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Biomedical subjects

P J Kadowitz

Publications and source records attributed to P J Kadowitz.

At least 19 recordsLinked to original sources

Blockade of thromboxane/endoperoxide receptor-mediated responses in the pulmonary vascular bed of the cat by sulotroban.

The effects of sulotroban (BM13.177; SK & F 95587), a thromboxane (TX) A2/endoperoxide (PGH2) receptor blocking agent on responses to the TXA2/PGH2 mimics, U46619 and U44069, were investigated in the pulmonary vascular bed of the intact-chest cat under constant flow conditions. Injections of U46619 and U44069 directly into the perfused lobar artery caused dose-related increases in lobar arterial pressure without altering left atrial pressure. Following administration of sulotroban in a dose of 5 mg/kg i.v., dose-response curves for U46619 and U44069 were shifted to the right in a parallel manner. The duration of the blocking effect of sulotroban was investigated, and responses to U46619 returned to approximately 50% of control in 120 min and were not significantly different from control 240 min after administration of the receptor antagonist. Sulotroban was without significant effect on responses to prostaglandin (PG) D2 or F2 alpha or serotonin, histamine, norepinephrine, angiotensin II or BAY K8644, an agent which enhances calcium entry. Sulotroban was without effect on responses to endothelin (ET)-1, sarafotoxin (S) 6a or S6c and platelet-activating factor (PAF). Sulotroban did not alter baseline vascular pressures in the cat and responses to the PG and TXA2/PGH2 precursor, arachidonic acid, were reduced. The present data show that sulotroban selectively blocks TXA2/PGH2 receptor-mediated responses in a competitive and reversible manner in the pulmonary vascular bed.(ABSTRACT TRUNCATED AT 250 WORDS)

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

Comparison of responses to sarafotoxins 6a and 6c in pulmonary and systemic vascular beds.

Cardiovascular and pulmonary responses to sarafotoxin (S) 6a and S6c were investigated in the anesthetized cat. Intravenous injections of the peptides in doses of 0.1-1.0 nmol/kg caused decreases or biphasic changes in arterial pressure (AP) and increases in central venous pressure, pulmonary arterial pressure (PAP), and cardiac output (CO). Secondary decreases in CO were observed in response to higher doses, and biphasic changes in systemic (SVR) and pulmonary (PVR) vascular resistances were observed. Under constant-flow conditions, the peptides only increased pulmonary lobar arterial perfusion pressure and lobar vascular resistance. AP responses to S6a, S6c, endothelin (ET)-1, ET-2, vasoactive intestinal contractor (VIC), and Lys7-ET-1 were similar, whereas AP responses to S6b and ET-3 were similar. S6a, S6b, S6c, ET-1, ET-2, ET-3, VIC, Lys7-ET-1, and big ET-1 increased PAP. S6a and S6c increased distal aortic and superior mesenteric arterial (SMA) blood flow and caused biphasic changes at the highest doses. Under constant-flow conditions, S6a and S6c produced dose-dependent biphasic changes in hindquarters perfusion pressure. Changes in SVR and PVR in response to the peptide were not affected by hexamethonium, glyburide, or meclofenamate, indicating that responses are independent of autonomic reflexes, activation of ATP-regulated K+ channels, or release of cyclooxygenase products. In contrast, N-nitro-L-arginine methyl ester decreased hindquarters vasodilator response to S6a and S6c. The present data show that S6a and S6c produce both vasodilation and vasoconstriction in the systemic vascular bed and increase lobar vascular resistance and that hindquarters vasodilator responses are mediated, in part, by the release of endothelium-derived relaxing factor.

Animals

Analysis of pulmonary and systemic vascular responses to platelet-activating factor in the cat.

Pulmonary and systemic vascular responses to platelet-activating factor (PAF) were investigated in the anesthetized cat. Intravenous injections of PAF decreased arterial pressure, increased pulmonary arterial pressure, and caused small but significant decreases in right and left atrial pressures. A transient increase in cardiac output was followed by a secondary decrease, and heart rate was increased. Pulmonary vascular resistance (PVR) was increased, systemic vascular resistance (SVR) was reduced, and changes in PVR and SVR in response to PAF were blocked by the novel PAF receptor antagonist, BN 50730. Under constant-flow conditions PAF dilated the hindlimb vascular bed in a dose-related manner, whereas in the pulmonary lobar vascular bed, PAF caused dose-related increases in perfusion pressure. Hindlimb and lobar vascular responses to PAF were blocked by BN 50730 in a selective manner, whereas cyclooxygenase inhibitors had no effect on responses to the phospholipid mediator. Hindlimb vasodilator responses to PAF were reduced by N omega-nitro-L-arginine in a dose that blocked the response to acetylcholine but did not decrease responses to prostaglandin E1 or nitroprusside. Increases in lobar arterial pressure in response to PAF were not altered by treatment with a thromboxane receptor antagonist, when the lung was perfused with a low-molecular-weight dextran solution, or when ventilation to the lobe was interrupted. These data suggest that the release of cyclooxygenase products, activation of thromboxane A2 receptors, cellular aggregation, release of leukocyte or platelet mediators, or changes in bronchomotor tone do not contribute to the pulmonary vasoconstrictor response to PAF and that the hindlimb vasodilator response to the phospholipid mediator is dependent in part on the release of endothelium-derived relaxing factor.

Animals

Analysis of systemic and pulmonary vascular responses to PACAP and VIP: role of adrenal catecholamines.

Systemic and pulmonary vascular responses to pituitary adenylate cyclase-activating polypeptide (PACAP), a novel peptide with 68% sequence homology to vasoactive intestinal peptide (VIP), were investigated in the anesthetized cat. Intravenous injections of PACAP in doses of 0.1-3.0 nmol/kg produced decreases in arterial pressure (AP) at low doses and biphasic changes (decreases followed by increases) at higher doses, which were accompanied by increases in central venous pressure (CVP) and cardiac output (CO), and decreases and biphasic changes in systemic vascular resistance (SVR). In contrast, VIP in doses of 0.1-3.0 nmol/kg produced only dose-dependent decreases in AP and SVR and produced little change in CVP and CO. PACAP produced increased pulmonary arterial pressure (PAP), left atrial pressure (LAP), and increases in pulmonary vascular resistance (PVR). PACAP increased heart rate (HR) and right ventricular contractile force (RVCF), while VIP had no effect. Increases in AP and SVR in response to PACAP were changed to decreases following the administration of phentolamine or after adrenalectomy. Under constant flow conditions, PACAP and VIP produced dose-dependent decreases in lobar arterial pressure when tone was elevated, with PACAP being threefold more potent than VIP. Meclofenamate and nitro-L-arginine methyl ester (L-NAME) had no effect on pulmonary responses to the peptides. PACAP produced dose-dependent biphasic changes in hindquarters perfusion pressure, whereas VIP produced only decreases that were unchanged by indomethacin, L-NAME, and glibenclamide. Phentolamine and adrenalectomy eliminated the hindquarters pressor response to PACAP and D-Phe2-VIP, a VIP antagonist, reduced responses to VIP but not to PACAP. These data suggest that responses to PACAP and VIP are mediated by distinct receptors and that pressor responses to PACAP are due to the release of catecholamines from the adrenal gland.

Adrenal Glands

Methylene blue inhibits neurogenic cholinergic vasodilator responses in the pulmonary vascular bed of the cat.

The effects of methylene blue, an inhibitor of soluble guanylate cyclase, on pulmonary vasodilator responses to efferent vagal stimulation were investigated in the intact-chest cat under conditions of controlled blood flow and constant left atrial pressure. In animals pretreated with reserpine or phenoxybenzamine, under elevated tone conditions, efferent vagal stimulation at frequencies of 2-16 Hz caused stimulus-frequency-dependent decreases in lobar arterial pressure and pulmonary lobar vascular resistance. The vasodilator response to vagal stimulation was reproducible, blocked by atropine, and reduced by methylene blue. Intralobar infusion of methylene blue increased lobar arterial pressure without significantly altering systemic arterial or left atrial pressure. Methylene blue had no significant effect on vasodilator responses to isoproterenol, albuterol, atriopeptin III, lemakalim, adenosine, ATP, and pituitary adenylate cyclase-activating polypeptide-27 but significantly decreased vasodilator responses to acetylcholine, nitric oxide (NO), sodium nitroprusside, and the S-nitrosothiol, S-nitroso-N-acetyl-penicillamine. The effects of methylene blue on responses to vagal stimulation were reversible and were similar with the addition of a NO synthase inhibitor. The present data suggest that vasodilator responses to cholinergic nerve stimulation involve an increase in the production of guanosine 3',5'-cyclic monophosphate in the pulmonary vascular bed. These results provide additional evidence to support the hypothesis that neurogenically released acetylcholine induces endothelium-dependent, muscarinic, guanylate cyclase-mediated vasodilation.

15-Hydroxy-11 alpha,9 alpha-(epoxymethano)prosta-5

Daltroban blocks thromboxane responses in the pulmonary vascular bed of the cat.

The influence of daltroban (BM13.505; SK&F 96148), a thromboxane (Tx) A2-receptor-blocking agent, on responses to the TxA2 mimics U-46619 and U-44069 was investigated in the pulmonary vascular bed of the intact-chest cat under constant-flow conditions. Daltroban (5 mg/kg iv) had no significant effect on mean baseline vascular pressures but significantly decreased responses to the TxA2 mimics without altering responses to prostaglandin (PG) F2 alpha or PGD2 or the PGD2 metabolite 9 alpha, 11 beta-PGF2. Dose-response curves for U-46619 and U-44069 were shifted to the right in a parallel manner, and daltroban had no significant effect on responses to norepinephrine, serotonin, angiotensin II, BAY K 8644, endothelin-(ET) 1, ET-2, or platelet-activating factor (PAF). After administration of daltroban, responses to U-46619 returned to 50% of control in 90 min and responses to the PG and TxA2 precursor arachidonic acid were decreased significantly. These results suggest that daltroban selectively antagonizes TxA2-receptor-mediated responses in a competitive and reversible manner. These data provide support for the hypothesis that discrete TxA2 receptors unrelated to receptors stimulated by PGF2 alpha, PGD2, or 9 alpha, 11 beta-PGF2 are present in the pulmonary vascular bed of the cat. The present data suggest that pulmonary vasoconstrictor responses to PAF and ET peptides are not dependent on activation of TxA2 receptors in the cat.

15-Hydroxy-11 alpha,9 alpha-(epoxymethano)prosta-5

Inhibitory effects of DuP 753 and EXP3174 on responses to angiotensin II in pulmonary vascular bed of the cat.

The effects of the non-peptide antagonist DuP 753 and its metabolite EXP3174 on responses to angiotensin II were investigated in the pulmonary vascular bed of the intact-chest cat. Under conditions of controlled blood flow and constant left atrial pressure, injections of angiotensin II into the perfused lobar artery caused dose-related increases in lobar arterial pressure. Responses to angiotensin II were reproducible and were not changed by meclofenamate or prazosin, indicating that prostaglandin or norepinephrine release does not mediate or modulate pulmonary vascular responses to the peptide. DuP 753 (1-5 mg/kg iv) decreased responses to angiotensin II in a competitive manner, and the duration of the blockade was related to dose of the antagonist. DuP 753 had no significant effect on responses to U-46619, norepinephrine, serotonin, endothelin-1, vasopressin, or BAY K 8644. EXP3174 also decreased responses to angiotensin II without altering responses to agents that act by a variety of mechanisms. The inhibitory effect of EXP3174 (1 mg/kg iv) was not overcome by angiotensin II in the range of doses studied, and the shift to the right of the dose-response curve was nonparallel, suggesting that the blockade was noncompetitive. The blockade was long in duration, and, when the dose of EXP3174 was decreased to 0.1 mg/kg iv, the blockade was surmounted and the shift to the right of the dose-response relationship was parallel. DuP 753 and EXP3174 had little effect on mean baseline pressures in the cat.(ABSTRACT TRUNCATED AT 250 WORDS)

Angiotensin II

Sulotroban selectively inhibits thromboxane-receptor-mediated responses in the peripheral vascular bed of the cat.

The effects of Sulotroban (BM 13.177, SK&F 95587) were investigated under conditions of controlled blood flow in the hindquarters and mesenteric vascular beds of the cat. Injections of the thromboxane (TX) A2 mimics, U46619 and U44069, caused dose-related increases in perfusion pressure. After administration of SK&F 95587, vasoconstrictor responses to the TXA2 mimics were reduced significantly, and the dose-response curves were shifted to the right in a parallel fashion. Responses to norepinephrine, phenylephrine, tyramine, endothelin-1, angiotensin II, BAY K8644, acetylcholine, sodium nitroprusside, isoproterenol, lemakalim, prostaglandin (PG) E1, and PGF2 alpha, agents which alter vascular resistance by a variety of mechanisms, were not changed by the TXA2 receptor antagonist. However, SK&F 95587 reduced mesenteric vasoconstrictor responses to PGD2. Results of the present study indicate that SK&F 95587 blocks TX-receptor-mediated responses in the hindquarters circulation of the cat in a competitive and selective manner and reduces mesenteric vascular responses to the TXA2 mimics, as well as PGD2. These data suggest that this antagonist would be useful in studies on the role of TXA2 in physiologic and pathophysiologic processes in the systemic vascular bed of the cat.

Animals

Analysis of responses to big endothelin in the hindquarters vascular bed of the cat.

OBJECTIVE: To investigate vascular responses to the endothelin-1 (ET-1) precursor, human big endothelin 1-38 (big ET), in the peripheral vascular bed of the cat. DESIGN: These studies were designed to investigate the hypothesis that bit ET is converted to an active peptide with properties similar to ET-1. SETTING: Hindquarters vascular bed of the cat under conditions of controlled bloodflow; changes in perfusion pressure reflect changes in vascular resistance. ANIMALS: Fifty-four adult mongrel cats. INTERVENTIONS: Big ET, ET-1, the peptidases chymotrypsin, pepsin and cathepsin-D, and the metalloprotease inhibitor phosphoramidon. MAIN RESULTS: Intra-arterial injections of big ET induced a slow-developing and sustained increase in hindquarters perfusion pressure which could be blocked by phosphoramidon. ET-1 (0.3 nmol), administered as a slow infusion over a 10-min period, produced a slowly developing increase in hindquarters perfusion pressure in a manner similar to that observed in response to injection of big ET. A bolus injection of ET-1 produced a biphasic response characterized by a transient decrease in pressure followed by an increase which was significantly greater in magnitude and more rapid in onset than the pressor response to big ET (0.3 nmol). After incubation of big ET with chymotrypsin, pepsin and cathepsin-D (each 5% weight/weight) for 30 mins at 37 degrees C, injection of activated big ET produced a biphasic response characteristic of the response to ET-1 with an initial transient decrease in pressure followed by a secondary increase in hindquarters perfusion pressure. CONCLUSIONS: Big ET produces a phosphoramidon-sensitive pressor response which is similar to that produced by an infusion of ET-1. These data suggest that chymotrypsin, pepsin and cathepsin-D can convert big ET to an active peptide which elicits a biphasic response similar to that produced by ET-1.

Animals

Pulmonary vasodilator activity of prostacyclin (PGI2) in the cat.

We studied the pulmonary vascular effects of prostacylin, PGI2, in the cat with intact chest under conditions of controlled blood flow. Intralobar injections of PGI2, 0.03--1 microgram, decreased arterial pressure in the perfused lobe in a dose-dependent manner. Inasmuch as lobar blood flow was held constant and left artrial pressure was unchanged, the fall in lobar arterial pressure reflects a decrease in lobar vascular resistance. Prostaglandin E1 (PGE1) and nitroglycerin also decreased lobar arterial pressure; however, PGI2 had greater vasodilator activity than did these substances. Vasodilator responses to PGI2, PGE1, and nitroglycerin in absolute terms were dependent on the baseline level of tone in the pulmonary vascular bed. Prostacyclin reversed the hypertensive and platelet aggregating effects of ADP in the lobar vascular bed. These data indicate that PGI2 has significant vasodilator activity in the feline pulmonary lobar vascular bed.

Adenosine Diphosphate

Relaxation of bovine coronary artery and activation of coronary arterial guanylate cyclase by nitric oxide, nitroprusside and a carcinogenic nitrosoamine.

The principal objective of this study was to test the hypothesis that nitroprusside relaxes vascular smooth muscle via the reactive intermediate, nitric oxide (NO), and that the biologic action of NO is associated with the activation of guanylate cyclase. Nitroprusside, N-methyl-N'-nitro-N-nitrosoguanidine (MNNG) and NO elicit concentration-dependent relaxation of precontraced helical strips of bovine coronary artery. Nitroprusside, MNNG and NO also markedly activate soluble guanylate cyclase from bovine coronary arterial smooth muscle and, thereby, stimulate the formation of cyclic GMP. Three heme proteins, hemoglobin, methemoglobin and myoglobin, and the oxidant, methylene blue, abolish the coronary arterial relaxation elicited by NO. Similarly, these heme proteins, methylene blue and another oxidant, ferricyanide, markedly inhibit the activation of coronary arterial guanylate cyclase by NO, nitroprusside and MNNG. The following findings support the view that certain nitroso-containing compounds liberate NO in tissue:heme proteins, which cannot permeate cells, inhibit coronary arterial relaxation elicited by NO, but not by nitroprusside or MNNG; the vital stain, methylene blue, inhibits relaxation by NO, nitroprusside and MNNG; heme proteins and oxidants inhibit guanylate cyclase activation by NO, nitroprusside and MNNG in cell-free mixtures. The findings that inhibitors of NO-induced relaxation of coronary artery also inhibit coronary arterial guanylate cyclase activation suggest that cyclic GMP formation may be associated with coronary arterial smooth muscle relaxation.

Animals

Cardiovascular actions of prostacyclin (PGI2) in the cat.

The cardiovascular actions of the newly discovered bicyclic prostaglandin, prostacyclin, or PGI2, were compared with those of PGE1 in the anesthetized cat. PGI2 decreased systemic arterial pressure, increased cardiac output and decreased systemic vascular resistance. The decreases in systemic vascular resistance were similar when PGI2 was injected into the left or right atrium, suggesting that prostacyclin is not inactivated in the feline pulmonary vascular bed. PGE1 also decreased systemic arterial pressure and increased cardiac output; however, left atrial administration of this substance produced greater reductions in systemic vascular resistance than right atrial injections, suggesting that PGE1 is inactivated in the feline lung. PGI2 also caused dose-related decreases in perfusion pressure in the renal, hindquarters and mesenteric vascular beds and had the greatest vasodilator activity in the mesenteric vascular bed. PGE1 decreased perfusion pressure in the 3 regional beds, and the overall dilator effects of PGI2 and PGE1 in the peripheral circulation were quite smiliar. The present data show that PGI2 is a potent peripheral vasodilator in the cat and since this substance is not inactivated in the lung, it could serve as a circulating hormone in this species.

Animals

Inhibition of vasoconstrictor responses by prostacyclin (PGI2) in the feline mesenteric vascular bed.

The effects of infusion of prostacyclin, PGI2, on vasoconstrictor responses to sympathetic nerve stimulation, norepinephrine and angiotensin II were investigated in the mesenteric vascular bed of the cat. Stimulation of the sympathetic nerves and intra-arterial injections of norepinephrine and angiotensin increased mesenteric perfusion pressure in a frequency and dose-dependent manner. Responses to nerve stimulation and pressor hormones were reproducible and not altered by infusions of the Tris vehicle for PGI2 or the PGI2 breakdown product, 6-keto-PGF1 alpha. Infusions of PGI2, 1 and 0.3 micrograms/min, decreased mesenteric arterial perfusion pressure and, at the higher infusion rate, markedly reduced responses to nerve stimulation, norepinephrine and angiotensin. At the lower infusion rate PGI2 caused small but significant reductions in responses to norepinephrine and nerve stimulation but did not alter responses to angiotensin. Results of these studies demonstrate that PGI2 possesses the ability to inhibit vasoconstrictor responses in the feline intestinal vascular bed and suggest that this effect is postjunctional.

Angiotensin II

Coronary vasodilator activity of 13,14-dehydroprostacyclin methyl ester: comparison with prostacyclin and other prostanoids.

The effects of a recently synthesized, stable prostacyclin (PGI2) analog, 13,14-dehydro-PGI2 methyl ester, and authentic PGI2 and several other prostanoids on the coronary circulation were investigated in the intact dog by using a new technique to measure coronary sinus blood flow. The PGI2 analog, PGI2, and prostaglandin (PG) E2 and D2 each increased coronary sinus blood flow in a dose-related fashion when injected into the left coronary artery. The analog and PGE2 had similar vasodilator activity while PGI2 was slightly more potent. PGD2 was a moderately active coronary vasodilator whereas PGF2alpha was inactive. The coronary vasodilator effects of PGI2, its analog, PGE2, and PGD2 occurred at doses that had little effect on aortic pressure, left ventricular pressure and its first derivative, or on cardiac output and heart rate. The prostaglandin precursor arachidonic acid and the endoperoxide intermediate PGH2 both increased coronary sinus blood flow in a dose-dependent manner. The effects of arachidonic acid were inhibited by indomethacin. These data show that PGE2, PGI2, and a stable PGI2 analog are potent vasodilators in the canine coronary vascular bed and suggest that the vasodilator effects of arachidonic acid and PGH2 may be due to the formation of PGE2, PGD2, or PGI2 in the dog heart.

Animals

Effect of dihomo-gamma-linolenic acid on the canine pulmonary vascular bed.

The effect of dihomo-gamma-linolenic acid (DGLA), the precursor of the monoenoic prostaglandins (PG), F1alpha and E1, on the pulmonary vascular bed of the intact dog was studied under conditions of controlled pulmonary blood flow. DGLA increased pulmonary vascular resistance in a dose-related manner by constricting intrapulmonary veins and upstream segments, presumably pulmonary arteries. Intrapulmonary injection of DGLA also increased transpulmonary injection of DGLA also increased transpulmonary airway pressure, presumably by increasing airway resistance and decreasing lung compliance or both. The vasoconstrictor response, however, was independent of changes in transpulmonary pressure since similar pressor responses were obtained in ventilated and nonventilated lungs. Further, the response was not dependent on factors or elements in whole blood, since the increase in pulmonary vascular resistance occurred during perfusion with saline or dextran and was enhanced in these media. Conversion of DGLA to PGs by a lung cyclo-oxygenase appears to mediate the response, since it was blocked by indomethacin and dose not occur with injection of nonprecursor long-chain fatty acids. These data suggest that the response to DGLA is due to formation of vasoactive products in the monoenoic PG pathway.

8,11,14-Eicosatrienoic Acid