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J Toyama

Publications and source records attributed to J Toyama.

At least 55 records · Page 3Linked to original sources

A model analysis of aftereffects of high-intensity DC stimulation on action potential of ventricular muscle.

The mechanism for aftereffects of high-intensity dc stimulation on ventricular muscle was studied by using Beeler-Reuter's action potential model. A leak conductance (Gpore, maximal value from 40 to 80 microS for 1 cm2 of membrane), which mimics reversible dielectric breakdown of the cell membrane by the shock, was incorporated into the model. To simulate resealing process, Gpore was assumed to decrease after the shock exponentially at a time constant (tau pore) of 5-50 s. The simulation results are qualitatively consistent with our experimental observations in guinea pig papillary muscle [1]; they include prolonged depolarization, diastolic depolarization or oscillation of membrane potential leading to a single or multiple spontaneous excitation. The phase-independence and shock intensity-dependence can also be reproduced. Analysis of current components has revealed that: 1) a large inward leak current (Ileak) is responsible for the prolonged depolarization; 2) time-dependent decay of outward current (IX1) in combination with Ileak and slow inward current (I(s)) results in diastolic depolarization or oscillation of membrane potential; 3) spontaneous excitation depends on an activation of I(s). These findings support our hypothesis that strong shocks (> 15 V/cm) will produce abnormal arrhythmogenic responses in ventricular muscle through a transient rupture of sarcolemmal membrane.

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Primary antiphospholipid syndrome with acute myocardial infarction recanalised by PTCA.

A 20 year old man with severe chest pain was hospitalised for acute myocardial infarction. Coronary angiography revealed total obstruction of his right coronary artery, which was successfully recanalised by direct percutaneous transluminal coronary angioplasty (PTCA). There was also diffuse thrombi in the left coronary artery that was not recanalised by perfusion with 3000 U pro-urokinase. Anticoagulant therapy was performed after PTCA. Creatine kinase peaked one day after hospitalisation (4805 U/l). The activated partial thromboplastin time was 62.6 seconds (45%). Plasma anticardiolipin IgG antibodies were high (3.8 and 2.7) in repeated examinations. The PTCA site was patent after three months. Primary antiphospholipid syndrome should be considered as a cause of acute myocardial infarction in young adults, and PTCA with anticoagulant treatment is effective for initial treatment of the syndrome.

Adult↗

Vesnarinone prolongs action potential duration without reverse frequency dependence in rabbit ventricular muscle by blocking the delayed rectifier K+ current.

BACKGROUND: Methanesulfonanilide derivatives, selective inhibitors of the rapidly activating component (I(Kr)) of the delayed rectifier potassium current (I(K)), prolong action potential duration (APD) of cardiac muscles with reverse frequency dependence, which limits their clinical use because of proarrhythmia. Vesnarinone, a quinolinone derivative developed as a cardiotonic agent, has complex pharmacological properties, but its clinical efficacy is explained in part by I(K) reduction. Therefore, we investigated the mode of I(K) block by vesnarinone. METHODS AND RESULTS: I(K) of the rabbit ventricular myocyte was activated by voltage-clamp steps applied from a holding potential to various depolarizing levels. The development of I(K) block at depolarization (+10 mV) and its recovery process at hyperpolarization (-75 mV) were compared between vesnarinone and E-4031. The I(K) block by vesnarinone (3 micromol/L) developed and recovered monoexponentially, with time constants of 361 ms (n=5) and 1.87 seconds (n=4), respectively. I(K) block by E-4031 (0.3 micromol/L) developed instantaneously, with no recovery from the block at hyperpolarization. The I(K) block by vesnarinone, estimated by I(K) tail after a train of depolarizing pulses (for 30 seconds at 0.2 to 2 Hz), was increased with increasing frequency (twofold at 2 from 0.2 Hz), but that by E-4031 was unchanged. In rabbit papillary muscles, vesnarinone (10 micromol/L) prolonged APD at stimulation frequencies >0.2 Hz, whereas E-4031 (0.3 micromol/L) prolonged that in a reverse frequency-dependent manner. CONCLUSIONS: Vesnarinone may prolong the repolarization of human cardiac muscle without reverse frequency dependence, because I(Kr) is expressed in humans as well as in the rabbit. Thus, this drug may be a model for an ideal class III drug without the risk of proarrhythmia.

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Effects of thyroid and glucocorticoid hormones on Kv1.5 potassium channel gene expression in the rat left ventricle.

The effects of thyroid and glucocorticoid hormones on the expression of the Kv1.5 potassium channel gene were studied in the rat left ventricle. Rats were rendered hypothyroid by oral administration of methimazole (MMI). Hyperthyroidism was induced in the MMI-treated rats by administration of L-thyroxine (T4). Kv1.5 mRNA levels decreased markedly in the hypothyroid rats, whereas they increased in the hyperthyroid rats. Propranolol, a beta-adrenergic blocker, did not inhibit the T4-dependent increase in Kv1.5 mRNA, indicating that the increase is not due to the increased beta-adrenergic stimuli under hyperthyroidism. Accordingly, treatment of the MMI-treated hypothyroid rats with isoproterenol, a beta-adrenergic receptor agonist, did not increase the mRNA. The Kv1.5 mRNA levels positively correlated with the thyroid hormone levels in sera. When rats were adrenalectomized and rendered hypothyroid, Kv1.5 mRNA become undetectable. Administration of 3,3',5-triiodothyronine (T3) at a dose to induce hyperthyroidism did not restore the mRNA level. However, T3 significantly increased the mRNA level when dexamethasone was co-administered at a physiological dose. These results for the first time demonstrate that thyroid hormone up-regulates Kv1.5 mRNA levels in the rat left ventricle and they demonstrate that glucocorticoid is required for this induction.

Animals↗

Murine cardiac progenitor cells require visceral embryonic endoderm and primitive streak for terminal differentiation.

Cardiac progenitor cells in avian and amphibian embryos are known to commit to cardiac lineage during gastrulation or early neurulation. These cells require cell interaction with anterior endoderm for their differentiation into cardiomyocytes. However, little is known about cell interaction in mammalian cardiogenesis. We investigated the staging of murine cardiomyocyte commitment and the role of cell interaction in differentiation of cardiac progenitor cells into cardiomyocytes, using cultures of various embryonic regions at 7.25 and 7.5 days post coitum (p.c.), respectively. To evaluate the terminal differentiation of cardiac progenitor cells, we employed three parameters; expression of spontaneous beating, myosin heavy chain (MHC) protein, and cardiac-specific genes (alpha myosin heavy chain, Csx/Nkx2.5 and myosin light chain 2V genes). mRNAs of cardiac-specific genes were detected in 7.25-day p.c. mesoderm by RT-PCR, suggesting that the genetic specification to cardiac lineage initiated in the mesoderm by 7.25 days p.c. The 7.25-day p.c. isolated mesoderm in 48 hr culture, however, failed to differentiate into spontaneous beating cardiomyocytes and exhibited non-organized MHC protein in 19% of these culture. In contrast, all of the 7.5-day p.c. isolated mesoderm differentiated into beating cardiomyocytes even in 24 hr culture. The 7.25-day p.c. mesoderm associated with primitive streak increased MHC protein expression in 93% of these cultures, although they formed beating foci in 3%. The 7.25-day p.c. explants containing both visceral embryonic endoderm and primitive streak succeeded in terminal differentiation into spontaneous beating cardiomyocytes. Our study suggests that cardiac progenitor cells obtain the potency to complete terminal differentiation autonomously at 7.5 days p.c., as a consequence of the multistep induction by cell interactions with both the primitive streak and visceral embryonic endoderm, following the genetic specification to cardiac lineage in the early gastrula stage.

Animals↗

Evidences of antagonism between amiodarone and triiodothyronine on the K+ channel activities of cultured rat cardiomyocytes.

Effects of acute and chronic treatments with amiodarone, both in the presence and the absence of exogenous triiodothyronine (T3), on repolarizing outward K+ currents were investigated by patch-clamp technique in cultured newborn rat ventricular cells. Acute exposure to amiodarone dose-dependently inhibited the transient outward (Ito IC50 = 4.9 microM) and the steady-state outward (IK, IC50 = 6.3 microM) K4 currents. The dose-response curve of this acute inhibitory action was unaffected by the presence of T3. When amiodarone was applied chronically. 72-h exposure to a low dose of the drug (1 microM) significantly decreased the current densities of Ito and I kappa for the cells cultured in a serum-supplemented medium containing 0.12 nM T3. In a serum-free medium without T3o chronic amiodarone treatment revealed null effect on either Ito or IK. In addition, 72-h in-vitro treatment with Ti enhanced the current densities of both Ito (EC50 = 0.13 nM) and I kappa (EC50 = 0.33 nM). Concentration-response analysis indicated that amiodarone (1 microM) showed competitive inhibition towards the action of T3 on Ito but noncompetitive inhibition towards the action of T3 on IK. These results suggest that different ionic mechanisms are produced by acute and long-term treatments with amiodarone. The latter showed T3-dependent inhibition of cardiac Ito and IK. When chronically administered, amiodarone may antagonize T3 and thereby counteract its hormonal effect on K+ channels. This implies that, at the myocyte level, antagonism of the action of thyroid hormones in K+ channel activities may contribute to the cardiac effects of chronic amiodarone therapy.

Amiodarone↗

Developmental changes of the ultrarapid delayed rectifier K+ current in rat ventricular myocytes.

Recent studies have shown the presence of a 4-aminopyridine (4-AP) sensitive, ultrarapid delayed rectifier K+ current (IK,ur) in adult human atria, but an apparent absence of this current in adult human ventricles. The present experiment was designed to investigate the postnatal changes of IK,ur in rat ventricular myocytes. The presence of IK,ur was evaluated with the use of a low concentration of 4-AP (50 micro;M). In 3-day-old newborns, the channel activity of rapidly activating outward current was predominantly the transient outward current (Ito). IK,ur could be recorded in a small number of 3-day-old cells lacking Ito (16%). In 10-day-old and adult rat ventricular myocytes, almost all cells expressed Ito and its current density increased significantly with age. The fraction of cells expressing IK,ur dramatically decreased with age and no IK,ur-like component could be detected in the adult cells. These findings first demonstrate that the expression of IK,ur is regulated developmentally in mammalian ventricular myocytes.

4-Aminopyridine↗

Roles of the voltage-gated K+ channel subunits, Kv 1.5 and Kv 1.4, in the developmental changes of K+ currents in cultured neonatal rat ventricular cells.

To investigate the roles of voltage-gated K+ channel subunits, Kv 1.5 and Kv 1.4, in the developmental regulation of K+ currents, we determined the K+ channel activities and the distributions of K+ channel subunits in the same single cultured neonatal rat ventricular cells, using a whole-cell patch-clamp technique and an immunocytochemical analysis of K+ channel proteins. In 5-day cultured cells, two types of 4-aminopyridine (4-AP)-sensitive and rapidly activating K+ currents, the transient outward current (Ito) and the ultrarapid delayed rectifier (IKur), could be distinguished. A small proportion of 5-day cells expressing sole IKur demonstrated an intense anti-Kv 1.5 antibody labeling with punctate distribution outlining the cells, while a weak staining was observed in the majority of 5-day cells expressing sole Ito. At day 15 of cell culture, only Ito was present with a lower level of the immunocytochemical expression of Kv 1.5 channel protein. Staining of the Kv 1.4 channel protein was qualitatively similar in the 5-day cells expressing either Ito or IKur. However, anti-Kv 1.4 antibody did not label the 15-day cultured cells showing remarkably increased Ito density. Our results strongly indicate that the Kv 1.5 channel expression may underlie the developmental regulation of IKur, while Kv 1.4 channel does not contribute to the postnatal increase in Ito.

Animals↗

Differential effects of chronic membrane depolarization on the K+ channel activities in cultured rat ventricular cells.

OBJECTIVE: Although there is widespread interest in the regulation of K+ channel gene expression by membrane depolarization, its effects on cardiac ion channel activity remain unclear. In the present study, we investigated the influences of chronic membrane depolarization on the functional expression of K+ channels in cultured rat cardiomyocytes. METHODS: Single ventricular cells isolated from day-old rat hearts were cultured for nearly 10 days. From day 6, chronic depolarization induced by elevating the K+ concentration of growth medium to 20 mM was developed for 72 h. Whole-cell patch-clamp techniques were used to record action potentials and ion currents. RESULTS: Compared with controls, longer action potential durations associated with relatively positive resting potentials were observed after 72-h high K+ incubation. Chronic membrane depolarization caused a significantly reduced density of transient outward current (Ito) without affecting the channel kinetics and voltage-dependence. Delayed rectifier K+ current (IK) in cultured cells could be inhibited by E-4031, showing the drug-sensitive and -resistant components with different kinetic properties. The E-4031-sensitive current activated rapidly, and the drug-resistant current was characterized by slow activation. Both the rapid (IKr) and slow (IKs) components constituted IK recorded from the control and depolarization-treated cells, while in the latter group the current density of IKr was slightly increased and that of IKs was enhanced by 80% with a small hyperpolarizing shift (5 mV) in the voltage-dependent activation curve. CONCLUSIONS: These observations suggest that the effects of chronic membrane depolarization differ depending on the phenotype of the cardiac K+ channels.

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Cellular electropharmacology of amiodarone.

The complex profile of amiodarone actions on the electrophysiological properties of cardiac cells reviewed in this article may be summarized as follows. As acute effects, amiodarone inhibits both inward and outward currents. The inhibition of inward Na+ and Ca2+ currents is enhanced in a use- and voltage-dependent manner, resulting in suppression of excitability and conductivity in both iNa- and iCa-dependent cardiac tissues. The inhibition is greater in the tissues stimulated at higher frequencies, and in those with less negative resting (or diastolic) membrane potentials. As outward currents, iK (iKr and iKs), iK,ACh and iK,Na are inhibited by acute amiodarone, iKl could also be inhibited at high concentrations of amiodarone. Acute effects of amiodarone on i(to) remain unclear. Previous reports on the acute effects of amiodarone on APD are conflicting, presumably because different ionic currents are responsible for the repolarization of action potential in different animal species, cardiac tissues and experimental conditions. APD would be shortened if the inhibitory action of amiodarone on the inward current is greater than on the outward current, and vice versa in the opposite case. The major and consistent chronic effect of amiodarone is a moderate APD prolongation with minimal frequency-dependence. This prolongation is most likely due to a decrease in the current density of iK and i(to). Chronic effects of amiodarone are modulated by tissue accumulation of amiodarone and DEA. Variable suppression of excitability and conductivity of the heart by chronic amiodarone might reflect direct acute effects of the parent drug and/or its active metabolite (DEA) retained at the sites of action. Chronic amiodarone was shown to cause a down-regulation of Kv1.5 mRNA in rat hearts, suggesting a drug-induced modulation of potassium channel gene expression. Electrophysiological changes in the heart induced by chronic amiodarone resemble those induced by hypothyroidism. Three mechanisms have been proposed to explain this hypothyroid-like action of amiodarone. Amiodarone and/or DEA may inhibit peripheral conversion from T4 to T3, cellular uptake of T4 and T3, and T3 binding to nuclear receptors (TR). The second and third mechanisms are considered to be more important than the first. Amiodarone or DEA could antagonize T3 action on the heart at a cellular or subcellular level. Two distinct characteristics in the cellular electropharmacology or amiodarone are different from those of other antiarrhythmic drugs. First, it acts on many different types of molecular targets including Na+, Ca2+, and K+ channels as well as adrenoceptors. Second, it may cause antiarrhythmic remodeling of cardiac cells, probably through a modulation of gene expression of ion channels and other functional proteins. We hypothesize that this remodeling is mediated most likely by cellular or subcellular T3 antagonism. Nevertheless, much remains to be studied as ot the acute and especially chronic effects of amiodarone on ionic currents, transporters, receptors and other molecules in cardia cells. The role of the cardiac hypothyroid state in the genesis of antiarrhythmic activity is still a matter of considerable controversy among investigators. Recently, two amiodarone analogues (SR 33589 and ATI-2001) showing a potent acute antiarrhythmic activity in animal models, have been developed [37,87,88,131]. These new compounds are not known to exhibit chronic antiarrhythmic potential or cardiac hypothyroidism activity. Unraveling these tissues will be required to understand the exact molecular and cellular mode of action of amiodarone and to find a new direction for the development of the ideal antiarrhythmic drugs of the future.

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IGF-I regulates K(+)-channel expression of cultured neonatal rat ventricular myocytes.

Insulin-like growth factor (IGF) I has been known as an important peptide during heart development and myocardial hypertrophy. In the present study, the effects of IGF-I on cardiac K(+)-channel expression were investigated in cultured neonatal rat ventricular myocytes. Two distinct 4-aminopyridine (AP)-sensitive and rapidly activating outward K+ currents (IK) were observed. The predominant K(+)-channel current in cultured cells was a fast inactivating current similar to a 4-AP-sensitive transient outward current [I(to) half-maximal inhibitory concentration (IC60) = 0.87 mM]. Some cells lacking I(to) expressed an IK with little or no slow inactivation. IK exhibited higher sensitivity to inhibition by 4-AP (IC50 = 66.5 microM) and could be enhanced by isoproterenol but unaffected by tetraethylammonium. These characteristics indicate that IK might be the rat isoform of ultrarapid delayed rectifier K+ current IKur previously described in human atrial myocytes. Seventy-two-hour exposure to 60 ng/ml IGF-I induced myocyte hypertrophy and increased the percentage of cells expressing only IKur and the cells expressing both Ito and IKur. In some cultured myocytes, immunofluorescent staining with a polyclonal antibody specific to the COOH terminus of Kv1.5 K(+)-channel protein was performed in the same single cells after voltage-clamp recordings. The IGF-I-pretreated cells expressing larger IKur revealed a significantly intense antibody labeling. These observations indicate that the long-term administration of IGF-I can regulate the K(+)-channel expression of cultured neonatal rat ventricular myocytes. This is important for understanding the role of IGF-I in the modulation of cardiac excitability.

4-Aminopyridine↗

Stage-dependent changes in membrane currents in rats with monocrotaline-induced right ventricular hypertrophy.

Sequential changes in action potential configuration, 4-amino-pyridine-sensitive transient outward current (Ito), and L-type calcium current (ICa) in association with hypertrophy were investigated in ventricular myocytes from rats with monocrotaline (MCT)-induced pulmonary hypertension. The tissue weight ratio of right ventricle (RV) to left ventricle plus septum 14 and 28 days after a subcutaneous injection of MCT increased by 29.7 and 77.2%, respectively. Action potential duration (APD) of RV cells from MCT rats increased progressively, prolonged by 73.2 and 92.2% on days 14 and 28, respectively. The current density of Ito in RV cells from MCT rats on day 14 (32.5 +/- 4.5 pA/pF, n = 13) was significantly larger than in controls (26.8 +/- 4.5 pA/pF, n = 8; P < 0.05). On day 28, however, Ito density in MCT rats (15.3 +/- 4.6 pA/pF, n = 9) was significantly less than in controls (27.3 +/- 4.2 pA/pF, n = 10; P < 0.05). There were no differences in the voltage dependence of steady-state activation and inactivation of Ito between MCT and control rats. ICa density in MCT rats on day 14 (15.7 +/- 2.6 pA/pF, n = 10) was significantly larger than in controls (10.0 +/- 2.3 pA/pF, n = 10; P < 0.05), but there was no significant difference in Ito density between MCT rats (8.3 +/- 3.7 pA/pF, n = 10) and controls (11.6 +/- 3.0 pA/pF, n = 10) on day 28. These findings suggest that hypertrophy of mammalian hearts may cause stage-dependent changes in Ito and ICa density of ventricular myocytes. The APD prolongation in the early stage of hypertrophy may be caused mainly by an increase in ICa density, whereas the APD prolongation in the late stage may be ascribed to a reduction in Ito density.

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Modulation of potassium channels by chronic hypoxia in neonatal rat cultured ventricular myocytes.

We studied the effects of long-term exposure to hypoxia on the developmental change of transient outward current (Ito) in neonatal rat cultured ventricular myocytes. Ventricular myocytes of day-old neonatal rat hearts were cultured in normoxic condition (21%, O2) for 15 days. Some cells were cultured at lower O2 concentration of 7.5% from day 6 to day 15. During 6-15 days of cultivation in normoxic condition, a two to three fold increase (n=11-12) in Ito density was observed without changes in the kinetics of current inactivation. In the hypoxic condition during the same culture period, the developmental increment in Ito was reduced to 53% (n=8) and was characterized by slow kinetics of the inactivation process. These results suggest that the development of Ito is influenced by the oxygen concentration, and that the remarkable increase in Ito after birth may result from an elevation in blood oxygen concentration during the perinatal period.

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Immunocytochemistry of Kv1.5 potassium channel protein in cultured neonatal rat ventricular myocytes.

Of the six voltage-gated potassium channel subunits detected in adult rat heart, Kv1.5 channel is abundant and its expression is depressed in hypertrophied and infarcted myocardium. The effect of nonmyocyte cells (NMCs) on cardiac Kv1.5 channel expression was studied in cultured neonatal rat ventricular cells, using immunofluorescent cytochemistry with a polyclonal antibody against rat Kv1.5 channel protein. Co-culture with NMCs induced myocyte hypertrophy, but a downregulation of Kv1.5 channel expression. Similar changes were observed when pure myocyte culture was treated with medium supernatant of pure NMC culture. These findings suggested that some soluble factors produced by cardiac NMCs play important roles in the regulation of potassium channel density during myocardial hypertrophy.

Animals↗

Role of QT interval prolongation in the creation of spiral wave type reentry.

The inducibility of reentry was compared for four QT patterns in a heart conduction simulation model. Local (L) and gradual (G) QT prolongation models are more susceptible to reentry induction than the no (N) QT prolongation model (reentry induced episodes for N, L, and G numbered 90, 120, and 122, respectively). This increased vulnerability was diminished when the QT interval was prolonged at all simulation sites (reentry induced episodes for the diffuse QT prolongation model, D model, numbered 82). Decreased QT dispersion might be important for the prevention of reentry induction regardless of whether the QT interval is increased.

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Correlation between electrical activity and the size of rabbit sino-atrial node cells.

1. Single cells were isolated from rabbit sino-atrial (SA) node by enzymatic dissociation. Spontaneous action potentials and membrane currents were recorded using the whole-cell patch clamp technique to study the relationship between electrical activity and the size of the cells. 2. The size of SA node cells was estimated by measuring the cell capacitance. The cell capacitance of SA node cells ranged from 21.8 to 61.5 pF with a mean +/- S.E.M. of 38.2 +/- 1.3 pF (n = 61). 3. The action potential amplitude, maximum diastolic potential, take-off potential and action potential upstroke velocity were greater in larger cells. The rate of diastolic depolarization was greater and the intrinsic spontaneous activity was faster in larger cells. 4. The density of hyperpolarization-activated current (i(f)) was greater in larger cells, whereas the density of L-type calcium current was not correlated with the size of SA node cells. 5. TTX-sensitive sodium current (iNa) was absent in small cells with a capacitance of less than approximately 25 pF, and the density of iNa was greater in larger cells. 6. The greater density of iNa in larger cells may explain the higher upstroke velocity of the action potential in large cells, and the greater density of i(f) and iNa could be responsible for the faster intrinsic spontaneous activity of large cells. These results suggest that the SA node consists of electrophysiologically heterogeneous pacemaker cells with different electrical membrane properties.

Action Potentials↗

Regional differences in the response of the isolated sino-atrial node of the rabbit to vagal stimulation.

1. The effects of brief postganglionic vagal nerve stimulation on electrical activity in different regions of the rabbit sino-atrial node and surrounding atrial muscle were recorded. 2. At the centre of the node (the leading pacemaker site), the brief stimulation resulted in a large hyperpolarization followed by a depolarization and a shortening of the action potential. All effects were short lasting (time to 90% recovery of membrane potential, 0.8 s). 3. At other sites within the node and in the surrounding atrial muscle, although there was still a substantial action potential shortening, the hyperpolarization was smaller and the depolarization was small or absent. All effects were longer lasting (time to 90% recovery in atrial muscle, 11.4s). 4. The depolarization in the centre of the node was abolished by block of the hyperpolarization-activated current (i(f)) by Cs+ or zatebradine (UL-FS 49). It could, therefore, result from the activation of i(f) during the preceding hyperpolarization. 5. Block of acetylcholinesterase by eserine greatly slowed recovery from vagal stimulation at all sites, demonstrating that recovery is dependent on acetylcholinesterase. The longer lasting effects of vagal stimulation in atrial muscle, therefore, result from lower acetylcholinesterase activity. 6. Vagal stimulation resulted in a short lasting initial slowing of spontaneous action potentials followed by a long-lasting secondary slowing. Whereas the initial slowing coincided with the effects of vagal stimulation on the centre of the node, the secondary slowing coincided with the slower effects of vagal stimulation on the surrounding atrial muscle. The secondary slowing was reduced by 68 +/- 11% (n = 5) by cutting the atrial muscle away from the node. 7. It is concluded that the short-lasting initial slowing of spontaneous action potentials is the direct effect of vagal stimulation on the centre of the sino atrial node, whereas the secondary slowing is the result of the longer lasting effects of vagal stimulation on the surrounding atrial muscle and the electrotonic suppression of the node by the muscle.

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Characteristics of patients with right bundle branch block and ST-segment elevation in right precordial leads. Idiopathic Ventricular Fibrillation Investigators.

To elucidate the clinical characteristics of patients with right bundle branch block and ST elevation in the right precordial leads, a prospective follow-up study was made in 63 registered patients, including 17 with a history of ventricular fibrillation (VF) and 14 with a history of syncope. The prevalence of coved type ST elevation was significantly higher in patients who had had cardiac events, and during the initial 15-month follow-up, 2 patients in the VF group died suddenly.

Adult↗