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Inhalable microparticles containing drug combinations to target alveolar macrophages for treatment of pulmonary tuberculosis.

PURPOSE: Drug therapy of tuberculosis (TB) requires long-term oral administration of multiple drugs for curing as well as preventing and/ or combating multi-drug resistance. Persistent, high blood levels of antitubercular drugs resulting from prolonged oral administration of anti-TB drugs may be neither necessary nor sufficient to kill mycobacteria residing in macrophages (M4). Inhalable biodegradable microparticles containing two of the first-line anti-TB drugs, isoniazid (H), and rifampicin (R), were prepared and tested for (i) phagocytosis by mouse Mphi. (ii) administration as a dry powder inhalation to rats, and (iii) targeting alveolar Mphi with high drug doses when administered to rats. METHODS: poly(D-L lactic acid) microparticles were prepared by emulsion methods and their drug content and size distribution determined. These were tested for uptake by murine Mphi in culture and resultant intracellular drug concentrations determined by high performance thin-layer chromatography (HPTLC). Rats were administered an inhalation of microparticles using an inhalation chamber developed in the lab. The extent of microparticle delivery in vivo was examined by flow-cytometry. Drug concentrations in the blood and in alveolar Mphi were estimated by high-performance liquid chromatography after oral, vascular. intratracheal, and inhalation administration. RESULTS: Inhalable microparticles could be prepared and were taken up by cultured Mphi. Large numbers of particles could be delivered to the bronchiopulmonary system through a 2-min exposure to fluidized particles. The intracellular drug concentrations resulting from vascular delivery of soluble drugs were found to be lower than those resulting from particle inhalation. CONCLUSIONS: Inhalable microparticles containing multiple anti-TB drugs offer promises of dose and dosing-frequency reduction, toxicity alleviation, and targeting Mphi-resident persistent mycobacteria.

Administration, Inhalation↗

Scintigraphic comparison of budesonide deposition from two dry powder inhalers.

Chlorofluorocarbons (CFCs), used in metered dose inhalers (MDIs), have been identified as being deleterious to the environment leading to a ban on their production. Dry powder inhalers (DPIs) are a widely used alternative to MDIs. One disadvantage of DPIs is that in vivo lung deposition can be influenced by the patient's inspiratory flow rate. The ASTA Medica multi-dose dry powder inhaler (AM-MDPI) has been designed to offer low resistance on inhalation, so that asthmatic patients can achieve inhaled flow rates of approximately 90 L x min(-1). The aim of the study was to evaluate the in vivo deposition of budesonide from the AM-MDPI at different flow rates and to compare this with delivery from a Turbuhaler DPI at a high flow rate. The study was a scintigraphic, randomized, crossover study in which 13 healthy volunteers inhaled a single 200 microg dose of radiolabelled budesonide on four separate occasions with a minimum 44-h washout period between dosings. At the lowest flow rate of 54 L x min(-1), comparable to that for the Turbuhaler (58 L x min(-1)), a similar percentage of the metered dose was delivered to the lung (AM-MDPI median 19.9%; Turbuhaler median 21.4%). At high flow rate (peak inspiratory flow rate 99 L x min(-1)) the AM-MDPI delivered significantly more drug to the lung (median 32.1% of metered dose) than at 65 L x min(-1) or 54 L x min(-1) (median 25.0% and 19.9% of metered dose, respectively), thus demonstrating flow rate dependence. The pattern of regional lung deposition from the AM-MDPI was similar for all three inhalation manoeuvres. It was concluded that the ASTA Medica multi-dose dry powder inhaler achieves at least as much deposition of budesonide in the lungs as a Turbuhaler when used at similar inspiratory flow rates.

Administration, Inhalation↗

Inhalation treatment: errors in application and difficulties in acceptance of the devices are frequent in wheezy infants and young children.

The recent availability of small-volume spacers has facilitated the general use of inhaled treatment in infants. The purpose of this study was to evaluate any errors made by parents when using this new inhalation technique and the child's behavior during the inhalation. Ninety-four young children (61% boys) under 5 years of age were enrolled in the study. Inhalation treatment was recommended either by a general practitioner or by a pediatrician. Data concerning treatment regimens, the ability of parents to use the spacer and metered-dose inhalers (MDIs), and the acceptance of the devices, were collected by means of a demonstration and questionnaire. Unexpectedly, the doses, administration times, and duration of the treatments varied from one child to the next. No explanation or training in administering the treatment via the spacers was given to 12% and 47% of the parents, respectively. Fourteen per cent of parents did not shake the MDIs, 12% did not monitor the valves, and 22% allowed too short a time for inhalation. The lack of explanation increased the occurrence of errors in manipulation of the devices. The procedure was judged to be easy to follow by 78% of the parents, but the face mask was accepted with difficulty by 22% of the children. Repeated crying during administration of the treatment was observed in 38% of the patients, particularly the youngest. Crying influenced the acceptance of the face mask, reduced parental compliance, and made the use of the devices more difficult. Errors altering the efficiency of inhalation treatment in infants are frequent. Most of these errors could be avoided by spending more time to inform the parents about correct usage. Furthermore, repeated crying during inhalation is common in young children and this problem should to be taken into consideration in the evaluation of treatment.

Administration, Inhalation↗

Investigation into the impact of introducing workplace aerosol standards based on the inhalable fraction.

Since the late 1970s, there has been considerable discussion about describing human aerosol exposure in terms of a scientific criterion based on the efficiency with which particles are inhaled through the nose and/or mouth during breathing. As international agreement on the quantitative form of this criterion has emerged, progress is quickening towards workplace and environment aerosol standards in which the current 'total aerosol' approach will be replaced by one based on 'inhalability'. Wind tunnel investigations of a range of personal samplers currently used in workplaces for sampling 'total' aerosol have shown that many of these are not adequate for collecting the inhalable fraction. Such experimental evidence is supported by considerations of the physical sampling characteristics of the various samplers. Studies have been conducted to investigate workers' exposures to 'total' and inhalable aerosol in the workplaces of several industries in several countries, using side-by-side sampling in which participating workers wear two samplers, one for 'total' aerosol and the other for inhalable aerosol. The results from the several hundred sample pairs taken so far show that the level of exposure based on inhalable aerosol consistently exceeds that for 'total' aerosol. The observed ratios between the inhalable and 'total' aerosol exposures range from 1.2 to > 3, tending to be greater for workplaces where the aerosol is expected to be coarser. Such results may be used to assess the impact on industry of new limit values based on inhalable aerosol. It is clear that measured levels of exposure will tend to rise, so that there will be generally increased proportions of exposure measurements where levels will come close to, or exceed, current exposure limits. Those proportions may be greater still if new, lower limit values for 'total' aerosol currently under consideration for some substances are implemented. This paper examines these issues by reference to examples of exposure data taken from a range of industries and proposes options for how such information might influence the setting of future occupational exposure limits.

Administration, Inhalation↗

Effects of inhaled nitric oxide compared with aspirin on platelet function in vivo in healthy subjects.

1. Nitric oxide has platelet-stabilizing effects. Inhaled nitric oxide is used to treat pulmonary disorders, and may prolong bleeding times, suggesting that it has effects on haemostasis. We therefore examined if inhaled nitric oxide influences platelet function in vivo in healthy subjects. 2. Platelet aggregability (filtragometry ex vivo, which reflects aggregability in vivo), bleeding time and platelet secretion products and cGMP in plasma were studied during inhalation of two different doses of nitric oxide (30 and 80 p.p.m.; 15 min at each dose level; n = 19) and during prolonged (55 min; n = 18) inhalation of 30 p.p.m. nitric oxide. For comparison, studies were also performed before and after ingestion of 640 mg aspirin in 13 of the healthy subjects. 3. Plasma cGMP increased dose dependently during nitric oxide inhalation, suggesting guanylate cyclase activation in vivo. Platelet aggregability was, however, little affected and platelet secretion was not attenuated by nitric oxide inhalation. Bleeding time tended to increase (by 16-33%), but was significantly increased only after prolonged inhalation of nitric oxide at 30 p.p.m. 4. Aspirin (640 mg orally) caused pronounced and significant prolongations of filtragometry readings and bleeding time. Thus, the methods used were able to reveal platelet stabilization. 5. We conclude that nitric oxide inhalation causes only mild, if any, attenuation of platelet function in healthy subjects with a normal endogenous nitric oxide production. The effects may be different in disease states.

Administration, Inhalation↗

Beclomethasone dipropionate: absolute bioavailability, pharmacokinetics and metabolism following intravenous, oral, intranasal and inhaled administration in man.

AIMS: To assess the absolute bioavailability, pharmacokinetics and metabolism of beclomethasone dipropionate (BDP) in man following intravenous, oral, intranasal and inhaled administration. METHODS: Twelve healthy subjects participated in this seven-way cross-over study where BDP was administered via the following routes: intravenous infusion (1000 microg), oral (4000 microg, aqueous suspension), intranasal (1344 microg, aqueous nasal spray) and inhaled (1000 microg ex-valve, metered dose inhaler). The contribution of the lung, nose and gut to the systemic exposure was assessed by repeating the inhaled, intranasal and oral dosing arms together with activated charcoal, to block oral absorption. Blood samples were collected for 24 h postdose for the measurement of BDP, beclomethasone-17-monopropionate (B-17-MP) and beclomethasone (BOH) in plasma by liquid chromatography tandem mass spectrometry. RESULTS: Intravenous administration of BDP (mean CL 150 l h-1, Vss 20 l, t(1/2) 0.5 h) was associated with rapid conversion to B-17-MP which was eliminated more slowly (t1/2 2.7 h). In estimating the parameters for B-17-MP (mean CL 120 l h-1, Vss 424 l) complete conversion of BDP to B-17-MP was assumed. The resultant plasma concentrations of BOH were low and transient. BDP was not detected in plasma following oral or intranasal dosing. The mean absolute bioavailability (%F, 90% CI; nominal doses) of inhaled BDP was 2% (1-4%) and not reduced by coadministration of charcoal. The mean percentage F of the active metabolite B-17-MP was 41% (31-54%), 44% (34-58%) and 62% (47-82%) for oral, intranasal and inhaled dosing without charcoal, respectively. The corresponding estimates of nasal and lung absorption, based on the coadministration of charcoal, were < 1% and 36% (27-47%), respectively. CONCLUSIONS: Unchanged BDP has negligible oral and intranasal bioavailability with limited absorption following inhaled dosing due to extensive (95%) presystemic conversion of BDP to B-17-MP in the lung. The oral and intranasal bioavailabilities of the active metabolite B-17-MP were high and similar, but direct absorption in the nose was insignificant. The total inhaled bioavailability of B-17-MP (lung + oral) was also high (62%) and approximately 36% of this was due to pulmonary absorption. Estimates of oral bioavailability and pulmonary deposition based on total BOH were approximately half those found for B-17-MP.

Administration, Inhalation↗

Pharmacokinetics of inhaled drugs.

1. A high therapeutic ratio for the inhaled route of administration is achieved by delivering doses which achieve a high local concentration in the lung and relatively low levels of systemic absorption. 2. Pharmacokinetic evaluation of drug absorption from the lungs provides an accurate and reproducible method for comparing different inhaler delivery systems, as well as for evaluating bioequivalence of generic drug formulations. 3. The measurement of drug absorption from the lungs may also be applied to assess the effects of inhalation technique on drug delivery in vivo. For example with salbutamol delivered via a large volume spacer, lung bioavailability has been shown to be altered by factors such as the number of actuated puffs, inhalation-actuation delay and washing procedure. 4. Differences in drug delivery to the lungs between dry powder reservoir and pressurised metered-dose aerosol devices translate directly into commensurate differences in clinical efficacy for delivery of both inhaled beta 2-adrenoceptor agonists and corticosteroids. 5. For inhaled corticosteroids, pharmacokinetic evaluation using oral charcoal to obviate alimentary absorption may be applied to quantify the relative gut and lung components of systemic bioavailability. In tandem with information on receptor potency and affinity, drug elimination and distribution, these data may help in part to explain observed differences between different inhaled corticosteroids in terms of their systemic bioactivity profiles. 6. Studies are required to evaluate whether pharmacokinetic evaluation of lung absorption is a suitable way of quantifying delivery of nebulised aminoglycoside antibiotics, as for example in patients with cystic fibrosis. 7. Pharmacokinetic evaluation appears to have an established role in the quantification of drug delivery to the lungs and provides important information which is complimentary to other techniques such as radiolabelled deposition. The next decade of research into pharmacokinetics of established and novel drugs and delivery systems is awaited with keen interest, and will hopefully provide a greater understanding into ways of optimising the benefit-risk ratio for inhaled drugs.

Administration, Inhalation↗

Effects of oral and inhaled corticosteroid on lymphocyte beta2-adrenoceptor function in asthmatic patients.

AIMS: We have previously demonstrated that a single dose of oral prednisolone but not single doses of inhaled fluticasone had facilitatory effects on lymphocyte beta2-adrenoceptor (AR) function. To address possible differences in steady-state time-course, the aim of this study was to determine if repeated dosing with inhaled fluticasone would have facilitatory effects on lymphocyte beta2-AR. Plasma cortisol was also evaluated as a measure of systemic bioactivity. METHODS: Ten asthmatic subjects, mean (s.e.mean) age 29 (3) years, FEV1 89 (5) % predicted, were randomised in a double-blind crossover study to receive inhaled placebo (PL), inhaled fluticasone 1000 microg day-1 (F1000) and inhaled fluticasone 2000 microg day-1, each for 4 days and also a single dose of oral prednisolone 50 mg (PRED). Prednisolone was given as open medication. The last dose of study drug was taken at 22.00 h and subjects attended the laboratory at 08.00 h the following day. RESULTS: beta2-AR density (Bmax; fmol/10[6] cells) was significantly increased after PRED compared with PL and inhaled fluticasone. Bmax (geometric mean) after each treatment were: PL 1.51, F1000 1.20, F2000 1.20 and PRED 2.14 (a 1.4 fold difference PRED vs PL; 95% CI 1.05 to 1.95; P < 0.001). There was significant (P < 0.001) suppression of plasma cortisol (nmol l-1) following F2000 and PRED compared with PL: 393.8, F1000 302.1, F2000 205.0 (95% CI F2000 vs PL 58.1 to 319.4) and PRED 87.0 (95% CI PRED vs PL 176.2 to 437.5). The estimated milligram equivalence ratio for adrenal suppression was calculated at 1:11 for fluticasone vs prednisolone. CONCLUSIONS: Repeated dosing with high-dose inhaled fluticasone did not up-regulate lymphocyte beta2-AR as compared with a single dose of oral prednisolone, despite having significantly suppressed early morning plasma cortisol. This study confirms our previous finding of a dissociation in sensitivity between effects of inhaled corticosteroid on adrenal suppression and lymphocyte beta2-AR regulation, at least for doses up to 2 mg day-1 of fluticasone.

Administration, Inhalation↗

Inhaled nitric oxide does not influence bleeding time or platelet function in healthy volunteers.

BACKGROUND: Bleeding time has been reported to increase during gaseous nitric oxide (NO) inhalation in healthy volunteers and patients, and it has been speculated that inhaled NO inhibits platelet function. However, results have not been unanimous, and we have been unable to document any effects of inhaled NO on circulating platelets. MATERIALS AND METHODS: We performed a double-blind, placebo controlled cross-over study in which healthy volunteers (n = 15) inhaled NO (30 ppm, 30 min) or control gas. Aspirin (640 mg x 1 orally) was used as positive control on the third occasion (n = 14). Bleeding time was measured, and platelet function was determined flow cytometrically by measuring the expression of P-selectin on circulating platelets and locally activated platelets in wound blood. Skin perfusion close to the site for bleeding time incisions was assessed by laser Doppler flowmetry. RESULTS: Bleeding time was unaffected by NO, as there were slight increases during both NO and control inhalation (+20% and +14% respectively, P = 0.9). Similarly, NO inhalation had no effect on platelet P-selectin expression in either systemic or wound blood, or on skin perfusion. Aspirin pretreatment, on the other hand, prolonged bleeding time (P < 0.001) and decreased P-selectin expression of platelets in wound blood (P = 0.03). CONCLUSIONS: This first placebo-controlled study indicates that inhaled NO does not influence either bleeding time, platelet activity or skin perfusion. Thus, it is unlikely that treatment of critically ill patients with inhaled NO will aggravate haemostatic disturbances, which has previously been feared, by influencing platelet function.

Administration, Inhalation↗

Leukotriene receptor antagonist, montelukast, can reduce the need for inhaled steroid while maintaining the clinical stability of asthmatic patients.

BACKGROUND: Oral leukotriene receptor antagonists have been shown to have efficacy in chronic asthma. OBJECTIVE: To determine whether the addition of montelukast could lead to a reduction in inhaled corticosteroid dose without a significant decrease in peak expiratory flow rate (PEFR). METHODS: After a 4-week run-in period, 191 moderate-to-severe asthmatic patients whose asthma had been well controlled with daily inhaled corticosteroid therapy (beclometasone dipropionate 800 to 1600 micro g/day), were randomly assigned to one of two treatments - placebo (n = 98) or montelukast 10 mg once daily (n = 93) - for a 24-week, multicentre, double-blind, treatment period. At the beginning of the active treatment period, the daily dose of inhaled corticosteroid was halved in all of the patients. In addition, the inhaled corticosteroid dose was subsequently titrated every 8 weeks, based on PEFR, asthma symptoms and beta-agonist use. RESULTS: After 8 weeks of a 50% reduction in inhaled corticosteroid use, morning PEFR increased by 5.3 +/- 32.3 L/min from baseline in patients receiving montelukast and significantly decreased by 6.9 +/- 29.0 L/min in those receiving placebo (P = 0.035). In addition, evening PEFR significantly decreased by 9.8 +/- 28.5 L/min (P = 0.003) in the placebo group, but was maintained in the montelukast group. In spite of a subsequent 50% reduction in the inhaled corticosteroid dose every 8 weeks, morning and evening PEFRs were maintained over the 24-week treatment period in the montelukast group; PEFR significantly decreased in the placebo group. There was a significant difference between the two groups with regard to morning PEFR, therapy score and asthmatic score at weeks 8, 16 and 24, as well as evening PEFR at week 8. However, the symptom scores were not significantly different between the two groups or within each group. CONCLUSION: These data suggest that montelukast reduces the need for inhaled corticosteroids while maintaining asthma control over a 24-week period. Therefore, montelukast may be useful for long-term treatment in patients with asthma who require high doses of inhaled corticosteroids.

Acetates↗

Nitric oxide inhalation as a chemical assist for circulation in patients after cardiovascular surgery.

The objective of this study was to investigate whether nitric oxide (NO) inhalation might be an alternative strategy as a chemical assist for the circulation in patients showing a deterioration in oxygen delivery. Twelve adult patients whose oxygen delivery indices (DO2I) were less than 400 ml/min/m2 after cardiovascular surgery were included in this study. NO was administered via a premixing system or a side stream system at doses between 1 and 10 (5.1+/-2.4) ppm. Data obtained before and during a 120 min NO inhalation were compared using the paired Student's t-test. The increase in PaO2/FiO2 resulting from NO inhalation was significant (from 162 to 251 mm Hg). DO2I increased significantly from 326 to 417 ml/min/m2 concomitantly with significant increases in both arterial oxygen content (CaO2) and cardiac index (CI) (from 14.1 to 15.4 vol% and from 2.31 to 2.71 L/min/m2 , respectively). The increase in SvO2 during NO inhalation was significant (from 55.2 to 62.6%). Among the other hemodynamic parameters, both total pulmonary resistance and systolic pulmonary arterial pressure (SPAP) showed significant decreases during NO inhalation, but right atrial pressure did not change significantly. There was a close relationship between the baseline SPAP level (bSPAP) and the decrease in SPAP during NO inhalation (dSPAP) (r = -0.88). However, negative correlations were observed between bSPAP and percentage increase in CI (%CI) (r = -0.61) and between bSPAP and percentage increase in DO2I (%DO2I) (r = -0.48). Moreover, positive relationships were observed between dSPAP and %CI (r = 0.62) and between dSPAP and %DO2I (r = 0.45). Hemoglobin (Hb) increased significantly from 11.0 to 11.4 g/dl. There were no significant changes in Fio2, pH, PacO2, or base excess (BE) during NO inhalation. The level of methemoglobin measured during the study period remained within the normal range (0.86+/-0.23%). In conclusion, NO inhalation could be an efficient and alternative assist for the circulation in patients whose oxygen delivery deteriorates after cardiovascular surgery.

Administration, Inhalation↗

Inhaled nitric oxide administration during one-lung ventilation in patients undergoing thoracic surgery.

OBJECTIVE: To evaluate the effects of inhaled nitric oxide (iNO) on hemodynamics and oxygenation during one-lung ventilation (OLV) in the lateral decubitus position in patients undergoing elective thoracic surgery. DESIGN: Prospective study. SETTING: University hospital. PARTICIPANTS: Thirty consecutive patients scheduled for thoracotomy. INTERVENTIONS: Anesthesia consisted of thoracic epidural analgesia combined with general anesthesia (isoflurane, fentanyl, and vecuronium bromide). Systemic and pulmonary circulations were monitored with a radial artery catheter and a pulmonary artery catheter. Inhaled NO, 40 ppm, was administered during OLV, and the inhaled gas mixture was monitored for NO and nitrogen dioxide (NO2). Hemodynamic and oxygenation data were collected before and during inhaled NO administration. MEASUREMENTS AND MAIN RESULTS: Inhaled NO caused a reduction of pulmonary vascular resistance index from 249 +/- 97.6 dyne. sec. cm(-5) to 199.3 +/- 68.9 dyne. sec. cm(-5) (p < 0.05), without effects on systemic hemodynamics or impairment of oxygenation. A stratification of the patients according to values of QS/QT (< 30%, 30% to 44%, > or = 45%), PaO(2)/fraction of inspired oxygen (> or = 200, 100 to 199, < 100), and pulmonary hypertension (mean pulmonary arterial pressure < 24 or > or = 24 mmHg) showed that inhaled NO causes a significant reduction of mean pulmonary artery pressure in patients with pulmonary hypertension, mainly as a result of a reduction of pulmonary vascular resistance index, and improves oxygenation by reducing intrapulmonary shunt in patients with severe hypoxemia during OLV. CONCLUSIONS: Inhaled NO administration neither significantly decreased mean pulmonary arterial pressure in patients with normal pulmonary artery pressure nor improved oxygenation in nonhypoxic patients. Nevertheless, inhaled NO is effective in patients with pulmonary hypertension and hypoxemia during OLV.

Aged↗

Characterization of the inspiratory manoeuvre when asthmatics inhale through a Turbohaler pre- and post-counselling in a community pharmacy.

Dose emission from a Turbohaler has been shown to be dependent on the rate of inhalation, with an optimal flow of 60 l min(-1) recommended. Some patients may need counselling to achieve this fast inhalation. Inhalation rate profiles of 24 asthmatics were measured when they inhaled through a placebo Turbohaler. The setting was a community pharmacy when the asthmatics came to collect their next supply of medication. Profiles were measured before and after counselling on how to use the Turbohaler. The mean (SD) peak inhalation rate through the Turbohaler pre- and post-counselling was 48.0 (16.8) and 54.7 (17.6) l min(-1), and their inspiratory volume was 1.75 (0.68) and 1.94 (0.62) l, respectively. Their mean (SD) percent predicted FEV1 was 57.0 (18.9)%. After counselling, 12 patients achieved an inhalation rate of > 60 l min(-1) and a further four obtained > 55 l min(-1). Emphasis should be placed on counselling patients prescribed all types of inhaled devices rather than concentrating on metered dose inhalers.

Administration, Inhalation↗

Comparison of high and low dose of the inhaled steroid, budesonide, as an initial treatment in newly detected asthma.

The importance of early initiation of inhaled steroids even in mild asthma has been documented in several studies. It is not, however, clear whether the treatment should be started with a high or a low dose of the inhaled steroid. We have compared the effects of high and low dose inhaled steroid, budesonide, in patients with newly detected asthma. We studied 101 adult patients with newly detected bronchial asthma who were without inhaled steroid or any regular pharmacological treatment for their asthma. The patients were randomly allocated to two treatment groups: one to receive 800 microg inhaled budesonide per day and the other to receive 200 microg inhaled budesonide per day. The drugs were given with a Turbuhaler dry powder inhaler. During the 3-month treatment period, no significant differences between the treatment groups were noted in morning or evening PEF values, in spirometric parameters, in asthmatic symptoms or in the use of rescue beta2-agonists. The decrease in bronchial hyperresponsiveness was, however, more marked in the high dose budesonide group, reaching a borderline significance (P=0.10 high vs. low dose budesonide). In addition, in serum markers of asthmatic inflammation significant differences were shown between the treatment groups. The decrease in the number of blood eosinophils during the treatment was more marked in the high dose budesonide group (P=0.02; high vs. low dose budesonide). In serum ECP no change was observed in the low dose budesonide group, but a marked decrease in the high-dose budesonide group (P=0.008; high vs. low dose budesonide). The change was even more marked with regard to serum EPX (P=0.005; high vs. low dose budesonide). Our results support the view that the treatment of newly detected asthma should be started with a high dose of inhaled steroid. The low dose may not be enough to suppress asthmatic inflammation despite good clinical primary response.

Administration, Inhalation↗

The inflammatory marker serum eosinophil cationic protein (ECP) compared with PEF as a tool to decide inhaled corticosteroid dose in asthmatic patients.

The objective of this study was to compare the inflammatory marker eosinophil cationic protein (ECP) with peak expiratory flow (PEF) in determining the therapeutic needs of inhaled corticosteroids in asthma patients assessed as asthma symptoms. A randomized, single-blind study over 6 months was performed at six specialist centres in Europe. In total, 164 adult patients with moderate to severe symptomatic asthma and regular use of inhaled corticosteroids were included. After a run-in period of 2 weeks patients were randomly allocated to the ECP or the PEF monitoring group. The dose of inhaled cort costeroids was adjusted every fourth week based on the current serum ECP value or pre-bronchodilator morning PEF values as surrogate markers of therapeutic needs. At the end of the study there were no statistically significant differences in the mean daily symptom score or the percentage of symptom-free days between the two groups. The mean daily dose of inhaled corticosteroids was similar in the two groups at the start of the study but the algorithms used to adjust the dose of inhaled corticosteroids resulted in an increased use of inhaled corticosteroids in both groups. The mean daily dose of inhaled corticosteroids over the whole study period was significantly lower in the ECP group compared withthe PEF group (1246 vs. 1667 microg, P = 0.026). In the ECP group, forced expiratory volume in I sec (FEV)% predicted was lower at the end ofthe study compared with the begining (92% vs. 87%, P = 0 .0009), although there was no significant difference between the two groups. None of the used algorithms for ECP and PEF led to improvement in symptom scores, in spite of increased doses of inhaled corticosteroids. In this respect, both methods were equivalent and insufficient. Recommendations suggesting lung function tests in current guidelines may be difficult to translate into clinical practice, however, a combination of inflammatory markers, lung function and symptoms may still improve asthma control.

Administration, Inhalation↗

[Does the inhalation of a 1% L-menthol solution in the premedication of fiberoptic bronchoscopy affect coughing and the sensation of dyspnea?].

BACKGROUND: Inhalation of l-menthol inhibits cough and has been shown to reduce respiratory discomfort associated with loaded breathing. We investigated the effect of the inhalation of a 1% l-menthol solution in the premedication of fiberoptic bronchoscopy (FB) on the frequency of cough and the irritability of the tracheobronchial mucosa during FB in a blinded, randomized and placebo controlled study. METHODS: 64 pat. (30-78 yrs, 55 males) underwent routine FB. Premediction: atropine and hydrocodone s.c., inhalation of oxybuprocain by means of a jet nebulizer, sedation on demand. Verum-group: inhalation of 3 ml 1% l-menthol-solution. Placebo-group: 3 ml 0.05% l-menthol (to provide the typical smell). Before and after inhalation peak respiratory flow (PEF) was registered, during FB the frequency of cough was measured. The bronchoscopist scored the irritability of the tracheobronchial mucosa using a visual analog scale. The patients answered a questionnaire addressing their perception of dyspnea and cough on the day after FB compared to the day before. RESULTS: The cough counts didn't show a significant difference between the groups. The irritability of the mucosa was increased in the verum group (main bronchus verum 62.2 +/- 22, placebo 48.6 +/- 23 [mm vissual analog scale, p = 0.03]). Cough and dyspnea reported by the patients decreased on the day after FB significantly compared to the day before (no difference between the groups). The inhalation of 1% l-menthol induced a significant increase of the PEF (verum 307 +/- 103 pre, 329 +/- 84 post [l/min, p = 0.003]) compared to placebo. CONCLUSIONS: The inhalation of 1% l-menthol did not enhance the tolerability of the FB. However, l-menthol induced a significant increase of the PEF immediately after inhalation. Finally sensation of dyspnea was decreased in both groups at the day post FB.

Administration, Inhalation↗

[Controlled inhalation of beta2-sympaticomimetica after bronchial provocation].

The results of several studies indicate that controlling the breathing pattern (inhaled volume and flow rate) during inhalation increases the efficacy of drug delivery to the lungs. By inhaling slowly, deeply and under controlled conditions, intrapulmonary deposition of aerosol and its reproducibility can be increased. However, it has not yet been proven that such inhalations are well tolerated by patients, especially those with airway obstructions. In this study 12 patients with mild asthma underwent a bronchial provocation test. The following broncholysis was performed with controlled, slow, and deep inhalation using the AKITA-device. The patients were asked about the convenience of this inhalation using a questionnaire. In 80 % the controlled inhalation was judged as convenient, neither as too slow nor as too fast, neither as too deep nor as too shallow. Thus it turned out that controlled deep and slow inhalations are convenient even for patients with mild airway obstruction.

Administration, Inhalation↗

Nitric oxide inhalation: effects on the ovine neonatal pulmonary and systemic circulations.

Others have shown that inhaled nitric oxide causes reversal of pulmonary hypertension in anaesthetized perinatal sheep. The present study examined haemodynamic responses to inhaled NO in the normal and constricted pulmonary circulation of unanaesthetized newborn lambs. Three experiments were conducted on each of 7 lambs. First, to determine a minimum concentration of NO which could reverse acute pulmonary hypertension caused by infusion of the thromboxame mimic U46619, the haemodynamic effects of 5 different doses of inhaled NO were examined. Second, the effects of inhaling 80 ppm NO during hypoxic pulmonary vasoconstriction were examined. Finally, to determine if tachyphalaxis occurs during NO inhalation, lambs were exposed to 80 ppm NO for 3 h during which time pulmonary arterial pressure was doubled by infusion of U46619. Breathing NO (80 ppm) caused a slight but significant decrease in pulmonary vascular resistance (PVR) in lambs with normal pulmonary arterial pressure (PAP). Nitric oxide, inhaled at concentrations between 10 and 80 ppm for 6 min (F1O2 = 0.60), caused decreases in PVR when PAP was elevated with U46619. Nitric oxide acted selectively on the pulmonary circulation, i.e. no changes occurred in systemic arterial pressure or any other measured variable. Breathing 80 ppm NO for 6 min reversed hypoxic pulmonary vasoconstriction. In the chronic exposure study, inhaling 80 ppm NO for 3 h completely reversed U46619-induced pulmonary hypertension. Although arterial methaemoglobin increased during the 3-h exposure to 80 ppm NO, there was no indication that this concentration of NO impairs oxygen loading. These data demonstrate that NO, at concentrations as low as 10 ppm, is a potent, rapid-action, and selective pulmonary vasodilator in unanaesthetized newborn lambs with elevated pulmonary tone. Furthermore, these data support the use of inhaled NO for treatment of infants with pulmonary hypertension.

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