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Biomedical subjects

M Morad

Publications and source records attributed to M Morad.

At least 91 records · Page 5Linked to original sources

Amiloride selectively blocks the low threshold (T) calcium channel.

More than one type of voltage-gated calcium channel has been identified in muscle cells and neurons. Many specific organic and inorganic blockers of the conventional, slowly inactivating high threshold (L) calcium channel have been reported. No specific blockers of the low threshold (T) channel have been as yet identified. Amiloride, a potassium sparing diuretic, has now been shown to selectively block the low threshold calcium channel in mouse neuroblastoma and chick dorsal root ganglion neurons. The selective blockade of the T-type calcium channel will allow identification of this channel in different tissues and characterization of its specific physiological role.

Amiloride↗

Proton-induced transformation in gating and selectivity of the calcium channel in neurons.

Steady-state elevation of [H+]o inhibits both Ca2+ and Na+ currents in neurons. Step changes in [H+]o, however, induce a transient inward Na+ current (INa(H] in isolated neurons. In outside-out patches of dorsal root ganglion cells, INa(H) was fully activated within 2 ms at pH 6.7, and inactivated with a time constant of 300 ms. Deactivation t1/2 was 3 ms at pH 7.9. INa(H) was blocked by Ca2+ channel blockers. This observation, and the finding that the voltage-gated ICa disappeared rapidly during activation of INa(H) and reappeared with inactivation of INa(H), suggested that INa(H) occurs through a transformed Ca2+ channel. The proton-sensitive site was located at the external mouth of Ca2+ channel. The single channel conductance of INa(H) was 28 ps in symmetrical 120 mM NaCl solutions. Increase of [H+]o during the activation of ICa suppressed ICa within 2 ms. Our studies suggest that the Ca2+ channel exists in two conformational states; a voltage-gated Ca2+-transporting state, and a proton-gated Na+-transporting state. The dominance of the proton-gated state over the voltage-gated state suggests that proton modification of the Ca2+ channel may be extremely important in neurophysiological and neurosecretory function.

Animals↗

Epinephrine enhances Ca2+ current-regulated Ca2+ release and Ca2+ reuptake in rat ventricular myocytes.

The voltage dependence of the intracellular Ca2+ transients was measured in single rat ventricular myocytes with the fluorescent Ca2+ indicator dye fura-2. The whole-cell voltage clamp technique was used to measure the membrane current, and 0.9 mM fura-2 was loaded into the cell by including it in the dialyzing solution of the patch electrode. A mechanical light chopper operating at 1200 Hz was used to obtain simultaneous measurements of the intracellular Ca2+ activity with fluorescence excitation on either side of the isosbestic point (330 nm and 410 nm). The symmetry of the two optical Ca2+ signals was used as a criterion to guard against artifacts resulting, for instance, from motion. The voltage dependence of peak Ca2+ current and the Ca2+ transient measured 25 ms after depolarizing clamps from a holding potential of -40 mV were bell-shaped and virtually identical. The Ca2+ entry estimated from the integral of the Ca2+ current (0 mV, 25 ms) corresponds to a 5-10 microM increase in the total intracellular Ca2+ concentration, whereas the optical signal indicated a 100 microM increase in total intracellular Ca2+. Repolarization of clamp pulses from highly positive potentials were accompanied by a second Ca2+ transient, the magnitude of which, when summed with that measured during depolarization, was nearly constant. Ryanodine (10 microM) had little or no effect on the peak Ca2+ current but reduced the magnitude of the early Ca2+ transients by 70-90%. Epinephrine (1 microM) increased the Ca2+ current and the Ca2+ transients, accelerated the rate of decline of the Ca2+ transients at potentials between -30 and +70 mV, and reduced the intracellular [Ca2+] below baseline at potentials positive to +80 or negative to -40 mV, where clamp pulses did not elicit any Ca2+ release. Elevation of intracellular cAMP mimicked the relaxant effect of epinephrine at depolarizing potentials, whereas elevation of extracellular [Ca2+] did not. These results suggest that most of the activator Ca2+ in rat ventricular cells is released from the sarcoplasmic reticulum as a graded response to sarcolemmal Ca2+ influx. Consistent with a graded Ca2+-induced Ca2+ release we find that epinephrine increases the internal Ca2+ release by increasing the Ca2+ current. Epinephrine may also increase the Ca2+ content of the sarcoplasmic reticulum that may, in turn, increase the Ca2+-induced Ca2+ release. The relaxant effect of epinephrine appears to be caused by enhanced rate of Ca2+ resequestration and is mediated by adenylate cyclase system.

Algorithms↗

Site and mechanism of activation of proton-induced sodium current in chick dorsal root ganglion neurones.

1. In dissociated and cultured 1- to 2-day-old chick dorsal root ganglion cells, and in isolated outside-out membrane patches, a large transient current lasting 1-2 s could be activated upon step increases in [H+]o. The proton-induced current reversed direction at the Na+ equilibrium potential, was abolished completely in the absence of Na+, and was therefore labelled INa(H). 2. To investigate the activation and deactivation kinetics of INa(H) at the single-channel level, we employed isolated membrane patches and a method whereby we could change the external solution in less than 1 ms. 3. In outside-out membrane patches, INa(H) was fully activated within 2 ms between pH 6.7 and 5.7. Half-times of activation decreased with increasing [H+]o. The calculated association rate constant was 9.5 x 10(9) M-1 s-1. 4. Deactivation of INa(H), following a step reduction in [H+]o, occurred with half-times of within 1.3-2 ms. 5. In the continued presence of an activating solution (pH 6.7 and 1 mM-Ca2+), INa(H) inactivated slowly, with a time constant of about 300 ms. 6. Inactivation showed a limited dependence on [Ca2+]o. The time constant of inactivation increased from about 300-500 ms as [Ca2+]o was decreased from 5 to 0.1 mM. Further decrease in [Ca2+]o did not significantly increase the time course of inactivation. Increases in [Ca2+]i from 10(-9) to 10(-3) M had no effect on the activation or inactivation kinetics of INa(H). 7. Conditioning proton concentrations which by themselves failed to activate any channel openings, partially inactivated INa(H). 8. Recovery from inactivation appeared to follow a time course similar to that of inactivation itself. 9. INa(H) could not be activated in inside-out patches. A step increase in proton concentration outside a cell-attached patch was also ineffective at producing INa(H) in the patch. Intracellular pH between 7.9 and 6.7 had no effect on the activation or inactivation of INa(H). 10. The activation and inactivation kinetics were not significantly voltage dependent. 11. The single-channel conductance associated with the activation of INa(H) was 28 pS in symmetrical 120 mM-NaCl solutions and remained constant throughout the time course of INa(H). 12. During activation of the voltage-gated calcium current, ICa, a step increase in proton concentration caused a rapid (ca. 2 ms) suppression of ICa which was more than that predicted from the steady-state effects of H+ on ICa. This effect was independent of [Na+] and the direction of INa(H).(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Contractile force of single heart cells compared with muscle strips of frog ventricle.

Single heart cells were obtained from frog ventricle with an enzymatic dispersion technique. Isometric contractile force was measured in these cells by an ultrasensitive force transducer and compared with that generated by multicellular muscle strips under similar conditions. The shape of the single-cell twitch was qualitatively similar to that obtained in intact tissue; however, the time to peak was generally shorter, and the falling phase was prolonged in the single cell compared with the muscle strip. The single-cell contractile force was measured in response to alterations in stimulus rate, resting length, and extracellular Ca2+ concentration [Ca2+]o or by addition of epinephrine; in all cases, the force response resembled the physiological response seen in the muscle strip. However, at a constant stimulation rate, the steady-state amplitude of the single-cell twitch exhibited beat-to-beat variations under all conditions tested, whereas that of the muscle strip was essentially constant. These results may prove to be useful in assessing the suitability of the single-cell preparation as a model for the intact tissue.

Algorithms↗

Antibodies against ADP-ATP carrier enhance Ca2+ current in isolated cardiac myocytes.

Antibodies previously described to inhibit specifically nucleotide transport (ADP-ATP carrier) of the inner mitochondrial membrane were found to bind specifically to the sarcolemma of the enzymatically isolated rat ventricular myocytes. In this communication, we report for the first time that a component of these antibodies enhanced the Ca2+ current in isolated cardiac myocytes and potentiated twitch tension in ventricular strips. Prolonged exposure of rat myocytes to large concentrations of antibodies caused spontaneous contractions, progressive cell deterioration, and death. Our results thus show that a component of antibodies against ADP-ATP carrier cross-reacts with cardiac sarcolemmal proteins enhancing the Ca2+ channel.

Action Potentials↗

Activation properties of the inward-rectifying potassium channel on mammalian heart cells.

The early phase of activation of the inward-rectifying potassium channel is studied on single cells from guinea-pig heart. The current is quasi-instantaneous when it is outward, but activates with time when it is inward. This relaxation is exponential and its time-constant decreases with hyperpolarization. The I/V curve reflects a strong inward rectification and has a negative slope conductance on depolarization. Similar results were recorded in the absence of sodium, calcium, chloride ions and in isotonic potassium. Cesium slows down the phase of activation, and eventually appears to block the channels by suppression of the activation. Barium, conversely, does not affect the activation, but promotes an 'inactivation' of this current, which blocks it. These results are independent on the cells' dissociation method. They suggest that this current is the inward rectifier, called IK1 on heart. Its activation curve suggests that the inward and outward currents are flowing through the same channels. The inward rectifier is time- and voltage-dependent on heart as on other tissues. The effects of cesium and barium are also similar. The importance of its negative slope conductance is discussed.

Animals↗

Role of Ca2+ channel in development of tension in heart muscle.

Role of Ca2+ Channel in Development of Tension in Heart Muscle. Journal of Molecular and Cellular Cardiology (1987) 19, 527-553. In mammalian and amphibian hearts Ca2+ enters the myocardial cells via voltage-gated Ca2+ channels. The role of Ca2+ channels in transporting the activator Ca2+ was probed by examining the redevelopment of tension and ICa in voltage-clamped myocardial strips after step recovery of Ca2+ channel from photolabile Ca2+ antagonist. Comparison of the kinetics of redevelopment of tension in the frog and mammalian heart following the photoinactivation of Ca2+ channel blockers showed that in the frog heart tension redevelops fully in one beat, while 5 to 7 beats were required for full redevelopment of tension in the mammalian heart. Ca2+ depletion studies using Antipyrylazo III showed that extracellular Ca2+ depletion during the action potential occurs primarily via the Ca2+ channel. In the frog heart sufficient Ca2+ is transported from the extracellular space during a single beat to activate tension. In the mammalian heart ICa triggers the release of internal stores, which when only fully loaded caused full development of tension. ICa also was involved in loading the intracellular Ca2+ pools. Two types of Ca2+ channels have been identified in the mammalian myocytes. The low-threshold rapidly inactivating Ca2+ channels appear to be involved in trigger release of Ca2+, while the high threshold (conventional Ca2+ channels) seem to be involved primarily in reloading of internal Ca2+ pools.

Animals↗

Mechanisms of action of diltiazem in isolated human atrial and ventricular myocardium.

A comparative study of human atrial fibers (HAF), human ventricular fibers (HVF), frog ventricle, and frog skeletal muscle demonstrated marked differences in tension development in the presence of diltiazem. There was no significant difference between the tension developed by HAF and by HVF over a range of diltiazem concentrations when the differences in resting membrane potential were corrected by increasing external K+ concentration. In human myocardium, diltiazem resulted in both a voltage and use-dependent blockade of the calcium channel. Comparison of the tension-dose response curves in human myocardium, frog ventricle and skeletal muscle showed that diltiazem was most effective at decreasing tension in frog heart, and least effective in skeletal muscle with human myocardium being intermediate. In skeletal muscle, neither tension development nor the birefringence signal related to the Ca2+ release from the sarcoplasmic reticulum was significantly altered by Diltiazem in concentrations less than 10(-6) M, but in concentrations greater than 10(-5) M both were suppressed. Diltiazem suppressed tension in human myocardium over the range of membrane potentials associated with Ca2+ channel activity, while at more positive potentials, diltiazem appeared to have little effect on the tension-voltage relations. Diltiazem had no effect upon tension development induced by acetyl strophanthidin in human myocardium or upon the Ca2+ sensitivity of chemically skinned atrial or ventricular fibers. Thus the tension-suppressant effect of diltiazem in human myocardium appears to be mediated by a combination of voltage-dependent block of the Ca2+ channel and inhibition of Ca2+ release from internal stores, and not from alterations in either Na+-Ca2+ coupled transport or Ca2+ sensitivity of the myofilaments.

Adolescent↗

Proton-induced transformation of calcium channel in chick dorsal root ganglion cells.

1. In dissociated and cultured 2-5-day-old chick dorsal root ganglion cells, a large transient inward current could be activated in response to a 'step' increase in [H+]o. 2. Using the single-electrode patch clamp technique in its whole-cell configuration, the proton-induced current was graded with [H+]o and relaxed in 1-2 s. 3. The pH dependence of the current was sigmoid with activation occurring at around pH 7.0 (at[Ca2+]o = 1 mM) and a maximum at pH 6.0-5.5. 4. Small increases of [H+]o, which by themselves failed to activate a significant amount of current, inactivated the proton-induced current. The half-maximum of inactivation occurred at pH 7.11 at [Ca2+]o = 5 mM, but this changed to pH 7.32 at [Ca2+]o = 1 mM. 5. The proton-induced inward current reversed direction at the Na+ equilibrium potential and was suppressed in the absence of [Na+]o. Measurement of the reversal potential at different [Na+]o and/or [Na+]i showed a linear relation with a slope of 58 mV/decade as predicted from the Nernst equation. Thus, proton-induced current was carried by Na+ and was abbreviated as INa(H). 6. The membrane conductance associated with INa(H) showed no voltage dependence, but did change in parallel with the activation of the current. The membrane conductance increased by a factor of 10-20-fold at the peak of the inward current. 7. INa(H) was blocked by organic and inorganic Ca2+ channel blockers (diltiazem, Cd2+ and Ni2+), but was unaffected by high concentrations of tetrodotoxin (TTX) or steady-state increases of the [Ca2+]i to 10(-4) M or the [H+]i to 10(-6) M. 8. In outside-out membrane patches, the single channel associated with the proton-induced current opened in bursts, with long pauses. The mean open time during the bursts was 1.26 ms and the channel had a conductance of 20-25 pS at -80 mV (120 mM [Na2+]o, 20 mM [Na2+]i). 9. Measurement of the voltage-gated Ca2+ current using short (30-50 ms) depolarizing pulses to zero showed that the Ca2+ current (ICa) but not the fast Na+ current (INa) was completely suppressed during the time course of activation of INa(H). 10. INa(H) was completely blocked by high (35-40 mM) [Ca2+]o. 11. Simultaneous elevation of [H+]o and [Ca2+]o failed to activate INa(H) but enhanced the voltage-gated Ca2+ channel. 12. Our data show that the proton-induced current is carried by Na+ flowing through a transformed Ca2+ channel.(ABSTRACT TRUNCATED AT 400 WORDS)

Action Potentials↗

Effects of quinidine and lidocaine on action potential and membrane currents of frog ventricles.

The effects of quinidine and lidocaine on frog ventricle were studied by using a single sucrose gap voltage clamp technique. In Ca2+-Ringer, quinidine (80 microM) caused slight prolongation of action potential duration (APD50) and significant inhibition of twitch tension. Lidocaine (40 microM) shortened APD50 without significant effect on twitch tension. In tetrodotoxin (TTX)-treated preparations, quinidine caused significant prolongation of APD50 from 529 +/- 19 msec to 597 +/- 11 msec, (n = 9) and inhibition of twitch tension, but lidocaine did not affect APD50 and twitch tension. Under voltage clamp condition, quinidine reduced peak inward current in the absence of TTX, but enhanced peak inward current in the presence of TTX. The steady state outward current was increased by quinidine. Lidocaine didn't affect peak inward current in the absence or in the presence of TTX. Membrane current through the inward rectifier (IK1) was slightly increased by lidocaine, but significantly inhibited by quinidine. The enhancement of peak inward current by quinidine was retarded or reversed in preparation bathed with Sr2+-Ringer. When Ni2+ was added to a preparation bathed in Ca2+-Ringer, an inhibition of calcium inward current and action potential plateau was observed. The spike amplitude of the action potential was, however, unaffected by Ni2+. In this Ni2+-treated preparation, lidocaine (20 microM) caused significant shortening of APD50 without significant effect on action potential amplitude. The shortening of APD50 was associated with a slight increase of steady state outward current. The increase of steady state outward current by lidocaine was absent in the TTX-treated preparation.(ABSTRACT TRUNCATED AT 250 WORDS)

Action Potentials↗

Two types of calcium channels in guinea pig ventricular myocytes.

In cardiac muscle, Ca2+ plays a key role in regulation of numerous processes, including generation of the action potential and development of tension. The entry of Ca2+ into the cell is regulated primarily by voltage-gated channels in the membrane. Until recently, it was felt that only one type of Ca2+ channel existed in cardiac ventricular muscle. Experiments reported here suggest that in isolated guinea pig ventricular myocytes, there are two distinct types of Ca2+ channels with markedly different activation thresholds, inactivation kinetics, and sensitivities to inorganic and organic Ca2+ channel blockers. The channels were also distinguished based on their response to increased frequency of clamping such that the current through the low-threshold channel decreased while that through the high-threshold channel increased. In a few cells, the current through both channels was enhanced by isoproterenol, a beta-adrenergic agonist, but only the high-threshold channel was enhanced by the Ca2+-channel agonist Bay K 8644. Thus, isolated guinea pig ventricular myocytes appear to have two types of Ca2+ channels distinguished by various criteria.

3-Pyridinecarboxylic acid, 1,4-dihydro-2,6-dimethy↗

Electrophysiological effects of tetracaine in single guinea-pig ventricular myocytes.

The effect of tetracaine on the ionic current in enzymatically dissociated single guinea-pig ventricular cells was studied using a two micro-electrode voltage-clamp technique. The myocytes were pre-incubated with Cs+ and the experiments were performed at room temperature in order to reduce the contribution of the delayed outward current. Tetracaine decreased the maximum rate of rise of the action potential with a dissociation constant (KD) strongly dependent on the holding potential (0.77 microM at -80 mV, and 6.2 microM at -95 mV). Application of 20 microM-tetracaine resulted in about a 50% reduction of the inwardly rectifying K+ current, while ten times higher concentrations were required to suppress the delayed K+ current. The inactivation time course of the Ca2+ current could be fitted with two exponentials, with time constants tau f = 15 ms and tau s = 150 ms at around 0 mV. Tetracaine decreased the amplitude of the Ca2+ current and speeded its decay. This effect was found to be primarily due to a marked inhibition of the amplitude of the slowly inactivating component (apparent KD = 80 microM, nH = 2). The drug had little effect on the time constants of the two components of Ca2+ channel inactivation. When Sr2+ or Ba2+ were the charge carriers, inactivation of the Ca2+ channel was again fitted with a fast and a slow exponential. In addition, a maintained (or very slowly inactivating) component was present. Tetracaine not only suppressed the amplitudes of the slowly inactivating and the maintained components, but also decreased the time constant of the slowly inactivating component. The results are consistent with a direct effect of tetracaine on the high threshold Ca2+ channel and do not support indirect effects of the drug secondary to suppression of Ca2+ release from internal stores.

Action Potentials↗

An acousto-optically steered laser scanning system for measurement of action potential spread in intact heart.

An optical scanning device that combines a voltage-sensitive dye and an acousto-optically steered He-Ne laser beam is described. This device is capable of scanning 128 sites every 4 ms and recording and storing the fluorescence signals for a duration of up to 1 s (several beats). Comparison of an activation map constructed from laser scanning to those obtained from multiple extracellular electrodes suggests that this technique is highly reliable. Although motion-induced light scattering appears to alter the shape of the action potential, the upstroke can be distinguished quite reliably even in a vigorously contracting muscle. This technique provides high resolution (up to 50 micron) and high flexibility (i.e., the scanned sites can be concentrated over a small or very large area) in measuring the spread of activation in heart muscle. By having only one excitation and one measurement element, the approach offers simplicity and high flexibility to the user. We have shown that this system can be readily applied to the task for which it was intended--probing the mechanisms of arrhythmias in the mammalian myocardium. It has been demonstrated, for example, that arrhythmias due to automaticity can be readily distinguished from those due to reentry through the mapping capability of the laser scanner. In addition, the ability of laser scanner to measure membrane depolarization directly during arrhythmias may make this technique superior to conventional electrocardiographic mapping techniques.

Acoustic Stimulation↗

Ca2+ and Ca2+-activated K+ currents in mammalian gastric smooth muscle cells.

Inward movement of calcium through voltage-dependent channels in muscle is thought to initiate the action potential and trigger contraction. Calcium-activated potassium channels carry large outward potassium currents that may be responsible for membrane repolarization. Calcium and calcium-activated potassium currents were identified in enzymatically isolated mammalian gastric myocytes. These currents were blocked by cadmium and nifedipine but were not substantially affected by diltiazem or D600. No evidence for a tetrodotoxin-sensitive sodium current or an inwardly rectifying potassium current was found.

Acetylcholine↗

A comparative electrophysiological study of enzymatically isolated single cells and strips of frog ventricle.

Single heart cells were obtained from frog ventricle using an enzymatic dispersion technique. The whole cell variation of the patch clamp technique was used to monitor action potential and cell membrane currents. The clamp circuit could be switched electronically between voltage and current clamp modes. The effects of seal leakage currents were to depolarize the cell, reduce the amplitude of the plateau, and lengthen the action potential duration. A scheme to compensate for these currents is presented. The membrane currents obtained from the single cell under voltage clamp conditions were compared to those obtained from multicellular preparations using the single sucrose gap technique. Hyperpolarizing clamps showed time-dependent, depletion-related K+ currents for the multicellular preparation, whereas for the single cell no such currents were observed. The absence of extracellular accumulation or depletion of K+ in the single cell was confirmed by the lack of post-clamp afterpotentials or changes in resting potential following a train of frequently elicited action potentials. The TTX-insensitive inward current was relatively faster in the single cell, compared to that measured in the multicellular preparation. A delayed time-dependent outward current was observed in the positive potential range for both single and multicellular preparations. The isochronal current-voltage (I-V) relations obtained at 400 ms were N-shaped for both preparations, but was more negative for the single cell at potentials positive to -20 mV. The results indicate a strong similarity between membrane currents obtained in single and multicellular preparations. The differences in the currents in the two preparations are due in large part to accumulation or depletion of K+ in the extracellular space.

Action Potentials↗

Optical measurement of voltage-dependent Ca2+ influx in frog heart.

Sarcolemmal Ca2+ movements in frog ventricular strips were measured by monitoring Ca2+ depletion from the extracellular space with an impermeant Ca indicator dye, antipyrylazo III. Ca2+ depletion was measured as a weighted average of light signals recorded simultaneously at three different wavelengths. This weighting procedure was designed to reduce the motion-induced light scattering and to enhance the Ca2+-related optical signals. Comparison of the time course of Ca2+ depletion signal with that of contraction showed that the rate of Ca2+ depletion was maximal immediately after the upstroke of the action potential but prior to the onset of tension. Peak Ca2+ depletion was reached toward the end of the action potential and amounted to a 10-50 microM decrease in the total extracellular Ca2+ concentration. The reaccumulation of extracellular Ca2+ seen after the action potential was 2-5 sec slower than the relaxation of tension. The rate of Ca2+ depletion had a bell-shaped voltage dependence and was enhanced by epinephrine, suggesting that Ca2+ influx occurred primarily through a slowly inactivating ionic channel. Ca2+ transport through the Na+-Ca2+ exchange system was not significantly altered in the presence of strophanthidin or with decrease of extracellular K+ concentration despite marked potentiation of tension by these agents. Ca2+ depletion measured at the end of a 1-sec clamp pulse had a voltage dependence noticeably different from that of the developed tension. This finding may suggest that a fraction of activator Ca2+ is released from membrane-bound Ca2+ pools in a voltage-dependent manner. Our results show that Ca2+ indicator dyes can be used not only to measure rapid changes in the extracellular Ca2+ concentration during contraction, but also to quantify the contribution of various sarcolemmal Ca2+ transport systems to the generation of tension in cardiac muscle.

Action Potentials↗