction by increased loading of caffeine-sensitive calcium stores, as a consequence of reduced Ca2+ extrusion or possibly Ca2+ entry via Na+-Ca2+ exchange during a depolarized plateau.

Action Potentials

Isoflurane depresses membrane currents associated with contraction in myocytes isolated from guinea-pig ventricle.

The influence of isoflurane on membrane currents, action potentials, and contraction was investigated in single cells isolated from guinea-pig ventricle. Isoflurane (1.65-4.45%) reduced the action potential duration at 20% and 90% repolarization times. When step depolarizations were applied under voltage-clamp conditions, there was a depression by isoflurane both of the second inward (calcium) current and of the contraction (measured by an optical method). Isoflurane also depressed "tail" currents, which were recorded on repolarization following a voltage-clamp step to 0 mV and which are thought to be activated by cytosolic calcium. Additional actions of isoflurane were investigated using a paired-pulse protocol. The observations were consistent with a reduction by isoflurane of calcium release. This action together with the reduction of calcium influx during the second inward current would contribute to the negative inotropic effect of isoflurane.

Action Potentials

Effects of halothane on membrane currents associated with contraction in single myocytes isolated from guinea-pig ventricle.

1. The effects of halothane on electrical activity and contraction were investigated in single myocytes isolated from guinea-pig ventricle. 2. Halothane depressed the plateau and shortened the duration of action potentials. 3. Halothane also reduced the amplitude of inward calcium currents and of additional inward current activated by cytosolic calcium under voltage-clamp conditions. 4. Contractions (measured by an optical technique) accompanying either action potentials or calcium currents were reduced by halothane. However, the extent of attenuation of contraction was greater than when a similar level of calcium channel blockade was induced by application of verapamil. 5. Actions of halothane on calcium-activated tail currents in double-pulse experiments were consistent with reduction by halothane of the cytosolic calcium transient, perhaps as a consequence of reduced uptake of calcium into sarcoplasmic reticulum stores. 6. It is concluded that the actions of halothane on inward currents contribute to its effects on action potentials. The reduction in contraction caused by halothane may result partly from a reduced influx of calcium to trigger contraction, and partly by a reduced release of calcium from sarcoplasmic reticulum stores.

Animals

Influence of halothane on electrical coupling in cell pairs isolated from guinea-pig ventricle.

1. The actions of halothane on electrical coupling between cells were investigated in cell pairs isolated from guinea-pig ventricular muscle. 2. Under voltage-clamp conditions a step depolarization applied to one cell caused a similar change in potential in the second. Application of halothane led to the appearance of double peaks in inward current evoked by step depolarizations. These observations were interpreted in terms of uncoupling of the cells leading to escape of the second cell from the influence of the voltage-clamp in the first cell. 3. This suggestion that uncoupling in the presence of halothane led to differences in electrical activity in the two cells was confirmed in experiments in which independent electrodes were used to measure membrane potential in the two cells. 4. The voltage responses of both cells of the pair were recorded in response to constant current pulses. Administration of halothane led to abolition of the response recorded from the second cell while that of the first was enhanced. The actions are consistent with an action of halothane on gap junctions to block electrical coupling. 5. Qualitatively similar observations, consistent with electrical uncoupling, were observed with isoflurane. 6. These findings may be significant in relation to the arrhythmogenic actions of halothane.

Animals

Electrical activity and contraction in cells isolated from rat and guinea-pig ventricular muscle: a comparative study.

1. Contraction in single ventricular muscle cells from rat and guinea-pig heart was measured using an optical technique, while at the same time either action potentials were recorded or transmembrane currents were measured under voltage-clamp conditions. 2. When the membrane was depolarized to 0 mV, there was a phasic and a tonic component of the contraction in guinea-pig cells, whereas in rat cells only the phasic component was obvious. In both species the depolarizations evoked the second inward current (Isi). 3. In rat cells, when the membrane potential during a depolarization was varied over the range -40 to +60 mV, the amplitude of contraction first increased to a peak at a potential close to 0 mV, and then declined as the membrane potential became more positive. In contrast, contraction in guinea-pig cells measured under similar conditions continued to increase as the depolarization was increased, and the tonic component of contraction became more obvious at more positive potentials. Contraction amplitude in guinea-pig cells could also be increased by increasing pulse duration under conditions where the tonic component of contraction was prominent. 4. Contraction during depolarization was suppressed by ryanodine in rat cells, whereas in guinea-pig cells contraction persisted, but with a modified time course. Ryanodine did inhibit spontaneous contractions of guinea-pig cells during exposure to low extracellular sodium. 5. Nifedipine suppressed Isi and phasic contraction in both rat and guinea-pig cells. In guinea-pig cells these effects developed contemporaneously, but in rat cells substantial reduction of Isi occurred before marked suppression of contraction. 6. In rat cells exposed to strontium in place of external calcium, inactivation of Isi was slowed and contraction was prolonged, with a slower time-to-peak and relaxation. The time course of the action potential was modified and ryanodine no longer inhibited contraction of rat cells in the presence of strontium. 7. It is concluded that the amplitude of contraction in rat and guinea-pig ventricular cells is determined by calcium both entering through the surface membrane and released from internal stores, and that under normal conditions the balance is towards release from stores in rat cells, and towards entry through the surface in guinea-pig cells.

Action Potentials

Calcium-activated inward current and contraction in rat and guinea-pig ventricular myocytes.

1. Single ventricular cells from rat and guinea-pig hearts were voltage clamped, and contraction was monitored with an optical method. 2. In rat cells, short (2-10 ms) depolarizing pulses to 0 mV from a holding potential of -40 mV evoked current carried by calcium, and on repolarization to -40 mV there was a slow 'tail' current which decayed much more slowly than the expected deactivation of calcium current at this potential. 3. When rat cells were loaded with EGTA diffusing into the cytosol from an intracellular electrode, contraction and the tail current were both abolished, whereas the peak calcium current was not reduced. 4. Exposure of rat cells to ryanodine (1-2 microM) suppressed both contraction and the tail current, but not peak calcium current. 5. The tail current was unaffected by tetrodotoxin (10 microM), but was reduced by lowering extracellular sodium to 10% by replacement with lithium or choline. 6. In rat cells, exposure to nifedipine (1-5 microM) initially caused a marked reduction of calcium current while substantial contraction and tail current remained; longer exposure to nifedipine suppressed both contraction and the tail current. Isoprenaline (50-100 nM) caused a marked increase in peak calcium current, while under these conditions there was little or no increase in either contraction or tail current. 7. The amplitude of the tail current in rat cells varied with the duration of the depolarization at 0 mV; the tail current evoked by repolarization to -40 mV reached a peak just as contraction was beginning to develop and was back to undetectable levels just as relaxation became significant, as might be expected if the tail current were determined by the cytosolic calcium transient which triggered contraction. 8. In guinea-pig cells, a tail current was also recorded on repolarization to a holding potential of -40 mV, and, as in rat cells, the tail was suppressed by cytosolic EGTA and reduced by exposure of the cells to low-sodium solution. 9. It is concluded that the tail currents recorded in both rat and guinea-pig cells represent current activated by a rise in cytosolic calcium; in rat cells this is markedly dependent on ryanodine-sensitive release of calcium from internal stores. The origin of this current, and its possible role during the plateaux of action potentials are discussed.

Action Potentials

Electrical properties and response to noradrenaline of individual heart cells isolated from human ventricular tissue.

The analysis of the electrical properties and response to catecholamines of cardiac tissue is greatly simplified by the use of single cell preparations. In this study individual cells isolated from human ventricular tissue were used to estimate cellular sarcolemmal resistance and capacitance and to record the time course of the response to ionophoretically applied noradrenaline. The mean input capacitance of the cells is consistent with a surface membrane area of approximately 15,000 micron2 if the specific membrane capacitance is 1 microF X cm-2. This is larger than might be expected from the measured external dimensions of the cell and is compatible with the presence of surface membrane infoldings and caveolae. At membrane potentials close to -75 mV the mean cell input resistance was approximately 40 M omega, giving a specific membrane resistance of 6 omega X cm2 if mean membrane area is 15,000 micron2 and consistent with the assumption that the isolated cells have sealed intercalated discs under the experimental conditions used. Ionophoretically applied noradrenaline produced a pronounced prolongation of the plateau phase of the action potential, but this effect developed over many seconds. The slow onset of action is not compatible with the kinetics of free extracellular diffusion of catecholamine but may reflect molecular events that occur between noradrenaline binding to membrane receptors and the final cellular response. Under voltage-clamp conditions, the cells showed a time dependent inward current consistent with the rapid activation and decay of a sarcolemmal calcium conductance.

Action Potentials