PubMed HealthSearch

Biomedical subjects

L Mantelli

Publications and source records attributed to L Mantelli.

At least 19 recordsLinked to original sources

The inhibitory effect of opioid and alpha 2-adrenoceptor agonists on cardiac sensory neurones is pertussis toxin-insensitive.

The role of pertussis toxin-sensitive G proteins on the alpha 2-adrenoceptor and mu-opioid receptor-mediated inhibition of the efferent function of capsaicin-sensitive neurones was investigated in guinea-pig atria pretreated with guanethidine. In the presence of atropine, CGP 20712A (2-hydroxy-5-(2-[hydroxy-3-(4-[(1-methyl- 4-trifluormethyl)1H-imidazol-2-yl]-phenoxy)propyl]aminoethoxyl+ ++)-benzamide) and prazosin, [D-Ala2,NMe-Phe4,Gly5-ol]enkephalin (DAGO, 0.1-3 microM) and 2-amino-6-allyl-5,6,7,8-tetrahydro-4H-thiazolo(4,5-d)azepine (BHT 920, 0.01-1 microM) reduced the positive inotropic effect induced by transmural stimulation of preparations obtained from control and from pertussis toxin-treated animals. These results suggest that pertussis toxin-sensitive G proteins are not involved in the inhibitory regulation of the efferent function of capsaicin-sensitive nerve terminals in cardiac tissue induced by alpha 2 and opioid receptor stimulation.

Adrenergic alpha-Agonists

Effects of thromboxane agonists on cardiac adrenergic neurotransmission.

The effects of thromboxane B2 (TxB2) and of two thromboxane mimetics, dl-(9,11), (11,12)-dimethano-TxA2 (ONO 11006) and 9,11-dideoxy-11,9-epoxymethano prostaglandin F2 alpha (U46619) on the cardiac response to adrenergic nerve stimulation in isolated guinea-pig atria were evaluated. All the agonists dose dependently reduced the positive inotropic effect induced by field stimulation, U46619 being the most active. The inhibitory effect of U46619 was reduced by the thromboxane receptor antagonists, sulotroban and AH 23848B. U46619 did not significantly reduce the positive inotropic effect induced by exogenous noradrenaline. However U46619 was unable to modify the tritium overflow induced by field stimulation in preparations preloaded with [3H]noradrenaline. In addition to this influence on adrenergic neurotransmission, U46619 also had a direct positive inotropic effect on cardiac contractility, which was antagonized by AH 23848B. These results indicate that U46619 reduces the cardiac response to sympathetic nerve stimulation and that is also has a direct stimulatory effect on cardiac muscle.

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

Beta 1- and beta 2-adrenoceptors in sheep cardiac ventricular muscle.

The presence of beta 2-adrenoceptors in the sheep ventricular myocardium was assessed by the radioligand binding technique and functional studies. In membrane preparations, the competition curve between [3H]-dihydroalprenolol and the selective beta 1-antagonist CGP 20712A (0.1 nM-1 mM) was clearly biphasic, and revealed the presence of two different binding sites showing an affinity (pKD) for CGP 20712A of 9.5 +/- 0.9 and 4.5 +/- 0.4, respectively. The relative proportion of beta 1:beta 2 adrenoceptors was about 70:30 in both the right and left ventricle. In ventricular trabeculae driven at 1Hz, isoprenaline (1-300 nM) caused a dose-dependent increase in the force of contraction, the maximum effect being 298 +/- 26 mg, associated with reduction of time to peak tension (t1, clinotropic effect) and relaxation time (t2, 298 +/- 26 mg, associated with reduction of time to peak tension (t1, clinotropic effect) and relaxation time (t2, lusitropic effect). The inotropic dose-response curve for isoprenaline was significantly shifted to the right by pretreatment of the preparations with 0.1 microM CGP 20712A or with the selective beta 2-antagonist ICI 118551 (50 nM). In the presence of CGP 20712A (0.1 microM), isoprenaline, up to a concentration of 10 microM, did not affect either t1 or t2; on the other hand, pretreatment of the preparations with ICI 118551 (50 nM) fully antagonized the clinotropic but not the lusitropic effect of isoprenaline. In the presence of CGP 20712A procaterol (0.01-10 microM), a beta 2-adrenoceptor agonist, induced a positive intropic effect which was not associated with any significant modifications in t1 or t2. This effect was completely abolished by ICI 118551 (50 nM). The positive inotropic action of isoprenaline (1 microM) was associated with a significant decrease in action potential duration measured at -60 mV (220 +/- 8 and 193 +/- 10 ms in the absence and presence of isoprenaline, respectively; P less than 0.05). In the presence of CGP 20712A (0.1 microM) alone, isoprenaline (1 microM) still induced a significant increase in contractility but the action potential profile was only slightly affected. The effects of isoprenaline were fully antagonized by the simultaneous presence of CGP 20712A and ICI 118551 (10 nM). It is concluded that both beta 1- and beta 2-adrenoceptors appear to coexist in sheep ventricular myocardium where their stimulation mediates a positive inotropic effect. However, their functional role on the relaxation phase of the twitch may be different.

Action Potentials

Positive inotropic effects of CGRP and isoprenaline: analogies and differences.

In guinea-pig isolated left atria, electrically stimulated at 1 Hz, isoprenaline and calcitonin gene-related peptide (CGRP) induced a positive inotropic effect in the same concentration range (0.3-100 nM). The increase in contractile tension induced by both agonists was associated with a reduction in time to peak tension and relaxation time. However CGRP was more active than isoprenaline in reducing the time to peak; this effect was more evident when the bath temperature was reduced from 30 degrees to 24 degrees C. The positive inotropic effects of isoprenaline and CGRP were potentiated by forskolin (30 nM), a direct activator of adenylcyclase; on the other hand, cholera toxin (1 microgram/ml), which irreversibly ribosylates Gs protein, did not modify the effect of CGRP, while antagonizing the concentration-response curve for isoprenaline. It is concluded that the increase in atrial contractile tension produced by isoprenaline and CGRP are linked to the adenylcyclase system in a different manner.

Animals

ATP modulates the efferent function of capsaicin-sensitive neurones in guinea-pig isolated atria.

1. The effect of adenosine triphosphate (ATP) and its stable analogues, alpha, beta-methylene-ATP and beta, gamma-methylene-ATP, on the efferent function of capsaicin-sensitive non-adrenergic, non-cholinergic (NANC) nerves was tested in guinea-pig isolated atria. 2. Transmural nerve stimulation of atria isolated from reserpine-pretreated guinea-pigs, in the presence of 1 microM atropine and 0.3 microM CGP 20712A, induced a transient positive inotropic effect attributable to calcitonin gene-related peptide (CGRP) release from NANC nerve endings. 3. ATP (1-30 microM) concentration-dependently reduced the cardiac response to transmural nerve stimulation, without affecting the inotropic response to 10 nM exogenous CGRP. The inhibitory effect of ATP was competitively antagonized by the P1-purinoceptor antagonist, 8-phenyltheophylline (8-PT, 1 microM), but was unaffected by the P2-purinoceptor antagonist, suramin (100 microM). 4. beta, gamma-methylene-ATP in the same concentration range as ATP, inhibited the cardiac response to transmural nerve stimulation. The inhibitory effect of beta, gamma-methylene ATP was antagonized by 1 microM 8-PT. The desensitizing agonist for P2-purinoceptors, alpha, beta-methylene ATP did not induce any inhibitory effect either on the cardiac response to transmural nerve stimulation or on the inhibitory effect curve for ATP. 5. The inhibitory effect of ATP on the NANC neurotransmission was inconsistently modified in the presence of 10 microM alpha, beta-methylene-adenosine diphosphate, an inhibitor of the 5'-ectonucleotidases. 6. These results demonstrate that ATP modulates the efferent function of cardiac NANC nerve endings through prejunctional inhibitory receptors belonging to the P1 type. The metabolic conversion of ATP to adenosine does not seem to be a pre-requisite for the ATP agonist activity.

Adenosine Diphosphate

Alpha-adrenoceptor modulation of the efferent function of capsaicin-sensitive sensory neurones in guinea-pig isolated atria.

1. Transmural nerve stimulation of guinea-pig atria, obtained from animals pretreated with reserpine (5 mg kg-1, i.p.), in the presence of atropine 1 microM and of the beta-adrenoceptor blocker CGP 20712A 1 microM, induced a positive inotropic effect which was reduced by the calcitonin gene-related peptide (CGRP) antagonist hCGRP-(8-37) and abolished by pretreatment with capsaicin 1 microM. 2. Noradrenaline concentration-dependently (0.01-10 microM) reduced the increase in cardiac contractility induced by transmural nerve stimulation. The inhibitory effect of noradrenaline was antagonized by yohimbine (0.5-1 microM), in a dose-dependent manner. Prazosin (0.5-1 microM) antagonized the effect of noradrenaline and this effect was independent of concentration. 3. In the presence of yohimbine, the lower part of the inhibitory-response curve for noradrenaline was slightly but significantly shifted by prazosin. A similar degree of antagonism was observed in the presence of 1 microM phenoxybenzamine. 4. The selective alpha 2 agonists BHT 920 and clonidine reduced, in the same concentration-range (0.01-1 microM), the cardiac response to transmural nerve stimulation in a yohimbine-sensitive fashion. 5. Phenylephrine (0.1-100 microM) and methoxamine (1-300 microM) also induced an inhibitory effect on transmural nerve stimulation. The effect of phenylephrine was antagonized by yohimbine (1 microM) more efficiently than by prazosin (0.5 microM). 6. These results are in keeping with the presence of inhibitory prejunctional alpha 2-adrenoceptors on cardiac sensory nerve endings which modulate the efferent function of capsaicin-sensitive neurones.

Adrenergic alpha-Agonists

Adenosine receptors involved in the inhibitory control of non-adrenergic non-cholinergic neurotransmission in guinea-pig atria belong to the A1 subtype.

We have previously shown that endogenous adenosine inhibits non-adrenergic, non-cholinergic (NANC) neurotransmission in isolated guinea-pig atria. In the present study the effect of adenosine analogues, such as N6 cyclopentyladenosine (CPA), 5' N-ethylcarboxamide adenosine (NECA), 2 chloroadenosine (2-CADO), R- and S-phenylisopropyladenosine (R- and S-PIA) on the cardiac response to transmural nerve stimulation has been tested in order to characterize the subtype of adenosine receptor involved in the inhibitory control of NANC neurotransmission. The effect of the adenosine antagonist 8-phenyltheophylline (8-PT) was then tested against CPA and NECA. The prototypical A-1 selective agonist CPA was the most active agonist, reducing the response to the stimulation of NANC nerves with an IC50 value of 2.8 nM; R-PIA, NECA and 2-CADO showed IC50 values of 9.5, 13.7 and 35 nM respectively. S-PIA was the least active agonist, showing an IC50 value (306 nM) about 30-fold greater than that of R-PIA (9.5 nM). None of the agonists tested was able to modify cardiac response to exogenous CGRP. Furthermore, 8-PT competitively antagonized the effect of CPA and NECA with very close pA2 values (6.77 +/- 0.01 and 6.63 +/- 0.08 respectively). From these findings we concluded that prejunctional inhibitory adenosine receptors on capsaicin sensitive sensory nerves of cardiac tissue belong to the A-1 subtype.

2-Chloroadenosine

Modulation by adrenergic transmitters of the efferent function of capsaicin-sensitive nerves in cardiac tissue.

In atrial preparations obtained from reserpine-pre-treated guinea-pigs, incubated in the presence of 1 microM atropine plus 1 microM CGP 20712A (a beta 1 blocking drug), a positive inotropic effect due to CGRP release from capsaicin-sensitive sensory neurons was induced by electrical field stimulation (EFS). This response was concentration-dependently reduced by noradrenaline (0.01-3 microM), neuropeptide Y (NPY, 3-300 nM) and adenosine triphosphate (ATP, 1-30 microM). On the other hand, the overflow of [3H]-noradrenaline from sympathetic nerve terminals induced by EFS in isolated atria obtained from normal untreated animals was not modified in 10 nM calcitonin gene-related peptide (CGRP). Substance P (SP) and neurokinin A (NKA), at concentrations ranging from 0.01 to 1 microM did not affect the cardiac response to field stimulation of adrenergic terminals of atrial tissue. These findings demonstrate that all the co-transmitters stored in adrenergic nerve terminals have a modulatory role on the efferent function of cardiac capsaicin-sensitive sensory neurons, while cardiac adrenergic neurotransmission is not influenced by the peptidergic transmitters released from sensory neurons.

Adenosine Triphosphate

Prejunctional prostanoid receptors on cardiac adrenergic terminals belong to the EP3 subtype.

1. The effects of prostaglandin E2 (PGE2) and of several synthetic prostanoids on the cardiac response to sympathetic nerve stimulation in guinea-pig atria have been evaluated. 2. PGE2 (0.01-100 nM), sulprostone (0.01-100 nM) and misoprostol (0.1-100 nM), but not butaprost (0.1-100 nM), dose-dependently reduced the increase in cardiac contractility induced by electrical field stimulation of sympathetic terminals. 3. The EP1 antagonist AH6809 (1 microM) did not modify the inhibition of cardiac response induced by PGE2, sulprostone and misoprostol. 4. In preparations preloaded with [3H]-noradrenaline, tritium overflow induced by electrical field stimulation was greatly and significantly reduced by 100 nM PGE2 and by 100 nM sulprostone. 5. These results indicate that PGE2 and other synthetic prostanoids reduce noradrenaline release from cardiac adrenergic nerve terminals acting on prejunctional inhibitory receptors belonging to the EP3 subtype.

Animals

Characterization of opioid receptors modulating the function of capsaicin-sensitive neurons in guinea-pig atria.

Transmural nerve stimulation of isolated atria, obtained from reserpine-pretreated guinea-pigs, in the presence of atropine and the beta 1-adrenoceptor-blocking drug CGP 20712A, induced a positive inotropic effect. [D-Ala2,N-Me-Phe4,Gly5-ol]enkephalin (DAGO), [D-Ala2,D-Leu5]enkephalin (DADLE), morphine and dynorphin dose dependently reduced the cardiac response to transmural nerve stimulation. The delta receptor selective agonist [D-Pen2,D-Pen5]enkephalin (DPDPE), and the kappa receptor agonist, U50488, were unable modify the response. The inhibitory effect of all the active opioid agonists was antagonized by naloxone but not by the selective delta and kappa opioid receptor antagonists, ICI 174.864 and MR 2266. These results suggest the presence on sensory nerve terminals of inhibitory opioid receptors belonging to the mu, but not to the delta and kappa subtypes.

3,4-Dichloro-N-methyl-N-(2-(1-pyrrolidinyl)-cycloh

Adenosine modulation of non-adrenergic non-cholinergic neurotransmission in isolated guinea-pig atria.

Transmural stimulation of non-adrenergic, non-cholinergic sensory nerves in guinea-pig atria, isolated from reserpine-pretreated animals, in the presence of atropine and the beta-adrenoceptor-blocking drug CGP 20712A, induced a positive inotropic effect. Adenosine (0.1-10 microM) concentration-dependently reduced the cardiac response to transmural nerve stimulation, without modifying the response to exogenous calcitonin gene-related peptide; the inhibitory effect of adenosine was antagonized by 1 microM 8-phenyltheophylline. Moreover, the cardiac response to field stimulation was enhanced by 8-phenyltheophylline (0.1, 1 microM) and by adenosine deaminase (1 microgram/ml), but was reduced by dipyridamole (1 microM). These findings indicate the presence of inhibitory adenosine receptors on cardiac sensory nerves and suggest a modulatory effect of endogenous adenosine on cardiac non-adrenergic, non-cholinergic neurotransmission.

Adenosine

Different effects of prostaglandins on adrenergic neurotransmission in atrial and ventricular preparations.

1. The effects of prostaglandin E2 (PGE2) and iloprost on the cardiac response to adrenergic nerve stimulation in guinea-pig atrial and ventricular preparations have been studied. 2. In guinea-pig isolated atria both PGE2 (0.1-10 nM) and iloprost (0.1-3 microM) concentration-dependently reduced the cardiac response to adrenergic nerve stimulation. 3. The inhibition of cyclo-oxygenase by indomethacin and acetylsalicylic acid potentiated the response to nerve stimulation in the atrial preparations. 4. Arachidonic acid (1-10 microM) reduced the response to nerve stimulation in atria. This effect was prevented by indomethacin and acetylsalicylic acid. 5. In guinea-pig ventricles PGE2 and iloprost were found to be effective at higher concentrations than in atrial preparations: arachidonic acid, indomethacin or acetylsalicylic acid did not modify the cardiac response to adrenergic nerve stimulation. 6. These results suggest a different modulator role for endogenous prostaglandins in atrial and ventricular tissue.

Animals

Effects of opioid drugs on capsaicin-sensitive neurones in guinea-pig atria.

Transmural nerve stimulation of isolated guinea-pig atria in the presence of atropine induced a biphasic positive inotropic effect but only a slow increase in contractility (NANC response) in atria obtained from 6-hydroxy-dopamine-pretreated animals. The latter effect disappeared after exposure of the preparations to capsaicin. The effects of some opioid peptides were investigated on NANC responses. [D-Ala2,D-Leu5]enkephalin (DADLE) and [D-Ala2,N-Me-Phe4,Gly5-ol]enkephalin (DAGO, 0.1-10 microM) inhibited the cardiac response to transmural nerve stimulation in a dose-dependent and naloxone-sensitive manner. Dynorphin-(1-13) and morphine, at 10-fold higher concentrations (1-10 microM), reduced the response in a naloxone-sensitive manner. Naloxone alone however did not affect the response. Opioid peptides were not able to reduce the positive inotropic effect induced by calcitonin gene-related peptide (CGRP), or the increase in cardiac contractility produced by capsaicin. These results suggest that opioid receptors exert a modulatory role on peripheral terminals of capsaicin-sensitive sensory nerves.

Animals

Indirect evidence for a role of prostaglandins as second messengers of the prejunctional effect of opioids in guinea-pig ventricular preparations.

The cardiac response to adrenergic nerve stimulation was dose dependently reduced in a statistically significant manner by 1-10 microM dynorphin-(1-13) in isolated atria, and by 0.1-1 microM dynorphin-(1-13) in guinea-pig ventricular preparations. The inhibitory effect of dynorphin was maintained in atria that had been pretreated with two cyclooxygenase inhibitors at concentrations that induce an 80% inhibition of the enzyme, namely indomethacin 3 microM and acetylsalicylic acid 200 microM. The inhibitory effect of dynorphin disappeared in similarly pretreated ventricular preparations. These results suggest that, whilst the mediation of the effect of dynorphin is carried out mainly by specific opioid receptors in the atrial section, in the ventricular tissue it occurs through the endogenous prostanoid system.

Animals