Meta-analysis of increased dose of inhaled steroid or addition of salmeterol in symptomatic asthma (MIASMA)BMJ 2000; 320 doi: https://doi.org/10.1136/bmj.320.7246.1368 (Published 20 May 2000) Cite this as: BMJ 2000;320:1368
- Stephen Shrewsbury, associate medical director ()a,
- Stephen Pyke, section head, respiratory statisticsa,
- Mark Britton, consultant respiratory physicianb
- a GlaxoWellcome UK, Stockley Park West, Uxbridge, Middlesex UB11 1BT
- b St Peter's Hospital, Chertsey, Surrey KT16 0PZ
- Correspondence to: S Shrewsbury
- Accepted 7 February 2000
Objective: To examine the benefits of adding salmeterol compared with increasing dose of inhaled corticosteroids.
Design: Systematic review of randomised, double blind clinical trials. Independent data extraction and validation with summary data from study reports and manuscripts. Fixed and random effects analyses.
Setting: EMBASE, Medline, and GlaxoWellcome internal clinical study registers.
Main outcome measures: Efficacy and exacerbations.
Results: Among 2055 trials of treatment with salmeterol, there were nine parallel group trials of ≥12 weeks with 3685 symptomatic patients aged ≥12 years taking inhaled steroid in primary or secondary care. Compared with response to increased steroids, in patients receiving salmeterol morning peak expiratory flow was greater at three months (difference 22.4 (95% confidence interval 15.0 to 30.0) litre/min, P<0.001) and six months (27.7 (19.0 to 36.4) litre/min, P<0.001). Forced expiratory volume in one second (FEV1) was also increased at three months (0.10 (0.04 to 0.16) litres, P<0.001) and six months (0.08 (0.02 to 0.14) litres, P<0.01), as were mean percentage of days and nights without symptoms (three months: days—12% (9% to 15%), nights—5% (3% to 7%); six months: days—15% (12% to 18%), nights—5% (3% to 7%); all P<0.001) and mean percentage of days and nights without need for rescue treatment (three months: days—17% (14% to 20%), nights—9% (7% to 11%); six months: days—20% (17 to 23%), nights—8% (6% to 11%); all P<0.001). Fewer patients experienced any exacerbation with salmeterol (difference 2.73% (0.43% to 5.04%), P=0.02), and the proportion of patients with moderate or severe exacerbations was also lower (2.42% (0.24% to 4.60%), P=0.03).
Conclusions: Addition of salmeterol in symptomatic patients aged 12 and over on low to moderate doses of inhaled steroid gives improved lung function and increased number of days and nights without symptoms or need for rescue treatment with no increase in exacerbations of any severity.
The 1997 British Guidelines on Asthma Management 1 acknowledged the landmark study of Greening et al 2 and recommended salmeterol as an alternative to increasing the dose of inhaled corticosteroids in symptomatic patients on beclometasone dipropionate (or budesonide) 100–400 μg (or fluticasone 50–200 μg) twice daily. Little guidance was given as to which choice would benefit patients most because of a lack of published data on respective outcomes. The dilemma remains today. Usually studies have measured improvement in lung function (peak expiratory flow (PEF) or forced expiratory volume in one second (FEV1)) as the primary variable, but a recent study looked at exacerbation rates as the primary outcome measure.3 Exacerbation data had been collected in studies that looked at the addition of salmeterol but not formally reported. We reviewed studies that compared the addition of salmeterol with an increased (at least double) dose of inhaled steroid (in patients who had symptoms on low to moderate doses of inhaled steroids) to see how rates of exacerbation were affected by the addition of salmeterol.
We searched EMBASE, Medline, and GlaxoWellcome databases before the analysis started in January 1998. All publications and abstracts from 1985 onwards in all languages were considered. In a further search in September 1999 we identified no additional studies that fulfilled the search criteria. Study search and selection was conducted by SS.
Criteria for selection of studies for inclusion in the review were randomised controlled trial; direct comparison between addition of salmeterol to current dose of inhaled steroid and increased (at least doubling) dose of current inhaled steroid for a minimum of 12 weeks; and adults or adolescents (age 12 years or over) with symptomatic asthma on current dose of inhaled steroids.
All included studies were sponsored by GlaxoWellcome and all met company-wide minimum quality thresholds. All were randomised by using PACT (patient allocation for clinical trials), an in-house, computer based randomisation package validated by the Food and Drug Administration. In all studies, maintenance of the treatment blind was carefully managed with adherence to in-house standard operating procedures. In all studies, treatment packs were supplied numbered in non-identifiable packaging and were dispensed by investigators to the next sequential patient to be randomised in the trial. All studies were conducted according to good clinical practice, and all had received ethical approval. In all studies, appropriate statistical methods were used for summarising and comparing treatments, and methods for handling missing data were preplanned.
Data abstraction was based on reported summary statistics (means, SD and SE, proportions) for the intention to treat population. Two independent coworkers extracted data from study reports and manuscripts, and their results were compared. Discrepancies were resolved by consensus. Severity of exacerbation was not reported in all studies, and so individual patient datasets were sought and obtained in all but two studies. Severity of exacerbation was assessed independently by two coworkers, without knowledge of treatment allocation or results, who applied the following criteria: severe—requiring oral steroids or admission to hospital; moderate—requiring an increase in inhaled steroid medication; mild—requiring an increase in use of rescue medication.
Quantitative data synthesis
For all measures, treatments were compared each month and for months one to six (when available), with primary interest in the comparisons at three and six months. For peak expiratory flow (recorded by patients twice daily, morning and evening, on diary cards) and forced expiratory volume in one second (FEV1) (recorded at clinic visits) the measure of effect was the difference in means. Previous experience with these measures provided assurance that they have approximately normal distributions. We used reported treatment means or medians for the week or month (as reported) immediately before the next assessment, with previous experience again suggesting approximate normality. For symptoms and use of rescue medication (recorded by the patients on their diary cards) the measure was the difference in the mean percentage of days and nights without symptoms or use of rescue medication. For these measures treatment means were obtained as the mean of the patient means (or medians, as reported), which were calculated over the interval of interest. For exacerbations (recorded in case record forms) the measure was the difference in the percentage of participants with one or more exacerbations.
The primary method of combining results was by using a fixed effect model weighting according to inverse study variance. Random effects estimators were also calculated to provide an assessment of the degree of heterogeneity.4 Evidence for statistical heterogeneity was formally tested and the potential for publication bias assessed by funnel plot.5 All analyses were conducted with SAS v6.12.
The results of the searches are presented in figure 1. The presentation follows the suggested format provided in the QUOROM statement.6 Among the nine included studies, seven have, to date, been fully published. We did not exclude any study that compared the addition of salmeterol to an increase in the dose of inhaled steroid in the management of asthma in adults.
The inclusion criteria and designs (all were parallel group) for the individual studies are given in tables 1 and 2. Treatment duration was 12 weeks in two studies and six months (24-26 weeks) in the others. To be randomised patients had to have symptoms on their current dose of inhaled steroids, defined as having symptoms (yes or no) or a minimum total (day plus night) symptom score of at least 2 on at least four of the last seven days of the run in period (symptom scale: 0 (none) to 4 (causing severe discomfort and preventing normal daily activity 3). When rescue medication was required, patients must have needed to take rescue treatment four times or more within 24 hours on four of the last seven days of the run in period.
Quantitative data synthesis
Mean morning PEF and FEV1 were greater in those who received added salmeterol compared with those treated with an increased dose of inhaled steroids (table 3). At three months, morning PEF was 22.4 litre/min higher with the addition of salmeterol than with increased inhaled steroid (P<0.001), and at six months (data from only the seven studies in which treatment duration was six months) the difference was 27.7 litre/min in favour of salmeterol (P<0.001). The results for FEV1 were also in favour of salmeterol by 0.10 litre (P<0.001) and 0.08 litre (P<0.01) at three and six months respectively. There was no evidence of heterogeneity between studies for either morning PEF or FEV1.
All studies reported the percentage of days and nights without symptoms, and all recorded the percentage of days and nights without the need for rescue treatment. The results at three and six months are shown in table 4. For all measures, at both time points, mean values were higher among patients receiving salmeterol (P<0.001). There was consistent evidence of statistical heterogeneity between studies for these measures (P<0.10 in all cases). Comparison of the confidence intervals calculated under the random effects model with those obtained under the fixed effect model, however, shows that the impact of this heterogeneity was small and almost certainly clinically unimportant. The confidence intervals calculated under the random effects model for these measures all exclude zero, with P0.002 in all cases, confirming the interpretation of the fixed effects model.
Results for exacerbations are shown in table 5. Total exacerbations (any severity) were reduced significantly (P=0.020) with added salmeterol (by 2.73%; number needed to treat=37) compared with increased dose of inhaled steroids (figs 2 and 3). Similar results were obtained for moderate or severe exacerbations only (reduced by 2.42%, P=0.029; number need to treat=41). There was no evidence of heterogeneity between studies for these measures.
Asthma is now defined as a chronic inflammatory disease of the airways, and anti-inflammatory therapy is regarded as the cornerstone of treatment.1 Despite the use of inhaled corticosteroids to treat the inflammation, however, many patients continue to suffer from symptoms. Though the addition of salmeterol to inhaled steroids improves lung function and suppresses symptoms, previous work has not reported the effect on exacerbations, which may be regarded as a marker of underlying airway inflammation.
In this review we have shown that, compared with increased doses of steroids, additional treatment with salmeterol for symptomatic asthmatic patients on low to moderate doses of inhaled steroids leads to greater improvements in lung function and symptoms and to reduced need for rescue treatments. Moreover, we found no evidence of any increase in exacerbations, suggesting that control of airway inflammation is not compromised by this choice. For all or moderate or severe exacerbations the number needed to treat was about 40,suggesting that, compared with increasing the dose of inhaled steroid, the addition of salmeterol to the treatment of 40 patients with symptoms would prevent exacerbations in one additional patient. This updates work presented in abstract by Jenkins et al,16 who showed that in six of the studies included in this analysis in which the baseline dose of beclometasone was 400 μg/day,2 10–15 the exacerbation rates at 24 weeks were reduced more by the addition of salmeterol than by increasing the steroid dose.
The application of these results to general practice, however, reveals a potential weakness in the analysis because of the method used to select patients for the individual studies. In six of the nine included studies, a requirement for entry was a demonstrable, clinically relevant, response to βagonist (among other requirements, see table 1). In the three other studies absolute lung function measurements and the presence of symptoms were required but airway lability was not a prerequisite. This meta-analysis therefore represents a comparison among a defined population of adult or adolescent patients with asthma who were mainly responsive to β agonist and who had symptoms on their current dose of inhaled steroid. In this population those receiving an increase in inhaled steroid responded less well to this change in treatment than did those receiving the addition of the long acting bronchodilator. It might be argued, though, that this is not a surprising finding.
The individual study entry criteria, however, were chosen to reflect the evolving guidelines for the management of asthma that currently highlight the dilemma of what option to follow for stable patients who, nevertheless, still have symptoms on low to moderate doses of inhaled steroids. The analysis presented therefore examines the common decision facing physicians in daily practice as they manage patients according to the current guidelines. Patients who fail to improve with bronchodilator are commonly classified as having chronic obstructive pulmonary disease and are treated according to a different set of agreed guidelines.
The results of this meta-analysis are consistent with those obtained in the large FACET study.3 This study examined the effect of adding eformoterol (12 μg twice daily) to either low dose (200 μg/day) or high dose (800 μg/day) budesonide in the treatment of patients who were previously symptomatic but had been stabilised over four weeks on budesonide 1600 μg per day. This trial did not meet our inclusion criteria in several respects and so was not included in this meta-analysis. The similarity in findings, however, seems to suggest that the observed treatment benefits might represent a class effect rather than being specific to the drugs used in the studies included in this meta-analysis.
In conclusion, giving salmeterol to patients who have symptoms on at least 400 μg beclomethasone per day will result in better lung function, better control of symptoms, less need for rescue medication, and fewer exacerbations than increased doses of inhaled steroid. Healthcare professionals faced with the dilemma of deciding which option to follow (in the British Guidelines on Asthma Management 1 at step 3) may find this review helpful when deciding on the appropriate treatment choice.
What is already known on this topic
Salmeterol improves lung function, alleviates symptoms, and reduces the use of rescue treatment when it is added to inhaled steroids in the treatment of mild to moderate asthma
Exacerbations are regarded as a marker for underlying control of the inflammation that is a key feature of asthma
What this paper adds
This meta-analysis shows that rates of exacerbation are no greater with the addition of salmeterol to moderate doses of inhaled steroids than with at least doubling the dose of steroids
This should reassure prescribers still undecided about which option to pursue at step 3 of the British Guidelines on Asthma Management
Contributors: SS set up the project, organised searches and liaised with overseas operating companies, sourced study reports and datasets, arranged statistical input and helped to devise protocol, collaborated in analyses, and wrote the paper. SP designed the protocol, supervised data extraction and validation from study reports and raw data, supervised cross checking and validation work, was primarily responsible for the analyses, and provided substantial input to preparation of abstracts and publication. MB was involved in the original concept, discussed analysis and subsequent results, and contributed to preparation of abstracts and results. SS is guarantor.
Competing interests SS has been employed full time by GlaxoWellcome as associated medical director (respiratory) for the past four years. SP is a full time employee of GlaxoWellcome and is head of statistics. MB has been taken to international conferences, received fees for speaking, received funding for research and a respiratory nurse, and has shares in GlaxoWellcome. GlaxoWellcome manufactures Serevent (salmeterol xinafoate).