Search PubMed⌕ Search

Biomedical subjects

N C Thomson

Publications and source records attributed to N C Thomson.

At least 55 records · Page 3Linked to original sources

The effect of nebulized albuterol on the activity of the renin-angiotensin system in asthma.

STUDY OBJECTIVE: We have previously described activation of the renin-angiotensin system (RAS) in acute severe asthma and have also reported activation of the RAS in normal subjects by single doses of nebulized beta 2-agonists. In the present study, we have examined the effect of single and multiple doses of nebulized albuterol on the activity of the RAS in mild asthma. DESIGN: Eight patients with mild asthma were studied. The effect of single and multiple doses of nebulized albuterol (5 mg) on the activity of the RAS was compared with that of placebo using a randomized, double-blind crossover study design. Nebulized drugs were administered at time 0 and 30 min. MEASUREMENTS: Plasma renin, angiotensin II (Ang II), and serum potassium levels were measured at baseline following a short rest, and thereafter at intervals up to 150 min. RESULTS: Renin levels increased after both the single (S) and double (D) nebulized doses of albuterol and were significantly greater than placebo at 30 min after S, and at 45 and 120 min after D. Plasma Ang II level also increased after S and D and was significantly greater than placebo at 30 and 45 min after S, and at 30 min and all timepoints thereafter following D. In addition, the effect of D was significantly greater than S at 45 min. CONCLUSIONS: These results confirm that there is activation of the RAS in asthmatic subjects by single doses of nebulized beta 2-agonists and that repeated dosing with nebulized albuterol has further, additive effects on plasma Ang II levels. It therefore seems likely that these agents are contributing to activation of the RAS in acute asthma, although the exact clinical significance of these transient changes in plasma Ang II levels in asthma is at present unclear.

Adrenergic beta-Agonists↗

The effect of oxygen tension on responses evoked by methacholine and bronchodilators in bovine isolated bronchial rings.

This study examined the effect of acute changes in oxygen tension on responses evoked by the bronchoconstrictor methacholine and the dilators salbutamol, atrial natriuretic peptide and isosorbide dinitrate in isolated bovine bronchi. Cumulative concentration-response curves to methacholine (10(-9)-3 x 10(-4) M) were constructed in three oxygen tensions; hyperoxia (95%), normoxia (20%) and hypoxia (4% O2). Oxygen tensions of 20% and 4% each significantly enhanced contractions to methacholine compared to those in 95% O2. There was no significant difference, however, between responses in 20 and 4%. The ability of salbutamol, atrial natriuretic peptide and isosorbide dinitrate to reverse methacholine induced tone was also compared in the three oxygen tensions (95%, 20% and 4%). Lowering the oxygen tension from 95% enhanced the ability of each of the drugs to reverse contraction, however the pattern differed between drugs; salbutamol was more effective in 20% O2 than 4%, atrial natriuretic peptide was more effective in 4% than either 95 or 20% O2 and isosorbide dinitrate was more effective in both 4 and 20% than 95% O2. In conclusion, both bronchoconstrictor and bronchodilator responses in 95% O2 (hyperoxia) differed from those in 20% O2 (normoxia) and further changes occurred on moving to 4% (hypoxia), although the direction of the changes varied among the dilators. This suggests that the responses evoked by bronchodilators in 95% O2 may not necessarily predict those in the physiological range of oxygen tensions and that the relative effectiveness of bronchodilators may vary between normoxic and hypoxic conditions.

Adrenergic beta-Agonists↗

The role of cyclooxygenase and 5-lipoxygenase metabolites in potentiated endothelin-1-evoked contractions in bovine bronchi.

We have previously shown that angiotensin II (AII) potentiates responses evoked by endothelin-1 (Et-1). In the present study, the additional ability of hypoxia or phorbol 12, 13-dibutyrate (PDBu) to evoke hyperreactivity was examined. In addition, the role of cyclooxygenase and 5-lipoxygenase metabolites of arachidonic acid in the potentiation evoked by AII, hypoxia or PDBu was studied, using indomethacin and nordihydroguaiaretic acid (NDGA). The involvement of protein kinase C in the enhanced response was examined using staurosporine. Contractions were measured isometrically from rings of bovine bronchi. Contractions evoked by Et-1 alone were unaltered by indomethacin (10(-6)M), NDGA (10(-5)M) or staurosporine (3 x 10(-8)M). AII (3 x 10(-7)M), hypoxia (4% O2) or PDBu (10(-8)M) each significantly potentiated the contractions evoked by Et-1. Indomethacin (10(-6)M) virtually abolished the effect of AII, hypoxia or PDBu. NDGA (10(-5)M) reversed the potentiating effect of both AII and hypoxia and partially reversed PDBu-evoked enhancement of Et-1-mediated responses. Staurosporine (3 x 10(-8)M) abolished the ability of AII or PDBu, but not hypoxia, to enhance Et-1-mediated contractions. In conclusion, AII, hypoxia and PDBu evoke hyperresponsiveness which is mediated by prostanoids and/or leukotrienes, the precise nature of which remains to be elucidated. Differences in the ability of staurosporine to reverse AII- and hypoxia-induced hyperreactivity suggests, however, that these conditions may generate different eicosanoids.

Animals↗

Effect of inhaled thiorphan, a neutral endopeptidase inhibitor, on the bronchodilator response to inhaled atrial natriuretic peptide (ANP).

BACKGROUND: The hormone atrial natriuretic peptide (ANP) causes bronchodilation and partially protects against direct and indirect bronchial challenges. Both in vitro and in vivo studies have found that the protective effect of ANP against bronchoconstriction is enhanced by inhibition of the enzyme neutral endopeptidase (NEP). It was hypothesised that pretreatment with thiorphan, an NEP inhibitor, might enhance the bronchodilator response to inhaled ANP. METHODS: In a randomised double blind placebo controlled crossover study, six asthmatic patients (one woman) of mean (SD) age 47.3 (3.8) years and forced expiratory volume in one second (FEV1) 1.91 (0.42) 1, 55 (3.8)% predicted, were studied. All were shown at screening to have at least a 25% improvement in FEV1 to inhaled salbutamol. On five study visits the patients received either thiorphan 1 mg (in 2 ml) followed by ANP 5 mg or placebo (saline), or placebo (saline) followed by ANP (5 mg), placebo or salbutamol 5 mg. Spirometric parameters were measured after each inhalation and thereafter for the next two hours. RESULTS: ANP alone caused a bronchodilator response up to 15 minutes when compared with placebo or thiorphan alone with a mean (SE) change in FEV1 of 16.8 (8.1)% and 16.1 (6.8)% at 10 and 15 minutes from baseline, respectively. Prior inhalation of thiorphan prolonged the duration of the bronchodilator effect of ANP up to 60 minutes with a mean (SE) change in FEV1 of 23.1 (3.4)% at 60 minutes. There was no difference in the maximum degree of bronchodilation following the administration of ANP alone compared with the combination of thiorphan and ANP. The degree and duration of the bronchodilator response produced by ANP, or the combination of the NEP inhibitor and ANP, were less than that produced by salbutamol. CONCLUSIONS: These results confirm that, at least in part, the bronchodilator response to inhaled ANP is modulated by NEP. Analogues of ANP which are stable to NEP may have greater bronchodilator activity than ANP in the treatment of asthma.

Administration, Inhalation↗

Effect of acute hyperoxia on the bronchodilator response to salbutamol in stable asthmatic patients.

BACKGROUND: Recent animal studies have suggested that changes in oxygen tension may alter airway responses to bronchoconstrictor and bronchodilator stimuli. These effects may have relevance to the management of acute exacerbations of asthma but have not been well studied in man. This study was designed therefore to examine the effect of acute hyperoxia (Fio2 1.0) on the bronchodilator response to salbutamol in stable asthmatic patients. METHODS: Twelve stable adult asthmatic patients (three women) were studied using a randomised double blind placebo controlled crossover design. On two study days following baseline measurements patients breathed either air (Fio2 0.21) or oxygen (Fio2 1.0) for 10 minutes alone and then in combination with three incremental doses of nebulised salbutamol administered at 15 minute intervals. The same protocol was employed on two further study days using nebulised saline instead of salbutamol. RESULTS: The mean absolute change in forced expiratory volume in one second (FEV1) from baseline after salbutamol was similar on the normoxic and hyperoxic study days but significantly greater than the study days on which nebulised saline was administered. CONCLUSION: Acute hyperoxi does not potentiate the immediate bronchodilator response to salbutamol in stable asthmatic patients.

Acute Disease↗

Investigation of the mechanism of beta 2-agonist-induced activation of the renin-angiotensin system.

1. We have previously described activation of the renin-angiotensin system in asthma, and also by high-dose nebulized beta 2-agonists. In this study we sought to determine the mechanism responsible. 2. The influence of the angiotensin-converting enzyme inhibitor, lisinopril, on the response of the renin-angiotensin system and serum potassium to nebulized salbutamol was investigated in a randomized, double-blind, crossover study in eight healthy volunteers using a factorial block design. On study days, subjects received lisinopril 20 mg orally or identical placebo tablets followed 3 h later by nebulized salbutamol or placebo inhalation; plasma renin, angiotensin II, serum angiotensin-converting enzyme and potassium were measured at intervals for 120 min after inhalation. 3. Following salbutamol, plasma renin and angiotensin II concentrations were increased significantly compared with placebo [mean (SEM) plasma renin of 61.7 (15.6) mu-units/ml and angiotensin II of 17.7 (5.4) pg/mol 15 min after salbutamol, P < 0.05 versus placebo]. Baseline plasma renin concentrations were increased [160.1 (20.6) mu-units/ml] and baseline plasma angiotensin II concentrations were reduced [1.4 (0.1) pg/ml] by lisinopril, P < 0.05 versus placebo in each case. Inhibition of angiotensin-converting enzyme completely inhibited this salbutamol-induced rise in plasma angiotensin II [mean (SEM) plasma angiotensin II of 1.5 (0.4) pg/ml 15 min after salbutamol, P < 0.05 versus placebo] but had no effect on the changes in plasma renin concentrations after the beta 2-agonist [mean (SEM) plasma renin of 198.4 (18.9) mu-units/ml 15 min after salbutamol].(ABSTRACT TRUNCATED AT 250 WORDS)

Administration, Inhalation↗

Effect of hypoxia and beta 2-agonists on the activity of the renin-angiotensin system in normal subjects.

1. We have reported that the renin-angiotensin system is activated in acute asthma, and also by high-dose nebulized beta 2-agonists. The contribution of other possible stimuli such as hypoxia is unknown. The present study examined the effect of hypoxia alone and also combined with beta 2-agonists on the activity of the renin-angiotensin system. 2. In a double-blind crossover study, eight healthy subjects were randomized to inhale a hypoxic (FiO2 = 12%) or normoxic mixture for a period of 30 min, with either nebulized salbutamol (5 mg) or placebo administered into the circuit after 10 min. Plasma renin, angiotensin II and serum angiotensin-converting enzyme were measured at baseline and at intervals up to 2 h. Pulse rate and oxygen saturation were monitored continuously throughout the study. 3. After hypoxia alone, there was no change in the levels of plasma renin or angiotensin II. When salbutamol was added to the hypoxic mixture, there was a significant rise in plasma renin and angiotensin II [mean (SEM) maximal increase in angiotensin II of 5.6 (2.9) pg/ml and renin of 15.5 (6.3) mu-units/ml at 60 min, P < 0.05 compared with normoxia]. When salbutamol was administered in the normoxic mixture, plasma renin and angiotensin II also increased but this effect was similar to the effect of salbutamol in the hypoxic mixture. Serum angiotensin-converting enzyme levels were unaffected by hypoxia or salbutamol. 4. We conclude from these results that there is activation of the renin-angiotensin system in healthy subjects by salbutamol, but not hypoxia. (ABSTRACT TRUNCATED AT 250 WORDS)

Adrenergic beta-Agonists↗

Bronchodilator and pre-protective effects of urodilatin in bovine bronchi in vitro: comparison with atrial natriuretic peptide.

1. This study examined the activity and mechanisms of action of urodilatin in bovine bronchi. For comparison, the ability of urodilatin to evoke bronchodilatation or protect against subsequent challenge was compared to that of the closely related peptide alpha-human atrial natriuretic peptide (ANP). 2. Urodilatin reversed methacholine-evoked contraction in a concentration-dependent manner in bovine bronchi. In the absence of any attempt to prevent degradation by neutral endopeptidases, urodilatin was more potent than ANP in this tissue. 3. The bronchodilator properties of urodilatin were significantly augmented by the neutral endopeptidase inhibitor, phosphoramidon (3.68 x 10(-5) M). This provides evidence for at least partial degradation of urodilatin by neutral endopeptidases. With phosphoramidon present, urodilatin and ANP were equipotent. 4. In the presence of phosphoramidon (3.68 x 10(-5) M), pre-incubation with urodilatin (10(-6) M) had a protective effect against subsequent methacholine-induced contraction. This action of urodilatin was quantitatively similar to that of ANP in the presence of this endopeptidase inhibitor. 5. The actions of urodilatin appear to involve ATP-sensitive K+ channels since tolbutamide (10(-6) - 10(-5) M) significantly attenuated the relaxations induced by this peptide. 6. Small conductance Ca(2+)-activated K+ channels seem likewise to be implicated in the actions of urodilatin since blockade of these channels with apamin (10(-7) - 10(-6) M) resulted in a marked attenuation of urodilatin-evoked responses. 7. The presence of charybdotoxin (10-9 M-10-M) had no significant effect on subsequent responses tourodilatin suggesting that large conductance Ca2+-activated K+ channels are not involved in the relaxations evoked by this peptide.8. In the presence of phosphoramidon (3.68 x 10-5 M), urodilatin (10-6 M) evoked elevation of cyclic GMP levels within bovine bronchial tissue. Levels of cyclic GMP increased significantly within 5-10 s in response to this peptide and preceded the initiation of relaxant responses. Maximum increases in cyclic GMP levels were reached within 5 min; the time required for maximal relaxation evoked by this peptide.9. In conclusion, urodilatin, like ANP reversed and protected against, subsequent methacholine-induced bronchoconstriction; an action enhanced by the presence of phosphoramidon (3.68 x 1O-5 M).Associated with these actions of urodilatin was a rise in cyclic GMP levels as well as the opening of ATP-sensitive K+ and small conductance Ca2+-activated K+ channels.

Animals↗

Effect of inhaled atrial natriuretic peptide and a neutral endopeptidase inhibitor on histamine-induced bronchoconstriction.

The reduced ability of inhaled compared with intravenous atrial natriuretic peptide (ANP) to modify bronchial reactivity and tone may be due to degradation of the peptide by neutral endopeptidase (NEP) within the airways. To test this hypothesis, we have examined the effect of thiorphan, an NEP inhibitor, on the protection afforded by inhaled ANP against histamine-induced bronchoconstriction in 10 mildly asthmatic patients. Pretreatment with ANP alone attenuated the bronchoconstrictor response to histamine with a mean (SEM) maximum percent fall in FEV1 after histamine of 15.9 (2.9) (p < 0.05) compared with 24 (2.9) after placebo and 24 (4) after pretreatment with thiorphan alone. Prior inhalation of thiorphan greatly enhanced the ANP effect: the mean maximum percent fall after this combination was 5.1 (2.3) (p < 0.01, compared with ANP alone). Our results suggest that airway NEP is important in modulating the effect of inhaled ANP. It may be possible to exploit the guanylyl cyclase pathway, by which ANP acts, in the treatment of asthma by the administration of ANP analogues stable to neutral endopeptidase.

Administration, Inhalation↗

Angiotensin II potentiates methacholine-induced bronchoconstriction in human airway both in vitro and in vivo.

Angiotensin II levels are elevated in patients with acute severe asthma. In addition, intravenous angiotensin II causes bronchoconstriction in mild asthmatic patients. In the present study, we examined the effects of this hormone on bronchi in vitro and its interaction with the cholinergic agonist methacholine both in vivo and in vitro. Contractions of rings of human bronchi were measured isometrically. Concentration-response curves were obtained to angiotensin II and to methacholine in the presence and absence of angiotensin II. In addition, seven asthmatic patients with mild bronchial hyperreactivity to methacholine received placebo, angiotensin II, 1 or 2 ng.kg-1.min, by infusion, followed by methacholine challenge. Forced expiratory volume in one second (FEV1) values were measured at baseline, at the end of the infusion and during methacholine challenge. Angiotensin II alone in vitro evoked small contractions of human bronchi ( < 0.25 g wt). Pre-incubation with low concentrations of angiotensin II significantly enhanced contractions to methacholine. In mild asthmatic patients, angiotensin II alone evoked no change in baseline FEV1 values at the levels studied. Compared to placebo, angiotensin II 2 ng.kg-1.min, but not 1 ng.kg-1.min, evoked a significant increase in bronchial reactivity to methacholine. Angiotensin II in subthreshold concentrations enhances methacholine-evoked bronchoconstrictions both in human in vitro and in mild asthmatic patients in vivo. Our findings suggest a novel role for angiotensin II as a putative mediator in asthma.

Adult↗

Mechanical and biochemical responses to endothelin-1 and endothelin-3 in human bronchi.

In human bronchi, contractions to endothelin-1 were unaltered by atropine (10(-5) M), indomethacin (10(-6) M), nifedipine (10(-5) M), or phosphoramidon (3.67 x 10(-5) M). Endothelin-3-evoked contractions were markedly enhanced by phosphoramidon (3.67 x 10(-5) M), unaffected by atropine (10(-5) M), and attenuated by indomethacin (10(-6) M) or nifedipine (10(-5) M). Phorbol 12,13-dibutyrate (PDB, 10(-8) M) enhanced both endothelin-1- and endothelin-3 (plus phosphoramidon)-evoked responses, an effect abolished by Ro 31-8220 (3 x 10(-8) M). Contractions to endothelin-1 or endothelin-3 alone were unaltered by staurosporine 10(-8)-3 x 10(-7) M) or Ro 31-8220 (3 x 10(-9)-3 x 10(-8) M). Endothelin-1 (3 x 10(-7) M), but not endothelin-3 (10(-10)-3 x 10(-7) M), evoked a rise in levels of inositol (1,4,5) trisphosphate (Ins(1,4,5)P3). These results suggest that endothelin-1 does not act via cyclo-oxygenase metabolites nor require Ca2+ influx via dihydropyridine-sensitive channels. It evokes Ins(1,4,5)P3 production, but does not rely upon protein kinase C activation for contraction. Endothelin-3-evoked contractions are partly mediated by cyclo-oxygenase metabolites. Endothelin-3 does not stimulate phosphatidylinositol 4,5-bisphosphate (PIP2) hydrolysis, nor utilise protein kinase C to produce contraction, but its actions may rely upon extracellular Ca2+.

Atropine↗

Angiotensin II enhances responses to endothelin-1 in bovine bronchial smooth muscle.

Angiotensin II and endothelin-1 are putative mediators in asthma. In this study we have examined the effect of angiotensin II on endothelin-1-induced contractions in bovine bronchi and the receptor types involved in the response to these agonists. Angiotensin II alone is very low in potency, producing only small contractions. In the presence of angiotensin II 10(-7) or 3 x 10(-7) M, contractions evoked by endothelin-1 were markedly enhanced. The AII1-receptor antagonist, losartan, abolished this enhancement suggesting that angiotensin II exerts this effect via an AII1-receptor. The contraction evoked by endothelin-1 is mediated via an EtA-receptor subtype since the EtA-receptor antagonist FR139317 attenuated the response. This is offset by an inhibitory EtB-type receptor, resulting in a larger contraction when these receptors are desensitized. Indeed, the EtB-receptor agonist sarafotoxin S6c reversed methacholine-evoked tone in a concentration-dependent manner. In conclusion, angiotensin II potentiates contractions evoked by endothelin-1 in bovine bronchi. This may be a mechanism by which angiotensin II--which has little activity in bronchi--may evoke substantial changes in airway tone. Angiotensin II evokes this potentiation via AII1-receptors, whilst endothelin-1 evokes contraction via EtA-receptors, an action which is offset by an inhibitory effect of EtB-receptors.

Angiotensin II↗

Management of chronic airflow obstruction: differences in practice between respiratory and general physicians.

An audit of inpatient care of diseases characterized by chronic airflow obstruction namely chronic bronchitis, emphysema and chronic obstructive airways disease (ICD Code Nos. 490-2 & 496) was performed and the practice of respiratory and general physicians compared. One hundred cases were sampled at random from 279 cases admitted to hospitals serving the West of Glasgow in 1988. Fifty cases were selected from those admitted under the care of respiratory physicians and 50 from those under general physicians; 89 were suitable for analysis. The main outcome measurements consisted of the use of routine respiratory investigations, comparison of the use of standard therapies during the admission and at discharge, length of stay, inpatient deaths, follow up and readmission rates. The groups were similar in age, smoking history, gender and there was no significant difference in admission arterial blood gas values. The pulse rate on admission was higher in the general group (102 beats per min) in comparison to the respiratory group (91 beats per min) (P < 0.004). A similar use of chest radiograph and arterial blood gas analysis was noted between the groups. Ninety-six per cent of respiratory patients had either spirometry or peak expiratory flow measured compared to 62% in the general group (P = 0.0001). No significant differences were noted in the use of antibiotics, bronchodilators, corticosteroids, oxygen or respiratory stimulants. The mean length of stay was similar. Two patients (4%) in the respiratory group compared with seven (18%) in the general group died during the admission (P = 0.01); there were no further early deaths at 1 month from discharge.(ABSTRACT TRUNCATED AT 250 WORDS)

Aged↗

Modulation of the effect of atrial natriuretic peptide in human and bovine bronchi by phosphoramidon.

1. We have previously shown that atrial natriuretic peptide causes bronchodilatation and reduces bronchial reactivity when administered intravenously or by inhalation to asthmatic patients. We wished to determine the direct effect of exogenously applied atrial natriuretic peptide on isolated airway and the role of proteases important in atrial natriuretic peptide degradation in other organ systems. 2. The ability of atrial natriuretic peptide (alpha-human atrial natriuretic peptide 28-amino acid) to relax precontracted tissues and to protect against methacholine-induced contraction was studied in human and bovine tissue. The role of neutral endopeptidase-24.11 and other proteases in regulating the effect of atrial natriuretic peptide on bronchial smooth muscle was also examined by studying the influence of phosphoramidon, a protease inhibitor, whose actions include the inhibition of neutral endopeptidase-24.11, and the protease inhibitors leupeptin, aprotinin and soybean trypsin inhibitor on the airway response to atrial natriuretic peptide. 3. In human and bovine tissue atrial natriuretic peptide (10(-6) mol/l) caused a slight relaxation of methacholine-contracted tissue [mean (SEM) percentage inhibition of contraction of 13.2 (3.02)% and 9.41 (2.63)% respectively] and evoked a significant rightward shift of the cumulative concentration-response curve to methacholine [pD2 5.15 (0.23) and 4.85 (0.1) compared with control values of 6.14 (0.1) and 5.85 (0.16), respectively]. 4. Phosphoramidon potentiated atrial natriuretic peptide-induced relaxation of methacholine-induced tone and the ability of atrial natriuretic peptide to protect against methacholine-induced contraction. The combination of leupeptine, aprotinin and soybean trypsin inhibitor did not significantly alter the bronchial response to atrial natriuretic peptide in either human or bovine tissues.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Effect of inhaled atrial natriuretic peptide on methacholine induced bronchoconstriction in asthma.

We have previously demonstrated that intravenous and inhaled atrial natriuretic peptide (ANP) significantly inhibits histamine induced bronchoconstriction in asthmatic patients. The current study was designed to determine whether inhaled ANP was also able to inhibit the effects of methacholine. Eight atopic asthmatic patients (five women) were studied: mean (SD) age 38.2 (8.3) years flow expiratory volume per second (FEV1) 2.97 (0.60) litres, equivalent to 92 (13) % of the predicted. Each had demonstrated at least mild bronchial hyperreactivity to inhaled methacholine at screening (geometric mean PC20 1.02 mg/ml; range 0.11-6.54 mg/ml). Patients attended for 3 study days and after baseline spirometry received 3.5 ml saline (placebo), 0.1 mg ANP or 1 mg ANP (ANP dissolved in 3.5 ml saline) in a randomized, double-blind manner via a Mizer aerosol conservation device. Aerosolization took approximately 9 min and FEV1 was repeated at 0.5, 1.5 and 3 min after completion. Immediately thereafter each patient received a 2 min inhalation of methacholine at a dose individually calculated to give a 25% fall in FEV1 (as extrapolated at their initial screening visit) and the FEV1 was followed over the next 20 min. Mean (SEM)% FEV1 did not change significantly after ANP being -4.3 (1.7), -3.2 (2.7) and -2.4 (1.2) after placebo, 0.1 mg ANP and 1 mg ANP respectively. The mean (SEM) maximum fall in FEV1 after methacholine was as follows: placebo 26.9 (5.7)%, 0.1 mg ANP 18.2 (4.3)% and 1.0 mg 11.2 (2.7)% (P < 0.05 placebo vs 1 mg ANP). These results demonstrate that ANP offers significant protection against methacholine induced bronchoconstriction in asthmatic patients.

Administration, Inhalation↗

Mechanical and biochemical responses to endothelin-1 and endothelin-3 in bovine bronchial smooth muscle.

1. In this study, mechanical responses to endothelin-1 and endothelin-3 were examined in bovine bronchial smooth muscle. In addition, the involvement of phosphatidylinositol 4,5-bisphosphate hydrolysis (PIP2) in the responses to these peptides was assessed by measurement of inositol (1,4,5) trisphosphate (I(1,4,5)P3) production using a specific mass assay. 2. ET-1 evoked contractions of bovine bronchi which were concentration-dependent and initiated at between 10(-9) M and 10(-8) M. ET-1-evoked responses were unaffected by slight elevation of tone with potassium chloride (3 x 10(-2) M), methacholine (10(-6) M) or U46619 (10(-7) M). 3. Contractions to ET-1 were not altered by pre-incubation with atropine (10(-5) M), indomethacin (10(-5) M), nifedipine (10(-5) M), phosphoramidon (3.67 x 10(-5) M) or by removal of the epithelium. 4. ET-3 evoked small contractions which were not concentration-dependent. In the presence of phosphoramidon (3.67 x 10(-5) M) however, concentration-dependent contractions were obtained to ET-3 which were unaffected by atropine (10(-5) M) or by removal of the epithelium, but were significantly attenuated by indomethacin (10(-5) M). Nifedipine (10(-5) M) virtually abolished this response. 5. Both ET-1 and ET-3 (in the presence of phosphoramidon)-evoked contractions were significantly enhanced by the presence of the phorbol ester phorbol 12,13-dibutyrate (10(-8) M). Neither ET-1-, nor ET-3-mediated responses were antagonized by the protein kinase C (PKC) inhibitor, Ro 31-8220 (3 x 10(-9) - 3 x 10(-8) M). 6. ET-1 (3 x 10(-7) M) evoked a biphasic rise in levels of I(1,4,5)P3 which was unaltered by preincubation with atropine, whilst ET-3 (10(-10) - 3 x 10(-7) M) failed to alter levels of I(1,4,5)P3 at any time point examined, even in the presence of phosphoramidon (3.67 x 10(-5) M). 7. These results suggest that, in bovine bronchial smooth muscle, ET-l does not evoke contraction via cyclo-oxygenase metabolites, does not evoke release of the neurotransmitter substance acetylcholine, or require calcium influx via dihydropyridine-sensitive channels. ET-1 evokes 1(1,4,5)P3 production, but stimulation of protein kinase C may not be critical for the associated contraction. In contrast,ET-3-evoked contractions are partly mediated by cyclo-oxygenase metabolites. ET-3 does not stimulate PIP2 hydrolysis, nor activate PKC, but may, either directly or as a requirement of intermediates released in response to ET-3, rely upon extracellular calcium.

Animals↗

The interaction of alpha-human atrial natriuretic peptide (ANP) with salbutamol, sodium nitroprusside and isosorbide dinitrate in human bronchial smooth muscle.

1. Contractions in human bronchial rings evoked by methacholine (10(-6) M) were reversed by single contractions of alpha-human atrial natriuretic peptide (10(-6) M), salbutamol (10(-6) M), sodium nitroprusside (10(-6) M) or isosorbide dinitrate (4.2 x 10(-5) M) and the extent of the relaxations compared. The activity of combinations of ANP with salbutamol, sodium nitroprusside and isosorbide dinitrate were compared with those for each agonist alone. 2. ANP and salbutamol were equipotent in reversing methacholine-evoked contraction and, in combination these agonists evoked an additive response. ANP and sodium nitroprusside also evoked similar degrees of relaxation and were additive, as were ANP and isosorbide dinitrate; however, with isosorbide dinitrate a higher concentration was required to evoke the same degree of relaxation as ANP, sodium nitroprusside or salbutamol. 3. Cumulative concentration-response curves to methacholine (10(-9)-3 x 10(-4) M) were examined in the presence and absence of the above bronchodilator substances, alone and in combination allowing their abilities to protect against contraction to be compared. ANP (10(-6) M) and salbutamol (10(-6) M) each attenuated subsequent contractions evoked by methacholine, an ability not shared with sodium nitroprusside (10(-6) M) or isosorbide dinitrate (4.2 x 10(-5) M). Indeed at lower concentrations of methacholine (< 3 x 10(-7) M), sodium nitroprusside evoked a paradoxical enhancement of methacholine-evoked contractions. 4. In combination, ANP and salbutamol attenuated contractions evoked by methacholine to a significantly greater degree than that seen with either agonist alone, whilst a combination of ANP and sodium nitroprusside evoked no greater effect than that seen with ANP alone. By contrast, isosorbide dinitrate and ANP together evoked a greater inhibition than ANP alone.5 These results suggest that a combination of agents such as ANP and salbutamol evokes a greater effect than either alone, both in reversing and protecting against methacholine-evoked contractions.Such combinations may be of benefit in the treatment of patients, allowing lower doses of drug to be used. Combinations of ANP and isosorbide dinitrate may likewise be of interest; however, the mechanism underlying the enhancement of ANP responses by isosorbide dinitrate requires further study.

Albuterol↗