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Intragastric nicotine protection against 40% ethanol injury in rat stomach. Role of ganglionic stimulation or blockade.

Intragastric nicotine (4 mg/kg) protects against 40% ethanol-induced gastric mucosal injury and raises mean blood pressure. We postulated that this protective effect was mediated by the ganglionic stimulatory property of nicotine and therefore could be abolished by ganglionic blockers. Rats were pretreated with intraperitoneal hexamethonium (10 mg/kg) or mecamylamine (2 mg/kg) to block peripheral or central autonomic ganglia, respectively. Intragastric vehicle or nicotine (4 mg/kg) was then administered. The total lengths of the linear gastric corpus mucosal lesions induced by intragastric 40% ethanol were measured by an unbiased observer using a caliper. The results showed that both intraperitoneal hexamethonium and mecamylamine pretreatments protected against 40% ethanol-induced gastric mucosal injury. Neither modified the protective effect of intragastric nicotine. The protective effect of hexamethonium and mecamylamine was associated with a significant increase in the volume of gastric mucus and gastric juice. The increase in the volume of gastric content (mucus and juice) was partially responsible for the protective effect of these ganglionic blockers. In a separate experiment, intraperitoneal nicotine (4 mg/kg) also protected against 40% ethanol-induced gastric mucosal injury and raised mean blood pressure. These data indicate that the protection against 40% ethanol-induced gastric mucosal injury is not unique to intragastric nicotine. Such protection can be induced by ganglionic blocking doses of hexamethonium and mecamylamine, or a ganglionic stimulatory dose of intraperitoneally administered nicotine. Whether ganglionic stimulation or blockade plays a role in the mechanism of intragastric nicotine protection, however, remains to be determined.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Mechanisms involved in the respiratory depressant actions of nicotine in anesthetized rats.

In the urethane-pentobarbital anesthetized rat, the respiratory depressant and lethal effects of intravenously infused (-)-nicotine (120 micrograms/kg/min) or (+)-nicotine (600 micrograms/kg/min) were effectively prevented by pretreatment with the opioid antagonist, naltrexone, whereas the lethal effect of (-)-nicotine (120 micrograms/kg/min) was not altered by bilateral adrenalectomy. Further, pretreatment with either the nicotinic ganglion-blocker, mecamylamine, a secondary amine, or the quarternary nicotinic ganglion-blocker, hexamethonium, completely prevented the lethal effects of (-)-nicotine (120 micrograms/kg/min). These data suggest that central opioidergic and nicotinic processes are involved in nicotine's respiratory depressant and lethal effects.

Anesthesia↗

Characterization of the effect of nicotine on vasopressin and atrial natriuretic factor in the rabbit.

The effects of nicotine on the secretion of arginine vasopressin (AVP) and of the atrial natriuretic factor (ANF) were examined in conscious rabbits. Nicotine was shown to produce significant increases in plasma AVP from 1.7 +/- 0.4 to 75.3 +/- 35.1 pg/ml (P less than .05) and in plasma ANF levels from 39 +/- 11 to 121 +/- 52 pg/ml (P less than .05) within 5 min of an i.v. dose of 0.5 mg/kg. These nicotine-induced stimulations could not be inhibited by muscarinic (atropine), dopaminergic [(+/-)-sulpiride], alpha (phenoxy-benzamine) or beta adrenergic (propranolol) blockers or by a rapid infusion of fluids. Trimetaphan was ineffective in blocking the stimulation of AVP secretion but completely abolished the nicotine-induced secretion of ANF. The more lipophilic ganglionic blocker, mecamylamine, blocked the stimulation of the secretion of both peptides. The effect of nicotine on AVP production was confirmed in vitro using the rat hypothalamo-neurohypophysial system preparation where nicotine increased AVP secretion in a dose-dependent manner. This in vitro stimulation was blocked by the ganglionic blocker hexamethonium. The increase in ANF plasma concentrations was probably due to a primary response to nicotine, for although exogenous AVP (1 microgram i.v.) increased ANF levels by a factor of 3 (P less than .05), the AVP antagonist [-(beta-mercapto-beta,beta-cyclopentamethylenepropionic acid)-2- (O-methyl)tyrosine]arginine vasopressin did not prevent the nicotine-induced increase in ANF. Thus, nicotine or its effects appear to stimulate the secretion of ANF and not AVP. It was concluded that nicotine stimulates the secretion of AVP by activating central nicotinic projections to the hypothalamus.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Comparison of hypotensive, orthostatic and sympathetic inhibitory actions of antihypertensive drugs in rats.

Hypotensive and orthostatic activities of a variety of orally administered antihypertensive drugs were concurrently evaluated in conscious spontaneously hypertensive rats and attempts were made to relate these responses to effects on peripheral sympathetic function. The alpha-adrenergic blockers phentolamine and prazosin and the adrenergic neuron blocker guanethidine inhibited compensatory responses to upright tilt at antihypertensive doses. The ganglionic blocker mecamylamine produced milder inhibition. The centrally active agents methyldopa and clonidine and the vasodilator minoxidil did not alter tilt responses appreciably. In contrast, the vasodilator hydralazine exerted marked postural effects. Autonomic interactions were evaluated in pithed rats. alpha-Adrenergic receptor, adrenergic neuron and ganglionic blockers inhibited pressor responses to i.v. phenylephrine and/or to sympathetic nerve activation. Vasodilators did not produce specific effects. The tilt and pithed rat models, when used in conjunction, are very useful in predicting orthostatic potential of drugs in humans although absolute correlation cannot be expected.

Animals↗

Reflex pressor response to gastric mechanical stimulation in rats.

Neural and humoral mechanisms involved in the reflex pressor response during mechanical stimulation of the stomach of rats were investigated. The arterial blood pressure response was prevented by inhibition of alpha-adrenergic vasoconstriction using either an alpha-adrenergic blocker or a ganglionic blocker. In addition, there was a small decrease in the response after nephrectomy. However, there were no alterations in the response after beta-adrenergic blockade, bilateral adrenalectomy, inhibition of converting enzyme activity with enalapril or bilateral cervical vagus nerve transection. The heart rate was not modified after either intervention. After vagotomy the time of recovery of the basal blood pressure was significantly prolonged. It can be concluded that the blood pressure response to mechanical stimulation of the stomach wall is of neural rather than of humoral origin and mainly involves activation of alpha-adrenergic receptors. Vagal efferent pathways could be also involved.

Adrenalectomy↗

Differential autonomic control of SAN and AVN regions of the canine heart: structure and function.

Both anatomical and physiologic evidence for relatively rich autonomic innervation of sinoatrial (SAN) and atrioventricular (AVN) regions of the canine heart exist, with indication that SAN is especially responsive to parasympathetic, while AVN is preferentially sensitive to sympathetic regulation. The distribution of autonomic pathways are sufficiently separate and discrete that careful surgical intervention can selectively delete either parasympathetic or sympathetic nerve supplies to either (or both) SAN and AVN regions. Selective blockade by restricted injections of lidocaine (general neuronal blocker) or hexamethonium (ganglionic blocker) indicate that the vast majority (perhaps all) of vagal ganglia supplying SAN reside in the pulmonary vein fat pad and associated adipose tissues. In contrast, the vagal ganglia supplying AVN are found within a smaller fat pad overlying epicardium at the junction of inferior vena cava-inferior left atrium. These vagal pathways to either automatic cells of SAN or conductile tissues of AVN can be selectively interrupted without interfering with vagal regulation of the remaining intact system. Electroneurograms from large neurons situated within PVFP of the anesthetized, open-chest animal, reveal vigorous, phasic electrical activity associated with the cardiac and respiratory cycles, as well as with sensory stimulation of the heart, great vessels, and lungs. Spontaneous electrical activity of presently unknown origin is also observed. Direct neuronal stimulation, plus retrograde transport of fluorescent markers suggest that highly selective postganglionic intracardiac pathways may regulate discharge patterns of the sinus automatic cells.

Animals↗

Vasodilator effect of insulin on the microcirculation of the rat cremaster muscle.

We recently showed that, in conscious rats, acute infusions of insulin (10-15 fold increase in plasma insulin) produced decreases in hindquarter vascular resistance, but only if, changes in sympathetic outflow were prevented with a ganglionic blocker. The aim of the present investigation was to determine if similar effects of insulin could be observed in a preparation that allowed direct visualization of striated muscle (cremaster) microvessels. Initial studies with topical application of insulin showed that third-order arterioles (A3), but not first- or second-order arterioles vasodilated in response to 800 microU/ml and 8 mU/ml of insulin. Systemic (euglycemic) infusion of insulin (6 mU/ml, but not 2 mU/ml) also increased A3 arteriole diameter in animals treated with a ganglionic blocker, but not in control rats. These data show that insulin can have a direct vasodilator effect on striated muscle microvessels if concomitant increases in sympathetic outflow are absent. However, the response was only present with supraphysiological doses of the hormone.

Administration, Topical↗

Evidence that extrapancreatic GLUT2-dependent glucose sensors control glucagon secretion.

GLUT2-/- mice reexpressing GLUT1 or GLUT2 in their beta-cells (RIPGLUT1 x GLUT2-/- or RIPGLUT2 x GLUT2-/- mice) have nearly normal glucose-stimulated insulin secretion but show high glucagonemia in the fed state. Because this suggested impaired control of glucagon secretion, we set out to directly evaluate the control of glucagonemia by variations in blood glucose concentrations. Using fasted RIPGLUT1 x GLUT2-/- mice, we showed that glucagonemia was no longer increased by hypoglycemic (2.5 mmol/l glucose) clamps or suppressed by hyperglycemic (10 and 20 mmol/l glucose) clamps. However, an increase in plasma glucagon levels was detected when glycemia was decreased to < or =1 mmol/l, indicating preserved glucagon secretory ability, but of reduced sensitivity to glucopenia. To evaluate whether the high-fed glucagonemia could be due to an abnormally increased tone of the autonomic nervous system, fed mutant mice were injected with the ganglionic blockers hexamethonium and chlorisondamine. Both drugs lead to a rapid return of glucagonemia to the levels found in control fed mice. We conclude that 1) in the absence of GLUT2, there is an impaired control of glucagon secretion by low or high glucose; 2) this impaired glucagon secretory activity cannot be due to absence of GLUT2 from alpha-cells because these cells do not normally express this transporter; 3) this dysregulation may be due to inactivation of GLUT2-dependent glucose sensors located outside the endocrine pancreas and controlling glucagon secretion; and 4) because fed hyperglucagonemia is rapidly reversed by ganglionic blockers, this suggests that in the absence of GLUT2, there is an increased activity of the autonomic nervous system stimulating glucagon secretion during the fed state.

Animals↗

Effects of pinacidil on arterial and venous resistances and mean circulatory filling pressure in rats.

1. The effects of the potassium channel opener, pinacidil, on mean arterial pressure (MAP), mean circulatory filling pressure (MCFP), total peripheral resistance (TPR), cardiac output (CO) and resistance to venous return (Rv) were studied in rats. 2. In pentobarbitone-anaesthetized rats given mecamylamine (ganglionic blocker, 3.7 micrograms kg-1) and noradrenaline (1.5 micrograms kg-1 min-1) to suppress autonomic reflexes, pinacidil (60 and 180 micrograms kg-1 min-1), relative to the vehicle, reduced MAP and TPR in a dose-dependent manner but did not significantly alter CO, MCFP or RV. 3. Pinacidil (10-300 micrograms kg-1 min-1) caused similar increases in MCFP, an inverse index of venous compliance, and similar dose-dependent reductions in mean arterial pressure (MAP) in conscious, intact rats and rats infused with the ganglionic blocker, hexamethonium (150 micrograms kg-1 min-1). In rats with vasomotor tone elevated by the infusion of noradrenaline (1.5 micrograms kg-1 min-1), pinacidil caused markedly greater depressor responses but did not significantly alter MCFP. 4. Our results show that pinacidil is an efficacious vasodilator of arterial resistance blood vessels but has little venodilator activity.

Anesthesia↗

Activation of the micturition reflex by NK2 receptor stimulation in the anaesthetized guinea-pig.

1. The mechanisms underlying stimulation of bladder contractions and bronchoconstriction by the selective NK2 receptor agonist, [beta-Ala8]NKA(4-10), were examined in the anaesthetized guinea-pig. 2. Atropine, alpha,beta-methylene-ATP and ganglion blocking agents were used to examine the contribution of reflex arc activation and/or potentiation of efferent mechanisms to the NK2 receptor-mediated responses seen in these two tissues. 3. [beta-Ala8]NKA(4-10)-induced bronchoconstriction was immediate, dose-dependent and was unaffected by pretreatment with ganglion blockers (hexamethonium or chlorisondamine), blockade of muscarinic receptors by atropine, or desensitization of P2 purinoceptors by alpha,beta-methylene-ATP. 4. At does of 5 micrograms kg-1 and above, [beta-Ala8]NKA(4-10) induced bladder contractions that appeared to be of an 'all-or-nothing' nature. These contractions occurred after a delay of 10 to 30 s and were often biphasic, comprised of an initial rapid component followed by a slower tonic component. 5. Pretreatment of the animals with either atropine or the desensitizing purinoceptor agonist alpha,beta-methylene-ATP, resulted in partial inhibition of bladder contractile responses to [beta-Ala8]NKA(4-10). The combination of atropine and alpha,beta-methylene-ATP pretreatment resulted in additive inhibition leading to complete blockade of the response. 6. The bladder responses to [beta-Ala8]NKA(4-10) (5 micrograms kg-1) were inhibited by pretreatment with the ganglion blockers, hexamethonium and chlorisondamine, indicating a preganglionic mechanism of action. 7. These findings demonstrate the indirect nature of the bladder contractions induced by activation of NK2 receptors in the anaesthetized guinea-pig. Contractions occur secondary to the release of endogenous cholinergic and NANC transmitters by activation of neuronal NK2 receptors located at apreganglionic site, possibly on capsaicin-sensitive sensory afferent nerves, where NK2 sites have been demonstrated autoradiographically. In contrast, [beta-Ala8]NKA(4- 10)-induced bronchoconstriction in the anaesthetized guinea-pig is a direct smooth muscle contractile response that is unaffected by ganglionblockade or blockade of muscarinic receptors.

Animals↗

Dopamine, noradrenaline and isoprenaline: secretory and electrophysiological effects in vitro on mouse pancreas.

The amylase release from mouse pancreatic fragments was studied after dopamine (DA), and alpha- or beta-sympathomimetic agonist application. The electrical parameters of the acinar cell membrane were also monitored. Both DA (from 5 X 10(-6) to 10(-4) M) and beta-stimulants (isoprenaline from 5 X 10(-6) to 5 X 10(-5) M; noradrenaline from 3 X 10(-4) to 10(-3) M) evoked an increase in amylase release, while noradrenaline in alpha-receptor stimulating doses failed to have any effect. The stimulatory effect of DA was blocked by ganglion blockers (Arfonad 10(-5) M; pentamethonium 3 X 10(-5) M) in a competitive manner and a dual antagonism was observed with atropine (10(-7) M, 10(-9) M). An alpha-receptor antagonist (phentolamine 10(-5) M) and a beta-receptor antagonist (propranolol 10(-5) M) had no influence on the dopamine response. Moreover, the DA-induced stimulation was dependent on the presence of extracellular calcium. Perfusion with 10(-4) and 10(-3) M-DA or local application (from 77 micrograms to 4.3 mg), resulted in marked membrane depolarization with diminution of the input resistance. This effect was blocked by atropine (10(-5) M) and pentamethonium (10(-4) M), but not by propranolol (10(-5) M) or phentolamine (10(-5) M). The isoprenaline- (IP) and noradrenaline- (NA) induced increase in amylase release was competitively blocked by propranolol (10(-5) M) but not by phentolamine (10(-5) M). Atropine caused a dose-dependent (10(-7) M, 10(-6) M) decrease in the maximal response (non-competitive antagonism), while the ganglion blocker pentamethonium (10(-4) M) was without effect. NA caused membrane depolarization accompanied by a decrease in the input resistance after local application (from 77 micrograms to 1.6 mg). This effect persisted in the presence of 10(-5) M-phentolamine but was abolished by 10(-5) M-propranolol. IP perfusion (10(-4) and 10(-3) M) or local application (0.3 M; from 32 to 130 micrograms) caused the same electrical changes as those induced by NA and DA. The effect of IP persisted in the presence of 10(-5) M-phentolamine, 10(-4) M-pentamethonium and 10(-4) M-domperidone, but was abolished by propranolol (10(-5) M) and tetrodotoxin (5 X 10(-6) M) and markedly diminished by atropine (10(-5) M).(ABSTRACT TRUNCATED AT 400 WORDS)

Action Potentials↗

Vagal afferent-mediated inhibition of a nociceptive reflex by intravenous serotonin in the rat. I. Characterization.

The effect of intravenous (i.v.) serotonin (5-HT) on nociception and blood pressure was examined in male Sprague-Dawley rats. Intravenous 5-HT produced a dose-dependent (6-192 micrograms/kg, i.v.) inhibition of the nociceptive tail-flick (TF) reflex in lightly pentobarbital-anesthetized (ED50 = 40 micrograms/kg) and conscious rats (ED50 = 44 micrograms/kg). In the lightly pentobarbital-anesthetized rat, the blood pressure response to i.v. 5-HT was typically a triphasic response with a marked Bezold-Jarisch reflex-induced decrease in pressure (associated with a brief period of apnea) followed by a pressor phase and a subsequent delayed hypotension. In the conscious rat, the response was typically biphasic with the late hypotensive phase absent. A variety of anatomical and pharmacological manipulations were performed to characterize the 5-HT-induced inhibition of the TF reflex and associated changes in blood pressure. Prevention of 5-HT-induced reflex apnea by artificial ventilation did not affect inhibition of the TF reflex produced by 5-HT. Pharmacological manipulations were performed to mimic, as closely as possible, the acute increases and decreases in blood pressure associated with i.v. 5-HT. Nitroprusside (8 micrograms/kg, i.v.) produced a decrease in blood pressure of similar magnitude and rate as that associated with the Bezold-Jarisch reflex-induced decrease in pressure produced by 72 micrograms/kg 5-HT, but did not change TF latency from baseline. Similarly, acute increases in pressure produced by phenylephrine (8 micrograms/kg, i.v.), intended to mimic the secondary pressor effect of 5-HT, did not change TF latency. The short-acting ganglion blocker trimethaphan (5 mg/kg, i.v.) closely mimicked the late hypotensive phase produced by 5-HT, but again resulted in no change in TF latency. Pretreatment with the ganglion blocker chlorisondamine (2.5 mg/kg) abolished all depressor responses to 72 micrograms/kg 5-HT, but did not significantly affect the TF reflex. These results indicate that acute changes in blood pressure and respiration associated with i.v. 5-HT do not contribute to inhibition of the TF reflex. This conclusion was confirmed in experiments in which bilateral vagotomy abolished approximately 70% of the 5-HT-induced inhibition of the TF reflex (and all depressor responses), and resulted in a significantly greater pressor response. Finally, low thoracic spinal cord transection (T9-10) abolished the inhibition of the TF reflex produced by i.v. 5-HT. Therefore, 5-HT stimulates vagal afferents and inhibits the TF reflex by activating descending inhibitory systems from the brainstem.(ABSTRACT TRUNCATED AT 400 WORDS)

Afferent Pathways↗

A rat model for predicting orthostatic hypotension during acute and chronic antihypertensive drug therapy.

An experimental model has been developed to determine postural hypotension in chloralose-urethane-pentobarbital (CUP) anesthetized rats. Using this technique, mean arterial pressure, heart rate, and blood pressure compensation to 60 degree tilt were examined in rats treated acutely and chronically with a spectrum of standard antihypertensive agents. The results closely parallel the orthostatic profiles seen clinically with these drugs. Significant orthostatic hypotension was seen with the acute intravenous administration of the alpha-adrenergic antagonists phenoxybenzamine, phentolamine, and prazosin, the neuronal suppressant guanethidine, and the ganglionic blockers hexamethonium and chlorisondamine. The central antihypertensive clonidine displayed mild, acute orthostasis that dissipated by 1 hr. The vasodilator minoxidil was entirely free of postural effects. Chronically, guanethidine, the ganglionic blocker mecamylamine, and a high dose of reserpine all resulted in significant postural hypotension after 4 days of oral administration. Prazosin's acute orthostasis had largely dissipated by this time. Chronic minoxidil resulted in slight overcompensation to tilt. Based on the consistency to these data relative to the clinical profiles of these standard antihypertensive agents, it would appear that the CUP anesthetized rat is an accurate, efficient test model for identifying orthostasis in novel hypotensive agents under acute and chronic drug treatment conditions.

Anesthesia↗

Capsaicin-sensitive primary afferents are involved in the hypotensive effect of neurotensin in ganglion-blocked guinea pigs.

The mechanism of the blood pressure (BP)-lowering effect of neurotensin (NT) in the anesthetized, ganglion-blocked guinea pigs was further examined using animals in which the basal BP was artificially raised by an IV infusion of noradrenaline (NA) to overcome the BP-lowering effect of the anesthesia as well as of the ganglion blocker. The animals were also vagotomized and given atropine at the beginning of the experiments to prevent potential baroreceptor-mediated vagal reflexes and/or activation of muscarinic receptors by endogenous acetylcholine. Under these experimental conditions, the IV bolus injections of NT as well as of capsaicin (a reference drug) produced dose-dependent hypotensive effects and variable levels of tachycardia. Omitting the ganglion blocker from the animal drug regimen attenuated but did not abolish the BP-lowering effect of NT and of capsaicin. Neither the hypotensive nor the tachycardic effects of NT and of capsaicin in ganglion-blocked guinea pigs were affected by prior animal treatment with propranolol (a beta adrenoceptor blocker), antihistaminics (mepyramine, cimetidine) or indomethacin (a cyclooxygenase inhibitor). Morphine was found to slightly reduced the hypotensive effect of NT without altering its slight tachycardic effect. Both the hypotensive and tachycardic effects of NT and of capsaicin, in contrast to those elicited by substance P (SP) and calcitonin gene-related peptide (CGRP), were inhibited in ganglion-blocked guinea pigs pretreated four days previously with capsaicin.(ABSTRACT TRUNCATED AT 250 WORDS)

Afferent Pathways↗

Cholinoceptor-mediated control of catecholamine release from chromaffin cells in the American eel, Anguilla rostrata.

The cholinergic agonist-induced secretion of catecholamines from chromaffin cells in the American eel, Anguilla rostrata, was assessed using a saline-perfused posterior cardinal vein preparation. Direct membrane depolarization with 60 mmol.l-1 K+ caused a significant release of catecholamines (adrenaline+noradrenaline) into the perfusate which was unaffected by pre-treatment with the ganglion blocker, hexamethonium (final concentration = 10(-3) mol.l-1). The nicotinic receptor agonist, 1,1-dimethyl-4-phenyl-piperazinium iodide, evoked catecholamine release in response to several doses exceeding 10(-7) mol; at 10(-5) mol the response was abolished by pre-treatment with the ganglion blocker, hexamethonium (final concentration = 10(-3) mol.l-1). The muscarinic receptor agonist, pilocarpine, did not elicit catecholamine release in response to any of the doses administered (10(-8)-10(-4) mol). A single injection of the mixed nicotinic/muscarinic cholinoceptor agonist, carbachol (10(-5) mol), caused the release of catecholamines which was abolished by pre-treatment with hexamethonium but which was unaffected by pre-treatment with the muscarinic receptor antagonist atropine (final concentration = 10(-5) mol.l-1). The results of this study indicate that the process of cholinergic agonist-induced catecholamine secretion from the chromaffin cells in the American eel is mediated exclusively by activation of nicotinic receptors with no involvement of the muscarinic receptor.

Animals↗

Sensitivity to voltage-independent inhibition determined by pore-lining region of the acetylcholine receptor.

Some noncompetitive inhibitors (e.g., ganglionic blockers) exhibit selectivity for the inhibition of neuronal nicotinic acetylcholine receptors (nAChRs). This study characterizes the mechanism of selective long-term inhibition of neuronal and muscle-neuronal chimeric nAChRs by bis(2,2,6,6-tetramethyl-4-piperidinyl) sebacate (bis-TMP-10 or BTMPS), a bifunctional form of the potent ganglionic blocker tetramethylpiperidine. Long-term inhibition of neuronal nAChRs by bis-TMP-10 has been previously demonstrated to arise, at least in part, from the binding of the bis compound to neuronal beta-subunits. In this study, long-term inhibition is demonstrated to be dependent upon the presence of sequence element(s) within the pore-lining second transmembrane domain (tm2) of neuronal beta-subunits; however, the inhibitor binding site itself does not appear to be contained within the segment of the channel pore influenced by the membrane electric field. Specifically, our results imply that bis-TMP-10 interacts with an activation-sensitive element, the availability of which may be regulated by a sequence in the tm2 domain. Furthermore, we demonstrate a compound length requirement for long-term inhibition that would be consistent with binding to multiple sites located on the extracellular portion of the receptor.

Acetylcholine↗

Effect of ganglionic blocking compounds on in-vivo fluid secretion in the rat small intestine.

It is well-known that enteric, secreto-motor nerves mediate cholera toxin-induced fluid secretion in the rat small intestine. This notion is, in part, derived from experiments on anaesthetized animals in which the response to cholera toxin was antagonized by the ganglionic nicotinic receptor antagonist, hexamethonium. In the current study, such anti-secretory action of ganglionic blocking compounds was analysed in an experiment designed to minimize any possible negative effect of general anaesthesia on intestinal secretion. Rats were anaesthetized with ether for 5-10 min, during which time a jejunal loop (10-12 cm) was constructed. The loop was challenged with one of the secretagogues, cholera toxin, prostaglandin E1 (PGE1) or okadaic acid. Saline (control) or either of the ganglionic blockers, hexamethonium and chlorisondamine, was administered intravenously. The rats were killed 5 h (cholera toxin) or 1.5 h (PGE1 and okadaic acid) after challenge, and the amount of fluid accumulated in the loops was determined. Cholera toxin-induced secretion was unchanged by hexamethonium but reduced by approximately 80% by chlorisondamine. The difference in effect between the two blockers might relate to the duration of ganglionic blockade. Chlorisondamine blocked secretion induced by either PGE1 or okadaic acid by approximately 60%. It is suggested that the anti-secretory effect of ganglionic blocking compounds might be a result of blockade of secreto-motor nerves but other mechanisms, for example interference with haemodynamic factors, cannot be ruled out.

Alprostadil↗

Does the spinal cord generate functionally significant sympathetic activity in the awake rat?

Previous studies reach conflicting conclusions regarding the presence of physiologically significant sympathetic nerve activity (SNA) in conscious rats with transection of the cervical spinal cord (CST). The objective of the current study was to determine whether either spinally generated SNA or nonspecific effects of antagonists are responsible for the natriuresis and decreased heart rate that accompany adrenergic blockade in CST rats. To test the first possibility, adrenergic antagonists (phentolamine and propranolol) were administered to three groups of CST rats: 1) renal denervated, 2) adrenalectomized or sham-adrenalectomized, and 3) rats who received the ganglionic blocker hexamethonium. Neither renal denervation, adrenalectomy, nor ganglionic blockade prevented either the three- to fivefold increase in sodium excretion or the 25-50 beats/min decrease in heart rate previously reported. We then administered combinations of different adrenergic antagonists to CST rats to test for nonspecific effects of the drugs. Whereas idazoxan+propranolol reproduced the natriuresis seen with phentolamine+propranolol, prazosin+yohimbine+propranolol did not. We conclude that there is no evidence for functionally significant spinally generated SNA in conscious CST rats and that the natriuresis observed with phentolamine administration is due to imidazoline binding.

Adrenalectomy↗