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The 24Na-transport increasing effect of veratrine in frog sartorius muscle influenced by the tonicity, composition and temperature of the external environment.

The influence of tonicity, ionic composition and temperature of the incubating medium on the increasing effect of veratrine on 24Na transport in the frog sartorius muscle has been studied. (1) The effect of veratrine applied during 24Na loading on the rate coefficient for sodium loss depended on the tonicity of the medium. The rate of loss of 24Na from muscles loaded in the presence of veratrine was not affected if the muscles had been equilibrated in hypertonic medium. However, when treating the muscles with veratrine in isotonic medium during 24Na loading, we obtained a twofold increase in the rate coefficient for sodium loss. (2) The effect of veratrine applied during the desaturation period on 24Na efflux was also found to depend on the tonicity of the medium. Veratrine applied during the desaturation period increased the 24Na efflux in muscles equilibrated in isotonic Ringer's solution. However, when the muscles were equilibrated in hypertonic medium, veratrine did not influence 24Na efflux, not even after the rate of 24Na loss had been decreased by ouabain. (3) Hypertonic medium inhibited the Li uptake-enhancing effect of veratrine, while in isotonic medium veratrine had a marked enhancing effect. (4) In hypertonic medium lithium inhibited the otherwise characteristic increasing effect of veratrine on 24 Na uptake. (5) The increase of intracellular sodium concentration as a result of incubation in cold, potassium-free Ringer's solution did not influence the 24Na exchange-increasing effect of veratrine in isotonic medium. (6) The increasing effects of 0.1 and 0.5 mM veratrine on 24Na influx had the same degree at room temperature. However, at 5 degrees C 0.5 mM veratrine increased 24Na influx to a greater extent than 0.1 mM. (7) On the basis of our earlier experiments it has been suggested that the site of action of the 24Na uptake-increasing effect of veratrine could be the neural structures in the muscle equilibrated in hypertonic media. The present experiments confirm this suggestion and at the same time demonstrate that there are substantial differences in the mechanism of the sodium transport of veratrine-treated neural and muscle membranes, which become more apparent in hypertonic medium.

Animals

Effects of veratrine and paeoniflorin on the isolated rat aorta.

The interactions and mechanisms between veratrine and paeoniflorin on the isolated rat aorta were studied. Veratrine (1x10(-6) to 1x10(-4) g/ml) could induce contraction on the isolated rat aorta in a concentration-related manner. Paeoniflorin had no effect on the isolated rat aorta. Pretreatment with prazosin (1x10(-6) M) and nifedipine (1x10(-6) M) but not yohimbine (1x10(-5) M) could decrease the tension of contraction induced by veratrine (1x10(-4) g/ml). Sodium nitroprusside (1x10(-4) M) could inhibit the contraction induced by veratrine (1x10(-4) g/ml) with or without endothelium, whereas methylene blue (5x10(-5) M) could increase the contraction induced by veratrine (1x10(-4) g/ml). Treatment with veratrine (1x10(-4) g/ml) could decrease the tension of contraction induced by norepinephrine (1x10(-6) M) or phenylephrine (1x10(-4) M). The inhibition of veratrine on norepinephrine-induced contraction was potentiated by L-arginine (1x10(-4) M) and reversed by L-NAME (1x10(-5) M). Paeoniflorin (1x10(-4) M) could decrease the tension of contraction induced by veratrine (1x10(-4) g/ml) and methylene blue (5x10(-5) M). The inhibition of paeoniflorin on veratrine was more potent on rat isolated aorta with endothelium than without endothelium. Ryanodine (1x10(-5) M) and Ca2+ -free medium could inhibit methylene blue-induced contraction. From the above results, the relaxation of veratrine on the norepinephrine-induced contraction might be related to the increase of NO and cGMP. The contraction of veratrine on the isolated rat aorta was via the increase of intracellular calcium which was inhibited by paeoniflorin.

Animals

In vivo mechanisms underlying dopamine release from rat nigrostriatal terminals: I. Studies using veratrine and ouabain.

The in vivo mechanisms underlying the dopamine (DA)-releasing actions of veratrine and ouabain in the striatum of halothane-anaesthetised rats have been investigated using brain microdialysis. Relevant catecholamines and indoleamines were separated and quantified using HPLC combined with an electrochemical detection system. Veratrine (10 micrograms/ml-1 mg/ml) and ouabain (10 microM-1 mM) were added to the medium perfusing the dialysis probes. Both compounds increased dialysate DA content in a dose-related manner. Dialysate levels of the DA metabolites 3,4-dihydroxyphenylacetic acid and homovanillic acid and the serotonin metabolite 5-hydroxyindoleacetic acid were reduced by both veratrine and ouabain. Veratrine-induced DA efflux was maximal in the first 20-min sample collected after drug infusion began, whereas the maximal effect of ouabain was not observed until 20-40 min after administration began. Veratrine-induced DA efflux was unaffected by systemic injection of the DA uptake inhibitor nomifensine but was inhibited by either coperfusion of tetrodotoxin (TTX) or removal of calcium from the perfusing buffer. These data suggest that veratrine induces release of DA via a carrier-independent mechanism, perhaps involving an exocytotic release process. In contrast, ouabain-induced DA release was reduced by nomifensine but was inhibited to a lesser degree by calcium depletion and TTX. Detailed analyses of these data suggest that although ouabain initially induces release of DA via a carrier-dependent mechanism, an exocytotic process may also be involved. The finding that ouabain-induced DA efflux exhibits a degree of TTX and calcium sensitivity suggests that membrane depolarisation caused by Na+,K(+)-ATPase blockade opens voltage-gated sodium channels and initiates an exocytotic release of DA. The intracellular pools of DA involved in the release of DA induced by veratrine and ouabain were also examined. Depletion of vesicular pools of DA by pretreatment with reserpine reduced the amount of DA release induced by both agents, although this effect was only significant in the case of veratrine. However, in reserpinised animals the residual amount of DA release induced by veratrine was inhibited by nomifensine, a result suggesting that DA may be released via a carrier-dependent process in the absence of vesicular DA. Newly synthesised pools of DA were also depleted by pretreatment with the DA synthesis inhibitor alpha-methyl-p-tyrosine. Under these conditions, both veratrine- and ouabain-induced DA efflux was reduced.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

Concentration dependence of the veratrine effect on inducing depolarization and membrane potential oscillation in skeletal muscle.

The concentration dependence of the effect of veratrine in inducing depolarization and membrane potential oscillation in the frog sartorius muscle has been studied. (1) On increasing the veratrine concentration from 0.025 to 1 mM, the latency period of the development of membrane potential oscillation and depolarization is proportionally shortened. (2) On changing the veratrine concentration from 0.025 to 1 mM, the magnitude of depolarization is raised logarithmically. (3) When the veratrine concentration reaches 0.05-0.1 mM, both the amplitude and the frequency of the membrane potential oscillation increase. On rising to 1 mM, a further increase in frequency to eight-fold occurs especially in the later phase of oscillation. At this concentration range, the amplitude of oscillation inversely proportional to the concentration of veratrine. (4) On increasing the veratrine concentration above 0.1 mM, the membrane potential oscillation ceases after a temporary rise of frequency. This inhibitory effect of veratrine is, however, reversible, and oscillations appear again, despite the absence of veratrine in Ringer's solution. This also proves the persistance of the veratrine effect.

Animals

The effects of calcium antagonists on calcium overload contractures in embryonic chick myocytes induced by ouabain and veratrine.

1. The protective effects of some calcium antagonists against different forms of calcium overload contracture were investigated in embryonic chick cardiac myocytes. 2. Tetrodotoxin-sensitive sodium currents were recorded from the myocytes by the whole-cell voltage-clamp technique. Although the peak current was attenuated by veratrine, the inactivation process was markedly inhibited, resulting in a large increase in the total inward current. Action potentials were prolonged by veratrine, automaticity was inhibited and the membrane potential depolarized from -79 to around -45 mV. 3. Measurements of contraction were made from aggregates of myocytes using a video edge detection technique which quantified edge movement. Veratrine caused an initial positive inotropism then inhibited automaticity of aggregates with subsequent development of a tonic contracture to around 300% of the twitch contraction. 4. Veratrine-induced contractures were not significantly affected by 10 microM diltiazem or verapamil. Nifedipine (5 microM), nimodipine (5 microM) and ryanodine (5 microM) also had little effect whilst nicardipine and flunarizine caused a concentration-dependent inhibition of veratrine-induced contractures with IC50s of 3 microM and 2 microM respectively. 5. Veratrine-induced contractures were found to be very sensitive to extracellular calcium concentration with an EC50 of 32 microM. Edge movement associated with beating of the myocytes was much less sensitive to calcium (EC50 = 1 mM). Submaximal veratrine contractures in 20-50 microM extracellular calcium were not potentiated by 1 microM Bay K 8644. 6. Tetrodotoxin also inhibited veratrine-induced contractures but did not affect contractions induced by ouabain in the presence of 10 microM diltiazem. 7. Ouabain-induced contractures were also inhibited by nicardipine and flunarizine indicating that these drugs can protect against calcium overload in embryonic chick heart by a mechanism independent of the normal form of voltage-sensitive sodium or calcium channels.

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

Action and mechanism of action of veratrine on renin secretion from rat kidney slices.

It is well known that norepinephrine released from the renal nerves stimulates the secretion of renin by a beta adrenergic mechanism. In the present experiments, we investigated the effects of renin secretion of veratrine, which depolarizes nerve terminals and thereby causes transmitter release. The rat renal cortical slice preparation was used. Veratrine (10-200 microM) stimulated renin secretion in a concentration-dependent manner. Veratrine-stimulated secretion was antagonized by timolol (0.9 and 9.0 microM) and by tetrodotoxin (0.5 and 5.0 microM), a sodium channel blocker. Neither drug abolished completely the stimulatory effect of veratrine. Moreover, veratrine stimulated renin secretion in slices prepared from previously denervated kidneys; this response was not antagonized by timolol. These results are consistent with the hypothesis that veratrine stimulates renin secretion by at least two mechanisms. One component probably consists of veratrine-induced depolarization of renal nerve terminals, release of norepinephrine and activation of juxtaglomerular cell beta adrenergic receptors; the other component appears to be independent of nerve terminals in the preparation. We conclude that the tetrodotoxin-sensitive component of veratrine-stimulated renin secretion in this preparation is an in vitro model of renal nerve-stimulated renin secretion; it should be useful in investigating substances which affect renin secretion by presynaptic modulation of transmitter release.

Animals

Release of gonadotropin-releasing hormone by veratrine in a hypothalamic-pituitary coincubation.

The effects of veratrine and veratridine on the release of gonadotropin-releasing hormone (GnRH) and luteinizing hormone (LH) from incubations of pituitary alone, hypothalamus alone, and coincubations of hypothalamus and pituitary were examined. Veratrine produced only small increases in LH secretion from pituitaries alone relative to that produced by exogenous GnRH. Veratrine caused a calcium-dependent release of GnRH from the hypothalamus. When a pituitary and hypothalamus were coincubated veratrine produced increases in LH secretion that were much larger than its direct pituitary effects. Veratridine also produced large increases in the release of GnRH and LH from hypothalamic-pituitary coincubations. The direct effect of veratridine on pituitary LH release, however, was greater than that of veratrine. The results indicate that veratrine is capable of releasing hypothalamic GnRH with relatively small direct effects on pituitary LH secretion. Hypothalamic-pituitary coincubations coupled with veratrine depolarization may be quite useful for studying hypothalamus factors controlling pituitary hormone release.

Animals

The interactions of paeoniflorin and veratrine on isolated rat atria.

In this study, we attempted to identify the interactions and mechanisms between veratrine and paeoniflorin on isolated rat atria. Paeoniflorin alone showed no effect on the rat atria. Veratrine increased the atrial contraction and induced arrhythmia at 1 x 10(-5) g/ml. Veratrine could directly induce contraction and elicit tetanic contraction at 1 x 10(-4) g/ml in the left atria with or without electric stimulation. Paeoniflorin (4.8 x 10(-6) to 4.8 x 10(-3) g/ml), verapamil (2.2 x 10(-6) g/ml), tetrodotoxin (TTX) (3.2 x 10(-8) g/ml) and quinidine (7.5 x 10(-6) g/ml) inhibited the increase of contraction and delayed the onset of contraction induced by veratrine (1 x 10(-5) g/ml). The inhibitory effect of paeoniflorin combined with verapamil on the contraction induced by veratrine was more potent than that of paeoniflorin or verapamil alone. However, the inhibitory effect of paeoniflorin was not potentiated by TTX or quinidine. From the above results, the contraction evoked by veratrine in the rat atria may be concluded to be caused by the stimulation of Na(+)- and Ca(2+)-ion channels. The inhibition of paeoniflorin on the contraction induced by veratrine may primarily be related to the blockade of Ca2+ channels.

Animals

Veratrine-induced decrease of (Na+ + K+)-adenosine triphosphatase activity in rat brain slices.

The effect of membrane excitability on (Na+ + K+)-adenosine triphosphatase (ATPase) was studied in rat brain slices. The treatment of the brain cortical slices with veratrine for more than 10 min caused a significant decrease of the (Na+ + K+)-ATPase activity. The similar inhibition of the enzyme by veratrine was observed in the hippocampus and hypothalamus, and the veratrine treatment did not affect the sensitivity of the cortical enzyme for ouabain inhibition. These findings suggest that two isozymes of (Na+ + K+)-ATPase are equally inhibited by the treatment. Veratrine inhibited the partial reactions such as Na+-dependent phosphorylation and K+-stimulated phosphatase as well as the specific binding of [3H]ouabain. Agents which increase intracellular Na+ concentration also inhibited the enzyme activity. The effects of veratrine were blocked by Na+-free medium or tetrodotoxin. Low Na+ medium decreased the enzyme activity, and the effect was blocked by amiloride or Ca++-free medium, indicating the involvement of Na+/Ca++ exchange in the inhibition. The decreased activity induced by low Na+ or high K+ medium was restored to the normal level by the subsequent incubation in normal medium. The inhibitory effect of veratrine was dependent on external Ca++, and was blocked by addition of W-7 [N-(6-aminohexyl)-5-chloro-1-naphthalene-sulfonamide]. A23187 also decreased (Na+ + K+)-ATPase activity in the slices. High Mg++ medium blocked the effect of veratrine but not that of monensin which was not dependent on external Ca++.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Comparison of norepinephrine- and veratrine-induced phosphoinositide hydrolysis in rat brain.

Stimulation of phosphoinositide hydrolysis by depolarization with veratrine was compared to that produced by stimulation of alpha-1 adrenoceptors by norepinephrine. The phosphoinositides in rat cerebral cortex were labeled with [myo-3H]inositol and the effects of the drugs on the formation of the following inositol phosphates were determined: inositol 1-phosphate (IP); inositol 1,4-bisphosphate (IP2); mixture of inositol 1,4,5-trisphosphate and inositol 1,3,4-trisphosphate (IP3). Termination of the hydrolysis by trichloroacetic acid resulted in lower basal levels and more reproducible results than termination by water lysis or a chloroform-methanol mixture (CHCl3-MeOH). The amounts of IP and IP2 formed by a maximal concentration of veratrine were about one half of that formed by a maximal concentration of norepinephrine although the amount of IP3 formed after stimulation by veratrine was only about 10% of that produced by norepinephrine. The increase in IP was linear with time (30 min) for both norepinephrine and veratrine. Stimulation of IP2 and IP3 formation by veratrine reached a maximum at 5 min whereas that produced by norepinephrine continued to increase for 30 min. Blockade of voltage-dependent calcium channels with manganese produced nearly complete antagonism of the veratrine response while only partially antagonizing the norepinephrine response. Norepinephrine-induced IP2 formation was less sensitive to manganese than was formation of IP or IP3. These data suggest that either veratrine and norepinephrine cause hydrolysis of different pools of phosphoinositide or that the hydrolysis occurs by different mechanisms. The data also suggest that IP and IP2 may be produced directly from phosphatidylinositol and phosphatidylinositol 4-phosphate rather than solely as a metabolite of IP3.

Animals

Veratrine-induced tetanic contracture of the rat isolated left atrium. Evidence for novel direct protective effects of prazosin and WB4101.

An investigation has been made of the putative direct myocardial protective effects of the alpha 1-adrenoceptor antagonists, prazosin and WB4101, against tetanic contractures of rat isolated left atria following modified Na+ channel function and consequent Ca2+ loading elicited by veratrine. Veratrine evoked concentration-dependent, reversible, tetanic contractures which were critically dependent upon the external Ca2+ concentration. Tetrodotoxin (TTX), prazosin, WB 4101 and R 56865 (0.1-10 microM) prevented tetanic contracture elicited by veratrine (100 micrograms/ml) at concentrations which were significantly lower than those which decreased active tension development. The apparent Hill coefficients (nH) obtained for TTX, prazosin, WB 4101 and R 56865 were comparable (range 0.79-0.93), and are consistent with a single site of action. In contrast, the class 1 antiarrhythmic agents, quinidine and lidocaine, elicited no significant inhibition of veratrine-induced contracture at 30 microM, but almost completely abolished the contractures at 100 microM. The nH values for quinidine and lidocaine were found to be significantly greater than unity (3.1 and 2.6, respectively). The L-type Ca2+ channel blockers, diltiazem, nicardipine, nifedipine and verapamil only weakly prevented tetanic contracture, whilst markedly, and concentration-dependently, decreasing active tension development. Neither atropine (10 microM) nor propranolol (1 microM) significantly modified either veratrine-induced contractures or active tension development. In conclusion, evidence is presented of novel, direct protective effects of prazosin and WB 4101 against tetanic contracture following modified Na+ channel function and Ca2+ loading provoked by veratrine. The precise mechanisms involved are unclear at present, but appear to be distinct from blockade of atrial alpha 1-adrenoceptors or L-type Ca2+ channels.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenergic alpha-Antagonists

Unequal depolarization of the membrane of the rat diaphragm muscle fibres caused by veratrine.

The effect produced by veratrine on transmembrane potential was investigated in five distinct regions of the isolated rat diaphragm blocked with either d-tubocurarine or alpha-bungarotoxin. It was found that small (0.4 micrograms/ml) and large (2.0 micrograms/ml) doses of veratrine depolarize only two or three of these regions. With the use of a very large (10.0 micrograms/ml) dose depolarization occurred in all five regions of the diaphragm but the effect was much larger in those areas of the muscle fibre membrane which were selectively depolarized by the smaller ones. These results clearly indicate either an unequal distribution of sodium channels activated by veratrine or differences in sodium channel density in distinct areas of the muscle fibre membrane. Supersensitivity of veratrinized muscles to potassium was confirmed. However, the sensitiveness to the depolarizing action of potassium was only increased in the regions of the diaphragm partially depolarized by veratrine. This suggests that partial depolarization of the muscle fibre membrane was actually the cause of the supersensitivity. The possible involvement of potassium and of the unequal depolarization of the muscle fibre membrane in the veratrine response is considered.

Animals

Protective effect of bepridil against veratrine-induced contracture in rat atria.

In isolated stimulated rat atria, superfusion with veratrine caused a marked contracture (VIC) which was absent in calcium-free medium and which was inhibited by tetrodotoxin (IC50VIC of 1.38 microM). Lowering the extracellular calcium concentration from 2.5 to 0.5 or 0.1 mM reduced the veratrine-induced contracture and delayed its onset. Superfusion of bepridil (1-10 microM) for 60 min before and during veratrine exposure markedly slowed the onset of contracture, reduced the maximum response (IC50VIC = 2.11 microM) and facilitated recovery upon washout of the alkaloid. The direct negative inotropic effect (NIE) of bepridil (IC50NIE = 10.96 microM) resulted in an VIC/NIE ratio of 5.19 for this drug. The protective effects of bepridil were rate-independent and were not modified by the presence of atropine (1.4 microM) and propranolol (0.3 microM) in the medium. Diltiazem, verapamil and nifedipine only reduced veratrine-induced contracture at concentrations much higher than those producing a negative inotropic effect, giving them negative NIE/VIC ratios of 0.31, 0.08 and 0.08 respectively. Like bepridil, flunarizine had a positive NIE/VIC ratio (15.87, IC50VIC = 3.71 microM). The lack of effect of the quaternary derivative of bepridil CERM 11888 indicated that intracellular sites of action may be involved in the activity of bepridil on veratrine-induced contracture. Given that veratrine-induced changes may mimic some of the pathological changes occurring in ischaemia, the results suggest that bepridil and flunarizine may be more effective than L-type, slow calcium ion-channel blockers in protecting against calcium overload during ischaemia and reperfusion injury.

Animals

Prevention by specific chemical classes of alpha 1-adrenoceptor antagonists of veratrine-contractures in rat left atria independently of alpha 1-adrenoceptor blockade.

1. The putative direct protective effects of a series of chemically diverse alpha 1-adrenoceptor antagonists against veratrine alkaloid-induced tetanic contractures in rat isolated left atria have been investigated. 2. Atria were mounted in organ baths containing normal, oxygenated physiological salt solution (20 ml, pH 7.4), for isometric tension recording. Atria were electrically driven at 4 Hz and were maintained at 34 degrees C. Veratrine (100 micrograms ml-1) was applied to the atria to elicit tetanic (diastolic) contracture. 3. Concentration-dependent protective effects against veratrine-contractures, in the absence of negative inotropic responses, were observed with the quinazoline congeners, prazosin and doxazosin and with the benzodioxane-related compounds, WB 4101 and its thio analogue, benoxathian. IC50 concentrations and apparent Hill coefficients of all four drugs ranged from 0.27 to 0.93 microM, and from 0.86 to 1.09, respectively, and are consistent with interaction at a single site. 4. In contrast, no protective activity versus veratrine-contractures was observed with corynanthine, 5-methyl-urapidil, phenoxybenzamine, phentolamine or chloroethylclonidine (10 microM). 5. Contractures were prevented by prazosin at concentrations 2-3 log units higher than those which antagonized methoxamine-evoked inotropic responses. In addition, concomitant alpha 1-adrenoceptor occupancy by high concentrations of methoxamine (100 microM), phentolamine (10 microM, inactive per se in preventing contracture), or both drugs together, failed, in each case, to modify significantly the protective effects of prazosin or WB 4101 against veratrine-contractures. 6. Our findings demonstrate that alpha 1-adrenoceptor antagonists which prevent veratrine-contractures belong to specific chemical classes of the quinazoline- and benzodioxane-type. The mechanism by which these drugs afford protection is apparently independent of an interaction with defined alpha 1-adrenoceptors.

Adrenergic alpha-1 Receptor Antagonists

Intracoronary veratrine attenuates carotid baroreceptor reflex regulation of blood pressure in conscious dogs.

1. The effect of activation of left ventricular cardiac receptors on carotid baroreflex control of blood pressure, heart rate, cardiac output, and total peripheral resistance was determined in conscious dogs. Previous studies in conscious subjects assessed only the effect on baroreflex control of heart rate. 2. Dogs with denervated aortic baroreceptors were equipped with aortic flow probes, cardiac pacing electrodes, and catheters in the aorta, vena cava, and left circumflex coronary artery. Both carotid sinus regions were prepared for reversible vascular isolation. 3. Left ventricular receptors were stimulated by an infusion of veratrine (0.1-1.0 micrograms kg-1 min-1) into the left circumflex coronary artery. 4. Veratrine infusion decreased control blood pressure only 10 +/- 2 mmHg, but it decreased the range of baroreflex control of blood pressure by 50% and decreased maximum baroreflex gain by 42%. Both the cardiac output and total peripheral resistance components of the baroreflex were attenuated. 5. Baroreflex control of blood pressure was unaffected by intravenous veratrine or by intracoronary infusion of vehicle. 6. Intracoronary veratrine had no effect after autonomic ganglionic blockade. 7. When cardiac output was kept nearly constant (by beta-adrenergic and cholinergic receptor blockade or by beta-blockade and cardiac pacing), intracoronary veratrine still attenuated baroreflex control of blood pressure and total peripheral resistance. Veratrine impaired the ability of the baroreflex to utilize alpha-adrenergic mechanisms to control total peripheral resistance. 8. We conclude that activation of ventricular receptors attenuates baroreflex regulation of blood pressure in conscious dogs through an attenuation of baroreflex control of both cardiac output and total peripheral resistance.

Animals

Transmembrane sodium movement and regulation of contraction in frog atrial muscle during the inotropic effect of veratrine.

In this study, voltage clamp experiments to determine membrane conductance changes revealed that veratrine slowed considerably inactivation of the Na system, thereby greatly increasing Na inward current. The contractile response (registered simultaneously with membrane currents) was closely related to this increase: applying tetrodotoxin (TXX) or Na-free (sucrose) Ringer's solution abolished the effect of veratrine on electrical and mechanical activity almost simultaneously. With Na-free (LiCl) Ringer's solution the effect of veratrine on membrane current was obtained, but the mechanical response was unchanged. Thus transmembrane movement of Na ions is involved in regulation of contraction during the inotropic effect of veratrine. As veratrine did not substantially change the slow Ca inward current, inotropic action seems dependent on some intracellular stores of Ca ions. The possibility that intracellular Na ions govern the amount of intracellular Ca ions available for the development of the inotropic effect of veratrine is discussed.

Action Potentials

The effect of veratrine on 24Na uptake by frog sartorius muscle in hypertonic media.

The effect of veratrine on 24Na uptake by sartorius muscles incubated in hypertonic media has been studied. 1. 0.1 mM veratrine increases 24Na uptake in muscles incubated even in different hypertonic solutions (normal Ringer + 300 mM sucrose or glucose or 150 mM NaCl). 2. 0.05 mM curare inhibits the 24Na uptake increasing effect of veratrine in hypertonic solution 3. 0.1 mM ouabain, whether in isotonic or hypertonic solution, does not influence the resting 24Na uptake, and does not decrease the 24Na uptake increasing effect of veratrine in isotonic media; however, in hypertonic solution it inhibits the 24Na uptake increasing effect. 4, 5 X 10(-8) M tetrodotoxin blocks completely the 24Na uptake enhancing effect of veratrine both in isotonic and in hypertonic Ringer's solution. 5. It is suggested that the sites of action of the 24Na uptake increasing effect of veratrine are the neural structures in muscle, in hypertonic media.

Animals

Effect of stimulation and veratrine on total cellular calcium in rat and guinea-pig ventricular myocytes.

In rat cardiac myocytes, calcium efflux by Na+/Ca(2+)-exchange is expected only during ventricular systole following initial action potential repolarization. In contrast, in guinea-pigs, calcium influx via Na+/Ca(2+)-exchange is expected only during the initial portion of the action potential. Thus electrical stimulation is expected to result in reduced intracellular calcium ([Ca2+]i) in rat and an increase in guinea pig. We tested this hypothesis by measuring total cellular calcium ([Ca]tot) using 45Ca following stimulation of isolated rat and guinea-pig ventricular myocytes. Many studies have also emphasized that the rate and the direction of Na+/Ca(2+)-exchange across the sarcolemma are in part dependent on the magnitude of the transsarcolemmal sodium gradient. Thus, increasing intracellular sodium ([Na+]i) is expected to result in an increased [Ca2+]i. This hypothesis was also tested by measuring [Ca]tot following veratrine administration. Enzymatically isolated rat and guinea-pig ventricular myocytes were divided into two groups; non-stimulated and stimulated (1 Hz). The concentration-dependent effects of veratrine (1,10,100 micrograms/ml) on [Ca]tot were determined in both these groups. In the absence of veratrine, non-stimulated rat myocytes had a significantly higher [Ca]tot than did stimulated ones. Non-stimulated guinea-pig myocytes had a significantly lower [Ca]tot when compared with stimulated ones. Veratrine increased [Ca]tot in both species in a concentration-dependent fashion. In addition, following veratrine the difference between [Ca]tot in non-stimulated and stimulated rat myocytes was no longer significant. These results support those of others who have demonstrated that stimulation is associated with a gain of cellular calcium in both rabbit and guinea-pig ventricle and a calcium loss in rat ventricle.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals