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J C Wanstall

Publications and source records attributed to J C Wanstall.

At least 19 recordsLinked to original sources

Reduced relaxant potency of nitroprusside on pulmonary artery preparations taken from rats during the development of hypoxic pulmonary hypertension.

1. Relaxant responses to nitroprusside were examined on U46619-contracted pulmonary artery ring preparations from rats exposed to hypoxia, in chambers containing 10% oxygen, for 1, 3, or 14 days, or for 14 days followed by 12 days in room air. Control rats were housed in room air. 2. After 3 days of hypoxia (but not 1 day), rats had elevated pulmonary artery pressure, right ventricular hypertrophy and polycythemia. After 14 days of hypoxia there was, in addition, hypertrophy of the pulmonary artery. In rats returned to room air for 12 days after 14 days of hypoxia, there was still some right ventricular and vascular hypertrophy but no increase in pulmonary artery pressure or polycythemia. 3. The potency (neg log EC50) of nitroprusside on pulmonary arteries taken from rats after 3 or 14 days of hypoxia was significantly less than on preparations from control rats (3 and 11 fold, respectively). This was not seen after 1 day of hypoxia or after 14 days of hypoxia followed by 12 days in room air. Removal of the endothelium from the preparations had no effect on the potency of nitroprusside in control or hypoxic rats (14 days). 4. In preparations from hypoxic, but not control, rats (14 days), the maximum response to nitroprusside was > 100% (177% reversal of the U46619 contraction) in the absence, but not in the presence, of the endothelium, indicating that pulmonary arteries from hypoxic rats had inherent tone which could be counteracted by a relaxing factor from the endothelium. 5. Exposure of rats to hypoxia (14 days) did not affect the potency of nitroprusside on aorta or trachea.6. It is concluded that exposure of rats to hypoxia results in reversible desensitization of the vascular smooth muscle of pulmonary artery to nitroprusside. The time course of this desensitization suggests that it is probably associated with the elevated pulmonary artery pressure or maintained hypoxaemia rather than with the vascular hypertrophy.7. It is postulated that the increase in pulmonary artery pressure and/or the maintained hypoxaemia may cause chronic release of nitric oxide from the pulmonary vascular endothelium or smooth muscle resulting in desensitization of soluble guanylate cyclase to the action of nitroprusside.

Animals

Responses to vasodilator drugs on pulmonary artery preparations from pulmonary hypertensive rats.

1. Relaxant responses to six vasodilator drugs, with different mechanisms of action, were examined on noradrenaline (0.1 microM)-contracted ring preparations of pulmonary artery and aorta taken from rats with pulmonary hypertension induced by monocrotaline or chronic hypoxia. 2. On pulmonary artery preparations from monocrotaline-treated rats, compared with controls, (a) the maximum relaxation to pinacidil and cromakalim was significantly increased, but their potency (negative log EC50) was unchanged, (b) the potencies of nitroprusside and sodium nitrite were significantly reduced (10 fold and 3 fold respectively), but there was no change in the maxima, (c) for nicorandil there was an increase in maximum relaxation and a decrease in potency (3 fold), and (d) for atriopeptin II there was no change in potency or maximum. 3. The increase in maximum relaxation for pinacidil and the decrease in potency for nitroprusside were also demonstrated in pulmonary artery preparations from rats with chronic hypoxic pulmonary hypertension. The other four drugs were not examined in preparations from hypoxic rats. 4. In both models of pulmonary hypertension, no change in maximum response or potency was seen on aortic preparations for any of the vasodilator drugs. 5. In control preparations, none of the drugs was more potent on pulmonary artery than on aorta (i.e. they were not pulmonary-selective). In preparations from pulmonary hypertensive rats, pinacidil was selective for pulmonary artery, in contrast to nitroprusside which was selective for aorta.6. It is concluded that the development of pulmonary hypertension in rats is accompanied by changes in the responsiveness of the pulmonary arteries to some vasodilator drugs; whether or not these changes occur depends on the mechanism of action of the vasodilator drug, but they are independent of the method of inducing pulmonary hypertension.7. It is postulated that the reduction in potency seen for nitroprusside, sodium nitrite and nicorandil may be due to desensitization of soluble guanylate cyclase in pulmonary vascular smooth muscle in pulmonary hypertension.

Animals

Increased relaxation by felodipine on pulmonary artery from rats with monocrotaline-induced pulmonary hypertension does not reflect functional impairment of the endothelium.

The effects of the calcium entry blocking drug, felodipine, were examined against the spasmogens, noradrenaline, 5-hydroxytryptamine (5-HT) and endothelin on pulmonary artery preparations taken from rats treated with saline or monocrotaline (endothelium present) and from untreated rats (endothelium removed). In saline-treated rats, the potencies (negative log EC50) of noradrenaline, 5-HT and endothelin were 7.97, 5.25 and 8.39 respectively, and felodipine (10 nM) reduced the maximum responses to noradrenaline (28% reduction) and 5-HT (47% reduction), without reducing their potency. In monocrotaline-treated rats, the potencies of noradrenaline, 5-HT and endothelin were 8.43, 6.42 and 8.44, and felodipine significantly reduced the potencies of noradrenaline (0.60 log units) and 5-HT (0.48 log units) in addition to reducing their maximum responses (60% and 69% reductions, respectively). Felodipine had no effect on endothelin in either group of rats. Removal of the endothelium caused a small increase in the potency of 5-HT, but had no influence on the other spasmogens or on the effects of felodipine. It is concluded that monocrotaline treatment of rats leads to increases in a) the potencies of noradrenaline and 5-HT on pulmonary artery, and b) the effectiveness of felodipine against these two spasmogens. Neither of these increases can be attributed to monocrotaline-induced endothelial cell damage.

Animals

Tissue selectivity and spasmogen selectivity of relaxant drugs in airway and pulmonary vascular smooth muscle contracted by PGF2 alpha or endothelin.

1. The spasmolytic effects of smooth muscle relaxant drugs with different mechanisms of action have been examined on isolated preparations of guinea-pig trachea and rat pulmonary artery. The preparations were contracted with concentrations of prostaglandin F2 alpha (PGF2 alpha) or endothelin selected to give approximately 80% of the agonist maximum response on each tissue. These concentrations also caused similar levels of tone (% of tissue maximum contraction) on each tissue. 2. With endothelin as the spasmogen, the potassium channel opening drug, pinacidil, was more potent on trachea (-log IC50 5.49) than on pulmonary artery (4.39), i.e. was airway-vascular selective, whereas with PGF2 alpha as the spasmogen it was more potent on pulmonary artery (6.01) than on trachea (5.27), i.e. was vascular-airway selective. 3. With endothelin as the spasmogen, fenoterol was also airway-vascular selective (8.35 on trachea; little effect on pulmonary artery), nitroprusside was vascular-airway selective (7.50 on pulmonary artery; 5.99 on trachea) and forskolin was non-selective (6.69 on trachea; 6.70 on pulmonary artery). Thus, the airway-vascular selectivity of the relaxant drugs varied with the drug. 4. On pulmonary artery, pinacidil, nitroprusside and forskolin were all more potent against PGF2 alpha than against endothelin, i.e. 42, 4 and 7 fold respectively. On trachea, these drugs were equipotent against PGF2 alpha and endothelin. 5. The results suggest that, in pulmonary artery, but not in trachea, the relative contribution of protein kinase C activation and calcium influx to the maintenance of tonic contractions to endothelin and PGF2 alpha may be different. If protein kinase C activation should be the predominant mechanism for endothelin in pulmonary artery, then it may be more difficult to reverse this with relaxant drugs that lower intracellular calcium. 6. The study indicates that the airway-vascular selectivity of relaxant drugs can be spasmogen-dependent as well as dependent on the mechanism of action of the relaxant drug. Thus, relaxant drugs, whether of interest for their airway or vascular effects, should be tested against a full range of spasmogens of likely pathophysiological importance.

Animals

Endothelin-induced contractions of rat pulmonary artery are not affected by drugs acting on potassium channels.

The effects of the potassium channel opening drug, pinacidil, and the potassium channel closing drug, tetraethylammonium (TEA), on concentration-response (contraction) curves to spasmogens on rat pulmonary artery were examined. Pinacidil (3 microM) decreased, and TEA (2 mM) increased contractions to 5-hydroxytryptamine (5-HT) more than it did to noradrenaline but contractions to endothelin-1 were only minimally affected. It is concluded that the mechanism whereby endothelin-1 contracts rat pulmonary artery differs from that of noradrenaline or 5-HT in that it does not involve membrane depolarization or calcium entry through voltage operated calcium channels.

Animals

Endothelin and 5-hydroxytryptamine on rat pulmonary artery in pulmonary hypertension.

Contractile responses to endothelin, 5-hydroxytryptamine (5-HT), noradrenaline and potassium were obtained on isolated preparations of pulmonary artery from rats made pulmonary hypertensive by an injection of monocrotaline (105 mg/kg s.c.) 4 weeks previously. When compared with data obtained in control rats, the potencies (negative log EC50 values) for 5-HT, noradrenaline and potassium were increased (30, 3- and 3-fold, respectively), and the maximum contractions (mN/mm2) to endothelin, noradrenaline and potassium were reduced (65, 40 and 45% reduction). These changes were not seen 2 weeks after injection of monocrotaline, before pulmonary hypertension developed, or in preparations of aorta. It is concluded that monocrotaline-induced pulmonary hypertension affects pulmonary vascular responsiveness to spasmogens differentially. The comparative importance of endothelin and 5-HT as pulmonary vasoconstrictors may change in monocrotaline-induced pulmonary hypertension, there being an increase in responsiveness to 5-HT and a decrease in responsiveness to endothelin.

Acetylcholine

Pinacidil antagonism of endothelin-induced contractions of smooth muscle in the lungs: differences between tracheal and pulmonary artery preparations.

Contractions to endothelin and their reversal by pinacidil have been examined in isolated preparations of guinea pig and rat trachea and rat pulmonary artery. Indomethacin attenuated endothelin (less than or equal to 10 nM) on guinea pig trachea, but not on the rat tissues. This indicates that part of the effect of endothelin on guinea pig trachea is indirect and mediated by cyclooxygenase products. Endothelin (direct effects) was more potent on pulmonary artery than on guinea pig or rat trachea (negative log EC50 values: 8.42, 7.71 and 7.76, respectively) and was also a more effective spasmogen on pulmonary artery (maximum was the tissue maximum, i.e., greater than or equal to 80 mM K+) than on trachea (maximum was 60-70% of the tissue maximum to 10 microM carbachol). Pinacidil was less effective preventing (anti-spasmogenic) than reversing (spasmolytic) contractions to endothelin on either tissue type. This is compatible with different mechanisms for the initiation and maintenance of smooth muscle contraction in these tissues. As a spasmolytic against endothelin (0.03 microM), pinacidil was less potent on rat pulmonary artery than on guinea pig or rat trachea (negative log IC50 values: 4.45, 5.65 and 5.49, respectively). This may reflect 1) the greater tone induced by endothelin on pulmonary artery, 2) a smaller receptor reserve for endothelin in trachea and/or 3) a different mechanism whereby endothelin contracts pulmonary vascular smooth muscle compared with tracheal smooth muscle.

Animals

Influence of age on calcium entry blocking drugs in rat aorta is spasmogen-dependent.

On rat aorta, diltiazem (0.2 microM) caused parallel shifts in the Ca2+ concentration-response curves (K+-depolarized preparations). In aged (greater than 19 months) rats, this shift (0.57 log units) was smaller than in young (2 months) rats (1.04 log units) indicating an age-related reduction in the potency of diltiazem. Felodipine (10 nM), like diltiazem (1 microM) in a previous study, depressed the maximum response to noradrenaline more in preparations from aged rats (40% reduction) than from young rats (14% reduction). This increase in the effect of felodipine or diltiazem vs. noradrenaline reflected a reduction in the alpha-adrenoceptor reserve for noradrenaline. Accordingly, the depression in the maximum responses to other spasmogens (5-HT or K+) by 1 microM diltiazem was not increased by age (5-HT, young 59%, aged 49% reduction; K+, young 65%, aged 70% reduction). This aging can have two opposing influences on the effects of Ca2+ entry blocking drugs on rat aorta - a decrease in potency, yet an increase in effectiveness against spasmogens with a reduced receptor reserve.

Aging

Vasodilator responses to dopamine in rat perfused mesentery are age-dependent.

1. Dose-dependent vasodilator responses to dopamine, isoprenaline, noradrenaline, 3-isobutyl-1-methylxanthine (IBMX) and sodium nitroprusside were obtained in isolated perfused mesentery preparations, taken from reserpine-treated rats of different ages. The preparations were pretreated with phenoxybenzamine (1 microM) and perfused with physiological salt solution containing cocaine (10 microM), additional KCl (20 mM) and vasopressin (0.1 microM). 2. Vasodilator responses to dopamine were abolished by the dopamine1 (DA1)-selective antagonist SCH 23390 (10 nM) and those to isoprenaline by propranolol (1 microM), but the vasodilator responses to noradrenaline were abolished only when SCH 23390 and propranolol were used together. This indicated that dopamine was acting via DA1-receptors, isoprenaline via beta-adrenoceptors and that noradrenaline could act via DA1-receptors and beta-adrenoceptors in this preparation. 3. Responses to all the vasodilator drugs decreased in magnitude between the ages of 1 and 2 months. Responses to dopamine declined further in 4 month-old rats and were negligible at 6 or 22-24 months of age. Responses to isoprenaline were well maintained up to 6 months of age, but were negligible at 22-24 months. 4. It is concluded that, in the rat mesenteric vasculature, there is a non-specific decline in responses to vasodilator drugs during development (1 to 2 months). Subsequently there is a specific decline in DA1-receptor-mediated and beta-adrenoceptor-mediated responses; the former are lost at an earlier age than the latter. This different time course suggests that age influences receptor numbers, or their coupling to adenylate cyclase, rather than a post-receptor event in the adenylate cyclase/cyclic AMP pathway.

Aging

Age-dependence of the effects of pinacidil on rat aorta.

The effect of the K+ channel opening drug, pinacidil, has been examined on aortic ring preparations from young (2 months) and aged (greater than 24 months) rats. The potency (neg log IC50) values for pinacidil in relaxing K+ (20 mM)-contracted preparations were in the range expected for its K+ channel opening (hyperpolarizing) effects but were not significantly different between young (6.34) and aged (6.31) rats. Thus, ageing does not affect the drug's potency as a K+ channel opening drug. The more marked depression of the maximum response to noradrenaline by pinacidil (10 microM) in aged rats (85% reduction) compared with young rats (43% reduction), reflected a reduced alpha-adrenoceptor reserve for noradrenaline in preparations from aged rats. Pinacidil, in concentrations greater than 10 microM, was able to relax preparations contracted with 80 mM K+ suggesting that it may have a second mechanism which does not involve hyperpolarization. It was more potent in producing this effect on the preparations from aged rats.

1-Methyl-3-isobutylxanthine

Age influences responses of rat isolated aorta and pulmonary artery to the calcium channel agonist, Bay K 8664, and to potassium and calcium.

Responses of isolated ring preparations of aorta and pulmonary artery from young (2 months) and aged (19-21 months) rats have been obtained to five contractile agents with differing mechanisms of action. The potencies (negative log EC50 values), but not the absolute maximum contractions (mN/mm2), for potassium, calcium (in K+-depolarized preparations), and the calcium channel activator, Bay K 8644, were all reduced in preparations from aged, compared with young, rats, and this reduction was more pronounced in aorta than in pulmonary artery. In contrast, the age of the rats had no influence on responses (potency or maximum contractions) to caffeine or the ionophore, A23187, indicating that the contractile ability of the preparations per se was retained in the aged rats. Aortic preparations from young rats contracted to Bay K 8644 without prior depolarization, whereas those from aged rats required partial depolarization (with 6 mM KCl) before consistent contractile responses to Bay K 8644 could be obtained. It is concluded that the influence of age on vascular contractions varies (a) between contractile agents, depending on their mechanisms of action and (b) between blood vessel types. To explain the reduced potencies of Bay K 8644, potassium, and calcium in aorta from aged rats, it is postulated that the resting membrane potential may be more negative in the preparations from the aged rats.

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

Inhibition of norepinephrine contractions by diltiazem on aorta and pulmonary artery from young and aged rats: influence of alpha-adrenoceptor reserve.

Inhibition of contractile responses to norepinephrine by either diltiazem (1 microM) or by reducing the extracellular calcium (from 2.5-0.25 mM) has been examined on isolated ring preparations of aorta and pulmonary artery from young (2 months old) and aged (19-21 months old) rats. On aorta, the reduction in the norepinephrine maximum contraction by diltiazem was significantly greater in aged rats (40% reduction) than in young rats (12% reduction). The results obtained by reducing the extracellular calcium were indistinguishable from those with diltiazem (reduction in norepinephrine maximum: aged, 55%; young, 19%). The potency (negative log EC50) of norepinephrine was less in aorta from aged than from young rats. This was not due to a lower affinity (pKA) of norepinephrine for the alpha adrenoceptors, but to a reduced alpha adrenoceptor reserve for norepinephrine. On pulmonary artery none of the above age-related changes was seen. It is concluded that, in aorta from aged rats, the inhibitory effect of diltiazem on norepinephrine-induced contractions is enhanced, and that this is due to the age-related reduction in alpha adrenoceptor reserve in this vessel.

Age Factors

Influence of thyroid status on responses of rat isolated pulmonary artery, vas deferens and trachea to smooth muscle relaxant drugs.

1 Responses to relaxant drugs have been examined on isolated KCl-contracted smooth muscle preparations from rats in which thyroid status was changed by prior treatment with either thyroxine (T4) for 1 week (preparations of pulmonary artery, trachea and vas deferens) or methimazole for 10-12 weeks (pulmonary artery preparations). 2 On pulmonary artery preparations, T4 treatment caused a significant increase in the magnitude of the relaxant responses to noradrenaline and isoprenaline but not those to adrenaline. The potency of noradrenaline was increased 5.6 fold but that of isoprenaline and adrenaline was unchanged. This resulted in a change in the relative potencies from adrenaline greater than noradrenaline (controls) to noradrenaline = adrenaline (T4-treated). Methimazole treatment caused a significant reduction in the magnitude of the responses to noradrenaline and in its potency (2.8 fold). Isoprenaline and procaterol were unaffected. 3 On pulmonary artery preparations, T4 treatment did not affect the magnitude of the responses to forskolin, sodium nitrite or isobutylmethylxanthine (IBMX) or their potency. In vitro treatment with the monoamine oxidase (MAO) inhibitors, iproniazid or pargyline, did not potentiate responses to either noradrenaline or isoprenaline. Therefore, it was concluded that the T4-induced changes in the magnitude of the responses to noradrenaline and isoprenaline and in the potency of noradrenaline were unlikely to be due to reduced activity of cyclic nucleotide phosphodiesterase(s) or MAO. 4 On preparations of vas deferens and trachea, T4 treatment had no effect on the magnitude of the responses to noradrenaline, isoprenaline, adrenaline or procaterol. 5 We concluded that, on pulmonary artery T4 treatment of rats increased, while methimazole treatment reduced, the magnitude of the responses to, and/or the potency of, the beta-adrenoceptor agonists, noradrenaline and isoprenaline, by a mechanism which is specifically associated with the beta-adrenoceptors, and which is probably selective for the beta-subtype. T4 treatment caused no change in responses of vas deferens to beta-adrenoceptor agonists. On trachea the only change was a small increase in the potency of noradrenaline. The differences in the effects of T4 treatment on beta-adrenoceptormediated responses of rat pulmonary artery, vas deferens and trachea may be due to the differences in the beta-adrenoceptor populations of these three tissue types and/or differences in the effects of thyroid hormones on vascular compared with non-vascular smooth muscle.

Animals

Choice and concentration of contractile agent influence responses of rat aorta to vascular relaxant drugs.

Concentration-response (relaxation) curves to diltiazem, forskolin, isobutylmethylxanthine (IBMX), procaterol, isoprenaline and sodium nitrite were obtained on isolated ring preparations of rat aorta contracted either submaximally or maximally with noradrenaline or KCl. Diltiazem was more potent on KCl-contracted than on noradrenaline-contracted preparations whether the preparations were submaximally or maximally contracted. The other relaxant drugs were at least 20-fold less potent against KCl than against noradrenaline, but only on maximally contracted preparations. On submaximally-contracted preparations there was no potency difference between preparations contracted with these two contractile agents. Increasing the KCl concentration had a marked influence on the location of the concentration-response (relaxation) curves to all the drugs except diltiazem. This influence was different for drugs that act via cyclic AMP and those that act via cyclic GMP. It is concluded that both the choice of contractile agent (noradrenaline or KCl) and the concentration (especially of KCl) influence relaxant responses of rat aorta to vasodilator drugs.

Animals

Influence of beta-adrenoceptor-mediated relaxation on alpha-adrenoceptor-mediated contraction of rat pulmonary artery to adrenaline or noradrenaline.

Concentration-response (contraction) curves to either adrenaline or noradrenaline were obtained on isolated ring preparations of pulmonary artery from rats. In preparations from young rats the curve for adrenaline was bell-shaped, unless beta-adrenoceptors were blocked with propranolol (1 X 10(-6) M). The maximum contraction to adrenaline was less in the absence than in the presence of propranolol. In preparations from aged rats the adrenaline curve was no longer bell-shaped, even in the absence of propranolol. This reflected a decrease in the beta-adrenoceptor-mediated relaxant responses of preparations from aged rats, seen as a separation between the concentration-response (relaxation) curves to adrenaline on preparations (phenoxybenzamine-treated, KCl-contracted) from young and aged rats. In preparations from young rats the noradrenaline curve was not bell-shaped, but if the preparations were from young rats treated with thyroxine (T4), then a bell-shaped curve for noradrenaline was obtained, unless beta-adrenoceptors were blocked by propranolol. These data could be explained by an increase in beta-adrenoceptor-mediated relaxant responses of preparations from T4-treated rats, seen as a separation in the concentration-response (relaxation) curves to noradrenaline on preparations from control and T4-treated rats, respectively. Thus alpha-adrenoceptor-mediated contractile responses of rat pulmonary artery preparations, to adrenaline or noradrenaline, can be attenuated by activation of beta-adrenoceptors, mediating relaxation, and the extent of this attenuation changes under the influence of factors, such as ageing or T4-treatment, which modify beta-adrenoceptor-mediated relaxation in this blood vessel type.

Aging

Thyroxine treatment of aged or young rats demonstrates that vascular responses mediated by beta-adrenoceptor subtypes can be differentially regulated.

Responses to vascular relaxant drugs were obtained on KCl (15 mM)-contracted isolated ring preparations of pulmonary artery and aorta from young (1-2 months old) and aged (greater than 16 months old) rats. These vessels contain both beta 1- and beta 2-adrenoceptors. Relaxant responses (i.e. relaxation expressed as a % of the KCl-induced contraction) to isoprenaline, procaterol (beta 2-selective partial agonist), fenoterol (beta 2-selective) and noradrenaline (beta 1-selective) but not those of forskolin, 3-isobutyl-1-methylxanthine, enprofylline or sodium nitrite, were smaller on preparations from aged rats than on those from young rats. Thyroxine (T4)-treatment (1 mg kg-1 s.c. thrice weekly for 3-5 weeks) of aged or young rats enhanced responses to isoprenaline and noradrenaline but reduced those to procaterol, when compared with preparations from age-matched saline-treated control rats. The agonist order of potency, determined in young rats, was isoprenaline greater than noradrenaline greater than adrenaline in preparations from T4-treated rats compared with isoprenaline greater than adrenaline greater than noradrenaline in saline-treated control rats. It is concluded (a) that the age-related decline in vascular responses to beta-adrenoceptor agonists involves beta-adrenoceptor mechanisms specifically and possibly beta 2-adrenoceptors more than beta 1-adrenoceptors; and (b) that T4-treatment of rats enhances beta 1-adrenoceptor-mediated and reduces, or does not change, beta 2-adrenoceptor-mediated responses of preparations of rat pulmonary artery and aorta. In preparations from control rats beta 2-adrenoceptors were functionally predominant but in preparations from T4-treated rats beta 1-adrenoceptors appeared to become functionally predominant.

Adrenergic beta-Agonists

Responses to the beta 2-selective agonist procaterol of vascular and atrial preparations with different functional beta-adrenoceptor populations.

Relaxant responses to the beta-adrenoceptor agonist, procaterol, have been examined on preparations of guinea-pig pulmonary artery (beta 2-adrenoceptors only), rat and rabbit pulmonary artery and rat aorta (beta 2 greater than beta 1), and these responses have been compared with responses of dog left circumflex coronary artery (beta 1 only). Low concentrations of procaterol (3 nM to 100 nM) relaxed KC1-contracted preparations of rat aorta and pulmonary artery from rat, rabbit and guinea-pig whereas high concentrations (greater than 1 microM) were required to relax preparations of the dog left circumflex coronary artery. The dissociation constant (KP value) for procaterol on beta 1-adrenoceptors was 4.9 microM (determined on dog coronary artery) and on beta 2-adrenoceptors was 0.008 microM (rabbit pulmonary artery). Procaterol therefore had a beta 2:beta 1 selectivity value of 612. KP values obtained on guinea-pig atria for procaterol, on which the concentration-response curve was biphasic, confirmed that both beta 2- and beta 1-adrenoceptors mediate responses of this tissue. The KP values were 0.009 microM (data from the first phase of the control concentration-response curve) and 3.5 microM (data from the concentration-response curve in the presence of the beta 2-selective antagonist, ICI 118,551, 10 nM). Data obtained on rat atria indicated that chronotropic responses of preparations from some rats, but not others, involved a minor population of beta 2-adrenoceptors, but the beta 2-adrenoceptors, when present, were less important than in guinea-pig atria. 6 Procaterol appears to be a particularly useful drug for detecting a functional population of beta 2-adrenoceptors in tissues, whether they are the minor or the predominant receptor sub-type present.

Adrenergic beta-Agonists

The importance of choice of agonist in studies designed to predict beta 2 : beta 1 adrenoceptor selectivity of antagonists from pA2 values on guinea-pig trachea and atria.

1. pA2 values have been obtained for propranolol, butoxamine, H35/25 and atenolol on guinea-pig isolated trachea and atria (rate) using noredrenaline (beta 1-selective), isoprenaline (non-selective) and fenoterol (beta 2-selective) as agonists. 2. pA2 values varied with the agonist used on trachea but not on atria and, therefore, trachea : atria selectivity values varied with the agonist used. 3. It is suggested that the best estimate of the selectivity of an antagonist between beta 2- and beta 1-adrenoceptors is obtained by comparing its pA2 value obtained on trachea using a beta 2-selective agonist with that obtained on atria using a beta 1-selective agonist. The reasons for this are discussed. 4. The quantitative values for beta 2 : beta 1 selectivity obtained using the above pA2 values were butoxamine 17.0 H35/25 13.5, propranolol 2.75 and atenolol 0.036, i.e. butoxamine and H35/25 were beta 2-selective, propranolol was non-selective and atenolol was beta 1-selective. 5. The results support the hypotheses that guinea-pig trachea contains a mixture of beta 1- and beta 2-adrenoceptors and that guinea-pig atria contain only beta 1-adrenoceptors.

Adrenergic beta-Agonists