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Characterization of a novel 5-HT4 receptor antagonist of the azabicycloalkyl benzimidazolone class: DAU 6285.

Three chemical classes of serotonin 5-HT4 receptor agonists have been identified so far: 5-substituted indoles (e.g. 5-HT), benzamides (e.g. renzapride) and benzimidazolones (e.g. BIMU 8). In a search for 5-HT4 receptor antagonists, we have discovered that the benzimidazolone derivative DAU 6285 (for structure see text), is 3-5 times more potent than tropisetron in blocking 5-HT, renzapride and BIMU 8 induced stimulation of adenylate cyclase activity in mouse embryo colliculi neurons. Schild plot analysis yielded Ki values of 220, 181 and 255 nmol/l, respectively. In addition, DAU 6285 showed poor activity as a 5-HT3 receptor ligand with respect to tropisetron, as demonstrated by in vitro binding studies (Ki, 322 vs 2.8 nmol/l) and by its antagonistic activity in the Bezold-Jarisch reflex test (ID50, 231 vs 0.5 micrograms/kg, i.v.). No significant binding (Ki greater than 10 mumol/l) of DAU 6285 to serotonergic 5-HT1A, 5-HT1B, 5-HT1C, 5-HT1D, and 5-HT2 receptors as well as to adrenergic alpha 1, alpha 2, dopaminergic D1, D2 or muscarinic M1-M3 receptor subtypes was found. The data indicate that DAU 6285 has a somewhat higher affinity than tropisetron for 5-HT4 receptors, a property confirmed in functional tests, and much lower affinity than tropisetron for 5-HT3 receptors. The compound represents a new interesting tool for investigating the pharmacological and physiological properties of 5-HT4 receptors.

Animals↗

5-HT4 receptor activation induces relaxation and associated cAMP generation in rat esophagus.

Changes in mechanical events and intracellular levels of cAMP induced by the activation of the 5-HT4 receptor were investigated in the rat esophagus tunica muscularis mucosae preparation. Serotonin (5-HT) and 5 methoxytryptamine (5-MOT; 5-HT4 agonist) caused concentration-related relaxation responses, while 5-carboxamidotryptamine (5-CT; 5-HT1 agonist), 1-(2,5-dimethoxy-4-iodophenyl)-2-amino-propane (DOI; 5-HT2 agonist) and 2-methyl-serotonin (2-methyl-5-HT; 5-HT3 agonist) were less active. The prokinetic agents, cisapride and renzapride also induced concentration-dependent relaxation of rat esophagus which was intermediate to 5-HT and 5-MOT in potency. The relaxation was not due to activity at receptors other than the 5-HT4 since methysergide (5-HT1 and 5-HT2 antagonist) and granisetron (5-HT3 antagonist) did not block the relaxant response to 5-HT while ICS 205930 (5-HT4 antagonist) antagonized this response (pA2 = 6.45). Serotonin also caused concentration-related increases in tunica muscularis mucosae cAMP with the rank order of efficacy of 5-HT agonists in raising tissue cAMP levels reflecting their relaxant activities (5HT greater than or equal to 5-MOT greater than 5-CT greater than DOI = 2-methyl-5-HT = control). Enhancement of cAMP concentrations was also observed following renzapride treatment. This cAMP relaxation response was specific for 5-HT4 receptor activation as demonstrated by the lack of ICS 205930 inhibition of rat esophagus relaxation caused by isoproterenol, 16,16-dimethyl-prostaglandin E2 and forskolin.(ABSTRACT TRUNCATED AT 250 WORDS)

5-Methoxytryptamine↗

5-Hydroxytryptamine (5-HT) mediates potent relaxation in the sheep isolated pulmonary vein via activation of 5-HT4 receptors.

1. We investigated the potent 5-hydroxytryptamine (5-HT)-mediated vasorelaxation of the sheep pulmonary vein. Here we present evidence that this response is due to activation of 5-HT4 receptors. 2. 5-HT (1-1000 nM) caused concentration-dependent, maintained relaxations (pEC50 = 8.4 +/- 0.1) of isolated rings of sheep pulmonary vein pre-contracted with endothelin-1 (3 nM). 3. The relaxation response to 5-HT was unaffected by either removal of the endothelium or by inhibition of NO-synthase by NG-nitro-L-arginine (100 microM). 4. Ketanserin, methiothepin, methysergide and MDL 72222 at concentrations that selectively block 5-HT2, 5-HT1-like and 5-HT3 receptors respectively, had no effect on the concentration-relaxation curve to 5-HT. 5. ICS 205-930 (1-10 microM) competitively antagonized the concentration-relaxation curve to 5-HT with a pA2 of approximately 6.7. 6. Increasing the concentration of ICS 205-930 from 10 to 30 microM did not cause a further rightward shift of the 5-HT concentration-relaxation curve. The pEC50 of 6.50 for 5-HT in the presence of ICS 205-930 (30 microM) was taken as an estimate of the affinity of 5-HT for 5-HT1-like receptors since methiothepin (10 nM) unmasked further competitive inhibition of 5-HT in the presence of this concentration of ICS 205-930. 7. Other 5-HT agonists including 5-carboxamidotryptamine (5-CT), alpha-methyl-5-HT and BIMU 8 (but not 2-methyl-5-HT) also relaxed the pulmonary vein.The response to 5-CT was inhibited by methiothepin (10 nM) and methysergide (100 nM) but unaffected by ICS 205-930 (30 microM), whilst that toa-methyl-5-HT and BIMU 8 was unaffected by methiothepin (10 nM) but blocked by ICS 205-930(estimated pKB values of 6.4 and 6.9 respectively). Relaxation curves to both 5-HT and BIMU 8 were unaffected by cocaine (6 microM).8. In conclusion, these results indicate that the sheep pulmonary vein possesses 5-HT4 receptors that mediate potent endothelium-independent relaxation. 5-HT,-like relaxant receptors are also present in this tissue but 5-HT has a lower affinity at these receptors. This preparation may thus provide a robust and sensitive bioassay for future development of selective 5-HT4 receptor agonists and antagonists.

Animals↗

Characterization of homologous 5-hydroxytryptamine4 receptor desensitization in colliculi neurons.

Exposure of mouse colliculi neurons to selective 5-hydroxytryptamine (5-HT)4 agonists was accompanied by a rapid desensitization of the receptor-stimulated adenylyl cyclase response. Half-maximal desensitization occurred after 2 min. Only exposure of neurons to selective 5-HT4 agonists led to a potent desensitization of the 5-HT4-mediated response. Neurons exposed to other agents, like isoproterenol, vasoactive intestinal peptide, or forskolin, that increase cAMP levels did not undergo any desensitization of 5-HT4 receptors. Activation of protein kinase A with either 8-bromo-cAMP or dibutyryl-cAMP or application of inhibitors of protein kinase A-dependent phosphorylation did not change the rate of 5-HT4-induced desensitization. No shift to lower potency of 5-HT4 agonists in the concentration-response curve was observed. These results suggest that 5-HT4 receptor agonists induced homologous but not cAMP-mediated heterologous desensitization. A good correlation was found between the affinities of nine 5-HT4 agonists and their abilities to desensitize the adenylyl cyclase response. This may indicate that homologous desensitization is a function of the mean occupancy time of the receptors by agonists. When permeabilized neurons were loaded with heparin, an inhibitor of the beta-adrenergic receptor kinase (beta ARK), 5-HT4 receptor desensitization was reduced by 30-40%. Interestingly, Zn2+, an other inhibitor of beta ARK, totally prevented 5-HT4-induced desensitization. Pretreatment of neurons with concanavalin A, reported to inhibit sequestration of beta-adrenergic receptors from the cell surface, reduced the desensitization process by 70%. These data suggest that both sequestration and phosphorylation by beta ARK, or another specific agonist-dependent receptor kinase, are involved in homologous desensitization of 5-HT4 receptors coupled to adenylyl cyclase.

Animals↗

Rabbit isolated renal artery contractions by some tryptamine derivatives, including 2-methyl-5-HT, are mediated by a 5-HT1-like receptor.

1. Despite the fact that 5-hydroxytryptamine (5-HT)-induced contractions of the rabbit isolated renal artery are mediated by a receptor belonging to the heterogeneous 5-HT1-like category, we observed that the so-called selective 5-HT3 receptor agonist, 2-methyl-5-HT, caused a concentration-dependent contraction of this vessel. This study was therefore undertaken to analyze the effects of 2-methyl-5-HT in the renal artery segments, either quiescent or precontracted with U46619 (10(-7) M). alpha-Methyl-5-HT and 5-methoxytryptamine, which have high affinities for 5-HT2 and 5-HT4 receptors, respectively, were used for comparison. 2. In the precontracted vessel segments, the maximum contractile responses obtained with 2-methyl-5-HT, alpha-methyl-5-HT, 5-methoxytryptamine and 5-HT were similar to those in the quiescent segments. However the pD2 values were higher in the precontracted segments, making them about 4-100 fold more sensitive. 3. Neither MDL 72222 (10(-6) M) nor tropisetron (3 x 10(-6) M) suppressed renal artery contractions elicited by 5-HT, 2-methyl-5-HT, alpha-methyl-5-HT or 5-methoxytryptamine, thus ruling out the involvement of 5-HT3 as well as 5-HT4 receptors. 4. On the other hand, both methiothepin (10(-8) and 10(-7) M) and ketanserin (10(-7) and 10(-6) M) caused a rightward shift of agonist concentration-effect curves.The two antagonists had similar pA2 values against the different agonists tested on either quiescent or precontracted vessels, but ketanserin (apparent pA2: 6.6 to 7.0) was between 20-100 fold less potent than methiothepin (apparent pA2: 8.4 to 8.8).5. The results of this functional study permit us to conclude that the contractile effects of 2-methyl-5-HT as well as ct-methyl-5-HT and 5-methoxytryptamine on the rabbit isolated renal artery are mediated by a 5-HT1-like receptor. Since, in addition, the reported ligand binding affinity of 2-methyl-5-HT at 5-HT3 receptors is similar to both the ligand binding affinity and the functional pD2 at 5-HTI sites, this compound cannot be regarded as a selective 5-HT3 receptor agonist. Similarly, a-methyl-5-HT and 5-methoxytryptamine have only a limited selectivity for 5-HT2 and 5-HT4 receptors, respectively.

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

The 5-HT4 receptor subtype inhibits K+ current in colliculi neurones via activation of a cyclic AMP-dependent protein kinase.

1. The aim of the present study was to examine the effect of 5-hydroxytryptamine (5-HT) on K+ current in primary culture of mouse colliculi neurones and to identify the 5-HT receptor subtype that could be involved in this effect. 2. The voltage-activated K+ current of the neurones was partially blocked by 8-bromo adenosine 3':5'-cyclic monophosphate (8-bromo-cyclic AMP). This effect was mimicked by 5-HT and the action of 5-HT could be antagonized by H7, a non specific protein kinase inhibitor, and by PKI, the specific cyclic AMP-dependent protein kinase blocker. 3. A similar cyclic AMP-dependent blockade of the K+ current was found with renzapride (BRL 24,924) and other 5-HT4 receptor agonists such as cisapride, BIMU 8, zacopride and 5-methoxytryptamine (5-MeOT). ICS 205,930, the classical 5-HT4 receptor blocker, could not be used in this study because it inhibited the studied K+ current by itself. However, the novel 5-HT4 receptor antagonist, DAU 6285 blocked the effects of 5-HT and renzapride on the K+ current. 4. The current was insensitive to the 5-HT1 and 5-HT3 receptor agonists (8-hydroxy-2-(di-n-propylamino) tetralin, RU 24,969, carboxamidotryptamine, 2-CH3-5-HT) as well as to 5-HT1, 5-HT2 and 5-HT3 antagonists (methiothepin, ketanserin, ondansetron [GR 38,032]). Moreover, these antagonists did not affect the actions of the tested 5-HT4 receptor agonists. 5. The present results show that part of the voltage-activated K+ current in mouse colliculi neurones is cyclic AMP-sensitive and the blockade of the current by 5-HT involves the 5-HT4 receptor subtype.The putative implication of 5-HT4 receptors in neuronal plasticity, via a blockade of K+ channels, is discussed.

Animals↗

5-Hydroxytryptamine stimulates cyclic AMP formation in the tunica muscularis mucosae of the rat oesophagus via 5-HT4 receptors.

The nature of 5-HT4 receptor coupling in the tunica muscularis mucosae of the rat oesophagus has been studied. 5-HT and renzapride stimulated cyclic AMP formation concentration dependently, with -log EC50 values of 7.1 and 6.8, respectively. Renzapride, relative to 5-HT, acted as a partial agonist. Tropisetron (ICS 205 930) and a novel 5-HT4 antagonist, SDZ 205 557, inhibited 5-HT-induced cyclic AMP production competitively, with pA2 estimates of 6.7 and 7.7, respectively. These data are consistent with the hypothesis that 5-HT4 receptors mediate relaxation of the smooth muscle cells of the tunica muscularis mucosae of rat oesophagus via activation of adenylyl cyclase.

Adenine↗

5-Hydroxytryptamine-induced increase in left ventricular dP/dtmax does not suggest the presence of ventricular 5-HT4 receptors in the pig.

Although 5-hydroxytryptamine (5-HT) increases porcine atrial force and rate via 5-HT4 receptors, its effect on left ventricular contractility is not known. Therefore, using the maximum rate of rise of left ventricular pressure (LVdP/dtmax) as an index of cardiac contractility, we have attempted to analyze the possible role of ventricular 5-HT4 receptors in the anaesthetized pig. The full agonists at 5-HT4 receptors, 5-HT and 5-methoxytryptamine (each 3, 10 and 30 micrograms.kg-1), and the beta-adrenoceptor agonist, isoprenaline (0.01, 0.03 and 0.1 micrograms.kg-1), increased heart rate, LVdP/dtmax and cardiac output. For a given degree of tachycardia, the increase in LVdP/dtmax by isoprenaline was substantially more than that observed with either 5-HT or 5-methoxytryptamine. The 5-HT4 receptor partial agonist, renzapride (3, 10, 30, 100 and 300 micrograms.kg-1), also increased heart rate and LVdP/dtmax dose-dependently. When the heart was paced at 150 beats.min-1, increases in LVdP/dtmax as well as cardiac output (except with the highest doses) by 5-HT, 5-methoxytryptamine and isoprenaline were clearly attenuated. However, the magnitude of attenuation of LVdP/dtmax responses by cardiac pacing was more marked in the case of 5-HT and 5-methoxytryptamine than with isoprenaline. The effects of renzapride (300 micrograms.kg-1) and tropisetron (0.3 and 3 mg.kg-1) on increases in heart rate and LVdP/dtmax by 5-HT, 5-methoxytryptamine and isoprenaline were also studied.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

A component of 5-HT-evoked depolarization of the rat isolated vagus nerve is mediated by a putative 5-HT4 receptor.

This study describes a component of 5-HT-evoked depolarization of the rat isolated vagus nerve which was unaffected by the 5-HT3 receptor antagonist ondansetron. A grease-gap extracellular recording technique was used. Ondansetron (10-100 nmol/l) displaced the 5-HT concentration-response curve to the right yielding a pA2 value of 8.6 (8.5-8.8), consistent with 5-HT3 receptor antagonism, and revealing a component of the 5-HT response which was resistant to ondansetron blockade. In the presence of ondansetron (100 nmol/l) the maximum depolarization in the resistant phase was 15.5 (12.6-19.2)% of the initial maximum response to 5-HT and the pEC50 value was 7.0 (6.7-7.3). The mechanism of the ondansetron-resistant component of the 5-HT response resembled a 5-HT4-receptor-effect in being absent in preparations equilibrated with 5-methoxytryptamine (10 mumol/l) and antagonised by ICS 205930 (tropisetron, pA2 6.4). 5-Methoxytryptamine alone was an agonist in the vagus nerve with a maximum response similar to that of the ondansetron resistant phase of the 5-HT response. Similarly renzapride alone evoked small depolarizations of this preparation but antagonized the ondansetron resistant phase of the 5-HT response (pA2 7.3-7.4). These effects of 5-methoxytryptamine and renzapride are also consistent with a 5-HT4 receptor mechanism. Ketanserin (1 mumol/l) and methysergide (1 mumol/l) had little effect on responses to 5-HT. The depolarization evoked by this putative 5-HT4 receptor mechanism was small but prolonged and appears to mask and after-hyperpolarizing phase of the 5-HT response in this tissue.

5-Methoxytryptamine↗

Evidence that 5-HT2 receptors predominantly mediate the contraction of the rat basilar artery to 5-hydroxytryptamine.

We characterised the 5-hydroxytryptamine (5-HT) receptor subtype which mediates the contraction of the rat isolated basilar artery, mounted in a myograph, by using agonists and antagonists for 5-HT1-like, 5-HT2, 5-HT3 and 5-HT4 receptors. The rank order of potency for a range of selective agonists was: 5-HT > alpha-methyl-5-HT > 5-carboxamidotryptamine > 2-methyl-5-HT > sumatriptan. The maximum contractions for these agonists (Emax) was less than for 5-HT while 8-hydroxy-2-(di-n-propylamino)tetralin (8-OH-DPAT) was devoid of contractile activity. Ketanserin antagonised the contractile effect of 5-HT in the rat basilar artery with a provisional pA2 estimate of 9.3 +/- 0.2. A similar antagonism was observed against alpha-methyl-5-HT. Ergometrine (0.01-1 microM) was devoid of any agonist activity but antagonised the contractile effect of 5-HT on the rat basilar artery with a provisional pKB of 8.7 (7.8-9.8, 95% confidence limits). The 5-HT3 and 5-HT4 receptor antagonist ICS 205930 (10 microM) did not alter the response to 5-HT. The high potency and efficacy of alpha-methyl-5-HT, poor effect of sumatriptan and antagonism of 5-HT by ergometrine and ketanserin, support the conclusion that the 5-HT2 receptors are primarily responsible for the 5-HT-induced contraction of rat basilar artery.

Animals↗

5-hydroxytryptamine4 receptor agonists facilitate cholinergic transmission in the circular muscle of guinea pig ileum: antagonism by tropisetron and DAU 6285.

The effect of 5-hydroxytryptamine (5-HT), BIMU 8 (endo-N-(8-methyl-8-azabicyclo [3.2.1.] oct-3-yl)-2,3-dihydro-3-(1-methyl)ethyl-2-oxo-1H-benzimidazole-1- carboxamide hydrochloride) and cisapride was studied on the electrically-induced neurogenic cholinergic twitch contractions in the guinea pig ileum circular muscle. These compounds caused a concentration-dependent increase in the amplitude of submaximal twitch contractions with the following rank order of potency: 5-HT greater than BIMU 8 = cisapride. The effect of 5-HT was competitively antagonized by tropisetron (ICS 205-930) (apparent pA2 value: 6.4), suggesting an interaction at 5-hydroxytryptamine4 (5-HT4) receptors. The novel benzimidazolone derivative DAU 6285 (endo-6-methoxy-8-methyl-8-azabicyclo [3.2.1.] oct-3-yl-2,3-dihydro-2-oxo-1H-benzimidazole-1-carboxylate hydrochloride), antagonized the effect of 5-HT, BIMU 8 and cisapride with apparent pA2 values in the range 7.1-7.3. Our findings demonstrate that cholinergic neurones innervating the circular coat are endowed with excitatory 5-HT4 receptors. DAU 6285 is approximately 5-9-fold more potent than tropisetron as antagonist at these receptors.

Animals↗

Involvement of non-classical 5-HT receptor in serotonin and cisapride induced secretion in hen colon.

1. In hen colon 5-HT induces a tetrodotoxin-resistant, bumetanide-sensitive, chloride secretion, positively coupled with adenylate cyclase activity. 2. The 5-HT receptor mediating this response seems non-classical since it cannot be blocked by 5-HT1-like, 5-HT2 or 5-HT3 antagonists. 3. Effects are presented of new putative 5-HT agonists and antagonists on short circuit current and cord conductance in the hen colon, using the Ussing chamber technique. 4. The substituted benzamides, cisapride and BRL 24924, induced a dose-dependent short circuit currents but both with less potency than 5-HT. 5. Cisapride mediated this dose-dependent bumetanide sensitive response mainly by release of acetylcholine, since atropine reduced cisapride response by 70%. 6. Neither BRL 24924, 5-HTP-DP, ketanserin, ICS 205-930, prazosin, yohimbine, atropine nor piroxicam, covering the 5-HT1P, 5-HT2P, 5-HT2, 5-HT3, 5-HT4, adrenergic and muscarinic receptor types and the prostaglandin synthesis, altered 5-HT induced increases in short circuit current and cord conductance. 7. Results suggest (a) cisapride mediates it's response mainly by releasing acetylcholine, which then stimulates muscarinic receptors to release 5-HT. (b) Involvement of a non-classical 5-HT receptor subtype in 5-HT induced chloride secretion in hen colon.

Acetylcholine↗

From serotonin receptor classification to the antimigraine drug sumatriptan.

After the synthetic serotonin 5-hydroxytryptamine (5-HT) became available in the early 1950s, attempts were soon under way to study the nature of 5-HT receptors. Using the guinea-pig isolated ileum, Gaddum and Picarelli (1957) suggested that 5-HT-induced contractions were mediated by a morphine-sensitive "M" receptor located on the parasympathetic ganglion and a dibenzyline-sensitive "D" receptor located on the smooth muscle. Though this classification ws used during the next three decades, it was realized that some effects of serotonin, for example vasoconstriction within the carotid vascular bed, were not mediated by either "M" or "D" receptors. When radioligand binding studies led to the identification of 5-HT1 and 5-HT2 "receptors" in the rat brain membranes, it became increasingly apparent that the two receptor classifications were not identical. Thus, a new framework for serotonin receptor nomenclature and classification was proposed: 5-HT1-like (5-HT1), 5-HT2 (formerly "D") and 5-HT3 (formerly "M") receptors. At the present time, several subtypes of 5-HT1 receptors as well as a 5-HT4 receptor are also recognized. As the serotonin receptor classification was emerging to indicate that carotid vasoconstriction by serotonin is mediated by a subtype of 5-HT1 receptors, on the migraine front it was being suggested that the disease is associated with vasodilation within the cranial extracerebral circulation and deranged serotonin metabolism and that certain antimigraine drugs caused a selective carotid vasoconstriction, probably via serotonin receptors. Therefore, Humphrey and colleagues conceived that synthesis of serotonin derivatives may lead to a compound that would elicit highly selective carotid vasoconstriction and abort migraine attacks. Indeed, via the synthesis of 5-carboxamidotryptamine and AH25086, sumatriptan was designed. The drug acts as an agonist at the vasoconstrictor 5-HT1 receptor subtype and has proved highly effective in the therapy of migraine attacks.

Animals↗

Inhibition of [3H] gamma-aminobutyric acid release from guinea-pig hippocampal synaptosomes by serotonergic agents.

We studied the effects of (m-trifluoromethyl-phenyl)piperazine (TFMPP) and quipazine on the K(+)-evoked [3H]GABA release from guinea-pig hippocampal synaptosomes loaded with [3H]GABA.TFMPP and quipazine inhibited the K(+)-evoked release of [3H]GABA dose-dependently (IC50 = 153 and 123 microM, respectively). Serotonergic antagonists such as methiothepin (0.1, 0.3 and 1 microM), ketanserin (0.1, 0.3 and 1 microM), dihydroergotamine (0.1 microM), metergoline (0.1 and 0.3 microM), methysergide (0.3 microM), propranolol (1 microM) and yohimbine (1 microM) did not significantly alter the inhibitory effect of TFMPP on [3H]GABA release suggesting that neither 5-HT1 nor 5-HT2 receptors are involved in this process. By contrast, the effect of TFMPP was diminished by selective 5-HT3 receptor antagonist: MDL 72222 (0.3 microM), tropisetron (0.3 and 1 microM), ondansetron (0.3 microM) and metoclopramide (1 microM). Tropisetron (1 microM) and ondansetron (0.3 microM) also inhibited significantly the quipazine effect whereas methiothepin (1 microM), dihydroergotamine (0.1 microM), yohimbine (1 microM) and ketanserin (1 microM) were ineffective on the quipazine inhibition of [3H]GABA release. Our results show a serotonergic modulatory effect on the K(+)-evoked [3H]GABA release from guinea-pig hippocampal synaptosomes by receptors which are neither 5-HT1, 5-HT2 or 5-HT4. They appear to be pharmacologically related to the 5-HT3 type but different from the 5-HT3 ionic channel receptors.

Animals↗

Agonist action of indole derivatives at 5-HT1-like, 5-HT3, and 5HT4 receptors in vitro.

1. The potency of indole analogues has been studied, in vitro, at 5-hydroxytryptamine4 (5-HT4) receptors mediating contractions of guinea-pig ileum and relaxation of rat oesophagus. These have been compared to other 5-HT receptors in canine saphenous vein (5-HT1-like), rabbit aorta (5-HT2), and guinea-pig ileum (5-HT3). 2. At receptors mediating 5-HT4 responses in ileum and oesophagus, the rank orders of potency were similar. These rank orders differed from those observed at 5-HT1-like, 5-HT2, and 5-HT3 receptors. In particular, 5-hydroxy N,N, dimethyltryptamine but not 5-methoxy N,N, dimethyltryptamine acted as agonists at 5-HT4 receptors. At 5-HT1-like, 5-HT2 and 5-HT3 receptors these compounds were both active. 3. The 5-HT receptors mediating contractions of canine cephalic vein exhibited a rank order profile similar to that observed at receptors mediating contractions of canine saphenous vein, suggesting stimulation of a 5-HT1-like receptor. 4. The rank order of potency of the substituted indoles differed at 5-HT receptors mediating responses in canine saphenous vein, rabbit aorta and guinea-pig ileum (determined in the presence of 5-methoxytryptamine to desensitize 5-HT4 receptors), suggesting the presence of three distinct receptors. Indeed, at 5-HT3 receptors in the ileum, only three agonists (5-HT, 2-methyl-5-HT and 5-hydroxy N,N, dimethyltryptamine) elicited a response, while all remaining compounds were inactive. 5. It is concluded that rank orders of indole potency can prove useful in the delineation of 5-HT subtypes and together with differential antagonist affinities support the existence of four 5-HT receptor subtypes.

Animals↗

Pharmacological characterization of 5-hydroxytryptamine-induced excitation of afferent cervical vagus nerve in anaesthetized rats.

1. An excitatory response to 5-hydroxytryptamine (5-HT) was measured from the afferent vagus nerve of anaesthetized rats. Measurements were determined by an extracellular recording from the whole nerve. 2. Intravenous bolus injection of 5-HT (1.56-100 micrograms kg-1) evoked a dose-dependent excitation of afferent vagus nerve activity. This response was blocked not only by a selective 5-HT3 receptor antagonist, GR38032F (10 and 100 micrograms kg-1), but also by a 5-HT2 receptor antagonist, ketanserin (10 and 100 micrograms kg-1). 3. Both a 5-HT3 receptor agonist, 2-methyl-5-HT (3.12-100 micrograms kg-1), and a 5-HT2 receptor agonist, alpha-methyl-5-HT (3.12-50 micrograms kg-1), produced a dose-dependent excitation of afferent vagus nerve activity. These excitatory effects were antagonized by GR38032F (10 micrograms kg-1) and ketanserin (10 micrograms kg-1), respectively. 4. A 5-HT1 like receptor agonist, 5-carboxamidotryptamine (50 micrograms kg-1), and a putative 5-HT4 receptor agonist, 5-methoxytryptamine (100 micrograms kg-1), failed to produce excitatory effects on the afferent vagus nerve. 5. These results suggest that the 5-HT-induced excitatory response of the afferent vagus nerve might be mediated not only via 5-HT3 receptors but also via 5-HT2 receptors in anaesthetized rats. It is unlikely, however, that either 5-HT1-like or putative 5-HT4 receptors are involved in the excitatory response of the afferent vagus nerve to 5-HT.

Animals↗

Investigation of the 5-hydroxytryptamine receptor mediating the 'maintained' short-circuit current response in guinea-pig ileal mucosa.

1. 5-Hydroxytryptamine (5-HT) stimulated a biphasic increase in short-circuit current (SCC) in guinea-pig isolated ileal mucosa. The initial 'spike' response to 5-HT was inhibited by tetrodotoxin (0.3 microM). We have investigated the 5-HT receptor mechanism(s) controlling the second 'maintained' component of the response which remained after treatment with tetrodotoxin. 2. 5-HT stimulated concentration-related increases in SCC with an EC50 value of 5.4 microM. Isobutyl-methylxanthine (IBMX, 10 microM) produced a six fold leftward shift of this concentration-response curve, suggesting the involvement of a cyclic nucleotide(s) in these responses. 3. In the presence of IBMX, 5-HT stimulated reproducible increases in SCC with an EC50 value of 0.9 microM. The rank order of potency of indole agonists in these tests was 5-HT greater than or equal to 5-methoxytryptamine greater than 5-carboxamidotryptamine = alpha-methyl-5-HT much greater than 2-methyl-5-HT. 4. The substituted benzamides were partial agonists. Metoclopramide and cisapride produced approximately 20% of the 5-HT maximum, and renzapride and R,S-zacopride produced approximately 50% of the 5-HT maximum. Metoclopramide and cisapride inhibited the SCC responses to 5-HT with apparent pKB values of 4.8 and 7.0 respectively. 5. The SCC responses to 5-HT were not inhibited by antagonists selective for 5-HT1 (methysergide, methiothepin), 5-HT2 (ketanserin) or 5-HT3 (ondansetron, ICS205-930) receptors. 6. The SCC responses to 5-methoxytryptamine, 5-carboxamidotryptamine, alpha-methyl-5-HT and R,S-zacopride, but not 5-HT, were selectively inhibited by high concentrations of ICS205-930 with apparent pKB values of approximately 6.7. A possible interpretation of these results is that the 'maintained' SCC response to 5-HT is mediated by a heterogeneous population of 5-HT receptors. One of these receptors exhibits the characteristics of the putative 5-HT4 receptor.

Animals↗

8-hydroxy-2-(di-n-propylamino)tetralin-responsive 5-hydroxytryptamine4-like receptor expressed in bovine pulmonary artery smooth muscle cells.

Bovine pulmonary artery smooth muscle (SM) cells express a novel 5-hydroxytryptamine (5-HT) (5-HT4-like) receptor coupled to cAMP accumulation. cAMP radioimmunoassay established the agonist and antagonist profiles of this receptor. 5-HT (EC50 = 91 +/- 33 nM) and 5-methoxytryptamine were equipotent at the SM cell 5-HT receptor and both were more potent than 5-carboxamidotryptamine. Other tryptamine derivatives were less potent but remained full agonists. These findings are consistent with previous reports regarding 5-HT4 and 5-HT4-like receptors in the central nervous system. The most potent antagonists were the antidepressant compounds nortriptyline (IC50 = 177 +/- 153 nM) and zimelidine (IC50 = 202 +/- 101 nM). The 5-HT3 and 5-HT4 antagonist 3-tropanyl-indole-3-carboxylate (ICS 205-930) was also a competitive antagonist at this 5-HT4-like receptor (pA2 = 6.3). Antagonist affinities differed slightly at the SM cell receptor, compared with other 5-HT4 and 5-HT4-like receptors in the central nervous system. Nonetheless, the SM cell 5-HT4-like receptor displayed the same differential antagonist potencies as reported for these other receptors (ICS 205-930 > MDL 72222 and mianserin > ketanserin). 8-Hydroxy-2-(di-n-propylamino)tetralin (8-OH-DPAT) was the most potent agonist for this 5-HT4-like receptor (EC50 = 6.4 +/- 3.4 nM). 8-OH-DPAT-induced cAMP accumulation could be blocked by ICS 205-930 but not by the 5-HT1A antagonist 1-(2-methoxyphenyl)-4-[4-(2-pthalimido)butyl]piperazine hydrobromide, distinguishing the SM cell 5-HT receptor from 5-HT1A receptors. The mechanism of 5-HT-stimulated cAMP production was also investigated. First, GTP augmented basal and 5-HT-stimulated cAMP accumulation. Second, antisera to the carboxyl terminus of the alpha subunit of Gs, attenuated 5-HT-mediated adenylate cyclase activation. This established that 5-HT-stimulated cAMP accumulation in SM cells required GS. These findings suggest that SM cells express a novel 5-HT4-like receptor positively coupled to adenylate cyclase. An unexpected finding was that 8-OH-DPAT is a potent partial agonist. These studies suggest that there may be heterogeneity among 5-HT4-like receptors.

8-Hydroxy-2-(di-n-propylamino)tetralin↗