The stimulation of canine prostatic secretion by substances with ganglion-stimulating actions.
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1 In anaesthetized cats and dogs treated with mecamylamine, the pressor response to McN-A-343 was increased when the animals were changed from a supine to a head-up, tilted position. This potentiation was not seen in rats. 2 The potentiation of the McN-A-343 pressor response was not affected by propranolol, destruction of the brain, or removal of the intestines, spleen or adrenal glands. It was promptly abolished by applying pressure to the lower half of the tilted animal. No increase in the pressor response to McN-A-343 occurred when cats were tilted head down. The potentiated response in tilted cats was abolished by atropine. 3 The pressor effects of adrenaline, noradrenaline, tyramine and angiotensin in cats treated with mecamylamine were either reduced or unchanged when the animal was changed from the supine to the tilted position. In one cat not treated with mecamylamine in which orthostatic hypotension occurred, tilting potentiated the pressor responses to dimethyl phenylpiperazinium iodide. 4 In cats anaesthetized with chloralose, the reflex pressor response to bilateral carotid occlusion was reduced by tilting. After mecamylamine treatment the residual atropine-sensitive response to carotid occlusion was potentiated when the animal was placed in the tilted position. 5 These results suggest that muscarinic stimulation of sympathetic ganglia by McN-A-343 raises blood pressure by predominantly reducing venous capacity, in contrast to noradrenaline and angiotension which increase blood pressure mainly by arterial vasoconstriction. 6 It is not clear whether this is a general property of sympathetic ganglionic stimulation or is restricted to stimulation of muscarinic sites.
Electrical stimulation of the trigeminal ganglion causes an increase in facial skin blood flow in the anaesthetised rat, as measured by laser Doppler flowmetry. We investigated the modulation of this neurogenic vasodilator response using selective receptor agonists for putative prejunctional inhibitory receptors, as well as other pharmacological agents to further characterise this response. [D-Ala2,Me-Phe4,Gly5-ol]enkephalin (DAGO, a mu-opioid receptor agonist) inhibited the vasodilator response in a dose-related (0.058-5.8 mumol/kg i.v.) and naloxone-sensitive manner. A similar inhibitory response was observed with the local anaesthetic lignocaine (2% w/v, s.c. 20 microliters). In contrast, the histamine H3-receptor agonist alpha-methylhistamine (15 or 35 mumol/kg, i.v.) and the 5-HT1D receptor agonists sumatriptan (0.24 or 2.4 mumol/kg, i.v.) and CP 122,288 (0.0003-3 mumol/kg, i.v.) had no effect on these responses. Similarly, atropine (1.5 mumol/kg, i.v.) and indomethacin (28 mumol/kg, i.v.) did not alter the vasodilatation observed in this model. In conclusion, only mu-opioid receptor activation and local anaesthetic had any inhibitory action on the neurogenic vasodilatation observed in this model.
The relationships between lung compliance, surface tension, and cholesterol during stimulation of the sympathetic nervous system were studied in 28 cats. Cats were anesthetized with ketamine hydrocholoride, injected with one of five sympathetic blocking agents or inhibitors and injected with isoprotenol. The left stellate ganglion was then stimulated electrically for 5 min. We found that stimulation decreased lung compliance and increased the surface tension and the cholesterol concentration in the lung wash fluid. Alpha blockers (phentolamine and phenoxybenzamine) and catecholamine inhibitors (reserpine and guanethidine) prevented these changes, but the beta blocker practolol did not. In additional experiments airway resistance, functional residual capacity and lung weights did not change during stellate stimulation. The results from the present study suggest that stellate ganglion stimulation resulted in decreased lung compliance with an increased surface tension and cholesterol in lung wash fluid.
Data obtained suggest that preganglionic stimulation of the ciliary ganglion produces an increase of aqueous humor formation and of facility of outflow "C" through the following neurogenic pathway: (1) the preganglionic fibers synapse in the ciliary ganglion as evidenced by depression of the response with nicotine applied topically to the ganglion. (2) The impulse proceeds to the equivalent of an intraocular interneuron which can be blocked by low concentrations of atropine and has been previously identified as being an E-2 receptor site. (3) From the interneuron, activity is ultimately exerted without further synapse on alpha-adrenergic receptors through the release of norepinephrine from the neuronal terminals. The adrenergic mechanism of action is supported by the inhibition of the responses by phenoxybenzamine, bretylium, and guanethidine. Constriction of efferent ciliary process blood vessels by neuron-released norepinephrine seems to be the end effect responsible for the increased production of aqueous humor. The site of the end response to increase "C" is unclear.
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A projection from the trigeminal ganglion to the ventral cochlear nucleus (VCN) of the guinea pig was recently described. The synaptic terminals of this projection terminate in the granule and magnocellular regions of the VCN. Stimulation of this projection has been shown to result in activation of neurons of the ventral cochlear nucleus. We investigated the effect of electrically stimulating the trigeminal ganglion on the central auditory system activity using 2-deoxyglucose (2-DG) autoradiographic techniques. Electrical stimuli were applied to the left trigeminal ganglion as bipolar pulses, 100 micros per phase, at intervals of 200 ms and an amplitude of 100 microA. Negative control animals were not stimulated. A positive control animal was stimulated in the left ear using a 1 kHz tone burst with 200 ms duration and an amplitude of 80 dB SPL. 2-DG was administered by intramuscular injection. Following a 1 h incorporation period, animals were sacrificed, the brains rapidly harvested, and prepared for autoradiography using standard techniques. Autoradiographs were analyzed using computer-assisted video densitometry to determine film optical density in the central auditory regions of interest. The cerebellum was also sampled as a gray matter indifferent intra-brain control region. Results showed systematic and significant differences between 2-DG uptake in the cochlear nucleus and higher auditory centers between control and stimulated animals. Trigeminally stimulated animals showed significantly higher uptake than unstimulated animals in all auditory centers examined, especially ipsilateral to the stimulation site. The activation pattern differs qualitatively from that seen with sound stimulation in that mainly contralateral pathways are activated with sound stimulation. These results demonstrate that a projection from the predominantly somatosensory trigeminal ganglion can influence the activity of central auditory neurons in a manner distinct from acoustic stimulation, suggesting activation of non-classical auditory pathways.
Plasma epinephrine (E) and norepinephrine (NE) concentrations were measured (radioenzymatic assay) in blood samples simultaneously withdrawn from the aorta (Ao) and coronary sinus (CS) on 10 anesthetized dogs immediately before and during a 1-min period of electrical stimulation of the left stellate ganglion (4 V, 4 ms, 10 Hz). Heart rate and systolic blood pressure significantly increased in response to electrical stimulation (152 +/- 8 to 180 +/- 15 beats/min and 128 +/- 12 to 149 +/- 12 mmHg, mean +/- SE; P less than 0.05). Plasma NE concentrations were not significantly different in the Ao and the CS (432 +/- 110 and 319 +/- 67 pg/ml) before the stimulation, whereas a net removal of E was present across the myocardium (Ao, 172 +/- 61; CS, 71 +/- 22 pg/ml). A large NE spillover in the CS was observed during the stimulation (Ao, 1,555 +/- 513; CS, 10,583 +/- 3,753 pg/ml). A significant output of E from the myocardium was also present (Ao, 165 +/- 42; CS, 291 +/- 74 pg/ml) during the stimulation. Determination of NE and E concentrations by high-performance liquid chromatography in five of the dogs confirmed the observation made with the radioenzymatic assay, i.e., a significant uptake (66%) of blood-borne E was present across the myocardium in the control situation (Ao, 320 +/- 97; CS, 110 +/- 23 pg/ml), whereas plasma E concentrations in the CS (280 +/- 61 pg/ml) were 1.5 times the values found in Ao (184 +/- 56 pg/ml) under electrical stimulation. These observations give further support to the hypothesis that endogenous tissue E can act as a cotransmitter of sympathetic fibers.
An attempt has been made to determine whether the ganglionic actions of pilocarpine and of 4-(m-chlorophenylcarbamoyloxy)-2-butynyltrimethylammonium chloride (McN-A-343) contribute to their effect on salivary secretion. Salivary flow was measured from the submandibular glands of spinal cats. Destruction of the superior cervical ganglion and adrenalectomy failed to reduce the stimulant effect of pilocarpine and McN-A-343. Substances known to interfere with the ganglionic actions of pilocarpine (cocaine, methadone and choline 2:6-xylyl ether bromide) likewise failed to modify the response. It is concluded that stimulation of autonomic ganglia and of the adrenal medulla does not contribute to the salivary secretion observed after intravenous injections of pilocarpine and of McN-A-343. Dimethylphenylpiperazinium, a nicotine-like ganglion-stimulating substance, causes salivary flow by stimulating the adrenal medulla as well as parasympathetic ganglion cells; stimulation of the superior cervical ganglion by this substance does not contribute to the salivary response.
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Saliva secretion in response to the stimulation of the superior cervical ganglion (S.C.G.) at different frequencies (2, 3, 5, 10, 15, 20 Hz) has been studied in anaesthetized rabbits. The differences between the two major glands in this species were analyzed, with respect to the flow response, potassium, amylase and total protein content during the sympathetic stimulation. The stimulation of S.C.G. increased the salivary flow rate at all frequencies, on both parotid and mandibular gland. In the parotid gland the flow and stimulation frequency show a positive linear correlation which does not appear in the mandibular gland. In conclusion, the differences observed in the response to sympathetic stimulation in both glands seem to be due to distinct patterns of sympathetic innervation on different glandular elements.
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