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Biomedical subjects

M J Rand

Publications and source records attributed to M J Rand.

At least 55 records · Page 3Linked to original sources

Neurogenic vasodilatation in isolated perfused segments of rabbit jejunal artery.

1. Vasodilator responses were elicited by field stimulation in isolated perfused segments of rabbit jejunal arteries when noradrenergic and purinergic vasoconstrictor responses had been abolished and the smooth muscle partly contracted by endothelin. 2. The stimulation-induced vasodilator responses were abolished by tetrodotoxin, but were not affected by atropine, propranolol or a nitric oxide synthase inhibitor. 3. After recovery from the vasodilator action of capsaicin, the stimulation-induced vasodilator responses were greatly reduced or abolished. 4. A competitive antagonist of calcitonin gene-related peptide (CGRP) blocked vasodilator responses elicited by field stimulation and exogenously administered CGRP. 5. The findings indicated that the mediator of the stimulation-induced vasodilator responses is neurogenic in origin, and it is not acetylcholine, noradrenaline acting on beta-adrenoceptors, nitric oxide or an endothelium-dependent vasodilator. It appears to be CGRP, presumably released from sensory nerves in the periarterial plexus.

Amino Acid Oxidoreductases↗

Mediators of nicotine-induced relaxations of the rat gastric fundus.

1. Relaxations of strips of rat gastric fundus were elicited with nicotine (100 mumol/L), nitric oxide (NO; 30 mumol/L), sodium nitroprusside (SNP; 100 nmol/L) and vasoactive intestinal polypeptide (VIP; 1 nmol/L). 2. Methylene blue (30 mumol/L), an inhibitor of soluble guanylate cyclase, reduced relaxations elicited by NO and nicotine, but not those elicited by VIP. 3. Chymotrypsin (1 U/mL) abolished VIP-induced relaxations and reduced nicotine-induced relaxations, but had no effect on SNP-induced relaxations. 4. NG-nitro-L-arginine methyl ester (L-NAME; 100 mumol/L), an inhibitor of NO synthase, reduced relaxations elicited by nicotine, but not those elicited by SNP or VIP. 5. When nicotine-induced relaxations had been reduced by either L-NAME or chymotrypsin, the addition of the other agent produced a greater reduction. However, the relaxations were not abolished. 6. Nicotine-induced relaxations were abolished by tetrodotoxin (1 mumol/L) or hexamethonium (100 mumol/L), indicating that they were due to activation of neuronal nicotinic receptors. Their reduction by methylene blue and L-NAME indicates that an NO-like mediator was involved. Their reduction by chymotrypsin indicates that a VIP-like peptide was involved. However, since they were not abolished by a combination of L-NAME and chymotrypsin, it appears that at least one more as yet unidentified mediator may be involved.

Animals↗

Differential activation of adrenoceptor subtypes by noradrenaline applied from the intimal or adventitial surfaces of rat isolated tail artery.

1. The vasoconstrictor effects of noradrenaline applied to the intimal and adventitial surfaces of perfused segments of rat tail artery in the presence and absence of endothelium were studied. 2. Noradrenaline was about six times more potent as a vasoconstrictor when applied to the intimal than to the adventitial surface. Cocaine (25 mumol/L) enhanced responses to adventitial noradrenaline to a greater extent than those to intimal noradrenaline. A high concentration of propranolol (1 mumol/L) had a similar effect. 3. The vasoconstriction elicited by adventitial noradrenaline declined from a peak whereas that to intimal noradrenaline remained steady. A low concentration of propranolol (0.1 mumol/L) abolished the decline in the response to adventitial noradrenaline. 4. The alpha 1- and alpha 2-adrenoceptor antagonists prazosin (1 nmol/L) and idazoxan (100 nmol/L) significantly reduced responses to intimal and adventitial noradrenaline in the presence or absence of endothelium. 5. Removal of endothelium enhanced responses to intimal but not adventitial noradrenaline. Idazoxan produced a significantly greater reduction of responses to noradrenaline in the absence than in the presence of endothelium, and was more effective against intimal than adventitial noradrenaline. Similar effects were produced by the nitric oxide synthase inhibitor L-NAME (30 mumol/L). 6. It was concluded that noradrenaline acts on both alpha 1- and alpha 2-adrenoceptors to produce vasoconstriction: the alpha 1-adrenoceptors appear to be uniformly distributed, whereas alpha 2-adrenoceptors are located nearer the intima. Intimal noradrenaline also acts on endothelial alpha 2-adrenoceptors to release EDRF which counteracts the vasoconstrictor action of noradrenaline.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenergic alpha-Antagonists↗

Inhibition by alpha 2-adrenoceptor agonists of contractions of rabbit isolated colon elicited by pelvic nerve stimulation.

1. Segments of rabbit distal colon were set up for isotonic recording and the extrinsic pelvic parasympathetic nerves were stimulated for 30 s periods at 2 Hz. 2. Atropine (100 nM) abolished acetylcholine-induced contractions, but only partly reduced responses to nerve stimulation. 3. Clonidine and related compounds, UK14819, UK14304, UK15121, UK11957 and UK42620, inhibited nerve stimulation-evoked contractions at concentrations which had no effect on the response to exogenous acetylcholine, suggesting that the compounds inhibited transmitter release. 4. The imidazolidine compounds UK14819, UK14304 and UK15121 had three to five times the potency of clonidine. Another imidazolidine, UK11957, was about three times less potent than clonidine and appeared to have lower intrinsic activity. The morpholinocatechol UK42620 was about 100 times less potent than clonidine. Phenylephrine was about 10,000 times less potent than clonidine. 5. Idazoxan (1-10 microM) and yohimbine (300 nM-3 microM) reversed the depressant effects of clonidine and the UK compounds, indicating that the effects were exerted on alpha 2-adrenoceptors. This was confirmed by the finding that the slope of Schild plot of idazoxan against UK14304 was close to unity with the pA2 value = 7.14. 6. Atropine-resistant neurogenic contractions were completely abolished by UK14819 (100 nM) and this effect was completely reversed by idazoxan (10 microM). 7. Depending on other (especially centrally mediated) effects, the more potent inhibitors of neurogenic colonic motor activity, with their higher alpha 2-adrenergic agonist activity, may have advantages over clonidine as antidiarrhoeal drugs.

Acetylcholine↗

Differential effects of hydroxocobalamin on NO-mediated relaxations in rat aorta and anococcygeus muscle.

In rat aortic rings, hydroxocobalamin (10-30 microM) produced concentration-dependent reductions of the relaxant action of nitric oxide (NO) and the endothelium-dependent, NO-mediated, relaxant action of acetylcholine. In anococcygeus muscles, hydroxocobalamin (10-30 microM) reduced but also prolonged, NO-induced relaxations, but had no effect on non-adrenergic, non-cholinergic-mediated relaxations. Hydroxocobalamin had no effect on the NO-independent relaxant action of papaverine in either tissue. It is suggested that hydroxocobalamin sequesters NO by forming nitrosocobalamin. Nitrosocobalamin did not relax aortic rings, but produced a slowly developing and prolonged relaxation of anococcygeus muscles.

Acetylcholine↗

Modulation of acetylcholine-induced contractions of the rat anococcygeus muscle by activation of nitrergic nerves.

1. Acetylcholine-induced contractions of the rat isolated anococcygeus muscle were blocked by atropine (0.1 microM), slightly enhanced by hexamethonium (0.1 mM) and tetrodotoxin (1 microM), but little affected by prazosin (0.1 microM). 2. In the presence of the alpha 2-adrenoceptor agonist, UK14304, which raised the tone of the muscle, acetylcholine had a biphasic effect consisting of an initial relaxation followed by a contraction. 3. Atropine (0.1 microM) enhanced the relaxant component and abolished the contractile component of the response, whereas tetrodotoxin, omega-conotoxin GVIA or hexamethonium abolished or greatly reduced the relaxant component. 4. The nitric oxide synthesis inhibitor NG-nitro-L-arginine methyl ester (L-NAME, 100 microM) increased acetylcholine-induced contractions in the absence of UK14304 and markedly reduced the relaxant component to acetylcholine in the presence of UK14304. The effects of L-NAME were annulled by L-arginine (300 microM). 5. The results suggest that acetylcholine acts concurrently on muscarinic receptors of the smooth muscle to cause contraction and nicotinic receptors of nitrergic nerves to cause relaxation. The observed response is the resultant of these two opposing effects and depends also on the prevailing tone.

Acetylcholine↗

An inhibitory effect of isoprenaline on stimulation-induced noradrenaline release from rat atria.

Isoprenaline (0.1 microM), in the presence of phentolamine (1 microM) to block autoinhibitory alpha-adrenoceptors, significantly increased the efflux of radioactivity produced by field stimulation (2 Hz for 60 s) from rat isolated atria in which the noradrenergic transmitter stores had been labelled with [3H]noradrenaline. This facilitatory effect of isoprenaline on noradrenergic transmission was not affected by the selective beta 1-adrenoceptor antagonist CGP 20712A (0.3 microM). However, the selective beta 2-adrenoceptor antagonist ICI 118551 (0.1 microM) not only abolished the facilitatory effect of isoprenaline but reversed it to an inhibitory effect, indicating that the prejunctional beta-adrenoceptors subserving facilitation of noradrenergic transmission in rat atria are of the beta 2-subtype. The inhibitory effect of isoprenaline that was revealed by blockade of beta 2-adrenoceptors was abolished by atenolol (3 microM) in a concentration which markedly reduced the effect of isoprenaline on the rate of atrial beating. This finding suggests that activation of beta 1-adrenoceptors on atrial myocytes by isoprenaline may have resulted in release of one or more substance(s) which inhibited stimulation-induced release of noradrenaline, presumably by activating prejunctional receptors. The inhibitory effect of isoprenaline on noradrenergic transmission was not affected by the prostaglandin synthesis inhibitor indomethacin (10 microM) suggesting that prostaglandins were not involved.

Adrenergic alpha-Antagonists↗

Activation of noradrenergic and nitrergic mechanisms in the rat anococcygeus muscle by nicotine.

1. Nicotine (10 mumol/L) produced rapidly developing but transient contractions of anococcygeus muscle isolated from rats. The magnitude of the response varied considerably between preparations. Tachyphylaxis occurred, such that no response was elicited by the same or a larger concentration in the continued presence of 10 mumol/L nicotine. 2. Contractions produced by nicotine were not affected by atropine, but were abolished by Hexamethonium and the alpha-adrenoceptor antagonists prazosin and phentolamine. Contractions were absent in the anococcygeus muscles of rats pretreated with reserpine. 3. The alpha 2-adrenoceptor agonist UK14304, or guanethidine, raised the tone of the anococcygeus muscle, and converted responses to field stimulation and nicotine to relaxations. Nicotine-induced relaxations were more pronounced in the presence of UK14304 than guanethidine. 4. Relaxations produced by nicotine (1-18 mumol/L) were transient, and tachyphylaxis occurred. When precautions were taken to avoid tachyphylaxis, concentration-response curves could be constructed. The relaxations elicited by nicotine were abolished or greatly reduced by hexamethonium, tetrodotoxin or omega-conotoxin GVIA. 5. The nitric oxide synthase inhibitor L-NG-nitroarginine methyl ester (90 mumol/L) enhanced contractile responses to field stimulation and nicotine, and markedly reduced relaxations elicited by field stimulation and nicotine in the presence of UK14304. These relaxations were restored by L-arginine (270 mumol/L). 6. The results suggest that nicotine acts on nicotinic receptors of noradrenergic and nitrergic nerve terminals in the rat anococcygeus muscle, resulting in the release of noradrenaline and nitric oxide respectively.

Adrenergic alpha-Agonists↗

Nitrergic transmission: nitric oxide as a mediator of non-adrenergic, non-cholinergic neuro-effector transmission.

1. The possibility that transmission at some non-adrenergic, non-cholinergic (NANC) neuro-effector junctions is mediated by nitric oxide (NO) arose from the discoveries that NO mediated the effects of nitrovasodilator drugs and that endothelium-derived relaxing factor (EDRF) was NO or a NO-yielding substance. 2. NO donated by nitrovasodilator drugs or formed by endothelial cells activates soluble guanylate cyclase in smooth muscle and the consequent increase in cyclic guanosine monophosphate (cGMP) results in relaxation. The relaxations produced by stimulation of some NANC nerves are also due to a rise in cGMP. 3. The biosynthesis of NO by oxidation of a terminal guanidino nitrogen of L-arginine is inhibited by some NG-substituted analogues of L-arginine. These substances block EDRF formation by NO synthase and endothelium-dependent vasodilatation, and the blockade is overcome by L-arginine 4. NANC relaxations in some tissues are blocked by NG-substituted analogues of L-arginine and restored by L-arginine. Other agents that affect endothelium-dependent vasodilator responses produce corresponding changes in responses to stimulation of these NANC nerves. Such observations indicate that transmission is mediated by NO: we have termed this mode of transmission nitrergic. 5. There is evidence for nitrergic innervation of smooth muscle in the gastrointestinal tract, genito-urinary system, trachea and some blood vessels (penile and cerebral arteries). 6. The recognition of a mediator role for NO in neurotransmission calls for reconsideration of previously accepted generalizations about mechanisms of transmission. 7. Studies on nitrergic transmission will provide new insights into physiological control mechanisms and pathophysiological processes and may lead to new therapeutic developments.

Animals↗

Effects of argininosuccinic acid on nitric oxide-mediated relaxations in rat aorta and anococcygeus muscle.

1. Argininosuccinic acid (ASA), a naturally occurring NG derivative of arginine, and the nitric oxide synthase (NOS) inhibitor NG-nitro-L-arginine methyl ester (L-NAME) were compared for their ability to reduce responses to nitric oxide (NO) derived from endothelial cells (aorta) and nitrergic nerves (anococcygeus muscle). 2. In isolated rings of rat aorta, endothelium-dependent relaxation responses to acetylcholine were abolished by L-NAME (0.1 mmol/L) and were reduced by ASA (0.1 and 0.3 mmol/L). Relaxations induced by sodium nitroprusside (SNP) were not affected by L-NAME but were reduced by ASA. 3. In rat isolated anococcygeus muscles, relaxations elicited by nitrergic nerve stimulation at 1 Hz were abolished by L-NAME (0.1 mmol/L) but were only slightly reduced by ASA (1 mmol/L). The effect of ASA was not sustained. L-Arginine (1 mmol/L) prevented the effect of L-NAME but not that of ASA. Neither ASA or L-NAME inhibited SNP-induced relaxation in the anococcygeus muscle. 4. The results suggest that ASA inhibits NOS but this does not totally account for its effects in reducing NO-mediated relaxations produced by the endothelium-dependent vasodilator acetylcholine in rat aortic rings and stimulation of nitrergic nerves in the rat anococcygeus muscle.

Animals↗

Renal vasoconstriction is modulated by nitric oxide.

1. The effect of the nitric oxide synthesis inhibitor, NG-nitro-L-arginine (NOLA), has been examined on vascular reactivity in the rat isolated perfused kidney. 2. NOLA (10 mumol/L) had no effect on basal perfusion pressure, but significantly enhanced the vasoconstrictor responses to sympathetic nerve stimulation (1-16 Hz, 10 s) and noradrenaline (10-300 pmol). The enhancements were greater with the lower frequencies of stimulation and lower doses of noradrenaline. 3. The enhancing effect of 10 mumol/L NOLA on vasoconstrictor responses to nerve stimulation was partially prevented by 100 mumol/L L-arginine while 100 mumol/L D-arginine had no effect. 4. The results suggest that nitric oxide attenuates vasoconstrictor responses in the rat kidney, and provide evidence that nitric oxide has a physiological role in the modulation of vascular reactivity.

Animals↗

Attenuation of vasoconstriction by endogenous nitric oxide in rat caudal artery.

1. The effects of NG-nitro-L-arginine (L-NNA), NG-nitro-L-arginine methyl ester (L-NAME), haemoglobin and methylene blue have been examined on vascular reactivity in the rat isolated caudal artery. The effects of L-NNA and sodium nitroprusside were also investigated on the stimulation-induced (S-I) efflux of noradrenaline in the rat caudal artery. 2. L-NNA (10 microM) and L-NAME (10 microM) significantly attenuated the vasodilator responses to acetylcholine (1 nM-1 microM), but had no effect on vasodilator responses to papaverine (1-100 microM). 3. Vasoconstrictor responses to sympathetic nerve stimulation (3 Hz, 10 s), noradrenaline (0.01-1 microM), methoxamine (1-10 microM), 5-hydroxytryptamine (0.01-0.3 microM), phenylephrine (0.1-10 microM), endothelin-1 (10 nM) and KCl (40 mM) were significantly enhanced by 10 microM L-NNA. L-NAME (10 microM) caused a significant enhancement of vasoconstrictor responses to noradrenaline and sympathetic nerve stimulation in endothelium-intact, but not in endothelium-denuded tissues. 4. Haemoglobin and methylene blue (both 10 microM) enhanced the vasoconstrictor responses to sympathetic nerve stimulation and noradrenaline. The enhancements were absent in endothelium-denuded arterial segments. 5. In endothelium-denuded arterial segments precontracted with phenylephrine, the vasodilator responses to the nitric oxide donor, sodium nitroprusside (0.1-300 nM) were decreased by increasing the level of precontraction. 6. L-NNA (10 microM) had no effect on the S-I efflux of radioactivity from arteries in which transmitter stores had been labelled with [3H]-noradrenaline. 7. These results suggest that endothelial nitric oxide attenuates vasoconstrictor responses in the rat caudal artery through activation of soluble guanylate cyclase to decrease smooth muscle contractility. Therefore, the findings provide evidence that nitric oxide acts as a functional antagonist to oppose vasoconstriction.

Acetylcholine↗

Endothelial nitric oxide attenuates vasoconstrictor responses to nerve stimulation and noradrenaline in the rat tail artery.

The effects of the nitric oxide synthesis inhibitor, NG-nitro-L-arginine (NOLA), have been examined in perfused segments of rat tail artery. NOLA (1 and 10 microM) significantly enhanced the vasoconstrictor responses to perivascular nerve stimulation (5 Hz, 10 s) and noradrenaline (10 ng). The enhancing effects of NOLA were prevented by L-arginine, but not by D-arginine, and were absent in endothelium-denuded artery segments. The results suggest that nitric oxide derived from endothelial cells attenuates vasoconstrictor responses to both nerve stimulation and noradrenaline.

Acetylcholine↗

Mechanisms of vasoconstrictor responses to KCl in rat isolated perfused tail arteries: interaction with the alpha 2-adrenoceptor agonist UK14304.

The vasoconstriction in rat tail arteries during exposure to 56 mM KCl for 2-5 min consisted of an initial sharp peak followed by a secondary plateau. Both components were reduced by the alpha 1-adrenoceptor antagonists prazosin and WB4010. In arteries from reserpine-pretreated rats, the plateau was markedly reduced and only slightly further attenuated by prazosin, however the initial peak was not reduced but was now not affected by prazosin. Thus, the response to KCl in arteries from normal rats is partly due to release of noradrenaline, and this occurs to a greater extent in the plateau than in the peak component. Addition of UK14304 during the plateau reduced the vasoconstriction in arteries from normal rats; however, in arteries from reserpine-pretreated rats there was increased vasoconstriction. These effects of UK14304 were abolished by idazoxan and were not affected by prazosin, and can be attributed to prejunctional inhibition of noradrenaline release in arteries from normal rats and postjunctional enhancement of vasoconstriction in arteries from reserpine-pretreated rats.

Adrenergic alpha-Agonists↗

Interactions between endothelin-1 and other chronotropic agents in rat isolated atria.

In isolated spontaneously beating right and left atria and in electrically driven left atrium from rat, endothelin-1 increased the rate and force of contraction, but significantly decreased the positive chronotropic and inotropic responses to sympathetic nerve stimulation. The decrease may be partly dependent on the positive cronotropic and inotropic effects of endothelin-1, since other agents with chronotropic activity (noradrenaline, isoprenaline, serotonin and Bay k 8644) also decreased stimulation-induced chronotropic responses. Endothelin-1 caused a significant rightward shift of the linear portion of the log concentration-response curve for the chronotropic actions of noradrenaline and isoprenaline. The changes in the log concentration-response curve were not a consequence of the direct chronotropic effect of endothelin-1, since they were still evident when the chronotropic action of endothelin-1 was offset by carbachol. Furthermore, the chronotropic agent, Bay k 8644, did not shift the linear portion of the log concentration-response curves for noradrenaline and isoprenaline. The mechanism of the effects of endothelin-1 in rat atria is not known, but they were not changed by blockade of alpha-adrenoceptors or of L-type voltage-sensitive Ca2+ channels.

3-Pyridinecarboxylic acid, 1,4-dihydro-2,6-dimethy↗

Differential sensitivities of avian and mammalian neuromuscular junctions to inhibition of cholinergic transmission by omega-conotoxin GVIA.

Nerve stimulation-induced contractions of the chick biventer cervicis muscle were slowly reduced by omega-conotoxin. However, omega-conotoxin had no effect on skeletal muscle function after i.v. injection in mice or on nerve stimulation-induced contractions of focally innervated muscle of the rat diaphragm or the rabbit proximal oesophagus, or the multiply innervated extra-ocular rectus muscle from rabbit. The lack of effect of omega-conotoxin on mammalian neuromuscular junctions was not due to the high safety factor in transmission or to a high local concentration of Ca2+ originating from the muscle, and could not be accounted for in terms of the operation of facilitatory or inhibitory feedback modulation of transmitter release from motoneurone terminals. It is concluded that the Ca2+ channels of mammalian motoneurone terminals differ from those of avian motoneurone terminals and other omega-conotoxin-sensitive nerve terminals.

Animals↗

Modulation of norepinephrine-induced vasoconstriction by endothelin-1 and nitric oxide in rat tail artery.

The effects of endothelin-1 (ET-1) and an inhibitor of the synthesis of nitric oxide (NO) have been examined on vasoconstrictor responses to nerve stimulation and norepinephrine in the rat isolated perfused tail artery. In endothelium-denuded preparations, a 60-min exposure to 0.3 nM ET-1 had no effect on the basal perfusion pressure, but significantly enhanced responses to stimulation (1 Hz, 10 s) and norepinephrine (10 ng) to 124 +/- 9% (n = 6) and 139 +/- 14% (n = 8), respectively, of control responses. In endothelium-intact preparations, inhibition of NO synthesis by NG-nitro-L-arginine (NOLA, 10 microM) enhanced responses to stimulation (5 Hz, 10 s) and norepinephrine (10 ng) to 171 +/- 12% (n = 6) and 222 +/- 9% (n = 4), respectively, of control responses. The NOLA-induced enhancements were prevented by 100 microM L-arginine but not by 100 microM D-arginine, and did not occur in endothelium-denuded arteries. In other experiments, segments of rat tail artery were perfused in a low-volume (3.5 ml) recirculating system. The basal perfusion pressure was consistent for at least 60 min. In endothelium-denuded segments, vasoconstrictor responses to nerve stimulation (0.5 Hz, 10 s) or norepinephrine (10 ng) remained constant. However, in endothelium-intact segments, responses to stimulation and norepinephrine gradually increased to 158 +/- 13% (n = 6) and 152 +/- 8% (n = 5), respectively, of initial responses, after 45 min of recirculation. The increases were not related to NO, as they remained unchanged in the presence of 10 microM NOLA. Thus, it appears that a vasoconstriction-enhancing factor, possibly ET-1, is released from endothelial cells and accumulates in the perfusion fluid.

Animals↗