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Biomedical subjects

R Levi

Publications and source records attributed to R Levi.

At least 145 records · Page 8Linked to original sources

Positive inotropic effect of the thromboxane analog U-46619 on guinea pig left atrium: mediation by specific receptors and association with increased phosphoinositide turnover.

U-46619, a stable epoxymethano analog of thromboxane A2 elicited a direct positive inotropic effect on guinea pig left atrium paced at a constant rate (EC50 = 2.5 nM). This novel observation contrasts with previous reports of a decrease in myocardial contractility by thromboxane mimetic compounds in coronary-perfused preparations, an action recognized as secondary to vasoconstriction. The positive inotropic effect of U-46619 was competitively antagonized by the specific thromboxane receptor blocker L-655,240 (pA2 = 8.02; identical to that reported in smooth muscle), but was unaffected by blockers of alpha 1-, beta 1-, and H1-receptors and by cyclooxygenase and lipoxygenase inhibitors. Increased tissue levels of inositol phosphates, but not cAMP, were associated with the positive inotropic action of U-46619, in analogy to the actions of alpha 1- and H1-receptor agonists. However, the inotropic effect of U-46619 and the concomitant increase in phosphoinositide breakdown were both selectively antagonized by L-655,240. Thus, U-46619 acts on specific thromboxane receptors in guinea pig left atrium and elicits a positive inotropic effect that probably results from an increase in phosphoinositide metabolism.

15-Hydroxy-11 alpha,9 alpha-(epoxymethano)prosta-5↗

Cardiac anaphylaxis. Complement activation as an amplification system.

Complement is activated, and C3a and C5a anaphylatoxins are generated during hypersensitivity reactions clinically associated with cardiopulmonary collapse. The administration of C3a or C5a to nonsensitized isolated guinea pig hearts mimics the events caused by antigen challenge of sensitized hearts (i.e., cardiac anaphylaxis) in the absence of complement. Thus, complement-derived anaphylatoxins may participate in immediate hypersensitivity reactions in which the heart is a target organ. To assess the contribution of complement activation and anaphylatoxin generation to cardiac dysfunction, we have elicited anaphylaxis in isolated guinea pig hearts in the presence of complement and found that the ensuing dysfunction is markedly enhanced. This amplification is most likely attributable to anaphylatoxin formation because 1) inactivation of C3 or selective C3 depletion, i.e., the loss of the component responsible for the formation of the anaphylatoxins C3a and C5a, prevents complement-induced exacerbation of cardiac anaphylaxis, whereas reconstitution with C3 and C5, or even only C3, restores it; in fact, the greater the C3 content at the time of antigen challenge, the more intense the anaphylactic crisis; and 2) the severity of cardiac anaphylaxis is markedly reduced by preexposure to C3a, and this reduction is directly related to the dose of C3a injected and to the amount of endogenous cardiac histamine depleted by C3a before antigen challenge. Complement-derived anaphylatoxins appear to promote the same mediator release that has been initiated by the antigen-antibody reaction; thus, complement activation functions as an amplification system in cardiac anaphylaxis.

Anaphylatoxins↗

C3a-induced contraction of guinea pig ileum consists of two components: fast histamine-mediated and slow prostanoid-mediated.

Guinea pig ileum is the classical experimental model for assessing the biological activity of complement-derived anaphylatoxins. Nevertheless, it is still at issue whether C3a-induced ileal contraction is entirely dependent on histamine release. We report that the contraction of the intestinal smooth muscle in response to C3a is characterized by two components, fast and slow, whose incidence and amplitude is strictly dependent on C3a concentration; the larger the concentration of C3a, the greater the incidence and magnitude of the fast component and the less frequent the slow component. The fast and slow components were characterized by a sigmoid and bell-shaped concentration-response curve, respectively. The fast component was associated with the release of endogenous histamine, increased in magnitude with the quantity of histamine released and was prevented by the histamine H1 receptor antagonist pyrilamine. On the contrary, there was no correlation between the quantity of histamine released by C3a and the magnitude of the slow component. Instead, the slow component was associated with the release of PGE2 and was prevented by the cyclooxygenase inhibitor indomethacin. Neither component was affected by the leukotriene receptor antagonist FPL 55712. Our data indicate that C3a-induced ileal contraction is partially histamine dependent in that histamine mediates only the fast component, whereas cyclooxygenase metabolites are responsible for the slow component.

Animals↗

Impaired visual contrast sensitivity in epileptic patients treated with carbamazepine.

Critical flicker fusion frequencies and visual contrast sensitivity were determined in 27 adult epileptic patients receiving carbamazepine monotherapy and in 24 healthy, drug-free control subjects. Flicker fusion thresholds were the same in patients and control subjects, whereas the contrast sensitivity was significantly reduced in the patient group at all spatial frequencies. There was a significant negative correlation between the plasma concentration of carbamazepine and the contrast sensitivity at 11.4 and 22.8 cycles per degree, indicating that the reduced contrast sensitivity was due to the drug therapy.

Adolescent↗

Ventricular arrhythmias parallel cardiac histamine efflux after coronary artery occlusion in the dog.

Release of cardiac histamine by immunologic and pharmacologic stimuli is known to provoke ventricular arrhythmias. Augmented histamine efflux from ischemic myocardium has been proposed but remains controversial. The purpose of this study was to determine whether cardiac histamine efflux is precipitated by coronary artery occlusion and if so, whether histamine efflux is associated with the development of early ischemic ventricular arrhythmias. The left anterior descending coronary artery was occluded while recording a continuous electrocardiogram and coronary sinus blood was sampled frequently during the first 30 min of coronary artery occlusion in pentobarbital-anesthetized, open-chest dogs. Coronary sinus histamine concentration rose from a mean baseline of 0.06 +/- 0.10 ng/ml (+/- SD) before coronary artery occlusion to a mean peak of 0.61 +/- 0.40 ng/ml after coronary artery occlusion (p less than 0.0001; n = 14). The median peak coronary sinus histamine concentration was significantly greater in dogs that suffered ventricular fibrillation after coronary artery occlusion (n = 4) than in those that did not (n = 10) (0.86 ng/ml vs. 0.37 ng/ml; p = 0.05). The area under the coronary sinus histamine concentration-vs.-time curve ("total cardiac histamine efflux") correlated directly with the total number of ventricular premature contractions during the first 30 min after coronary artery occlusion (r = 0.81; p less than 0.005; n = 10), and with infarct size (r = 0.91; p less than 0.01; n = 6). Thus, during acute myocardial ischemia, the coronary sinus histamine concentration increases simultaneously with the development of early ischemic ventricular arrhythmias and in proportion to their severity.

Animals↗

Identification of arginine as a precursor of endothelium-derived relaxing factor.

Nitric oxide (NO) is a major endothelium-derived relaxing factor (EDRF) released in response to vasodilating amines, peptides, proteins, ionophores, and nucleotides. EDRF is an important regulator of smooth muscle tone and platelet aggregation and adhesion. Histamine and acetylcholine relax the intact norepinephrine-constricted guinea pig pulmonary artery by an EDRF-dependent mechanism in a medium free of amino acids. N omega-Monomethylarginine (N-MeArg; 0.25 mM) inhibited this relaxation by 64-73%. Inhibition by N-MeArg developed rapidly and was immediately and completely reversed by excess L-arginine but not by D-arginine or by citrulline. N-MeArg did not diminish relaxation induced by nitroprusside, an NO-generating agent, indicating that N-MeArg acts on endothelium rather than on smooth muscle. These observations strongly suggest that, in the intact guinea pig pulmonary artery, EDRF originates from enzymatic action on the guanido nitrogen(s) of an endogenous pool of arginine. This is strikingly similar to the origin of reactive nitrogen intermediates in activated macrophages.

Acetylcholine↗

Heart as a target organ in 2,3,7,8-tetrachlorodibenzo-p-dioxin toxicity: decreased beta-adrenergic responsiveness and evidence of increased intracellular calcium.

The heart has not been regarded as a major target organ of 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD) toxicity notwithstanding that lethal cardiac dysfunction can occur in the absence of histopathological changes. To assess possible TCDD cardiotoxicity, we studied the effect of TCDD five days after treatment (10 micrograms/kg of body weight; single dose given i.p. in corn oil) on the contractility of guinea pig right ventricular papillary muscle. Controls were treated with corn oil. TCDD treatment significantly decreased beta-adrenergic responsiveness. In papillary muscles from TCDD-treated guinea pigs, the positive inotropic effect of isoproterenol (0.03-0.3 microM) was decreased by a mean of 65% (P less than 0.001), and the enhancement in the velocity of relaxation was 60% less than in the controls (P less than 0.05). On the other hand, TCDD treatment did not alter the positive inotropic effect of lower concentrations of isoproterenol (0.1-10 nM). After TCDD, responsiveness to low-frequency stimulation (0.1 and 0.25 Hz) was enhanced, responsiveness to increases in extracellular Ca2+ concentration was attenuated, and isoproterenol-elicited aftercontractions in K+-depolarized preparations were increased in magnitude. Collectively, the latter findings suggest that in addition to decreasing beta-adrenergic responsiveness, TCDD increases the intracellular Ca2+ concentration in papillary muscle. Finally, slow Ca2+ channels were not blocked after TCDD treatment, inasmuch as isoproterenol restored contractility equally effectively in K+-depolarized TCDD-treated and control papillary muscles. Our findings indicate that TCDD causes a specific pattern of cardiac dysfunction in a mammalian species, selectively augmenting or decreasing different cardiac responses. The cardiac changes are consistent with reported membrane effects of TCDD; further, they suggest that the heart may be a major target organ for TCDD toxicity.

Animals↗

Activation of the third complement component (C3) and C3a generation in cardiac anaphylaxis: histamine release and associated inotropic and chronotropic effects.

Activation of the complement system with generation of C3a and C5a anaphylatoxins occurs during immediate hypersensitivity reactions; furthermore, the administration of C3a and/or C5a into isolated hearts causes a dysfunction that closely resembles cardiac anaphylaxis. To determine whether complement is activated and anaphylatoxins are generated in the course of immediate hypersensitivity reactions of the heart, we have challenged presensitized isolated guinea pig atria and papillary muscles with the specific antigen in the presence of a source of complement. We have found that the anaphylactic reaction of these cardiac preparations is characterized by complement activation and C3a generation, as well as by histamine release and positive inotropic and chronotropic effects. The amounts of C3a generated and histamine released directly correlated with the extent of C3 consumption. Furthermore, when C3a and C5a inactivation by serum carboxypeptidase N was prevented by DL-2-mercapto-methyl-3-guanidino-ethylthiopropanoic acid, anaphylactic histamine release was enhanced, and chronotropic and inotropic responses were potentiated and prolonged. Notably, the administration of C3a to nonsensitized guinea pig atria and papillary muscles caused positive chronotropic and inotropic effects, which were associated with histamine release and were antagonized by the H2 receptor blocker cimetidine, thereby mimicking the effects of anaphylaxis. Our findings indicate that complement activation and anaphylatoxin generation are typical of cardiac anaphylaxis and suggest that anaphylatoxins function as mediator-modulators of immediate hypersensitivity reactions of the heart.

Anaphylaxis↗

Positive inotropic effect of histamine on guinea pig left atrium: H1-receptor-induced stimulation of phosphoinositide turnover.

The purpose of this study was to investigate the mechanism of histamine's H1-receptor-mediated positive inotropic effect, a response which is not associated with an increase in cyclic AMP levels. We found that the concentration-response curve for the positive inotropic effect of histamine on cavian left atrium was similar to that of the alpha-1 agonist phenylephrine, in terms of slope and maximum response. Additionally, both agents slightly prolonged time-to-peak tension and relaxation times. In contrast, the concentration-response relationship for the beta-agonist isoproterenol, whose positive inotropic effect is mediated by an increase in cyclic AMP, had a steeper slope and a much greater maximum. Furthermore, isoproterenol abbreviated time-to-peak tension and relaxation times. As reported previously for alpha-1 agonists, the development of the contractile response to a submaximal histamine concentration (10 microM) coincided with a rapid increase in left atrial tissue levels of inositol triphosphate. The concentration-response curves for histamine effects on contractility and phosphoinositide (PI) turnover were both unaffected by the H2-antagonist tiotidine, but were shifted markedly to the right by the H1-antagonist pyrilamine. High-performance liquid chromatography techniques were applied to resolve the various inositol mono-, di- and tri-phosphate isomers and to assess the possible production of higher phosphates (IP4, IP5 and IP6) in control and histamine-treated (10 microM) atria. Under both conditions IP products were qualitatively similar, but quantitatively greater after treatment with histamine; these products included inositol(1)phosphate, inositol(4)phosphate,inositol(1,4)diphosphate and inositol(1,4,5)triphosphate. No evidence of higher phosphate production was obtained.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Adenosine promotes histamine H1-mediated negative chronotropic and inotropic effects on human atrial myocardium.

Because histamine and adenosine are coreleased from the ischemic heart, we investigated the effects of their interaction on human myocardium. Surgical specimens of human right atrium (i.e., pectinate muscles) responded to histamine with increases in spontaneous rate and contractile force. Adenosine, and the A1-selective adenosine agonist N6-cyclopentyladenosine (CPA), reduced the spontaneous rate and suppressed the positive chronotropic and inotropic effects of histamine. CPA was more potent than adenosine in slowing the spontaneous rate and in suppressing histamine's positive chronotropic effect, suggesting that the responses to CPA and adenosine are A1-mediated. CPA was also more potent than adenosine in attenuating histamine's positive inotropic effect on human ventricular papillary muscle. The adenosine-induced suppression of histamine's effects on pectinate muscles was mimicked by carbachol, which like adenosine is known to attenuate H2-mediated histamine-induced adenylate cyclase activation. The H1-selective histamine antagonist pyrilamine potentiated histamine's chronotropic and inotropic responses, and inhibited the attenuation of these responses by adenosine or carbachol. In contrast, pyrilamine failed to modify the adenosine-induced attenuation of the cardiac stimulatory effects of dimaprit, an H2-selective histamine agonist. Our data suggest that adenosine-induced suppression of histamine's positive chronotropic and inotropic effects on human myocardium results both from an A1-mediated attenuation of H2-stimulatory effects and from the uncovering of H1 negative chronotropic and inotropic effects. Thus, the results of the histamine-adenosine interaction may exceed the "retaliatory" purpose of adenosine release and uncover H1-mediated myocardial depression.

Adenosine↗

Negative inotropic effect of platelet-activating factor: association with a decrease in intracellular sodium activity.

Platelet-activating factor (PAF) is an autacoid whose cardiovascular actions include a potent negative inotropic effect. The mechanism of this decrease in myocardial contractility is still at issue, as both a decrease and an increase in trans-sarcolemmal Ca++ influx have been reported. Because changes in intracellular sodium activity (aiNa) are known to influence myocardial contractility, we investigated whether PAF affects aiNa. Thus, we have measured contractile responses to PAF (1 nM-1 microM) in isolated guinea pig right ventricular papillary muscles paced at constant rate, and recorded transmembrane action potential and aiNa with conventional and sodium-selective microelectrodes, respectively. Our findings suggest that PAF does not affect slow inward Ca++ current, because PAF neither affected nor prevented histamine-induced restoration of contractile responses in K+-depolarized papillary muscles. On the other hand, we found the negative inotropic effect of PAF to be associated with a shortening of the action potential duration and with a decrease in aiNa. The specific PAF antagonist compound CV-3988 inhibited all three electro-mechanical responses. Our findings imply that the decrease in contractile force caused by PAF may depend on the reduction in aiNa; as aiNa falls, intracellular Ca++ may be lost via the Na+/Ca++ exchange and contractility decreases. The shortening of the action potential duration by PAF may reflect a decrease in Na+ influx and the consequent reduction in aiNa.

Action Potentials↗

Peptidoleukotrienes induce an endothelium-dependent relaxation of guinea pig main pulmonary artery and thoracic aorta.

The purpose of our investigation was to assess the role of the endothelium in the vasomotor effects of leukotrienes. Norepinephrine-preconstricted rings isolated from guinea pig main pulmonary artery and thoracic aorta responded to LTC4 and LTD4 with a concentration-dependent relaxation. In endothelium-denuded rings, both LTC4 and LTD4 caused a concentration-dependent contraction. The LTD4 receptor antagonist ICI 198,615 inhibited both LTC4- and LTD4-induced relaxation and contraction. Inhibition of gamma-glutamyl transpeptidase with AT-125 prevented the effects of LTC4, but not those of LTD4. The relaxant effect of LTD4 was not modified by indomethacin, but was abolished by methylene blue. We conclude that: 1) LTD4 induces a receptor-mediated endothelium-dependent relaxation of cavian pulmonary artery and aorta; 2) the vasorelaxant effect of LTC4 requires its conversion to LTD4; 3) the vasorelaxant effect of LTD4 is unrelated to PGI2 release, and is probably due to the release of an "EDRF"; 4) the removal of the endothelium reveals a direct receptor-mediated vasoconstricting effect of leukotrienes.

Animals↗

Adenosine antagonizes the histamine-induced stimulation of human atrial myocardium: protection by H1-receptor blockade.

The inotropic effect of histamine on the human myocardium consists of two opposing components: positive, H2-mediated, and negative, H1-mediated. Because adenosine is known to antagonize histamine H2-responses, we assessed whether adenosine may unmask H1-mediated histamine responses in human myocardium. We found that adenosine modulates the stimulatory effects of histamine on pectinate muscles isolated from human right atrium and converts them as a function of its concentration from positive to negative. Further, histamine potentiated the tendency of adenosine to induce cardiac arrest. The H1-blocker pyrilamine antagonized the adenosine-induced suppression of the positive inotropic and chronotropic effects of histamine. Thus, our data indicate that the negative inotropic and chronotropic effects of histamine in the presence of adenosine result in part from an antagonism of H2-mediated increases in rate and contractility, and in part from an unmasking of H1-mediated decreases in the same parameters. Adenosine and histamine may be co-released in response to hypoxia or ischemia. In spite of the protection that adenosine may afford the human myocardium against excessive histamine stimulation, adenosine may also unmask the inhibitory actions of histamine, promoting dysrhythmia, and negative inotropic and chronotropic effects.

Adenosine↗

Negative inotropic effect of platelet-activating factor on human myocardium: a pharmacological study.

Because platelet-activating factor (PAF) has prominent depressant effects on cardiac contractility in various mammalian species, we assessed the negative inotropic effect of PAF on non-coronary perfused human right atrial pectinate muscles paced at constant rate. We found that PAF is a potent negative inotropic agent (EC50 approximately equal to 160 pM), whose action is unmodified by atropine, indomethacin and the leukotriene receptor antagonist compound FPL 55712. The negative inotropic effect of PAF was, however, antagonized by drugs known to inhibit PAF-induced platelet aggregation: the order of relative potency was SRI 63-441 greater than CV-3988 greater than alprazolam greater than or equal to triazolam; i.e., the same order in which these compounds antagonize the effects of PAF on platelets. Thus, the potent negative inotropic effect of PAF on human myocardium is independent of coronary flow changes, involves neither cholinergic mechanisms nor arachidonate metabolites and is probably mediated by specific receptors.

Calcium↗

IgE-mediated hypersensitivity in human heart tissue: histamine release and functional changes.

In experiments described herein, it was observed that IgE-mediated hypersensitivity can result in significant histamine and thromboxane release from human myocardium, suggesting that the human heart may participate as a target organ in allergic reactions. Muscle units (pectinate muscles) were isolated from human atrial appendages, removed routinely during corrective cardiac surgery, and were allowed to beat spontaneously in a tissue bath. Remnants of each atrial specimen were chopped and added to the tissue bath. Challenge of the atrial tissue with goat antiserum to human myeloma IgE caused histamine and thromboxane B2 release and marked increases in contractility and spontaneous rate. In contrast, challenge with nonspecific goat antiserum or with antiserum from which anti-IgE antibodies had been removed caused neither mediator release nor changes in rate or contractility. The histamine H2-receptor antagonist cimetidine inhibited the inotropic and chronotropic changes but not the histamine release.

Adult↗

Sodium-conducting channels in cardiac membranes in low calcium.

With no Ca in the patch electrode, two kinds of channels conduct Na in spontaneously beating embryonic chick heart cells. One channel conducts Na primarily during the upstroke of the action potential and is blocked by tetrodotoxin (TTX). The other channel conducts Na primarily during the late plateau and early repolarization phase of the action potential, but only in Ca concentrations below 10(-6) M. This second channel is TTX-insensitive and has a conductance of 50 to 90 pS, depending upon the interpretation of open-channel flickering. These two Na-conducting channels correspond to the channels that normally carry the fast Na current (INa) and the slow Ca current (Isi).

Action Potentials↗