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Biomedical subjects

J L Perhach

Publications and source records attributed to J L Perhach.

33 records · Page 2Linked to original sources

Inhibition of leukotriene (SRS-A)-mediated acute lung anaphylaxis by azelastine in guinea pigs.

Azelastine hydrochloride, chemically known as 1(2H)-phthalazinone, 4-[(4-chlorophenyl)methyl]-2-(hexahydro-1-methyl-1H-azepine-4-yl)-, monohydrochloride, is a novel, orally effective, long-acting, antiallergic/antiasthmatic agent. The ability of azelastine and selected antiallergic drugs to inhibit SRS-A (leukotriene)-mediated acute lung anaphylaxis in guinea pigs (Konzett-Rossler method) was investigated. Azelastine and ketotifen were administered p.o. 2 and 24 h before antigen challenge; disodium cromoglycate (DSCG) was administered i.v. immediately before antigen challenge. The oral dose of azelastine required to inhibit leukotriene-mediated allergic bronchospasm by 50% (ID50: mg/kg) was 0.063 at 2 h and 0.120 at 24 h. Ketotifen at a dose of 0.05 to 10 mg/kg at 2 and 24 h, p.o., as well as DSCG at a dosage of 0.3 to 10 mg/kg at 0 min, i.v., produced weak, inconsistent and nondose-related antianaphylactic effects. Azelastine is an orally effective and long-acting inhibitor of in vivo synthesis and/or release of leukotrienes.

Anaphylaxis↗

Inhibition by azelastine of nonallergic histamine release from rat peritoneal mast cells.

The ability of azelastine and selected antiallergic drugs to inhibit compound 48/80-induced and PS-potentiated, Con A-induced histamine release from RPMC was investigated. Azelastine, ketotifen, theophylline, and DSCG added simultaneously with the secretagogues or preincubated with the RPMC for 10 min before the addition of secretagogues produced concentration-dependent inhibition of histamine release. In general, the relative order of potency at calculated IC50 level was as follows: azelastine greater than ketotifen greater than theophylline greater than DSCG. The preincubation of RPMC with azelastine for 10 min exerted 3.5 times greater inhibition of Con A plus PS-stimulated histamine release but did not influence the inhibitory activity on compound 48/80-induced release. The duration of preincubation did not influence the inhibitory effects of ketotifen with either secretagogue. Theophylline and DSCG exerted significantly greater inhibition when they were added simultaneously with Con A plus PS. The inhibitory activity of DSCG was also significantly improved upon simultaneous addition with compound 48/80. These data demonstrated that azelastine is the most potent inhibitor of nonallergic histamine release from RPMC among the four antiallergic drugs examined.

Animals↗

Inhibition of calcium ionophore (A23187)-stimulated histamine release from rat peritoneal mast cells by azelastine: implications for its mode of action.

Azelastine is a novel, orally effective, long-acting, antiallergic agent. The ability of azelastine to influence calcium ionophore A23187-induced histamine release from rat peritoneal mast cells was investigated and compared with selected antiallergic drugs. The concentrations of drugs required to inhibit A23187 (0.2 microM)-stimulated histamine release by 50% (IC50S, microM) were as follows: azelastine 5; diphenhydramine 52; and ketotifen 200. Theophylline and sodium cromoglycate in a concentration range of 0.1-1000 microM failed to exert any significant inhibition of histamine release. The inhibitory effects of azelastine on A23187-stimulated histamine release were antagonized by high concentrations of exogenous Ca2+ ions. These data suggest that azelastine inhibits A23187-stimulated histamine release by interfering with the influx of Ca2+ into the mast cells.

Animals↗

Antagonism by meseclazone and other nonsteroidal anti-inflammatory drugs of bradykinin-induced bronchospasm.

Bradykinin-induced bronchoconstriction is due, in part, to release of TXA2 and prostaglandins. Intravenous administration of meseclazone and other nonsteroidal anti-inflammatory drugs caused a dose-dependent inhibition of bronchoconstriction resulting in the following order of descending potency: isoproterenol congruent to indomethacin greater than fenoprofen greater than tolmetin greater than aspirin greater than naproxen congruent to ibuprofen greater than phenylbutazone greater than diflunisal greater than meseclazone greater than 5-CSA. This order of potency does not correlate with that obtained with these compounds for in vitro relaxation of tracheal smooth muscle, an effect which may be related to inhibition of prostaglandin synthesis.

Animals↗

Antihypertensive indole derivatives of phenoxypropanolamines with beta-adrenergic receptor antagonist and vasodilating activity.

A series of 25 aryloxypropanolamines containing the 3-indolyl-tert-butyl [i.e., 1,1-dimethyl-2-(1H-indol-3-yl)ethyl] or substituted 3-indolyl-tert-butyl moiety as the N substituent is reported. These compounds have been tested for antihypertensive activity in spontaneously hypertensive rats (SHR), beta-adrenergic receptor antagonist action in conscious normotensive rats, vasodilating activity in ganglion-blocked rats with blood pressure maintained by angiotensin II infusion, and for intrinsic sympathomimetic action (ISA) in reserpinized rats. Some of the compounds exhibit antihypertensive activity in combination with beta adrenergic receptor antagonist and vasodilating action. The structure--activity relationships in these tests are discussed.

Adrenergic beta-Antagonists↗

Antihypertensive activity of 2-amino-4-(3,4-dichlorophenyl)-2-imidazoline (MJ 10459-2) and catecholamine reduction.

Antihypertensive activity of 2-amino-4-(3,4-dichlorophenyl)-2-imidazoline hydrobromide (MJ 10459-2) was assessed in conscious, spontaneously hypertensive and stress-induced hypertensive rats via indirect determination of systolic blood pressure. Subcutaneous administration of 1-4 mg/kg resulted in lowering of blood pressure that was dose related. No reductions in the content of norepinephrine, dopamine, serotonin or 5-hydroxyindoleacetic acid were noted in the cerebrum, cerebellum, midbrain or medulla/pons area of brain after 1 and 4 mg/kg of MJ 10459-2. Cardiac tissue norepinephrine was reduced to 4-6% of control values after subcutaneous doses of 0.2-20 mg/kg of MJ 10459-2 in hypertensive and normotensive rats. These data suggest that at least part of the blood pressure lowering effects of MJ 10459-2 may involve reduction of peripheral noradrenergic stores.

Animals↗

Aberrations of cyclic nucleotide metabolism in the hearts and vessels of hypertensive rats.

In the aortas and mesenteric arteries from spontaneous hypertensive rats and in the aortas from stress- and desoxycorticosterone-acetate-hypertensive rats, the intracellular cGMP: cAMP ratios were significantly elevated when compared to the ratios in the aortas of the respective controls. Decreases in the intracellular cAMP or cGMP levels were consistently associated with increased activity of the cyclic-nucleotide-specific low K(m) phosphodiesterase (3':5'-cAMP 5' nucleotidohydrolase, EC 3.1.4.17). Increases in intracellular cGMP levels were associated with elevated guanylyl cyclase [GTP pyrophosphate-lyase (cyclizing), EC 4.6.1.2] activity. Furthermore, adenylyl cyclase [ATP pyrophosphate-lyase (cyclizing), EC 4.6.1.1] activity was less sensitive to stimulation by the beta-adrenergic stimulant isoproterenol in both the aortas and the hearts of the hypertensive animals. These changes could provide the biochemical basis for the (a) increased vascular smooth muscle tone and peripheral resistance observed in these animals, (b) increased reactivity to norepinephrine, and (c) decreased ability of aortas from hypertensive rats to relax. The presence of these same effects in different etiologic types of hypertension indicates that this aberration in cyclic nucleotide metabolism may represent a common metabolic defect basic to the hypertensive syndrome irrespective of etiology.

Adenylyl Cyclases↗

Treatment of upper and lower airway disease with azelastine.

Azelastine is capable of interfering with a wide variety of mediators of airway hyperreactivity and provides significant protection and bronchodilation in allergic hay fever and allergic asthma, respectively. Clinical studies have shown that azelastine produces clinically significant bronchodilation of long duration in moderate to severe reversible lower airway disease. In addition, azelastine has been shown to have an effect on the upper airways by effective symptom relief in patients with seasonal allergic rhinitis; furthermore, azelastine affords protection against exercise and allergen provocation.

Adolescent↗