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Biomedical subjects

C Richer

Publications and source records attributed to C Richer.

At least 73 records · Page 4Linked to original sources

Hemodynamic and morphological effects of quinapril during genetic hypertension development.

The relative contributions of the hemodynamic and morphological (vascular and cardiac) modifications induced by long-term administration of an angiotensin I-converting enzyme inhibitor, quinapril, to the drug's long-lasting preventive effects vis-à-vis genetic hypertension development (GHD) have been investigated in young spontaneously hypertensive rats (SHRs). Two groups of SHRs were given quinapril (10 mg/kg/day) or distilled water from 5 to 20 weeks of age. The drug was then stopped, but observations continued for another 7 weeks. At selected times systemic and regional hemodynamic parameters as well as cardiac and vascular morphological effects were investigated. During the treatment period, quinapril partially opposed GHD and limited the early rise in total peripheral and regional vascular resistances observed in control animals. Quinapril's partial preventive effect vis-à-vis GHD persisted, but faded after treatment withdrawal. From a morphological point of view, quinapril strongly opposed aortic wall hypertrophy as evidenced by significant reductions in media thickness and wall to lumen ratio and by a significant increase in aortic nuclear density. Quinapril also limited vascular fibrosis development. At the cardiac level, quinapril reduced heart weight to body weight ratio and opposed myocardial hypertrophy and cardiac collagen synthesis. All these vascular and cardiac morphological changes were delayed (starting after 9-15 weeks of treatment) as compared to quinapril's hemodynamic effects. Finally, the drug's vascular and cardiac antihypertrophic properties persisted after treatment withdrawal. In conclusion, our data indicate that the early systemic and regional hemodynamic effects of quinapril initiate its antihypertensive action, but the drug-induced delayed and prolonged vascular morphological changes later take over and may be partly responsible for quinapril's residual blood pressure lowering effects after treatment withdrawal.

Animals↗

Arterial vasodilating profile and biological effects of pinacidil in healthy volunteers.

1. The effects of pinacidil (25 mg, sustained release formulation) a) on systemic (arterial pressure, cardiac output) and regional (brachial and carotid arteries' diameters and flows) haemodynamics (pulsed Doppler techniques), b) on sympathetic (plasma noradrenaline) and renin-angiotensin (plasma renin activity) systems, and c) on atrial natriuretic factor have been investigated and compared with those of a placebo during the 12 h period following oral administration in a randomized, double-blind and cross-over study performed in six healthy volunteers. Simultaneously, the plasma levels of pinacidil and of its active metabolite, pinacidil N-oxide, were determined. 2. As compared with placebo, pinacidil decreased systemic vascular resistance and arterial blood pressure but cardiac output was not modified. 3. Pinacidil significantly increased brachial and carotid arteries' diameters (by 7 and 8% respectively) and flows (by 60 and 17% respectively) and decreased forearm vascular resistance (by 43%). Thus, pinacidil dilates both large and small arteries, increases large vessels' compliance and redistributes blood flow towards the muscular vascular bed. These effects peaked at 4 h and their duration at the brachial level was 8 h. 4. Pinacidil administration resulted in a stimulation of both sympathetic (increases in heart rate and plasma noradrenaline) and renin-angiotensin systems, and induced a transient increase in atrial natriuretic factor. 5. The duration of pinacidil haemodynamic effects at the brachial level is consistent with the pharmacokinetic data which show that pinacidil and pinacidil N-oxide plasma levels almost plateaued between 3 and 8, and 2 and 8 h respectively after oral administration of the sustained release formulation used.

Adult↗

Angiotensin converting enzyme inhibition. Systemic and regional hemodynamics in rats and humans.

The systemic and regional hemodynamic effects of angiotensin I converting enzyme inhibitors (ACEIs) have been investigated using different experimental methods (pulsed Doppler, radioactive microspheres), either in rats (normotensive NT or genetically hypertensive SHRs) or in humans (healthy volunteers or patients with congestive heart failure CHF). All ACEIs decreased systemic vascular resistance but the profile of their peripheral vasodilating properties was heterogeneous. ACEI-induced vasodilation primarily affected the kidney in rats and in humans and this effect was accompanied by a strong and consistent increase in renal blood flow. This occurred even at non-hypotensive doses in SHRs and CHF patients and resulted in a favorable redistribution of cardiac output towards the kidney. In the muscular vascular bed, ACEIs also decreased local vascular resistance in rats and in humans, whether normotensive or hypertensive. In humans, this vasodilation affected both the arterioles and the large conductance vessels, more markedly in CHF patients than in normotensive subjects. Muscular blood flow was increased and a favorable redistribution of cardiac output towards the muscle occurred. Cerebral blood flow in SHRs and carotid blood flow in humans were augmented, whereas hepatosplanchnic blood flow was increased in rats but not modified in humans. There was no major difference between the regional vasodilating profiles of the different ACEIs, but captopril was somewhat less active at the muscular level. In conclusion, ACEI-induced regional vasodilation is heterogeneous, preferentially affecting the kidney and the muscle. In the latter, both arterioles and large conductance vessels are dilated.

Angiotensin-Converting Enzyme Inhibitors↗

Cardiovascular and biological effects of K+ channel openers, a class of drugs with vasorelaxant and cardioprotective properties.

Several new chemical entities (RP 52891, cromakalim and its derivatives) are potent and specific openers of vascular K+ channels. This mechanism is also shared, at least partially, by drugs such as minoxidil, diazoxide, pinacidil and nicorandil. The opening of plasmalemma K+ channels produces loss of cytosolic K+. This effect results in cellular hyperpolarization and functional vasorelaxation. In normotensive or hypertensive rats, K+ channel activators decrease aortic blood pressure (by producing a directly mediated fall in systemic vascular resistance) and reflexly increase heart rate. The former effect is not modified by specific blockers of classical vascular receptors but it is completely antagonized by the hypoglycemic sulphonylurea, glibenclamide, an established blocker of ATP-regulated K+ channels. K+ channel openers produce selective coronary vasodilatation and afford functional and biochemical protection to the ischemic myocardium. This salutary effect is mediated via cardiac K+ channel modulation and may result from an improved myocardial oxygen balance in the ischemic region. K+ channel openers increase plasma renin activity in animals as well as in man. However, only diazoxide, but not cromakalim or RP 52891, lowers plasma insulin concentration. The dose of glibenclamide entirely blocking the latter effect is over 50-fold smaller than that antagonizing the hypotensive and hyper-reninemic responses to diazoxide. In conclusion, K+ channel activators are potent vasorelaxant and cardioprotective agents possessing an original mechanism of action which is the opening of plasmalemma ATP-regulated K+ channels. Their clinical use as antihypertensive agents may be accompanied by undesirable effects (characteristic of peripheral vasodilators) which are likely to be attenuated or avoided by controlled release formulations. However, inasmuch as low doses of K+ channel openers may be sufficient to produce selective coronary artery dilatation and cardioprotection, these compounds could be of particular value in treating patients with coronary artery disease efficaciously and possibly without adverse cardiovascular effects.

Animals↗

Systemic and regional haemodynamic interactions between K+ channel openers and the sympathetic nervous system in the pithed SHR.

1. The interactions between two K+ channel openers, cromakalim and SR 44866 (infused i.v. at equihypotensive doses), and the sympathetic nervous system at the systemic and regional (mesentery, kidney, hindlimb) vascular levels were investigated in the pithed spontaneously hypertensive rat (SHR) by use of the pulsed Doppler technique. 2. The two K+ channel openers did not affect postsynaptic alpha 1- but slightly reduced postsynaptic alpha 2-adrenoceptor mediated systemic pressor and regional vasoconstrictor responses. 3. Both drugs significantly decreased the systemic pressor and regional vasoconstrictor responses elicited by spinal cord stimulation. These sympathoinhibitory effects were not homogeneously distributed among the different vascular beds, the decreasing rank order being: mesentery greater than kidney greater than hindlimb. Simultaneously, the spinal cord stimulation-induced tachycardia remained unaffected. 4. After treatment with K+ channel openers, restoration of initial blood pressure and vascular tone values by infusion of prostaglandin F2 alpha (PGF2 alpha) and vasopressin respectively did not affect and abolished the sympathoinhibitory effects of cromakalim and SR 44866. 5. We conclude that in SHRs the two K+ channel openers that we investigated exert similar sympathohibitory effects which affect some vascular beds more than others. These effects are not dependent upon the arterial blood pressure level and are most likely prejunctionally located.

Animals↗

Differential systemic and regional hemodynamic profiles of four angiotensin-I converting-enzyme inhibitors in the rat.

Angiotensin-converting enzyme (ACE) inhibitors decrease blood pressure by reducing systemic vascular resistance. That the peripheral vasodilating properties of ACE inhibitors might not be homogeneously distributed in all vascular beds and might differ from one drug to another has been investigated in the normotensive rat by the pulsed Doppler technique using the active components of four different ACE inhibitors: captopril, enalapril, perindopril, and ramipril. Systemic (cardiac output and blood pressure) and regional (kidney, mesentery, hindquarter) hemodynamic responses to saline or to cumulative bolus injections (0.01-1 mg/kg) of captopril, enalaprilat, perindoprilat, or ramiprilat were continuously monitored. The effects of successive bolus injections (0.3-300 ng/kg) of angiotensinII were also investigated. The four ACE inhibitors produced an almost complete blockade of plasma angiotensin-II converting-enzyme activity (83%, 100%, 100%, and 100%, respectively), induced dose-dependent decreases in mean blood pressure, did not significantly affect cardiac output, and reduced total peripheral and mesenteric vascular resistances to the same extent. Hindlimb vascular resistance was identically decreased, but to a lower extent than total peripheral resistance by enalaprilat, perindoprilat, and ramiprilat, whereas it was increased by captopril at low doses only. Renal resistance was markedly decreased by the four drugs, and especially by captopril. The decreasing rank order for ACE-inhibitor-induced vasodilation is exactly the same (renal greater than total peripheral = mesenteric greater than hindlimb vascular resistances) as that of angiotensin-H-induced regional vasoconstriction, indicating that the vasodilator properties of ACE inhibitors are mainly due to angiotensin-II vasomotor tone suppression. None of the investigated compounds significantly affected mesenteric and hindlimb blood flows, except captopril, which lowered the latter significantly.(ABSTRACT TRUNCATED AT 250 WORDS)

Angiotensin II↗

Ketanserin: systemic and regional hemodynamic characterization of its serotonergic and alpha-adrenergic receptor blocking effects in the pithed SHR.

The interactions between ketanserin and serotonin (5-HT)- and alpha-adrenoceptor agonists (alpha 1, cirazoline; alpha 2, UK-14,304)-induced systemic and regional (kidney, hindquarter, mesentery) hemodynamic responses were investigated in the pithed spontaneously hypertensive rat (SHR) using the pulsed Doppler technique. Serotonin, cirazoline, and UK-14,304 dose dependently increased systemic blood pressure and local vascular resistances. However, the regional vasoconstrictor profiles of serotonin (hindquarter greater than kidney greater than mesentery) and cirazoline (kidney greater than hindquarter greater than mesentery) were found not to be homogeneous. Ketanserin antagonized the systemic and regional hemodynamic effects of serotonin and cirazoline but not of UK-14,304. The ketanserin-serotonin antagonism was noncompetitive and occurred at doses (3-30 micrograms/kg) 100-fold lower than those (300-3,000 micrograms/kg) at which a presumably competitive antagonism developed between ketanserin and cirazoline. Furthermore, ketanserin antagonized serotonin, as well as cirazoline, homogeneously in all vascular beds. These data together with those previously obtained with ketanserin in the intact SHR (reduction in blood pressure starting at 300 micrograms/kg, heterogeneous regional vasodilator profile: hindquarter greater than kidney greater than mesentery) indicate that (a) the antihypertensive effects of ketanserin in the SHR can principally, although perhaps not exclusively, be ascribed to the drug's alpha 1-adrenoceptor blocking properties, and (b) the heterogeneous regional vasodilator profile of the drug is not due solely to the homogeneous antagonism that it exhibits versus the regional vasoconstrictor effects of alpha 1-adrenoceptors activation.

Adrenergic alpha-Antagonists↗

[Potassium agonists: regional vasodilator profile in rats].

The systemic and regional (kidney, mesentery, hindlimb) hemodynamic effects of (a) two potassium agonists: cromakalim (1 to 8 micrograms.kg-1.min-1/15 min) and SR 44866 (0.125 to 2 micrograms.kg-1.min-1/15 min) and (b) a calcium antagonist, nicardipine (0.5 to 2 micrograms.kg-1.min-1/15 min) have been investigated by the pulsed doppler technique, and compared in the anesthetized normotensive rat. The two potassium agonists and nicardipine lowered blood pressure (BP) and total peripheral resistance (TPR) dose-dependently and slightly increased heart rate. Cardiac output (QC) remained unchanged. SR 44866 was as potent as nicardipine in reducing BP and about three to four times more potent than cromakalim (the DE20s, doses producing a 20 p. 100 decrease in BP, being: SR 44866: 0.7 micrograms.kg-1.min-1, cromakalim: 2.8 micrograms.kg-1, nicardipine: 0.8 micrograms.kg-1.min-1). At these equihypotensive doses, the three drugs (a) similarly decreased TPR (SR 44866: -16 p. 100, cromakalim: -17 p. 100, nicardipine: -19 p. 100, (b) reduced mesenteric vascular resistance (MVR) (SR 44866: -18 p. 100, cromakalin: -20 p. 100, nicardipine: -21 p. 100) and renal vascular resistance (RVR) (SR 44866: -16 p. 100, cromakalim: -21 p. 100, nicardipine: -13 p. 100 to the same extent as TPR, but (c) SR 44866 and nicardipine reduced hindlimb vascular resistance (HVR) to a larger extent than TPR (SR 44866: -25 p. 100, nicardipine: -25 p. 100.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Lack of presynaptic effects of ketanserin on cardiac noradrenergic nerve terminals in the SHR.

The potential cardiac presynaptic effects of ketanserin (K) (0.01-3.00 mg/kg IV) were investigated in pithed SHR in 4 experimental conditions: (a) basal heart rate (HR); (b) HR increased by selective cardiac sympathetic stimulation (SS); (c) HR increased by aminophylline infusion; and (d) HR increased by SS and brought back to basal value by clonidine. Control groups were treated with saline. In the 4 types of experiments, K, starting from 0.3 mg/kg, induced almost identical and dose-dependent decreases in HR (maximal reduction: 45 beats/(min at 3 mg/kg). Thus we conclude: (1) that K is devoid of any presynaptic facilitatory effect on norepinephrine release since it was unable to raise HR in experiment D; (2) that K is devoid of any presynaptic inhibitory effect on norepinephrine release since it lowered HR to the same extent in both experiments B (noradrenergic tachycardia) and (non-noradrenergic tachycardia); and C (3) that the bradycardia which was induced by high doses of K (much above those required to block 5-HT2 and alpha 1-adrenergic receptors) and which was of similar magnitude in the 4 experimental conditions is probably due to a direct, nonspecific depressant effect of K on the sinus node.

Animals↗

Peripheral haemodynamic effects of perindopril compared in patients with congestive heart failure and in normal volunteers.

The effects of perindopril, 4 mg orally, on brachial artery blood flow and diameter (pulsed Doppler) and on forearm vascular resistance were investigated and compared in six normal subjects and 10 congestive heart failure patients (New York Heart Association class III or IV). Pre-drug values of brachial artery blood flow and diameter were significantly lower in patients with congestive heart failure than in normal subjects, the reverse being true for forearm vascular resistance. In normal subjects perindopril increased brachial artery blood flow and decreased forearm vascular resistance, while in patients with congestive heart failure the same effects were observed but they were more pronounced and brachial artery diameter was increased. In patients with congestive heart failure, when perindopril effects were maximal, brachial artery blood flow remained below the baseline values of normal subjects but brachial artery diameter was normalized. Finally, there was a correlation between the drug-induced decrease in forearm vascular resistance and basal plasma noradrenaline values in all subjects taken together. These results indicate that: (1) the renin-angiotensin system plays a major role in vasoconstriction in patients with congestive heart failure; (2) this vasoconstriction affects both large arteries and arterioles; (3) perindopril is able to considerably improve peripheral haemodynamics in congestive heart failure; and (4) this improvement is linked to the initial sympathetic tone.

Adult↗

Ketanserin: systemic and regional hemodynamics in spontaneously hypertensive rats. Role of alpha 1-adrenoceptor blockade.

The systemic and regional hemodynamic effects of ketanserin were investigated in spontaneously hypertensive rats (SHRs) using either the pulsed Doppler or the microsphere technique. In addition, the contribution of ketanserin alpha 1-adrenoceptor blocking properties to these hemodynamic effects was assessed. Ketanserin, directly after infusion or secondarily after bolus injection, induced dose-dependent decreases in blood pressure and regional vascular resistances. Peripheral vasodilatation was not homogeneous, affecting in a decreasing rank order: muscle = spleen greater than brain = kidney = total peripheral resistance = liver greater than mesentery = skin. Cardiac output and hindlimb blood flow increased, renal blood flow was maintained whereas mesenteric blood flow was decreased. Prazosin pretreatment, followed by PGF 2 alpha infusion in order to restore initial vascular tone, reduced the ketanserin-induced decrease in blood pressure (by about 70%) and abolished the drug-induced reductions in regional vascular resistances, indicating that these effects in SHRs were mostly due to the alpha 1-adrenoceptor blocking properties of the drug.

Adrenergic alpha-Antagonists↗

Systemic and regional hemodynamic profile of five angiotensin I converting enzyme inhibitors in the spontaneously hypertensive rat.

The effects of 5 angiotensin I converting enzyme (ACE) inhibitors--captopril, enalapril, perindopril, trandolapril and ramipril--on general and regional hemodynamics were investigated (using radioactive microspheres) and compared in anesthetized adult spontaneously hypertensive rats. The 5 treatments were administered daily by gavage for 8 days in doses inducing identical decreases in arterial blood pressure. This effect was entirely due to a decrease in total peripheral resistance inasmuch as cardiac index was not affected by the 5 ACE inhibitors. In addition, despite their different chemical structures, all exhibited the same regional vasodilator pattern, which thus appears to be related only to ACE inhibition. The vascular beds resistances were decreased in the following order: renal greater than splenic = liver greater than skin greater than total peripheral greater than muscle = brain. Simultaneously, and despite the decrease in perfusion pressure, most regional blood flows and especially renal blood flow were increased. Finally, renal vasodilator effects of ACE inhibitors were observed even after doses that lacked any effect on total peripheral resistance.

Angiotensin-Converting Enzyme Inhibitors↗

Pharmacokinetics, converting enzyme inhibition and peripheral arterial hemodynamics of ramipril in healthy volunteers.

The effects of a 10 mg dose of ramipril, a new angiotensin I converting enzyme (ACE) inhibitor, on systemic blood pressure, heart rate, brachial artery blood flow, brachial artery diameter, carotid artery blood flow, carotid artery diameter, forearm vascular resistance, plasma ACE and renin activities and plasma aldosterone were investigated. Ramipril's effects in 6 healthy volunteers on a normal sodium diet were compared with those of placebo over a 24-hour period after oral drug intake in an open cross-over trial. Ramipril inhibited plasma ACE activity, an effect that peaked at 3 to 4 hours and persisted up to at least 24 hours. Plasma renin activity increased from 4 to 12 hours after drug intake and plasma aldosterone was slightly decreased. Systemic blood pressure in the supine position was slightly decreased between 6 and 8 hours after drug intake but heart rate remained unaffected. Ramipril significantly increased brachial artery blood flow, brachial artery diameter and carotid artery blood flow and decreased forearm vascular resistance between 3 and 8 hours after drug administration. These peripheral arterial vasodilating effects were more marked in the muscular resistance vessels and affected both large arteries and arterioles in the brachial vascular territory. A correlation was found between the log of plasma concentrations of ramipril diacid metabolite and the drug-induced plasma ACE activity inhibition and increase in brachial artery blood flow. There was also a correlation between these 2 latter effects. A plasma ACE activity inhibition of 80% was required to induce significant increases in brachial artery blood flow and carotid artery blood flow.

Adult↗

Pharmacokinetics and biological effects of captopril and hydrochlorothiazide after acute and chronic administration either alone or in combination in hypertensive patients.

The pharmacokinetics of free unchanged captopril, total captopril and hydrochlorothiazide (HCTZ) were investigated in three groups of patients with moderate essential hypertension and normal renal function on the first and on the 45th days of an oral treatment with either captopril (50 mg once daily, n = 7) or HCTZ (25 mg once daily, n = 10) or their combination captopril 50 mg + HCTZ 25 mg once daily, n = 8. Simultaneously, the effects of the three treatments on plasma converting enzyme activity (PCEA) and plasma renin activity (PRA) were measured. Elimination half-lives of total captopril after acute (7.8 +/- 2.3 h) or chronic (7.0 +/- 0.5 h) captopril dosing were similar to those of HCTZ after acute (6.5 +/- 1.0 h) or chronic (8.0 +/- 2.5 h) HCTZ dosing. Elimination half-life of free unchanged captopril was 0.81 +/- 0.09 h after acute and 0.96 +/- 0.03 h after chronic captopril dosing. Addition of HCTZ to captopril induced no major change in free and total captopril pharmacokinetic parameters, in PCEA inhibition and in PRA increase (as they were determined after captopril alone) on acute as well as on chronic treatment. Addition of captopril to HCTZ induced no major change in HCTZ pharmacokinetic parameters and in PRA increase compared with those determined after HCTZ alone. Chronic treatment with captopril + HCTZ resulted, like chronic captopril treatment, in no accumulation of captopril, in no significant modification of free and total captopril pharmacokinetic parameters and of PCEA inhibition (as determined after acute administration) but led to a significant enhancement of the acutely induced increase in PRA. Chronic treatment with captopril + HCTZ resulted, like chronic HCTZ treatment, in no accumulation of HCTZ, in no significant modification of HCTZ pharmacokinetic parameters (as determined after acute administration) but also led to a significant enhancement of the acutely induced increase in PRA. Thus, the longer duration of the antihypertensive action of captopril + HCTZ as compared to that of captopril cannot be ascribed to a pharmacokinetic or biological interaction between captopril and HCTZ.

Adult↗

Perindopril, converting enzyme blockade, and peripheral arterial hemodynamics in the healthy volunteer.

The effects of three doses (4, 8, and 16 mg) of perindopril, a new angiotensin I converting enzyme inhibitor, on systemic blood pressure, heart rate, brachial and carotid artery flow and diameter (assessed by the pulsed Doppler technique), forearm vascular resistance, plasma converting enzyme and renin activities, and plasma aldosterone were investigated in the normal volunteer and compared with those of a placebo over a 24-h period following oral drug intake in a double-blind, crossover trial. Perindopril dose-dependently decreased plasma converting enzyme activity, an effect that peaked at 3-4 h and persisted up to at least 48 h. Plasma renin activity increased for 12 h and plasma aldosterone was slightly decreased. Systemic blood pressure and heart rate were not drug-affected but perindopril dose-dependently augmented brachial and carotid artery flow, indicating an increase in peripheral arterial compliance. These vasodilating effects, which lasted up to 10 h after drug intake, affected both large arteries and arterioles, the latter being more sensitive, however, and were more marked in the muscular resistance vessels.

Adult↗

Systemic and regional hemodynamic characterization of alpha-1 and alpha-2 adrenoceptor agonists in pithed rats.

In pithed rats, blood pressure dose-response curves to i.v. cirazoline, methoxamine and phenylephrine (full alpha-1 adrenoceptor agonists) exhibited higher maxima than those to B-HT 920, M-7, UK-14,304 (full alpha-2 adrenoceptor agonists) and indanidine (Sgd 101/75: partial alpha-1 adrenoceptor agonist). For an 80 mm Hg increase in blood pressure, full alpha-1 adrenoceptor agonists enhanced total peripheral, renal and mesenteric vascular resistances significantly more than alpha-2 adrenoceptor stimulants or indanidine. In contrast, all compounds produced a similar degree of hindquarter vasoconstriction, suggesting that both types of alpha adrenoceptors have the same functional importance in this skeletal muscle vascular bed. Application of a multivariate discriminant analysis to the drug-induced changes in the total peripheral and mesenteric vascular resistances associated with a pressor effect of 80 mm Hg allowed their assignment to two distinct groups corresponding to the full alpha-1 and the full alpha-2 adrenoceptor agonists plus indanidine. All investigated compounds in low doses increased cardiac output, which returned to base-line values after high doses of alpha-1 but plateaued after high doses of alpha-2 adrenoceptor agonists or indanidine. alpha-1 adrenoceptor agonists decreased whereas alpha-2 stimulants and indanidine successively increased and then decreased renal blood flow. Finally, all investigated compounds increased hindquarter blood flow at low doses but decreased it at high doses. The ratios of the doses of cirazoline required to produce a 100% rise in systemic and local vascular resistances in the presence or in the absence of prazosin were of similar magnitude. This was also true for M-7 when studied in the presence or in the absence of yohimbine. These findings suggest pharmacological identity within alpha-1 as well as within alpha-2 adrenoceptor populations in all investigated vascular beds. Finally, the calcium entry blocker diltiazem did not affect the increases in systemic and regional resistances evoked by cirazoline but depressed profoundly the effects of M-7 and indanidine. In conclusion, full alpha-1 and alpha-2 adrenoceptor agonists can be discriminated easily on the basis of their systemic and regional hemodynamics in the pithed rat. That the hemodynamic effects of the partial alpha-1 adrenoceptor agonist indanidine are similar to those of alpha-2 adrenoceptor agonists and susceptible to calcium channel blockade suggests that the alpha-1 adrenoceptors stimulated by this drug have the same coupling modality as alpha-2 adrenoceptors and share with the latter the same functional expression when stimulated.

Adrenergic alpha-Agonists↗