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Biomedical subjects

R Samardzić

Publications and source records attributed to R Samardzić.

At least 19 recordsLinked to original sources

Clonidine-induced emesis: a multitransmitter pathway concept.

The emetic effect of clonidine injected into the cerebral ventricles through chronically implanted cannulae was investigated in unanaesthetized cats. Clonidine (0.1-300 micrograms) induced dose-dependent and shortlasting emesis. The emesis induced by the supramaximal dose of clonidine (100 micrograms) was not abolished after the ablation of area postrema. Both the alpha 2 adrenoceptor blocking agent idazoxan and the mixed alpha 1 and alpha 2 adrenoceptor antagonist phenoxybenzamine, injected intracerebroventricularly, attenuated or abolished the emesis induced by clonidine (100 micrograms). On the other hand, the alpha 2 adrenoceptor blocking agent yohimbine, the alpha 1 adrenoceptor blocking drug prazosin and the non-selective beta-adrenoceptor antagonist propranolol, injected into the cerebral ventricles, had no significant effect on clonidine-induced emesis. The antimuscarinic drug atropine injected into the cerebral ventricles prevented the clonidine-induced emesis in a dose-dependent manner. The dopamine antagonist chlorpromazine, the 5-hydroxytryptamine blocking agent methysergide and the histamine H1 and H2 receptor antagonists, antazoline and cimetidine, injected intracerebroventricularly reduced or abolished the emesis produced by clonidine. The ganglionic blocking substance mecamylamine and the opioid antagonist naloxone, all injected into the cerebral ventricles, had no significant effect on clonidine-induced emesis. In cats pretreated with the intracerebroventricular competitive inhibitor of the synthesis of catecholamines, alpha-methyl-p-tyrosine, as well as with the inhibitor of acetylcholine synthesis hemicholinium-3, the emesis caused by clonidine was depressed or abolished. The clonidine-induced emesis was also abolished when catecholamine stores were depleted by intracerebroventricular reserpine. However, the clonidine-induced emesis was not significantly changed when 5-hydroxylryptaminergic nerve terminals were damaged by 5,6-dihydroxytryptamine. It follows, therefore, that cholinergic and noradrenergic mechanisms are of basic importance for the emetic action of clonidine. With regard to receptors, the emesis induced by clonidine injected into the cerebral ventricles, is mediated at least in part through alpha-adrenoceptors, muscarinic cholinoceptors, 5-hydroxytryptamine receptors and H1 and H2 histamine receptors. These receptors appear to be located mostly presynaptically and they transmit emetic impulses to neurones integrating them into emesis. However, the direct effect of clonidine on postsynaptic receptors cannot be excluded, particularly when muscarinic and 5-hydroxytryptamine receptors are implicated. Taken together, these results point to the existence of a multitransmitter pathway/s outside the area postrema, subserving the central regulation of emesis.

Adrenergic alpha-Agonists↗

The role of alpha-adrenergic mechanisms within the area postrema in dopamine-induced emesis.

Intracerebroventricular injection of dopamine (0.5-4.0 mg) produced dose-dependent and short-lasting emesis (1-8 min) in cats, which was abolished after ablation of the area postrema. Relatively selective alpha 2-adrenoceptor antagonists (yohimbine and idazoxan) and a mixed alpha 1- and alpha 2-adrenoceptor antagonist (tolazoline), but not a non-selective alpha 1-adrenoceptor antagonist (prazosin), injected intracerebroventricularly inhibited the emesis induced by intracerebroventricular dopamine. However, dopamine receptor antagonists (chlorpromazine, droperidol, spiperone, domperidone, triflupromazine, sulpiride and metoclopramide), an antimuscarinic drug (atropine), a ganglionic blocking agent (mecamylamine), an opioid receptor antagonist (naloxone) and a 5-HT receptor antagonist (methysergide), all injected intracerebroventricularly, had no significant effect on emesis evoked by intracerebroventricular dopamine. The emetic response to intracerebroventricular dopamine was attenuated in cats pretreated with intracerebroventricular reserpine, 6-hydroxydopamine, alpha-methyl-p-tyrosine and hemicholinium-3. It is postulated that dopamine-induced emesis is mediated through the release of noradrenaline acting at alpha 2-adrenoceptors and that it depends on the integrity of monoaminergic and possibly cholinergic structures within the area postrema. It appears, therefore, that the emetic effect of intracerebroventricular dopamine is mediated by adrenergic rather than dopaminergic mechanisms in the area postrema, at least in the cat.

Adrenergic alpha-Antagonists↗

The potentiation of cardiodepressant and hypotensive effects of bradykinin by enalapril and captopril both in vitro and in vivo.

1. Bradykinin (cumulative concentrations of 0.007-0.09 micrograms ml-1) produced a dose-related, but statistically insignificant depression of the isometric contraction of the isolated, spontaneously beating atria of the guinea-pig. The same concentrations of bradykinin did not change the atrial rate, but a tendency to a slight decrease was observed. 2. Enalapril (4.06 or 13.54 mumol l-1), produced a dose-related potentiation of the effect of the highest concentration of bradykinin on the isometric contraction. 3. Captopril (equimolar concentrations) also potentiated the effect of the highest concentration of bradykinin on the isometric contraction. This effect of captopril was not dose-related. 4. Both enalapril and captopril did not change the effect of bradykinin on the heart rate. 5. Bradykinin induced dose-related hypotensive responses in anaesthetized cats (0.03-1.0 microgram/kg b.w., i.v.) with a tendency towards bradycardia. 6. Enalapril (0.3 and 1.0 mg/kg b.w., i.v.) significantly potentiated bradykinin-induced hypotension and bradycardia. However, the potentiating effect of enalapril was not dose-dependent. 7. Captopril (0.1, 0.3 and 1.0 mg/kg b.w., i.v.) significantly potentiated bradykinin-induced hypotension and bradycardia. Also, the potentiating effect of captopril was not dose-dependent. 8. The failure of ACE inhibitors to potentiate the cardiodepressant and hypotensive effects of bradykinin in a dose-dependent manner is explained with some other mechanism(s) independent of ACE inhibition.

Anesthesia↗

Ablation of the area postrema and emesis.

The emetic action of dopamine, norepinephrine, epinephrine, nicotine, dimethylphenyl-piperazinium (DMPP), and 4-m-chlorophenylcarbamoyloxy-2-butynyltrimethylammonium (McN-A-343) injected intracerebroventricularly (i.c.v.) to the unanesthetized cat was investigated and compared. ED50 values (mg) were as follows: nicotine, 0.011; epinephrine, 0.047; norepinephrine, 0.57; DMPP, 0.9; dopamine, 1.66; and McN-A-343, 4.42. The most potent was nicotine, whereas the least active McN-A-343. On the other hand, DMPP produced the longest emetic response, about 30 min, while McN-A-343-induced emesis lasted up to 1 min. The ablation of the area postrema abolished the emetic response to i.c.v. dopamine, norepinephrine, epinephrine, nicotine, and DMPP. However, the emetic response to i.c.v. McN-A-343 was significantly reduced in cats with an ablated area postrema. Taken together, the results obtained show that the area postrema is almost always involved in the central regulation of emesis and that the area postrema represents, in most cats, a common site of confluence of different inputs subserving the emesis.

Animals↗

The area postrema and the hypertensive effect of angiotensin.

The intracerebroventricular administration of angiotensin II in pentobarbital-anesthetized cats produced dose-dependent increases in the arterial blood pressure without significant changes in the heart rate. The ablation of the area postrema significantly reduced, but did not abolish, the pressor effect of angiotensin injected into the cerebral ventricles. It follows, then, that the central pressor effect of angiotensin is dependent on the integrity of the area postrema and that this central site, at least in part, contributes to the pressor action of endogenous angiotensin.

Angiotensin II↗

Area postrema: cholinergic and noradrenergic regulation of emesis. A new concept.

In unanaesthetized cats the biochemical mechanisms and the functional characteristics of the emetic action of injection of noradrenaline and McN-A-343, a ganglionic muscarinic stimulant into the cerebral ventricle (i.c.v.) through chronically implanted cannulae were investigated. Both produced dose-dependent and shortlasting emetic response. The emesis evoked by noradrenaline was abolished, whereas the emesis induced by McN-A-343 was not completely blocked after ablation of the area postrema. Further, the emetic response to noradrenaline as well as to McN-A-343 was attenuated or blocked in cats pretreated with 6-hydroxydopamine (i.c.v.) and hemicholinium (i.c.v.); it was abolished in cats pretreated with reserpine (i.c.v.). On the other hand, the emetic response to i.c.v. noradrenaline and to i.c.v. McN-A-343 was not virtually altered in cats pretreated with bretylium (i.c.v.), alpha-methyl-p-tyrosine (i.c.v.) and 5,6-dihydroxytryptamine (i.c.v.). It is postulated that noradrenergic neurones as well as cholinergic axon terminals within the area postrema are necessary for the emetic action of noradrenaline, whereas cholinergic axon terminals within the area postrema subserve the emetic response to McN-A-343. A functional link between cholinergic terminals and noradrenergic neurones as well as a modulatory role of noradrenergic afferents on cholinergic afferents mediating emesis within the area postrema is further proposed. Thus, noradrenergic neurones might represent a common site of confluence of different inputs subserving the emesis in the area postrema. Finally, cholinergic terminals sometimes bypass this area and synapse in the emetic regions of the brainstem regulating emesis.

(4-(m-Chlorophenylcarbamoyloxy)-2-butynyl)trimethy↗

[TRH dissociates the aggressivity of vegetative and motor phenomena induced by carbachol in the cat].

In these experiments interaction of thyrotropin releasing hormone (TRH) and carbachol injected into the cerebral ventricles of unanaesthetized cats has been investigated. Intracerebroventricular (i.c.v.) carbachol as well as i.c.v. TRH produced emotional behaviour, autonomic and motor phenomena. The most impressive feature of i.c.v. carbachol was the aggressive behaviour, whereas that of i.c.v. TRH the autonomic changes. In cats treated with i.c.v. TRH, the aggressive behaviour, but the autonomic and motor changes of i.c.v. carbachol was potentiated. Since there is evidence that carbachol acts mainly on muscarinic M-2 receptors, the potentiation by TRH of aggressive behaviour, but not the autonomic and motor changes induced by carbachol could indicate heterogeneity of central muscarinic M-2 receptors.

Aggression↗

[Effect of guanabenz on the peristaltic reflex and on the spontaneous rhythmic movements of the ileum isolated from the rabbit: do the alpha-2-adrenoreceptors constitute a homogenous population?].

The inhibitory effect of the predominantly alpha-2 adrenoceptor agonist, guanabenz, on the peristaltic reflex and on the pendular movements of the rabbit isolated ileum was investigated. Guanabenz depressed or abolished the peristaltic reflex as well as the pendular movements. These effects were concentration-dependent. Guanabenz is much more potent inhibiting the peristaltic reflex (IC50 1 X 10(-7) M) than the pendular movements (IC50 1 X 10(-5) M). The choline ester, acetylcholine restored the peristaltic reflex and the anticholinesterase, eserine, restored the pendular movements previously abolished by guanabenz. During the blockade of the peristaltic reflex produced by guanabenz, the pendular movements were virtually not changed. It is therefore reasonable to suppose that the inhibitory effect of guanabenz reflects the different properties of alpha-2 adrenoceptors associated with cholinergic nerve terminals within the myenteric plexus and the longitudinal smooth muscle subserving the peristaltic reflex and the pendular movements.

Animals↗

Studies of thyrotropin-releasing hormone (TRH)-induced defecation in cats.

In unanesthetized cats, defecation produced by thyrotropin-releasing hormone (TRH) was investigated after its injection into the cerebral ventricle (ICV) through chronically implanted cannulae. TRH injected in doses from 0.1 to 1.0 mg into the cerebral ventricle evoked defecation which was not dose-dependent. The antimuscarinic drug, atropine, the ganglionic blocker, mecamylamine, the alpha and beta adrenergic blocking agents, yohimbine and propranolol, the dopamine antagonist, chlorpromazine, the 5-hydroxytryptamine antagonist, methysergide, and the antihistamine, antazoline, all injected into the cerebral ventricle had virtually no effect on the defecation evoked by TRH injected similarly. In cats pretreated with ICV reserpine, 5,6-dihydroxytryptamine and hemicholinium-3, the defecation induced by ICV TRH was not significantly changed. On the other hand, in cats pretreated with ICV 6-hydroxydopamine, the defecation caused by ICV TRH was potentiated. Therefore, it is concluded that TRH-induced defecation could not be related to central catecholaminergic, 5-hydroxytryptaminergic and cholinergic receptors, but rather to central TRH sites in the cat.

Animals↗

Studies on thyrotropin-releasing hormone-induced micturition in cats.

In unanaesthetized cats micturition produced by thyrotropin-releasing hormone (TRH) was investigated after its injection into the cerebral ventricles through chronically implanted cannulae. TRH in doses from 0.1 to 1.0 mg evoked dose-dependent micturition. In cats treated with intracerebroventricular (i.c.v.) reserpine and 6-hydroxydopamine, but not with i.c.v. 5,6-dihydroxytryptamine and hemicholinium, the micturition caused by i.c.v. TRH was abolished. Chlorpromazine and antazoline injected into the cerebral ventricles prevented the micturition induced by i.c.v. TRH. On the other hand, mecamylamine, yohimbine, propranolol, atropine and methysergide injected i.c.v. had virtually no effect or partially antagonized the micturition evoked by TRH similarly injected. It is apparent therefore that centrally induced TRH micturition could be related to central catecholaminergic mechanisms.

Acetylcholine↗

Nature of hypo- and hyperthermia induced by the calcium antagonist nicardipine.

The effects of nicardipine, a calcium channel blocking agent, injected into the cerebral ventricles, (i.c.v.), on the body temperature of unanaesthetized cats have been investigated. Nicardipine produced a biphasic effect on body temperature: a transient dose-dependent decline followed by a longlasting elevation. The fall, but not the rise, of body temperature was associated with a dose-dependent increase in respiration. Yohimbine, in small doses, but not prazosin and propranolol, when injected into the cerebral ventricles, attenuated the hypothermia evoked by i.c.v. nicardipine. However, all the antagonists, except yohimbine in large doses, depressed the hyperventilation induced by nicardipine. Calcium chloride (i.c.v.) reversed, while i.c.v. methysergide virtually had no effect on hyperthermia caused by i.c.v. nicardipine. Nicardipine virtually had no effect on body temperature of intracerebroventricular reserpine- and alpha-methyl-p-tyrosine-treated cats. It appears, therefore, that nicardipine at least in part evoked hypothermia through alpha-2 adrenoceptors located presynaptically, while nicardipine-induced respiratory changes are mediated also partly via alpha-adrenoceptors having mixed alpha 1 and alpha 2 properties. The hyperthermic effect of nicardipine, on the contrary, is mainly due to an action on voltage-dependent calcium ion channels. The contribution of the hyperventilation to the hypothermic effect of nicardipine cannot be of great importance, since the hypothermia was accompanied with hypoventilation when alpha- and beta-adrenoceptor blocking agents were used.

Animals↗

[Inhibitory and excitatory effects of methionine-enkephalin in the isolated rabbit ileum].

Methionine-enkephalin first inhibited and then stimulated the spontaneous rhythmic activity of the rabbit isolated ileum. The inhibitory effect of methionine-enkephalin was antagonized by naloxone. On the contrary, atropine did not change significantly either the inhibitory or the stimulatory action of this peptide. Furthermore, methionine-enkephalin inhibited the peristaltic reflex of the rabbit isolated ileum as well. Naloxone completely antagonized the inhibition of peristalsis produced by methionine-enkephalin. On the other hand, acetylcholine reversed only the propulsive activity and the back pressure, but not the peristaltic movements of the longitudinal muscle previously abolished by methionine-enkephalin. It appears, therefore, that only the inhibitory effects of methionine-enkephalin are mediated through opioid receptors in the intestine.

Acetylcholine↗

Verapamil-induced behavioral, autonomic and motor effects in cats.

The effects of verapamil, a calcium antagonist, injected into the cerebral ventricles on behavior, autonomic and motor activity of unanesthetized cats have been investigated. Verapamil evoked emotional behavior (miaowing and alertness), autonomic responses (mydriasis, tachypnoea, dyspnoea, defecation, micturition, licking and panting) and motor phenomena (ataxia, muscular weakness and adynamia). These effects lasted from a few minutes to several hours. The most consistent phenomena were miaowing, alertness, mydriasis and respiratory irregularities. The possible mechanism of action of verapamil on behavior, autonomic and motor activity may be an action on voltage-operated calcium channels in the brain.

Animals↗

6-Hydroxydopamine-induced aggression in cats: effects of various drugs.

The effects of intracerebroventricular injections (ICV) in the unanesthetized cat of antimuscarinic drugs, ganglionic blocking agents, alpha and beta adrenergic blocking substances, dopamine and 5-hydroxytryptamine (5-HT) antagonists, and an antihistamine on aggressive behavior produced by 6-hydroxydopamine injected similarly was investigated. It was found that atropine, hyoscine, hexamethonium, mecamylamine, yohimbine, phenoxybenzamine, propranolol, practolol, chlorpromazine, haloperidol, antazoline and methysergide exerted virtually no effect on the pattern of aggressive responses evoked by ICV 6-hydroxydopamine. It is thus concluded that the aggressive behavior induced by 6-hydroxydopamine is not related to the release of acetylcholine, norepinephrine, dopamine, histamine or 5-hydroxytryptamine from endogenous storage sites in the brain.

Aggression↗