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A Monopoli

Publications and source records attributed to A Monopoli.

At least 37 records · Page 2Linked to original sources

Mechanism and pressor relevance of the short-term cardiovascular and renin excitatory actions of the selective A2A-adenosine receptor agonists.

Selective A2A adenosine receptor agonists are potent vasodilators that reduce blood pressure and induce marked increments in heart rate and plasma renin activity (PRA). To examine the mechanisms and pressor relevance of these cardiac and renin responses, we measured blood pressure and heart rate by telemetry and PRA in separate sets of spontaneously hypertensive rats (SHRs), which were given i.p. 2-hexynyl-5-methylcarboxamidoadenosine (2HE-NECA, 0.01 mg/kg) and 2-[4-(2-carboxyethyl)phenethylamino]-5'-N-ethylcarboxamidoadenosin e (CGS 21680, 0.1 mg/kg) alone and after pretreatment with the beta 1-adrenoceptor blocking agent atenolol (100 mg/kg). The effects of 2HE-NECA (0.003 mg/kg) also were examined after pretreatment with the angiotensin-converting enzyme (ACE) inhibitor spirapril (3 mg/kg). Both A2A agonists induced marked reductions in blood pressure, associated with significant increments in heart rate and in PRA. Atenolol reduced blood pressure to the same extent as did the A2A agonists and markedly decreased heart rate and PRA. Pretreatment with atenolol entirely prevented the increase in heart rate and in PRA induced by the two A2A agonists but potentiated only slightly their antihypertensive effect. Spirapril alone reduced blood pressure and increased PRA and when given before 2HE-NECA potentiated its depressor and renin-stimulating effects by 44% and 69%, respectively. These results suggest that the increase in heart rate and in PRA induced by A2A agonists is the result of a reflex increase in sympathetic activity triggered by the decrease in blood pressure rather than of a direct stimulating effect on cardiac and renal A2A-adenosine receptors; the reactive activation of the renin-angiotensin system elicited by these compounds may contribute to blunting their antihypertensive effect.

Adenosine↗

2-alkenyl and 2-alkyl derivatives of adenosine and adenosine-5'-N-ethyluronamide: different affinity and selectivity of E- and Z-diastereomers at A2A adenosine receptors.

A series of new 2-(ar)alkenyl, both Z- and E-diastereomers, and 2-alkyl derivatives of adenosine-5'-N-ethyluronamide (NECA) and adenosine were synthesized and evaluated for their interaction with the A1 and A2A adeosine receptors, to better understand the conformational requirements of the receptor area interacting with the substituents in the 2- and 5'-positions. Partial reduction of the triple bond in 2-alkynyl derivatives of NECA led to compounds whose activity at the A2A receptor subtype was related to Z-E-isomerism, the E-diastereomers being more potent and selective than the Z-ones. Saturation of the side chain markedly reduced compound affinity at adenosine receptors. Specifically, compounds bearing an (E)-alkenyl chain, while maintaining the same affinity at A2A receptors as the corresponding alknyl derivatives, showed an increase in A2A vs A1 selectivity. Hence, the new nucleosides (E)-2-hexenylNECA (12a) and (E)-2-(phenylpentenyl)NECA (12b) exhibited both high A2A receptor affinity (Ki = 1.6 and 3.5 nM, respectively) and A2A vs A1 selectivity (157- and 290-fold, respectively). Moreover, 12a displayed potent antiaggregatory activity, similar to that of the reference compound NECA. Comparison between NECA and adenosine derivatives further demonstrated that the 5'-ethylcarboxamido group is critical for the A2A affinity. These studies indicated that the orientation of the substituent in the 2-position and the nature of the 5'-group in adenosine derivatives are critical to achieve high affinity and selectivity at the A2A adenosine receptor subtype.

Adenosine↗

Excretory responses to renal nerve stimulation during inhibition of neutral metalloendopeptidase and angiotensin-converting enzyme in the rat.

To evaluate the interaction between renal nerves, the atrial natriuretic peptide (ANP), and the renin-angiotensin system (RAS), electrical stimulation of renal nerves was performed in spontaneously hypertensive rats (SHR) and in their normotensive controls, Wistar Kyoto rats (WKY), before and after pharmacologic treatment with (a) a neutral endopeptidase inhibitor (NEP-i) to enhance the intrarenal ANP activity; (b) an ACE inhibitor (ACE-i) to block RAS; (c) both NEP-i and ACE-i; and (d) the vehicle of the drugs. Renal nerve stimulation did not change arterial pressure (AP) but reduced renal blood flow (RBF), glomerular filtration rate (GFR), and urinary sodium excretion (UNa+V) in both WKY and SHR. NEP-i treatment in WKY and SHR had no systemic or renal hemodynamic effects but increased GFR and urinary cyclic guanosine monophosphate (GMP) excretion; UNa+V increased (+2.78 +/- 0.31 microEq/min) in WKY, whereas it did not change in SHR (+0.83 +/- 0.79 microEq/min). In both strains, ACE-i treatment reduced AP, increased RBF, and did not change GFR and UNa+V. The combined treatment with NEP-i and ACE-i did not modify the natriuretic effect observed in NEP-i treated WKY (+4.29 +/- 1.25 microEq/min), but it elicited a natriuretic effect in SHR (+3.98 +/- 1.29 microEq/min). Pharmacologic treatment did not change the hemodynamic and excretory responses to renal nerve stimulation in both WKY and SHR. In conclusion, NEP-i treatment increased UNa+V in normotensive rats without changing AP. In hypertensive rats, the natriuretic effect of NEP-i became evident only after block of RAS by ACE-i. Neither NEP-i nor ACE-i, even in combination, could modify the renal responses to sympathetic stimulation.

Angiotensin-Converting Enzyme Inhibitors↗

Binding of the novel nonxanthine A2A adenosine receptor antagonist [3H]SCH58261 to coronary artery membranes.

This study demonstrates quantification of A2A adenosine receptors (A2AAdoRs) in membranes prepared from porcine coronary arteries, porcine striatum, and PC12 cells. Radioligand binding assays were performed using the new selective A2AAdoR antagonist radioligand [3H]-5-amino-7-(2-phenylethyl)-2-(2-furyl)-pyrazolo [4,3-epsilon]-1,2,4-triazolo[1,5-c)pyrimidine ([3H]SCH58261). Binding of the radioligand to membranes was rapid, reversible, and saturable. The densities of A2AAdoRs in membranes prepared from porcine coronary arteries, porcine striatum, and PC12 cells were 900 +/- 61, 892 +/- 35, and 959 +/- 76 fmol/mg protein, respectively. Equilibrium dissociation constants (Kd values) calculated from results of saturation binding assays were 2.19, 1.20, and 0.81 nmol/L, and Kd values calculated from results of association and dissociation assays were 2.42, 1.01, and 0.40 nmol/L for [3H]SCH58261 binding to membranes prepared from porcine coronary arteries, porcine striatum, and PC12 cells, respectively. The specific binding of [3H]SCH58261 as a percentage of total binding at a radioligand concentration equal to the Kd value was 65% to 90% in the three membrane preparations. The order of ligand potencies determined by assay of competition binding to sites in porcine coronary membranes using [3H]SCH58261, unlabeled antagonists (SCH58261, 8-(3-chlorostyryl)caffeine [CSC], and xanthine amine congener [XAC]), and unlabeled agonists ([3H]2-p-(2-carboxyethyl)-phenethylamino-5'-N-ethylcarboxamidoaden osine [CGS 21680], 2-hexynyl-5'-N-ethylcarboxamidoadenosine [HE-NECA], [3H]5'-N-ethylcarboxamidoadenosine [NECA], and R(-)N6-(2-phenylisopropyl)adenosine [R-PIA]) was SCH58261 > HE-NECA = CSC = CGS 21680 = XAC > NECA = R-PIA. The Hill coefficients of displacement by A2AAdoR ligands of [3H]SCH58261 binding were not significantly different from unity, indicating that [3H]SCH58261 bound to a group of homogeneous noninteracting sites in all membrane preparations. The order of ligand potencies to compete for [3H]SCH58261 binding sites in porcine striatal and PC12 cell membranes was, in part, different from that for porcine coronary arterial membranes. The different rank orders of potencies for agonists and antagonists at A2A receptors of porcine coronary arteries, striatum, and PC12 cells and significant differences in absolute values of potency of ligands in the three preparations may indicate the existence of different subtypes of A2AAdoRs. The antagonist radio-ligand [3H]SCH58261 should be of value for pharmacological characterization of A2A adenosine receptors in other preparations.

Animals↗

Humoral effects of selective adenosine agonists in spontaneously hypertensive rats.

OBJECTIVE: We studied the dose-response effects of acute administration of the selective A1 adenosine receptor agonist 2-chloro-N6-cyclopentyladenosine (CCPA), the selective A2A agonists 2-hexynyl-5'-N-ethylcarboxamidoadenosine (2HE-NECA) and 2-[4-(2-carboxyethyl)phenethylamino]-5'-N-ethylcarboxamidoadenosine (CGS 21680) and the non-selective agonist N-ethylcarboxamidoadenosine (NECA) on plasma renin activity, atrial natriuretic peptide, cyclic guanosine 3',5'-monophosphate (cGMP) and endothelin-1 in spontaneously hypertensive rats. METHODS: The drugs were administered intraperitoneally in four doses to conscious rats. Systolic blood pressure and heart rate were measured by the tail-cuff technique. Both humoral and hemodynamic parameters were determined 1 h after dosing in separate sets of animals. RESULTS: All the compounds induced a dose-dependent decrease in systolic blood pressure that was associated with different changes in heart rate. Heart rate was decreased by all doses of CCPA and by the higher doses of the non-selective compound (NECA) and increased by both A2A agonists. Plasma renin activity also changed in opposite directions, being decreased by CCPA but increased dose-dependently by 2HE-NECA and CGS 21680 and only moderately by NECA. Plasma atrial natriuretic peptide and cGMP levels increased dose-dependently after CCPA and NECA, but were unaffected by the A2A agonists. None of the compounds altered plasma endothelin-1 levels. CONCLUSIONS: These results indicate that the renin-suppressive effect of the A1 agonist, which is associated with a cardiodepressant action, may be attributed either to a direct inhibition of renin release or to the concomitant increments in plasma atrial natriuretic peptide and its second messenger, cGMP. In contrast, the renin-stimulating effect of the A2A agonists may result either from direct stimulation of renin secretion or from reflex sympathetic activation secondary to the fall in blood pressure.

Adenosine↗

The non-xanthine heterocyclic compound SCH 58261 is a new potent and selective A2a adenosine receptor antagonist.

We have characterized the in vitro pharmacological profile of the new potent and selective A2a adenosine receptor antagonist SCH 58261 [7-(2-phenylethyl)-5-amino-2-(2-furyl)-pyrazolo-[4,3-e]-1,2, 4-triazolo[1,5-c]pyrimidine]. In binding studies on rat and bovine brain tissues, SCH 58261 showed affinity in the low nanomolar range at A2a adenosine striatal receptors and good A2a adenosine vs. A1 adenosine selectivity (about 50- to 100-fold in rat and bovine brain, respectively). SCH 58261 did not show affinity for either the A3 adenosine receptor or other receptors at concentrations up to 1 microM. Saturation experiments on rat A1 and A2a adenosine receptors indicated the competitive nature of the antagonism. SCH 58261 antagonized competitively the effects induced by the A2a adenosine-selective agonist CGS 21680 (2-[4-(2-carboxyethyl)-phenethyl-amino]-5'-N- ethylcarboxamidoadenosine) in two functional assays, such as inhibition of rabbit platelet aggregation and porcine coronary artery relaxation. Specifically, the compound showed pA2 values of 7.9 and 9.5, respectively. SCH 58261 (300 nM) failed to antagonize 5'-N-ethylcarboxamidoadenosine-induced vasorelaxation in the isolated guinea pig aorta, a response mediated by A2b adenosine receptors. Likewise, at the same concentration, the compound weakly inhibited the A1 adenosine-mediated negative chronotropic effect induced by 2-chloro-N6-cyclopentyladenosine in the isolated rat atria. These data show that SCH 58261 is a potent and selective non-xanthine A2a adenosine antagonist which has competitive properties in biological responses mediated by this receptor subtype. The compound is of interest for investigating the biological role of A2a adenosine receptors and deserves further attention to clarify the therapeutic potential of A2a antagonists.

Animals↗

2-Aralkynyl and 2-heteroalkynyl derivatives of adenosine-5'-N-ethyluronamide as selective A2a adenosine receptor agonists.

A series of new 2-aralkynyl and 2-heteroaralkynyl derivatives of NECA were synthesized and studied in binding and functional assays to assess their potency for the A2a compared to A1 adenosine receptors. Compounds bearing an aromatic or heteroaromatic ring, conjugated to the triple bond, showed generally weaker activity at the A2a receptor and lower selectivity (A2a vs A1) than the alkylakynyl derivatives previously reported. However, the (4-formylphenyl)-ethynyl derivative 17 showed affinity in the low nanomolar range and high selectivity (about 160-fold) for the A2a receptor. The presence of heteroatoms improved vasorelaxant activity, the 2-thiazolylethynyl derivative 30 being the most potent in the series. Introduction of methylene groups between the triple bond and the phenyl ring favored the A2a binding affinity, and the 5-phenyl-1-pentynyl derivative 24 was found to be highly potent and selective (about 180-fold) at A2a receptors. With regard to antiplatelet activity, the presence of aromatic or heteroaromatic rings decreased potency in comparison with that of NECA and of N-ethyl-1'-deoxy-1'-(6-amino-2-hexynyl-9H-purin-9-yl)-beta-D-ribofura nuronamide (HENECA). Introduction of a methylene group was effective in increasing antiaggregatory potency only when this group is linked to a heteroatom (31-35). From these data and those previously reported, the structure-activity relationships derived for the 2-alkynyl-substituted ribose uronamides would indicate that potentiation of A2a receptor affinity could be obtained by aromatic rings not conjugated with the triple bond or by heteroaromatic groups. As for A2a receptors on platelets, the presence of aromatic rings, either conjugated or unconjugated to the triple bond, is detrimental for the antiaggregatory activity. However, the introduction of polar groups alpha to the triple bond strongly increases the potency when steric hindrance is avoided. Some of the compounds included in this series retain interesting vasodilating properties and merit further investigation for their potential in the treatment of cardiovascular disorders.

Adenosine↗

Modeling hemodynamic profiles by telemetry in the rat. A study with A1 and A2a adenosine agonists.

The newly developed radiotelemetry system offers a number of advantages for the measurement of blood pressure and heart rate in laboratory animals. However, no available statistical methods permit valid use of the many data gathered with this continuous recording of hemodynamic parameters. This study describes elaboration and testing of mathematical functions as applied to the measurement of the effects of drugs on blood pressure and heart rate in spontaneously hypertensive rats. We used parametric functions analogous to those for pharmacokinetic studies. Curve fitting is in fact the only approach that provides reasonable estimates of hemodynamic kinetic constants. Nonlinear functions were assessed by analyzing telemetric hemodynamic effects induced by three adenosine receptor agonists with different selectivity for the A1 or A2a receptor. After acute administration in conscious rats, the A1 agonist 2-chloro-N6-cyclopentyladenosine induced dose-related hypotension (eg, 0.03 mg/kg; peak, -70 mm Hg; time to peak, 0.34 hour) and bradycardia (eg, 0.03 mg/kg; peak, -186 beats per minute [bpm]; time to peak, 0.38 hour). The A2a agonist 2-hexynyl-5'-N-ethylcarboxamidoadenosine induced dose-related hypotension (eg, 0.003 mg/kg; peak, -36 mm Hg; time to peak, 0.32 hour) with reflex tachycardia (eg, 0.003 mg/kg; peak, 152 bpm; time to peak, 0.35 hour). The nonselective adenosine agonist 5'-N-ethylcarboxamidoadenosine (0.1 mg/kg) induced hypotension (peak, -75 mm Hg; time to peak, 2.2 hours) and bradycardia followed by tachycardia (first peak, -131 bpm; time to peak, 1.26 hours; second peak, 123 bpm; time to peak, 13.9 hours.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenosine↗

Telemetry monitoring of hemodynamic effects induced over time by adenosine agonists in spontaneously hypertensive rats.

Using the telemetry system in spontaneously hypertensive rats (SHR), we evaluated the hemodynamic effects of four adenosine analogs having different selectivity for A1 and A2a adenosine receptor subtypes. The selective A2a agonists, 2-hexynyl-5'-N-ethylcarboxamidoadenosine (2HE-NECA) and 2-[4-(2-carboxyethyl)-phenethylamino]-5'-N-ethylcarboxamidoaden osi ne (CGS 21680), the selective A1 agonist, 2-chloro-N6-cyclopentyl-adenosine (CCPA) and the nonselective agonist, 5'-N-ethyl-carboxamidoadenosine (NECA), were administered i.p. to conscious spontaneously hypertensive rats. For comparison, the calcium channel blocker, felodipine, was included. CCPA and 2HE-NECA were tested also by the oral route. Systolic and diastolic blood pressure and heart rate were recorded every 5 min for 24 hr after drug administration. Data were analyzed using the curve fitting model recently elaborated. All compounds caused dose-dependent antihypertensive effects. The i.p. dose inducing a decrease of 50 mm Hg (ED50) was calculated for both systolic and diastolic blood pressure. As regards diastolic blood pressure, ED50 values were: CCPA, 0.019 (0.013-0.027) mg/kg, 2HE-NECA, 0.009 (0.002-0.03) mg/kg, CGS 21680, 0.155 (0.084-0.246) mg/kg, NECA, 0.008 (0.004-0.016) mg/kg and felodipine, 5.16 (4.18-7.18) mg/kg. At equiactive doses, the antihypertensive effects of adenosine agonists were shorter lasting [t1/2 for DBP were: CCPA, 54 (44-76) min, 2HE-NECA, 57 (46-71) min, CGS 21680, 45 (21-94) min, NECA, 61(38-97) min] than those of felodipine [t1/2 = 233 (182-274) min]. After oral administration (0.3, 1 and 3 mg/kg), hypotension induced by 2HE-NECA was longer lasting than that of CCPA. 2HE-NECA, CGS 21680 and felodipine caused tachycardia.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenosine↗

2-Alkynyl derivatives of adenosine-5'-N-ethyluronamide: selective A2 adenosine receptor agonists with potent inhibitory activity on platelet aggregation.

A series of new 2-alkynyl and 2-cycloalkynyl derivatives of adenosine-5'-N-ethyluronamide (NECA) and of N-ethyl-1'-deoxy-1'-(6-amino-2-hexynyl-9H-purin-9-yl)-beta-D- ribofuranuronamide (1, HE-NECA), bearing hydroxy, amino, chloro, and cyano groups in the side chain, were synthesized. The compounds were studied in binding and functional assays to assess their potency for the A2 compared to A1 adenosine receptor. The presence of an alpha-hydroxyl group in the alkynyl chain of NECA derivatives accounts for the A2 agonist potency, leading to compounds endowed with sub-nanomolar affinity in binding studies. However, these analogues also possess good A1 receptor affinity resulting in low A2 selectivity. From functional experiments the 4-hydroxy-1-butynyl (6) and the 4-(2-tetrahydro-2H-pyranyloxy)-1-butynyl (16) derivatives appear to be very potent in inducing vasorelaxation without appreciable effect on heart rate. The new compounds were also tested as inhibitors of platelet aggregation induced by ADP. Introduction of an alpha-hydroxyl group in the alkynyl side chain caused a greater increase in antiaggregatory activity than either NECA or HE-NECA, resulting in the most potent inhibitors of platelet aggregation so far known in the nucleoside series. The presence of an alpha-quaternary carbon such as the 3-hydroxy-3,5-dimethyl-1-hexynyl (12) and the 3-hydroxy-3-phenyl-1-butynyl (15) derivatives markedly reduced the antiaggregatory potency without affecting the A2 affinity. The hydrophobicity index (k') of the new nucleosides barely correlated with the binding data, whereas high k' values were associated with increased A2 vs A1 selectivity but with reduced activity in all functional assays. Some of the compounds synthesized possess interesting pharmacological properties. Compounds having an appropriate balance between vasorelaxation and antiplatelet activity, if confirmed in vivo, deserve further development for the treatments of cardiovascular disorders.

Adenosine↗

Hemodynamic and humoral effects of chronic treatment with the neutral endopeptidase inhibitor SCH 42495 in spontaneously hypertensive rats.

Blockade of atrial natriuretic factor (ANF) degradation by specific neutral endopeptidase (NEP) inhibitors may be useful in treatment of hypertension because of the potential diuretic, natriuretic, and arterial pressure (AP)-lowering effects. To test this possibility, we examined the effects of chronic oral treatment with the NEP inhibitor SCH 42495 on BP, diuresis, natriuresis, plasma ANF, cyclic GMP, and the renin-angiotensin system (RAS) in conscious unrestrained spontaneously hypertensive rats (SHR) and compared them with the effects induced by the angiotensin-converting enzyme (ACE) inhibitor spirapril (SPIR). Four groups of adult SHR were treated orally for 4 weeks with placebo, SCH 42495 3 mg/kg twice daily (b.i.d.), SCH 42495 30 mg/kg b.i.d., and spirapril 1 mg/kg b.i.d. Systolic BP (SBP) was measured weekly, and 24-h urine was collected every week for measurement of urinary volume, sodium, potassium, and cyclic GMP excretion. Plasma ANF, cyclic GMP, renin activity (PRA), and aldosterone (ALDO) were determined from blood collected when the rats were killed. After 4-week treatment with SCH 42495, circulating levels of ANF were similar in both SCH 42495- and placebo-treated SHR; plasma cyclic GMP was higher, however, in the treated rats than in controls and urinary cyclic GMP increased only with the higher dose of SCH 42495. PRA and plasma ALDO tended to be lower in both SCH 42495-treated groups than in controls, yet BP, diuresis, and natriuresis throughout the study were not different from controls. In contrast, spirapril decreased BP; this effect was associated with significant increments in renin and decrements in ALDO and ANF, without changes in plasma and urinary cyclic GMP.(ABSTRACT TRUNCATED AT 250 WORDS)

Administration, Oral↗

Pharmacology of the new selective A2a adenosine receptor agonist 2-hexynyl-5'-N-ethylcarboxamidoadenosine.

The pharmacological profile of 2-hexynyl-5'-N-ethylcarboxamidoadenosine (2HE-NECA, CAS 141018-30-6), a new selective A2a adenosine receptor agonist, was characterized. In binding studies on both rat and bovine brain, 2HE-NECA was more potent on A2a receptors (Ki = 2.2 and 1.5 nmol/l, respectively) than the reference A2a agonist, 2-[4-(2-carboxyethyl)-phenethylamino]-5'-N-ethylcarboxamidoaden osi ne (CPEC) or the non-selective adenosine agonist 5'-N-ethylcarboxamidoadenosine (NECA). The drug displayed a good A2a vs A1 receptor selectivity in brain tissues of both animal species (60- and 160-fold, respectively). In functional studies, 2HE-NECA showed marked vasodilating properties in rat aorta, bovine and porcine coronary arteries. The vasodilatory response in the porcine coronary preparation was greater for 2HE-NECA (EC50 = 23.3 nmol/l) than for CPEC (EC50 = 58.7 nmol/l) or NECA (EC50 = 76.6 nmol/l). In the rat Langendorff model, in which global ischemia was induced, 2HE-NECA (100 nmol/l) significantly prevented the risk of diastolic pressure and coronary perfusion pressure occurring during postischemic reperfusion. The in vitro antiaggregatory activity of 2HE-NECA (IC50 = 0.07 mumol/l), as tested in rabbit platelets, was higher than that found with NECA (IC50 = 0.2 mumol/l) or CPEC (IC50 = 2.16 mumol/l). In spontaneously beating rat atria, which are responsive to A1-receptor stimulation, 2HE-NECA did not show any negative chronotropic activity up to micromolar concentrations. In conscious spontaneously hypertensive rats, 2HE-NECA administered intraperitoneally caused a dose-dependent reduction in systolic blood pressure (ED30 = 0.005 mg/kg) with minimal reflex tachycardia.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenosine↗

Pharmacology of the highly selective A1 adenosine receptor agonist 2-chloro-N6-cyclopentyladenosine.

The pharmacological profile of 2-chloro-N6-cyclopentyladenosine (CCPA, CAS 37739-05-2), a highly selective A1 adenosine receptor agonist, was characterized. Its effects were compared with those of the non-selective adenosine receptor agonist 5'-N-ethylcarboxamidoadenosine (NECA). In binding studies on both rat and bovine brain, CCPA was highly potent on A1 receptors (Ki = 1.3 and 0.5 nmol/l, respectively) and displayed good A1 vs A2a receptor selectivity (500- and 920-fold, respectively). In functional studies, CCPA showed marked negative chronotropic activity in spontaneously beating rat atria (EC50 = 8.2 nmol/l). This effect was antagonized dose-dependently by the A1 selective antagonist 8-cyclopentyl-1,3-dipropylxanthine (DPCPX). In the rat Langendorff model, in which global ischemia was induced, CCPA (3 nmol/l) prevented significantly the rise of diastolic pressure and coronary perfusion pressure during postischemic reperfusion. In vascular preparations, a functional activity responsive to A2a adenosine receptor stimulation, CCPA did not show any vasodilating properties up to micromolar concentrations, whereas NECA had a good relaxing activity in bovine coronary arteries (EC50 = 167 nmol/l). In rabbit platelets, a model sensitive only to A2a-receptor stimulation, CCPA did not elicit any relevant antiaggregatory properties, whereas NECA was found to be effective (IC50 = 200 nmol/l). Likewise, in an in vivo model of platelet aggregation in the rabbit using a non-invasive radioisotopic technique, CCPA (100 micrograms/kg, 30 min i.v. infusion) did not influence platelet function, whereas NECA (10 micrograms/kg, 30 min i.v. infusion) decreased peak value for platelet accumulation by 35%.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenosine↗

Repeated administration of selective adenosine A1 and A2 receptor agonists in the spontaneously hypertensive rat: tolerance develops to A1-mediated hemodynamic effects.

We investigated the effects of the selective A1 adenosine receptor agonist 2-chloro-N6-cyclopentyladenosine (CCPA), the selective A2 adenosine agonists 2-hexynyl-5'-N-ethyl-carboxamidoadenosine(2-hexynyl-NECA) and 2-[p-(2-carboxyethyl)-phenethylamino]-5'-N-ethylcarboxamidoadenosi ne (CGS 21680), and the nonselective adenosine agonist 5'-N-ethylcarboxamidoadenosine (NECA) on systolic blood pressure (SBP), heart rate (HR) and receptor binding characteristics. The drugs were studied after acute and repeated i.p. administration in conscious, spontaneously hypertensive rats (SHRs). SBP and HR were recorded by the tail-cuff method. In acute studies the drugs induced a dose-dependent antihypertensive effect with the following order of potency: 2-hexynyl-NECA > NECA > CCPA = CGS 21680. As expected, the A1 agonist CCPA induced a dose-dependent bradycardia, whereas the A2 agonists had minimal influence on HR, and the nonselective agonist NECA induced bradycardia only at the two highest doses. In chronic experiments, the compounds were administered twice daily at equihypotensive doses. 2-Hexynyl-NECA, CGS 21680 and NECA maintained their antihypertensive effects throughout the experimental period. After 21 days, SBP levels were -32, -38 and -28% vs. baseline, respectively. HR was slightly affected. Conversely, tolerance developed to both hypotensive and bradycardic effects of CCPA: at day 21 SBP regained the pretreatment value (+2% vs. baseline), and HR also recovered (-14% vs. baseline). Binding studies were performed on cerebral tissues: no differences were observed between treated and control rats in number and affinity of either A1 and A2 receptors.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenosine↗

Beta 1 and beta 2 adrenoceptors are involved in mediating vasodilation in the human coronary artery.

We have characterized beta-adrenoceptors in the human coronary artery and investigated the mechanism underlying vasodilating activity of dilevalol, a non-selective beta-blocking agent with beta 2 agonist properties. Specific [125I]-pindolol binding was saturable, reversible and of high affinity (Kd = 91 +/- 7 pM; Bmax = 10 +/- 3 fmol/mg protein). Competition curves of [125I]-pindolol in the presence of ICI 118,551, a selective beta 2 antagonist, or CGP 20712A, a selective beta 1 antagonist, were best explained by a two-site binding model (48 +/- 5% beta 1 and 52 +/- 4% beta 2 receptors). In isolated coronary strips, isoproterenol induced a dose-dependent vasorelaxant effect which was blocked by either ICI 118,551 (100 nM) or CGP 20712A (100 nM). Dilevalol produced about 30-40% of vasodilating activity starting at a concentration of 100 nM. The response was antagonized selectively by ICI 118,551 suggesting that dilevalol produces vasodilation through the stimulation of beta 2 receptors. These findings show that in the human coronary artery both beta 1 and beta 2 receptor subtypes are present and mediate vasodilation. This suggests that the human coronary artery could be used for the evaluation of the vasodilating component of new beta-adrenoceptor blocking agents.

Adult↗

Effects of selective A1 and A2 adenosine receptor agonists on cardiovascular tissues.

We investigated the negative chronotropic and vasodilating properties of new selective A1 and A2 adenosine agonists such as 2-chloro-N6-cyclopentyladenosine (CCPA) and 2-hexynyl-5'-N-ethyl-carboxamidoadenosine (2-hexynyl-NECA) as compared with reference adenosine analogues. The potency of these compounds on heart rate was assessed in the rat atrial preparation and their activity on the vascular tone was determined in both rat aorta and bovine coronary artery. CCPA was found to be the most potent A1 agonist of those currently available in producing negative chronotropic effects (EC50 = 8.2 nM). The A1 antagonist 8-cyclopentyl-1,3-dipropyl-xanthine (DPCPX) blocked CCPA activity in a dose-dependent manner. There was also a significant correlation between its biological effect and the affinity for A1 receptors as measured in the rat brain by [3H]-N6-cyclohexyladenosine (3[H]-CHA) binding. The A2 selective agonist 2-hexynyl-NECA showed vasodilating properties comparable with those observed with the reference compounds, CGS 21680 and NECA. EC50 values were 596 and 569 nM in rat aorta and bovine coronary artery, respectively. Moreover, the rank order of potency was similar in the two vascular districts examined, suggesting that the rat aorta is a useful model for studying the effects of adenosine derivatives on vascular tone. In addition, the potency of the compounds in inducing vasodilation was found to be correlated with their affinity for A2 receptors as measured in the rat striatum by 3[H]-CGS 21680 binding. These data further support that A1 receptors are involved in depressing cardiac activity and A2 receptors in inducing vasorelaxation.

Adenosine↗