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Effects of short-term and long-term treatment with inhaled corticosteroids on bone metabolism in patients with airways obstruction. Dutch CNSLD Study Group.

BACKGROUND: Recent reports have suggested short-term changes in serum parameters of bone metabolism with inhaled corticosteroids. The relevance of these findings to the balance between bone formation and resorption during years of corticosteroid treatment remains uncertain. METHODS: Two novel markers of bone turnover were first compared with conventional markers in a pilot study and subsequently measured in a long-term double blind study of inhaled corticosteroids. In study I 15 patients were newly started on at least 800 micrograms inhaled corticosteroids daily. At entry and after four weeks serum levels of alkaline phosphatase, osteocalcin, and PICP (procollagen type I carboxy terminal propeptide; a procollagen splice product) were measured as markers of bone formation, as well as the urinary hydroxyproline/creatinine ratio and serum levels of ICTP (type I collagen carboxy terminal telopeptide; a collagen degradation product) as markers of bone resorption. In study II 70 patients with airways obstruction received 800 micrograms beclomethasone daily in addition to terbutaline and 85 received bronchodilators only in a double blind fashion. Serum levels of PICP and ICTP were measured before and after 2.5 years of treatment. RESULTS: In study I a decrease in osteocalcin levels was accompanied by an increase in levels of PICP and a small and non-significant rise in alkaline phosphatase. There were no changes in hydroxyproline or ICTP. In study II no differences were found in serum levels of PICP between the treatment groups; an increase in serum ICTP was found in the group treated without inhaled corticosteroids compared with the group treated with inhaled corticosteroids. CONCLUSIONS: No detrimental long-term effect of inhaled corticosteroids was found with three conventional and two novel parameters of bone metabolism. The results indicate that long-term changes in bone turnover during treatment with inhaled corticosteroids should not be deduced from short-term studies with single serum parameters of bone metabolism, but well designed long-term studies of, for example, bone densitometry should be awaited before quoting detrimental effects of inhaled corticosteroids on bone metabolism.

Administration, Inhalation↗

Effect of inhaled endotoxin on induced sputum in normal, atopic, and atopic asthmatic subjects.

BACKGROUND: Inhalation of lipopolysaccharide (LPS) causes an inflammatory response in the lungs. To explore this response, inflammatory indices were measured in induced sputum from atopic asthmatic patients and compared with atopic and non-atopic subjects after inhalation of LPS. METHODS: The effects of inhaled LPS (60 micrograms) or placebo (0.9% saline) were examined in a randomised, double blind, crossover trial in 11 non-atopic normal subjects, seven atopic, non-asthmatic individuals, and eight atopic, asthmatic patients. Sputum was induced by inhalation of 3.5% saline before the test inhalation and again at six hours and 24 hours. Spirometry (forced expiratory volume in one second (FEV1), forced vital capacity (FVC)), heart rate, blood pressure, and temperature were recorded before challenge and at intervals until eight hours, and at 24 hours after challenge. RESULTS: There was no change in cardiovascular parameters or spirometry with either exposure in any group. In the asthmatic patients only, inhalation of LPS caused a rise in temperature, with a peak of 0.6 degree C at seven hours, which was significantly higher than following placebo inhalation (p < 0.05). In normal subjects, LPS caused a significant rise in absolute neutrophil counts at 24 hours compared with placebo (median 1.1 x 10(6) cells/ml after LPS; median 0.2 x 10(6) cells/ml after placebo, p < 0.01), but no change in differential counts. In asthmatic patients, LPS caused a significant rise in differential neutrophil counts at six hours compared with placebo (median 88% after LPS; median 56% after placebo, p < 0.05), but no change in absolute cell counts at any time point. There was no change in neutrophil counts in the atopic subjects. There was a significant rise in sputum interleukin 8 (IL-8) concentrations in normal subjects at six hours compared with placebo (mean placebo 1.1 ng/ml; LPS 3.0 ng/ml, p < 0.05) and in asthmatics at 24 hours (mean placebo 2.0 ng/ml, LPS 6.9 ng/ml, p < 0.05). There were no changes in sputum concentrations of tumour necrosis factor alpha or granulocyte macrophage colony stimulating factor at any time. CONCLUSIONS: Inhalation of LPS causes a neutrophilic inflammation with increases in IL-8 in both normal and asthmatic subjects.

Administration, Inhalation↗

Effect of inhaled corticosteroids on bronchial responsiveness in patients with "corticosteroid naive" mild asthma: a meta-analysis.

BACKGROUND: Inhaled corticosteroids are the most efficacious anti-inflammatory drugs in asthma. International guidelines also advocate the early introduction of inhaled corticosteroids in corticosteroid naive patients. A study was undertaken to assess the effects of inhaled corticosteroids on bronchial hyperresponsiveness in patients with corticosteroid naive asthma by conventional meta-analysis. METHODS: A Medline search of papers published between January 1966 and June 1998 was performed and 11 papers were selected in which the patients had no history of treatment with inhaled or oral corticosteroids. Bronchial responsiveness to bronchoconstricting agents was considered as the main outcome parameter. Doubling doses (DD) of histamine or methacholine were calculated. RESULTS: The total effect size of inhaled corticosteroids (average daily dose 1000 microg) versus placebo in the 11 studies was +1.16 DD (95% confidence interval (CI) +0.76 to +1.57). When only the eight short term studies (2-8 weeks) were analysed the effect size of the bronchoconstricting agent was +0.91 DD (95% CI +0.65 to +1.16). No relationship was found between the dose of inhaled corticosteroid used and the effect on bronchial responsiveness. CONCLUSION: This meta-analysis in patients with corticosteroid naive asthma indicates that, on average, high doses of inhaled corticosteroids decrease bronchial hyperresponsiveness in 2-8 weeks. It remains unclear whether there is a dose-response relationship between inhaled corticosteroids and effect on bronchial hyperresponsiveness.

Administration, Inhalation↗

Effects of inhaled nitric oxide on pulmonary hemodynamics and gas exchange in an ovine model of ARDS.

Inhaling low concentrations of nitric oxide (NO) gas causes selective pulmonary vasodilation of ventilated lung regions. NO activates soluble guanylate cyclase, increasing guanosine 3',5'-cyclic monophosphate (cGMP). Inhibition of NO synthesis enhances hypoxic pulmonary vasoconstriction. Therefore we examined independent and combined effects of NO inhalation and infusion of NG-nitro-L-arginine methyl ester (L-NAME), an NO synthesis inhibitor, on pulmonary vascular pressure-flow relationships, gas exchange, and plasma cGMP levels in anesthetized and mechanically ventilated sheep with acute lung injury induced by bilateral lavage. After lavage, inhaling 60 ppm by volume of NO decreased pulmonary arterial pressure (PAP) and resistance without any systemic hemodynamic effects, increased arterial PO2, and decreased venous admixture (Qva/QT; all P < 0.05) without altering cardiac output (QT), mixed venous PO2, or O2 uptake, major determinants of intrapulmonary shunt. During NO inhalation, PAP-left atrial pressure gradient (PAP-LAP) and Qva/QT were reduced (both P < 0.05) independently of QT, which was varied mechanically. L-NAME infusion produced systemic and pulmonary vasoconstriction and increased PAP-LAP gradient across the entire range of QT, whereas Qva/QT, was not changed. NO inhalation after L-NAME infusion produced pulmonary vasodilation and decreased Qva/QT to the same degree as NO inhalation alone. Five to 10 min after inhalation of 60 ppm NO, before and after L-NAME infusion, arterial plasma cGMP levels were increased by 80% (both P < 0.05). With NO breathing after L-NAME, we measured a consistent transpulmonary cGMP arteriovenous gradient [31 +/- 8 and 33 +/- 7 (SE) pmol/ml at 5 and 10 min, respectively; both P < 0.05]. NO inhalation before or after L-NAME administration in this acute lung injury model reduced Qva/QT, most likely by increasing cGMP concentration in ventilated lung regions and causing selective pulmonary vasodilation.

Administration, Inhalation↗

Prolonged pulmonary vasodilator action of inhaled nitric oxide by Zaprinast in awake lambs.

Inhaled nitric oxide (NO) has been shown to selectively dilate the pulmonary vasculature. Zaprinast, an inhibitor of guanosine 3',5'-cyclic monophosphate-specific phosphodiesterase, augments smooth muscle relaxation induced by endothelium-dependent vasodilators. The present study was designed to determine whether intravenous administration of Zaprinast potentiates the vasodilating effects or prolongs the duration of action of intermittent NO inhalation. Eight awake lambs with U-46619-induced pulmonary hypertension breathed three concentrations of NO (5, 10, and 20 ppm) in a random order before and during an intravenous Zaprinast infusion (0.1 mg.kg-1.min-1). Inhaled NO decreased pulmonary arterial pressure (PAP) in a dose-dependent fashion, with mean PAP reduction at 5, 10, and 20 ppm NO inhalation of 6 +/- 1, 7 +/- 1, and 9 +/- 1 (SE) mmHg, respectively. Although the Zaprinast infusion did not change the magnitude of mean PAP reduction, it caused a statistically significant reduction of pulmonary vascular resistance and prolonged the duration of action of inhaled NO (half-times of vasodilator response to 5, 10, and 20 ppm NO inhalation: 1.9 +/- 0.1, 2.1 +/- 0.2, and 2.1 +/- 0.2 min, respectively; half-times of NO inhalation with Zaprinast: 9.7 +/- 1.7, 11.5 +/- 2.2, and 12.3 +/- 2.0, respectively). Plasma concentrations as well as the transpulmonary differences of guanosine 3',5'-cyclic monophosphate were increased by the Zaprinast infusion during NO inhalation. A stable level of pulmonary vasodilation was demonstrated in four additional lambs by combining intermittent NO breathing with an intravenous infusion of Zaprinast.

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

Chronic inhaled nitric oxide: effects on pulmonary vascular endothelial function and pathology in rats.

Nitric oxide (NO) is a potent endogenous vasodilator produced in endothelial cells. Inhaled NO selectively vasodilates the pulmonary circulation. We determined the effects of chronic inhaled NO on hypoxic pulmonary vascular remodeling and endothelium NO-dependent and -independent vasodilation during normoxic and hypoxic conditions in rats. Rats were exposed to 3 wk of normoxia (N), normoxia + 20 ppm inhaled NO (N+NO), chronic hypoxia with 10% normobaric oxygen (CH), or CH and 20 ppm inhaled NO (CH+NO). Inhaled NO decreased the number of muscular pulmonary arteries, the medial smooth muscle thickness, and the right ventricular hypertrophy associated with chronic hypoxia but had no effect on these parameters in normoxic rats. All groups were evaluated with isolated perfused lungs. The pulmonary artery pressure increased by the same amount in the CH and CH+NO rats compared with N rats. Inhibition of NO synthase with N omega-nitro-L-arginine methyl ester (L-NAME) caused greater pulmonary vasoconstriction in CH (19.2 +/- 3.7 mmHg) vs. N (7.8 +/- 3.0 mmHg) and less in CH+NO (9.1 +/- 0.8 mmHg) vs. CH rats. Bradykinin (3 micrograms) caused greater vasodilation in CH (76 +/- 12%) vs. N (29 +/- 5%) but significantly less in CH+NO (41 +/- 11%) vs. CH rats. Vasodilation with acute inhaled NO (40 ppm) was no different in CH vs. N rats but was lower in CH+NO (19 +/- 5%) vs. CH (34 +/- 6%) rats. This study demonstrates that chronic inhaled NO attenuates hypoxic pulmonary vascular remodeling. Furthermore, these results suggest that chronic inhaled NO decreases endothelium NO-dependent and -independent vasodilation.

Administration, Inhalation↗

Effect of inhaled indomethacin on distilled water-induced airway epithelial cell swelling.

We evaluated the mechanism of the anti-asthmatic effect of inhaled indomethacin (Indo) by using an animal model (guinea pigs) of airway inflammation. After being exposed to either ozone or room air at identical flow rates (5 l/min) for 2 h, guinea pigs were anesthetized, tracheostomized, and lung resistance (RL) was subsequently measured. Guinea pigs inhaled either saline or Indo (1.5 mg/ml) for 1 min before undergoing an ultrasonically nebulized distilled water (UNDW) inhalation test. RL increased significantly after 10 min of UNDW inhalation in the room air and ozone groups but more so in the ozone group. This increase in RL was significantly suppressed by pretreatment with Indo. In the morphometric assessment of airway mucosa, a significant swelling of the epithelial cells after UNDW inhalation was observed in both the room air and ozone groups but especially so in the ozone group. This increase was also suppressed with Indo pretreatment. These results suggest that the increase in RL and the swelling of airway epithelial cells induced by inhaled UNDW in ozone-exposed guinea pigs was suppressed by pretreatment of inhaled Indo and that this suppression may be one of the reasons for the anti-asthmatic effect of inhaled Indo.

Administration, Inhalation↗

Inhaled corticosteroids in COPD: determinants of use and trends in patient persistence with treatment.

METHODS: The determinants of a new treatment with inhaled corticosteroids and secular trends in patient persistence with treatment among chronic obstructive pulmonary disease (COPD) patients were investigated. A cohort of 3768 physician-diagnosed, elderly COPD patients was selected between 1990 and 1996 from the health care administrative database of the Régie de l'assurance maladie du Québec. A nested case-control design was used to identify patient and physician characteristics that were associated with a new treatment with inhaled corticosteroids. Treatment persistence with inhaled corticosteroids was also estimated using Kaplan-Meier analysis. In addition to that, changes in treatment persistence over time, from 1990 to 1995, were investigated by estimating the yearly proportion of patients persisting for less than one year. RESULTS: Within the cohort, the yearly percentage of patients filling at least one prescription for inhaled corticosteroids was 42.2% in 1990 and increased to 53.1% in 1995 (P=0.001). Using a conditional logistic regression model, it was found that the patients most likely to initiate a treatment with inhaled corticosteroids were those who had severe COPD (rate ratio [RR] 1.7; 95% CI 1.4 to 2.0), those who were hospitalized for COPD (RR 10.0; 95% CI 5.6 to 17.9), those who consulted a respirologist in the previous month (RR 2.3; 95% CI 1.6 to 3.3) or those who visited more than three different physicians in the previous three months (RR 1.6; 95% Cl 1.3 to 1.9). The proportion of patients persisting with inhaled corticosteroids for less than one year rose by 19.4%, from 47.6% in 1990 to 67.0% in 1995 (P=0.011; test for trend). CONCLUSIONS: The use of inhaled corticosteroids increased while patient persistence decreased between 1990 and 1995. Disease severity, as well as recent consultation to a respirologist and multiple visits to a physician, were associated with a strong likelihood of being prescribed inhaled corticosteroids. The cost of this practice is far from negligible, while their clinical impact is still uncertain.

Administration, Inhalation↗

Cardiovascular effects of inhaled nitric oxide in patients with left ventricular dysfunction.

BACKGROUND: Pulmonary vascular resistance (PVR) is frequently elevated in patients with advanced heart failure. Nitric oxide (NO), which contributes to the activity of endothelium-derived relaxing factor, causes relaxation of pulmonary arteries and veins in vitro. Inhalation of NO gas causes pulmonary vasodilation in patients with primary and secondary forms of pulmonary hypertension. METHODS AND RESULTS: To test the hypothesis that inhalation of NO gas lowers PVR in patients with heart failure, we studied the hemodynamic effects of a 10-minute inhalation of NO (80 ppm) in 19 patients with New York Heart Association class III (n = 5) and class IV (n = 14) heart failure due to left ventricular (LV) dysfunction. Although inhalation of NO had no effect on pulmonary artery pressures, the PVR decreased by 31 +/- 7% (P < .001) due to a 23 +/- 7% increase (P < .001) in pulmonary artery wedge pressure and despite a 4 +/- 2% (P < .05) decrease in cardiac index. The magnitude of the decrease in PVR with inhaled NO was inversely related (r = -.713; P < .001) to the baseline PVR. Inhaled NO had no effect on heart rate, systemic arterial pressure, systemic vascular resistance, or LV peak +dP/dt or -dP/dt. CONCLUSIONS: In patients with heart failure due to LV dysfunction, inhalation of NO causes a decrease in the PVR associated with an increase in LV filling pressure. These findings predict that inhaled NO, if used alone at this dose (80 ppm), may have adverse effects in patients with LV failure.

Administration, Inhalation↗

Role for endothelin-1-induced superoxide and peroxynitrite production in rebound pulmonary hypertension associated with inhaled nitric oxide therapy.

Our previous studies have demonstrated that inhaled nitric oxide (NO) decreases nitric oxide synthase (NOS) activity in vivo and that this inhibition is associated with rebound pulmonary hypertension upon acute withdrawal of inhaled NO. We have also demonstrated that inhaled NO elevates plasma endothelin-1 (ET-1) levels and that pretreatment with PD156707, an ETA receptor antagonist, blocks the rebound hypertension. The objectives of this study were to further elucidate the role of ET-1 in the rebound pulmonary hypertension upon acute withdrawal of inhaled NO. Inhaled NO (40 ppm) delivered to thirteen 4-week-old lambs decreased NOS activity by 36.2% in control lambs (P<0.05), whereas NOS activity was preserved in PD156707-treated lambs. When primary cultures of pulmonary artery smooth muscle cells were exposed to ET-1, superoxide production increased by 33% (P<0.05). This increase was blocked by a preincubation with PD156707. Furthermore, cotreatment of cells with ET-1 and NO increased peroxynitrite levels by 26% (P<0.05), whereas preincubation of purified human endothelial nitric oxide synthase (eNOS) protein with peroxynitrite generated a nitrated enzyme with 50% activity relative to control (P<0.05). Western blot analysis of peripheral lung extracts obtained after 24 hours of inhaled NO revealed a 90% reduction in 3-nitrotyrosine residues (P<0.05) in PD156707-treated lambs. The nitration of eNOS was also reduced by 40% in PD156707-treated lambs (P<0.05). These data suggest that the reduction of NOS activity associated with inhaled NO therapy may involve ETA receptor-mediated superoxide production. ETA receptor antagonists may prevent rebound pulmonary hypertension by protecting endogenous eNOS activity during inhaled NO therapy.

Administration, Inhalation↗

The effect of inhaled nitric oxide in pediatric asthma.

Nitric oxide (NO) appears to play an important role in regulating several biologic functions in the lung, including modulation of pulmonary arterial and bronchial smooth muscle tone. Recent studies have shown that relatively high concentrations of inhaled NO reduce the bronchoconstrictor effect of methacholine in animal models. This raises the possibility that NO inhalation might have therapeutic potential as an alternative bronchodilator. Although investigation of this potential in adults with airway reactivity or bronchial asthma has been reported, data are lacking on the role of NO in the pediatric asthma population. We therefore performed spirometry on 12 children with asthma (mean age 11.1 yrs) at baseline (B), immediately after inhaling 40 ppm NO (NO-1), 10 min after inhaling NO (NO-10), and after inhalation of a standard beta 2-agonist, albuterol (A). Baseline pulmonary functions (% predicted +/- SEM) were FVC of 103.2 +/- 5.6, FEV1 of 82.2 +/- 3.3, FEF-max of 97.0 +/- 3.6, and FEF25-75% of 53.5 +/- 3.3. There were no statistically significant differences between baseline and NO-1 or NO-10 between any of the four pulmonary function parameters measured. Inhaled albuterol, however, resulted in significant improvement (% predicted +/- SEM) in FVC to 109.8 +/- 3.5, FEV1 to 99.7 +/- 2.9, FEFmax to 106.5 +/- 5.1, and FEF25-75% to 84.4 +/- 6.4 compared with the baseline and NO inhalation groups. We conclude that NO inhaled at 40 ppm has no apparent bronchodilatory effect in pediatric subjects with asthma and mild airways disease. The clinical application of this gas as a therapeutic modality under these conditions is questionable.

Administration, Inhalation↗

Effect of regular inhaled albuterol on allergen-induced late responses and sputum eosinophils in asthmatic subjects.

Treatment with inhaled beta(2)-agonists immediately before allergen inhalation inhibits allergen-induced early, but not late asthmatic responses (LAR). By contrast, 2 wk treatment with inhaled albuterol increases airway responses to inhaled allergen. We examined the effects of regular albuterol treatment on allergen-induced increases in inflammatory cells in blood and induced sputum. Ten mild, stable allergic asthmatics inhaled albuterol (800 micrograms/day) or placebo for 7 d in a controlled, randomized, double-blind, crossover study. Allergen inhalation was performed 12 h after the final dose. Methacholine airway responsiveness and blood samples were analyzed before and 24 h after, and induced sputum was obtained before, 7 h and 24 h after allergen. Allergen significantly reduced methacholine PC20, increased blood eosinophil numbers, and numbers of sputum neutrophils, EG2 positive and metachromatic cells (p < 0.05), without significant differences between treatments. Albuterol treatment significantly increased the LAR compared to placebo treatment (p = 0.003) and significantly enhanced the number of sputum eosinophils (p = 0.009) and sputum ECP (p = 0.04) at 7 h but not 24 h post-allergen (p > 0.05). We conclude that regular use of inhaled albuterol significantly increases the LAR to inhaled allergen, in association with an increase in the number of sputum eosinophils and the release of ECP, suggesting albuterol increases the late response by increasing eosinophil influx into the airways.

Administration, Inhalation↗

Protective effects of inhaled PGE2 on allergen-induced airway responses and airway inflammation.

Inhalation of prostaglandin E2 (PGE2) had been reported to prevent allergen-induced bronchoconstrictor responses; however, the effects of inhaled PGE2 on allergen-induced airway inflammation or hyperresponsiveness after allergen are unknown. This study examined the effects of inhaled PGE2 on allergen-induced airway responses and inflammation. Eight mild asthmatics with a dual airway response to inhaled allergen were recruited into a double-blind randomized crossover study comparing the effects of inhaled PGE2 (100 microgram) or placebo, on allergen-induced changes in FEV1 measured for 7 h, induced sputum inflammatory cells, obtained at baseline, 7 and 24 h, and methacholine airway responsiveness measured at 24 h after challenge. Inhaled PGE2 attenuated the allergen-induced early fall in FEV1 from 24.4 +/- 3.6% after placebo to 10.3 +/- 2.5% after PGE2 (p = 0.002), the late fall in FEV1 from 21.2 +/- 2.7% after placebo to 12.6 +/- 3.6% after PGE2 (p = 0.03), allergen-induced methacholine airway hyperresponsiveness (p = 0.03) and allergen-induced increases in percent sputum eosinophils from 36.3 +/- 8.8% after placebo to 21.0 +/- 7.3% after PGE2 (p = 0.01), percentage of EG2+ cells (p = 0.02), and percentage of metachromatic cells (p = 0.02). These results indicate that inhaled PGE2 attenuates allergen-induced airway responses, hyperresponsiveness, and inflammation, when given immediately before inhaled allergen.

Administration, Inhalation↗

An inhaled corticosteroid, budesonide, reduces baseline but not allergen-induced increases in bone marrow inflammatory cell progenitors in asthmatic subjects.

We have previously shown that allergen inhalation by asthmatics is associated with increases in bone marrow eosinophil/basophil colony-forming cells (Eo/B-CFU), and increases in CD34(+) hemopoietic progenitors expressing the alpha-subunit of the IL-5 receptor (IL-5Ralpha). This study investigated the effect of inhaled corticosteroid on baseline numbers and allergen-induced increases in these parameters. Nine subjects with mild, stable asthma inhaled budesonide (400 microgram/d) for 8 d in a placebo-controlled, double-blind, randomized crossover study. On Day 7, subjects inhaled allergen, with bone marrow sampling before and 24 h after challenge. Budesonide inhalation significantly attenuated the allergen-induced early and late asthmatic responses, degree of increase in sputum and blood eosinophils, as well as the baseline numbers of total bone marrow CD34(+) cells (p < 0.05), CD34(+)IL-3Ralpha+ cells (p < 0.01) and IL-5-responsive Eo/B-CFU (p < 0.05). Allergen inhalation significantly increased Eo/B-CFU grown in the presence of IL-3, GM-CSF, or IL-5 alone (p < 0.05) and in combination (p < 0.01), as well as the number of CD34(+)IL-5Ralpha+ cells (p < 0.01). However, these increases in Eo/B-CFU and CD34(+)IL-5Ralpha+ cells were not affected by budesonide treatment. These data demonstrate that short-term inhaled budesonide treatment has a systemic effect in inhibiting the turnover of a subpopulation of bone-marrow-derived progenitors, but that inhalation of allergen overcomes this inhibitory effect.

Administration, Inhalation↗

Inhaled furosemide greatly alleviates the sensation of experimentally induced dyspnea.

Furosemide is known to influence the activity of vagally mediated mechanoreceptors in the airways. Because vagal afferent fibers may play an important role in modulation of the sensation of dyspnea, it is possible that inhaled furosemide may modify the sensation of dyspnea. In a double-blind, randomized, crossover study, we compared the effect of inhaled furosemide on dyspneic sensation with that of placebo. Severe dyspneic sensation was induced in 12 healthy subjects in two ways: (1) breathholding and (2) loaded breathing with a combination of inspiratory resistive load (240 cm H(2)O/L/s) and hypercapnia induced by extra mechanical dead space (0.26 L). Subjects were asked to rate their sensation of respiratory discomfort using a visual analogue scale (dyspneic VAS). Breathholding times and changes in dyspneic VAS score during a 5-min period of loaded breathing were measured after inhalation of placebo and furosemide (40 mg). Total breathholding time after inhalation of furosemide (median, 93 [interquartile range, 78 to 112]s) was prolonged compared with the total breathholding time after placebo inhalation (67 [47-74]s). We also found that respiratory discomfort during loaded breathing after inhalation of furosemide develops more slowly and is less than that observed after inhalation of placebo. Our findings indicate that inhaled furosemide greatly alleviates the sensation of dyspnea induced experimentally by breathholding and by a combination of resistive loading and hypercapnia.

Administration, Inhalation↗

Exhaled nitric oxide following leukotriene E(4) and methacholine inhalation in patients with asthma.

Nitric oxide (NO) is a molecular gas that can be recovered in higher levels from the exhaled gas of subjects with asthma than from subjects without asthma. However, the precise mechanisms responsible of promoting increased fraction of expired nitric oxide (FE(NO)) in asthma are unknown. As leukotriene antagonism has been shown to reduce FE(NO) in patients with asthma, we hypothesized that leukotrienes mediate the increased FE(NO) encountered in this condition. Furthermore, because leukotriene antagonism stabilizes serum eosinophil markers during reductions in inhaled corticosteroid doses, and FE(NO) has been shown to correlate with sputum eosinophils in asthma, we reasoned that the effect of leukotrienes on FE(NO) might be mediated by eosinophils recruited to the airway by leukotrienes. To test this hypothesis, we performed methacholine and leukotriene (LT) E(4) bronchoprovocation challenges in 16 subjects with atopic asthma and measured FE(NO) and sputum differential counts before and after bronchoprovocation. We then compared FE(NO) in the seven subjects who developed increased sputum eosinophils following LTE(4) inhalation with values measured after methacholine inhalation in these seven subjects. Following LTE(4) inhalation, eosinophils rose from 4.01 +/- 0.89% pre-LTE(4) to 8.33 +/- 1.52% post-LTE(4). The mean change in sputum eosinophils from baseline after LTE(4) inhalation was larger than that after methacholine inhalation (+4.31 +/- 1.25% versus -1.14 +/- 0.93%). After LTE(4) inhalation, FE(NO) levels did not differ from prechallenge baseline or from levels following methacholine inhalation (ANOVA p > 0.05). These data indicate that neither LTE(4) nor recruitment of eosinophils into the airway by LTE(4) is a sufficient stimulus to acutely increase FE(NO) in subjects with asthma.

Administration, Inhalation↗

Changes in upper and lower airway resistance after inhalation of antigen in sensitized rats.

To assess the contribution of upper and lower airways to the changes in pulmonary resistance after inhalation of antigen by sensitized rats, we measured changes in upper airway resistance (Ru) and lower pulmonary resistance (Rlo) after inhalation of ovalbumin (OA) in anesthetized, spontaneously breathing, sensitized BN rats. Aerosols of antigen were inhaled through the nose and through a tracheostomy in random order; there was a 1-h recovery interval between challenges. After inhalation of OA through the nose, Ru increased from 0.441 +/- 0.057 (mean +/- 1 SE) to 1.342 +/- 0.504 cm H2O X ml-1 X s (n = 6; p less than 0.05) and Rlo increased from 0.099 +/- 0.017 to 0.269 +/- 0.08 cm H2O X ml-1 X s (p less than 0.05). Changes in Ru and Rlo were strongly correlated (r = 0.938; p less than 0.001). After OA was inhaled through the tracheostomy, Rlo increased from 0.089 +/- 0.021 to 0.152 +/- 0.041 cm H2O X ml-1 X s (p less than 0.05). However, Ru did not change significantly. Pretreatment of the lower airways with inhaled atropine did not affect the magnitude of the changes in Ru after inhalation of OA through the nose but significantly attenuated the response of the lower airways. We conclude that when sensitized, spontaneously breathing rats inhale antigen through the nose, the predominant reaction occurs in the upper airways; changes in upper airway resistance do not result from reflexes originating in the lower airways; lower airway responses are mediated in part by cholinergic mechanisms.

Administration, Inhalation↗

Dysfunction of nonadrenergic noncholinergic inhibitory system after antigen inhalation in actively sensitized cat airways.

We have investigated whether proteases released during antigen inhalation cause dysfunction of the nonadrenergic noncholinergic inhibitory nervous system (NANCIS). Frequency-response (F-R) studies of NANCIS were performed before and after Ascaris antigen (ASC) inhalation using actively sensitized cats. NANC dilatatory effects were obtained by stimulating bilateral cervical vagi under cholinergic and beta-adrenergic blockade and serotonin-induced bronchoconstriction, and assessed by maximal percent relaxation (rmax) and the frequency causing 50% of maximal relaxation (EF50). ASC inhalation caused a transient increase in pulmonary resistance in all animals. One hour after ASC inhalation, pulmonary resistance returned to the baseline value, but ASC inhalation significantly attenuated NANC inhibitory activities: rmax decreased from 82.2 +/- 4.7 (mean +/- SE) to 64.3 +/- 11.2% (p less than 0.05), and the geometric mean of EF50 increased from 1.7 to 4.3 Hz (p less than 0.05). Dilatatory effects of infused VIP, a possible neurotransmitter of NANCIS, was also attenuated after ASC inhalation. Pretreatment with leupeptin (3 mg/kg) abolished ASC-induced impairment of NANC inhibitory activities. By contrast, dilatatory effects of adrenergic nerve stimulation were not affected by ASC inhalation. These results suggest that NANC inhibitory activities can be impaired after ASC inhalation, and that this impairment of NANCIS may be due to effects of proteases released during allergic reaction.

Administration, Inhalation↗